ML20125C331
ML20125C331 | |
Person / Time | |
---|---|
Site: | Hatch |
Issue date: | 12/31/1979 |
From: | Kelly R GEORGIA POWER CO. |
To: | Office of Nuclear Reactor Regulation |
References | |
RTR-NUREG-0578, RTR-NUREG-578 NUDOCS 8001080458 | |
Download: ML20125C331 (49) | |
Text
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~ - ' Georgia Powsr Cornpany 230 Peachtree Street Post Office Box 4545 Atlanta, Georgia 30302 Telephone 404 522-6060 R.J.KeHy %ce President and General Manager Georgia A
Power u Power Generation f.,g p,pem mtre systern December 31, 1979 Director of Nuclear Reactor Regulation 1 U. S. Nuclear Regulatory Commission Washington, D. C. 20555 i NRC DOCKETS 50-321,50-366 OPERATING LICENSES DPR-57, NPF-5 EDWIN I. HATCH NUCLEAR PLANT UNITS 1,2 IMPLEMENTATION OF NUREG-0578 REOUIREMENTS Gentlemen: Georgia Power Company's propor..:d actions for compliance with the requirements of NUREG-0578, as supplemented by the subsequent NRC correspondence of October 30, 1979, were described in our letters of October 19, November 21, December 20, and December 28, 1979. The commitments of those letters scheduled for completion in 1979 have been met. Further information is prov1ded in the attachments to this letter in the cases of the three items listed below: 2.1.4 Attachment 1 gives a list of essential and non-essential systems ' with clarifications. Unit 1 modifications are underway and will be completed prior to its return to power operations. Unit 2 mod-ifications are pending arrival of necessary hardware which is expected shortly. 2.1.6A Attachment 2 gives a description of the Leak Reduction Prevention Maintenance Program at Plant Hatch, along with the leak rates measured from the following systems: Unit 1 - Core Spray, RHR, 1 and CRD; Unit 2 - HPCI, RHR, Core Spray, Jockey Pump, and CRD. The remainder of the systems will be completed per the schedule given in Attachment 2. Maintenance Requests have been issued to repair excessive leakage found in the course of the leakage measurement as part of the Immediate Leak Reduction Program. 2.1.6B The results of the shielding design review indicate some possible problem areas. The areas and proposed possible solutions are summarized in Attachment 3. No interim modifications are re-quired. Complete evaluation and plant modifications are 90009005 hh i
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1 i Georgia Power 1 Director of Nuclear Reactor Regulation December 31, 1979 Page 2 intended to be completed by January 1, 1981, in accordance with the October 30, 1979, letter of the 5"dC. If further clarification is required, please contact this office. Yours very truly, a R. J. Kelly l Attachments ' WEB /fi l xc: R. A. Thomas 1 G. F. Trewbridge, Esquire R. A. Rogers, III l 90009006
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,' -/ Bechtel Power Corporation
![y Engineers-Constructors ATTACHMENT 1 '
15740 Shady Grove Road / Gaithersburg, Mayland 20760 : i 301-948-2700 November 12, 1979 Mr. J. R. Jordan Georgia Power Conpany P. O. Box 4545 Atlanta, Georgia 30302
Dear Mr. Jordan:
E. I. Hatch Nuclear Plant, Units 1 & 2 Bechtel Job 6511-013/033 Essential and Nonessential Penetrations (NL72G 0578 Task 2.1.4) File: A-29. 3 /A-60. 31/B-GP-64 20 We have concluded our reviec of containment penetrations as required by the subject task. A ce=plete listing of penetrations and applicable PDCR's is attached. As a result of our review, the containment isolation provisions have been found to be in accordance with SRP 6.2.4, where applicable. Some of the penetrations do not receive isolation signals post-accident for various reasons, and review of the logic for non-isolation resulted in no design changes recommended. Processing of the PDCR's and scheduling the i=plementation of the design changes is not a part of this letter trans=ittal. If there are any questions, please advise. Very truly yours, R. A. Glasby i Project Engineer RAG:MSD:WJP:1f Enclosure ec: V. C. Valekis, w/o enc 1. L W. A. Widner, w/ enc 1. QnnnQnnf
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FLANT HNP UNIT 1 NOTES:
- 1. The EPCI discharge / injection valve E41-F006 opens when the steam turbine admission valve E41-F001 opens on the HPCI AUTO-START signai. During the injection sequence, check valve B21-F010B will be opened by EPCI injection flow and check valve B21-F032B will be seated by the HPCI injection flow. Hence the penetration is classified as ESSENTIAL based on RPCI operation. For a rapid RFV depressurization event, the B21 system check valves will close when reactor feedwater flow decreases to zero flow.
- 2. Although the RCIC system is not a part of the ECCS, the system will re spend on low RFV level (if available). The RCIC discharge /
injection valve E51-F013 opens when the steen turbine ad=ission valve E51-F045 opens on the RCIC AUTO-START signal. During the injection sequence, check valve B21-F010A vill be opened by RCIC injection flow and check valve B21-F032A will be seated by the RCIC injection flow. Since RCIC is not required for ECCS, the penetration is classified as NONESSENTIAL; however, RCIC system operation in parallel with the HPCI system, given a s=all LOCA, would enhance core cooling and therefore the penetration should be capable of allowing fluid injection. Also, since the penetration isolation device is effectively controlled by flow direction (si=ple check valves) no isolation signals are required.
- 3. The isolation signals for this penetration are excessive stea= line flow, abnormal equip =ent space temperatures and/or low steam pressure.
Since operation of the RCIC post-accident results in enhanceo core cooling, no codification of isolation signals is censidered necessary. 4 The is olation signals for this penetration are excessive stean line flow, abnor=al equipment space te=perature and/or low steam pressure. Operation of the EPCI is designed to provide ECCS service for the small LOCA. Therefore, the penetration is classified as ESSENTIAL.
- 5. For the EdI-2 type event, where core da= age has occurred without failure of the reactor coolant pressure boundary, the RER S/D COOLING SUCTION should be available for the long ter= cooling event. For this reason the penetration is classified as ESSENTLAL, although there are alternate means available to acco=plish long ter= cooling.
- 6. The penetration isolation valves are opened aute=atically post-accident by signals from the RPV level, RFV pressure and Dryvell pressure instruments. These penetrations provide ESSENTIAL services for ECC.
- 7. Operation of the RER in the S/D Cooling Mode =ay result in use of the RFV Head Spray. No change in isolation logic is required.
90009011
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- 8. Equipment and floor drain sump discharge valves are normally l operated to OPEN during sump pumping operations. However, the valves are normally CLOSED. No change in the isolation logic is requir ed.
- 9. This penetration is provided to introduce instrument air /N2 int 0 the dtywell for operation of the ALTO-DEPRESSURIZATION SYSTEM, MAIN 1
STEAM ISOLATION VALVES, DRYk* ELL COOLING k'ATER VALVES, CORE SPRAY l AND LPCI TESTABLE CHECK VALVES and the RPV HEAD VENT VALVES. The syste= outside the containment is seismic category 1, safety grade i with a seis=ic category 1 Nitrogen gas source backup for the l pressure accumulator tank. Post-accident the system backs up the l I gas accu =ulators provided for the safety related valves in the 1 c ontainment. No change in the isolation logic is required. l
- 10. This penetration is provided to introduce Nitrogen gas into the )
pri=ary containment for pressurization of the containment to reduce Hydrogen gas concentrations post-accident.
- 11. This penetration is provided to allow Nitrogen gas makeup to the primary contain=ent as necessary to maintain a Nitrogen rich, Oxygen deficient ar=osphere in the primary contai= ment. No change in isolation logic is required.
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- 12. This penetration is provided to allow a controlled release of the containment at=osphere p'ost-accident, to allow control of Hydrogen gas concentrations.
- 13. This penetration is provided to allow venting of the primary contain-ment during normal plant operation, to allow discharge of the contained at=osphere as needed to =aintain containment pressure less than 2 psig.
Containment pressure increases occur during operation due to normal valve operator gas leakage and/or thermal energy changes. 14 Containment design and post-accident response analyses indicate that l the spray systems are not required. Sprays are provided by the LPCI System and are manually initiated after satisfying the refill per=issive level interlocks.
- 15. These penetrations are provided with flow reversal preventing valves (check valves and/or stop check valves). Position (i.e. - OPEN or CLOSED) is dependent on flow through the piping system.
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lSup: cup Fe NocuAL veur /! !!ClClC!CI !ICCI 22l A l W Ac#iCEyr u CEcov e tuGR n l l/On Ml0lcl l 2225 I } . l l/l!c Arl oIc l l I 2 26 A !Ccer speAy cou rs.ow res- lt/ l O clc l clc l l _j,
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!ccer speAy usw rtow lV YM A !+ o!+CAreeceswrv' c. t Loa,e I !
lawa A pe, min Flo w / lht! A l +- O & o @ F ARES w e m nu L.co r e ' 22o % A ,ceur a- cem a, wavA V Onl c l c c uc as.c o H, eeceu s,~c e ! l ;El } lt/On!CIC Cl k l ' 22I lPnr. Aces oeist # c.e creol veas r 1 V0cldlC i C. ! Fe c wt o P Hi Rr c o u ty res ar1R l loo 2ss A l e 1 70/rlclciel } I/Co 72 lcevoca. ro. recos AP / llclcIcICl l l _C O ! 233 1 ._ 4 / lcleIclcl il o o ' Il l l 1 90009015 I
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A UD ARE ESS E Af r/h(._ fo POST- ACC /De ur A S S E5 S Me ^./ T" Of C CA JOI TIO U S - i I iH I I l l l l l I I I 11 I I II I I I ll l l l , I . I il I i l I I 1 11 I II I 11 I I I L. I I I I I ll l l l I I I ll l l l l l l I l l 1 II I Il l l l l 1 IiI i i ii) l i l i l I I I I i I I I I I I ! i ' I I I I
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90009016
O PIRTT RNP UNIT 2 NOTIS .
- 1. Although the RCIC ryste= is not a part of the ECCS, the system vill iespond on low RFV level (if available). The RCIC discharge /
injection valve E51-F013 opens when the steam turbine admission valve E51-F045 opens on the RCIC AUTO-START signal. During the injection sequence, check valves B21-F010A and F077A vill be opened by RCIC injection flow and check valve B21-B076A vill be seated by the RCIC injection flow. Since RCIC is not required for ECCS, the penetration is classified as NONESSENTIAL; however, RCIC system operation in parallel with the HPCI system, given a small LOCA, would enhance l core cooling and therefore the penetration should be capable of allowing fluid injection. Also, since the penetration isolation device is effectively controlled by flow direction (ti=ple check valves) no isolation signals are required.
- 2. The EPCI discharge / injection valve E41-F006 opens when the steam turbine ad=ission valve E41-F001 opens on the EPCI AUTO-START signal.
During the injection sequence, check valves B21-F010B and F077B will be opened by HPCI injection flow and check valve B21-F076B will be , seated by the EPCI injection flow. Hence the penetration is classi- j fied as ESSENTIAL based "on EP11 operation. For a rapid RPV deprersur-ization event, the B21 ryste= check valves will closed when reactor feedwater flow decreases to zero flow.
- 3. The isolation signals for this penetration are excessive steam line flow, abnormal equipment space te=peratures and/or low steam pressure.
Since operatien of the RCIC post-accident results in enhanced core cooling, no modification of isolatien signals it considered necessary.
- 4. The is olation signals for this penetration are excessive steam line flow, abner =al equip =ent space te=perature and/or 1~- ;ea= pressure.
Operatien of the EPCI is designed to provide ECCS ser sce for the small LOCA . Therefore, the penetration is classified as ESSENTIAL.
- 5. For the TMI-2 type event, where : ore da= age has occurred without failure of the reactor coolant pressure boundary, the RER S/D COOLING SUCTION should be available for the ions ter= cooling event. For this reason the penetration is classified as ESSEh*IIAL, although there are alternate =eans available to acco=plish long ter= cooling.
- 6. The penetration isolation valves are opened automatically post-accident by signals fro: the RPV level, RFV pressure and Drywell pressure instruments. These penetrations provide ESSENTIAL services for ECC.
- 7. Operation of the RER in the S/D Cooling Mode =ay result in use of the
??V Head Spray. No change in isolation logic is required.
I 90009017 i l
. e a
!T
- 8. Equipment. and floor drain sump discharge valves are normally operated to OPEN during sump pumping operations. However, the valves are nor= ally CLOSED. No change in the isolation logic is .
re quired.
- 9. This penetration is provided to introduce instrument air /N 2 into the dryvell for operation of the AUTO-DEPRESSURII.ATION SYSTt ., MAIN erEAS ISOLATION VALVES, DRYa* ELL COOLING WATER VALVES, CORE SPRAY AND LPCI TESTABLE CHECK VALVES and the RPV EEAD VDIT VALVES. The system outside the containment is seismic category 1, safety grade with a seismic category 1 Nitrogen gas source backup for the ,
pressure accu =ulator tank. Post-accident the system backs up the { gas accu =ulators provided for the safety related valves in the l c ontainment . No change in the isolation logic is required. l i
- 10. This penetration is provided to allow venting of the pri=ary contain- i ment during nor=al plant operation, to allow discharge of the contained j atmosphere as needed to maintain contat==ent pressure le ss than 2 psig.
Contain=ent pressure increases occur during operation due to nor=al valve operator gas leakage and/or thermal energy changes.
- 11. Contain=ent design and p'est-accident response analyses indicate that the spray syste=s are not required. Sprays are provided by the LPCI System and are manually initiated after satisfying the refill per=issive level interlocks.
- 12. These penetratiens are provided with flow reversal preventing valves (check valves and/or stop check valves). Position (i.e. - OPEN or CLOSED) is dependent on flow through the piping ryste=. .
)
l 90009018 i O
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l
-' ATTACHMENT 2 l
i i LEAK REDUCTION PREVENTIVE MAINTENANCE PROGRAM INUREG 0578, SECTION 2.1.6.a)~ i The preventive maintenance program for continuing leak reduction at Plant Hatch consists of the following: System inspection, to be performed once per quarter, during system i full flow tests to examine system components for leaks. l Corrective actions taken for any leaks found during ' the quarterly inspection. l Measurements of actual leakage rates witL the system in operation to be performed at one year intervals, with the in t e rv al not to exceed the refueling cycle. '
)
The first quarterly system inspections will be performed during the scheduled full flow tests in January 1980. 1 0 90009019 t 1
/
Inmediate Leakage Reduction Program at Plant Hatch' (NUREG 0578, Section 2.1.6.a) Le!. crate testing for the "Immediate Leakage Reduction Program" at Plant Hatch fo. systems that could carry radioactive fluid outside of containments is in pro.: es s. The antative schedule for completion of leakrate testing for NUREG 0578, section 2."..i.a requirements is as follows: Unit 1 Unit 2 HP:: *Jan. 15 Complete RC:* *Jan. 15 Jan. 15 RHP. Compiete Compiete Con Spray . Complete Complete Jo::ay Pump Jan. 15 Complete CP; Icram Outlet Valves Complete Dec. 31 Pos: LOCA Recombiner NA Feb. 15
*Ur'; 1 HPCI and RCIC test completion is dependent on the length of the present our-;e.
Act.al system leakage rates are being measured with the system in operation. Mair.anance requests have been prepared to repair leaks found during the leakrate tes n g. 1 90009020
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