ML20212B626
| ML20212B626 | |
| Person / Time | |
|---|---|
| Site: | Sequoyah |
| Issue date: | 05/16/1986 |
| From: | Bowman P, Mcintosh C, Reese R TENNESSEE VALLEY AUTHORITY |
| To: | |
| Shared Package | |
| ML20212B615 | List: |
| References | |
| NUDOCS 8608070181 | |
| Download: ML20212B626 (119) | |
Text
r 1
ENCLOSURE 1 REVISED DIESEL-GENERATOR LOAD ANALYSIS 8608070181 860801 PDR ADOCK 05000327 P
ppg
TVA N697 (OE-445)
OE CALCULATIONS
~
TITLE PLANT / UNIT Diesel Generator Load Analysis SQN 1 & 2 PREPARING ORGANIZATION KEY NOUNS (Consult RIMS DESCRIPTORS LIST)
(#
DETS-EEB-SOEP-E3 Diesel Generator Load Study or Power Train Load Study BR ANCH/ PROJECT IDENTIFIERS Each time these calculations are issued, preparer must ensure that the original (RO) RIMS secession nurnber is filled in.
SON-E3-002 Rev (for RIMS
- use)
RIMS accession number 860207D0131 B25 860204 300 APPLICABLE DESIGN DOCUMENT (S)
R.'-
B25 '86 0 516 3 0.1 R_
SAR SECTION(S)
UNID SYSTEM (S)
R_
Revision 0 R1 R2 R3 Statement of Problem ECN No. (Indicate if Not Applicable)
NA Evaluate the load applied auto-Prepared matically to each D-G power train Peter T. Bowman *
(
/
for time equal to and greater than A) 0 seconds for the following
[
Checked C. R. McIntosh*
Nje conditions:
Reviewed 4
1.
Blackout loss of offsite R. P. Reese*
power (BO)
Approved 2.
B0 and Safety Injection Signal G. T. Hall /R
_J (SI) - Phase A Date 3.
B0 and SI - Phase B 2/4/86 f//b/D List all pages added W
by this revision.
Shn
,3h List all pages deleted jgE of this revision.
none ggg List all pages changed by this revision.
all Abstract Each class IE D-G power train was evaluated for the three conditions stated above.
The loads on each board powered by the D-G of each power train were evaluated for operation sequence and operation time. The loads were then summed by HP, starting and
-running KW and KVAR's for each loading time beginning with 0 seconds to 120 minutes.
From this summation the worst case sequential loading on any power train for each of the three conditions was ' determined to be power train 2B.
This worst case loading was evaluated by the diesel generator contractor to determine capability to accept and carry sequenced and random loads within allowed voltage and frequency limits.
The contractor subsequently determined sufficient capability with a reduced load.
This calculation contains unverified assumptions relative to: A delayed SI-Prase B at any step during a B0 event has not been evaluated.
(
0
- Originally signed by This calculation consists of 216 Pages.
Return original to J. D. Hutson, 5-133 SB-K cc: RIMS.SL26 C-K
..... _ _.. _ _ _. ' Z. ~....
. REVISION LOG Title :... Diesel _Cenerator_. Analysis -._
-iDISdRTPTION OF REVISION ---
IUo$a h-r-
3:
"~
1
!!ajor revision to study correcting unverified assumptions, 5/16/86 addition of motor data,- revision to vendors analysis with ---
correct regulator and loads. Added additional unverified assump tions. -- --
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tem
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I l
l TV A 105 34 (EN DES-4 78) l
2 TABLE OF CONTENTS Page 1.
Purpose 3
2.
Assumptions 3
3.
Documentation of Assumptions 4
4.
References 4
5.
Special Considerations 8
6.
Computations / Analyses 8
7.- Summary of Results 10 8.
Conclusions 10 9.
Personnel Involved in Research & Verification Process 10
- 10. Attachments A
Definitions and Codes 11 B
Load list (for D-G Powered Boards) 15 C
Diesel Generator Loading at:
35 a.
Blackout (BO) b.
B0 with Phase A Isolation c.
B0 with Phase B Isolation I
D Diesel Generator Loading Total (Summary) at:
81 a.
80 tSummary) b.
B0 with Phase A Isolation (Summary)
(I)j c.
B0 with Phase B Isolation (Summary)
E D-G Loading Sequence for:
97 a.
B0 on Power Train 2B b.
B0 & SI-PhA on Power Train 2B c.
80 & SI-PhB on Power Train 2B F
International Power Systems Inc.
103 (Norrison-Knudsen Co.) TVA Contract No.
~-.
71C61-92652 Sequoyah Nuclear Diesel Generator Load Sequence (Diesel Engine)
%. _ _. ~. -.,,,.
~
Report No. 6957R (
)
(Generator)
Report No. Later I
C6 4
f e
Y 0712G
3 PURPOSE To determine the KW and KVAR loading at each sequence step of each Standby Diesel Generator. The loading is compared with the diesel-generator capabilities to determine if acceptable voltage and frequency limits are maintained. The fifth Standby Diesel Generator and its support ancilliaries are excluded, l
ASSUMPTIONS l
1.
No alternate feed connections were considered.
2.
Unknown valve stroke time assumed 60 seconds.
3.
Loads without a specific cutoff time are assumed to run continually.
4.
All receptacles, crane, hoist, tank agitators, and evacuation alarms were conidered not in use for the three accident cases.
S 5.
All space heaters, unit heaters, duct heaters were considered off (except pressurizer heaters and humidity control heaters).
6.
All lighting transformer loads are 100 percent demand at. 9 power i
factor (pf). All heat trace transformer loads are 100 percent demand at 1.0 pf.
7 No planned entranee inside containment was considered.
(})
8.
Fire accident was not considered for initial evaluation.
9.
The Auxiliary Feedwater Pump brake horsepower of 540 was analyzed by contractor with increased acceleration time of seven seconds will have no impact on the diesel generator to accept and carry worst case load.
i
- 10. Basler voltage regulators are installed.
'll. The 125 VDC Vital Battery System has adequate capacity to support a
~ ~ ~"-~~ five minute loss of the 480V ac power supply concurrent with a main steam line break and a phase B containment isolation. This assumption is unverified.
- 12. The feeders for vital battery chargers, vital inverters, and 120 VAC instrument panels are sequenced onto the diesel generator five minutes after a blackout and phase B containment isolation. This assumption is unverified.
I
-, 13. 480V Board Room air conditioning equipment is delayed for two minutes and 30 seconds. This assumption is unverified.
Preparek0 Data f'# 4 Check b DetaN/6M6 Rev /
~ " "
l 0712G
4 DOCUMENTATION OF ASSUMPTIONS g
1.
No alternate feed connections were considered (e.g. Component Cooling Water Pump C-S, Vital Battery Chargers) as this would be a technical specification condition.
2.
Of all known valve stroke time, worst case (longest stroke time) was 60 seconds, therefore, all unknown stroke times were assumed 60 seconds.
3.
For worst case condition, loads were considered to run continuously unless cycle times were known.
4.
During normal operation of the plant (not in a maintenance or refueling mode) cranes, hoist, receptacles, etc., would not be in use.
5.
Summer seasonal loads exceed winter seasonal loads; therefore, all space heaters, unit heaters, duct heaters, etc., were considered off except for humidity control heaters.
6.
Since no other information other than rating of transformers was available, nameplate data was used for transformer loading (small transformers 480V or lower).
1 7.
Planned entrances into containment are isolated conditions and not considered normal operations.
8.
A fire coupled with a Nuclear Accident which would initiate a Safety
,h Injection signal is not a design base event, therefore, no fire i
accident was considered for the initial evaluations. The fire pump i
loads were added to the loading sequence (Attachment G) for worst cast loading of the diesel generators.
I i
9.
The AFW Pump will experience a loading of 540 brake horsepower seven seconds following a pump start under worst case steam generator conditions.
(See Post Mod. Test PMT-53.) The increased loading will cease within two hours of the initiating accident. The load torque
~
will vary as the square of shaft speed with ramp delay effect due to
~" ~ ~~~
' pump and pipeline fluid hydraulics. This delay should place the additional horsepcwer subsequent to the next load step.
- - ~ ~ 10. Diesel Generator Contract issued drawing revisions and shipped new EP Portec Inc. voltage regulators to the plant site in 1982. This equipment was not installed by TVA and modeled it as such. Present configuration has Basler regulators.
~
REFERENCES Lotus 123 Lotus Development Corporation (IBM)
Version lA AC APS Loading Analysis OE2EEBCAL001 PreporhA Dat # # W h
Chec b DateNMA Rev /
^ *-
0712G l
5 As-designed Si,ngle-Line Drawings:
({g Diste. Board Dwg. No.
Revision 6.9KV Shtdn Bd 1A-A 45N724-1 R21 6.9KV Shtdn Bd IB-B 45N724-2 R21 6.9KV Shtdn Bd 2A-A 45N724-3 R19 6.9KV Shtdn Bd 2B-B 45N724-4 R19 1
480V Shtdn Bd 1(2)Al-A 45N749-1 R20 480V Shtdn Bd 1(2)A2-A 45N749-2 R22 480V Shtdn Bd 1(2)B1-B 45N749-3 R19 480V Shtdn Bd 1(2)B2-B 45N749-4 R19 480V Reae Mov Bd 1(2)Al-A 45N751-1 R21 480V Reae Mov Bd 1(2)Al-A 45N751-2 R19 480V Reae Mov Bd 1(2)A2-A 45N751-3 R18 480V Reae Mov Bd 1(2)A2-A 45N751-4 R18 480V Reae Mov Bd 1(2)B1-B 45N751-5 R22 480V Reae Mov Bd 1(2)B1-B 45N751-6 R16 480V Reac Mov Bd 1(2)B2-B 45N751-7 R1 480V Reac Mov Bd 1(2)B2-B 45N751-8 R1 480V C&A Bldg Vent Bd 1(2)Al-A 45N756-1 R21 480V C&A Bldg Vent Bd 1(2)Al-A 45N756-2 R17 480V C&A Bldg Vent Bd 1(2)B1-B 45N756-5 R19 480V C&A Bldg Vent Bd 1(2)B1-B 45N756-6 R19 480V Dal Aux Bd 1(2)Al-A,1(2)B1-B 45N732-1 R19 480V Dal Aux Bd 1(2)A2-A,1(2)B2-B 45N732-2 R15 480V ERCW MCC 1(2)A-A*
45N716-1 R10 480V ERCW MCC 1(2)B-B 45N716-2 R8 (jh 480V ERCW MCC 1(2)A-A.1(2)B-B 45N716-3 R2 As-designed Schematic Drawings Dwn. No.
Revision Schematic Series 6.9KV Shtdn Aux Pwr 45N765-1 R13 45N765-2 R15 45N765-3 R17 45N765-4 R11
. ~ ~. ~..
45N765-5 R13 45N765-6 R15 45N765-7 R14 45N765-8 R12
- - - - ~ ~.
45N765-9 RIO 45N765-10 R12 45N765-11 R13 45N765-12 R7 45N765-13 R13 45N765-14 R13 45N765-15 R15 45N765-16 R13 45N765-17 R9 45N765-18 R5 Preparc Dateh-66 DateNM c
0712G Rev_/
6 As-designed Schematic Drawings Dwg. No.
,Perision Schematic Series 480V Shtdn Aux Pwr 45N779-1 R14 (480V shtdn Bds 45N779-2 R19 480V RMOV Bds 45N779-3 R12 480V C&A Bld Vent Bds No. 1) 45N779-4 R9 45N779-5 R24 45N779-6 RIO 45N779-7 R12 45N779-8 R23 45N779-9 R20 45N779-10 R17 45N779-11 R17 45N779-12 R24 45N779-13 R25 45N779-14 R20 45N779-15 R21 45N779-16 R18 45N779-17 R17 45N779-18 R16 45N779-19 R18 480 V Shtdn Aux Pwr 45N779-20 R24 45N779-21 R21 45N779-22 R25 45N779-23 R22 45N779-24 R19 45N779-25 R21
({}
45N779-26 R15 45N779-27 R16 45N779-28 R9 45N779-29 R10 45N779 R15 45N779-31 R18 45N779-32 R12 45N779-33 R13 45N779-34 R10 45N779-35 R10
..-. - ~ ** * ~
45N779-36 R11 45N779-37 R11 45N779-38 R8 4SN779-39 R1
.. _. ~. _....... -.
45N779-40 R3 45N779-41 R4 45N779-42 R1 45N779-43 R0 45N779-44 R0 Turbo-Gen Aux 45N647-4 R9 480V Dal Aux Pwr 45N771-1 R18 45N771-2 R14 45N771-3 R18 45N771-4 R16 45N771-5 R2 ch Prcpore - b DateSH-M 0712G Check b DateYME Rev
7 As-designed Schematic Drawings Dwn, No.
Revision Schematic Series 480V ERCW MCC 35W726-1 Ell 35W726-2 R8 Shtdn Bd Rm Chiller Compr Contract No. 75K35-83709-1 Schematic C5-DGM1405(X1425)A/B Installation Operation Manual Form No. 6139A Cont Rm, Elec Rm A/C Compr Contract No. 72C35-92693 Installation, Operation Manual Form No. 6143 O
1 e M-M W ee9+=w s -s-i i
Preparer Date I'/4-A Chec W Dat/k'l8S 0712G Rev
/
8 SPECIAL CONSIDERATIONS 1
({g The air conditioning system for the control room, electric board rooms, and shutdown boards require special explanation for understanding of their time and sequence of operation.
The equipment (hp) is arranged for power train assignment as is shown below:
POWER TRAIN 1A 1B 2A 2B Note Cont Rm A/C Compe 125 125 A
Cont Rm AHU
~60 60 B
Elec Bd Rm A/C Compe 125 125 A
Elec Bd Rm AHU 75 75 B
Shtdn Bd Rm Chiller Compe 250 250 C
Shtdn Bd Rm AHU 75 75 75 75 D
Note:
A.
These A/C compressors drop out their motor starters on loss of power train voltage. When the D-G restores voltage the motor starter will reconnect the load when the corresponding AHU circuit breaker closes, the temperature switch closes and a 80-100 second anti-recycle plus a 120 second startup relay have timed out. Therefore, these loads were assigned to be started at 200 seconds minimum (see 45N779-7R12).
(f,)
B.
These AHUs use circuit breakers for load energization and do not automatically disconnect on loss of power train voltage.
If one is running at the time of loss of power train voltage then it will be restarted at t=0 when the D-G restores voltage.
If one is not running on loss of train voltage but high temperature or low air flow call for starting when the D-G restores voltage then the load will time on at t-45 seconds (see 45N779-7R12).
C.
The circuit breakers for these chiller compressors automatically trip on loss of power train voltage (CWA relay-45N779-32R12). When the D-G restores voltage the circuit breakers will reclose after a 20 minute time delay (anti-recycle relay) plus a 60 second startup relay have time out. Thus these loads were assigned to be started at 21 l
minutes minimum.
l D.
These AHUs are tripped and restarted by the corresponding chiller compressor circuit breaker (see 45N779-33R13).
Thus they were also assigned to be restarted in 21 minutes minimum.
COMPUTATIONS / ANALYSES l
l A computer data base was prepared showing all loads connected to power distribution boards that would be powered by the Diesel Generator following a loss of'off-site power condition (Blackout-BO). These loads were arranged on a power train basis (lA, 1B, 2A or 28) and then j
(*]p operation coded by applying the codes of Attachment A after l
interpretation of circuit operation from as-designed logic and schematic l
drawings.
0712G Preporerb DateIME Chec b DatebMS Rev /
=
9 The time of start and/or stop, where known, was entered for each load.
(g Possit14 accident conditions are blackout only, blackout with safety injection signal and phase A isolation, blackout with safety injection signal and phase B isolation, and blackout with delayed safety injection and containment isolation. A delayed safety injection and containment isolation signal following a blackout was not analyzed.
The data base was then sorted for the three remaining accident cases:
Blackout, Blackout with Safety Injection Signal Phase A, and Blackout with Safety Injection Signal Phase B.
Initial sorts for the 3 system conditions were sorted using the load list data base (see Attachment B) as follows:
4 a.
Blackout (see Attachment C.a.)
Sorted on Time B0 column.
Loads that are not used following a blackout are deleted, b.
Blackout with Safety Injection and Phase A Isolation (see Attachment C.b.)
Sorted on Time SI column.
Loads that are not used during a blackout with concurrent Phase A isolation are deleted. Sorted on number in SI time on Phase A.
This gives load step when load is applied.
Those with only Phase B designation were deleted.
(ff!
c.
Blackout with Safety Injection Phase B Isolation (see Attachment C.c)
Sorted on Time SI column.
Loads that are not used during a blackout with concurrent Phase B isoletion are deleted.
Sorted on number in SI time on Phase B.
This gives load step when load is applied.
Those with only Phase A designation were deleted.
The loads were summed in horsepower, KW, starting and running KW and i
KVAR, by time for each of the four power trains for the three (3) conditions listed below (see Attachment D).
The worst case power J
' ~ ~ ~
^
train was selected for each condition and a load profile (see Attachment G) was established for evaluation by the D-G contractor (Morrison-Knudsen Company Inc.) of voltage and frequency drop at each of ten (10) steps (0, 2, 5, 10, 15, 20, 25, 30, 90, and 120
--4~
I seconds).
Condition Worst Case Power Train Blackout (BO) 2B B0 plus SI-A 2B i
B0 plus SI-B 2B Loads determined to, start and run randomly were coded as such, summed separately, and were to be applied at each step. The D-G contractor determined the worst case scenario.
Prepare Date NM Chec Date Rev M -
f 7
10, ' (
/
Starting & running KW and KVAR for each load was calculated using+1oad data inforation contained in AC APS Loading Analysis Program OE2EEBCAL001.
Small 120V ac loads were neglected for this calcu'lation J
because of very small starting and running KW's.
Loads were summed for HP, KW, and starting and running KW and KVAR for each step and each accident condition (see Attachment C).
SUMMARY
OF RESULTS Based on the Diesel Generator contractor's Report No. 6957R Revision 1
( B44860425710
) a problem existed with the t=30 second step when all of the original random load was placed at that step. The contractor.
determined that for the three different cases the generator 2B would b'e able to load at the required time and do so with acceptable voltage and frequency for all steps except for t=30 seconds with a Safety In$ection Signal and Phase B isolation. The contractor determined g,eaerator 2B would be able to take a maximum of 4482KW (starting to running) load at the t=30 second step. Reduction of the random loads can be accomplished by delaying the 480V Board Rm Air Conditioning Systex for two minutes and 30 seconds (See Attachment C, 3.20 step) (see SCRSQN8(29). This reduced the random starting KW to 162.1 Kw.
Further evaluatico shows that the set points for the shutdown transformer exhaust fans have temperature setting of 65, 70, 750F, therefore, the starting Kw greet.er thr.n 0 seconds should be reduced by 24.7 Kw. The boric acid pump when shifting to 15 hp would have a A Kw of 9 Kw.
Therfore, starting KW of 217.8 Kw would be reduced to 183.9KW (see Attachment D).
Further reduction bf the total load at the 30 second steo can be accomplished by delaying the 125V Vital Battery Charger for five minutes.
h With the above changes the calculated total load (worst case for BO-SI Phase B) at 30 seconds is 4482 KW.
CONCLUSIONS Diesel Generator 28 passes loading (with the specified delayed loads stated above and in assumptions 11 through 13) for the three accident case (excluding B0 with a delayed SI). Since 2B remains worst case (with delayed loads on all trains) then the other three trains (lA, 13,
~~" '~~
and 2A) pass loading for the three cases.
PERSONNEL INVOLVED IN RESEARCH AND VERIFICATION PROCESS l
PIB - Peter T. Bowman I
RRF - Ralph R. Fernandez l
CRM - C. Randall McIntosh JAP - James A. Purser RPR - Robert P. Reese i
RJM - Richard J. Mayes i
l l
P cpore A DatafW tf.!'
Check b Datn8I@S 0712G pcy
/
1
ATTACHMENT A
Definitions and Codes r
b
'.j l
l e
2 1323G
12 r
ATTACHMENT A DEFINITIONS AND CODES Definitions:
f SI - Safety Injection Signal B0 - Blackout (Loss.of off-site power)
SI-A - Safety Injection Signal - Phase A SI-B - Safety Injection Signal - Phase B CRI - Control Roon' Isolation ABI - Auxiliary Building Isolation CVI - Containment Ventilation Isolation D-G - Diesel-Generator A/C - Air Conditioner AHU - Air Handling Unit TIME B0 - Time of-energization once diesel generator breaker has closed on,a blackout only (Letter designations are given under time codes).
TIME SI - Time of energization once diesel generator breaker has closed on a blackout with a safety-injection signal (letter designations are given under time codes).
CPT - Board compartmeht designation.
(f)
CONT COMB - Control Combination Code (code designations 'are given under cont comb codes).
PHASE A or B - Designates if load is energized or de-energized for a Phase A or Phase B Isolation (X-energize, 0-de-energize).
OPER TIME - Cycle time of a device.
l COMPONENT UNID - End device unique identifier.
~ ~ *""-
KVA - Kilo-Volt-Amperes HP - Horespower KW - Kilo-Watts e
l
?
0712G
13 Codes:
h Time Codes Random variables (may be energized at any time by automatic process control)
T - temperature dependant P - pressure dependent L - level dependent S - special process dependant F - flow dependent Time is expressed in minutes, seconds.
'+w sa br
w')
a o
+
e 0712G
14 y
Cont Comb Codes TM - Force Tripped-Manual restart TL - Force Tripped-Locked out TA - Force Tripped-Auto restart permitted TAD - Force Tripped-Auto restart by diesel sequential timer TAS - Force Tripped - Auto restart by SI, SI-A, SI-B, CRI, ABI, or CVI (Engineered Safeguard Signal)
TP - Force Tripped-Process restart IPD - Force Tripped-Process restart after time delay UMS - Untripped-Manual-on-with seal-in contacts (AC Control)
UMW - Untripped-Manual-on-without seal-in contacts UMO - Untripped-Manual-off UAD - Untripped-Auto Diesel start UA - Untripped-Auto process on UAS - Untripped-Auto-process with run, standby and switchover UA0 - Untripped-Auto-process off UAI - Untripped-Auto on by SI signal OD - De-comissioned OP - Power removed w
'..N_ s
- g l
l l
0712G
O ATTACHMENT B
Load list (for D-G Powered Boards)
Compl Attachment B was:
Prepared by
, 1 72 h Date b /4,/ftt.
Checked by AA.v0 Date f /$ ~ 8 5 v
g F
i 1323G l
l
..__.,..m_..
V 14-in-Bp.,
,I M
Q(M Seyya, er Plant - Lsad List Pa;e }6 h
v z.........
-.e.-..
T!'E T!"E 80APD CPT CONT PHASE DPER CCMPMENT IVA HP Ft1LCAD FN PCTCR ROTOR ROTOR PCTCR 13 51 COMB A 3 TIME MSCRIPT!DN CURFENT EFF FF LR1 LPPF START!NS ST4'tT!NS PUYt!N3 RL1NINS y
.* N.5 n.S ru FVA0 ru FVAR 0.00 0.00 490V CONT & AUI RD6 VENT 90 tal-A 131 UA PAD PCN & FIFE PFOT !!ST PNL 37.5 78.1 37.5 1.000 1.000 0.00 0.000 37.5 0
37.5 0
v 0.00 0.00 (S?V CONT & AUI RD6 VENT ED lAl-A ID2 UA C3T Put IFMR 3
6.3 3
1.000 1.000 0.00 0.000 3
0 3
0 T
0.00 480V CONT & AUI ILD6 VENT ID 1Al-A lA UAI I I PIFE CHASE CLR FAN 14-A 20.00 24.1 0.987 0.893 163.00 0.4:0 18.44!!2 115.9765 16.9:493 9.012672 0.00 45W CONT & RI ILD6 VENT ID 141-A 2C UA! I I EREA 6AS TNT SYS FAN A-A 20.00 24.1 0.999 0.993 163.00 0.450 38.44!12 !!5.9768 16.9:493 9.012672 y
0.00 490V CONT & AUI RD6 VENT ID 141-A 2E UA!
EMER 6AS TRT SYS A-A NTR 19.2 16 I.000 1.000 0.00 0.000 16 0
16 0
i T 49W C37 4 AUI RD6 VENT ID 1Al-A 3A UA SHTH ITER RM 14 EIN FA1143-4 2.50 4.1 0.745 0.545 25.H 0.620 12.34M215.6:21: 1.720:23 2.738675
.T T 480V CNT & AUI ILf6 VENT ID 141-A 38 UA Ship IFMP PM 14 EIM FAN !Al-A 2.50 4.1 0.745 0.545 25.05 0.620 12.349:2 !!.623:51.7BC3 2.MB875 v
T T 49W CONT & RI RDS VENT 83 IAI-A 3C UA
$4T3M IFRR RM 14 EIN FAN 1A2-4 2.50 4.1 0.745 0.545 25.00 0.620 12.34952 15.62915 1.780323 2.732973 0.00 0.00 49W CCNT & AUI BLDS VENT ID 1Al-A 3D UA 0 0 LENT AhN VACUUM FAN 1A
!.50 3.3 0.800 0.720 25.50 0.640 13.00:55 !!.611031.29:06: 1.B:4633 T
0.00 43W CCNT & ACI BLD6 VENT BD 1Al-A 4A U41 I I P!N RM EL 669 CLR FAN IA-4 5.00 6.1 0.899 0.864 45.00 0.520 18.64379 30.62490 4.19?!!6 2.447037 v
i 0.00 480V CONT & Att BLD6 VENT 99141-A 45
- gIIA! I I PEN PM EL 690 CLR FAN 14-A 5.00 6.1 0.829 0.864 45.00 0.520 18.64379 30.6:420 4.1991:6 2.447037 T
0.00 490V CNT & AUI BLD6 VENT ID 141-4 F
'UAt ! I PEN RM EL 714 CLR FAN 1A-A 5.00 6.1 0.899 0.864 45.00 0.500 18.64379 30.62490 4.199156 2.447037 T
0.10 490V CDNT & AUI RD6 VENT H 141-4 54 UAI RES NT PEM PMP 1A-A CLR FAN 3.00 3.8 0.fa9 0.839 32.00 0.!!B 14.2:664 21.15744 2.!40177 1.6474:5 y
T 0.30 480V Chi & AUI RD6 VENT ID 141-4 58 UAI CNTRT SFRAY PMP IA-A RR CLR FAN 5.00 6.1 0.839 0.964 45.00 0.520 18.64379 30.62430 4.19?t36 2.447037 7
0.00 490V CCNT & AUI RD6 VENT 501A1-4 $C UAt I I CCS & AFU PPP SP CLR FAN A-A
!!.00 18 0.?25 0.850 !!2.00 0.450 40.!!!96 79.6896312.t?017 7.5:4791 42W CONT & AUIIL:3 VENT SD 1Al-A 5El L93 TCRNADO DMFR CONT IFMR T
3.6 3
1.000 1.000 0.00 0.000 3
0 3
0 v
0.00 0.00 4!0V CST & AUI BtD6 VENT ID 141-A SE2 tM SERV RD6 VENT RCN 3.00 4.6 0.8:0 0.M5 32.00 0.620
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0.00 0.00 49W CONT & AUI 8tD6 VENT 90141-4 BA UA '
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0.00 0.00 480V CONT & AUI BLD6 VENT #D 141-A BD UAS 480V BD PM II PRESS FAN 181-A 3.00
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- CCNT PHASE OPER COMPCNE47 KYA HP FULLCAD NW CTOR POTOR ROTDR ETCR 83
$1 CCMI A B ' TIME DESCRIPT!3 CURPENT EFF PF LR!
LRPF START!46 STA* TINS RW4!46 Rtm4!s6 v
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0.30483 REACTCR CV ID 141-4 SC UA!
I !.00 CNTMT SPRAT Ntt 14 ISDL VLV 3.30 3.2 0.700 0.600 36.00 0.600 17.20965 22.94620 2.48:B!9 3.3144:2 480V PEACTOR POV ID 1A1-A SE tlRS 0.10 PHR SP HDR 14 ISOL VLV 472-40) 5.20 7.5 0.700 0.600 45.00 0.600 21.51:07 Of.68:76 3.58 !45 4.79C460 I
0.00 430V REACTCR POV ID 141-A 64 UA 0 0 SIS BUR 34143 TK HTR 14-4 7.22 6
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8.97 0
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, M.S KW KVAP is EVAR 0.00 490V llESEL AU1 ID 2424 6C 04 96 244 AIR C0"PPE!$0R I 10.00 13 0.E!0 0.805 31.00 0.5!0 34.20419 14.726:5 8.3:7919 6.144'41 y
0.00 450V O!ESEL AUI $9 2A2-4 68 UA M R30M EIN FM 282-4 15.00 19.5 0.896 0.755 !!4.00 0.510 46.32265 71.12?'6 12.1?614 9.624793 0.00 480V !!!!EL AUI 3D 2A2-4 7A UA 96 96 PDCM EIM FM 3.00 4.6 0.850 0.755 32.00 0.63 -
!!.00738 20.004:4 2.767 tit 2.403244 0.00 480V t!ESEL ACI 13 242-A 7C UA 36 [N6 AUI LUBE O!L CIRC PMP 0.75 1.4 0.725 0.695 12.50 0.620 4.1747st 2.814078 0.77!2310.00312 y
0.00 480V DIESEt AUI BD 2A2-A 79 UA 36 EN6 tTR NTR/LUPE CIL PW t 00 19.7 16.4 1.000 1.000 0.00 0.000 16.4 0
16.4 0
0.00 450V ERCu MCC 2A-A 2A 34 ERCu STRAINER A28-4 3.00 7
0.735 0.545 32.00 0.620 15.00738 20.00404 3.0:t*75 4.676!!8 0.00 490V EFCu MCC 2A-4
!D UA EFCW STRAINER IFPR 1
0.85 1.000 1.000 0.tt 0.000 9.85 0 ^ 0.15
' 0 y
0.00 480V REA; TOR fCV 33 2A!4 144 UA BORIC ACID IFER PMP 24-4 7.50 18 0.944 0.690
??.20 0.4?0 37.94729 67.50919 9.7:21:8 10.!!527 0.00 480V PEACTOR MOV 80 2A2-4 15 UMW 480V S@N IFMR 31-A C00L FAN 0.33 0
'0-0 0
0.00 430V SHUitCv413 2Al-A 23 UAS ELEC 3D RR ANU A4 75.00 f6 0.914 0.800,499.00 0.300 I19.2724179.2623 61.19989 4!.t'241 y
0.00 480V SWitCM ID 2Al-A 35 UAl I, O CR M CODL FM 3 75.00 93 0.t!6 0.'907 614.00 0.300 146.7601466.6674 *t.97963 27.f 4924 0.00 40V SHUTIOW410 2Al-A 3C 15W * *C REAC LOWER CC@i CDOL FM 24-4 50.00
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0.921 0.872 346.00 0.350 96.48542 258.2367 40.99085 23.61062 0.00 4MV SWTDCM BD 241-A BC UA NT TR-CVC PNL Al IFMR 45
'4 45 1.000 1.000 0.00 0.000 45 0
45 0
y 0.00 4!DV S4UTD2h4 83 2Al-A 104 UA NOR FDR VITAL BATT CK6R !!!
226 272
- 0. 950 272.00 0.9:0 205.8784 67.669'8 205.8784 67.'66898 0.00 490V tWitCM ID 32-4 33 UAt 1 0 CRtM CDDL TM 2C 75.00 53 0.136 0.907 614.00 0.300 146. 4 01 466.6614 19.97943 27.94924 0.00 490V Smitt0v4 3D 242-4 48 L9u 0
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0.921 0.872 346.00 0.350 96.4!!62 255.2367 40.99085 23.01062 y
0.00 480V SHUTDOM SD 2A2-4 BC U4W CVS STS NT TR IFPR II 45 54 45 1.000 1.000 0.00 0.t00 45 0
45 0
0.00 480V SWTCCu4 ID 242-A tC UA STANDlY LTS CAR LS 1 22.5 27 20.25 1.000 0.900 0.00 0.000 20.25 6
20.25 0
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4 Total 455.787 237.5 1558.355 2682.468 8 3.0542 317.1479 V
0.02 480V CCNT 4 AUI 9tD6 VEti 80 2Al-A 100 UA! I I CENT CHR6 P2P 2A-4 RM CLR FM 5.00 6.1 0.839 0.864 45.00 0.520 18.64379 30.62450 4.1991 % 2.447037 y
0.02 490V REACTCP POV BD 2Al-A 2C2 0A! I I CENT CH6 PT 24 AUI OIL PW 2.00 3.1 0.7?5 0.770 25.00 0.63 12.24952 !!.6 3 15 l'.?01926 1.5' '07 0.02 6900V SHUTD0su BD 2A-A II TAS I I CENTRIFU6AL CHR6 PW 2A-4 680.00 44.9 0.939 0.929 310.00 0.287 1917.063 3394.691476.8333129.t:30 y
Total 687 0
1045.057 3440.944' 482.9343 193.9759 t
V 0.15 6900V SHUTDOM B3 24-A
.9 TAS I I ESSENTIAL RCN PfP E-4 700.00 58.4 0.925 0.8% 337.00 0.170 654.9126 3796.331 571.4670 345.1339 y
Total 700 0
654.9126 3796.351 571.4670 345.1339 V
. ~ 2E DA.
O CCS 300ST PMP 24-4 15.00 1*. 4 0.835 0.909 106.00 0.490 41.38 3 5 73.62314 13.32601 4.!!0263 0.20 490V REACTOR NOV BD 2A1-4 1
0.20 400V SHUTDOM 30 241-A v
-j 4B TAS If I,
CCS Putr 2A-A 350.00 404 0.928 0.875 2222.00 0.200 354.0727 1734.595 291.6487 155.I!!5 s
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Total 365 0
395.4:56 1808.216 294.9747 161.9418
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0.25 480V REACTOR MOV 90 2A2-A 23 UA!
1.00 ERCu 2A !$0L VLV 0.33 0.9 0.700 0.600 5.00 0.600 2.390230 3.196973 0.430241 0.5736:5 w
0.25 400V REACTOR MOV 3D 2A2-4 2C 041 1.00 ERCW 2A !$0L VLV 0.33 0.9 0.700 0.600 5.00 0.600 2.390230 3.186973 0.430241 0.573655 0.25 6900W SHUTDOM 38 2A-A 10 TAS I I AUI FEED NTR PMP 2A-A 540.00 40 0.130 0.915 244.00, 0.180 502.0730 2743.735 418.3941, 184.48:8 L,
Total 540.666 10 506.8534 2750.109 419.7546 185.6311 y
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1.30 6900v 5WT30ist 88 2A-A 20 1A 0 0 PRES $ IEATER IKUP ER 2A-A 485 415 0
485 0
Total 0
485 485 0
485 0
b y
2.00 480V SWTDCuN pp 2A2-4 3C TA FIRE PUMP 2A-4 200.00 257 0.895 0.815 1100.00 0.200 175.28!5 258.7104 166.8819 !!8.6521 istal 200 0
175.2835 858.7104 166.1818 !!8.6521 b
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2.30 480V CUNT & AUI ILD6 VENT SO 2Al-A 98 H
480V SD M 24 A/C COND 24-A 15.00 21 0.850 0.840 !!6.00 0.490 45.28689 90.5665314.05455 f.078744 2.30 480V CONT & Allt BLtl VENT 00 241-4 9E DA 400V BO RR 24 A/C PW 2A-A 10.00 12.4 0.880 0.830 28.54 0.530
!!.03430 19.2'564 5.200082 5.510499 2.30 480V CCNT & AUI SLD6 VENT 30 2Al-A !!B UA 480V 90 M 2A A/C CPRSR 2A-A 5e;00 el 0.897 0.856 360.00 0.350 100.!896 268.6856 41.60275 25.12572 ts Total 75 0
157.7113 368.5078 63.85738 39.71455 V
3.20 400v SWTDouN 38 2A2-A 48 UA.
ELEC 90 M A/C COMPR A-4 125.00 140 0.917 0.995 900.00 0.250 179.2672 694.2991 104.3574 54.90157 V
Total 125 0
17?.2672 694.29f t 104.3574 54.?0157 V
5.00 490V IIESEL AUI 30 2Al-A 29 UAO DE DAY TW FUEL DIL IFER PMP 1.00 2
0.730 0.460 15.00 0.620 7.409713 9.376894 1.051701 1.197131 y
5.00 400V I!ESEL AUI II 2A2-4 44 UA0 86 DAY fut FUEL DIL IFER pnp I.00 2
0.730 0.660
!$.00 0.620 7.409713 f.376594 I.051701 f.197131 Total 2
0 14.81f42 II.75378 2.103402 2.394263 V
y 21.00 490V SHUTDDuN 80 242-4 23 UA SHilHI 80 RN AIR HAND UNIT 24-4 75.00 BB 0.905 0.900 555.00 0.300 132.6577 421.8248 63.10207 30.56172 21.00 490V SHUTDOWN Il 2A2-4 50 UA
$HDN 30 M CHILLER PK5 A-7 250.00 275 0.132 0.115 !!80.00 0.423 532.4954 1140.695 200.4805 88.39852 y
Total 325 0
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, M.S EN tvaR tN EVM i 4MV C37 4 AUI RD6 VENT SO 211-3 2A UA SMTM IFMR PM 3 EIN FM 33-3 2.50 4.1 0.745 0.!45 25.00 0.620 12.!495215.63151.78032! 2.7 E875 y
i 480V CCNT 4 AUI ILD6 VENT 99 251-B 23 UA SHTM IFMR RM 29 EIN FM 231-3 2.50 4.1 0.745 0.545 25.00 0.620 12.34952 15.62115 !.780323 2.738875 I 480V CONT I AUI RD6 VENT 80 31-3 2C UA SHTM IFMR PM 3 EIN FAN 252-3 2.50 4.1 0.745 0.145 25.00 0.63 12.34952 15.6:115 1.790:23 2.7:5175 P 480V CCNT & ACI BLD6 VENT 90 281-3 2E DAS AUI CONT AIR CCMFRSR I-5 20.00 25.7 0.870 0.855 145.00 0.460
!3.14279 102.5793 17.50724 10.41959 y
i 490V CONT & AUI ILOG VENT 30 Ill-I 3A UA RECIP CN6 PMP RM CLR FM 3.00
- 4. 7 0.850 0.755 32.00 0.620 15.507:8 20.00404 2.8 7:43 2.4554!I i 490V CCNT & AUI RD6 VENT 55 251-3 33 UA! I I
$1 PMP 29-I RM CLR FAN 3.00 1.0 0.835 0.839 32.00 0.558 14.22664 21.15744 2.540177 1.64?4:5 i 4E0V CONT & AUI BLt6 VENT 30 3!-l 4A UA! I I PEN RM EL 669 CLR FM 28-3 5.00 6.1 0.839 0.864 45.00 0.53 19.64379 30.4 4!0 4.1?91 % 2.447037 y
i 4MV CCNT & AUI RS6 VENT ID 231-8 49 U4! I I PEN RM EL 690 CLR FAN 29-I 5.00 4.1 0.899 0.864 45.00 0.520 18.64379 30.6:480 4.1991 % 2.447037 i 480V CONT & AUI BLC6 VENT 30 251-9 4C UA! ! !
PEN PM EL 714 CLR FM 3-8 5.00 6.1 0.869 0.864. 45.00 0.5:0 18.64379 30.6:460 4.199156 2.447037 i 490V CCNT & AUI ILD6 VENT la 281-3 5A UA!
RES NT REM PMP 3-9 CLR FAN 3.00 3.8 0.835 0.,839 32.00 0.558 14.22664 21.15744 2.!40177 1.64?4:5 y
i 480V CCNT & AUI 9LD6 VENT BD 281-9 53 UA!,,
CNTNT SFRAY FMP 29-I CLR FM 5.00 6.1 0.889 0.864 45.00 0.53 18.44!79 30.62480 4.1991% 2.447C37 i 490V CONT & AUI BLD6 VENT 30 281-9 5C UA I*
I EMER 6AS TMT RM CLR 9-5 3.00 3.8 0.835 0.839 32.00 0.558 14.22664 21.15744 2.540177 1.647425 7 480V CCNT & ACI RC6 VENT BD 231-8 6E2 UA At 6AS TMT $75 HUM HTR 3-5
!8.5 32 1.000 1.000 0.00 0.000 32 0
32 0
y i 480V CMT & AUI RD6 VENT 90 231-0 IE CAI I I PIPE CHASE CLR FAN 3-3 20.00 24.1 0.837 0.883 163.00 0.450 38.44112 !!5.9768 16.95493 9.012672 i 490V FEACTOR'MOV ID 281-8 33 UA 0 0
$!$ 80FON IN3 TK NTR 25-3 7.2 6
1.000 1.000 0.00 0.000 6
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6 0
i 450V REA; TOR MOV ID 251-9 3D UA 4MV SMN ID IFMR 28!-l C00L FM O'.66 0
0~
0 0
y S 480V FEACTOR MOV ID 31-3 44 UA 90RIC ACID ITER PMP 28-8 15.00 18 0.844 0.638 90.00 0.490 35.l!638 62.50851 9.14?800 11.04:!8 I 480V REACTCR MOV 30 231-8 4C UA BORIC ACID BATCH TK HTR 3 27.1 22.5 1.000 1.000 0.00 0.000 22.5 0
22.5 0
L 4&cv PEACf0R MOV 80 281-3 4E UA BOPIC ACID TK f HTR 9-8 10.8 9
1.000 1.000 0.00 0.000
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i 480V REACTOR MOV ID 2B2-B 2A DA STEAM FN PMP ISOL VLV t.60 4
0.700 0.600 25.00 0.600 11.95115 15.93456 1.912154 2.54?5?8 L 480V PEACTOR MOV 10 282-9 7E, UA t.00 CNCS DEMIN SUP VLV 1.20 0.45 0.700 0.600 2.60 0.600 1.242919 1.6572 3 0.215120 0.0968:7 y
Total 97.96 69.5 399.5254 55!.5168 147.8246 58.91459 V
0.00 480V CONT & AUI RD6 VENT 99 231-3 192 UA CONT PWR IFMR I.50 0
0 0
0 0.00 4MV CCNT 4 AUI BLD6 VENT 10 251-B 3D UA B 0 CNTMi AM VACUUM FM 29 1.50 3.3 0.000 0.720 25.50 0.640 13.00285 15.61103 1.893062 1.8:4633 y
0.00 480V CONT & AUI Rt6 VENT 99 231-B 6C UA UNii CONT ANN SYS 3
7.6 3
1.000 1.000 0.00 0.000 3
'O' 3
0 0.00 480V C3T & AUI RD6 YENT ID 281-8 60 UMN CONT RM INTAKE RAD MDM 0.75 1.4 0.725 0.695 12.50 0.620 6.174761 7.814078 0.775:31 0.80:012 0.00 480V CCNT & AUI RD6 VENT BD 31-3 7C UAS 480V ID RM 24 FFESS FM 2A2-9 3.00 4.6 0.786 0.778 29.50 0.600 14.102:5 18.80!!4 2.851285 2.!0 3 00 y
0.00 480V CDhi & AUI BLD6 VENT ID 211-3 792 UN CNTMT ILOG UP COMPT AIR MON 3.00 4.6 0.850 0.M5 32.00 0.620 15.80738 20.00404 2.767089 2.403:44 0.00 480V CCNT & AUI RC6 VENT 30 281-3 8A UA r PRIM WTA MAKEUP PPP 28 20.00 24.5 0.850 0.880 145.00 0.460 53.14278 102.!793 17.17778 9.271587 0.00 4MV C3T & AUI ILO6 VENT 10 281-3 8DI UMN COND VAC FMP AIR E!H NON 0.75 1.4 0.725 0.695 12.50 0.620 6.1747617.8140?8 0.7M2310.M2012 y
0.00 480V CONT & AUI ILOG VENT 99 281-3 802
- UMN CNTMT PURGE AIR EIN MON 0.75 1.4 0.725 0.6'5 12.50 0.620 6.1747617.814078 0.7M2310.80:012 0.00 480V C3T & AUI BLD6 VENT 30 231-I 94 UAS 125V IAff RM IV EIM FM 2A2-8 2.00 5.6 0.745 0.545 25.00 0.620 12.34952 t!.62815 2.431660 3.740902 0.00 400V CCNT & ACI SLD6 VENT 30 281-B TC, UAI I I AUI FDNTR & IA TRANS PMP SP CLR FM 8-3 5.00 6.1 0.889 0.864 45.00 0.520 19.64379 20.6:480 4.199156 2.447037 y
0.00 480V CONT & AUI RD6 VENT 99 231-3 90 UAS 480V ID RM 28 FAN PRESS 2B2-9 3.00 4.6 0.786 0.778 29.50 0.600 14.102:519.M314 2.851385 2.30300 0.00 480V CCNT & AUI RD6 VENT BD 281-3 104 UA 0 0 SHTDN la RM 3 PRESS FAN 28-3 1.00 2
0.M3 0.627 12.50 0.6C0 5.9M575 7.967433 0.99?l161.241'56 0.00 480V CNT & AUI ILD6 VENT 89 231-0 til UAS 125V Vtf BATI RM !!! FAN 232-3 2.00
- 5. 6 0.745 0.545 25.00 0.60 12.34952 15.6 815 2.431660 3.740902 y
0.00 480V C3T & AUI BLD6 VENT 30 231-312C UMN 6AS EFF FAD MON 5.00 7.25 0.815 0.525 46.00 0.60 22.72312 28.M580 4.7655:13.26443 0.00 480V I!ESEL AUI 3D 251-B ID UA CONTROL PCNER IFMR 3
2.55 2.55 0
2.55 0
0.00 400V DIESEL AUI ID 231-3,
, 4A UA D6 ELEC PNL VENT FAN 15.00 20 0.850 0.840 !!6.00 0.4?0 45.08689 80.56653 13.!85 3 8.646042 y
0.00 480V I!ESEL AUI ID 231-9 541 UA DIESEL GEN Li CAI LC48 45 54.1 40.5 1.000 0.900 0.00 0.000 40.5 0
40.5 0
0.00 480V DIESEL AUI ID 281-3 a - + : 6A 04 D6 PCCM EIN FAN 281-3 15.00 19.5 0.896 0.785 114.00 0.510 46.32 3 5 78.1 3 % 12.19614 9.6:47?3 0.00 490V DIESEL AUI ID 281-8 6C UA D6 28-9 AIR COMPRESSOR 2 10.00 13 0.850 0.835 81.00 0.530 34.20419 54.72655 8.337919 6.144941 l
V 0.00 480V DIESEL AUI BD 231-3 68 UA D6 MLffLEP FM EIN FM 1.50 2.8 0.U5
- 0. 75 20.00 0.63 9.879617 12.!0:52 1.617389 1.!!6517 1
0.00 480V 11ESEL AUI BD 281-8 73 04 D6 BATT HOOD EIN FAN 0.33 0.965 0.645 0.544 4.45 0.600 2.127304 2.8364% 0.41t:58 0.6451%
0.00 460V D!ESEL AUI 19 281-B 73 UA D6 EN6 AUI LtBE O!L CIRC PMP 0.75 1.4 0.7:5 0.695 12.50 0.60' 4.1747617.814078 0.7M2!! 0.802012 W
0.00 490V I!ESEL AUI ID 281-8 7El UA 16 EN6 NTR NTR/LUlf O!L PMP 1.00 19.7 16.4 1.000 1.000 0.00 0.000 16.4 0
16.4 0
0.00 400V BIESEL ACI 80 232-3 10 UA CCNTROL PCNER ITMR 3
2.55 2.55 0
2.55 0
0.00 480V I!ESEL AUI ID 292-3
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0.00 400V O!!SEL AUI BD 292-B 64 UAD 1.00 EMS ISL ENG NT [ICH SUP VLV 0.13 0.6 0.700 0.600 2.60 0.400 1.247919 1.657: 3 0.286227 0.!8:4!6 i
0.00 480V I!ESEL Auf ID 232-8
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UA D6 28-B A!R COMPRESSOR I 10.00 13 0.850 0.805 81.00 S.530 34.20419 54.72655 8.337919 6.144941 0.00 480V I!ESEL AUI ID 292-3
_6D UA D6 PDCM EIN FM 292-1 15.00 19.5 0.B?6 0.785 114.00 0.!!0 46.12:65 78.1:9 % 12.19614 9.624793 hv 6
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0.00 480V !!ESEL AUI H 32-8 7C 04 DE EN6 AUI LUti OIL CIRC FMP 0.75 1.4 0.7:5
- 0. 6'5 12.50 0.63 6.174761 7.814078 0.77:2!! 0.8? 012 0.00 480V BIESEL AUI BD 232-3 ID 04 96 D6 uit NTR/ LUBE O!L PMP 1.00 19.7 16.4 1.000 I.000 0.00 0.000 16.4 0
16.4 0
0.00 4B0V E8tu MCC 29-9 24 UA ERCu STRA!MER 8 8-9 3.00 7
0.735 0.543 32.00 0.620
!!.207:8 20.00404 3.0284:t 4.68:!60 y
0.00 450V ERCu MCC 28-8 3D CA ERCW STRAIMER IFMR t
0.15 0.95 0
0.85 0
0.00 480V FEACTCR MOV ID 281-3 4A UA BORIC ACID ITER PMP 29-3 7.50 IB 0.E44 0.6!8 17.50 0.4?0
!8.0644167.717!5 9.14?!00 !!.t43:8 0.00 430V SHUTD u1 BD 31-9 34 UA ELEC ID RM AW 3-3 75.00 96 0.914 0.800 499.00 0.300
!!T.2724 379.2623 61.!!'89 4!.89:4l y
0.00 480V SWJTDCut ID 31-8 39 UA! I O CFtM CCOL FA4 3 75.00 83 0.1:6 0.?07 614.00 0.! 0 146.7601 466.6674 !?.97'63 27.94? 4 0.00 490V SWJTD s4 ID 313 48 UMu O
REAC LOWER C09PT CD3L FAN 29-3
!O.00 59 0.921 0.572.346.00 0.350 96.49562 5 8.2367 40.?? 25 23.01062 0.00 480V SWTDCW1 ID 31-B SC 04 HT TR-CVC PNL Pt & !! IFMR 45.00
'4 45 1.000 I.,000 0.00 0.000 45 0
4!
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0.00 480V SHuitCH ID 281-0 8D UA STAERY LT5 CA9 LS 3 20.00 24 19 I.000 0.?00 0.00 0.000 15 0
11 0
0.00 480V SHUTDOWN ID 282-3 33 UAt I* O CFtM CCOL FAN D 75.00 83 0.??6 0.?07 614.00 0.700 146.7601466.6674 29.??963 27.f 49:4 0.00 480V SWJTDOW1 ID !!2-3 5D U"W 0
REACTOR LWR CCMPT COOL Fat 2D-B
!0.00 5?
0.921 0.872 346.00 0.3:0 16.42:62 :"I.2367 40.??085 23.01062 y
0.00 490V SHUTECWN 39 32-B BC UMW CVS SYS NT TR ITMR 93 45.00 54 45 1.000 1.000 0.00 0.000 45 0
45 0
0.00 440V SWTDCug'ID 212-3 104 UMW 12:V VITAL BATT CHSR IV 226
'272 0.950 272.00 0.950 205.9784 67.669?! 205.8794 67.66??8 0.00 6900V 5"UTD0n 95 3-3 3
UA 480V SNCN IFMR 291-3 1r 0
0 0
0 y
0.00 6900V SH'JTDCm ID 23-8 4
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0 0
0 0.00 6900V SHUTtta to 29-3 5
UA 480V SHtt IFMR 28-I 0
0 0
0 0.00 6900V SMUTDCut ID 28-I 22 UA 4807 IFMR 29-9 0
0 0
0 V
Total 566.705
!?0.9 1500.510 2685.452 781.4t?? 316.9483 e
y a
0.02 480V CCNT & AUI BLD6 VDT 30 281-8 3C UA! ! I CENT CHR6 PHP 29-3 RM CLR FAN 5.00 6.1 0.999 0.864 45.00 0.520 18.64379 30.62412 4.Ittt!6 2.447037 y
0.02 490V PEACTCR MOV BD 291-3 5C2 UA! I I CDT CH6 FMP 23 AUI O!L 11P 2.00 3.1 0.795 0.770 25.00 0.600 12.!4?!2 !!.6:515 1.9012 6 1.:7:907 0.02 6900V SHUTDCt4 ID 23-3 IB TAS I I CENTRIFU6AL CHR6 PMP 28-B 690.00 44.9 0.939 0.929 310.00 0.287 1017.063 3394.6?! 476.8333 18?.?530 v
Total 687 0
1048.057 3440.944 482.f:43 193.9759 V
0.15 6100V SHUT 80uq ID 29-3
- 8 TAS I I ESSENTIAL RCN PMP P-3 700.00 58.4 0.925 0.856 337.00 0.170 654.?s24 37?6.351 578.4670 345.1339
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y Total 700 0
654.9126 3796.351 571.4670 345.1339
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0.20 490V REACTOR MOV BD 281-3 SE DA 0
CCS 300ST PHP 29-8 15.00 19.4 0.8:5 0.909 106.00 0.490 41.38285 73.60114 13.32601 6.110263 0.20 480V SHUTDCn 3D 281-8 3C TAS I I CCS PUMP 29-B 350.00 404 0.f:0 0.875 2:22.00 0.200
!!4.0727 1724.5?5 3 1.6487 155.8215 y
0.20 4407 SHUTDDWN H 212-3 2D TAS I I CCS PMP C-S(NOR FDR) 350.00 404 0.928 0.875 2222.00 0.200 354.0727 1734.595 291.6487 155.8315 Total Y
715 0
749.5:83 3542.111 576.6235 317.7734 g,
0.25 480V REACTOR MOV BD 282-3
' 23 U41 I.00 ERCu 29 ISOL VLV 0.33 0.9 0.700 0.600 5.00 0.600 2.390230 3.196173 0.430241 0.573655 0.25 490V REACTOR MOV ID 212-3 2C UA!
1.00 EPCu 28 ISCL VLV (3-126Al 0.33 0.1 0.700 0.600 5.00 0.600 2.390230 3.126973 0.4:0:41 0.573655 0.25 6900V SHUIDave 30 28-9 10 TAS I I AUI FEED WTR PHP 29-9 540.00 40 0.130 4.115 244.00 0.180 502.0730 2743.735 418.3?41 114.4938 n;
Total 540.666 0
506.8534 2750.109 419.2546 195.6311 y
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f!'E BOARD CPT C0tf PNASE OPER CORP 0 Neuf KV4 27 FULLOAD rt R3 TOR R370R MOTOR MOTOR St Catt A I TIME KSCRIPTION CURFDT EFF PF LRI LRFF STAPT!N5 STAPf!NS R'M!N6 Pt.HMIN6 M.S y
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!.00 450V I!!SEL AUI la Ill-I 28 Une SE DAT TK FUEL O!L IFit PMP t 00 2
0.730 6.660 15.00 0.620 7.409713 9.3769'4 1.051701 1.117131 5.00 490V I!ESEL AUI B3182-8 44 040 36 DAY TM FUEL O!L ITER PMP 1.00 2
0.730 0.660 15.00 0.620 7.409713 9.3766?41.t:1701 1.197131 y
Total 2
0 14.11942 18.7 375 2.103402 2.394263 V
15.00 400V SHUTDOWN B0182-3 105 TPD MN TURS TUPN GEAR OIL PMP 75.00 91.5 0.905 0.850 542.50 0.330 142.6369 409.01,?? 81.?6671 18,40!!!
L Total 75 0
I42.6369 408.0199 61.96671 38.40352
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21.00 490V WJittnlD 112-3 14 Un SHTH 90 RM AIR HAND tm!T 13-3 75.00 88 0.?05 0.?00 !!5.00 0.!00 132.6:77 421.t:88 67.!0:07 30.!6172 21.00 430V SHUTD3WN 80132-3 3D UA SHH ID RM CHILLER PK6 8-3 25MC 275 0.932 0.915 1580.00 0.423 532.49:4 1140.585 200.4805 81.!?8:2 V
Total 325 0
665.!!!21:42.510 263.5826 If9.96C 120.00 490V REACT 3R MOV ID 131-3
!!C UAL I I 0.a3 CNTRT SUMP FLCW VLV 10.50 13.8 0.700 0.600 114.00 0.500 45.41437 79.6i I.597035 8.796046 y
120.00 400V PEACTOR MOV B0181-3 14C UA! I I.2.00 RHR PHP !!-l CONT VLV 1.60 4
0.700 0.600 25.00 0.600 11.9:115 15.93486 1.912184 2 4?:78 Total 12.1 0
57.36:52 94.59416 8.5092if 11.34562 V
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LFPF STAPTING STAPT!N6 R'.vi!N6 RLWN6 y
, 4.5 fu KVAR tu rVAt i 450V CONT & AUI ILl6 VENT 30 231-3 24 04 DTM IFMR RM 29 IIM FAN 293-3 2.50 4.1 0.745 0.!45 25.00 4.600 12.3495215,62815 t.780!!3 2.7:29'5 T 490V CCNT & AUI ILM VENT 30 281-1 23 UA.
9754 IFMR RM 28 EIN FM 281-3 2.50 4.1 0.745
- 0. 45 3.00 0.620 12.!49:2 15.6:515 1.7I03:: 2.7'!87 y
1 480V CONT 4 AUI R36 VENT 99 231-3 2C UA !
SHTDN IFMR RM 23 EIN FAN 212-0 2.50 4.1 0.745 0.545 25.00 0.63 12.34752 15.62815 8.780323 2.7313'5 P 490V CCNT l AUI ILD6 VENT 10 281-3 2E DAS AUI CONT AIR COMFPSR I-I 20.00
- 5.7 0.870 0.5:5 145.00 0.460 23.14:78102.57Y! 17.507:410.6tMS T 480V CONT & ACI ILD6 VENT 90 211-8 34 UA RECIP CH6 PMP RM CLR FAN 3.00 4.7 0.850 0.M5 32.00 0.620 15.80738 20.00404 2.I:7:43 2.4:!498 y
i 490V CNT & AUI PLOG VENT 30 251-8 6E2 UA AI 6AS TMT SVS HUM HTR l-l 38.5 32 1.000 1.000 0.00 0.000 32 0
72 0
7 490V PEACTOR MOV ID 281-0 3D UA 480V SHDN ID IFMR 291-8 COOL FAN -
0.66 0
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7 490V 8EACTOR MOV 10 281-3 4C UA 1RIC AC!D BATCH TK HIR 3 27.I 22.5 1.000 I.000 0.00 0.000 22.5 0
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Tatet 48.96 63.5 217.82?! 24'.5684 100.4:25 35.17149 0.00 400v CONT l AUI RD6 VENT 30 291-3 102 UA CONT PNR IFPR I.50 0
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- 4. 6 0.850 0.7!5 32.00 0.620 15.807 8 20.00404 2.7670E? 2.40%44 9
0.00 430V CNT & AUI 9tM VENT ID 231-3 IA UA PRIM NTR MAKEUP NP 28 20.00 24.5 0.850 0.990 145.00 0.460 53.14278102.579317.17778 f.271:57 0.00 490V CNT & AUI ILD6 VENT la 281-3 831 Umf COND VAC PMP AIR EIN MON 0.75 I.4 0.725 0.695 12.50 0.620 4.1747617.814078 0.7M 310.80312 y
0.00 480V CONT & AUI ILOG VENT 90 281-0 802 UN CNTNT PURSE AIR EIN M3M 0.75 1.4 0.725 0.695 12.50 0.620 6.1747617.914078 0.7M :t 0.80312 0.00 490V CONT & AUI KD6 VENT ID 281-1 IE UA! I I PIPE CHASE CLR FM 21-8 3.00 24.1 0.857 0.883 163.00 0.4!0
!8.44112115.?76816.?!4931.01:6M 0.00 450V CONT 4 AUI ILD6 VENT BD 231-3 94 UAS 125V IATT RM IV E!H FAN 242-3 2.00 5.6 0.745 0.545 25.00 0.620 12.349:2 15.6 3 15 2.431660 3.740902 y
0.00 490V CONT & AUI RD6 VENT la 281-3 9C UA! ! I AUI FCNTR & la TRANS PMP SP CLR FM l-I 5.00 6.1 0.889 0.864 45.00 0.!20 12.64379 30.6:480 4.19?!!6 2.447037 0.00 480V CONT 4 AUI ItD6 VENT 10 251-9 TD UAS 400V ID RM 28 FAN PRESS 212-1 3.00
- 4. 6 0.726 0.778 29.50 0.600 14.1023518.80314 2.t!!!35 2.302600 0.00 400V CONT & AUI ILD6 VENT ID 281-9 Ill CAS 125V V!T SATT RM 111 FM 282-B 2.00 5.6 0.745 0.545 25.00 0.600 12.34952 15.62915 2.4 1660 3.740902 y
0.00 480V CONT 4 AUI BLOS VENT BD 281-312C UN 6AS EFF RAD MON 5.00 7.25 0.815 0.825 46.00 0.620 22.723!2 29.M!80 4.76:5213.264426 0.00 490V CONT 4 IUI ILOG VENT IS 251-012D UAI I I At 6AS TNT SYS FAN 3-3 20.00 24 0.369 0.883 163.00 0.450 58.44112 !!!.??68 16.984:8 I.975:75 0.00 400V l!!SEL AUI la 231-0 18 04 CONTR3L PONER IFMR 3
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0.02 480V PEACTCR MOV ID 2Al-A 2C2 UA! I I CENT CH6 FMP 24 AUI O!L PMP 2.00 3.1 0.795 0.770 2.00 0.63 12.!4M215.6:2151.9018:61.5' '07 0.02 6900V SHUTDOH BD 2A-A 18 TAS I I CENTRIFUGAL CHRS PMP 24-A 690.00 44.9 0.939 0.929 310.00 0.297 1017.063 3:94.691476.6!33189.M30 y
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ber 0.05 490V C3NT & AUIILD6 VENT SO 241-410B UA!
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- 0.?33 0.195 215.00 0.50 614.4450 U79.7'! 319.0141 159.0M6 br Total 413 0
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TIPE ICM8 CPT CONT PMASE OPER CIPPONDT KVA HP FULLCAD KN AUTOR MOTCR MCTOR MOTOR SI CCMS A 3 TIME MSCRIPTION CURFENT EFF PF LRI LRPF STARTING STARTINS Ptw!NS E'N4!NE y
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T 480V C3T & AUI ILDE VENT 90 2Al-A 3A DA
$NTD4 IFMR FM 2A EIN FAN 33-4 2.50 4.1 0.745 0.145 25.00 0.620 12.!4?!2 !!.4:2151.7803:3 2.UE!75 y
7 490V C3T & El BLIS VENT 83 2Al-A 33 UA SNTDN IFMR RM 2A EI'4 FAN 2Al-A 2.50 4.1 0.745 t.545 25.00 0.620 12.34932 !!.62815 1.7903:3 2.7388'5 T 4 BOY CNT & AUI KD6 VENT 30 2Al-A 3C UA SHitu IFMR FM 2A EIN FM 2A2-4 2.!O
- 4. I 0.745 C.!45 25.00 0.620 12.!4?5215.42915 I 7E0!:3 2.nf975 P 450V IMT & AUI BL 6 VENT 3D 241-4 6C UAS El CONT AIR CQu!RSR A-4 20.00 23.7 0.870 0.855 145.00 0.460 13.14278 102.5793 17.50724 10.61958 y
T 490V CONT & AUI ILD6 VENT ID 2Al-A 10E!
DA 48 6AS TNT SYS Mt2 NTR 4-4
!S.5 32 1.000 1.000 0.00 0.000 32 0
32 0
T 49W :MT & AUI ILD6 VENT 83 2Al-A !!9 UA SH:N ID RM A/C CIR MP A-A 20.00 23.4 0.924 0.881 155.00 0.450 55.!? 35 !!0.294716.42!!B B.82%!2 T 490V PEACTOF MCV BD lAl-A lE CA 460V SHt4 PD IFMR 31-4 COOL FM 0.66 0
0 0
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y 5 430V REACTCR MOV 80 2Al-A 144 UA BORIC AC!D IFER PMP 2A-A 15.00 19 0.944 0,690 90.00 0.490 35.l3638 62.50t*! 9.M213810.51527 7 400V PEACTOR MCV PD 31-4 14C UA 30FIC ACID BATCH TK HTR 4 27.1 22.5 1.000 L.000
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- 37.5 1.000 1.000 0.00 0.000 37.5 0
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0 0
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I Al GAS TRT SYS FAN A-A 20.00 24 0.829 0.833 163.00 0.450 55.44112 !!5.9769 16.834:8 8.97:275 0.00 430V CCNT & AUI SLt6 VENT 95 2Al-A 4A UA( I I PEN PM EL 669 CLR FAN 2A-A 5.00 6.1 0.289 0.864 45.00 0.5:0 18.64!79 30.6:480 4.1991!6 2.447037 y
0.00 49W CMT & AUI ILM VENT 83 2Al-A 49 UA! I I.
PEN RM EL 690 CLR FAN 24-A 3.00 6.1 0.99?
0.964 45.00 0.!20 18.64379 30.6:450 4.199156 2.447037 0.00 400V CCNT I AUI BLD6 VRT f5 2A!4 4C UA! I I FEN RM E 714 CLR FM 3-A 5.00 6.1 0.889 0.864 45.00 6.520 19.64379 30.6:420 4.199156 2.447037 0.00 490V CONT & AUI BLD6 VENT ID 2Al-A 50 UA! I I EMER 6AS TNT M CLR A-4 3.00 3.9 0.835 0.839 32.00 0.!!B 14,22664 21.15744 2.*40177 1.647425 0.00 480V CONT & El ILD6 VENT ID 31-A 6El U"N DTNT PUF6E Alt EIN RAD MON 0.75 1.4 0.725 0.695 12.50 0.6:0 6.174761 7.814078 0.775 5 1 0.80:012 9
0.00 49W CCNT & AUI BLD6 VENT la 2Al-A 6E2 UMN CCNT RM INTAKE M2N 0.75
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'3.00 4.6 0.786 0.778 29.50 0.600 14.1023518.90314 2.t!!!B5 2.!c'600 9
0.00 480V CONT & AUI BLD6 VENT 83 241-A 7C1 t ?N SHTDN BD R't CHILLER A-A CON IFMR 3
6.3 3
1.000 t.000 0.00 0.000 1
0 1
0 0.00 460V CCNT & AUI SLD6 VDT BD 2Al-A 7C2 04 CDD VAC PMP AIR EIN MON 0.75 1.4 0.725 0.6?5 12.50 0.620 6.1747617.814078 0.7M2310.800012 0.00 45W CMT & AUI ILD6 VDT ID 241-A 73 U.S 125V IATT RM !!! EIN FAN 2914 2.00 5.6 0.745 0.545 25.00 0.620 12.349:2 15.62815 2.431660 3.740902 y
0.00 480V CtNT & El SLM VDT ID 2A1-4 BA tt PRIM NTR MMEUP PMP 2A 20.00 24.5 0.550 0.880 145.00 0.460 53.14278 102.5793 17.17778 9.271587 0.00 450V CCNT & AUI ILD6 VENT ID 2Al-A 3D US 49W 80 RM 28 PRESS FAN 281-4 3.00 4.6 0.766 0.778 29.50 0.600 14.10235 18.80314 2.851325 2.302600 0.00 480V Cai n AUI ILt6 VDT ID 2Al-A 94 UM 6AS EFF PAD PON 5.00 7.25 0.815 0.825 46.00 0.620 22.72312 28.M 80 4.76:5213.26443 y
0.00 480V CONT 4 AUI ILD6 VEtf B9 2Al-A 104 US 125V Vli RATT RM IV FAN 241-A 2.00 3.6 0.745 0.545 25.00 0.620 12.3495215.62t15 2.431660 3.740902 0.00 400V CCNT & AUI ILOG VDT ID 2A1410E2 Uil MAIN CCNT RM DER INiarE RAD MOM 0.75 1.4 0.725 0.695 12.50 0.623 6.1747617.814078 0.7M 310.00:012 0.00 480V CONT & AUI KD6 VDT BD 2Al-A !!A U. I !. I AUI FDNTR & 8A TRANS PMP SP CLR FAN A-A 5.00 6.1 0.899 0.864 45.00 0.520 18.64379 30.62430 4.199156 2.447037 y
0.00 480V CST & AUI BLD6 VENT BD 2A14 !!El if 1 CNTRT BLD6 LNR COMPT AIR MCN 3.00
- 4. 6 0.850 0.H5 32.00 0.620
!$.80738 20.00404 2.747089 2.403:44 0.00 490V CCNT & EIILD6 VDT SO 2414 !!E2 LP N SHIRD BLD6 VDT RAD MON 3.00
- 4. 6 0.850
- 0. 755 32.00 0.620 15.80738 20.00404 2.767039 2.403:44 0.00 480V DIESR AUI ID 241-4 15 Si CONTROL PCNER IFMR 3
6.3 2.55 2.55 0
2.!5 0
y 0.00 48W I!ESEL AUI ID 2Al-A 44 U-D6 ELEC PNL VDT FAN 15.00 20 0.850 0.840 116.00 0.490 45.28699 80.566:313.385:9 B.646042 0.00 480V DIESR AUI #D 2Al-A
' 5At 01 DIESR SEN LT CA9 LC46 45 54.1 40.5 1.000 0.900 0.00 0.000 40.5 0
40.5 0
0.00 480V 8!ESEL HI BD 241-4 64 Ur D6 ROM EIM FAN 241-4 15.00 19.5 0.996 0.785 !!4.00 0.510 46.32265 79.12956 12.l?614 9.6247?3 y
0.00 480V I!ESR AUI ID 2A14 6C Us D6 3-A A!R COMPFESSOR 2 10.00 13 0.250 0.8C5 81.00 0.530 34.*0419 14.7:6:5 0.337919 6.144941 0.00 45W I!ESR AUI ID 2Al-A 60 UL D6 MUFFLER RM EIN FAN
!.50 2.8 0.U5 0.721 20.00 0.620 9.879617 !!.!? 521.6tT3891.536tl7 0.C0 480V DIESR AUI BD 2Al-A 73 04 D6 IATT NOCD EIN FAN 0.33 0.96 0.645 0.544 4.50 0.600 2.!:1207 2.866 76 0.416091 0.641794 y
0.00 49W O!ESEL AUI 15 2Al-A 7D Ur D6 D6 AUI LUBE O!L CIRC PMP 0.75
- 1. 4 0.725 0.695 12.50 0.620 6.174761 7.814078 0.77:231 0.802012 0.00 400V DIESR EI ID 2At-A 7El Ur D6 D6 UTR NTR/ LUBE DIL PMP l.00 19.7 16.4 1.000 1.000 0.00 0.000 16.4 0
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0.00 49W I!ESR AUI ID 242-4 10 tir CONTROL POWER IFMR 3
6.3 2.55 2.55 0
2.55 0
9 0.00 480V DIESR AUI BD 2A2-2
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7.5 1.000 0.650 7.00 0.650
!!.1518 4.22830711.1518 4.!!B307 0.00 450V I!ESR AUI 30 2A2-4
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1.00 DG DSL D6 NT EICH SUP VLV 0.13 0.6 0.700 0.600 2.60 0.600 1.242919 1.657226 0.296527 0.382436 0.00 400V I!!SR AUI ID 2A2-A
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$6 2A-A AIR COMPFESSOR 1 10.00 13 0.8:0 0.805 81.00 0.!30 34.20419 54.72455 8.337919 6.144'41 g
0.00 41W I!!SR AUI H 2A24 y 6D DE D6 R305 EIH FAN 242-A 15.00 19.5
- 0. 8 76 0.785 !!4.00 0.510 46.32265 78.1 3 6 12.19614 9.6:4793 0.00 490V DIESEL AUI ID 2A2-A 74. Le D6 ID POCM EIN FAN 3.00 4.6 0.f50 0.M5 32.00 0.6:9 15.90738 20.00404 2.767089 2.40!:44 0.00 4BOV IIESR AUI 95 242-4 7C UA 16 D6 AUI LU!E O!L CIRC PMP 0.75 1.4 0.7:5 0.615 12.50 0.620 6.1747617.I!4079 0.7M*310.90:012 kn*
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0.00 490V !!ESEL AUI 3D 2A2-A 7D 04 96 ENG WTR NTP/LUPE O!L PRP 1.00 19.7 16.4 1.000 1.000 0.00 0.000 16.4 0
16.4 0
0.00 48W EROM CC 24-4 24 UA ERCW STRA!MER A24-4 3.00 7
0.735 0.545 32.00 0.620 15.907:8 20.00404 3.0!9:75 4.6761:8 0.00 480V IPCu P:C 2A-4
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0.85 1.000 1.000 0.00 0.410 0.85 0
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0.00 4!0V REACTOR MOV BD 2Al-A 34 UA! I I 0.07 SEAL FL0s ISCL VLV 0.50 1.5 0.700 0.600 6.20 0.600 2.963935 3.9:1847 0.717069 0.956092 0.00 400V PEACTOR POV ID 2A!-A 33 UA! ! ! 0.09 CHR FLCu ISOL VLV 3.60 2.8 0.700 0.600 8.41 0.600 4.000!67 5.!60499 ! !!E!:81.764705 0.00 4BN PEACT3R CV ID 2A!-4 44 UAI I I 0.10 REF1:EL WiR 576 TK VLV t.60
- 2. 4 0.700 0.6%
10.00 0.t00 4.7B?460 6.3739461.1473101.!:9747 9
0.00 430V FEACTOR "9V BD 2Al-A 4E UAI I I l.00 SPPAT HER lA CCNT VLV 3.!0 5.2 0.700 0.600 36.00 0.600 17.20?65 22.946:0 2.45!8:9 !.3144:2 0.00 4!W PEACTOR CV 13 2Al-A 7C2 UA
!.00 R9R PRP 2A-4 FLOW VLV 1.60
- 3. 4 0.700 0.6%
25.00 0.600
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!.5 0.700 0.600 6.00 0.600 12.42919 16.!72:6 1.67!161 2. :0891 y
0.00 43?V REACTOR POV ID 241-4 1:E UA! *,I 0.!! S!S BOR04 I4J TK SHUT 0FF EV 2.00 3.5 0.700 0.*600 26.00 0.600 12.42919 16."7226 1.673161 2.230:31 I
0.00 420V PEACTOR POV ED 2Al-A 144 UA SCR!C ACIO IFER P"P 2A-A 7.50 18 0.844 0.6f 0
?7.20 0.490 37.94729 67.50?19 9.7 21!8 10.51!:7 0.00 49W REACTOR CV ID 242-4
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I 0.30 LWR CNTNT 24 CLR SUP ISOL VLV 0.13 0.45 0.700 0.600 3.20 0.600 1.5:9747 2.0!?663 0. !:!:0 0. 268:7 0.00 492V PEACTOR CV 93 242-4 48 UA!
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0.45 0.700 0.600 2.60 0.600 1.242919 1.657226 0.21!!:0 0.2869:7 0.00 49W PEACTOR CV ID 2A2-4 4C UA!
I 0.30 LvR CNTRT 2C CLR SUP ISCL VLV Ov!3 0.45 0.700 0.600 3.20 0.600 1.!:9747 2.0!?66! 0. 151:0 0. 569:7 y
0.00 49W PEACTOR CV B3 2A2-A SA UAT I 0.56 LWR CNTMT 2C CLR DISCH ISOL VLV 0.13 0.45,
0.700 0.600 2.60 0.600 1.242919 1.657226 0.:!!!:0 0.221327 0.00423 PEACTCR POV 83 lA -A 58 U4!
I 0.36 LWR CNTRT !! CLR DISCH 150L RV 0.33 0.75 0.700 0.600 5.50 0.600 2.62?:!3 3.!05670 0.!:8:!4 0.479046 0.00 48W REA:73R CV ID 242-4 5C 04!
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I 0.18 UPPR CNTMT CA ISOL VLV 0.13 0.6 0.700 0.600 3.20 0.600 1.!!?747 2.0!9667 0. E6927 0.!!:4:6 y
0.00 430V REACTOR CV 13 242-4 7C UA!
l 0.18 UPPR CNTRT 2C ISCL VLV 0.13
- 0. 6 0.700 0.600 3.20 0.600 1.529747 2.039663 0.236927 0.39:436 0.00 480V PEACTOR MOV ID IA2-A 7E
- UAI, I 0.18 UPPR CNTRT 21 !!OL RV 0.13 0.6 0.700 0.600 2.60 0.600 1.!4 9191.657:26 0.056927 0.!t:4!6 y
0.00 49W REACTOR CV ID 2A2-4 84 UA!
I.0.19 UPPR CNTRT 2D ISOL VLV 0.13 0.6 0.700 0.600 3.20 0.600 1.529747 2.0:9663 0.:36927 0.3B:4:6 0.00 49W PEACTCR CV ID 2A2-4 104 UA!
I 0.16 UPPR CNTET 24 ISCL RV 0.13 0.45 0.700 0.600 2.60 0.600 1.24:919 1.6:72:6 0.01:!:0 0. 26927 0.00 49W REACTOR CV IS 2A2-4 103 UA!
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0.00 49W REACTCR CV 13 2A2-A Ill DA! I I 0.24 EICESS LET]N INLET CONT /ISOL VLV 0.13 0.45 0.700 0.600 3.20 0.600 1.5 9747 2.0:9663 0.21!!:0 0.226927 0.00 490V PEACTCR CV ID lA2-A 14C UA!
I 0.15 RC PMP CONTRT ISOL RV 1.00 2.8 0.700 0.600 16.00 0.600 7.64873610.t?B!! 1.!!95:91.784705 0.00 490V FEACTOR CV B3 2A2-A 154 U4!
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I RCP THER BAFR ISOL RV 0.67 0.95 0.700 0.600 5.00 0.600 2.390230 3.186973 0.4:4143 0.6 !5:4 0.00 490V R! ACTOR CV 83 242-4 1:E UAI I I 0.07 CNini STAND P!PE ISOL RV 0.67 2.1 0.700 0.600 5.00 0.600 2.390230 3.186973 1.003996 1.3385:9 0.00 480V PEACTOR POV $3 2A2-A 16A UAl I 0.24 RCP CNTRT ISOL VLV 0.13 0.45 0.700 0.600 3.20 0.600 1.5:9747 2.0!?663 0.21:100 0. !68:7 y
0.00 490V REACTOR ROV 13 2A2-4 168 UA! ! ! 0.07 STEAM GEN FW ISOL RV 33.00 43 0.700 0.600 391.00 0.450 140.1869 279.2022 20.!!:97 27.40797 0.00 460V REACTOR MOV BD 2A2-A 17C UA! I I 0.06 STEAR SEN Fu !$3L VLV 33.00 43 0.700 0.600 391.00 0.450 140.1969 278.2022 20.!!!97 27.40797 0.00 49W REACTOR CV 95 2A2-A IRC UA! I I 1.00 AH STD P!PE ISOL VLV 0.67 2.1 0.700 0.600 5.0a 0.600 2.390230 3.1869731.00:2?6 f.3 B5:t y
0.00 490V FEACTOR MOV BS 2A2-4 19E UA! I I 1.00 ANN ISOL VLV 0.67 2.1 0.700 0.600 5.00 0.600 2.390:30 3.186973 1.00:896 1.3:25:8 0.00 49W SWT30mg 53 241-4 25 UAS ELEt ID RM AHU A-4 75.00 96 0.914 0.800 4?9.00 0.300 119.2724 379.2623 61.18989 45.89241 0.00 480V SWT:CH ID 2Al-A 8C '
UA NT TP-Cyt PNL At IFMR 45 54 45 1.000 1.000 0.00 0.000 45 0
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0.00 480V SHUTCCH BD 242-4 9C UA STANDBY LT6 CA8 LS I 22.5 27 20.25
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Total 351.376 237.5 1441.060 2217.421 531.7566 255.7870 W
g 0.02 490V CCNT & ACI BLD6 VENT 90 2Al-A 100 - UA! I I CENT CHt5 PRP 24-A PM CLR FAN 5.00 6.1 0.989 0.864 45.00 0.500 18.64379 30.6:480 4.199156 2.447037 0.02 49W PEACTOR ROV 33 2Al-A 2C2 UAl ! I CEhi CHG PMP 24 AUI O!L PMP 2.00 3.1 0.795 0.770 25.00 0.620 12.34952 !!.62815 1.9018:6 1.57!107 0.02 6900V SHUTDCW 30 2A-A 10 TAS I I CENTRIFU6AL CHP5 PMP 2A-A 680.00 44.9 0.939 0.929 310.00 0.287 1017.063 !!94.691 476.8!!3 168.9:!O Total 687 0
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2.00 4e*V SHUTDOWN 90 2A2-A 3C TA FIRE PUMP 2A-4 200.00 257 0.895 0.815 !!00.00 0.200 175.2825 B:8.7104166.E818 !!I.6 21 y
Total 200 0
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3.20 480V SHUTDOWN BD 2A2-4 48 UA y
ELEC 80 RM A/C COMPR A-A 125.00 148 0.917 0.885 900.00 0.250 179.2672 494.2991 104.:574 54.90157 Tots!
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5.00 480V BIESEL AUI 95 2Al-A 2D UA0 D6 DV TNK FUEL O!L ITER PMP 1.00 2
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5.00 490V BIESEL A'I 99 242-4 44 0A0 36 BAT TNE FUEL O!L IFER PMP
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10.00 480V SHUTDOWN 30 2Al-A 10C UAt I
CNTNT AIR PETURN FAN 24-A 50.00 58 0.923 0.840 324.00 0.259 67.27222 2!0.8753 !8.81733 25.07352 V
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21.00 480V SHUTDOWN BD 2A2-4 50 UA SHDN ID RM CHILLER PK6 A-4 250.00 275 0.932 0.915 1580.00 0.423 532.4954 1140.685 200.4805 88.!?S 2 (p
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ATTACHMENT D
Diesel Generator Loading Total (Summary) at:
s.
BO'(Summary) b.
B0 with Phase A Isolation (Summary) c.
B0 with Phase B Isolation (Sununary)
.i Compl Attachment D was:
Prepared by
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e.....me==.m...m...........meme..m....musee...mme.e m==me====m.ummm....m.....mm.....mm....
STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING RANDOM y
Kw Kvar Kw Kvar Kw Kvar Kw Kvar me=====
m..mm..m..m...m..m.m.mm..um.m.m...m.......m.m.mem........m===.m....m.m...me==
..m.
RANDOM =0 432.4 611.8 142.9 67.0 4
8 FANDOM >0 398.5 569.5 142.9 67.0 t=0 sec 1564.2 2718.1 773.0 315.3 1*64.2 0718.1 1996.6 3309.9 y
t=0 sec 1047.4 3441.0 482.9 194.0 1800.4 3756.5 0018.9 4306.0*
t=15 sec 654.9 371I.4 571.5 345.1 1910.8 4:05.7 0309.3 4875.0 6
t=OO sec 395.5 1808.2 095.0 161.9 OOOO.9 2660.6 0601.4 3230.1 y
t=25 sec 506.9 0750.1 419.3 185.6 0609.3 7766.4 3007.8 43!5.9 8
4 t=1 min 30 sec
- 485.0 0.0 485.0 0.0 3006.7 1001.9 3405.0 1771.4 t=0 min 175.3 85,8.7 116.9 118.7 3202.0 0060.6 3600.5 0630.1 y
t=0 min 30 sec
- 157.7
,368.5 63.9 39.7 3301.3 1689.1 3699.8 0258.6 y
t=3 min 20 sec
- 179.3 694.3 104.4 54.9 3386.8 0054.6 3785.3 2604.1 y
t=5 min 14.8 18.8 2.1 2.4 3326.7 1434.0 3725.0 0003.5 t=15 min U
8 t=01 min 132.7 421.8 63.1 30.6 3446.7 1839.4
!845.2 0408.9
=====.am...mmm....m.m..mem..m.am..mme====.m....m==.....m.m...mm..m==am..mem....mmm...m...e 33 4
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STARTING RUNNING STARTING +RtJNNING STARTING + RUNNING STEP s
+ STARTING RANDOM 1
Kw Kvar Kw Kvar Kw Kvar Kw Kvar
======....................-======......................======.........................
RANDOM =0 e
504.4 763.9 160.7 77.0 4
FANDOM >0 470.5 721.6 160.7 77.0 a
t=0 sec 1448.3 0638.3 707.0 305.8 1448.3 2638.3 19*0.7 3400.2 y
e t=2 sec 1047.4 3441.2 482.9 194.0 1754.4 3747.0 2004.9 4468.6*
s t=15 sec 654.9 3746.4 571.5 345.1 1844.8 4096.0 0315.3 5017.8 t=OO sec 395.5 1808.2 295.0 161.9 2156.9 2653.1 0627.4 3374.7 y
8 t=25 sec 506.9 2750.1 419.3 185.6 0563.3 1756.9 3033.8 4478.5 t=1 min 30 sec
- 485.0 0.0 485.0 0.0 0960.7 1190.4 *3431.2 1914.0 8
t=2 min 175.3 858.7 166.9 118.7 3136.0 2051.1 3606.5 2772.7 y
t=2 min 30 sec
- 239.6 546.9 91.9 61.8 3367.2 1858.0 7837.7 0579.6 5
y e
t=3 min 20 sec
- 179.3 694.3 104.4 54.9 3398.8 2067.2
!869.3 2788.8 s
t=5 min 14.8 18.8 2.1 2.4 3338.7 1446.6 3809.2 2168.2 y
t=15 min 142.6 408.0 62.0 38.4 3468.6 1838.2 3939.1 2559.8 V
t=21 min 665.2 1562.5 263.6 119.0 4053.2 3031.1 4523.7 3750.7
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STARTING RUNNING STARTING +RtJNNING STARTING +RtJNNING STEP
+ STARTING FANDOM
+
y Kw Vvar Yu Vvar Vw Vvar Vu Yvar
==......................................................................................
RANDON =0 452.4 665.0 165.3 66.0 b
8 RANDOM 20 418.6 477.7 165.3 66.0 y
t=0 sec 1558.4 2682.5 808.1 317.2 1558.4 0682.5 0010.8 3347.5 t=2 sec 1048.1 3440.9 482.9 194.0 1876.2 3758.1 2094.8 4235.8' y
t=15 sec 654.9 3746.4 571.5 345.1 1965.9 4307.6 O!84.5 4785.3 t=20 sec 395.5 1808.2 295.0 161.9 2278.0 2664.5 0696.6 3142.2 y
t=05 sec 506.9 2750.1 419.3 185.6 0684.4 1768.3 3103.0 4246.0 4
t=1 min 30 sec
- 485.0 0.0 485.0 0.0 3081.8 1203.8
!:00.4 1681.5 t=0 min 175.3 858.7 166.9 118.7 3:57.1 0062.5 3675.7 0540.2 y
t=2 min 30'sec
- 157.7
,368.5 63.9 39.7 3406.4 1691.0 2825.0 2168.7 y
t=3 min 20 sec
- 179.3 694.3 104.4 54.9 3491.9 0056.5 3910.5 05:4.0 t=5 min y
14.8, 18.8 2.1 2.4 3431.8 1435.9 3850.4 1913.6 t=15 min Y
t=21 min 665.2 1562.5 263.6 119.0 4084.3 2982.0 4502.9 3459.7 h
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STARTING Rt#JNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING RANDOM Kw Kvar Kw Kvar Vw Mvar Ew t: var y
==============================================================================
RANDOM =0 399.5 551.5 147.8 58.9 4
FANDOM >0 365.7 509.0 147.8 58.9 t=0 sec 1508.5 0685.5 781.5 317.0 1*08.5 0685.5 1908.0 3237.0 4
t=0 sec 1048.1 3440.9 482.9 194.0 1829.6 3757.9 0195.3 4267.1' t=15 sec 654.9 37N.4 571.5 345.1 1919.3 4307.4 0285.0 4816.6 t=20 sec 749.5 3542.8 576.6 317.8 0585.4 4398.9 2951.1 4908.1 Y
t=25 sec 506.9 2750.1 419.3 185.6 0919.4 1924.0
! 85.1 4433.2 V
t=1 man 30 sec
- 485.0 0.0 485.0 0.0 3316.8
!!59.5.!a82.5 1868.7 t=0 min 175.3 8'58. 7 166.9 118.7 3492.1 2218.2 2857.8 0727.4 y
t=0 min 30'sec
- 039.6 546.9.
91.9 61.8 3723.3 00 5.1 4089.0 0534.3 y
t=3 man 20 sec
- 179.3 694.3 104.4 54.9 3754.9 0034.3 4120.6 0743.5 t=5 man 14.8 18.8 0.1 0.4 2694.0 1613.7 4060.5 01:0.9 y
t=15 min 142.6 408.0 62.0 28.4 3824.7 0005.3 4190.4 2514.5 t=21 min 132.7 421.8 63.1 30.6
!876.8 0057.5 4 42.5 2566.7
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STARTING RUNNItJG STARTING + rut 2NING STARTING +Rutit!!NG STEP
+ STARTING FAtJCOM y,
Vu Yvar Yn Yvar Vw Vvar Yu Yvar RANDOM =0 677.0 1103.0 032.0 143.0 4
8 FANDOM >0 677.0 1103.0 030.0 143.0 t=0 sec 1304.0 0363.0 563.0 349.0 1304.0 0363.0 1931.0 3466.0 g,
t=0 sec 1033.0 3450.0 546.0 017.0 1596.0 3799.0 0073.0 4900.O' t=15 sec 655.0 3745.0 565.0 341.0 1764.0 4361.0 0441.0 5464.0 t=OO sec 743.0 3460.0 571.0 316.0 0417.0 4369.0 3094.0 5470.0 g,
t=25 sec 502.0 2743.0 433.0 191.0 0747.0 7966.0 3404.0 5069.0 8
V t=1 min 30 sec
- 485.0 0.0 485.0 0.0 3163.0 1414.0 3840.0 0517.0 t=0 min 080.0 830.0 167.0 119.0 3443.0 0044.0 4100.0 3347.0 g,
t=2 min 30 sec
- 3330.0 1533.0 4007.0 2636.0 V
8 t=3 man 20 sec
- 3330.0 1533.0 4007.0 0636.0 t=5 man 3330.0 1533.0 4007.0 0636.0 g,
t=15 min 2330.0 1533.0 4007.0 0636.0 t=21 min 3330.0 1533.0 4007.0 0636.0
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+ STARTING RANDON Kw Kvar-kw Kvar Kw Kvar Ew Evar y
RANDOM.0 183.4 191.9 72.4 29.0 8
W FANDOM >0 8
149.6 149.6 72.4 29.0 t=0 sec 2164.3 3838.4 915.6 429.5 2164.3
!838.4 2747.7 4030.3 y
t=2 sec 1047.4 7441.2 482.9 194.0 1963.0 3870.7 2112.6 4020.3' 8
a v
s t=5 sec 628.7 2400.9 321.8 160.7 2007.2 0024.4 2176.8 3174.0 t=6 sec 11.5 15.3 2.2 2.9 1731.8 799.5 1881.4 949.1 y
t=9 sec v
8 t=10 sec 732.5 2315.8 322.0 121.7 2455.0 3102.9 2604.6 3252.5 t=15 sec 654.9 3796.4 571.5 345.1 2699.4 4705.2 2849.0 4854.8 g,
t=20 sec 395.5 1808.2 295.0 162.0 3011.5 3062.1 3161.1 3211.7 9
t=25 sec 506.9 2750.1 419.3 185.6 3417.9 4166.0 3567.5 4315.6 t=2 min 175.3 858.7 166.9 118.7 3505.6 2460.0 3655.0 2609.8 g,
t=2 min 30 sec
- 157.7 368.5 63.9 39.7 3654.9 2008.7 3804.5 2238.3 V
8 t=3 min 20 sec
- 179.3 694.3 104.4 54.9 3740.4 2454.2 3890.0 2603.8 8
g, t=5 min 14.8 18.8 2.1 2.4 3680.3 1833.6 0829.9 1983.2 t=15 min W
8 t=21 min 132.7 421.8 63.1 30.6 3800.3 2239.0 3949.9 2388.6 8
y t=100 min 57.'4 94.6 8.5 11.4 3788.1 1942.4 3937.7 2092.0 W
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STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING FANDOM Kw Kvar Kw Kvar Vw Kvar Ew Mvar y
.....................==........--.....................==......====......==....==.....
F.ANDOM =0 243.7 308.2 90.1 39.2 y
PANDOM >0 209.8 265.9 61.2 38.6 4
t=0 sec 2056.2 3773.3 845.9 414.6 2056.0 3773.3 0299.9 4081.5 y
t=0 sec 1047.4 3441.0 482.9 194.0 1893.3 3855.8 0103.1 4121.7' t=5 sec 629.4 2400.4 301.8 160.7 2376.2 4049.8 0586.0 4315.7 8
t=6 sec y
t=9 sec 11.5 15.3 0.0 2.9 1650.6 e769.3 1860.4 1035.0 t=10 sec 732.5 0315.8 302.1 121.6 0385.3 3088.0 *2595.1 3353.9 t=15 sec 654.9 3796.4 571.5 345.1 2629.8 4690.2 2839.6 4956.1 y
t=20 sec - 395.5' 1808.2 295.0 161.9 2941.9 3047.1 3151.7 3313.0 y
t=25 sec 506.9 2750.1 419.3 185.6 3348.3 4150.9 3558.1 4416.8 t=2 min 175.3 858.7 166.9 118.7 3436.0 2445.1 3645.8 0711.0 y
t=0 min 30 sec
- 239.6 546.9 91.9 61.8 3667.2 2:52.0 3877.0 0517.9 8
W t=3 min 20 sec
- 179.3 694.3 104.4 54.9 3698.8 2461.0 3908.6 0727.1 t=5 man 14.8 18.8 2.1 2.4 3638.7 1840.6
!848.5 2106.5 y
t=15 min 142.6 400.0 62.0 38.4 3768.6 2232.2 3978.4 2498.1 W
t=21 min 665.2 1562.5 263.6 119.0 4:53.0 3425.1 4563.0 3691.0 t=120 min 57.*4 94.6 8.5 11.4 4009.0 2076.0 4218.8 2342.1 y
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STARTING RtJNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING RANDOM Kw Kvar Kw Kvar Kw Kvar Kw y
...............................................................Kvar RANDOM =0 252.1 332.5 113.8 39.8 y
FANDOM >O 218.2 280.2 58.0 38.2 t=0 sec 2102.3 3693.4 934.3 418.2 2100.3 3693.4 0354.4 4025.9 y
t=0 sec 1048,1 3440.9 482.9 194.0 1982.4 3859.1 2000.6 4139.3' t=5 sec 628.7 2400.9 321.8 160.7 0045.9 3013.1 2064.1 3293.3 t=6 sec 11.5 15.3 2.2 2.9 1750.5 788.0 1968.7 1068.4 y
t=9 sec y
t=10 sec 732.0 2315.9 322.0 121.7 2473.2 3091.7 *2691.4 3371.9 t=15 sec 654.9 3796.4 571.5 345.1 0718.1 4693.9 2936.3 4974.1 y
t=20 sec 395.5
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295.0 161.9 3030.2 3050.8 3248.4 3331.0 y
t=25 sec 506.9 2750.1 419.3 185.6 3456.6 4154.6 3654.8 4434.8 t=2 min 175.3 858.7 166.9 118.7 3524.3 2448.8 3742.5 2729.0 y
t=0 min 30 sec
- 157.7 368.5 63.9 39.7 3673.6 0077.3 3891.8 2357.5 V
t=3 min 20 sec
- 179.3 694.3 104.4 54.9 3759.1 2442.8 3977.3 2723.0 t=5 min 14.8 18.8 2.1 2.4 3699.0 1822.2 3917.2 0102.4 9
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t=15 min T
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t=21 min 665.2
-1562.5 263.6 119.0 4351.5 3368.3 4569.7 3648.5 9
t=120 min 57.*4 94.6 8.5 11.4 4007.3 2019.4 40 5.5 0299.6
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b Train 29
}
y STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING RANDOM y
Kw Kvar Kw Mvar Kw Kvar Ew Kvar F ANDO*1 =0 217.8 249.6 100.5 35.2 F ANDOP1 >0 104.0 207.3 100.5 35.2
~
y t=0 sec 2001.0 3655.9 880.7 411.6 0001.0 3655.9 0 18.8 3905.5 t =0 s ec 1048.1 3440.9 482.9 194.0 1928.8 3852.5 2110.8 4059.8*
a t=5 sec 628.7 2400.9 321.8 160.7 2411.7 4046.5 0595.7 4053.8 t=6 sec y
i t=9 sec 11.5 15.3 2.2 2.9 1685.4 v766.3 1869.4 973.6 6
t=10 sec 732.0 0315.9 322.0 101.7 2419.6 3085.1 0603.6 3292.4 t=15 sec 654.9 3796.4 571.5 345.1 0664.5 4687.3 2848.5 4894.6
.y t =OO sec 749.5
%542.8 576.6 317.8 3330.6 4778.8 3514.6 4986.1 y
t=25 sec 506.9 2750.1 419.3 185.6 3664.6 4303.9 3848.6 4511.2 s
t=2 min 175.3 858.7 166.9 118.7 3750.3 2598.1 3936.3 2005.4 y
t=2 min 30 sec
- 239.6 546.9 91.9 61.8 3983.5 2405.0 4167.5 2612.3 y
a t=? min 20 sec
- 179.3 694.3 104.4 54.9 4015.1 0614.2 4199.1 0821.5 t=5 min 14.8 18.8 2.1 2.4 3955.0 1993.6 4139.0 0000.9 y
8 t=15 min 142.6 409.0 62.0 38.4 4084.9 2385.2 4268.9 2592.5 8
w t=21 min 132.7 421.8 63.1 30.6 4137.0 2437.4 4301.0 2644.7 t=120 min 57.'4 94.6 8.5 11.4 4124.8 2140.8 4:08.8 2348.1 y
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- Seguoyah Wclear Plcnt-Dioont GM(rctor Lating ct B1cckout with Phase Q V
Page 9) b-s t
Contractor evaluation STARTING RtJNNING STARTING + RUNNING STARTING + RUNNING STEP s
+ STARTING RANDON 8
Kw Kvar Kw Kvar Kw Kvar Kw Kvar y
RANDOM =0 8
534.0 925.0 145.0 90.0 6
8 FANDOM >0 534.0 925.0 145.0 90.0 8
t=0 sec 8
1811.0 3161.0 694.0 430.0 1811.0 3161.0 O!45.0 4086.0 g,
e t=2 sec 1033.0 3450.0 546.0 217.0 1727.0 3880.0 d261.0 4805.0' s
t=5 sec 615.0 23do.O 328.0 163.0 2073.0 4097.0 2807.0 5022.0 s
t=6 sec 8
g, t=9 sec 1568.0 wO10.0 2100.0 1735.0 t=10 sec 703.0 2296.0 338.0 126.0 2271.0 3106.0 2805.0 4031.0 8
t=15 sec 655.0 3795.0 656.0 341.0 2561.0 4731.0 3095.0 5656.0 g,
s t=20 sec 743.0 3462.0 571.0 316.0 3305.0 4739.0 3839.0 5664.0 y
8 a
t=25 sec 502.0 2743.0 433.0 191.0 3635.0 4336.0 4169.0 5261.0 8
t=0 min 280.0 830.0 167.0 119.0 3846.0 2614.0 4!80.0 3539.0 g,
t t=2 min 30 sec
- 3733.0 1903.0 4267.0 2828.0 V
8 t=3 man 20 sec
- 3733.0 1903.0 4267.0 2828.0 e
t=5 min 3733.0 1903.0 4267.0 2828.0 g,
t=15 min 3733.0 1903.0 4267.0 2828.0 V
8 t=21 min 3733.0 1903.0 4267.0 2828.0 t
g, t=100 min 3733.0 1903.0 4267.0 2828.0 h
%e br e
n Y
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i
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It-h86
- Sekuoyah Pdaclear Plcnt-Diesel G rctor Lording at B1cckout with Ph;se D Page 92 I
Train 1A 4
STARTING rut #4!NG STARTING +Filt# JING ST ART ING+RtRJN!?JG STEP
+STARTItJG FAtJDON Kw Kvar P'w Kvar t:w Kvar l'w
); var y
3==.........................==......................
EANDOPt =0 183.4 191.9 72.4 29 b
F ANDOt1 >O 149.5 149.6 72.4 29 t=0 sec 1503.3 2362.8 513 267 1503.3 0360.8 1686.7 2554.7 y
t=0 sec 1047.4 3441.0 482.9 194 1560.4 3708.0 1709.9 0857.8' t=5 sec 628.7 24do.9 321.8 160.7 1624.6 0861.9 1774.1 3011.5 t=6 sec 11.5 15.3
- 2. 2 0.9 1329.0 637 1478.7
'786.6 y
t=9 sec e
w t=10 sec 732.5 2315.0 322 101.7 0052.4 0940.4 0001.9 3090 t=15 sec 654.9 3796.4 571.5 345.1 0296.8 4542.7 2446.5 4692.3 y
t=OO sec 354.1 1734.6'. 281.7 155.8 0567.5 0826 0717 0975.6 y
t=25 sec 506.9 0750.1 419.3 185.6 3000 3997.3 3151.5 4146.9
.t=!O sec 1136 3959.8 557 016.3 4050.4 5392.6 4199.9 5542.2 9
t=0 min 175.3 858.7 166.9 118.7 3646.7 2507.0 3796.2 2657.4 V
t=0 min 30 sec
- 157.7 368.5 63.9 39.7 3796 2136.3 3945.5 0285.9 t=3 min 20 sec
- 179.3 694.3 104.4 54.9 '3881.5 2501.8 4031 2651.4 9
t=5 min 220.7 86.4 208 70.1 4027.3 1948.8 4176.8 2098.4 9
t=10 min 67.3 250.9 38.8 25.1 4081.9 2183.4 4231.4 0333 9
t=15 man t=21 min 132.7 421.8 63.1 30.6 4186.1 0379.4 4335.6 0529 W
t=120 min 57.4 94.6 8.5 11.4 4173.9 0002.8 43 3.4 2:32.4 g
..................=.....=.m..==...==...==..m.........=..===........
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4 Train 1B
- ==.......................===......................................=====...............
STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING FANDOM y
Ku Kvar Kw Kvar-t:w D: var I:w 6: var
============....==============================================================
F.ANDOM =O' 243.7 308.2 90.1 20.2 Y
8 fat 4 DOM >O 209.6 265.9 90.1 39.0 t=0 sec 1396.4 2099.2 443.7 052.7 1396.4 2099.2 1640.1 2607.4 y
t=0 sec 1047.4 3441.2 482.9 194 1491.1
!693.9 1700.7 3959.8' e
b t=5 sec 629.4 24do.4 321.8 160.7 1556 2847.1 1765.6 3113 t=6 sec y
t=9 sec 11.5 15.3 2.2 2.9 1059.9 v600.7 1469.5 888.6 8
6 t=10 sec 732.5 2315.8 320.1 121.6 1983.1 2926.1 0190.7 3192 t=15 sec 654.9 379,6.4 571.5 345.1 0007.6 4508.3 0437.0 4794.0 9
t=20 sac 354.1 1734.6 281.7 155.8 2498.3 2811.6 0707.9 3077.5 y
t=25 sec 506.9 0750.1 419.3 185.6 0930.8 3982.9 3142.4 4:48.8 t=!O sec 1136 3959.8 557 016.3 3981.2 5378.2 4190.8 5644.1 y
t=0 min
- 175.3 858.7 166.9 118.7 3577.5 0493.4 3787.1 0759.3 V
t=2 min 30 sec * - 239.6 546.9 91.9 61.8 3808.7 2300.3 4018.3 0566.2 t=3 min 20 sec
- 179.3 69443 104.4 54.9 3840.3 0509.5 4049.9 0775.4 y
t=5 min 220.7 86.4 208 70.1 3986.1 1956.5 4195.7 0202.4 8
Y t=10 min 67.3 250.9 38.8 25.1 4040.7 2191.1 4:50.3 0457 t=15 min 142.'6 408 62 38.4 4154.8 2373.3 4364.4 0639.2 y
t=21 min 665.2 1562.5 263.6 119 4739.4 3566.2 4949 3832.1 W
t=100 min 57.4 94.6
- 8. 5 '
11.4 4395.2 2017.3 4604.8 0483.2 messommenemommene.eeemme.mem.seem===============================mummmmm.msmessassammaammes b
2, s
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P'r ifa g -86 SequoyahNuclearPlant-Dies 21GMrctorLeadingatB1cckoutwithPhaseO U
Page 94 b
t
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Train OA STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING FANDOt1 Kw Kvar Kw Kvar Kw Kvar t'w Kvar y
RANDOM =0 252.1 332.5 113.8 39.8 V
FANDOM >0 218.2 290.2 113.8 39.8 t=0 sec 1441.1 2217.4 531.8 055.8 1441.1 0217.4 1693.0 0549.9 y
t=0 sec 1048.1 3440.9 482.9 194 1579.9 3696.7 1798.1 3986.9' 4
t=5 sec 608.7 2400.9 321.8 160.7 1643.4 0850.7 1861.6 3140.9 t=6 sec 11.5 15.3 2.2 0.9 1348 605.8 1566.0 916 t=9 sec y
8 v
t=10 sec 732 2315.9 322 121.7 0070.7 0909.3 0088.9 3019.5 t=15 sec 654.9 3796.4 571.5 345.1 0315.6 4531.5 0533.8 4821.7 y
t=OO sec 354.1 1734.6 081.7 155.8 0586 3 0814.8 0804.5 3105 y
t=25 sec 506.9 2750.1 419.3 185.6 3000.8 3986.1 3 39 4276.3 8
t=!O sec 1135.6 3959.9 557 216.3 4068.8 5381.5 4087 5671.7 y
t=0 min 175.3 858.7 166.9 118.7 3665.5 0496.6 3883.7 2796.8 V
t=0 min 30 sec
- 157.7 368.5 63.9 39.7 3814.8 21 5.1 4033 0415.3
/
8 9
t=3 min 20 sec *
- 179.3 694.3 104.4 54.9 3900.3 2490.6 4118.5 0780.8 t=5 min 220.7 86.4 208 70.1 4046.1 1937.6 4264.3 0007.8 V
t=10 min 67.3 250.9 30.8 25.1 4100.7 2170.0 4318.9 0462.4 9
t=15 min t=01 man 665.2 1562.5 263.6 119 4737.4 3508.9 4955.6 3799.1 V
t=120 min 7
57.4 94.6 8.5 11.4 4393.2 0160 4611.4 0450.2
.......................................................a.
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Train OB
........................====..-=======.....===========...
STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING FANDOM y
Kw Kvar Kw Kvar Vw Kvar Ew Evar 1
.=..........................
...u.......................========....-================....
RANDOM =0 217.8 249.6 100.5 35.2 4
8 EANDOM >0 183.9 207.3 100.5 35.2 y
t=0 sec 1338.2 2177.9
- 77.9 249 1338.2 2177.9 1556 2407.5 t=0 sec 1048.1 3440.9 4R2.9 194 1526 3689.9 1709.9 3897.O*
8 v
s t=5 sec 628.7 2400.9 321.8 160.7 1589.5 2843.9 1773.4 3051.2 t=6 sec y
t=9 sec 11.5 15.3
- 2. 0 2.9 1294.1 y 619 1478 806.3 y
t=10 sec 732 2315.9 322 1 1.7 0016.8 09:2.5 2000.7 3109.8 t=15 sec 654.9 3796.4 571.5 345.1 0261.7 4504.7 2445.6 4732 y
t=20 sec 708.2 Z469.2 563.3 311.7 2886.5 4542.6 3070.4 4749.9
+
y t=25 sec 506.9 2750.1 419.3 185.6 3248.5 4135.0 3430.4 4342.5 y
t=30 sec 1135.6 3959.9 557 216.3 4096.5 5530.6 4480.4 5737.9 8
t=2 min 175.3 858.7 166.9 118.7 3893.2 2645.7 4077.1 2853 y
t=2 min 30 sec
- 239.6 546.9 91.9 61.8 4124.4 2452.6 4:08.3 2659.9 y
t=3 min 20 sec
- a 179.3 694.3 104.4 54.9 41Sei 2661.8 4339.9 2869.1 t=5 min 220.7 86.4 208 70 1 4301.8 0108.8 4485.7 0316.1 V
8 t=10 min 67.3 250.9 38.8 25 1 4356.4 2343.4 4540.3 0550.7 y
t=15 min 142.*6 408 62 38.4 4470.5 2525.6 4654.4 2732.9 8
t=21 min 132.7 421.8 63.1 30.6 4522.6 2577.8 4706.5 2785.1 4
8 t=120 min 57.4 94.6 8.5 11.4 4510.4 2281.2 4694.3 0488.5 y
...=..........................
............................===..======.......-====.
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Pag. 96 4
j 1
Contractor evaluation STARTING RUNNING STARTING + RUNNING STARTING + RUNNING STEP
+ STARTING F.ANDOM Kw Kvar Kw Kvar Kw Kvar Kw Kvar y
................................................................................===.......
RANDOM =0 519 909 158 98 I
9 FANDOM >0 t
127 222 158 98 t=0 sec 1359 1919 474 294 1359 1919 1878 2828 y
t=2 sec 1033 3450 546 217 1507 3744 1634 3966' t=5 sec 615
'd380 328 163 1635 2891 1762 3113
~ s t=6 sec y
t=9 sec v
l t=10 sec 703 2296 338 126 2051 2970 2178 3192 l
V 565 341 2:41 4595 2468 4917 t=15 sec 655 3795 s
743
,3462 571 316 2*94 4603 3121 4 8.Y.,
t=20 sec a
y t=25 sec 502 2743 433 191 3 24 4200 2451 4422 I
t=30 sec 1100 3906 542 207 4355 5554 4482 5776 y
l t=2 min 280 830 167 119 4077 2685 4 04 2907 l
9 t=2 min 30 sec
- 3964 1974 4091 2196 t=3 min 20 sec
- 3964 1974 40Y1 2196 y
t=5 min 3964 1974 4091 2196 9
t=10 min 3964 1974 4091 2196 t=15 min
' '* t 3964 1974 4091 2196 9
t=21
- 4 n 3564 1974 4091 2196 9
t=120 min "7
3964 1974 4091 2196 as...............................as..s........ rte..............e..............................
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ATTACHMENT E
J D-G Loading Sequence for:
1 a.
B0 on Power Train 2B I
b.
B0 & SI-PhA on Power Train 2B c.
80 & SI-PhB on Power Train 2B O
Comp 1 e Attachment E was:
Preparedb(_,A Date 2-/8-84 Checked by k [
Date S"-//o -86 a
((er $,I?.//leTNosis. ~
b I
EW see _
,w M-J l
r i
1323G
{
Prapar f
Checked C8kk_
b i
Reviewed 8,ffeem SEQUOY4H NUCLEAR DIESEL GENERATOR LOADING SEQUENCE Dato 2 -/d #6 FOR 80 (LOSS OF OFF-SITE POWER) ON POWER TRAIN 2B Load Time' Starting Acc Time Running Running Conconent Ratino (Sec)
P F.
(Sec)
Remarks P.F.
Eff.
Random Loads 279 HP 0.523 5 Max. 9" 1294 Kva
.85"
.9" Min. Volts Starting 4
6.9kV to 3 9 1500 0
0.483 5 Max en 679 HP
.85"
.9" l
480V transformers kVA, I e Minimum 2699 Kva i
300 kVA Volts' Starting 3
Centrifugal 600 hp rated 2
.2868 4591001 3601 kVA A
.929
.939 Charging 687 hp actual Volt, 11.5 9 Starting Punp 80% VoIt Essential 700 hp 15
.17" 1.4 9 1001 3852 kVA A
.856
.925
{
Raw Cooling Volt, l.98 9 Starting Water Punp 90% Volt k
Corrponent 29 20
.2098 3.6 9 1001 3541 kVA A
.875
.928 Cooling 350 hp rated Volt, 6.0 9 Starting Pump 355 hp actual 80% Volt Auxiliary 500 hp rated 25
.18" 5 Max 9" 2789 kVA A
.915
.93 Feedwater 540 hp actual Minimum Starting Pump Voltage Pressurizer 485 kw A90 Heaters I
Fire Pumps 200 hp rated 2120
.32 29 876 kVA A
.815
.895 85%
Starting Volt
" Time is measured from closing of circuit breaker connecting the diesel generator to the power train with 5% timing accuracy.
" Assumed values A Kva was calculated at 6.6'Kv.
0671A
).
99 Prepare k
Checked d
Sheet I of 2 Reviewedd.Nfew D to 2- /4 -D SEQUOYAH NUCLEAR DIESEL CENERATOR LOADING SEQUENCE Rev RI FOR 80 AND SI-PHASE A ON POWER TRAIN 28 toad Time' Starting Acc Time Running Running Component ptino (Sec)
P F.
(Sec)
Remarks P.F.
Eff.
Random Loads 175 HP
.500 5 Max en 1068 Kva 0.85 "
0.9" Minimum Volts Starting 6.9kV to 3 9 1500 0
.497 5 Max f '
837 HP
.85"
.9" 480V transformers kVA, I 9 Minimum 3643 Kva 300 kVA Volts Starting Centrifugal 600 hp rated 2
.2868 4.5 9 1001 3601 kVA A
.929
.939 Charging 687 hp actual Volt, 11.5 9 Starting Pump 80% Volt Safety 400 hp rated 5
.25 2.7 9 100%
2458 kVA A
.895
.933 Injection 410 hp actual Volt, 6.8 9 Starting Punp 80% Volt Residual 400 hp rated 10
.2928 1.6 9 1001 2401 kVA A
.937
.938 Heat Renoval 425 hp Volt, 3.8 9 Starting Pump actual 801 Volt Essential 700 hp 15
.17" 1.4 9 1001 3852 kVA A
.856
.925 Raw Cooling Volt, l.98 9 Starting Water Pump 901 Volt Component 29 20
.2098 3.6 9 1001 3541 kVA A
.875
.928 Cooling 350 hp rated Volt, 6.0 9 Starting Pump 355 hp actual 801 Volt Auxiliary 500 hp rated 25
.18" 5 Max 9" 2789 kVA A
.915
.93 feedwater 540 hp actual Minimum Starting Pump Voltage 0663A
100 h
Propa Checked Reviewed,[,N[M Date 2 ~/ O ~Yh'*
FOR 80 AND SI-PHASE A ON POWER TRAIN 28 R\\
Load Time' Starting Acc Tine Running Running Conconent Ratina (Sec)
P F.
(Sec)
Remarks P.F.
Eff.
Fire Punps 200 hp rated 2120
.32 20 876 kVA A
.815
.895 85%
Starting Volt
' Tine is measured from closing of circuit breaker connecting the diesel' generator to the power train with 5 percent timing accuracy.
" Assumed values A Kva was calculated at 6.6 Kv.
1 e
4 0663A
101 enpare
/wd d
Checkcd Sheet I of 2 g,v,,,,,gfgp oate 2 ~/o- &-L, SEQUOYAH NUCLEAR DIESEL CENERATOR LOADING SEQUENCE by R1 FOR 80 AND SI-PHASE 8 ON POWER TRAIN 28 Load Time' Starting Acc Time Running Running Component Ratino (Sec)
P F.
(Sec)
Remarks P.F.
Eff.
Random Loads 190 HP
.4%
5 Max. 9" 1047 Kva 0.85
O.9" Min. Volt Starting 6.9kV to 3 9 1500 0
.578 5 Max 4" 572 Conn. HP
.85"
.9" 480V transformers kVA, I @
Minimum 2351 Kva 300 kVA Volts Starting Centrifugal 600 hp rated 2
.2868 4.5 e 100%
3601 kVA A
.929
.939 Charging 687 hp actual Volt, 11.5 e Starting Pump 80% VoIt Safety 400 hp rated 5
.25 2.7 e 100%
2458 kVA o
.895
.933 Injection 410 hp actual Volt, 6.8 9 Starting Purrp 80% Volt Residual 400 hp rated 10
.2928 1.6 9 1005 2401 kVA A
.937
.938 Heat Removal 425 hp Volt, 3.8 9 Starting Pump actual 80% Volt Essential 700 hp 15
.17" 1.4 9 1001 3852 kvA A
.856
.925 Raw Cooling Volt, l.% 9 Starting Water Pump 90% Volt Component 20 20
.2098 3.6 @ 1001 3541 kVA A
.875
.928 Cooling 350 hp rated Volt, 6.0 0 Starting Pump 355 hp actual 80% Volt Auxiliary 500 hp rated 25
.18" 5 Max 9" 2789 kVA A
.915
.93 Feedwater 540 hp actual Minimum Starting Pump Voltage Containment 700 hp rated 30
.27ll 3.1 9 100%
4058 kVA A
.934
.949 Spray 690 hp Volt, 11 e Starting Punp actual 80% Volt 0672A 1
102 renere Checked M l
Sheet 2 of 2 Reviewed gefdeek e-i Dato 2 -M - N FOR B0 AND SI-PHASE B ON POWER TRAIN 2B R.,
R1 Load Time' Starting Acc Time Running Running I
Congonent Ratino (Sec)
P F.
(Sec)
Renerks P. F._
Eff.
Fire Pumps 200 hp rated
> l20
.32 20 876 kVA A
.815
.895 85%
Starting Volt i
' Time is measured from closing of circuit breaker connecting the diesel generator to the power train with 5% timing accuracy.
Assumed values A Kva was calculated at 6.6 Kv.
i i
e e
f 9
0672A
ATTACHMENT F
International Power Systems, Inc.
(Morrison-Knudsen Co.) TVA Contract No.
71C61-92652 Sequoyah Nuclear Diesel Generator Load Sequence (Diesel Engine)
Report No. 6957R (
)
(Generator)
Report No. Later
-. - - ~. -.
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204 TENNESSEE VALLEY AUTHORITY KNOXVILLE. TENNESSEE 37902 h-h W7 C126, 400 West Summit Hill Drive h/4 0502 6
May 5, 1986 Norrison-Knudsen Company Power Systems Division Post Office Box 1928 Rocky Mount, North Carolina 27802-1928 Attention:
Mr. Ed Martin Gentlemen:
SEQUOYAH NUCLEAR PLANT UNITS 1 AND 2 STANDBY DIESEL GENERATORS CONTRACT 71C61-92652 - N2M-52 M-K/PSD IWO 6957 LETTER NO. 42G052
~..
m.
REVISED LOAD SEQUENCE ANALYSIS Your l'etter S/N 6957C-0-0022 dated April 3,1986
References:
1.
fp (B44 860409 501) d 2.
Telecon between Morrison-Knudsen/ Power Systems Division (M-K/PSD)(Harry Falter, Ed Martin) and TVA (Tom Hogan, Bill Kistler, Pete Bowman, Randall McIntosh) on April 17, 1986 We acknowledge receipt of your referenced letter, and with the understandings i
summarized below, we are retaining all copios of the following reports marked (A), " Approved":
t
...,...o..
Document No.
Rev.
Title NEI-PEPI T-1016 0
Transient Voltage Response
-.;. -.. 6957R 1
Engine Capability Report w w m ars e...,a r a w.a w:~ a
.,n To summarize our understandings per reference 2:
1.
Since the 25-second load was evaluated at full horsepower of 540 with a 5-second acceleration time, an increase in acceleration time to 6 or 7 seconds will have no effect, i.e., 5-second acceleration time at maximum
~ ~ ' ~ '
horsepower is the worst case.
1 SENT MM os ess EB MASTER FlLE l
~
An Equal Opportunity Employer
205 N.'
~
t r.:
h 2
a:.
4 Morrison-Knudsen Company May 5,1986
, ~ '
~
, ~.
c 2.
Due to roundup. error for calculation, running KW has been found t lower.
maxim'um KW which can be applied at the 30-second ste o be a
4482 KW' A-
~' '
~ -3099,KW. Actual running load prior to 30-second Joad
+ 41 KV 2-33 HP valves that turn off at T = 6 seconds
-1100 KV 30-second load starting 324 KW TOTAL RANDOM LOAD that can be added at T = 30 Also, for any oth'er~ evaluation up to 3 minutes, if running plus st does not exceed 4482 KW, the diesels will pass acceptable frequenc arting load y recovery.
3.
The engine.is considered hot after 3 minutes.
..e".
4.-
4750 KW is'the 100 percent rating of the diesel engine only
@-)
5.
The accuracy of engine evaluation is is percent if input informatio accurate.
n is
.. *_ i ~ ' ci
/; ; *-
6.
TVA specification 1166, service condition a.The acceptance cri e
n Any questions or comments on this matter should be directed to W at (615) 632-7108.
R. Kistler Very truly yours,
.. ~.
_- _.. TENNESSEE VALLEY AUTHORITY Original Signed B7
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TREX sc2507 P5Danao
.' c REPORT NO. 6957R REVISION 1 MARCH 31, 1986 M-K/PSD IWO 6957 TVA CONTRACT 71C61-92652 C.0. 33 & 34 SEQUOYAH NUCLEAR DIESEL GENERATOR LOAD SEQUENCE REVISION 1 Engine Capability to Accept
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and Carry Sequenced Loads with Random Loads Applied at any Point during the Load Sequence
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The analysis" applies to the engine capability to accept the sequenced KW load.
The generator capability to accept the KVA load is addressed in an NEI-EP report.
2.
The engine can accept the initial load of each sequence m' ode when the generator circuit breaker is closed during the engine start acceleration at 850 RPM.
3.
All sequenced loads are well within the engine load pickup capability with the exception of the Phase B'30 second load step.
For this step, the random start load is 167 KW and the random run load is 45 KW.
The 167 KW random. start lo d applied with the 700 HP motor resulted in a frequency drop of 6.2%.
The engine, ho'ever, w
recovered to rated frequency in 4.8 seconds.
The maximum random load that can be applied with the 700 HP motor and remain within the 5% frequency transient limit is calculated at 127 KW.
(fg' 4.
The 110 HP motor can be added in one block following the 120 second load step.
It can, be added at any time thereaf ter.
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N.C. License No. 7033
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1 208
... s TRANSIENT YOLTACE RESPONSE OF THE DIE 5EL-CENERATOR UNITS, POWER TRAIN 28 TO POSTULATED EMERGENCY LOADING T.V. A. - SEQUQYAH NUCLEAR CENERATING STATION M-K, P.S.D. PURCHASE ORDER NO. 56534-6957 CENERATOR SERIAL NOS: 17105018 THROUCH 17105021-200 WITH BASLER AND PP-EP STATIC EXCITATION SYSTEMS NEl-PEPl REF. T-1016 4,,
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TRANSIENT VOLTAGE RESPONSE OF THE DIESEL-GENERATOR UNITSo POWER TRAIN 2B.
g TO, POSTULATED EMERGENCY LOADING h
TENNESSEE VALLEY AUTHORITY T
SEQUOYAH NUCLEAR GENERATING STATION N
GENERATOR SERIAL NOS.:
17105018 THROUGH 021-200
- WITH BASLER AND PP-EP STATIC EXCITA. TiCN SYSTEMS A.
Introductory Notes:
~
The following study of the transient voltage response utilizes the PP-EP computer code ESC 016 which is an adaptation of the Harder and Cheek analytical method utilizing well proven principl.es of the dynamic system representation. Although this method is' r' markably e
accurate when used to analyze motor starting effects on an isolated diesel-generator-exciter system, it is considerably simpler to use than any other method based on a " complete dynamic model" of the system. While its inherent relative simplicity makes this method very practical for emergency loading studies, such as the following, there are certain, limitations its user Jnust be aware'of. These are:
1.
Voltage response is based on. the synchronous speed-of the generator and all transient frequency effects are neglected.
This is justified by the fact that the voltage dip and re-covery rates are much faster than the frequency dip and recovery rates due to the same motor starting.
2.
Transient >(starting) as well as the steady state '(running) fg.
W ,
loads are represented by constant impedances only and are 4
D.
essentially independent of the load t'orque. characteristics.
This is justified by the inherent behavior of asynchronously ~
operating motors. and.the fact that the system voltage fluc-tuation within the regulated small error (5%) band is of no interest.
3.
Exciter buildup characteristics are represented by an expo-nential function of time only and are essentially independ-ent of the regulator action or generator load. This is justified by the fact that the PP-EP Static Exciter-Voltage Regulator system is " flat compounding" and its regulator
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" shunts" the excess excitation power, becoming inactive when the generator voltage drops more than 1% of the preset value.
Therefore only the " natural" field buildup can exist and such buildup is exponential. (See Section C for Basler SEVR consi-derations).
4.
No active voltage regulator function is included in the analy-sis and only its time lag is accounted for. This is justified by the fact that a voltage error signal in excess of 1% of the
. pre-set generator voltage causes the regulator to turn off so that all power received by the exciter is applied to the genera-tor field. The time required to sense the error; pro, cess the
. logic and inhibit the SCR firing is the regulator time lag p
causing' the delay of the exponen,tial field buildup mentio,ned Qc above. (See. S.ectiorr C for Basler SEVR. considerations).
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Transient voltage rise due to an abrupt load impedance change, 4f such as crossing the break-down speed of an asynchronous motor or completing the magnetization of a transformer, cannot be analyzed by this method. All voltage profile calculations end with a hypothetical "zero line" crossing based on the instantaneous field excitation with the generator saturation effects accounted for but the regulator feedback neglected.
As can be readily steen, none of the above limitation ~s detract from the achievable accuracy of thn emergency loading studies, such as the ones
+
following, which have to be made without the benefit of accurate load and prime mover characteristic data. Experience has shown that.any potential improvement in the voltage profile accuracy when using more refined " complete" dynamic system mode!!ing approaches is completely destroyed by the inherent inaccuracies in defining dynamic character-Istics of individual motor drives and the diesel engine-supercharger-governor train. Thus any benefit that could be derived from the simul-taneous consideration of voltage and frequency effects, speed-or time-dependent load impedance change effects and the regulator feedback effects is lost anyway. Only the cost of doing so is much higher.
B.
Presentation of Data:
Only the Power Train 2B was. studied as requiied by the Purchase Order and the transient voltage profiles were generated for three postulated conditions on the Train 28 tystem,. consisting of BO and 51-Phases A and
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B plus the Loss of the Offsite Power (LOOP). The first stage of each 4'
condition consisted of applying an automatically sequenced set of emergency loads required, excluding application of the random loads. As' currently defined, random loads can be applied at any time or grouping at the opera-tor's discretion during the automatic load sequencing.. The second stage of each condition analyzed, therefore, consisted of applying an automatically I
sequenced set of loads listed combined with th'e application of random loads under each respective condition. Explanatory Notes are included in 'each part of the study.
In order to determine their maximum transient effects, combined loads can be compared with automatically sequenced loads applied alone.
As required by the Purchase Order, the study was performed twice in order-to account for different characteristics of the two excitation systems furnished.
Each study is divided into three parts identified by the designations, BO and
-.- ~-
SI-Phase A, BO and SI-Phase B and BO (L.O.O.P.) and consists of the following :
1.
Computer Run index-A matrix identifying individual Computer Print-out sheets designated by Run Numbers in terms of specific Load Blocks and Time of their' application for each condition studied.
2.
PP-EP Form #ESG016, Computer input Sheet. - A list of the elec-tr! cal sys. tem parameters. defining the generator, SEVR and load for computer processing.
Input nomenclature is defined under D, below. Load impedances for each load block are calculated from
(%N the variables OKVAL, OPFL, TKVAL t, TPFL in the sequence of G
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211 their tabulations:and corresponding computer runs are numbered in:the. same. order w :
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3.
Computer Printout consisting' of multiple pages. numbered as Run
- 1.through Run: #20 for the: BO (L.O.O.P.), through Run #24 for.BO :and.S1-Phase. A tand through 'Run #27 for. BO and SI-Phase B conditions. The first line unde'rneath the Run No.
corresponds to the initial Load KVA and Power Factor followed by the Final Load KVA and. Power Factor for the. load block being c x. :c. analyzed. This-information coincides with the one line entry of OKVAL, OPFL, TKVAL & TPFL on the Computer. Input Sheet and
- ; :- m it can'also be-traced to -the Form #2249 where it was. calculated for that particular load. block..
a.
7, Identical process is followed and the same forms are used for load blocks with or without the random loads >-however, the printout pages are numbered sequentially as listed on input sheets.
Load data common for both studies, Part 1 and Part 2,- and a graphic compar-ison of results obtained from either one of them are contained-in Part 3 and consist of the following:
- 4. " T;V.~A. Ofurnished Loading Sequence - A source document identi-
- fied as "Sequoyah Nuclear Diesel Generator Loading Sequence"
l-1 For 80 and St-Phase A on Power Train 28, Revision 4.).
R1 dated 2-10-86, Sheet 1 and 2.
, 11-1 for BO and S1-Phase B 'on Power Train 2B, Revision o
R1 dated 2 10-86, Sheet 1 and 2.
~
111-1 For BO (Loss of Off-Site Power) on Power Train 28, Revision R1 dated 2-10-86, Sheet 1.
containing all data needed to define all postulated loads as required for the study.
5.
PP-EP Form #2249, Load Application Schedule - A worksheet to derive the transient (starting) and the steady state (running) power demand of each load block and to determine their cumulative quantitles to be expressed in terms of the apparent power (a
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complex quantity) in polar form (kVA, P.F.).
Results of the study consist of computer-generated tabulations of the terminal voltage dip expressed per unit of the rated voltage as a function of the time elapsed from the instant of load switching expressed in seconds.
Internal I
generator voltage (P.U. rated) and the part of the excitation used up 'to magnetize the generator core, expressed per unit of the open-circuit air gap line excitation, are also tabulated as functions of the elapsed time and can be used as a relative measure of the system margins.
e
212 l 6.
Voltage Profile Graphs - Superimposed plots of transient voltage-h-
time profiles obtained from Part 1 (Basler SEVR) and Part 2 (PP-EP SEVR) studies of the same load blocks are provided for all step loads resulting in greater than 10% voltage dips. These plots should serve as convenient means of comparison of the rela-tive transient response of each system.
C.
Assumotions Made:
Certain assumptions had to be made in order to interpret the load data pro-vided by T.V.A. and the excitation system data provided by Basler in proper terms needed for the study.
In general, the starting KVA and P.F. data derived from T.V.A. - furnished Loading Sequences were utiliz'ed and are noted in the appropriate Columns of Form #2249. Running load power demand was calculated from the inputKilowatts of each load block tabulated (HP and Efficiency) at its running Power Factor and corresponding Kilowatts and Kilo-vars added to the starting Kilowatts and Kilovars of the following block.
However, the starting inrush Kilowatts and Kilovars only were added in the cases of closely spaced load blocks to simulate loads still accelerating. Error so introduced in the transient voltage profiles is negligible.
In the strict sense, model simplifications noted under A.3. and 4. are not applicable to the Basler Electric Co. excitation system originally furnished for the Sequoyah Diesel-Generators. Nevertheless, this system is also " flat compounding" like its PP-EP counterpart and the field buildup simulation by an exponential function is still a valid approximation of the actual system Thus the IW -EP computer code ESG016 can be used with an accep-a behavior.
P JA table degree of confidence but proper fictitious values of TXC and H must be
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assumed in order to maintain the desired accuracy of results. This is most conveniently done by " benchmarking" several computei runs simulating certain types of transient loading conditions against oscillographic voltage profiles obtained by testing the actual system under the conditions being simulated by the computer.
Although no oscillographic records of the transient voltage profiles during actual motor starting are available, some transient load simulation tests were performed by the Power Systems Division of Bruce G.M. Diesel early in 1972 during the factory testing of the combined Diesel-Generator Unit under the
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control of Basler Electric Co. Static Exciter-Voltage Regulator. Oscillographic trace of the transient voltage profile obtained as a result of a suddenly applied low power factor static load on a moderately loaded generator was utilized for
.-.-~.-the
" benchmarking" process mentioned above. Superimposed on a segment of this trace, appropriately enlarged to enable plotting, are two computer-gener-ated transient voltage profiles designated by letters A and B which represent the limits of computer simulation. As apparent from the copy included on the next page, Profile A matches the magnitude of the transient voltage dip but understates the voltage recovery time while Profile B closely approximates the voltage recovery time but overstates the voltage dip magnitude, if the oscillographic trace were obtained during an actual motor starting, it could be concluded that the best simulation of the actual test results that could be achieved by means of the PP-EP computer code ESG016 would fall between the Profiles A and B.
However, the oscillographic trace represents a rather
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ESC 016 benchmarked against an oscillographic trace of transient voltage profile obtained from factory tests of the Diesel-Generator with Basler Static Exciter-Voltage Regulator in 1972.
Load Data:
Initial:
1200kW,110 Amps, static (.913 P.F)
Step :
600kW,175.6 Amps, static (.182 P.F)
Final:
1800kW, 350 Amps, static (.430 P.F)
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" pessimistic" motor start simulation by means of a fixed static load impedance h%
which tends to overstate both the transient voltage dip as well as the voltage C8 recovery time. Thus, during an actual motor start, the trace itself would fall between the Profiles A and B.
Recognizing this, it is justified to deduce that the most practical approach would utilize the values of TXC and H that resulted in the Profile A with the most accurate voltage dip while allowing a conservative error margin for the voltage recovery time. The appropriate margin of error can be determined from the slope average of Profiles A,and B taken at the midpoints as follows:
Error = [1.43(1.1) I -1. 01 (2.0) I
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Of course, utilizing TXC and H from the Profile B computer run is an " ultra-conservative" alternate approach as it will pessimistically overstate both the transient voltage dip and the voltage recovery time. Worst condition computer
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runs using this approach are included in Part 3 of the study for comparison purposes.
D.
Nomenclature Used:
The following computer code labels are used to designate the variables listed below in the same order as they appear on the Computer input Sheet, PP-EP Form #ESG016:
rated KVA ba'se of the "per unit" system, KVA RKVA
=
=
rated Power Factor, P.U.
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- rated synch' onous speed, revolutions / minute RPM
=
r RF
=
rated frequency, Hertz DO outside diameter of stator core, in.
=
D
=
inside (bore) diameter of stator core, In.
KCG effective air gap, in.
=
DS1
=
depth of stator slot, in.
XD direct axis synchronous reactance, P.U.
=
XQ quadrature axis synchronous reactance, P.U.
=
XAL
=
armature leakage reactance, P.U.
=
armature resistance at 75'C, P.U.
XPD effective positive sequence reactance, P.U.
=
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TPDO
=
transient open-circuit direct axis time constant, sec.
HPB
=
effective magnetic pole length, in.
LY
=
effective magnetic yoke length, in.
magnetic flux density, air gap, kilotines/in.2 BG
=
BT3 magnetic flux density, tooth, kilotines/in.2
=
magnetic flux density, core, kilolines/in.2 BC
=
magnetic flux density, pole at no load, kilotines/in.2 i
BPO
=
magnetic flux density, yoke at no load, kilolines/in.2 BYO
=
EXC
=
ceiling excitation, P.U. rated voltage on air gap line TXC excitation system buildup time constant, sec.
=
H
=
voltage regulator time lag, sec.
i LAMNL' field leakage coefficient at no load, P.U.
=
(032, # DIPS, IPLOT, SCALEX, SCALEY, PRINTEST) operator's commands OKVAL generator output prior to load switching, KVA
=
OPFL
=
output power factor prior to load switching, P.U.
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TKVAL generator output after load switching, KVA
=
TPFL output power factor after load switching, P.U.
=
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. Results :
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JThe, results of t' his,s' tudy ind'icate that.th' specified' random' ioads can ~b' c,
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lapp!'iedisimult'aneoust'y; with any automiticallylsequenc'ed ' load block-witho'ut" texceeding the capability of the electrical system to. maintain the transient.
voltage within the specified limits and to recover to the steady state voltage
- band within the specified. time. However, transient overloading of the engines may occur with certain large motor load blocks and should be evaluated. Furthermore, because of a relatively large inherent error in modeling of the original Basler Static Exciter-Voltage Regulator, a safety margin of 15% must be allowed on all calculated voltage recovery. time values included in Part 1. _ lt is readily apparent that such margin is not available
- in' ~some instances and-the specification requirements"may be violated as the' transient voltage recovery to 90% rated voltage level may take longer than I second postula~ted therein. Based on the "most pessimistic" computer representation included in Part 3 of this study, however, this slower vol ' -
tage recovery appears to have no serious adverse effects on the motor capability to accelerate within the allotted time.
F.
Inherent Error e
The major source of error lies in the'inaccuracief ~of the input parameters.
Experience has shown that when " benchmarked" against actual oscillographic
. traces of the transient voltage profiles obtained during large motor starting the computer code ESG016 has an inherent error not exceeding the following k,
limits if the generatdr and -load parameters are base,d on the test data of standard (!5%) accuracy:
U, Error, Voltage Dip: 15% of the calculated val'ue.
Error, Recovery Time: 10%,-10% of the calculated value.
When used to simulate systems containing other than PP-EP Static Exciter-Voltage Regulators, the computer code ESG016 requires that parameters TEX and H be determined empirically in order to assure reasonably accurate results. For the Basler SEVR system studied in Part 1, this process is explained under Assumptions in Section C above. For the purposes of this
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' study, the inherent error or computer simulations in Part 1 was estimated as:
Error, Voltage Dip: 15% of the calculated value.
Error, Recovery Time: 10%,-15% of the calculated value.
A safety margin of 15% should be added to all calculater' time coordinates in Part 1 in order to assure a conservative application of the results.
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216 NEE NEl Peebics - Electric Products, Inc.
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17045 Euclid Avenue Cleveland. Ohio 44112 Telephone:(216) 481-1500 Morrison-Knudsen Co.,
Inc.
Telex: 241564 l
Power Systems Division Facsimile:(216) 481-8386 101 Gelo Road j
Rocky Mount, NC 27801 EFa3284 ENGINEER'S CERTIFICATION I, the undersigned Registered" Professional Engineer, do hereby certify that I have reviewed the following study of the Trans-ient Voltage Response to Postulated Pmprgency Loading, Diesel-Generator Units, Train 2B for Tennessee Valley Authority, Seg-uoyah Nuclear Generating Station and found it complete and correct to the best of my judgement.
This study was performed tinder M-K, PSD Purchase Order No.
56534-6957 dated 2-21-86, utilizing data provided by the Tenn-C..f]%
essee Valley Authority Loading Sequence tables included herein Y
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and identified as Tables I-1, II-1 and III-1 dated 2-10-86, Revision R1.
Thus study is identified as NEI-PEPI Order No.
T-1016, Parts No. 1, 2 and'3.
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. Signed"an'd" Sealed in State of Ohio License No. E-039040 Cleveland, Ohio on
-~~~e Manager of Engineering March 14, 1986 t
A wholly owned subsidiary of Northern Engineenng industnes Ltd., of England.
I ENCLOSURE 2
~
SARGENT & LUN'DY FINIL ' REPORT (VOLUMES 1 & 2)
-