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{{#Wiki_filter:Attachment 11 COM Apvd RELEASED 2017/10/12 30441 R00045 Revision B REACTOR-BASED MOL YBDENUM-99 SUPPLY SYSTEM PROJECT TARGET COOLING SYSTEM FLOW TEST REPORT Prepared by General Atomics for the U.S. Department of Energy/National Nuclear Security Administration and Nordion Canada Inc. Cooperative Agreement DE-NA0002773 GA Project 30441 WBS 1252 + Clf!JNIBIAL A'l'OMlell Q nordion Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B REVISION HISTORY Revision Date Descriptio n of Changes A 110CT17 Ini ti al Release B 120CT17 Rev i sed with updated figures and references POINT OF CONTACT INFORMATION PREPARED BY: Name Position Email Phone Candace Gray Engineer Candace.Gray@ga
{{#Wiki_filter:Attachment 11 30441 R00045 RELEASED 2017/10/12   Revision B COM Apvd REACTOR-BASED MOLYBDENUM-99 SUPPLY SYSTEM PROJECT TARGET COOLING SYSTEM FLOW TEST REPORT Prepared by General Atomics for the U.S. Department of Energy/National Nuclear Security Administration and Nordion Canada Inc.
.com 858-455-3394 J. Armando Chavez Engineer Juan.Chavez@ga.com 858-455-2465 APPROVED BY: Name Position Email Phone Oscar Gutierrez Task Lead Oscar.Gutierrez@ga
Cooperative Agreement DE-NA0002773 GA Project 30441 WBS 1252
.com 858-455-3655 Katherine Partain Quality Engineer Katherine.Partain@ga.com 858-455-3225 Kathy Murray Project Manager Katherine.
            +   Clf!JNIBIAL A'l'OMlell Q nordion
M urray@ga.com 858-455-3272 DESIGN CONTROL SYSTEM DESCRIPTION D R&D DISC QA LEVEL SYS [8J DV&S D DESIGN D T&E N II N/A D NA ii Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B TABLE OF CONTENTS REVISION HISTORY .....................
 
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Attachment 11 Target Cooling System Flow Test Report                                   30441 R00045/B REVISION HISTORY Revision       Date                           Description of Changes A       110CT17     Initial Release B       120CT17     Revised with updated figures and references POINT OF CONTACT INFORMATION PREPARED BY:
..............................
Name                 Position             Email                     Phone Candace Gray           Engineer             Candace.Gray@ga .com       858-455-3394 J. Armando Chavez     Engineer             Juan.Chavez@ga .com       858-455-2465 APPROVED BY:
ii POINT OF CONTACT INFORMATION  
Name                 Position             Email                     Phone Oscar Gutierrez       Task Lead             Oscar.Gutierrez@ga .com   858-455-3655 Katherine Partain     Quality Engineer     Katherine.Partain@ga.com   858-455-3225 Kathy Murray         Project Manager       Katherine. M urray@ga.com 858-455-3272 DESIGN CONTROL SYSTEM DESCRIPTION D     R&D                       DISC               QA LEVEL               SYS
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[8J   DV&S D     DESIGN D     T&E N                     II               N/A D     NA ii
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ii DESIGN CONTROL SYSTEM DESCRIPTION  
Attachment 11 Target Cooling System Flow Test Report                                                                                       30441 R00045/B TABLE OF CONTENTS REVISION HISTORY ........................................... ......................................................................... ii POINT OF CONTACT INFORMATION ........................................................................................ ii DESIGN CONTROL SYSTEM DESCRIPTION .................................... ........................................ ii ACRONYMS ................................................................................................................................. v 1       PURPOSE AND SCOPE .................................................................................................. 1 2       APPLICABLE DOCUMENTS ........................................................................................... 1 3       FULL SCALE SYSTEM FLOW TESTING ........................................................................ 1 3.1     Description of Test Rig .. ..... .......... ... .. ... ..... ....... ..... .. .. .. .. ....... ..... ...... ........ ..... ..... ... .. .. . 1 3.2     Test Procedures .... ..... .. ..... .... ......... ....... .. ... ..... .. ....... ... ... ............ .... ....... ..... ....... .... .. .. 6 3.2.1 Target Assembly Pressure Drop Test ..... .......... ... ....... .... .. ..... .. ...... ... .... ... .. .... ... 6 3.2 .2   Pump Coast-down Test .... ... ...... .. ..... .... ....... .. ..... .. ..... ... ..... .... ..... ......... ... ..... ... .. . 8 3.2 .3   Labyrinth Seal Bypass Test. .. .... ......... ..... ..... ... .... ... ...... ..... ... ...... ..... ...... ..... .... ... 9 4       TEST RESULTS ............................................................................................................. 11 4.1     Target Assembly Pressure Drop Test .. .. .... ..... ... ....... .... ..... ..... .. ..... ...... ... .. ..... ...... ... 11 4.2       Pump Coast-down Test Results ....... ..... ... ...... .... ... .... ... .. ... ... ... .... ....... ... .. .. .. .. .... ..... . 12 4.3     Labyrinth Seal Bypass Test Results ... .. ..... ..... .. ..... ........ ..... .. .. ..... ............ ...... .... .. .... 13 APPENDIX A - EQUIPMENT AND INSTRUMENTATION USED IN TESTING ...................... A-1 APPENDIX B-GOULDS PUMP SPECIFICATION AND TEST DATA ................................... B-1 APPENDIX C- RAW PRESSURE DROP DATA  
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ii ACRONYMS ..........................
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v 1 PURPOSE AND SCOPE ....................................................
..............................................
1 2 APPLICABLE DOCUMENTS  
...........................................................................................
1 3 FULL SCALE SYSTEM FLOW TESTING ........................................................................
1 3.1 Description of Test Rig .............................................................................................. 1 3.2 Test Procedures  
.........................................................................
............................... 6 3.2.1 Target Assembly Pressure Drop Test ...............
................................................ 6 3.2.2 Pump Coast-down Test ..................................................................................... 8 3.2.3 Labyrinth Seal Bypass Test. .............................................................................. 9 4 TEST RESULTS .......................................................
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11 4.1 Target Assembly Pressure Drop Test ..................................................................... 11 4.2 Pump Coast-down Test Results .............................................................................. 12 4.3 Labyrinth Seal Bypass Test Results ........................................................
................ 13 APPENDIX A -EQUIPMENT AND INSTRUMENTATION USED IN TESTING ......................
A-1 APPENDIX B-GOULDS PUMP SPECIFICATION AND TEST DATA ...................................
B-1 APPENDIX C-RAW PRESSURE DROP DATA  


==SUMMARY==
==SUMMARY==
  .................................................
  ................................................. C-1 APPENDIX D - CALCULATION FOR EXTRAPOLATING GA llP TEST VALUES AT 20°C (CONSTANT) TO ANSYS-FLUENT PREDICTION VALUES AT 34°C (TARGET ASSEMBLY AVERAGE) .............................................................................................. D-1 APPENDIX E- TARGET ASSEMBLY PRESSURE DROP TEST DATA SHEETS ................ E-1 APPENDIX F - MEASURING & TEST EQUIPMENT (M&TE) LIST WITH CERTIFICATES OF CALIBRATION ..... ......................................................................................................... F-1 APPENDIX G - LABORATORY NOTEBOOK REFERENCE .......................... ........................ G-1 iii
C-1 APPENDIX D -CALCULATION FOR EXTRAPOLATING GA llP TEST VALUES AT 20°C (CONSTANT)
 
TO ANSYS-FLUENT PREDICTION VALUES AT 34°C (TARGET ASSEMBLY AVERAGE) .......................................................................
Attachment 11 Target Cooling System Flow Test Report                                                                                                 30441 R00045/B LIST OF FIGURES Figure 1 -Target Cooling System Test Loop P&ID .. ... ... ...... .... .. ....... .......... .. ...... ........ .............. ... 4 Figure 2 - 3D Model of the Target Cooling System Test Loop Design ......................................... 5 Figure 3- GA Target Cooling System Test Loop Setup ...... ... .... ... .... ........ .... ... ...... ...... ....... ... ..... . 6 Figure 4 - Gasket Seal Location .......... .. ..... ........ .. ... ..... .. ..... ... .... .. ... .. ..... ... .... .. .. .. .. .... ..... .............. 7 Figure 5 - Bypass Flow Paths for Labyrinth Path and Cartridge Pins ..... .... .. ... .. ..... .. ... .............. 10 Figure 6 - Target Assembly Pressure Drop Test Results ............................................... .......... .. 12 Figure 7 - Pump Coast-down Results at Various Flows with 25% Margin on t.P ..... ....... ........... 13 Figure 8 - Bench Bypass Test Article Setup ..... .. ...... ........ ......... ...... .. ... .... .. ..... .. ......... ....... .. ...... 14 Figure 9 - Full Labyrinth Seal Bypass System Setup with Standpipe ..... ..... ...... ..... .. ... ..... ...... .. . 15 Figure 10 - Full System Bypass Test Results .. ...... ... .. .. .. .... ...... .. ... ..... ... ........ .... ..... .... ..... .. ... .. ... 17 LIST OF TABLES Table 1: GA Test Pool and MURR Pool Comparison ... ... ... ... .. ...... ... ............... ..... ..... .... ........... .... 2 Table 2 - Test Cases ... ... ...... ... .. .. ..... .... .... .... .... ........ .. .... ... .............. .. ... ... .... ......... .... .. ................... 9 Table 3 - Pressure Drop Data Summary ..... ... ..... .. ..... ......... .... ...... ......... ... ... ... ... ... ...... .. ... ....... .. . 11 Table 4 - Bypass Test Loading Conditions and Requirements .......... ......... ........ ......... ... .... ....... . 15 Table 5 - Bypass Test Results ...... ... ....... ..... .. ........ ..... ...................... .. .......................... .. ...... ...... 16 iv
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D-1 APPENDIX E-TARGET ASSEMBLY PRESSURE DROP TEST DATA SHEETS ................
Attachment 11 Target Cooling System Flow Test Report                           30441 R00045/B ACRONYMS Acronym                               Description GA                     General Atomics GPM                     Gallons Per Minute HX                     Heat Exchanger LOPF                   Loss of Pump Flow Mo-99                   Molybdenum 99 MURR                   Missouri University Research Reactor P&ID                   Piping and Instrumentation Diagram PSI                     Pounds per Square Inch PSIA                   Pounds per Square Inch Absolute PSID                   Pounds per Square Inch Differential PSIG                   Pounds per Square Inch Gauge TA                     Target Assembly TCS                     Target Cooling System TCSTL                   Target Cooling System Test Loop v
E-1 APPENDIX F -MEASURING  
 
& TEST EQUIPMENT (M& TE) LIST WITH CERTIFICATES OF CALIBRATION  
                                                                                    ~-------
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Attachment 11 Target Cooling System Flow Test Report                                           30441 R00045/B 1         PURPOSE AND SCOPE As with all nuclear fission assemblies, cooling must be provided to remove heat generated from fis sion reactions. Validating the analysis of the target system cooling water flow behavior is vital to ensuring proper function of the cooling system when it is installed in the MURR pool. The sp ecific purpose of these tests was to confirm the analysis of the flow and pressure drop through th e target assembly (TA) , to measure and validate the bypass flow through the cartridge , and to measure the pump coast-down time during a simulated loss of pump flow (LOPF) event. This re port describes these tests in detail and provides the results.
.....................
2       APPLICABLE DOCUMENTS Al ist of applicable documents is provided below.
..........................
DOCUMENT NUMBER                                     DOCUMENT TITLE 30441 P00026         Target Cooling System Flow Test Procedure 30441 R00017         ANSYS Target Cartridge , Housing Structural Analysis Design Calculation Report 30441 R00019         Target System Cooling Calculation Report 30441 R00032         RE LAP Accident Analysis and FRAPTRAN Target Rod Transient Analysis Design Calculation Report 30441R00038           Computational Fluid Dynamics Analysis of Target Housing Design Calculation Report QAPD-30441-11          Quality Assurance Program Document QAPD-30441-11 Reactor-Based Molybdenum 99 Supply System (RB-MSS) 3        FULL SCALE SYSTEM FLOW TESTING Th e main objective of the target cooling system (TCS) flow testing was to validate the pressure drop through a target assembly, simulate a loss of pump flow (LOPF) event, and measure the by pass flow through the labyrinth seal.
...........................
: 3. 1     Description of Test Rig Th e TCS tests were conducted at the General Atomics (GA) Torrey Pines campus in Building G35. The target cooling system test loop (TCSTL) duplicates as best as possible the piping sy stem, location of target assembly at proper water depth, key flow instrumentation, and primary pa rameters to be implemented at MURR. Table 1 shows a parameter comparison between the T CSTL at GA and the reactor system at MURR.
.................... F-1 APPENDIX G -LABORATORY NOTEBOOK REFERENCE  
1
................
 
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Attachment 11 Target Cooling System Flow Test Report                                               30441 R000451B Table 1: GA Test Pool and MURR Pool Comparison Parameters                   GA Test Pool                         MURR Pool Diameter                       6 feet                             1O feet Depth                       27.5 feet                             30 feet Target Assembly Same as MURR                           25.8 feet Water Depth Number of Target 1 TA and 1 bypass valve                         2 Assemblies Pipe Size                 Same as MURR                           3inches Pump                     Same as MURR               Model : 3796 MTi Size: 3x3-13 Pressure drop simulated via Heat Exchanger                                                HX is part of cooling skid valve (HV-305) 5.5 nominal pH Conductivity                 5.5 nominal pH Water Chemistry
G-1 iii Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B LIST OF FIGURES Figure 1 -Target Cooling System Test Loop P&ID ...................................................................
                                        - 2 &#xb5;Siem                      Conductivity < 2 &#xb5;Siem The target assembly water depth (25 .8 feet) was measured from the top of the operating water level at MURR to the bottom of the TA. An underwater pressure transducer (PT-335 with+/- 0.1%
... 4 Figure 2 -3D Model of the Target Cooling System Test Loop Design .........................................
accuracy), was attached to the target inlet which is approximately three feet above the bottom of the TA.
5 Figure 3-GA Target Cooling System Test Loop Setup ............................................................... 6 Figure 4 -Gasket Seal Location ...................................................................................................
The process flow is detailed in Figure 1 with the piping and instrumentation diagram (P&ID).
7 Figure 5 -Bypass Flow Paths for Labyrinth Path and Cartridge Pins ........................................
Figures 2 and 3 show the TCSTL setup. It is important to note that the suction line in the TCSTL has the same overall size and liquid volume as the layout at MURR required to ensure proper pump priming. The supply line from the pump to the TA is slightly shorter in length compared to the MURR design and does not contain the main heat exchanger (HX). As a result, a valve (HV-305) was added to simulate the highest system pressure drop. The water pH and conductivity were tested weekly to ensure the water chemistry standards were maintained.               Appendix A specifies the equipment and instrumentation used for testing.
10 Figure 6 -Target Assembly Pressure Drop Test Results ...........................................
The test equipment in the TCSTL consists of:
..............
.. 12 Figure 7 -Pump Coast-down Results at Various Flows with 25% Margin on t.P .......................
13 Figure 8 -Bench Bypass Test Article Setup .............................................................................. 14 Figure 9 -Full Labyrinth Seal Bypass System Setup with Standpipe  
........................................ 15 Figure 10 -Full System Bypass Test Results ............................................................................ 17 LIST OF TABLES Table 1: GA Test Pool and MURR Pool Comparison  
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.... 2 Table 2 -Test Cases .......................................................................
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... 9 Table 3 -Pressure Drop Data Summary .................................................................................... 11 Table 4 -Bypass Test Loading Conditions and Requirements  
................................................... 15 Table 5 -Bypass Test Results .......................................................
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................ 16 iv Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B ACRONYMS Acronym Description GA General Atomics GPM Gallons Per Minute HX Heat Exchanger LOPF Loss of Pump Flow Mo-99 Molybdenum 99 MURR Missouri Univers i ty Research Reactor P&ID Piping and Instrumentation Diagram PSI Pounds per Square Inch PSIA Pounds per Square Inch Absolute PSID Pounds per Square Inch Differential PSIG Pounds per Square Inch Gauge TA Target Assembly TCS Target Cooling System TCSTL Target Cooling System Test Loop v
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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B 1 PURPOSE AND SCOPE As with all nuclear fission assemblies, cooling must be prov i ded to remove heat generated from sion reactions.
Validating the analysis of the target system cooling water flow behavior is vital ensuring proper function of the cooling system when it is installed in the MURR pool. The ecific purpose of these tests was to confirm the analysis of the flow and pressure drop through e target assembly (TA), to measure and validate the bypass flow through the cartridge , and to easure the pump coast-down time during a simulated loss of pump flow (LOPF) event. This port describes these tests in detail and provides the results. fis to sp th m re 2 APPLICABLE DOCUMENTS Al ist of applicable documents i s provided below. DOCUMENT NUMBER DOCUMENT TITLE 3 30441 P00026 Target Cooling System Flow Test Procedure 30441 R00017 ANSYS Target Cartridge , Housing Structural Analysis Design Calculation Report 30441 R00019 Target System Cooling Calculation Report 30441 R00032 RE LAP Accident Analysis and FRAPTRAN Target Rod Transient Analysis Design Calculation Report 30441R00038 QAPD-30441-11 Computational Fluid Dynamics Analysis of Target Housing Design Calculation Report Quality Assurance Program Document QAPD-30441-1 1 ReactorBased Molybdenum 99 Supply System (RB-MSS) FULL SCALE SYSTEM FLOW TESTING Th e main objective of the target cooling system (TCS) flow testing was to validate the pressure op through a target assembly, simulate a loss of pump flow (LOPF) event , and measure the pass flow through the labyrinth seal. dr by 3. 1 Description of Test Rig Th e TCS tests were conducted at the General Atomics (GA) Torrey Pines campus in Building 35. The target cooling system test loop (TCSTL) duplicates as best as possible the piping stem, location of target assembly at proper water depth, key flow instrumentation , and primary rameters to be implemented at MURR. Table 1 shows a parameter comparison between the G sy pa T CSTL at GA and the reactor system at MURR. 1 Attachment 11 Target Cooling System Flow Test Report 30441 R000451B Table 1: GA Test Pool and MURR Pool Comparison Parameters GA Test Pool MURR Pool Diameter 6 feet 1 O feet Depth 27.5 feet 30 feet Target Assembly Same as MURR 25.8 feet Water Depth Number of Target 1 TA and 1 bypass valve 2 Assemblies Pipe Size Same as MURR 3inches Pump Same as MURR Model: 3796 MTi Size: 3x3-13 Heat Exchanger Pressure drop simulated via HX is part of cooling skid valve (HV-305) Water Chemistry 5.5 nominal pH Conductivity 5.5 nominal pH -2 &#xb5;Sie m Conducti v ity < 2 &#xb5;Siem The target assembly water depth (25.8 feet) was measured from the top of the operating water level at MURR to the bottom of the TA. An underwater pressure transducer (PT-335 with+/- 0.1% accuracy), was attached to the target inlet wh i ch is approximately three feet above the bottom of the TA. The process flow is detailed in Figure 1 with the piping and instrumentation diagram (P&ID). Figures 2 and 3 show the TCSTL setup. It is important to note that the suction line in the TCSTL has the same overall size and liquid volume as the layout at MURR required to ensure proper pump priming. The supply line from the pump to the TA is slightly shorter in length compared to the MURR design and does not contain the main heat exchanger (HX). As a result, a valve (HV-305) was added to simulate the highest system pressure drop. The water pH and conductivity were tested weekly to ensure the water chemistry standards were maintained.
Appendix A specifies the equipment and instrumentation used for testing. The test equipment in the TCSTL consists of:
* One fiberglass surrogate pool
* One fiberglass surrogate pool
* One target assembly (consisting of a cartridge , diffuser , target housing , and 11 stainless steel surrogate target rods)
* One target assembly (consisting of a cartridge , diffuser, target housing , and 11 stainless steel surrogate target rods)
* One surrogate bypass valve (HV-200 shown in Figure 1)
* One surrogate bypass valve (HV-200 shown in Figure 1)
* One self-priming pump (refer to Appendix B for pump specifications and performance test from pump manufacturer)
* One self-priming pump (refer to Appendix B for pump specifications and performance test from pump manufacturer)
* Target cooling system piping (PVC), support structures and valves designed to mimic the setup at MURR. 2 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B
* Target cooling system piping (PVC), support structures and valves designed to mimic the setup at MURR.
* Instrumentation (including flow meters , pressure gauges , and an underwater pressure transducer).
2
* Transparent graduated standpipe. 3
 
--l Q) ..., cc Cl) -0 0 Large Q_ Vent ::I Valve cc Vent (f) '< (J) dear -t Cl) 3 .,, ,. Tube "'Tl ce* 0 t: _J L :E ..... J"P l pe 4* Pipe CD ........ --,, --l HV-305 Cl) N (J) -FT Pl 0 rut 110 335 ;o ca :r: Cl) 8 -0 CD Vent 0 ..... ::I. )> 0 0 " 0 Q) 0 .. (") 2" Flanged I Gauge ::J Fill Port i: SN: E4S2434 4" l'lpe 3 ca Cl) ::I -(/) --"' <ii Water Cooling Pump --"' 3 P*310 l it (/) ..... r-Instrumentation Legend 0 .g DPI -Differential Pressure Gauge lJ FT -Flow Meter Q<> Pl -Pressure Gauge a PT -Pressure Transmitter TT-RTD ,J 1 I I l. VJ 2" Aonged 0 Drain P ort --"' ;o 0 0 0 (]1 --OJ Attachment 11 Target Cooling System Flow Test Report Target Cooling Sydem -----r--:::
Attachment 11 Target Cooling System Flow Test Report                                   30441 R00045/B
l:.il W Pipin Bypass Valve ( V-200) GA lest Pool Die eter: 6 f ee t Depth 27.5 f ea t Target Assembly Main Cooling Pump 30441 R00045/B Figure 2 -30 Model of the Target Cooling System Test Loop Design 5 Attachment 11 Target Cooling System Flow Test Report Tranaparent Graduated Standpipe Target Cooling System P i ping Bypaaa Valve (HV-200) GA Ted Pool Target Aaaembly Location Figure 3 -GA Target Cooling System Test Loop Setup 3.2 Test Procedures 3.2.1 Target Assembly Pressure Drop Test 30441 R00045/B The object i ve of this test was to verify the pressure drop from the target inlet through the diffuser outlet as a function of flow rate. Test flows values were set to 85%, 100% and 115% of the nominal target assembly flow rate ( 107 GPM at 100% ), which is the calculated nominal flow rate from analysis document 30441 R00021. This flow rate was measured to within the +/-0.5% accuracy of the flowmeter used for the tests. A gasket seal was placed on the TA upper and bottom cartridge flanges to ensure that accurate flow and pressure drop measurements were made by eliminating these as potential bypass paths. Figure 4 shows the uppe r and lower gasket seal locations.
* Instrumentation (including flow meters, pressure gauges, and an underwater pressure transducer).
The diffuser outlet pressure was calculated by taking the measured absolute pressure reading from PT-335 and subtracting 14.7 psi (to convert the pressure from absolute to 6 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B gauge) and 9.9 psi (to account for the 22.8 feet of static water head above the transducer). The raw data from the pressure transducer were automatically recorded on a data logger and are summarized i n Appendix C. Procedure:
* Transparent graduated standpipe.
D i ffu s e r Lower F l a nge C artri d g e Upper Flange Upper Gasket Seal Lower Gasket Sea l C art r i dge Bottom F l ange P l enu m P l ate T arge t In l et Figure 4 -Gasket Seal Locatio n 1. Install the target assembly into the pool. Underw at e r P ressure T r an sd uce r L ocat ion (PT-335) 2. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged. 3. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height = 25.8 feet). 7 Attachment 11 Target Cooling System Flow Tes t Report 30441 R00045/B 4. Open system valves and control frequency of pump to 85% flow through the system. 5. Turn on pump. 6. Record start and stop times t o calculate duration. Manually record system pressures , pressure drops , and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals.
3
Run flow test for 15 min. 7. Turn off pump. 8. Control frequency of pump to increase the flow rate to 100% flow through the system. 9. Turn on pump. 10. Record start and stop times to calculate duration. Manually record system pressures , pressure drops , and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals.
 
Run flow test for 15 min. 11. Turn off pump. 12. Control frequency of pump to increase the flow rate to 115% flow through the system. 13. Turn on pump. 14. Record start and stop times to calculate duration.
                                                                                                                                        --l Q)
Manually record system pressures , pressure drops , and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically a t 1 sec intervals. Run flow test for 15 min. 15. Turn off pump. 16. Secure all equipment.
Large cc Cl) 0 0
3.2.2 Pump Coast-down Test The objective of this test was to record the flow rate entering a target assembly as a function of time during a simulated loss of pump flow (LOPF) event at room temperature with the decay heat removal valves in the closed position. Valve HV-320 was adjusted in order to test for the wors t case system pressure drop by analysis in document 30441 R00019. This system pressure drop analysis has 25% margin built into it for the 85% and 100% flow cases and 13% margin for the 115% flow case. The margin on the 115% case was limited by pump performance. Table 2 provides a summary of the flow and pressure drop parameters used for this test. The decay heat removal valve (FV-105), in the test rig remained closed during this test to ensure all the flow went through the target assembly. Procedure:
Q_
: 1. Install the target assembly into the pool. 8 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B 2. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged. 3. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height 25.8 feet). 4. Open all system valves and control frequency of pump to 85% flow through the target assembly.
Vent Valve    ~-                                                  Vent
: 5. Turn on pump. 6. Open all bleed valves to release any trapped air. Once all the air is released , close the bleed valves. 7. Adjust valves HV-100 and HV-200 to have equal flow for each flow meter. 8. Adjust valve HV-305 and increase the frequency of the pump to obtain the expected L'.P (see Table 2) across Pl-335 and Pl-302. 9. Manually record system pressure data from the instrumentation gauges (Pl-335, Pl-302 , and DPl-310). 10. Ensure data loggers are connected to the flow meters. 11. Turn off power to the pump. 12. Record flow rate manually at 1 sec intervals until the flow reaches 0 GPM. Flow rate will also be recorded electronically at 1 sec intervals.
::I cc (f) dear t ~Graduated
: 13. Turn on pump. 14. Repeat steps 7-12 for the 100% and 115% flow cases shown in Table 2. Table 2 -Test Cases Test Case Description Expected f1P Source (psid) 85% Flow with 25% Margin on tiP
                                                            ,.      Tube (J)
* 30441R00019 100% Flow with 25% Margin on L'.P
Cl) 3 ce*
* 30441R00019 115% Flow with 13% Margin on tiP
t:
* Pump limit 3.2.3 Labyrinth Seal Bypass Test The objective of this test was to measure the bypass flow between the cartridge bottom flange and the target housing lower plenum. The full scale test was performed with the locking mechanism torqued to 30 in-lbs (each bolt). The lower gasket seal (Figure 4) was removed and the outlet of the diffuser was blocked such that the water volume lost was through the labyrinth seal and the pins in the cartridge.
                                                                                                                                        "'Tl 0
The expected bypass through the cartridge pins is small (much less than 1 GPM), as the internal pressure should help " self-seal" the leak path (Figure 5). The leak through the pins and the leak through the labyrinth seal were measured as a single leak. 9 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Procedure: Figure 5 -Bypass Flow Paths for Labyrinth Path and Cartridge Pins 1. Remove the cartridge from the pool. 2. Block the diffuser outlets to prevent water flow. 3. Remove the lower gasket seal on the cartridge bottom f l ange. 4. Insert cartridge back into the housing inside of the pool. 5. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged. Torque down cartridge locking mechanism to 30 in-lbs. 6. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height= 25.8 feet). 7. Torque down cartridge locking mechanism to 30 in-lbs. 8. Turn on pump. 9. Fill the pipe going to the target assembly with water. The transparent graduated standpipe should be filled to approximately 42 inches of water (Figure 9). 10. Turn off pump and close valves HV-200 and HV-302. 11. Pressurize the pipe going to the target assembly with compressed air to the value obtained for the pressure drop th r ough the target assembly for the 115% flow case , which is the highest pressure and flow conditions the cartridge will ever see. 12. Measure and record the water drop in the transparent standpipe as a function of time ensuring static pressure stays above the required value. 10 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B 13. Let system run for 30 sec. 14. Secure all equipment.
    .....                                                     _J L CD                                      J"Plpe                                    4* Pipe                                           :E
4 TEST RESULTS 4.1 Target Assembly Pressure Drop Test The design ana1ysis of the pressure drop from the target inlet through the diffuser outlet detailed in document 30441 R00038 has been validated by agreement to within 2% of the expected range of the extrapolated test data. The tests were run at slightly higher volumetric flow rates when compared to the values used in the analysis.
    ........                                                 --,,                                                                     --l HV-305             Cl)
The polynom i al equation shown in Figure 6 was obtained from the test data in Appendix C -Raw Pressure Drop Data Summary. The polynomial equation was used to determine the pressure drop at 20&deg;C for each corresponding flow rate. The results are shown in Table 3. All tests at GA were run with an inlet temperature to the target of 20&deg;C. During normal operation at MURR however , the target inlet temperature will be 29&deg;C with a TA average temperature of 34&deg;C , which was the temperature used in the ANSYS-FLUENT analysis.
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To account for the temperature difference between the operating conditions at MURR and the test conditions at GA, the calculation detailed in Appendix D was applied to extrapolate the test va l ues to a system with an average temperature of 34&deg;C. Table 3 lists the test values at 20&deg;C, and both the extrapolated test values and the analysis prediction values at a TA average temperature of 34 &deg;C. The test data extrapolation resulted in a less than 2% decrease in the pressure drop values when adjusting the temperature from 20&deg;C to 34&deg;C. The flow values used in the analysis did not include the bypass effect and assumed all the flow would go through the cartridge to cool the target rods. For 100% flow (107 GPM) at 34 &deg;C average TA temperature, ANSYS-FLUENT predicted
N FT rut                                 110 Pl 335 0
* psi and the extrapolated test value at 34&deg;C average TA temperature yielded* psi. The difference between the two values is 1.5%. Figure 6 shows the pressure drop through the TA as a function of flow rate for both the analysis and test values. It also shows that the pressure drop values are within the design limit of* psi for the target housing, which has built in margin (refer to Table 2 in document 30441 R00017 for more details).
                                                                                                                                  ~    ;o ca                               8
For reference , the test data sheets have been provided in Appendix E-Target Assembly Pressure Drop Test Data Sheets. Table 3 -Pressure Drop Data Summary t.P at t.P at t.P OP Source 91GPM 107 GPM 123 GPM (psi) (psi) (psi) Test Va lu es (20&deg;C) * *
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* Test Va l ues (Extrapo l ated t o 34&deg;C) * *
                                                                                                                                      -0 CD                         Vent
* ANSYS-FLUENT Prediction (34&deg;C) * *
                                    ~
* 11 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B .... .,., "' "' .. as a Function of Flow Rate y
0 0                                                                                                                                   ::I. )>
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  .g                                                                                       DPI - Differential Pressure Gauge lJ                                                                                               FT - Flow Meter Q<>
a                                                                                              Pl - Pressure Gauge PT - Pressure Transmitter TT-RTD
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Attachment 11 Target Cooling System Flow Test Report                                       30441 R00045/B Target Cooling                                            Main Cooling Sydem -----r--:::l:.ilW                          Pump Pipin Bypass Valve
( V-200)
GA lest Pool Die eter: 6 fee t Depth 27.5 feat Target Assembly Figure 2 - 30 Model of the Target Cooling System Test Loop Design 5
 
Attachment 11 Target Cooling System Flow Test Report                                             30441 R00045/B Tranaparent Graduated Standpipe Target Cooling System Piping Bypaaa Valve (HV-200)
GA Ted Pool Target Aaaembly Location Figure 3 - GA Target Cooling System Test Loop Setup 3.2     Test Procedures 3.2.1   Target Assembly Pressure Drop Test The objective of this test was to verify the pressure drop from the target inlet through the diffuser outlet as a function of flow rate. Test flows values were set to 85% , 100% and 115% of the nominal target assembly flow rate ( 107 GPM at 100% ), which is the calculated nominal flow rate from analysis document 30441 R00021 .         This flow rate was measured to within the +/-0.5%
accuracy of the flowmeter used for the tests. A gasket seal was placed on the TA upper and bottom cartridge flanges to ensure that accurate flow and pressure drop measurements were made by eliminating these as potential bypass paths . Figure 4 shows the upper and lower gasket seal locations. The diffuser outlet pressure was calculated by taking the measured absolute pressure reading from PT-335 and subtracting 14.7 psi (to convert the pressure from absolute to 6
 
Attachment 11 Target Cooling System Flow Test Report                                                   30441 R00045/B gauge) and 9.9 psi (to account for the 22.8 feet of static water head above the transducer) . The raw data from the pressure transducer were automatically recorded on a data logger and are summarized in Appendix C.
Target Inlet Underwater Pressure Transducer Location (PT-335)
Diffuse r Lower Fla nge C artrid g e Upper Flange Upper Gasket Seal Lower Gasket Seal C artridge Bottom Flange Plenum Plate Figure 4 - Gasket Seal Location Procedure:
: 1. Install the target assembly into the pool.
: 2. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged .
: 3. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height = 25.8 feet) .
7
 
Attachment 11 Target Cooling System Flow Test Report                                           30441 R00045/B
: 4. Open system valves and control frequency of pump to 85% flow through the system.
: 5. Turn on pump .
: 6. Record start and stop times to calculate duration .         Manually record system pressures, pressure drops, and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals. Run flow test for 15 min.
: 7. Turn off pump.
: 8. Control frequency of pump to increase the flow rate to 100% flow through the system.
: 9. Turn on pump.
: 10. Record start and stop times to calculate duration .       Manually record system pressures, pressure drops, and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals. Run flow test for 15 min .
11 . Turn off pump.
: 12. Control frequency of pump to increase the flow rate to 115% flow through the system.
: 13. Turn on pump .
: 14. Record start and stop times to calculate duration.         Manually record system pressures , pressure drops, and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals. Run flow test for 15 min.
: 15. Turn off pump.
: 16. Secure all equipment.
3.2.2   Pump Coast-down Test The objective of this test was to record the flow rate entering a target assembly as a function of time during a simulated loss of pump flow (LOPF) event at room temperature with the decay heat removal valves in the closed position . Valve HV-320 was adjusted in order to test for the worst case system pressure drop by analysis in document 30441 R00019. This system pressure drop analysis has 25% margin built into it for the 85% and 100% flow cases and 13% margin for the 115% flow case . The margin on the 115% case was limited by pump performance . Table 2 provides a summary of the flow and pressure drop parameters used for this test. The decay heat removal valve (FV-105), in the test rig remained closed during this test to ensure all the flow went through the target assembly.
Procedure:
: 1. Install the target assembly into the pool.
8
 
Attachment 11 Target Cooling System Flow Test Report                                           30441 R00045/B
: 2. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged .
: 3. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height 25.8 feet).
: 4. Open all system valves and control frequency of pump to 85% flow through the target assembly.
: 5. Turn on pump.
: 6. Open all bleed valves to release any trapped air. Once all the air is released , close the bleed valves.
: 7. Adjust valves HV-100 and HV-200 to have equal flow for each flow meter.
: 8. Adjust valve HV-305 and increase the frequency of the pump to obtain the expected L'.P (see Table 2) across Pl-335 and Pl-302.
: 9. Manually record system pressure data from the instrumentation gauges (Pl-335, Pl-302 , and DPl-310).
: 10. Ensure data loggers are connected to the flow meters.
: 11. Turn off power to the pump.
: 12. Record flow rate manually at 1 sec intervals until the flow reaches 0 GPM . Flow rate will also be recorded electronically at 1 sec intervals.
: 13. Turn on pump.
: 14. Repeat steps 7-12 for the 100% and 115% flow cases shown in Table 2.
Table 2 - Test Cases Expected f1P Test Case Description                           Source (psid) 85% Flow with 25% Margin on tiP 100% Flow with 25% Margin on L'.P
                                                            **         30441R00019 30441R00019 3.2.3 115% Flow with 13% Margin on tiP Labyrinth Seal Bypass Test
* Pump limit The objective of this test was to measure the bypass flow between the cartridge bottom flange and the target housing lower plenum .         The full scale test was performed with the locking mechanism torqued to 30 in-lbs (each bolt). The lower gasket seal (Figure 4) was removed and the outlet of the diffuser was blocked such that the water volume lost was through the labyrinth seal and the pins in the cartridge. The expected bypass through the cartridge pins is small (much less than 1 GPM), as the internal pressure should help "self-seal" the leak path (Figure 5) . The leak through the pins and the leak through the labyrinth seal were measured as a single leak.
9
 
Attachment 11 Target Cooling System Flow Test Report                                           30441 R00045/B Figure 5 - Bypass Flow Paths for Labyrinth Path and Cartridge Pins Procedure:
: 1. Remove the cartridge from the pool.
: 2. Block the diffuser outlets to prevent water flow.
: 3. Remove the lower gasket seal on the cartridge bottom flange .
: 4. Insert cartridge back into the housing inside of the pool.
: 5. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged . Torque down cartridge locking mechanism to 30 in-lbs.
: 6. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height= 25.8 feet).
: 7. Torque down cartridge locking mechanism to 30 in-lbs.
: 8. Turn on pump.
: 9. Fill the pipe going to the target assembly with water. The transparent graduated standpipe should be filled to approximately 42 inches of water (Figure 9).
: 10. Turn off pump and close valves HV-200 and HV-302 .
11 . Pressurize the pipe going to the target assembly with compressed air to the value obtained for the pressure drop through the target assembly for the 115% flow case, which is the highest pressure and flow conditions the cartridge will ever see .
: 12. Measure and record the water drop in the transparent standpipe as a function of time ensuring static pressure stays above the required value .
10
 
Attachment 11 Target Cooling System Flow Test Report                                                 30441 R00045/B
: 13. Let system run for 30 sec.
: 14. Secure all equipment.
4       TEST RESULTS 4.1     Target Assembly Pressure Drop Test The design ana1ysis of the pressure drop from the target inlet through the diffuser outlet detailed in document 30441 R00038 has been validated by agreement to within 2% of the expected range of the extrapolated test data. The tests were run at slightly higher volumetric flow rates when compared to the values used in the analysis. The polynom ial equation shown in Figure 6 was obtained from the test data in Appendix C - Raw Pressure Drop Data Summary. The polynomial equation was used to determine the pressure drop at 20&deg;C for each corresponding flow rate. The results are shown in Table 3. All tests at GA were run with an inlet temperature to the target of 20&deg;C. During normal operation at MURR however, the target inlet temperature will be 29&deg;C with a TA average temperature of 34&deg;C , which was the temperature used in the ANSYS-FLUENT analysis. To account for the temperature difference between the operating conditions at MURR and the test conditions at GA, the calculation detailed in Appendix D was applied to extrapolate the test va lues to a system with an average temperature of 34&deg;C. Table 3 lists the test values at 20&deg;C, and both the extrapolated test values and the analysis prediction values at a TA average temperature of 34 &deg;C. The test data extrapolation resulted in a less than 2% decrease in the pressure drop values when adjusting the temperature from 20&deg;C to 34&deg;C.
The flow values used in the analysis did not include the bypass effect and assumed all the flow would go through the cartridge to cool the target rods. For 100% flow (107 GPM) at 34 &deg;C average TA temperature, ANSYS-FLUENT predicted
* psi and the extrapolated test value at 34&deg;C average TA temperature yielded
* psi. The difference between the two values is 1.5%. Figure 6 shows the pressure drop through the TA as a function of flow rate for both the analysis and test values. It also shows that the pressure drop values are within the design limit of
* psi for the target housing, which has built in margin (refer to Table 2 in document 30441 R00017 for more details). For reference , the test data sheets have been provided in Appendix E- Target Assembly Pressure Drop Test Data Sheets.
Table 3 - Pressure Drop Data Summary t.P at           t.P at         t.P OP Source                   91GPM           107 GPM       123 GPM (psi)           (psi)         (psi)
Test Va lu es (20&deg;C)
Test Va lues (Extrapo lated t o 34&deg;C)
ANSYS-FLUENT Prediction (34&deg;C) 11
 
Attachment 11 Target Cooling System Flow Test Report                                                                             30441 R00045/B
                                  ~P as a Function of Flow Rate y
* 0.00109x' + 0.00976x
* 0.00109x' + 0.00976x
* 0.00111 R' =0.99998 .... -*:****: f .. .... **** .... .. ***:**::*::*"*::. * ..... *
* 0.00111 R' =0.99998
* T*st Values (20'C) ...
                                                                                                        .... -*:****:f .
r;;,d,l
                                                                                                                                      ~
* T*st Values (20'C)
* ANSYS-fLUENT Pr*diction (34'C)
* ANSYS-fLUENT Pr*diction (34'C)
* Extrapolot*d T*st Va lues (34'C) -----Target Housmg D*sien Limit ..................................
* Extrapolot*d T*st Values (34'C)
0 Flow Rat* {G PM) Figure 6 -Target Assembly Pressure Drop Test Results 4.2 Pump Coast-down Test Results A loss of pump flow (LOPF) event can be caused by loss of electrical power , pump failure , or system blockage.
                                                                                            ----- Target Housmg D*sien Limit
This test only covered the loss of electrical power event. The LOPF impacts both target assemblies and includes pump coast-down and fluid momentum to ease the transition from forced flow to natural circulation flow. Although the decay heat removal valves in the MURR system can be opened to improve the natural circulation cooling during LOPF , the butterfly valve (FV-105) remained closed during this test. This test measured the amount of time it takes the pump to coast down to 15% flow when the pressure drop through the system is increased to the highest value by analysis which has 25% margin (see Table 2 for values). The pump coast-down times for three different flow cases are shown in Figure 7. It took approximately 9 seconds for the flow rate to decrease significantly from 100% flow (-112.8* GPM -see Table 4 for flow values with bypass flow included) to about 15% flow (16.2 GPM). 12 r;;,d,l Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Pump Coast-Down at Va r ied Flow Cases with 25% Margin on 11P ********* .... **** ... ........... ***. . ... **.. "* .... ................. "*. ** ... ***.... . ... * ........ ******...
            ..................................0 Flow Rat* {G PM)
"******** ... **.. * .. .... . ....... .. ** .............................. .. **. .. .. ** .... * ..* : ::::. ; :.:::: 2 3 4 Time * ....
Figure 6 - Target Assembly Pressure Drop Test Results 4.2         Pump Coast-down Test Results A loss of pump flow (LOPF) event can be caused by loss of electrical power, pump failure , or system blockage. This test only covered the loss of electrical power event. The LOPF impacts both target assemblies and includes pump coast-down and fluid momentum to ease the transition from forced flow to natural circulation flow . Although the decay heat removal valves in the MURR system can be opened to improve the natural circulation cooling during LOPF , the butterfly valve (FV-105) remained closed during this test.
* 85%Floww/M argj n
This test measured the amount of time it takes the pump to coast down to 15% flow when the pressure drop through the system is increased to the highest value by analysis which has 25%
* 1 0 0% A o w w/M a r'i)n * ........ 115% A o w w/M a rgjn . :: ::;,::;.::;
margin (see Table 2 for values) . The pump coast-down times for three different flow cases are shown in Figure 7. It took approximately 9 seconds for the flow rate to decrease significantly from 100% flow (-112 .8* GPM - see Table 4 for flow values with bypass flow included) to about 15%
o ....... *;.** .. *::.*:********* ........ . 6 7 8 Figu r e 7 -Pump Coast-down Results at Various Flows with 25% Margin on f'P 4.3 Labyrinth Seal Bypass Test Results 9 A bench test was initially conducted to obtain the required torque value for the final system to produce an acceptable leak rate through the labyrinth seal. The results from the bench test demonstrated the labyrinth seal required a torque of 30 in-lbs to each bol t in the final system in order to operate below the maximum 5% total flow. An image of the bench test article can be seen in Figure 8. The t orque value from the bench tests was then applied and used on the locking mechanism in the full scale test. 13 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Figure 8-Bench Bypass Test Article Setup Figure 9 shows the setup for the full scale test. Similar to the bench test, a transparent standpipe was installed in the location shown in the P&ID. The standpipe is made from clear PVC to be able to measure the water that is going through labyrinth seal and the cartridge pins. 14 Attachment 11 Target Cooling System Flow Test Report Plugged Di ff user P -18.5 p si h ere Init i al Water Le v e l
flow (16 .2 GPM).
,._,,,__Qoet n-*10 .:. 30441 R00045/B S t andp i p e Figure 9 -Full Labyrinth Seal Bypass System Setup with Standpipe The max i mum allowed bypass for the three different f l ow cases a nd the pressure requirements for the labyrinth seal are summarized in Table 4. The tests were run at the wors t case pressure condition which was derived from the 115% case shown in Table 4. The tests ensure that the pressure was always greater than 17.4 psi, for i nstance Run 1 was executed at 18.6 psi (Table 5). The cartridge was unlocked , lifted out of its s eating position , re-seated and l ocked back down again to thirty in-lbs fo r each test to simulate and measure the consistency of the seal through several runs. Eleven cartridge lifting and re-seating operations were performed and resu lt s can be seen in Figure 10. Table 4 -Bypass Test Loading Conditions and Requirements Flow Rate 5%Max Cartridge Pressure Flow Case Allowed Bypass (GPM) (GPM) Report 30441R00017 85% 95.9* 4.8 -100% 112.8* 5.6 -115% 129.7* 6.5 -*Flow values include the 5% maximum bypass f l ow through the cartridge pins and labyrinth seal. 15 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Table 5 -Bypass Test Results 9/1 2/2 017 9/1 4/2017 9/15/201 7 9/17/17 Run 1@ Run 2@ Run3@ Run4@ Run 5@ Run 6@ Run 7@ Run8@ Run9@ Run 10 Run 11@ 18.6 psi 18.8 psi 19.2 psi 19.0 psi 18.8 psi 19.0 psi 18.6 psi 18.9 psi 18.8 psi @18.7 18.6 psi back back back back back back back back back psi back back pressure pressure pressure pressure pressure pressure pressure pressure pressure pressure pressure GPM GPM GPM GPM GPM GPM GPM GPM GPM GPM GPM 3.78 4.43 3.96 4.23 3.41 3.38 3.43 3.21 3.29 4.23 3.09 The tests confirm that the labyrinth path slows the amount of water bypassing the cartridge , satisfying the maximum design requirement of 5%. The allowed bypass at 115% flow case is 6.5 GPM and the highest bypass measured in the tests is less than 4.5 GPM, including the cartridge pins. The average of the eleven runs is 3. 7 GPM prov i ding margin to the design requirement.
12
16 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B 7 6 5 Cl. "'C Ql ... ::::s "' "' Ql 3 "' c. > CCI 2 1 0 Full System Bypass Test Results for 115% flow for a torque of 30in-lbs 6.5 1 Runs Run 1 @ 18.6 psi back pressure Run 2 @ 18.8 psi back pressure Run 3 @ 19.2 psi back pressure Run 4 @ 19.0 psi back pressure Run 5 @ 18.8 ps i back pressure Run 6 @ 19.0 psi back pressure Run 7 @ 18.6 psi back pressure Run 8 @ 18.9 psi back pressure Run 9 @ 18.8 psi back pressure Run 10@ 18.7 psi back pressure Run 11 @ 18.6 psi back pressure -.allowed bypass (5%) GPM Figure 10 -Full System Bypass Test Results 17 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX A -Equipment and Instrumentation Used in Testing Equipment/
 
Instrument Make I Model Measuring Range Pressure Gauge (Pl-335) OMEGA Pressure Range: +/-15 psi PN: DPG409-015CG Accuracy: +/- 0.08% Pressure Gauge (Pl-302) OMEGA Pressure Range: 0 to 60 psi PN: DPG 1001 B-60G Accuracy: +/- 0.10% Pressure Gauge (Pl-308) OMEGA Pressure Range: 0 to 60 psi PN: DPG1001 B-60G Accuracy: +/- 0.10% Analog Pressure Gauge Ashcroft Pressure Range: 0 to 30 psi (E452434)
Attachment 11 Target Cooling System Flow Test Report                                                                                                                 30441 R00045/B Pump Coast-Down at Varied Flow Cases with 25% Margin on 11P
PN: 45 1082AS 02L XC4 30# Accuracy: +/- 0.25% Differential Pressure OMEGA Pressu r e Range: 0 to 30 psi Gauge (DPl-302)
                ********* ....                                                                                                           *.. ..
PN: DPG409-030DWU Accuracy:  
* 85%Floww/Margjn
+/- 0.08% Differential Pressure OMEGA Pressure Range: 0 to 30 psi Gauge (DPl-310)
* 100% Aow w/Mar'i)n
PN: DPG409-030DWU Accuracy: +/- 0.08% Differential Pressure OMEGA Pressure Range: 0 to 50 ps i Gauge (DPl-320) PN: DPG409-050DWU Accuracy:  
                                                                                                                                        *........ 115% Aow w/Margjn
+/- 0.08% Pressure Transmitter Keller Preciseline Pressure Range: 0 to 100 psi (PT-335), DL PN: 0308.00301.051307.54 Accuracy: +/- 0.1 % Flow Meter McCromete r Flow Range: (FT-100), DL PN: VW03AE14AA 100 GPM to 140 GPM Accuracy: +/- 0.5% Flow Meter McCrometer Flow Range: 100 GPM to 140 (FT-110), DL PN: VW03AE14AA GPM , Accuracy: +/- 0.5% Speed: 1770 RPM Goulds Pumps Flow: 250 GPM Pump Model: 3796 MT i Head: 102 FT (P-310) Pump Size: 3x3-13 Effic i ency: 48.0% Self-Priming Pump Total Power: 13.5 HP NPSHr: 7.8 FT Allen Bradley 4 80 VAC , 3 Phase VFD PowerFlex 525 AC Drive 25 HP , 18.5 kW Normal Duty PN: 25B-D037N 1 14 20 HP , 1 5 kW Heavy Duty A-1 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX B -Goulds Pump Specification and Test Data Mode l: 3796 S i ze: 3x3-1 3 Group: MT i 60Hz RPM: 1770 Stages: 1 Jobllnq.No. : Opti-Temp-HEX F eed Pumps Purcnaser: OPTITEMP Eoouser: Optl-T emp Issued by: Brandon Bond Rev.: 0 ttemlEqu p.No. : ITE M 00 1 (B ase Offer) Ouo t a tJon No. : DF 1 6-10*25 01 Date: 0112512017 Service: Self Priming to HEX Skid OrderNo.: 60586f)g Certified By
                                                                                        **. ..         . **....                                                                       ~
* Brandon Bond SN/SO: N736H00 3 O p e r a tin g Co n dit i ons P u mp Performance Liquid: Water P u bl l Shecl Efficiency
                                                                                                  * . *: :::: . ;:.::::                                                              ~
: 48.5 % Suction Speci11c Spee<!: 5 , 018 gprn(US) tt 56.9 gpm Temp.: 1 10.0 deg F Ra ted Pump Efficiency:
                                                                                                                        . :: ::;,::;.::;o 2                      3                      4                    6            7                      8                  9 Time ( s ~)
46.0 % M*n. HydrauUc FIOw: S.G.Nisc.: 1.000/1.000 cp Rated Total Power: 13.5 hp M in. Thennal Flow: Flow: 250.0 gprn TOH: 1 02.on NPSHa: SOlta slZe: Vapor Press: Non-Overloading P ower: Imp. Dia. F i rst 1 S1g (s): NPSH r: Max. Soll<ls Size: 15.4 hp 11.7500 in 7.Sn 0.3750 1 n N otes: 1. Eleva t ed temperature effects on performance are not ind uded. C
Figure 7 - Pump Coast-down Results at Various Flows with 25% Margin on f'P 4.3    Labyrinth Seal Bypass Test Results A bench test was initially conducted to obtain the required torque value for the final system to produce an acceptable leak rate through the labyrinth seal. The results from the bench test demonstrated the labyrinth seal required a torque of 30 in-lbs to each bolt in the final system in order to operate below the maximum 5% total flow. An image of the bench test article can be seen in Figure 8. The torque value from the bench tests was then applied and used on the locking mechanism in the full scale test.
* TR l rnGAL PUMP CHAAAC TEAIST I CS m (@GOOLDS PUMPS Po-coru lliftl.H I U.S1 Bb ulspowe r 7 0 ft 60 :200 ,-0 -i--. 14 40 !""-... --./ i 2 c 1 " N-30 I l.::::: I'---i"'--..' 11-75in 60 1 011 ---r----.. Shut on Hea<l: % SUsp. SO I ds {bywt.g): Based on COS 23 11-3 R P M 1770 Mode l 3796 Size. 3X3-t3 . . I I I 21} 60 t ---" -----h. I. I WoJ ___. i.--vv 1 -*--I ----I v 4
13
..... v ' -I 0 'b -------()() 200 300 400 500 600 700 800 15 50 75 100 125 150 1 75 ViScosity corrections nave been per1ormed In accordance with HI 9.6.7-20 1 5 B-1 NIA 121.1 n '!:. 80 -7 0 50 4 0 30 20 ----10 ft -1 5 I 10 ,J 5 0 gpm m'/hr m 6 4 2 0 PI AM 1 PU T S l IST
 
* l llOI C O J[f lOOll H OS( CONN&#xa3;C1 I A C LE Cl[(l R CU LATI Otl f llOll ,. C A$[ 10 $[*1 l NO s 1 l[ UP ( on PURPOS( ,.., I D[!.CllPTIOtl SIATUS T OR US( BT I , , u,, I ,, , ... llOlJ .... u r 112 "P l r f lllCR Pl UGG C O CUSlOll (R .OS I f C ILO* itu h , 1 1' i"' r -112 TB NP l r CASl"G OR A IN Pl UGG E O CUS T Oll E R fl 11 tM:iS I **lt I-. r e (AS IMG 6fP A SS 112 MP l 1 PlU 01 GO\ILOS rr 112 NP l I 6 (ARt*G f hN( DRA I N Pl UGG E O CUSIOll E R ff MP1 ' Oi l f Ill Pl UGG E O CUSIOll&#xa3;R f-----24 oo-i---22 63 6 75 [ 6 I 0) I 5 7 5 J I I 1 ) OJ I "' APPROX. i--3 , 75 /i llSS 1 SO* f f -6 63 l" 01SCHAqG[ I l 68 J 1951 131*ss r r APPROX. COUPLI N G ,--f--...
Attachment 11 Target Cooling System Flow Test Report                                              30441 R00045/B Figure 8- Bench Bypass Test Article Setup Figure 9 shows the setup for the full scale test. Similar to the bench test, a transparent standpipe was installed in the location shown in the P&ID. The standpipe is made from clear PVC to be able to measure the water that is going through labyrinth seal and the cartridge pins .
i* sucr1G* CAllBON S TH l n:: Tl
14
* I l I. 50 ' &. 00 (292 1 y l [ 1521 .....,. _ _j_ ------:.. -------->--I 25 4 I t I
 
* I II I 'I ! ::!l t I 4 I . i I 4. 13+/-. 38 & . 00 l I I &.00 4 1 3 7S H O L ES [ 1521 [ 52 1 [ 1051 (105:!:9 l .__, 5. 00 --49. 50 , ,__,_25 [ 381 J 11257 1 D2 l ' 52. 00 I I 32 I N0 T&#xa3;S fl ANG[ S CONI ORN ro *NSI S l ANOlADS DOLi H O LE S S U.lOO ll 1816. H EEL O R 816. I R OMI ROTAll(),11 cc w vr c w c o fROM COUPLING [ND. Dlll(NSION.lL I Ol[A.lN(( 0 P1PtD CONN[CllOllS IS :!: 0 )0 1 1 3) [IC E PI fOR PUMP SUCllON A 0 DI ROUllNG Of P!P[l l E S IS APnOJIWA T( A N O MAT V A R! Af l!R ASS C M Ll R (f(R 0 M t C H AN IC.ll S C Al DRAWING f OR G LA*D 0(1.lll If IGM 1 5 l{oGHIS *Rt I l(W *&#xa3;1 ORr L8S tG 1es I G. , . ., '11 l" '1$ Ill! COUl't tllG I 1 I 1 OflV C R 110 *11 110 111 8*S C PL AI( olD IS llD .. IO ll l at* <ti .,, lit (CO.P t ltK. SP[Cl f IC U 10.S 1.8 tOOOS S*l!; I* I P C* SC G A D PRO*o O C O* TIS 00 "&deg; D "'IC R**L C4ll!Qlt S HCL *J (HU l(A I $(Al $P f (1 f l(All01$ MI R J()H.* CU*[ U PC SollGU C A GIHD I,,[. r 1uSH OU(llC M 0 0 11 ot"u srtc 11 ''" *o*s *I R *E v POllO It P f hJI( 1161 P *S I J "' 180D M(Ul H 'fO!IS oa l lC\Olt l l. $1ttll IQlll ll U ,_ (Mlll C&I P tl lll l (1 11 (1 (1(! ll()O[l * )T,.  
Attachment 11 Target Cooling System Flow Test Report                                                  30441 R00045/B P - 18.5 p si here Initial Water Level Ofl*~~G-..
., , Sil[ JU*IJ l *C*l *OOll 11000 OIL 8 1 0 1 116 " t*OG l l0&#xa3;*1
n-,._~
* 8*l ll8"l B*S&#xa3;Pt"C C*ST o t()ll ((R llfl lO rOt (()1l$t RVCll()1l OtlL 1 WM ll S*G.*I D UIJllll ,,,,111 C U S H lll[t D A U .......,._  
                                                          ,._,,,__Qoet
.., , .. CkU>> SO!l:ll No: N7J6Hl0) No 605lll69 IOOM No J lEM00 1 E l'ld i..-O p 1H-S-lot s.ii ......_._;_
                                                        " - ~tt n-*10 Standpip e Plugged Diffuser Figure 9 - Full Labyrinth Seal Bypass System Setup with Standpipe The maximum allowed bypass for the three different flow cases and the pressure requirements for the labyrinth seal are summarized in Table 4. The tests were run at the worst case pressure condition which was derived from the 115% case shown in Table 4. The tests ensure that the pressure was always greater than 17.4 psi, for instance Run 1 was executed at 18.6 psi (Table 5). The cartridge was unlocked , lifted out of its seating position , re-seated and locked back down again to thirty in-lbs for each test to simulate and measure the consistency of the seal through several runs . Eleven cartridge lifting and re-seating operations were performed and resu lts can be seen in Figure 10.
1a HEX -u PUP OU T LIN[ DRAWING MOD E L 3796 GOUl.m ..... 0, , .. 1 IO ll* t.t 01 (l\IOIS II I ,,_, :::" ,,, , ,,, I I I (Ol'"tGftl
Table 4 - Bypass Test Loading Conditions and Requirements 5%Max Flow Rate                                    Cartridge Pressure Flow Case                                Allowed Bypass (GPM)                                     Report 30441R00017 (GPM) 85%                  95.9*                         4.8 100%                112.8*                        5.6 115%               129.7*                        6.5
"' ( 7 36 H 003 lo B-@ Ir' I -l ti) .... co CD -() 0 0 :::J co (/) '< (/) -CD 3 11 0 :E -i CD (/) -::u CD l:J 0 ;:l. VJ 0 .i::.. .i::.. ->. ::u 0 0 0 .i::.. <J1 --OJ )> ::i: ti) (") ::::T 3 CD :::J --"--"-
*Flow values include the 5% maximum bypass flow through the cartridge pins and labyrinth seal.
INSPECTIOH AND TEST PLAH Goulds Pumps ITT l&deg;Aff: I 1117 QQIZ v 0 '""ll"'or.-ed J 1f4'! 8.L UC0&#xa3;SI lt SPECTION REQURE llEHf S 'PftOO!DUllE kctpt.anc*
15
Cnt.!ri Ji OCf'. GOUL&deg;' QU.t,Lln'COOfT-.u-D
 
,-out&#xa3;. rHE LA rES1' llEMSOlf W:U. -AllPUCA8l.E IF NO &l"l::Ol9C......,.,, HAS &UN Al'tf'l/lf.O\lt FOlt ntrS COfltttlltACf.
Attachment 11 Target Cooling System Flow Test Report                                                    30441 R00045/B Table 5 - Bypass Test Results 9/1 2/ 2017                9/14/2017                                9/15/ 2017                    9/17/17 Run 1@      Run 2@    Run3@    Run4@      Run 5@      Run 6@  Run 7@    Run8@    Run9@      Run 10  Run 11@
l'U'cNl@Odof' I 14*i1'cat.Cm. CWk!g I M9@Ct>M N!q!Jf't!MrH l rT
18.6 psi      18.8 psi 19.2 psi  19.0 psi    18.8 psi  19.0 psi 18.6 psi  18.9 psi  18.8 psi  @18.7    18.6 psi back        back      back      back      back        back    back      back      back    psi back    back pressure    pressure  pressure  pressure  pressure    pressure pressure  pressure  pressure  pressure pressure GPM          GPM      GPM      GPM        GPM        GPM    GPM      GPM        GPM      GPM      GPM 3.78          4.43    3.96      4.23        3.41      3.38    3.43      3.21      3.29      4.23      3.09 The tests confirm that the labyrinth path slows the amount of water bypassing the cartridge, satisfying the maximum design requirement of 5% . The allowed bypass at 115% flow case is 6.5 GPM and the highest bypass measured in the tests is less than 4.5 GPM, including the cartridge pins. The average of the eleven runs is 3.7 GPM providing margin to the design requirement.
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16
!*2373 2 3 y OCP.64 1 ISO 1 9"1 D G6.3 4 1 00 1 940 QCP55 1 K:>l.il ... 5
 
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Attachment 11 Target Cooling System Flow Test Report                                      30441 R00045/B Full System Bypass Test Results for 115% flow for a torque of 30in-lbs 7
"'"' Ccn!irmxicn PO C ueT OMfllPO CVS-PO 1 D II H" Held P on w *Vi t na s .. S<N tainc. V* 'eGlt CUSTOMER P.0.1 I GOUlDSSIN MODEL PUMP SIZE " '" I> SERVICE Ch.arxt<< to M QC ChMbd Fonn/Vwifyi119 Oocunwni I R .. l rag'.tyof asserttifd pun:p and.Oinsblbltc>n l'l.npHud-
6.5 Run 1 @ 18.6 psi back pressure 6
... t R"9<Jlt S urf ace -, p,, Thid: nHS AaltJncJ Con'.pttf'l!IHS cf docUIMl'IH pocbgilig
Run 2 @ 18.8 psi back pressure Run 3 @ 19.2 psi back pressure 5
-2 NA prtpaalicn Ccnf-PMoomnce 0..-APPf""-11 PROF ESS IONA L PUM P 1l11811 19 31KMTi :W.-1 3 W Priring eo HE X S kid *-on THI eoci.s C>OUUI& an.,._,. I R I NA I A I R R AIH Ftt""I l" t!krmitntit Cln'ff  ", Mit t&-:: ......... Q) ...., co CD -0 0 &#xa3; :J co (/) '< (/) -CD 3 "Tl 0 :E CD (/) -:::0 CD "O 0 ;:::i. :::0 0 0 0 CJ1 --OJ )> ::::: Q) (") :::; 3 CD :J ---"' --"'
Run 4 @ 19.0 psi back pressure
Attachment 11 Target Cooling System Flow Test Report Opfl T MP CERQFICATE O F CON F ORMANCE D e; h b ruary 28 , 201 7 Supp li er: Opll T mp Inc 1500 tntemational D rive T ravel$e Cil)'. M l 49686 PH: 2"31.11 .293 G n e ra Atomics Pu roh u Ord er. 4500066103 P ut Numb*r: Be l ow M ai n Pum p 1 MOD EL3 796 TI S CZE'3lc3-1 3 Se lf P riming Pum pw Jl-Ale rt 1 Drive (M otor) 480Vl'3ph/60Hz l 258-003 7Nll4 , Powe!Ffex 52 5 A C Drive , 480 VA C , 3 Phase , 2 5 H P , 18 S kW Noemal&Aay , 20H P , 1 5kW H avy D u ty I P20 NEMA I Open T ype , Fi Cra ll'lg T e Slll'lg S al N urnb r* Mo t or: 1033911920 , Pump: N738H003 , C04.lp er: No Ser r e t N umbe r Qua n t i ty: E!i!CI\ ll ems Ab Olle I he eby certify tti11t e ll terns f mlsliG'd *9 Inst your eonlrlcllp u rchas order 4500066t03 are In conlormanc:e the r quir m s. cificabons, and drawtngS; app l cable to lhal order. Signa Vice P esiden Engine er ing 2.28.2017 Ti le
~
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City, HI 4 969 P: 2 l f:
Run 5 @ 18.8 psi back pressure
"'"'". c>p(:! teq>, c B-4 Date 30441 R00045/B Attachment 11 Target Cooling System Flow Test Report .& ITT Tell I nfo. R.ailrlg I fo Remar'ca. p Suet abs It 1 561 2 55-9 3 55 5 * .SilO s $4 2 e 53 2 7 525 8 5 1 5 I /Gould$ P umps iri rad P rodutts DM!Ion Spee 0.9990 0 , 9990 09990 0 90 0 9990 09990 09990 0 9990 5417 NTJ6H003 0 1 A N Sl-S1Mld2 TS3 DO 0.0 00 0.0 0.0 0.0 0.0 00 no rpm. 250 gpni t02 I\ <18% 1350 119 . ,,, 5 1 00.6 925 81.3 76 , 7 76.7 76.8 0 rpm 260 298 336 Power $Pff(f El'f 14. 14.9 Notes % 0.1 20.S M.3 428 478 <19 2 4110 <16 4 1 8 11'1 11'1 30441 R00045/B Ell * {c.?a:lt/ X Tota ii X Spec G1'V)l{Pcm.. X 3960) Pt. No Cllpacity
~4
{gpm) 0.3 2 58..2 3 , 2.7
"'C Ql
* 157.1 s 6 zeo.s 7 2e1.o 8
::::s                                                        Run 6 @ 19.0 psi back pressure
:S.1111 "'&deg; NT35HOOG -...No.llli!OOlitl i114 Temp SarWlll $411 Fmi"l IP H9. $ll4 (JIJ Pm.er II (bflp) l"Al 8.2 01 9 1 20.5 102 M.3 1 1 , 1 4 2.8 1 2 47 , fj 13.6 49.2 14 3 49.0 15 1 46.4 tO.te: ?JSJ 7 . TnfNmbe1. B. ---------------B-5 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B I Pump $&rial No N736H00 3 Im p eller l'la n>C!tier *,vi) (G P M) 250 Sao 3x3-13 Tempe re (oF) d{ J 102 Type 3 7 96 Accl!otance G d ID [, R.am d Speed 1170 N o Cl( Stages Specd\C G.l'My ()() I ITT I . *:J D ._.,., 02lqk1 .a I I 1 I I ' I 12:1 I T -r-r--. I r-.._ b,,.__ I 1.&sect;:) !).) I l --r-1-t--. eo I E I I ::c eo I -I co I I 20 I I J -I) I I I *-0 *O l!O 80 1C O l:IQ 1*a teo 180 200 220 1 4!1 21 0 lOO 320 ,.0 31!0 1w ' l....,;;;;
~
rtMP l II I I 90 I I _t--I ---** -ao -< ll I 10 i! 611 ---I -l".tllcloncy
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-50 I -a I I -.--! -4D -l ... I I 30 I I/..,.. < 2 0
  ~ 3                                                          Run 7 @ 18.6 psi back pressure
* v 1D v I) 0 C-OPTI s.liol No tf738liOO) 20 ./ *O P O OO$lllBt r ll EM 001 4
  "'c.>
* Ofl<<l EllCI U.-Oii *Temp S.r.tce* S.11 P r!!' ng Ill HFX s I so a& I I
CCI Run 8 @ 18.9 psi back pressure 2                                                      Run 9 @ 18.8 psi back pressure Run 10@ 18.7 psi back pressure 1
* 2 I 0 100 12 0 14 0 &J IO m 2 00 2!!0 21 0 10C l20 3411 JSI OPM B-6 i Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX C -Raw Pressure Drop Data Summary Time PT-335 Absolute to Static Flow Rate Absolute Gauge Water Head Pressure (GPM) Reading Conversion Adjustment (psia) (psig) (psig) 10: 15: 14 AM 0 10: 15: 16 AM 0 10:15:18 AM 0 10:15:20 AM 0 10:15:22 AM 0 10:15:24 AM 0 10: 15:26 AM 0 10:28:06 AM 93 10:28:08 AM 93 10:28:10 AM 93 10:28:12 AM .93 10: 28:14 AM 93 10: 28: 16AM 93 10: 28: 18 AM 93 10: 55:56 AM 110 10:55:58 AM 110 10: 56:00 AM 110 10: 56: 02 AM 110 10: 56:04 AM 110 10:56: 06 AM 110 10:56:08 AM 110 11:13:20 AM 126 11:13:22 AM 126 11:13:24 AM 126 11:13:26 AM 126 11: 13:28 AM 126 11: 13:30 AM 126 11: 13: 32 AM 126 C-1 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX D-Calculation for Extrapolating GA Test Values at 20&deg;C (Constant) to ANSYS-FLUENT Prediction Values at 34&deg;C (Target Assembly Average) The pressure drop in a turbulent flowing fluid is governed by the equation:
Run 11 @ 18.6 psi back pressure
llP = (f Ud + K) (pV 2/2) f is the friction factor and governs the frictional component of the flow , The friction pressure drop is linearly a function of the density, p and the friction factor , f. f , in turn , is approximately a function of the Reynolds number to the -0.25 power 1 , and Re is a function of p/&#xb5;. Thus , (flP trictio n)t est f (flPtr iction)actua l = (fp )t est f (fp )ac tu a l = f tes t f f actua l
                                                          - .allowed bypass (5%) GPM 0
* P test f Pa ctual = (Pt es tf&#xb5;test)-0*25 f (Pa ct u a 1f &#xb5;a c t ua 1)-0*25
1 Runs Figure 10 - Full System Bypass Test Results 17
* P tes t f P act u a l = [ (P test f P actual) f (&#xb5;t es tf &#xb5;ac tu a1)]*0*25
 
* Pt est f P act u a l K governs the momentum and area change component of the pressure drop. Thus, the momentum pressure drop is linearly a function of the density, p. So , (flPm omen tum)test I (flPm oment um)ac t ual = Pt es t f P ac tu al Our test is basically carried out with water at 20&deg;C , but the real flow through the target will be at an average temperature of 34 &deg;C, with the inlet at 29&deg;C and the outlet at 39&deg;C. For the target flow at 2 atm: Test conditions Actual conditions Test/Actual p (kg/m3)avg 998.2536 994.4179 1.0039 p (kg/m3)inl et 998.2536 995.9924 1.0023 p (kg/m3)ou tl e t 998.2536 992.6396 1.0057 &#xb5; (kg/m sec)avg 0.001002 0.000734 1.3651 D-1 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B In addition, it is noted from GA report 30441 R00038 that of the total -psid target assembly pressure drop , -psid is the momentum pressure drop at the assembly inlet , -psid is frictional pressure drop along the target rods, and -psid is the momentum pressure drop at the assembly outlet. Thus -of the total pressure drop is inlet momentum drop, -is frictional pressure drop and -% is outlet momentum drop. Assuming the same pressure drop distribution through the test configuration would mean that (f1P) test/ (f1P actua 1) = -*1.0023 + -*(1.0039 I 1.3651 )-025
Attachment 11 Target Cooling System Flow Test Report                                  30441 R00045/B APPENDIX A - Equipment and Instrumentation Used in Testing Equipment/ Instrument                Make I Model              Measuring Range OMEGA                Pressure Range : +/-15 psi Pressure Gauge (Pl-335)
* 1.0039) + -*1.0057 = 1.0208 Thus the measured pressure drops for the target assembly will be about 2.1 % higher for the test than the actual system. 1 Blasius, P. R. H. 1913. Das Aehnlichkeitsgesetz bei Reibungsvorgangen in Flussigkeiten.
PN : DPG409-015CG              Accuracy: +/- 0.08%
Forschungsheft 131, 1-41. D-2 Attachment 11 Target Cooling S ystem F low Test Report 3044 1 R00045/B APPENDIX E -Target Assembly Pressure Drop Test Data Sheets OAfA SHEET Target Co oling Sys 1 em flow Test (30 441PID026_A)
OMEGA              Pressure Range : 0 to 60 psi Pressure Gauge (Pl-302)
PN : DPG 1001 B-60G            Accuracy: +/- 0.10%
OMEGA              Pressure Range : 0 to 60 psi Pressure Gauge (Pl-308)
PN: DPG1001 B-60G              Accuracy: +/- 0.10%
Analog Pressure Gauge                  Ashcroft          Pressure Range : 0 to 30 psi (E452434)          PN : 45 1082AS 02L XC4 30#          Accuracy: +/- 0.25%
Differential Pressure                OMEGA              Pressu re Range : 0 to 30 psi Gauge (DPl-302)            PN: DPG409-030DWU              Accuracy: +/- 0.08%
Differential Pressure                OMEGA              Pressure Range : 0 to 30 psi Gauge (DPl-310)            PN : DPG409-030DWU              Accuracy: +/- 0.08%
Differential Pressure                OMEGA              Pressure Range : 0 to 50 psi Gauge (DPl-320)            PN : DPG409-050DWU              Accuracy: +/- 0.08%
Pressure Transmitter              Keller Preciseline    Pressure Range : 0 to 100 psi (PT-335), DL          PN: 0308.00301 .051307.54          Accuracy: +/- 0.1 %
Flow Range:
Flow Meter                    McCrometer 100 GPM to 140 GPM (FT-100), DL              PN : VW03AE14AA Accuracy: +/- 0.5%
Flow Meter                    McCrometer          Flow Range : 100 GPM to 140 (FT-110), DL              PN : VW03AE14AA            GPM , Accuracy: +/- 0.5%
Speed: 1770 RPM Goulds Pumps                Flow: 250 GPM Pump                    Model : 3796 MTi                Head: 102 FT (P-310)                Pump Size: 3x3-13              Efficiency: 48 .0%
Self-Priming Pump          Total Power: 13.5 HP NPSHr: 7.8 FT Allen Bradley              480 VAC , 3 Phase VFD                PowerFlex 525 AC Drive    25 HP, 18.5 kW Normal Duty PN : 25B-D037N 114        20 HP, 15 kW Heavy Duty A-1
 
Attachment 11 Target Cooling System Flow Test Report                                                                                                  30441 R00045/B APPENDIX B - Goulds Pump Specification and Test Data Model: 3796                        Size: 3x3-13                              Group: MTi              60Hz              RPM : 1770              Stages: 1 Jobllnq.No. :            Opti-Temp- HEX Feed Pumps Purcnaser :             OPTITEMP Eoouser :               Optl-Temp                                          Issued by :      Brandon Bond                        Rev.:       0 ttemlEqu p.No. : ITEM 001 (Base Offer)                                       OuotatJon No. : DF 16-10*25 01                        Date : 0112512017 Service :               Self Priming to HEX Skid OrderNo. :               60586f)g                                            Certified By
* Brandon Bond                          SN/SO : N736H003 Operating Conditi ons                                                                      Pump Performance Liquid:                 Water                      PubllShecl Efficiency:             48.5 %                 Suction Speci11c Spee<!: 5,018 gprn(US) tt Temp.:                   110.0 deg F                Rated Pump Efficiency:             46.0 %                  M*n. HydrauUc FIOw:     56.9 gpm S.G.Nisc.:               1.000/1 .000 cp            Rated Total Power:                 13.5 hp                Min. Thennal Flow:      NIA Flow:                   250.0 gprn                Non-Overloading Power: 15.4 hp TOH:                     102.on                    Imp. Dia. First 1 S1g(s):         11 .7500 in NPSHa:                                              NPSHr:                            7.Sn                    Shut on Hea<l:          121.1 n SOlta slZe:                                        Max. Soll<ls Size:                 0 .3750 1n              % SUsp. SOI ds
{bywt.g ):
Vapor Press:
Notes: 1. Elevated temperature effects on performance are not induded.
C
* TR lrnGAL PUMP CHAAAC TEAISTICS            Based on COS      2311 -3
(@GOOLDS PUMPS                Po- c o r u lliftl. HI U .S1 Bbulspower      RPM 1770 m
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                                                                                                                              .                 80
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                                                                                                                                            - 50 40 30
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                                                                                                                                      -        15 4
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                                            -  200 50 300 75 400
                                                                                  - -500 100          125
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Attachment 11 Target Cooling System Flow Test Report                                                                          30441 R00045/B OpflT MP CERQFICATE OF CONFORMANCE D e;                                          h bruary 28, 2017 Supplier:                                      Opll T    mp Inc 1500 tntemational Drive Travel$e Cil)'. Ml 49686 PH: 2"31.11 .293 G nera Atomics Puroh u Order.                  4500066103 Put Numb*r: Below Main Pump 1        MODEL3796              TI SCZE'3lc3-13 Self Priming Pum pwJl-Alert 1         Drive (M otor) 480Vl'3ph/60Hz l        258-0037Nll4, Powe!Ffex 525 AC Drive, 480 VAC, 3 Phase, 25 HP, 18 SkW Noemal &Aay, 20HP , 15kW H avy Duty Fra~ E .
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Attachment 11 Target Cooling System Flow Test Report                                                                                                         30441 R00045/B IPump $&rial No                          N736H003 Impeller l'lan>C!tier *,vi) 11 .~~J= (GPM)                                  250 Sao                                          3x3-13 Tempe        re (oF)              7~.'I .       d{ J                          102 Type                                            3796 Accl!otance G d                      ID [,R.amd Speed                        1170 No Cl( Stages                                                                                  Specd\C G.l'My                        ()()
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Attachment 11 Target Cooling System Flow Test Report                                 30441 R00045/B APPENDIX C - Raw Pressure Drop Data Summary PT-335 Absolute to  Static Absolute Flow Rate              Gauge    Water Head Time                    Pressure (GPM)              Conversion  Adjustment Reading (psig)       (psig)
(psia) 10:15:14 AM          0 10:15:16 AM          0 10:15:18 AM          0 10:15:20 AM          0 10:15:22 AM          0 10:15:24 AM          0 10:15:26 AM          0 10:28:06 AM        93 10:28:08 AM        93 10:28:10 AM        93 10:28:12 AM        .93 10:28:14 AM        93 10:28:16AM          93 10:28:18 AM        93 10:55:56 AM        110 10:55:58 AM        110 10:56:00 AM        110 10:56:02 AM        110 10:56:04 AM        110 10:56:06 AM        110 10:56:08 AM        110 11:13:20 AM        126 11:13:22 AM        126 11:13:24 AM        126 11:13:26 AM        126 11:13:28 AM        126 11:13:30 AM        126 11:13:32 AM        126 C-1
 
Attachment 11 Target Cooling System Flow Test Report                                                                       30441 R00045/B APPENDIX D- Calculation for Extrapolating GA ~P Test Values at 20&deg;C (Constant) to ANSYS-FLUENT Prediction Values at 34&deg;C (Target Assembly Average)
The pressure drop in a turbulent flowing fluid is governed by the equation:
llP  =(f Ud + K) (pV /2)   2 f is the friction factor and governs the frictional component of the flow, The friction pressure drop is linearly a function of the density, p and the friction factor, f.
f , in turn , is approximately a function of the Reynolds number to the -0.25 power 1 , and Re is a function of p/&#xb5;.
Thus, (flPtriction)test f (flPtriction)actual    = (fp )test  f (fp )actual = ftest f factual
* Ptest f Pactual = (Ptestf&#xb5; test)-0*25 f (Pactua1f&#xb5;actua1)-0 *25
* Ptest f Pactual =
[ (Ptest f Pactual) f (&#xb5;testf &#xb5;actua1)]*0 *25
* Ptest f Pactual K governs the momentum and area change component of the pressure drop .
Thus, the momentum pressure drop is linearly a function of the density, p.
So, (flPmomentum)test I (flPmomentum)actual = Ptest f Pactual Our test is basically carried out with water at 20&deg;C , but the real flow through the target will be at an average temperature of 34 &deg;C, with the inlet at 29&deg;C and the outlet at 39&deg;C.
For the target flow at 2 atm :
Test conditions                            Actual conditions                        Test/Actual p (kg/m3)avg                  998.2536                                994.4179                                1.0039 p (kg/m3)inlet              998 .2536                                995.9924                              1.0023 p (kg/m3)outlet              998.2536                                992 .6396                              1.0057
&#xb5; (kg/m sec)avg              0.001002                                0.000734                              1.3651 D-1
 
Attachment 11 Target Cooling System Flow Test Report                                            30441 R00045/B In addition, it is noted from GA report 30441 R00038 that of the total -        psid target assembly pressure drop, -          psid is the momentum pressure drop at the assembly inlet, -        psid is frictional pressure drop along the target rods, and -        psid is the momentum pressure drop at  ~
the assembly outlet. Thus -
frictional pressure drop and      -%    of the total pressure drop is inlet momentum drop, -
is outlet momentum drop. Assuming the same pressure drop distribution through the test configuration would mean that is ~
(f1P) test / (f1Pactua1) = -
* 1 .0023 +
                            -*(1.0039 I 1.3651 )-025
* 1.0039) +
                            -*1.0057
                        =                             1.0208 Thus the measured pressure drops for the target assembly will be about 2.1% higher for the test than the actual system.
1 Blasius, P. R. H. 1913. Das Aehnlichkeitsgesetz bei Reibungsvorgangen in Flussigkeiten.
Forschungsheft 131, 1-41 .
D-2
 
Attachment 11 Target Cooling System Flow Test Report                                                                                                                                        30441R00045/B APPENDIX E - Target Assembly Pressure Drop Test Data Sheets OAfA SHEET Target Cooling Sys1em flow Test (30441PID026_A)
Section 3.3.2
Section 3.3.2
* Tarcet Assembly P ressure Crop Test case 6'tli .. _v_r_o_r.., __ que_ncy __ ..._ _ IH*) 'fO . Time Elaspod P t-335 Pl-302 D Pl-310 'Tl m* (m i n) (ps igJ IPsil!I (pslg) 0 -'1.') 14.1. t-1 1 0: :?."< 5 -1"<.'l.. t.\ 10'.l'I JO -"<.I. 1'1.\ 2.1 10' '1'1 15 -'1, lo 1'1.1 -i.1 MtMaster G a1.11e Pi-308 FT-110 FT-100 OPl-3 2 0 SJN: l*s;ic)A (psi*) (G PM I (GPM) (ps!IJ (psij) ... 0 q'?> \,') 10. I \.I> 'I> ... ** .s 10&deg;!1 11. 0 'I'!. 'I'!> 1*5 *O .5 11.0 'I) '\'> ,,5 10.5 DATA5HE&#xa3;T Torge l COo ll ng Symm Flow lost (3040P00016_A)
* Tarcet Assembly Pressure Crop Test
Sec:tk>n 3.3.2 -T areet Assemb ly Pressure Drop Te st 011.:..1.l.!JJ.
      ~%Flow case                                       6'tli                               D*lo:~                                                                              011.:..1.l.!JJ. 7
7 a .. * .. a.w , w t\c.,tt-:-.M. OPl-3 0 2 PT-HS
_ v_r_o_r..,
... ,le.. (psi*) (DSIO) .1 .1 ........ ---, .1 , ... t ,, 1'\'f'  
__ que
,/ ()..-/
_ncy
,--------,---
_ _...__      __,lope~10<:
..,Op er11o r: D*to:....l!.u..!:!_
    ..          IH*)             'fO       .                         QAR.viow: ~
VFO lffquency I O pero lo r: __ _.__'1_1 _ _, <l'Roview: Time ei..sped ,_ T ime (min) 10: '11 0 ._t6'.S?.. 5 10" 10 -":6t. 15 >----Pl-335 P l-3 02 O P l-310 P l-308 FT-110 FT-100 (ps i g) -s.i -s.'a -s.1. (ps*) (p si&) (psig) (GPM) IGPM) io.c; ;,I,, It.-<-lbl \10 .... , t. 10\. 110 i.o.s 'i.b \L,'\ 101. 110 Z.0.'-1 10\, II<> -fl * ')O.. ""'
a..*.. a.w ,w MtMaster t\c.,tt-:-.M.
o ... *-
Time                                                                                                    Ga1.11e Elaspod    Pt-335      Pl-302    DPl-310       Pi-308        FT-110      FT-100      OPl-3 20      SJN: l*s;ic)A OPl -30 2    PT-HS
&#xa3;.Mt. -lo& c. .. ,.\-'h'.a"' ,..,._,It.*
                                                                                                                                                                    't~~<. ... ,le..
I 'fi E-1 Da t e::1/ltf!.I-
          'Tlm*        (min)      (psigJ      IPsil!I     (pslg)        (psi*)      (GPM I      (GPM)        (ps!IJ          (psij)    (psi*)      (DSIO) 10 ~ 1.'          0      -'1.')      14.1.       t -1          ... 0         'I~        q'?>        \,')          10. ~          .1 10: :?."<          5    - '1 . ~      1"<.'l.. t.\            I \.I>      'I>        ...~          ** .s       10&deg;!1        .1 2.1                        'I'!.       'I'!>                                   .1                          , ... t 10 '. l'I 10'   '1'1 JO 15
---
                                -"<.I.
McMas ter Gau1e flo"'.....,''1 DPl-320 S/N uno* D P l-302 PT-335 .,.._..,.  
                                - '1, lo 1'1.\
..... t:4"'f le.. (P sis I (ps i el (psigl (psittJ ""' 2..2. .Y T'\ *i: '2.t.. , ... s *" 1*\.. ... .s *"' 1"\ 1.'> '" .s. .9 1"1 Attachment 11 Target Cooling System Flow T est R e port DATA SHEET Torg*t Coo lfng Syste m F low Test (3 04 41 P000 26_A) Section 3.3.2
1'1.1      -i.1
* Tal'l e l As se.mb ty Pr essu r e Dro p T est 30 441 R00045/B _1_1s __ %Fl owC ase ./ 0 /_ I Dai.:...li\JJJ_
: 11. 0 11.0          'I)        '\'>
VF-D Frequency I ..._ _ __:(_111_,_1
1*5
__ _..__s_z *-''--' QA /l.1b. A= o pe .. tor: McMHtU .. uJ t C &#xa3;*-..**...z-u 1 Time Gauce Elosped Pl-335 Pl-302 DPl-31 0 Pl-308 FT*ll O FT*l OO DPl-320 SIN C*Sl04 DP l*l02 PT-335 , . .,.., llme (min) (p>ic) (p s ig) (p si g) (P>i*l (GPM) (GPM) (p>ld (p>ig) (Psi*l (p sig) ,, \6\f 0 -l.*'I 21.0 ...... i.1.1 \It. t'l.1. '},0 ,,,o 1.1 5 -\..Ii 1.1.0 ... :i 111. 12\, 2.'1 ,q 0 1.0 1'1 t 11'.l'i 10 *l.*1 1.i..'\ ... ., 21.1 llt IU,, t.'I 1q.o 1.0 ..,,, i. II'. 1 \ 15 -i..t
                                                                                                              ,,5
... 'l.**1 \It. Ill, z,'\ 1'1.0 1.0 1'1.1.
                                                                                                                              *O . 5 10.5
a.1 ... E-2 Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX F -Measuring
                                                                                                                                          ,,                         1'\'f' DATA5HE&#xa3;T Torge l COollng Symm Flow lost (3040P00016_A)
& Test Equipment (M& TE) List with Certificates of Calibration M&TE Name M&TE Asset No. Calibration Due Date Pressure Gauge QC-15-240 9/29/2018 (PI-335) Pressure Gauge QC-15-238 12/22/2018 (PI-302) Pressure Gauge QC-15-239 12/22/2018 (PI-308) Differential Pressure Gauge QC-15-242 12/20/2018 (DPI-302)
Sec:tk>n 3.3 .2 - Tareet Assembly Pressure Drop Test
Differential Pressure Gauge QC-15-243 12/12/2018 (DPI-310)
      ~%Flow case                                      ~
Differential Pressure Gauge QC-15-246 2/20/2019 (DPI-320)
                                                            , / ()..-/                                ~1.1.-.                           ~/
Pressure Transmitter QC-15-259 5/30/2019 (PT-335) Torque Wrench QC-05-147 12/6/2017 F-1 Attachment 11 Target Cool i ng System Flow Test Report APPENDIX G -Laboratory Notebook Reference All test data were recorded in Lab Notebook No. 13569. 30441 R00045/B Test Lab Notebook Page No. Target Assembly Pressure Drop Test Page 8 Pump Coast-down Test Page 11 Labyrinth Seal Bypass Test Page 14 G-1}}
      , - - - - - - - - , - - -..,Oper11or:
VFO lffquency
      ~--'-IH_z.;.)_ __.__'1_1_            _,
I                        <l'Roview:      ~
D*to:....l!.u..!:!_              Opero lor:
Date::1/ltf!.I-
                                                                                                                - --McMaster                        ~ t-*M.1 Time                                                                                                    Gau1e flo"'.....,''1 ei..sped    Pl-335      Pl-302    OPl-310        Pl-308      FT-110      FT-100    DPl-320      S/N uno*      DPl-302      PT-335          .,.._..,. ..... t:4"'f le..
      ,_   Time        (min)       (psig)                  (psi&)                      (GPM)                                                (psigl      (psittJ 10 : '11           0   -~-"'
(ps*)
io.c;      ;,I,,
(psig)
It.-<-         lbl IGPM)
                                                                                                    \10 (Psis I 2..2.
(psiel
                                                                                                                              .~.s         .Y                          T'\ *i:
                                  -s.i                    .... ,                                                             ,... s
      ._ t6'.S?..           5                  l.O. ~
                                                                          *~* t.
10\.        110          '2.t..
                                                                                                                              ... .s        *"                        .,~
10 " ~l          10    -s.'a
                                  -s.1.
i.o.s      'i.b            \L,'\        101.         110        1*\..
                                                                                                                                            *"'                       1"\
      -" :6t.             15                  Z.0.'-1    ~.1            l~*t.         10\,         II<>      1.'>          '" .s.        .9                        1"1
      -                                                                                     -  ~
fl * ')O.. ~          ""'  ~*""'"~
6~~tk o...*- l.oJ~.r                  &#xa3;.Mt. - lo&
: c. ..,.\-'h'.a"' ,..,._,It.* I 'fi E-1
 
Attachment 11 Target Cooling System Flow Test Report                                                                                                                    30441 R00045/B DATA SHEET Torg* t Coo lfng System Flow Test (304 41P00026_A)
Section 3.3.2
* Tal'lel Asse.mbty Pressure Drop Test
_1_1s__%FlowCase                                      ./    0 /_                            I                            ~dtp /                        Oate:~7
    ~-----~--~Operator: ~ Dai.:...li\JJJ_
VF-D Frequency
__:(_111_,_1_  _
I
_..__s_z*-''--'                  QA Rtv~w;      /l.1b. A=
o pe ..tor:
Date:~
                                                                                                                                        ~&. ..uJ t C McMHtU              &#xa3;*-..**...z-u1 Time Elosped      Pl-335    Pl-302  DPl-310      Pl-308      FT*llO    FT*l OO  DPl-320 Gauce SIN C* Sl04  DP l*l02    PT-335      , ..,..,
llme              (min)      (p>ic)    (psig)  (psig)      (P>i*l      (GPM)      (GPM)      (p>ld      (p>ig)    (Psi* l    (psig)
        ,, \ 6\f              0      - l.* 'I    21 .0  .....      i.1.1        \It.      t'l.1.    '},0        ,,,o      1.1                      1~ . 'L II:'~                        - \..Ii    1.1.0  .. .:i      21.~        111.      12\,      2.'1        ,q 0      1.0                    1'1 t 5
11'.l'i                                  1.i..'\            21.1        llt        IU,,      t .'I      1q . o      1. 0                    ..,,, i.
10
* l.*1 II'. 1 \            15      - i..t
                                                  '~"'
                                                          ..   ~    'l.**1        \It.      Ill,      z,'\      1'1 .0     1.0                     1'1. 1.
i~*o~              a .1 ~ ...
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Attachment 11 Target Cooling System Flow Test Report                                  30441 R00045/B APPENDIX F - Measuring & Test Equipment (M& TE) List with Certificates of Calibration M&TE Name              M&TE Asset No.     Calibration Due Date Pressure Gauge QC-15-240              9/29/2018 (PI-335)
Pressure Gauge QC-15-238              12/22/2018 (PI-302)
Pressure Gauge QC-15-239              12/22/2018 (PI-308)
Differential Pressure Gauge QC-15-242              12/20/2018 (DPI-302)
Differential Pressure Gauge QC-15-243              12/ 12/2018 (DPI-310)
Differential Pressure Gauge QC-15-246              2/20/2019 (DPI-320)
Pressure Transmitter QC-15-259              5/30/2019 (PT-335)
Torque Wrench              QC-05-147              12/6/2017 F-1
 
Attachment 11 Target Cooling System Flow Test Report                                    30441 R00045/B APPENDIX G - Laboratory Notebook Reference All test data were recorded in Lab Notebook No. 13569.
Test                   Lab Notebook Page No.
Target Assembly Pressure Drop Test               Page 8 Pump Coast-down Test                     Page 11 Labyrinth Seal Bypass Test                 Page 14 G-1}}

Latest revision as of 05:28, 24 February 2020

30441R00045, Rev. B, Reactor-Based Molybdenum-99 Supply System Project, Target Cooling System Flow Test Report. Redacted Version
ML17292A053
Person / Time
Site: University of Missouri-Columbia
Issue date: 10/12/2017
From:
General Atomics
To:
Office of Nuclear Reactor Regulation
Shared Package
ML17292A049 List:
References
30441R00045, Rev B
Download: ML17292A053 (36)


Text

{{#Wiki_filter:Attachment 11 30441 R00045 RELEASED 2017/10/12 Revision B COM Apvd REACTOR-BASED MOLYBDENUM-99 SUPPLY SYSTEM PROJECT TARGET COOLING SYSTEM FLOW TEST REPORT Prepared by General Atomics for the U.S. Department of Energy/National Nuclear Security Administration and Nordion Canada Inc. Cooperative Agreement DE-NA0002773 GA Project 30441 WBS 1252

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B REVISION HISTORY Revision Date Description of Changes A 110CT17 Initial Release B 120CT17 Revised with updated figures and references POINT OF CONTACT INFORMATION PREPARED BY: Name Position Email Phone Candace Gray Engineer Candace.Gray@ga .com 858-455-3394 J. Armando Chavez Engineer Juan.Chavez@ga .com 858-455-2465 APPROVED BY: Name Position Email Phone Oscar Gutierrez Task Lead Oscar.Gutierrez@ga .com 858-455-3655 Katherine Partain Quality Engineer Katherine.Partain@ga.com 858-455-3225 Kathy Murray Project Manager Katherine. M urray@ga.com 858-455-3272 DESIGN CONTROL SYSTEM DESCRIPTION D R&D DISC QA LEVEL SYS [8J DV&S D DESIGN D T&E N II N/A D NA ii

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B TABLE OF CONTENTS REVISION HISTORY ........................................... ......................................................................... ii POINT OF CONTACT INFORMATION ........................................................................................ ii DESIGN CONTROL SYSTEM DESCRIPTION .................................... ........................................ ii ACRONYMS ................................................................................................................................. v 1 PURPOSE AND SCOPE .................................................................................................. 1 2 APPLICABLE DOCUMENTS ........................................................................................... 1 3 FULL SCALE SYSTEM FLOW TESTING ........................................................................ 1 3.1 Description of Test Rig .. ..... .......... ... .. ... ..... ....... ..... .. .. .. .. ....... ..... ...... ........ ..... ..... ... .. .. . 1 3.2 Test Procedures .... ..... .. ..... .... ......... ....... .. ... ..... .. ....... ... ... ............ .... ....... ..... ....... .... .. .. 6 3.2.1 Target Assembly Pressure Drop Test ..... .......... ... ....... .... .. ..... .. ...... ... .... ... .. .... ... 6 3.2 .2 Pump Coast-down Test .... ... ...... .. ..... .... ....... .. ..... .. ..... ... ..... .... ..... ......... ... ..... ... .. . 8 3.2 .3 Labyrinth Seal Bypass Test. .. .... ......... ..... ..... ... .... ... ...... ..... ... ...... ..... ...... ..... .... ... 9 4 TEST RESULTS ............................................................................................................. 11 4.1 Target Assembly Pressure Drop Test .. .. .... ..... ... ....... .... ..... ..... .. ..... ...... ... .. ..... ...... ... 11 4.2 Pump Coast-down Test Results ....... ..... ... ...... .... ... .... ... .. ... ... ... .... ....... ... .. .. .. .. .... ..... . 12 4.3 Labyrinth Seal Bypass Test Results ... .. ..... ..... .. ..... ........ ..... .. .. ..... ............ ...... .... .. .... 13 APPENDIX A - EQUIPMENT AND INSTRUMENTATION USED IN TESTING ...................... A-1 APPENDIX B-GOULDS PUMP SPECIFICATION AND TEST DATA ................................... B-1 APPENDIX C- RAW PRESSURE DROP DATA

SUMMARY

................................................. C-1 APPENDIX D - CALCULATION FOR EXTRAPOLATING GA llP TEST VALUES AT 20°C (CONSTANT) TO ANSYS-FLUENT PREDICTION VALUES AT 34°C (TARGET ASSEMBLY AVERAGE) .............................................................................................. D-1 APPENDIX E- TARGET ASSEMBLY PRESSURE DROP TEST DATA SHEETS ................ E-1 APPENDIX F - MEASURING & TEST EQUIPMENT (M&TE) LIST WITH CERTIFICATES OF CALIBRATION ..... ......................................................................................................... F-1 APPENDIX G - LABORATORY NOTEBOOK REFERENCE .......................... ........................ G-1 iii

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B LIST OF FIGURES Figure 1 -Target Cooling System Test Loop P&ID .. ... ... ...... .... .. ....... .......... .. ...... ........ .............. ... 4 Figure 2 - 3D Model of the Target Cooling System Test Loop Design ......................................... 5 Figure 3- GA Target Cooling System Test Loop Setup ...... ... .... ... .... ........ .... ... ...... ...... ....... ... ..... . 6 Figure 4 - Gasket Seal Location .......... .. ..... ........ .. ... ..... .. ..... ... .... .. ... .. ..... ... .... .. .. .. .. .... ..... .............. 7 Figure 5 - Bypass Flow Paths for Labyrinth Path and Cartridge Pins ..... .... .. ... .. ..... .. ... .............. 10 Figure 6 - Target Assembly Pressure Drop Test Results ............................................... .......... .. 12 Figure 7 - Pump Coast-down Results at Various Flows with 25% Margin on t.P ..... ....... ........... 13 Figure 8 - Bench Bypass Test Article Setup ..... .. ...... ........ ......... ...... .. ... .... .. ..... .. ......... ....... .. ...... 14 Figure 9 - Full Labyrinth Seal Bypass System Setup with Standpipe ..... ..... ...... ..... .. ... ..... ...... .. . 15 Figure 10 - Full System Bypass Test Results .. ...... ... .. .. .. .... ...... .. ... ..... ... ........ .... ..... .... ..... .. ... .. ... 17 LIST OF TABLES Table 1: GA Test Pool and MURR Pool Comparison ... ... ... ... .. ...... ... ............... ..... ..... .... ........... .... 2 Table 2 - Test Cases ... ... ...... ... .. .. ..... .... .... .... .... ........ .. .... ... .............. .. ... ... .... ......... .... .. ................... 9 Table 3 - Pressure Drop Data Summary ..... ... ..... .. ..... ......... .... ...... ......... ... ... ... ... ... ...... .. ... ....... .. . 11 Table 4 - Bypass Test Loading Conditions and Requirements .......... ......... ........ ......... ... .... ....... . 15 Table 5 - Bypass Test Results ...... ... ....... ..... .. ........ ..... ...................... .. .......................... .. ...... ...... 16 iv

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B ACRONYMS Acronym Description GA General Atomics GPM Gallons Per Minute HX Heat Exchanger LOPF Loss of Pump Flow Mo-99 Molybdenum 99 MURR Missouri University Research Reactor P&ID Piping and Instrumentation Diagram PSI Pounds per Square Inch PSIA Pounds per Square Inch Absolute PSID Pounds per Square Inch Differential PSIG Pounds per Square Inch Gauge TA Target Assembly TCS Target Cooling System TCSTL Target Cooling System Test Loop v

                                                                                    ~-------

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B 1 PURPOSE AND SCOPE As with all nuclear fission assemblies, cooling must be provided to remove heat generated from fis sion reactions. Validating the analysis of the target system cooling water flow behavior is vital to ensuring proper function of the cooling system when it is installed in the MURR pool. The sp ecific purpose of these tests was to confirm the analysis of the flow and pressure drop through th e target assembly (TA) , to measure and validate the bypass flow through the cartridge , and to measure the pump coast-down time during a simulated loss of pump flow (LOPF) event. This re port describes these tests in detail and provides the results. 2 APPLICABLE DOCUMENTS Al ist of applicable documents is provided below. DOCUMENT NUMBER DOCUMENT TITLE 30441 P00026 Target Cooling System Flow Test Procedure 30441 R00017 ANSYS Target Cartridge , Housing Structural Analysis Design Calculation Report 30441 R00019 Target System Cooling Calculation Report 30441 R00032 RE LAP Accident Analysis and FRAPTRAN Target Rod Transient Analysis Design Calculation Report 30441R00038 Computational Fluid Dynamics Analysis of Target Housing Design Calculation Report QAPD-30441-11 Quality Assurance Program Document QAPD-30441-11 Reactor-Based Molybdenum 99 Supply System (RB-MSS) 3 FULL SCALE SYSTEM FLOW TESTING Th e main objective of the target cooling system (TCS) flow testing was to validate the pressure drop through a target assembly, simulate a loss of pump flow (LOPF) event, and measure the by pass flow through the labyrinth seal.

3. 1 Description of Test Rig Th e TCS tests were conducted at the General Atomics (GA) Torrey Pines campus in Building G35. The target cooling system test loop (TCSTL) duplicates as best as possible the piping sy stem, location of target assembly at proper water depth, key flow instrumentation, and primary pa rameters to be implemented at MURR. Table 1 shows a parameter comparison between the T CSTL at GA and the reactor system at MURR.

1

Attachment 11 Target Cooling System Flow Test Report 30441 R000451B Table 1: GA Test Pool and MURR Pool Comparison Parameters GA Test Pool MURR Pool Diameter 6 feet 1O feet Depth 27.5 feet 30 feet Target Assembly Same as MURR 25.8 feet Water Depth Number of Target 1 TA and 1 bypass valve 2 Assemblies Pipe Size Same as MURR 3inches Pump Same as MURR Model : 3796 MTi Size: 3x3-13 Pressure drop simulated via Heat Exchanger HX is part of cooling skid valve (HV-305) 5.5 nominal pH Conductivity 5.5 nominal pH Water Chemistry

                                       - 2 µSiem                      Conductivity < 2 µSiem The target assembly water depth (25 .8 feet) was measured from the top of the operating water level at MURR to the bottom of the TA. An underwater pressure transducer (PT-335 with+/- 0.1%

accuracy), was attached to the target inlet which is approximately three feet above the bottom of the TA. The process flow is detailed in Figure 1 with the piping and instrumentation diagram (P&ID). Figures 2 and 3 show the TCSTL setup. It is important to note that the suction line in the TCSTL has the same overall size and liquid volume as the layout at MURR required to ensure proper pump priming. The supply line from the pump to the TA is slightly shorter in length compared to the MURR design and does not contain the main heat exchanger (HX). As a result, a valve (HV-305) was added to simulate the highest system pressure drop. The water pH and conductivity were tested weekly to ensure the water chemistry standards were maintained. Appendix A specifies the equipment and instrumentation used for testing. The test equipment in the TCSTL consists of:

  • One fiberglass surrogate pool
  • One target assembly (consisting of a cartridge , diffuser, target housing , and 11 stainless steel surrogate target rods)
  • One surrogate bypass valve (HV-200 shown in Figure 1)
  • One self-priming pump (refer to Appendix B for pump specifications and performance test from pump manufacturer)
  • Target cooling system piping (PVC), support structures and valves designed to mimic the setup at MURR.

2

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B

  • Instrumentation (including flow meters, pressure gauges, and an underwater pressure transducer).
  • Transparent graduated standpipe.

3

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Target Cooling Main Cooling Sydem -----r--:::l:.ilW Pump Pipin Bypass Valve ( V-200) GA lest Pool Die eter: 6 fee t Depth 27.5 feat Target Assembly Figure 2 - 30 Model of the Target Cooling System Test Loop Design 5

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Tranaparent Graduated Standpipe Target Cooling System Piping Bypaaa Valve (HV-200) GA Ted Pool Target Aaaembly Location Figure 3 - GA Target Cooling System Test Loop Setup 3.2 Test Procedures 3.2.1 Target Assembly Pressure Drop Test The objective of this test was to verify the pressure drop from the target inlet through the diffuser outlet as a function of flow rate. Test flows values were set to 85% , 100% and 115% of the nominal target assembly flow rate ( 107 GPM at 100% ), which is the calculated nominal flow rate from analysis document 30441 R00021 . This flow rate was measured to within the +/-0.5% accuracy of the flowmeter used for the tests. A gasket seal was placed on the TA upper and bottom cartridge flanges to ensure that accurate flow and pressure drop measurements were made by eliminating these as potential bypass paths . Figure 4 shows the upper and lower gasket seal locations. The diffuser outlet pressure was calculated by taking the measured absolute pressure reading from PT-335 and subtracting 14.7 psi (to convert the pressure from absolute to 6

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B gauge) and 9.9 psi (to account for the 22.8 feet of static water head above the transducer) . The raw data from the pressure transducer were automatically recorded on a data logger and are summarized in Appendix C. Target Inlet Underwater Pressure Transducer Location (PT-335) Diffuse r Lower Fla nge C artrid g e Upper Flange Upper Gasket Seal Lower Gasket Seal C artridge Bottom Flange Plenum Plate Figure 4 - Gasket Seal Location Procedure:

1. Install the target assembly into the pool.
2. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged .
3. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height = 25.8 feet) .

7

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B

4. Open system valves and control frequency of pump to 85% flow through the system.
5. Turn on pump .
6. Record start and stop times to calculate duration . Manually record system pressures, pressure drops, and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals. Run flow test for 15 min.
7. Turn off pump.
8. Control frequency of pump to increase the flow rate to 100% flow through the system.
9. Turn on pump.
10. Record start and stop times to calculate duration . Manually record system pressures, pressure drops, and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals. Run flow test for 15 min .

11 . Turn off pump.

12. Control frequency of pump to increase the flow rate to 115% flow through the system.
13. Turn on pump .
14. Record start and stop times to calculate duration. Manually record system pressures , pressure drops, and temperature data from the instrumentation gauges every 5 mins. Pressure to the target assembly will be recorded electronically at 1 sec intervals. Run flow test for 15 min.
15. Turn off pump.
16. Secure all equipment.

3.2.2 Pump Coast-down Test The objective of this test was to record the flow rate entering a target assembly as a function of time during a simulated loss of pump flow (LOPF) event at room temperature with the decay heat removal valves in the closed position . Valve HV-320 was adjusted in order to test for the worst case system pressure drop by analysis in document 30441 R00019. This system pressure drop analysis has 25% margin built into it for the 85% and 100% flow cases and 13% margin for the 115% flow case . The margin on the 115% case was limited by pump performance . Table 2 provides a summary of the flow and pressure drop parameters used for this test. The decay heat removal valve (FV-105), in the test rig remained closed during this test to ensure all the flow went through the target assembly. Procedure:

1. Install the target assembly into the pool.

8

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B

2. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged .
3. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height 25.8 feet).
4. Open all system valves and control frequency of pump to 85% flow through the target assembly.
5. Turn on pump.
6. Open all bleed valves to release any trapped air. Once all the air is released , close the bleed valves.
7. Adjust valves HV-100 and HV-200 to have equal flow for each flow meter.
8. Adjust valve HV-305 and increase the frequency of the pump to obtain the expected L'.P (see Table 2) across Pl-335 and Pl-302.
9. Manually record system pressure data from the instrumentation gauges (Pl-335, Pl-302 , and DPl-310).
10. Ensure data loggers are connected to the flow meters.
11. Turn off power to the pump.
12. Record flow rate manually at 1 sec intervals until the flow reaches 0 GPM . Flow rate will also be recorded electronically at 1 sec intervals.
13. Turn on pump.
14. Repeat steps 7-12 for the 100% and 115% flow cases shown in Table 2.

Table 2 - Test Cases Expected f1P Test Case Description Source (psid) 85% Flow with 25% Margin on tiP 100% Flow with 25% Margin on L'.P

                                                            **         30441R00019 30441R00019 3.2.3 115% Flow with 13% Margin on tiP Labyrinth Seal Bypass Test
  • Pump limit The objective of this test was to measure the bypass flow between the cartridge bottom flange and the target housing lower plenum . The full scale test was performed with the locking mechanism torqued to 30 in-lbs (each bolt). The lower gasket seal (Figure 4) was removed and the outlet of the diffuser was blocked such that the water volume lost was through the labyrinth seal and the pins in the cartridge. The expected bypass through the cartridge pins is small (much less than 1 GPM), as the internal pressure should help "self-seal" the leak path (Figure 5) . The leak through the pins and the leak through the labyrinth seal were measured as a single leak.

9

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Figure 5 - Bypass Flow Paths for Labyrinth Path and Cartridge Pins Procedure:

1. Remove the cartridge from the pool.
2. Block the diffuser outlets to prevent water flow.
3. Remove the lower gasket seal on the cartridge bottom flange .
4. Insert cartridge back into the housing inside of the pool.
5. Check to see that the cartridge is secured in the housing and that the locking mechanism is engaged . Torque down cartridge locking mechanism to 30 in-lbs.
6. Check the fill level of the surrogate pool to the normal MURR operating pool level (water height= 25.8 feet).
7. Torque down cartridge locking mechanism to 30 in-lbs.
8. Turn on pump.
9. Fill the pipe going to the target assembly with water. The transparent graduated standpipe should be filled to approximately 42 inches of water (Figure 9).
10. Turn off pump and close valves HV-200 and HV-302 .

11 . Pressurize the pipe going to the target assembly with compressed air to the value obtained for the pressure drop through the target assembly for the 115% flow case, which is the highest pressure and flow conditions the cartridge will ever see .

12. Measure and record the water drop in the transparent standpipe as a function of time ensuring static pressure stays above the required value .

10

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B

13. Let system run for 30 sec.
14. Secure all equipment.

4 TEST RESULTS 4.1 Target Assembly Pressure Drop Test The design ana1ysis of the pressure drop from the target inlet through the diffuser outlet detailed in document 30441 R00038 has been validated by agreement to within 2% of the expected range of the extrapolated test data. The tests were run at slightly higher volumetric flow rates when compared to the values used in the analysis. The polynom ial equation shown in Figure 6 was obtained from the test data in Appendix C - Raw Pressure Drop Data Summary. The polynomial equation was used to determine the pressure drop at 20°C for each corresponding flow rate. The results are shown in Table 3. All tests at GA were run with an inlet temperature to the target of 20°C. During normal operation at MURR however, the target inlet temperature will be 29°C with a TA average temperature of 34°C , which was the temperature used in the ANSYS-FLUENT analysis. To account for the temperature difference between the operating conditions at MURR and the test conditions at GA, the calculation detailed in Appendix D was applied to extrapolate the test va lues to a system with an average temperature of 34°C. Table 3 lists the test values at 20°C, and both the extrapolated test values and the analysis prediction values at a TA average temperature of 34 °C. The test data extrapolation resulted in a less than 2% decrease in the pressure drop values when adjusting the temperature from 20°C to 34°C. The flow values used in the analysis did not include the bypass effect and assumed all the flow would go through the cartridge to cool the target rods. For 100% flow (107 GPM) at 34 °C average TA temperature, ANSYS-FLUENT predicted

  • psi and the extrapolated test value at 34°C average TA temperature yielded
  • psi. The difference between the two values is 1.5%. Figure 6 shows the pressure drop through the TA as a function of flow rate for both the analysis and test values. It also shows that the pressure drop values are within the design limit of
  • psi for the target housing, which has built in margin (refer to Table 2 in document 30441 R00017 for more details). For reference , the test data sheets have been provided in Appendix E- Target Assembly Pressure Drop Test Data Sheets.

Table 3 - Pressure Drop Data Summary t.P at t.P at t.P OP Source 91GPM 107 GPM 123 GPM (psi) (psi) (psi) Test Va lu es (20°C) Test Va lues (Extrapo lated t o 34°C) ANSYS-FLUENT Prediction (34°C) 11

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B

                                 ~P as a Function of Flow Rate y
  • 0.00109x' + 0.00976x
  • 0.00111 R' =0.99998
                                                                                                        .... -*:****:f .

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                                                                                                                                      ~
  • T*st Values (20'C)
  • ANSYS-fLUENT Pr*diction (34'C)
  • Extrapolot*d T*st Values (34'C)
                                                                                           ----- Target Housmg D*sien Limit
           ..................................0  Flow Rat* {G PM)

Figure 6 - Target Assembly Pressure Drop Test Results 4.2 Pump Coast-down Test Results A loss of pump flow (LOPF) event can be caused by loss of electrical power, pump failure , or system blockage. This test only covered the loss of electrical power event. The LOPF impacts both target assemblies and includes pump coast-down and fluid momentum to ease the transition from forced flow to natural circulation flow . Although the decay heat removal valves in the MURR system can be opened to improve the natural circulation cooling during LOPF , the butterfly valve (FV-105) remained closed during this test. This test measured the amount of time it takes the pump to coast down to 15% flow when the pressure drop through the system is increased to the highest value by analysis which has 25% margin (see Table 2 for values) . The pump coast-down times for three different flow cases are shown in Figure 7. It took approximately 9 seconds for the flow rate to decrease significantly from 100% flow (-112 .8* GPM - see Table 4 for flow values with bypass flow included) to about 15% flow (16 .2 GPM). 12

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Pump Coast-Down at Varied Flow Cases with 25% Margin on 11P

               ********* ....                                                                                                           *.. ..
  • 85%Floww/Margjn
  • 100% Aow w/Mar'i)n
                                                                                                                                        *........ 115% Aow w/Margjn
                                                                                       **. ..         . **....                                                                        ~
                                                                                                  * . *: :::: . ;:.::::                                                               ~
                                                                                                                        . :: ::;,::;.::;o 2                       3                       4                    6             7                      8                   9 Time ( s ~)

Figure 7 - Pump Coast-down Results at Various Flows with 25% Margin on f'P 4.3 Labyrinth Seal Bypass Test Results A bench test was initially conducted to obtain the required torque value for the final system to produce an acceptable leak rate through the labyrinth seal. The results from the bench test demonstrated the labyrinth seal required a torque of 30 in-lbs to each bolt in the final system in order to operate below the maximum 5% total flow. An image of the bench test article can be seen in Figure 8. The torque value from the bench tests was then applied and used on the locking mechanism in the full scale test. 13

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Figure 8- Bench Bypass Test Article Setup Figure 9 shows the setup for the full scale test. Similar to the bench test, a transparent standpipe was installed in the location shown in the P&ID. The standpipe is made from clear PVC to be able to measure the water that is going through labyrinth seal and the cartridge pins . 14

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B P - 18.5 p si here Initial Water Level Ofl*~~G-.. n-,._~

                                                         ,._,,,__Qoet
                                                       " - ~tt n-*10 Standpip e Plugged Diffuser Figure 9 - Full Labyrinth Seal Bypass System Setup with Standpipe The maximum allowed bypass for the three different flow cases and the pressure requirements for the labyrinth seal are summarized in Table 4. The tests were run at the worst case pressure condition which was derived from the 115% case shown in Table 4. The tests ensure that the pressure was always greater than 17.4 psi, for instance Run 1 was executed at 18.6 psi (Table 5). The cartridge was unlocked , lifted out of its seating position , re-seated and locked back down again to thirty in-lbs for each test to simulate and measure the consistency of the seal through several runs . Eleven cartridge lifting and re-seating operations were performed and resu lts can be seen in Figure 10.

Table 4 - Bypass Test Loading Conditions and Requirements 5%Max Flow Rate Cartridge Pressure Flow Case Allowed Bypass (GPM) Report 30441R00017 (GPM) 85% 95.9* 4.8 100% 112.8* 5.6 115% 129.7* 6.5

  • Flow values include the 5% maximum bypass flow through the cartridge pins and labyrinth seal.

15

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Table 5 - Bypass Test Results 9/1 2/ 2017 9/14/2017 9/15/ 2017 9/17/17 Run 1@ Run 2@ Run3@ Run4@ Run 5@ Run 6@ Run 7@ Run8@ Run9@ Run 10 Run 11@ 18.6 psi 18.8 psi 19.2 psi 19.0 psi 18.8 psi 19.0 psi 18.6 psi 18.9 psi 18.8 psi @18.7 18.6 psi back back back back back back back back back psi back back pressure pressure pressure pressure pressure pressure pressure pressure pressure pressure pressure GPM GPM GPM GPM GPM GPM GPM GPM GPM GPM GPM 3.78 4.43 3.96 4.23 3.41 3.38 3.43 3.21 3.29 4.23 3.09 The tests confirm that the labyrinth path slows the amount of water bypassing the cartridge, satisfying the maximum design requirement of 5% . The allowed bypass at 115% flow case is 6.5 GPM and the highest bypass measured in the tests is less than 4.5 GPM, including the cartridge pins. The average of the eleven runs is 3.7 GPM providing margin to the design requirement. 16

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B Full System Bypass Test Results for 115% flow for a torque of 30in-lbs 7 6.5 Run 1 @ 18.6 psi back pressure 6 Run 2 @ 18.8 psi back pressure Run 3 @ 19.2 psi back pressure 5 Run 4 @ 19.0 psi back pressure

~

Cl. Run 5 @ 18.8 psi back pressure

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s Run 6 @ 19.0 psi back pressure
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 ~ 3                                                          Run 7 @ 18.6 psi back pressure
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CCI Run 8 @ 18.9 psi back pressure 2 Run 9 @ 18.8 psi back pressure Run 10@ 18.7 psi back pressure 1 Run 11 @ 18.6 psi back pressure

                                                          - .allowed bypass (5%) GPM 0

1 Runs Figure 10 - Full System Bypass Test Results 17

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX A - Equipment and Instrumentation Used in Testing Equipment/ Instrument Make I Model Measuring Range OMEGA Pressure Range : +/-15 psi Pressure Gauge (Pl-335) PN : DPG409-015CG Accuracy: +/- 0.08% OMEGA Pressure Range : 0 to 60 psi Pressure Gauge (Pl-302) PN : DPG 1001 B-60G Accuracy: +/- 0.10% OMEGA Pressure Range : 0 to 60 psi Pressure Gauge (Pl-308) PN: DPG1001 B-60G Accuracy: +/- 0.10% Analog Pressure Gauge Ashcroft Pressure Range : 0 to 30 psi (E452434) PN : 45 1082AS 02L XC4 30# Accuracy: +/- 0.25% Differential Pressure OMEGA Pressu re Range : 0 to 30 psi Gauge (DPl-302) PN: DPG409-030DWU Accuracy: +/- 0.08% Differential Pressure OMEGA Pressure Range : 0 to 30 psi Gauge (DPl-310) PN : DPG409-030DWU Accuracy: +/- 0.08% Differential Pressure OMEGA Pressure Range : 0 to 50 psi Gauge (DPl-320) PN : DPG409-050DWU Accuracy: +/- 0.08% Pressure Transmitter Keller Preciseline Pressure Range : 0 to 100 psi (PT-335), DL PN: 0308.00301 .051307.54 Accuracy: +/- 0.1 % Flow Range: Flow Meter McCrometer 100 GPM to 140 GPM (FT-100), DL PN : VW03AE14AA Accuracy: +/- 0.5% Flow Meter McCrometer Flow Range : 100 GPM to 140 (FT-110), DL PN : VW03AE14AA GPM , Accuracy: +/- 0.5% Speed: 1770 RPM Goulds Pumps Flow: 250 GPM Pump Model : 3796 MTi Head: 102 FT (P-310) Pump Size: 3x3-13 Efficiency: 48 .0% Self-Priming Pump Total Power: 13.5 HP NPSHr: 7.8 FT Allen Bradley 480 VAC , 3 Phase VFD PowerFlex 525 AC Drive 25 HP, 18.5 kW Normal Duty PN : 25B-D037N 114 20 HP, 15 kW Heavy Duty A-1

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX B - Goulds Pump Specification and Test Data Model: 3796 Size: 3x3-13 Group: MTi 60Hz RPM : 1770 Stages: 1 Jobllnq.No. : Opti-Temp- HEX Feed Pumps Purcnaser : OPTITEMP Eoouser : Optl-Temp Issued by : Brandon Bond Rev.: 0 ttemlEqu p.No. : ITEM 001 (Base Offer) OuotatJon No. : DF 16-10*25 01 Date : 0112512017 Service : Self Priming to HEX Skid OrderNo. : 60586f)g Certified By

  • Brandon Bond SN/SO : N736H003 Operating Conditi ons Pump Performance Liquid: Water PubllShecl Efficiency: 48.5 % Suction Speci11c Spee<!: 5,018 gprn(US) tt Temp.: 110.0 deg F Rated Pump Efficiency: 46.0 % M*n. HydrauUc FIOw: 56.9 gpm S.G.Nisc.: 1.000/1 .000 cp Rated Total Power: 13.5 hp Min. Thennal Flow: NIA Flow: 250.0 gprn Non-Overloading Power: 15.4 hp TOH: 102.on Imp. Dia. First 1 S1g(s): 11 .7500 in NPSHa: NPSHr: 7.Sn Shut on Hea<l: 121.1 n SOlta slZe: Max. Soll<ls Size: 0 .3750 1n  % SUsp. SOI ds

{bywt.g ): Vapor Press: Notes: 1. Elevated temperature effects on performance are not induded. C

  • TR lrnGAL PUMP CHAAAC TEAISTICS Based on COS 2311 -3

(@GOOLDS PUMPS Po- c o r u lliftl. HI U .S1 Bbulspower RPM 1770 m Model 3796 70 Size. 3X3-t3 ft '!:. 60 :200

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B OpflT MP CERQFICATE OF CONFORMANCE D e; h bruary 28, 2017 Supplier: Opll T mp Inc 1500 tntemational Drive Travel$e Cil)'. Ml 49686 PH: 2"31.11 .293 G nera Atomics Puroh u Order. 4500066103 Put Numb*r: Below Main Pump 1 MODEL3796 TI SCZE'3lc3-13 Self Priming Pum pwJl-Alert 1 Drive (M otor) 480Vl'3ph/60Hz l 258-0037Nll4, Powe!Ffex 525 AC Drive, 480 VAC, 3 Phase, 25 HP, 18 SkW Noemal &Aay, 20HP , 15kW H avy Duty Fra~ E . IP20 NEMA I Open Type, Fi Crall'lg TeSlll'lg S al Nurnb r* Motor: 1033911920, Pump: N738H003, C04.lp er: No Serret Number Qua nt ity: E!i!CI\ llems AbOlle I he eby certify tti11t ell terns f mlsliG'd *9 Inst your eonlrlcllpurchas order 4500066t03 are In conlormanc:e the r quir m s. cificabons, and drawtngS; appl cable to lhal order. Vice P esiden 2 . 28.2017 Engineer ing Signa Ti le Date 1~00 !nta r n tlon~l nr1v , r~av*r3 City, HI 4969 P: 2 1. 9~f.29 l f: 231.9~6.0128

                                                          "'"'". c>p(:! teq>, c B-4

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B I /Gould$ Pumps

          .& ITT                iri rad Produtts DM!Ion 5417 NTJ6H003 0

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Pt. No Cllpacity Pm.er II {gpm) (JIJ (bflp) l"Al 0.3 8.2 01 2 58..2 91 20.5 3 , 2.7 102 M.3

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B IPump $&rial No N736H003 Impeller l'lan>C!tier *,vi) 11 .~~J= (GPM) 250 Sao 3x3-13 Tempe re (oF) 7~.'I . d{ J 102 Type 3796 Accl!otance G d ID [,R.amd Speed 1170 No Cl( Stages Specd\C G.l'My ()() I.m.,-{\l~ ~~ *:J I ITT D ._.,. , 02lqk1

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX C - Raw Pressure Drop Data Summary PT-335 Absolute to Static Absolute Flow Rate Gauge Water Head Time Pressure (GPM) Conversion Adjustment Reading (psig) (psig) (psia) 10:15:14 AM 0 10:15:16 AM 0 10:15:18 AM 0 10:15:20 AM 0 10:15:22 AM 0 10:15:24 AM 0 10:15:26 AM 0 10:28:06 AM 93 10:28:08 AM 93 10:28:10 AM 93 10:28:12 AM .93 10:28:14 AM 93 10:28:16AM 93 10:28:18 AM 93 10:55:56 AM 110 10:55:58 AM 110 10:56:00 AM 110 10:56:02 AM 110 10:56:04 AM 110 10:56:06 AM 110 10:56:08 AM 110 11:13:20 AM 126 11:13:22 AM 126 11:13:24 AM 126 11:13:26 AM 126 11:13:28 AM 126 11:13:30 AM 126 11:13:32 AM 126 C-1

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX D- Calculation for Extrapolating GA ~P Test Values at 20°C (Constant) to ANSYS-FLUENT Prediction Values at 34°C (Target Assembly Average) The pressure drop in a turbulent flowing fluid is governed by the equation: llP =(f Ud + K) (pV /2) 2 f is the friction factor and governs the frictional component of the flow, The friction pressure drop is linearly a function of the density, p and the friction factor, f. f , in turn , is approximately a function of the Reynolds number to the -0.25 power 1 , and Re is a function of p/µ. Thus, (flPtriction)test f (flPtriction)actual = (fp )test f (fp )actual = ftest f factual

  • Ptest f Pactual = (Ptestfµ test)-0*25 f (Pactua1fµactua1)-0 *25
  • Ptest f Pactual =

[ (Ptest f Pactual) f (µtestf µactua1)]*0 *25

  • Ptest f Pactual K governs the momentum and area change component of the pressure drop .

Thus, the momentum pressure drop is linearly a function of the density, p. So, (flPmomentum)test I (flPmomentum)actual = Ptest f Pactual Our test is basically carried out with water at 20°C , but the real flow through the target will be at an average temperature of 34 °C, with the inlet at 29°C and the outlet at 39°C. For the target flow at 2 atm : Test conditions Actual conditions Test/Actual p (kg/m3)avg 998.2536 994.4179 1.0039 p (kg/m3)inlet 998 .2536 995.9924 1.0023 p (kg/m3)outlet 998.2536 992 .6396 1.0057

µ (kg/m sec)avg              0.001002                                 0.000734                               1.3651 D-1

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B In addition, it is noted from GA report 30441 R00038 that of the total - psid target assembly pressure drop, - psid is the momentum pressure drop at the assembly inlet, - psid is frictional pressure drop along the target rods, and - psid is the momentum pressure drop at ~ the assembly outlet. Thus - frictional pressure drop and -% of the total pressure drop is inlet momentum drop, - is outlet momentum drop. Assuming the same pressure drop distribution through the test configuration would mean that is ~ (f1P) test / (f1Pactua1) = -

  • 1 .0023 +
                           -*(1.0039 I 1.3651 )-025
  • 1.0039) +
                           -*1.0057
                        =                              1.0208 Thus the measured pressure drops for the target assembly will be about 2.1% higher for the test than the actual system.

1 Blasius, P. R. H. 1913. Das Aehnlichkeitsgesetz bei Reibungsvorgangen in Flussigkeiten. Forschungsheft 131, 1-41 . D-2

Attachment 11 Target Cooling System Flow Test Report 30441R00045/B APPENDIX E - Target Assembly Pressure Drop Test Data Sheets OAfA SHEET Target Cooling Sys1em flow Test (30441PID026_A) Section 3.3.2

  • Tarcet Assembly Pressure Crop Test
     ~%Flow case                                        6'tli                               D*lo:~                                                                              011.:..1.l.!JJ. 7

_ v_r_o_r.., __ que _ncy _ _...__ __,lope~10<:

    ..          IH*)             'fO       .                         QAR.viow: ~

a..*.. a.w ,w MtMaster t\c.,tt-:-.M. Time Ga1.11e Elaspod Pt-335 Pl-302 DPl-310 Pi-308 FT-110 FT-100 OPl-3 20 SJN: l*s;ic)A OPl -30 2 PT-HS

                                                                                                                                                                    't~~<. ... ,le..
         'Tlm*        (min)      (psigJ       IPsil!I     (pslg)         (psi*)      (GPM I       (GPM)        (ps!IJ           (psij)     (psi*)      (DSIO) 10 ~ 1.'          0      -'1.')       14.1.       t -1           ... 0         'I~        q'?>         \,')          10. ~          .1 10: :?."<          5    - '1 . ~       1"<.'l.. t.\             I \.I>      'I>         ...~          ** .s        10°!1         .1 2.1                         'I'!.        'I'!>                                   .1                          , ... t 10 '. l'I 10'   '1'1 JO 15
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                                                                                                              ,,5
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                                                                                                                                         ,,                         1'\'f' DATA5HE£T Torge l COollng Symm Flow lost (3040P00016_A)

Sec:tk>n 3.3 .2 - Tareet Assembly Pressure Drop Test

      ~%Flow case                                       ~
                                                           , / ()..-/                                 ~1.1.-.                            ~/
     , - - - - - - - - , - - -..,Oper11or:

VFO lffquency

     ~--'-IH_z.;.)_ __.__'1_1_            _,

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                                                                                                               - --McMaster                        ~ t-*M.1 Time                                                                                                     Gau1e flo"'.....,1 ei..sped    Pl-335      Pl-302     OPl-310         Pl-308       FT-110       FT-100     DPl-320       S/N uno*      DPl-302      PT-335           .,.._..,. ..... t:4"'f le..
     ,_    Time        (min)       (psig)                  (psi&)                      (GPM)                                                (psigl       (psittJ 10 : '11           0    -~-"'

(ps*) io.c;  ;,I,, (psig) It.-<- lbl IGPM)

                                                                                                    \10 (Psis I 2..2.

(psiel

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B DATA SHEET Torg* t Coo lfng System Flow Test (304 41P00026_A) Section 3.3.2

  • Tal'lel Asse.mbty Pressure Drop Test

_1_1s__%FlowCase ./ 0 /_ I ~dtp / Oate:~7

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                                                                                                                                        ~&. ..uJ t C McMHtU               £*-..**...z-u1 Time Elosped      Pl-335     Pl-302  DPl-310      Pl-308      FT*llO     FT*l OO   DPl-320 Gauce SIN C* Sl04  DP l*l02    PT-335      , ..,..,

llme (min) (p>ic) (psig) (psig) (P>i*l (GPM) (GPM) (p>ld (p>ig) (Psi* l (psig)

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Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX F - Measuring & Test Equipment (M& TE) List with Certificates of Calibration M&TE Name M&TE Asset No. Calibration Due Date Pressure Gauge QC-15-240 9/29/2018 (PI-335) Pressure Gauge QC-15-238 12/22/2018 (PI-302) Pressure Gauge QC-15-239 12/22/2018 (PI-308) Differential Pressure Gauge QC-15-242 12/20/2018 (DPI-302) Differential Pressure Gauge QC-15-243 12/ 12/2018 (DPI-310) Differential Pressure Gauge QC-15-246 2/20/2019 (DPI-320) Pressure Transmitter QC-15-259 5/30/2019 (PT-335) Torque Wrench QC-05-147 12/6/2017 F-1

Attachment 11 Target Cooling System Flow Test Report 30441 R00045/B APPENDIX G - Laboratory Notebook Reference All test data were recorded in Lab Notebook No. 13569. Test Lab Notebook Page No. Target Assembly Pressure Drop Test Page 8 Pump Coast-down Test Page 11 Labyrinth Seal Bypass Test Page 14 G-1}}