ML20248E702

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Control Sys Common Power Source Failure Analysis Evaluation Rept for Enrico Fermi Atomic Power Plant Unit 2
ML20248E702
Person / Time
Site: Fermi 
Issue date: 09/30/1989
From: Bennett D, Fujitani J
GENERAL ELECTRIC CO.
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NUDOCS 8910050390
Download: ML20248E702 (95)


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._.

I; CONTROL SYSTEMS COMMON POWER SOURCE FAILURE ANALYSIS EVALUATION REPORT FOR ENRICO FERMI ATOMIC POWER PLANT UNIT 2 SEPTEMBER 1989 PREPARED FOR:

THE DETROIT EDISON COMPANY l

fDF(sM*' OO50390 P90928 ADOCK 05000341 r.De u._.

__1.___

______________________z_______

_ _ _ _ _ _ ______ _ _ ___._ _ _ _ _ _ _ m

CONTROL SYSTEMS COMMON POWER SOURCE

' FAli.URE ANALYSIS EVALUATION REPORT FOR ENRICO FERMI ATOMIC POWER PLANT UNIT 2 SEPTEMBER 1989

_ 3REPARED EOR; THE DETROIT EDISON COMPANY PREPARED BY:

D. E. BENNETT AND J. Y. FUJITANI GENERAL ELECTRIC COMPANY NUCLEAR OPERATIONS SAN JOSE, CALIFORNIA 95125 APPROVED BY:

b[A___C.

0, E. Bennett, Technical Leader - Regulatory and-Design

- Compliance Application Engineering - Nuclear Services Department h,

A. Koslow, Manager - Regulatory and Design compliance Application Engineering, Nuclea Services Department R. S. Drury, En ineering Analysis Services - Nuclear Services

. Departraent DAfl. Shen, Licensing and Consulting Services - Nuclear Services Dyartment EDE-26-0889

.c 7

CONTENTS I

PARAGRAPH PAGE 1.0 PURPOSE 3

2.0 CONCLUSION

3 3.0 ANALYSIS METHODOLOGY 4

3.1

. Systems Identification 4

3.2 Identify System Level Loads 4-3.3 Determine Critical Loads 4

3.4 Summarize Critical Loads 5

3.5 Define Bus Structure 5

3.6 Analyze Combined Effects 5

3.7 Compare Results to UFSAR Chapter 15 6

3.8 Analyze Exceptions 6

3.9 Modify UFSAR Chapter 15 6

4.0-POWER SOURCE LOSS

SUMMARY

RESULTS AND 6

UFSAR CHAPTER 15 COMPARISONS 4.1 DC Power Sources 6

I 4.2 AC Power Sources 9

4.2.1 AC Pcwer Bus Group 101 9

4.2.2 AC Power Bus Group 301 15 4.2.3 AC Power Bus Group 302 20 SUPPLEMENT: ADDITIONAL SINGLE FAILURE IN MITIGATING SAFETY SYSTEM 21 F2CPRF7.TXT l-

CONTENTS (cont'd.)

-TABLES AND FIGURES TABLE / FIGURE

-PAGE TABLE 1.1 MAJOR COMMON POWER FAILURE ANALYSIS ACTIVITIES T1 AND RESPONSIBILITIES-TABLE 1.2 CONTROL SYSTEM FAILURE ANALYSES CRITERIA FOR ELIMINATION T2 0F SYSTEMS AND COMPONENTS OF SYSTEMS FROM THE ANALYSIS TABLE 1.3 CONTROL SYSTEM FAILURE ANALYSES, IDENTIFICATION AND T4 ELIMINATION 0T SYSTEMS FOR THE COMMON POWER SOURCE AND COMMON SENSOR OR SENSOR LINE FAILURE ANALYSIS FIGURES 1&2 DC BUS TREES DI FIGURE 3 DC BUS TREE D2 FIGURE 4 AC BUS TREE D3 APPENDIX A CONTROL SYSTEMS COMMON POWER FAILURE ANALYSIS FERMI 2 Load Tables Sheets I thru 58 9

s F2CPRF7.TXT 2

L

f CONTROL SYSTEMS COMMON POWER SOURCE FAILURE EVALUATION REPORT FOR.THE ENRICO FERMI ATOMIC PLANT UNIT 2 e

The information contained herein, supplements the current Fermi 2 Updated Final Safety. Analysis Report (UFSAR) Chapter 15 transient analyses, and documents an evaluation of the-Enrico Fermi Atomic Power Plant, Unit 2 (Fermi

2) control system and plant process interactions due.to the' loss of a common electrical power source.

1.0 PURPOSE The purpose of this Control Systems Common Power Failure Evaluation-Report is'as follows:

.o Perform an analysis in response to the Nuclear Regulatory Commission's (NRC) concern (see Fermi 2

Operating

License, Condition 2.C.8) that the failure of an electrical power source, which provides power to two or more non safety-related control systems (common power source) could result -in an event with consequences outside the bounds of the Fermi 2 Updated Final Safety Analysis Report (UFSAR) Chapter 15 analyses events and could conceivably require actions' or responses beyond the capability of the plant safety systems or operators.

The contents of the report and the attachments were prepared for the Detroit Edison Company (DECO) by the General Electric Company's (GE)

Nuclear Operations Department with a significant technical contribution from the Detroit Edison Company's engineering staff.

2.0 CONCLUSION

Although transient category events have been postulated ai.a. result of this analysis, the net event effects have been determined to be less severe than the events analyzed in the UFSAR Chapter 15.

From this, the evaluation concludes that the limits of peak vessel, main steam line pressures, and peak fuel cladding ' temperature for the operational occurrence category of the identified, bounding, UFSAR Chapter 15 events would not be exceeded as a result of a non safety-related control system (NSCS) common power source failure.

It should be noted that this study used the event-consequence logic of the Chapter 15 analysis, but it started the logic chain from a specific power source, e.g., a single bus failure rather than a system condition e.g.,

feedwater runout.

By approaching the study in this realistic manner, a great deal of confidence can be placed in the study con-clusions.

The soundness of the total plant design is demonstrated by its being tolerant of these NSCS common power source failure effects.

- F2CPRF7.TXT 3

3.0 ANALYSIS METHODOLOGY To achieve the purpose and objective discussed in Section 1,

a comprehensive analysis methodology was developed for identifying and analyzing the failure of the Fermi 2 non safety-related control systems (NSCS) capable of changing the reactor pressure vessel (RPV) pressure, water level, or reactor power.

The non-safety-related electrical control systems common power failure analysis was conducted jointly by GE and DEC0. The activity list, Table 1.1 and the following description highlight the major tasks and method-ology used to perform the analysis.

3.1 Systems Identification The scope of control systems to be analyzed was established by first compiling a complete list of the Fermi 2 plant systems and subsystems, see Table 1.3.

Next, the system list was reviewed to confine the analysis to only those systems with the potential to affect reactor pressure vessel (RPV) pressure, water level, or reactor power.

In order to ensure that all necessary systems were considered, certain elimination criteria, see Table 1.2, which documented the justifications for not analyzing certain systems further, were applied to the list of plant systems.

If there was any uncertainty as to whether or not a I

system met the criteria, it was retained for further analysis.

Those systems that met the criteria for elimination were so documented on the complete system list using the elimination criteria code, see Table 1.3.

3.2 Identify System Level Bus Loads The applicable design documents, for each control system identified by l

the methodology described in Paragraph 3.1, were then compiled and l

reviewed. These documents listed the system electrical power sources and component loads.

l 3.3 Determine Critical Loads The power sources and loads with the potential for initiating events affecting RPV pressure, water level, or power were then identified. The elimination criteria, Table 1.2, established earlier for the system list, were again used in the component review to determine which individual load required further consideration or could be deleted from l

the analysis. Again, if there was any uncertainty as to whether or not a load met the elimination criteria, it was retained for further I

analysis.

A numerical code associated with an elimination criterion was assigned to each eliminated load on the design document reviewed.

l F2CPRF7.TXT 4

l'

1 1

1 System bus load table sets, for listing the critical, unelimina' ted electrical. component-loads for each system, were then compiled.

Each load was analyzed,- and if relevant to the analysis, listed in the table together with its ' power source, description, function, and power loss primary, secondary and any other failure effects.

3.4, Summarize Critical-Loads Each ' system load table set was then annlyzed and, usitig the elimination criteria code, any remaining noncritical loads were deleted.

The remaining -loads were then grouped together by their common power

~

sources.-

The primary effects column (see Appendix A) lists the component failure resulting directly from loss of electrical power.

The-secondary effects-and other effects columns list subsequent failures, some of which could affect RPV pressure, water level or power.

In some cases there were no additional effects.

Because this analysis reviews only interactions that potentially could result in a previously unanalyzed transient, no major effect failures (blank entries fields)'

indicate the soundness of plant design.

3.5 Define Bus Structure Using the system load tables, a list of power sources, relevant to control system interactions by-electrical means, was then established.

From this list, and using electrical one-line diagram information, bus trees (see Figures 1,

2, 3,

and 4)' were then constructed, to ' show electrical power distribution from the highest. bus level, not previously analyzed, down to the lowest level of plant power distribution (motor control centers, instrument busses, etc.).

The' system load table data were then sorted by power source' and bus tree structure.

The resulting power source and bus tree load tables established the power distribution and bus hierarchy needed to perform the combined power failure analysis up to the highest identified power SourCO.

3.6 Analyze Combined Effects This portion of the analysis provides the basis for determining the most conservative combination of failures that are credible events, con-sidering their interconnection by power distribution.

Using the com-bined effects of a failure at the lowest bus level as a starting point, the next higher bus was then postulated to fail, and the total failure effects at that level were again analyzed.

This process was continued up to the highest bus level identified.

The combined effects are shown on the Appendix A table and the more detailed failure effects, if any, for each bus level are summarized in Section 4.

F2CPRF7.TXT 5

f 3.7 Compare Results to UFSAR Chapter 15 i

A review of the information in the Appendix A tables was conducted in the course of developing the bus summaries for Section 4.

The consequences of each postulated control system interaction event initiated by electrical means, were then evaluated with respect to the Fermi '2 UFSAR Chapter 15 maximum critical power ratio (MCPR) limits.

This was done primarily t'y comparing the identified event to the consequences of the event an lyses described in Chapter 15 of the UFSAR.

At each bus level of the combined effects analysis, the review again evaluated the effects as to whether they would be bounded by the MCPR limits; again, mainly by comparing the event to Chapter 15 event analyses.

Section 4 includes these evaluations and considers any " worst case" effects.

The above process was repeated for each identified event.

3.8 Analyze Exceptions No failure scenario was identified with consequences that were not considered to be within the MCPR limits or bounded by consequences of one or more of the event analyses described in FSAR Chapter 15.

3.9 Modify UFSAR Chapter 15 As a result of this analysis, no safety-impact type modification of the Fermi 2 UFSAR Chapter 15 was found to be necessary.

However, as indicated in paragraph 4.1, for DC bus 2PC3(+)-17 power source loss

summary, it is suggested that UFSAR sections 15.2.3.1.2.2, and 15.2.3.1.2.3 and possibly section 10.4.4 be modified to delete any statements that the loss of the turbine bypass system would require multiple random failures.

4.0 POWER SOURCE LOSS

SUMMARY

AND UFSAR CHAPTER 15 COMPARISONS' Following is a summary of the major effects associated with the loss of electrical power for each of the identified NSCS common power sources.

For additional information concerning these events, see Appendix A.

For additional information concerning these power sources, see the Fermi 2 UFSAR Chapter 8.

4.1 DC Power Sources The Fermi 2 station battery-backed-up DC power system is designed to be an extremely reliable source of electrical power.

2PA2(+)-14 (Fioure 1)

~

The loss of this power source does not affect RPV pressure, water level or reactor power.

F2CPRF7.TXT 6

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i 2PA2(-)-14'(Fiaure 1) o The loss of this power source does not affect RPV pressure, water level.

or reactor power.

2PB2(+)-15 (Fioure 21 The loss of this power source does net affect RPV pressure, water ' level-l-

or' reactor power.

'2PB2(-)-15-(Fiaure 2)

The loss of this' power source does not affect RPV-pressure, water level or reactor power..

2PC-1 (Fiaure 3)-

The loss' of this power source does not affect RPV pressure, water level or reactor. power.

2PC-3(+) (Fiaure 3)

The major effects of losing this power ' source are:

1)

Main turbine protection and governor lost 2)

LMain turbine control valvas close 3).

Main turbine steam bypass valves E and W opening controls lost 4)

Reactor feed pump turbine S trips on control oil loss

~5)

-Two of three instrument air compressors lost.

The loss of this power source is the same as.that subsequently described for power source 2PC-3(+)-17 and it masks-other failure effects, such as the loss of feedwater event described for power source 2PC3,(+)-4.

2PC3(+)-13-(Fioure 3)

The' loss of this power source does not affect RPV pressure, water level or reactor power.

2PC3(+1-14 (Fioure 3)

The loss of this power source does not affect RPV pressure, water level or reactor power.

l F2CPRF7.TXT

7

2PC3(+)-ly (Fioure 3)

The major effects of losing this power source are:

1)

Main turbine protection and governer lost 2)

Main turbine control valves close 3)

Main turbine steam bypass valves opening control lost 4)

Reactor feed pump turbine 5 trips on control oil loss 5)-

Recirc pump A MG set scoop-tube puitioner locks up as is The main turbine protection and governor circuit power loss and control valve closures will initiate a turbine trip and reactor scram.

Without the turbine steam bypass valves E and W opening, the reactor pressure rapidly increases. The effects of this event are bocnded by the Turbine Trip Without Bypass section of the UFSAR 15.2.3.1.2.3, sensitivity analysis, Table 15.2.3-1.

While this sensitivity analysis bounds the loss of both steam bypass

valves, this analysis and failure and the subsequently described 2PC3(-)-16 ar.d H11P633 pcwer source failures suggests that the UFSAR sections 15.2.3.1.2.2 and 15.2.3.1.2.3 and possibly section 10.4.4 be modified to omit statements which indicate that, the bypass system is designed in such a sanor that a single random failure, such as these failures could only incompacitate one of the two independent turbine steam bypass vahes.

l 2pC3(+1-4 (Fioure 3)

The major effect of losing this power source is that two of three l

air compressors shtitdown.

The compressor loss and the resulting control air pressure decrease will l

adversely affect the condensate flow to the feedwater pumps.

The reduction in condensate flow will decrea:;e the feedwater" pump suction pressure, tripping both feed pumps.

The resulting reactor feedwater flow decrease and RPV level decrease to the low level (L3) trip will scram the reactor. The effects of this event are bounded by the loss of Feedwater Flow event, UFSAR 15.2.7.

2PC3(+)-5 (Ficure 1).

The loss of this power source does not affect RPV pressure, water-level or reactor power.

2PC-3(-) (Fiaure 3)

The loss of this power source is the same as that subsequently described for power source 2PC3(-)-16 l

I F2CPRF7.TXT 8

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2PC3(-1-5 (Fiaure 3) '

The loss of this' power source'.does not affect RPV pressure, water-level c

or rehetor power.

IP_C3(-)-16 (Fiaure 31~

The major effects of losing this power source are:

1)

Reactor feed pump turbine (RFPT) N control oil. lost.

2)

Recirculation pump B_ MG set scoop tube positioner locks up, as is.

3)-

Main turbine auxiliary protection circuits lost 4)-

Main turbine steam bypass valves E and W opening control lost The RFPT N control oil loss trips RFPT N.

The resulting decrease.in-reactor feedwater flow and RPV level runs back tne recirc pump A speed and loop A flow to approximately 71% reactor power, as set by limiter 2.

RFPT, S.is unable to make up the lost feedwater flow and the reactor scrams at low RPV level (L3). The effects of this event are bounded by the Loss of Feedwater Flow event, UFSAR 15.2.7.

This event takes no credit for having the main turbine steam bypass valves operable.

2PC3(-1-4 (Fiaure 3)

Loss of this power source does tiot affect RPV pressure level or power.

l.

2PC3(-1-13 (Fiaure 3)

Loss of this power source does not affect RPV pressure level or power.

4.2. AC Power Sources 4.2.1 AC Power Bus Group 101 (Fiaure 4 Center) 101 and 11 Because of the higher reliability of alternate power sources and less conservative events for the loss.of bus 648, a power loss of bus 101 or bus 11 would be the same as the event subsequently described for bus 64A.

1 l

F2CPRF7.TXT f

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b 55 The major effect. of losing this. bus is losing tv;o out of five, 20%

capacity general sarvice water pumps.

This 40% cooling capacity loss will result in a delayed hign temperature turbine trip and reactor scram. Tnis event is bounded by the Turbine' Generator Trip event, UFSAR 15.2.3.

66H

' The major effect of losing this bus is losing two out ~of four, 25%

capacity operating main condenser circulating water pumps.. This 50%

cooling-capacity loss will result in the. main condenser pressure increasing to the high pressure turbine trip and a delayed reactor scram.

This event is bounded by the Loss of Condenser Vacuum event,

'UFSAR 15.2.5.

143 The major effects of losing this bus are:

1)

One of three operating heater feed pumps trip 2)

One of three operatirg condensate pumps trip 3)

One of three operating heater drain pumps trip The effect of. losing these ' three pumps will reduce the feedwater pump s'.iction pressure to - the low suction pressure feedwater pump trip.

The resulting FW flow and RPV level decrease to the low-level (L3) trip then scrams the raactor.

If uninterruptible power source.(UPS) A fails to transfers to its alternate power source, bus 72R, this will accelerate these effects.

The effects of this event are bounded. by the Loss of Feedwater Flow event, UFSAR 15.2.7.

.11b The major effect of losing this bus are:

1)

Main turbine lube oil pump S trips l

2)

Main generator stator water coolant pump E trips 3)

Station air compressor W trips The loss of these main turbine and generator pumps, would increase the likelyhood of a turbine trip and hasten the effects of the subsequently described bus 72A-4A power loss event.

ljahtino PNL R2T. Dist Reco. PNL "DR3" and Master Dist PNL "MDN-3" The loss of these power sources have no affect on RPV pressure level or power.

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F2CPRF7.TXT 30

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72A-2AL The major. effects of-losing this bus. arei 1)"

B0P centrol' air dryer is lost 2),

Four.offgas' chillers and two offgas. precoolers. trip I

The loss of the B0P control air dryer ~results in an; increase in the air supply moisture' content. This-gradually deteriorates turbine pneumatic H

control functions. The loss of the offgas chillers and precoolers will

. cause. an increase in the main condenser back pres.sure -(see H21P504..

description), resulting in a delayed turbine trip.

The effects t,f this-event are bounded by the Loss of Condenser Vacuum event, UFSAR.15.2.5.

x MPV 5 (Modular Power Unit)

The major effect of losing this highly reliable power source is the 'same as that subsequently-described for' the H21P564 and SDist Cab 3 power sources.

H21P564 and 5Dist Cab 3 The major.effect of losing these power sources is that three offgas chillers and-two offgas precoolers trip.

The resulting wet offgas will saturate the' charcoal filters, decreasing offgas processing efficiency,

.and increasing the ' main condenser back pressure to the high pressure trip and the reactor scrams.

The effects of this event are bounded by the Loss of Condenser _ Vacuum event, UFSAR 15.2.5.

H21P565. 5Dist Cab 2. H21P569 and 5Dist Cab 1

.The loss of these power sources do not affect RPV pressure, level or power.

72A-4A The major effect of losing this bus is that five of twenty-two main turbine control hydraulic pressure pump drive-motors (unitized actuator drive motors) trip.

Losing these pumps severely reduces the hydraulic pressure available to maintain the appropriate turbine valve centrol pressures and positions.

These valve misalignments restrict the turbine's ability to accept all of the reactor-generated steam.

As a result, RPV pressure increases to the high RPV pressure or possibly the high reactor flux trip and the reactor scrams.

The effects of this event are bounded by the Closure of One MSIV event, UFSAR 15.2.4.

The hydraulic pressure ' loss will also keep the turbine bypass valve E closed, but this valve is not required for mitigating this event.

F2CPRF7.TXT 11-

2E The major offect of losing this bus is the recirculation pump trip event, subsequently described for the UPS A power source.

If UPS A transfers properly to its alternate power source, then the subsequently described turbine trip on generator load rejection or high condenser pressure,. from the loss of busses 72M-4A or 72M-3A, respectively, would prevail.

UPS A (Uninterrectible Power SUDDiv). Dist Pnl A and Portions of H11P612 As the power source name indicates, having one normal power source, bus 72M, and one alternate power source, bus 72R, UPS A is designed to be a highly reliable power source.

In the unlikely event that this power is lost, and assuming that subsequently described H11P633 panel transfers properly to its alternate. power source (UPS B, Dist PNL B), the feedwater flow control system (C32) instrumentation and control power (particularly that for feed water flow loop A) will be most adveisely i

affected.

As stated in Appendix A, the feedwater (FW) loop A flow signal and reactor feed pump turbine (RFPT) A control signal are lost (go to zero output).

Losing these control sicnals runs back the RFPT A speed and FW loop A flov to minimum.

The reactor pressme vessel (RPV) water level then decreases to the low level (L4) trip.

To reduce reactor power and to increase RPV level, both reactor recirculation (recirc) pumps A and B run back to approximately 71% power and the FW loop flow controller output signal, RFPT B speed and FW loop B flow increase to maximum.

These actions increase the RPV level to the high RPV level (L8) turbine stop valve closure trip and the reactor scrams.

This event is bounded by the Feedwater Controller Failure event, UFSAR 15.1.2.

H11P633 Having higbly reliable and directly auctioneered normal and alternate power sources (UPS A and UPS 0) it is very unlikely that this power will ever be lost.

If this power is lost, the turbine pressure regulator, bypass valve opening control a' d governor circuit power will be lost.

n This loss will, in turn, trip the pressure regulator valves closed, trip the turbine and the reactor scrams without the bypass valves opening.

These events are bounded by the Turbine Generator Trip event, UFSAR 15.2.3, which includes the Turbine Trip Without Bypass sensitivity analysis event, UFSAR 15.2.3.1.2.3.

4 72M-?A Loss of this bus does not affect RPV pressure, level or power.

F2CPRF7.TXT 12

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l 72M-3A The ' major effect of losing this bus-ih the shutdown and 'isolationL of two outEof four,.25% capacity SJAE's.

The resulting 50% SJAE's processingL 1

' loss will increase the main. cendenser' pressure to -the high condenser; 1

pressure turbine trip and the reactor scrams.

The effects:of_this event

~

are bounded by the losslof Condenser Vacuum event, UFSAR 15.2,5.

1 72M-4A The' major leffect of losing this bus is that five of the twenty.two main turbine control hydraulic pressure pump drive motors (unitized actuator drive motors) trip.

Losing these pumps ceverely reduces the hydraulic pressure available to : maintain' the 1 appropriate turbine valve control pressures and positions.

These valve misalignments restrict the.

turbine's ability. to accept. all of-the reactor-generated. steam.

As a

~

result, the RPV pressure increases to the high RPV pressure and possibly the high reactor flux trip and the reactor scrams.

The effects of this-event are bounded by the closure of One MSIV event, UFSAR 15.2.4.

64B The loss of this power source is the same as' that subsequently described for bus 728.

22.B If MPU 4 transfers to' alternate feeder, 728-3B Dist. Cab., the effect of losir.g this but would be the same as that subsequently described for -

-72E-3B.

If this transfer does not occur, the loss of bus 72B does not affect RPV pressure, level or power.

728-3B. Dist &gh As the alternate power feeder for MPU 4, if MPU 4 transfers to this bus, y

the effects of losing this bus would be the same as that described for-MFD 4.

Otherwise, losing this bus has no affect on RPV pressure, level or power.

228-2A. MPU-1, 1Dist Cab 3 and lillP900 The loss of these power sources do not affect RPV pressure, level or power.

728-4A The loss of this but does not affect RPV pressure,. level or power.

F2CPRF7.TXT 13 w:

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64C and 72C

'These busses.are highly reliable engineered safety system (ESS) power busses, each of which has an alternate power feeder, diesel-powered feeder (bus 12EB) and bus 728, respectively.

In the unlikely event that power to these busses is lost, and the design tolerance of the safety-related equipment powered by these busses precludes any immediate safety action, the major non-safety related control system' failure event

- would be the loss of the RBCCW pump N.

Losing 50% of the RBCCW flow, will increase reactor building equipment temperatures, especially the recirc pump temperature to the high temperature pump trips.

If a recirc pump trips, the RPV level increases to the high level (L8) turbine stop valve closure trip and the reactor scrams.

The effects of this event are bounded by the Recirculation Pump Trip event, UFSAR 15.3.1.

72C-20 and 72C-3A The loss of these power sources cioes not affect 9PV pressure, level or power.

72C-2C If MPU 4 does not transfer properly to its alternate power source, the loss of this bus would be the same as that described for MPU 4 below; otherwise, the loss of this bus wculd not affect RPV pressure, level or

' power.

MpU 4 (Modular Power Unit)

The effects of losing this highly reliable power source would be the same as that subsequently described for H21P551 and-4Dist Cab 2 power sources.

H21P551 and 4Dist Cab 2 The major effect of losing these power sources is that the recirc pump A and B MG set scoop-tube positioners lock-up, as is. This results in the loss of reactor recirc flow control.

Rod control and the recire pump trip remain available. No UFSAR Chapter 15 coverage is required.

H21P554 and 4Dist Cab 3 The loss of these power sources do not affect RPV pressure, level or power.

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L F2CPRF7.TXT l

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'4.2.2 AC' Power Bus Grouc 301 (Fidure 4. Left)-

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2DJ. 65G The major effect of losing these busses, is the loss-of power to both' recirc pump A and B MG set drive motors.

The recirc pumps A and B then

['

trip on loss of power and recirc loop A and B flows decrease.

The'.

D RPV level-then increases to the high RPV ; level turbine stop ' valve L

closure trip and the reactor scrams.

The offects of this event; are botanded by the Recirculation Pump Trip event described in UFSAR 15.3.1.

g

,1 The major effects of losing this bus are:

y 1)-

Two out' of three 50% capacity condensate pump trip 2)

Two out of three feedwater heater feed pumps trip 3)

One out of three feedwater heater drain pumps trip Losing at least 50%j of the condensate flow to th6 feedwater pumps will quick!y reduce both feedwater pump suction pressures.

-To prevent feedweter pump cavitation, both FW pumps trip on low suction pressure.

The reactor feodwater flow and-RPV level decrease to the low RPV level (L3) trip and the reactor scrams. The effects of this event are bounded by the loss of Feedwater Flow event, UFSAR 15.2.7.

DL The major effect of losing this bus is the same as-that subsequently described for bus 72R, ('UPS B).

EL The major effect of losing this bus is the same as that' subsequently described for bus 72L-4A.

72L-2h The major effect of losing this bus is that the RFPT N minimum flow bypass valve fails closed, its normal position.

The inability te open this valve will result in maintaining a higher than normal.feedwater

- flow following a reactor scram. The RPV level will then increase to the high level (L8) turbine stop valve closure trip.

The effect of this event is bounded by the Feedwater Controller Failure event, UFSM<

15.1.2.

72L-30 The major effect of losing this bus is the power loss to filter demineralized circuits and flow control valves.

This failure causes the filter demineralized to be bypassed. Any resulting RPV parameter change would be. slight.

No UFSAR Chapter 15 coverage is required for this event.

F2CPRF7.TXT 15

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is that two out of. four, 2S%

The major' effect of losing this bus L

capacity, SJAE's shutdown and isolate. The loss of 50% SJAE processing

~I capacity increases the Loffgas backpressure to -the main condenser 'and increases the condenser pressure to the high pressure turbine trip and

the reactor scrams.

The effects of this event are bounded by the Loss of Condenser Vacuum event, UFSAR 15.2.5.

y l

72N The major effect of losing this bus is that two out of three,. 50%

capacity turbine building closed cooling water (TBCCW) pumps trip. This cooling capacity loss' will fncrease turbine generator temperatures to L

the high temperature turbine trip and the reactor scrams.

The effects of this event' are. bounded by the Turbine Generator Trip event, UFSAR l-15.2.3.

12.B

-The ' major' effect of losing this bus is the loss of reactor feedwater

' flow event,. Subsequently described for the UPS B power source.

If UPS B successfully transfers to its alternate power source, the turbine trip event described for 72R-3A would pfevail.

72R-2A

'i The major effect of losing this bus is that three out.of three operating offgas chillers are lost.

The resulting wet offgas will~ saturate the charcoal filters, thus increasing the offgas backpressure to the-main condenser.

The condenser pressure then increases to the high pressure turbine trip and ' he reactor scrams.

The effects of this event are t

bounded by the Loss of Condenser Vacuum event, UFSAR 15.2.S.

72R-38 The major effect of losing this bus is that 11 of the 22 main turbine control hydraulic pressure pump drive motors (ttnitized actuator drive motors). trip.

Losing these pumps will reduce the hydraulic pressure

~

available to maintain the appropriate turbine valve control pressures and positions.

As the hydrhalic pressure decreases, two turbine throttle valves close, increasing the reactor pressure to the high pressure and possibly the high reactor flux trip and the reactor scrams.

The effsets of this event are similar to the Closure of One MSIV event, UFSAR 15.2.4.

The hydraulic pressure loss will also keep turbine bypass valve W closed, but sufficiant means to mitigate this event remains available.

'F2CPRF7.TXT 16

.. ~.

y..

... _c.

y y y.; y.. y y

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+

1 m, 72R M

.o;;

If MPU 5 hus. transferred to this bus, the loss of this bus would be. the

.same as that described for MPU'S in the section 4.1, AC power Bus Group q

.101-l summaries; otherwise, losing thR bus has no -affect on RPV-

-parameters.

UPS B (Uniqterruptible Powe" Sunolv)

~

Similar to.the UPS A pswer source previously dercribed, UPS.B is

~ designed to be a. highly reliable power source,. having ene'. alternate-power bus fe'eder.

In _ the unlikely event that this power is lost, the loss of1 strategic feedwater flow control system (C32) instrumentation 1

. and controi ' power, particularly for feedwater flow loop B, would have the most serious effect...As indicated in the Appendix ~ A table, following 'the loss. of this power, the master feedwater controller.and-other FW device output control. signals to the resctor feed pump turbines (PJPTs) decrease to zero.

These control signal -losses run back RFPT ' A ar.d B speed and FW loop A'-

and.B flows to minimum.

The' RPV water level, in turn, decreases to the-l 1cw level (L4) trip. ::Both recirc pumps A and B runback to tpproxintaly-71% power. However, because both RFPT A and B control signals are lost, the RPV level continued to. decrease to.the low RPV level (L3) trip and

- the' reactor scrams. This event is bounded by the Loss of Feedwater Flow event, UFSAR.15.2.7.

L Dist PNL B-l' The loss of this power source does not affect RPV pressure, level or power. If power source H11P633, previously described, transfers to this source, the loss of Dist PNL, B would = be the_ same as that previously described for H11P633 in section 4,1-2 65F and7EF.F These busses are highly reliable emergency safety system. (ESS) power sources, each of which has an alternate power feeder, diesel generator powered bus 14ED and bus 722, respectively.

The major effect of losing L

all these feeders would probably be the power lost to any safety-related equipment powered by these busses, which.is beyond the scope of 'this analysis.

If the designed redundancy of any safety-related failure event precludes the occurrence of an immediate plant shutdown or other L,

. safety action, the NSCS power loss event, subsequently described for I

Dist Cab 72F-4B (H11P906B) would prevail.

2,2F-4B Dist Cab If the MPU 3 power source successfully transfers to the. standby power source, the 72E-4A distribution cabinet, the loss of this power source wou'Id have no direct affect on RPV pressure, level or power. Otherwise, the failure of these power soyrces would be the same as that described for MPU 3 (H11P9068).

I F2CPRF7.TXT i

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=Y s.

__===r___

7 m; -

  • P

/q :

4 j;

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q This1 bus is another highl reliable engheered ' safety system (ESS) power j

r

' source, having. the diese generator-powered bus :13EC as an alternate l

. power -feeder.

If power from these feeder 'besses is. lost - (very unlikely), and the design tolerance of the safety-related equipment L powered by.this bus precludes. any immediate safety. action,- the - NSCS power; loss-event subsequently described for the 72E bus power loss would a

prevail.

IE

.This bus is another highly reliable ESS power source,. having ESS' bus '65E and ESS. bus 72F as its normal and alternate power feeders.

In - the unlikely-event that power from these. feeder busses is lost and the i

design tolerance of the safety-related equipment powered by this bus precludes any 'immediate safety. action, the major non-safety related -

control system ' failure event would be the loss of one cut of two

operating 50% capacity -reactor building closed cooling water (RBCCW) pumps. ~ Losing this cooling capacity would increase the reactor bO11 ding equipment operating temperatures.

The recirc pump. A and B. MG set

. temperatures in particular, would increase and trip on high temperature.

g.

When this occurs, both recire pumps A and B trip and recirculation flow-decreases. 'The-the RPV level then increases to the high-level turbine stop valve closure trip and the reactor scrams.

This event is bounded by the Recirculation Pump Trip event, UFSAR 15.3.1.

72E-4A The loss of this power source has no affect on RPV pressure, level or-power, except if MPU 3 has transferred to this power source.

In this unlikely event, the loss of this power would be. the same as that subsequently described for MPU 3.

MPV 3 (Modular Power-Unit)

As the name and Figure 4 indicate, similar to the UPS (uninterruptible power sources)

MPU 3 is designed to be a highly reliable source of electrical power.

In the unlikely event that this power source is lost, a' combination of the subsequent bus tree, see Figure 4, failure events would occur. The most prominent and numerous of these events are those associated with the loss of feedwater flow to the RPV.

The most immediate of these events is that subsequently described for the 3Dist Cab 2 and H11P906B power source failures. The loss of both H11P906A and H11P907A power sources will also cause a power loss at the offgas logic panel, H11P874.

This power loss will shutdown and isolate the offgas system which increases the main condenser pressure to the high pressure turbine trip.

The effect of this event is bounded by the Loss of Condenser Vacuum event, UFSAR 15.2.5.

F2CPRF7.TXT 18 i

mm

.m m

,m-.,.-

_m,;..,

g --.r,m.

1-,_.1

p-o 3Dist Cab 2 and H11P906B I

The. major. effect of losing. these power -sources is that the feed pump

. loop-A:and B bypass flow control signals are lost and the bypass flow valves fail open. As the feed pump bypass flow increases, the feedwater flow to the reactor and the RPV level decrease.

When.the RPV low level L

(L3) ' trip point is reached, the reactor scrams.

The effects of this event are bounded by the Loss of Feedwater Flow event, UFSAR 15.2.7.

lillP906A The major effects of. losing this power source are:

1)

Recirc pump MG set A and B scoop-tube positioners lock up, as is, on control' signal loss.

2)

Four out of-four turbine steam jet air ejectors (SJAE's) shutdown and. isolate.

3)

Control; rod select panel and indicator lights extinguish.

The reactor recirc flow control signal loss will inhibit reactor recirc flow control changes. The loss of the control rod panel and light power will inhibit. any control rod power changes. Thus, all normal reactor power control is lost.

However, the reactor recirc pump trip and rod scram are available.

If the reactor is not manually shutdown, the SJAE shutdown and isolations will increase the main' condenser pressure to the high. pressure turbine trip and the reactor scrams.

This event is bounded by the Loss of Condenser Vacuum event, UFSAR'15.2.5.

H11P906C The major effects of losing this powar source are:

1)

Main generator H and stator cooler temperature control valves fail 2

closed.

2)

Turbine building closed cooling water temperature control valve fails closed.

3)

Recirc pumps MG set A and B scoop-tube positioners lock up, as is, on control signal loss.

If in automatic temperature control mode, losing the turbine and generator cooling valve operatinn will increase turbine generator temperatures to the high temperature turbine trip and the reactor scrams.

This event is bounded by the Turbine Generator Trip event, UFSAR 15.2.3.

Prior to shutdown, the reactor ' water recirculating flow control signal loss will inhibit reactor recirc flow control power changes.

However, rod control and the recirc pump trip are still available.

3Dist Cab 1 and H11P907B The major effect of losing these power sources is that the station control and service air supply header isolation valves fail closed.

F2CPRF7.TXT 19 j

l

~.

b E

[L LThe : air. supply. header valve closures will. cause the B0P pneumatic control ~ pressure to decrease and theiloss off B0P pneumatic conto 1.

On s

loss' of air. ' pressure, the condensate flow control valves fail closed.

Clo~ sing these valves _ decreases - the feedwater pump suction flow and-pressure.

To. prevent pump; cavitation, the feedwater pumps trip on low 1-

.m L

suction pressure.

The reactor feedwater flow and RPV level will then decrease. ~ When the. RPV low level (L3) trip point is reached, the reactori scrams.

lhis event is bounded by the Loss of Feedwater Flow event, UFSAR 15.2.7.

H11P907A-The major effects of losing this power. source are:

1)

Four out of four, 25% capacity ' turbine steam jet air ejectors shutdown and isolate.

2)

Control _ rod. control power is lost 3)

Feedwater heater drain pump trips The control rod power loss will inhibit rod control of reactor power, however, the reactor recirc flow control-is available.

The complete SJAE shutdown will increase the main condenser pressure to the high pressure turbine trip and the reactor scrams.

This event is bounded by the Loss of Condenser Vacuum event,'UFSAR 15.2.5.

H11P912A The loss of this power source has no affect on RPV pressure, level or power.

4.2.3 AC Power Bus Group 302 (Ficure 4 too riaht) 302 and 69J The major effect of losing these power sources is that three out of four 25% capacity circulating water pumps trip.

Losing 75% of the main condenser circulating water flow will increase the condenser temperature and backpressure to the' high condenser pressure turbine trip and the reactor scrams.

The effects of this event are bounded by the Loss of Condenser Vacuum event, UFSAR 15.2.5.

69M and 69K The major effect of losing these power sources is that three out of five, 20% capacity general service water pumps trip.

Losing 60% of the general service water flow for the main turbine generator services, will cause a delayed turbine high temperature trip and reactor scram. The effects of this event are teounded by the Turbine Generator 1 rip event, UFSAR 15.2.3.

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I CONTROL SYSTEMS' COMMON POWER SOURCE.

' FAILURE ANALYSIS EVALUATION REPORT FOR:

ENRICO FERMI ATOMIC POWER PLANT UNIT 2-SUPPLEMENT ADDITIONAL SINGLE FAILURE IN MITIGATING SAFETY SYSTEM Subsequently to ' completing the common power source'. failure. analysis evaluations, each postulated common power source failure event was reviewed to determine if - a single'. additional component- ' failure in a-

. mitigating safety system could result in a failure event.not previously identified in Fermi-2 UFSAR. Chapter 15 analyses.

Because the Fermi 2 plant accident mitigating safety systems ~ : are redundantly designed to preclude-an accident mitigation. failure due to a single failure, and the common power source failure' analysis did not.

identify or result in any such safety ccmponent failure, 'no. additional single component. failure event was found that exceeded the UFSAR-Chapter 15 failure analyses.

v,

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A

TABLE 1.1 MAJOR COMMON POWER FAILURE ANALYSIS ACTIVITIES AND RESPONSIBILITIES 1

. ACTIVITY-L MQ SUPPORT' i-1.

System Identification-GE-DECO' 2.

Elimination Criteria Generation GE-DEC0 l

3.

Elimination Criteria Application GE DEC0' 14.

Identify System level Bus Loads' DECO.

GE' 5.

Perform Component and System level Failure' Analysis DEC0 GE-6.

Sort System level' Load Sheets by Bus and Generate Bus Tree GE DEC0 Perform Lower Level Bus Tree Combined Effects Analysis

.GE

' 7.

8.

Perform Upper level Bus: Tree Combined Effects Analysis GE 9.

Identify Transient Events (If Any)

GE

10. Comparison-of Results to FSAR Chapter 15 and Identify Exceptions GE' 11'. Perform Single' Failure of Mitigating' Safety System Analysis GE DECO
12. Resolve Major Event Exceptions' (if any)'and Recommend GE FSAR Chapter 15.or Plant Design Changos (If Required)

'13. Compile Draft Report

.GE

14. Review Draft Report and Comment DECO-GE
15. Resolve Comments GE-DECO 16.- Issue Final Report GE.
17. Follow-Up; Answer Questions, Establish DRF GE DECO i.j, T1 l

L 1

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  • s s

1 TABLE 1.2 I

CONTROL SYSTEM FAILURE ANALYSES

. CRITERIA FOR ELIMINATION OF SYSTEMS AND COMPONENTS OF SYSTEMS FROM THE ANALYSES CODE ELIMINATION CRITERION

  • N1 Non-electrical systems. or components, i.e., sole mechanical or software systems or components.

Examples:

the reactor system, vessels, steam turbines. Note: Any-associated electrical control components might be relevant and are to be reviewed.

Examples: vessel liquid level, pressure and temperature controls, and turbine speed controls.

N2 Hon-control type electrical systems or components, i.e., systems or components having no direct or indirect controlling or controlled function, including permissive input and output signals (strictly passive systems and components).

Example: the nuclear' boiler process instrumentation sensors, transmitters lights, meters or recorders, which only provide information, measurement indications, and records. Note: For the control system failure analyses, such information, although possibly of interest or importance to reactor operation and operating personnel's manual control actions, is not considered relevant to initiating or prohibiting any automatic electrical control actions.

'N3 Non-operational type electrical control systems or components, i.e.. systems or components not normally used or required to be usable during normal reactor rower operation.

Examples: the refueling interlock control system, the startup range portion of the neutron monitoring system, the turbine generator turning gear controls.

~

N4 Operational electrical control systems or components which have no direct or indirect interaction with normal reactor operating control systems or components.

Examples: building heating,'and air conditioning control systems, and lighting controls.

N5 Operational electrical control systems or components which do directly or indirectly interact with reactor operating control systems or components but which can in no way affect changes in the reactor vessel liquid, pressure, or power levels.

Examples:

the radwaste control system, sump pump level controls.

p

'in some cases, more than one criterion may apply.

i T2 L

h 1

,s._-.. -

..,,. c,n

..z.

. TABLE 1.2 (continued)

CONTROL SYSTEM FAILURE ANALYSES CRITERIA FOR ELIMINATION OF SYSTEMS AND COMPONENTS OF SYSTEMS FROM THE ANALYSES

[00E ELIMINATION CRITERION

  • 0 NC ' Operational safety-related electrical control systems or components or portions of systems or components which perform direct plant safety control functions.

Examples:.the reactor protection system, the main steam line radiation monitoring portion of the process radiation monitoring system, or the steam

. leak detection temperature elements and controls of the leak detection system.

Note: Any related response of these safety systems or components to conditions or actions brought about by non-safety related control system or component actions, resulting directly or indirectly from a non-safety control system failurc, are to be identified and analyzed.

Example: a reactor vessel icw water level RPS trip and a subsequent reactor scram resulting from a loss of feedwater flow which was, in turn, directly or indirectly caused by non-safety power source or sensor failure, e.g., a feedwater pump motor power failure.

N7 Electrical power systems or components involved in distribution, transformation, or interruption of electrical power.

However, controls for these systems / components might need to be considered if the loss of such control power could lead to the failure of other systems-and components.

Example: the 125 Vdc control power for a condensate pump circuit breaker.

  • In some cases, more than one criterion may apply.

T3 I

l L

TABLE 1.3 CONTROL SYSTEM FAILURE ANALYSES i:

l IDENTIFICATION AND ELIMINATION OF SYSTEMS FOR THE COMMON POWER SOURCE AND-COMMON SENSOR OR SENSOR LINE FAILURE ANALYSES,

SYSTEM ID SYSTEM DESCRIPTION ELIMINATION C0QE

  • A71 PRIMARY CONTAINMENT ISOLATION N6 B21 NUCLEAR BOILER PROCESS INSTRUMENTATION N3,N4 B21' JET PUMP N2 B21-ADS N6 B21-06 MSIV LCS N6 B21-07 LOOSE PARTS MONITORING N2

-B31 RECIRC NONE C11 RPIS N2 C11-00

. REACTOR MANUAL CONTROL NONE C11 ROD WORTH MINIMIZER N3 C11-09 R0D SEQUENCE CONTROL N3-C11-50 CRD HYDRAULICS NONE C32 FEEDWATER CONTROL NONE C35 REMOTE SHUTDOWN N3 C36 DEDICATED' SHUTDOWN N3 C41 STANDBY LIQUID' CONTROL N6 C51 STARTUP RANGE NEUTRON MONITORING N3 C51 INTERMEDIATE ~ RANGE NEUTRON MONITORING N3 CE1 POWER RANGE NEUTRON MONITORING (RPS)

N6 C51 R00 BLOCK MONITOR N6 CSI RECIRC FLOW BIAS N6 CSI TIP N2 C71 REACTOR PROTECTION SYSTEM N6 C71 RPS MG SET N6 C91 PROCESS COMPUTER N2,N5 C94 ERIS N2,NS D11 PROCESS RADIATION MONITORING N2 D11 MAIN STEAM LINE RADIATION MONITORS N6 D21 AREA RADIATION MONITORING N2 D23 ENVIRONMENTAL MONITORING N2

  • See' Table 1.2 for code criterion explanation.

T4

2=

f TABLE 1.3 (continued)

SYSTEM.

10:

SYSTEM DESCRIPTION ELIMINATION CODE

  • 1 D30.-

. SEISMIC MONITORING N2 h

D40 METEOROLOGICAL N2 E10-LEAK DETECTION-N6 Ell RHR / RESERVOIR & SERVICE WATER N6 E21 CORE SPRAY N6 E41 HPCI N6 E51.

RCIC.

N6 FIS REFUELING N3 G11-

RA0 WASTE N5 G33 REACTOR WATER CLEANUP N5 G41 FUEL. POOL C00LIN1 AND CLEANUP H5 G61-TORUS WATER MANAGEMENT NS H30

. ANNUNCIATOR N2,N5 H40 COMMUNICATIONS N2 H50 BEARING & MOTOR WINDING TEMPERATURE N2 MONITORING JXX FUEL NI N11 MAIN STEAM,52" MANIFOLD NONE N11 THIRD MSIVs N6 N20-CONDENSATE NONE.

N20-02 POLISHING' FILTER.DEMINERALIZERS N0i1E N21 FEEDWATER NONE-N21 STANDBY FEEDWATER N3 N21-02' RFPT. CONTROL NONE N22 FEEDWATER HEATER DRAINS NONE N30-11 MAIN TURBINE, VALVES, PIPING NI N30-12 TURBINE SUPERVISORY

. N2 N30-12A TURBINE GOVERNOR (PRESSURE CONTROL)

NONE N30-12C TURBINE PROTECTION NONE N30-13 GLAND SEALING NONE

~N30-14 LUBE.0ll NONE

-N30-16 EXTRACTION STEAM N3 l'

N30-17 BYPASS PIPING N1

.I N30-18 REHEAT & MOISTURE EXTRACTION NONE i'

N30-19 TURNING GEAR N3 l

N30-20 LP HOOD SPRAY N3 N30-21 UNITIZED ACTUATORS NONE N30-22 FLANGE HEATING N3

)

N30-32 GENERATOR HYDROGEN SEAL OIL NONE j

N30-33 STATOR WATER COOLING NONE

  • See Table 1.2 for code criterion explanation.

l T5

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4 s:-

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mv

t..

TABLE 1.3 (continued) 4 g

SYSTEM

__ I D SYSTEM DESCRIPTION ELIMINATION CODE *-

'N30-34.

MAIN EENERATOR EXCITOR NONE GENERATOR HYDROGEN COOLING SYSTEM NONE J

N30-35 GENERATOR GAS SUPPLY PURGE NS.

N30-36/3.7 l.-

'N30-39 TURBINE DRIPS & DRAINS N5 N61 MAIN CONDENSER & AUXILIARIES NONE N62' 0FFGAS NONE N71 CIRCULATING WATER-NONE P11 CCNDENSATE STORAGE & TRANSFER

-N5 P12

'MAKE UP DIMINERLIZER N5 P21 POTABLE-WATER N4 Pa3 SAMPLING N2' P34 POST ACCIDENT SAMPLING N3 P41 GENERAL SERVICE WATER CHLORINATION N5.

P4)

GENERAL SERYICE WATER NONE P42 REACTOR BUILDING CLOSED COOLING WATER NONE P43 TURBINE BUILDING CLOSED COOLING WATER

.NONE P44 EECW-N6 P45 EESW N6 P50 CONTROL AIR (SAFETY)

N6 P50 BREATMING AIR N1 P50 STATION AIR NONE P50-02 CONTROL AIR-(B0P)

NONE

~'

P61 AUXII.IARY BOILER N4 ll4 P70 WASTE OIL P80 FIRE PROTECTION N5 P82 FIRE DETECTION N2 P90 CHEMICAL SYSTEMS N5 RXX ELECTRICAL DISTRIBUTION N7 S11 MAIN TRANSFORMER N7 S11-00 MAIN GENERATOR TRANSFORMER NONE S12 GENERATOR ISOLATED PHASE BUS NONE S13 GENERATOR METERING & SYNCHRONIZING NONE S14 TELEMETERING N2 S20 34S KV SWITCHYARD N7 T23-01/02 DRiWEl.L/ TORUS N1 T23-03 VACUUM BREAKERS N3 T31

. OVERHEAD CRANES N3 T41 REACTOR BUILDING VENTILATION N4

  • See Table I.2 fer cede criterion explanation.

T6

E4,

~s L

j.f TABLE 1.3 (continued)

SYSTEM ID SYSTEM DESCRIPTION ELIMINATION CODE

  • T41-02 CONTROL ROOM HVAC N6 T45 EEACTOR BUILDING SUMPS FLOOR AND N5 EQUIPMENT DRAINS l'1 T46 STANDBY GAS TREATMENT N6 T47 DRYWELL COOLING N6 T48-01 DRYWELL PRESSURE CONTROL N3 T48-02 NITROGEN INERTING N3 T48-03 PURGE PIPING N3 T48-04 HYDROGEN RECOMBINER N6 T49 DRYWELL PNEUMATICS N6 TSO PRIMARY CONTAINMENT ATMOSPHERE N6 MONITORING U41 TURBINE BUILDING VENTILATION N4 U45

'RADWASTE BUILDING' SUMPS FLOOR &

N5 EQUIPMENT DRAINS U45 TURBINE BUILDING SUMPS FLOOR AND N5 EQUIPMEN1 DRAINS V41 RADWASTE BUILDING VENTILATION N4 W23 COOLING WATER CHLORINATION N5 W24/25 COOLING. WATER COOLING TOWERS / RESERVOIR N1 W41

' COOLING WATER PUMPHOUSE VENTILATION N4 X41-01 OSB VENTILATION N4 X41-03 RHR COMPLEX VENTILATION N6 X41-04 GSW PUMPHOUSE VENTILATION N4

  • See Table 1.2 for code criterion explanation.

T7

-__-___a

FERMI 2 CONTROL SYSTEMS COMMON POWER DC BUS TREES 260/130V DC:

130V Battery 130V Battery 130V Spare Dual Battery Charger Charger Charger 2PA

(+)

2A-1 (-)

(+). 2A-2 (-)

(+)'2Al-2 (-)

Main DC Dist Cab 2PA-2 l

l Bus'2PA-2(+)

l (N)

Bus 2PA-2(-)

14 14 Bus 2PA2(+)-14

(+)

(N)

Bus 2PA2(-)-14 l

(-)

Control for 2

6

' Bus 72C Bus 64B Control Ficure 1 260/130VDC. Bus 2PA-2 Power Distribution. Div I 260/130V DC 130V Battery 130V Battery 130V Spare Dual Battery Charger Charger Charger 2PB

(+)

28-1 (-)

(+) 2B-2 (-)

(+) 2B1-2 (-)

Main DC Dirt Cab 2PB-2 l

l

(+)

Bus 2PB-2(+)

l (N)

I

(-)

Bus 2PB-2(-)

15 15 Bus 2PB2(+)-15 (N)

Bus 2PB2(-)-15 l

l

(-)

i l

Control for 1

6 7

l Bus 65E l

Bus 72F Control Bus 72E Control Fiaure 2 260/130V DC. Bus 2PB-2 Power Distribution. Div II D1 1

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ACCELERATED DISTRIBUTION DEMONSTRATION SYSTEM i

l REGULATORY.INFORMATION DISTRIBUTION SYSTEM (RIDS)

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ACCESSION NBR:8910050382 DOC.DATE: 89/09/28 NOTARIZED:.NO DOCKET #

i.

FACIL:50-341'Enrico Fermi Atomic Power Plant, Unit 2, Detroit Edis 05000341 3

l

.. - AUTH.NAME AUTHOR AFFILIATION j

ORSER,W.S.

Detroit Edison Co.

RECIP.NAME RECIPIENT AFFILIATION Document Control Branch (Document Control Desk)

~

SUBJECT:

Forwards " Control Sys Common Power Source Failure Analysis Evaluation Rept for Enrico Fermi Power Plant Unit.2."

I

.l COPIES RECEIVED:LTR [ ENCL ~f SIZE:,,bd 9 C I

DISTRIBUTION CODE: A001D TITLE: OR Submittal: General Distribution NOTES:

/

RECIPIENT COPIES RECIPIENT COPIES ID CODE / FAME LTTR ENCL ID CODE /NAME LTTR ENCL j

PD3-1 LA 1

1 PD3-1 PD 1

1 STANG,J 5

5 INTERNAL: ACRS 6

6 NRR/ DEST / ADS 7E 1

1 NRR/ DEST /ESB BD 1

1 NRR/ DEST /ICSB 1

1 I

NRR/ DEST /MTB 9H 1

1 NRR/ DEST /RSB 8E 1

1 NRR/DOEA/TSB 11 1

1 NUDOCS-ABSTEACT 1

1 5

OC/LFMB 1

0 OcC/HDS2 1

0 REG FILE 01 1

1 RES/DSIR/EIB 1

1 EXTERNAL: LPDR 1

1 NRC PDR 1

1 NSIC 1

1 R

I D

5

/

A D

D JKfrE 70 ALL " RIDS" RECIPIDfIS:

S PIEASE HELP US 70 REDUCE MMrIE! 00tTIACT THE DDCUMDIT CONIROL DESK, ROCH P1-37 (EXT. 20079) 70 ELINDATE YOUR NhME FRCH DIFIRIBUTICE LIBIS FOR DOCUMElfrB YOU DCE'T NEEDI TOTAL NUMBER OF COPIES REQUIRED: LTTR 27 ENCL 25 1

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Vere W.< et a Nufl(*R* Operan a s lDetroi.t;

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w~ w-Septsaber 28, 1989 NIC-89-0207 U..S. Nuclear Regulatory Commission Attn: ' Document Control Desk-Washington, D. C. 20555

References:

1) Fermi 2 NIC Docket No.' 50-341 NIC License Llo. NPF-43
2) NURD3 0798, Safety Evaluation Report - Fermi 2, dated July 10, 1981~-
3) Detroit Edison letter, NIC-89-0204, dated Septerrber 12, 1989

Subject:

Control Systems Failure Analysis License Condition 2.C.8 Reference 3 discussed the results of the control systems failure analysis required by Fermi 2 License Condition 2.C.8.

'lhe analysis consists of two portions, a common sensor failure analysis and a comnon power source failure analysis. The final report for the comon sensor failure analysis was attached to Reference 3.

The letter stated that the report for the camon' power failure analysis portion was in preparation and was anticipated to be sutxnitted by October 1,1989. Attachcd is the final report for the comnon power failure analysis.

~

A pror,pt NIC review would be greatly appreciated. If there any questions, please contact Lynne Goodman at (313) 586-4211.

Sincerely, i

l-L Attachrent I

cc:

A. B. Divis R. C. Knop W. G. Rogers

=h f>.0 J. F. Stang 1

hh

&ricomp m0;a

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.m ACCELERATED D15TRIBUT10N DEMONSTRATION SYSTIEM REGULATORY INFORMATION DISTRIBUTION SYSTEM (RIDS)

ACCESSION NBR:8910050382 DOC.DATE: 89/09/28 NOTARIZED: NO DOCKET #

FACIL:50-341 Enrico Fermi Atomic Power Plant, Unit 2, Detroit Edis 05000341 AUTH.NAME AUTHOR AFFILIATION ORSER,W.S.

Detroit Edison Co.

.RECIP.NAME RECIPIENT AFFILIATION Document Control Branch (Document Control Desk)

SUBJECT:

Forwards " Control Sys Common Power Source Failure Analysis Evaluation Rept for Enrico Fermi Power Plant Unit 2."

I COPIES RECEIVED:LTR [ ENCL SIZE:

[

DISTRIBUTION CODE: A001D TITLE: OR Submittal: General Distribution c'

NOTES:

I

' RECIPIENT COPIES RECIPIENT COPIES ID CODE /NAME LTTR ENCL ID CODE /NAME LTTR ENCL g

PD3-1 LA 1

1 PD3-1 PD 1

1 STANG,J 5

5 INTERNAL: ACRS 6

6 NRR/ DEST / ADS 7E 1

1 NRR/ DEST /ESB 8D 1

1 NRR/ DEST /ICSB 1

1 I

NRR/ DEST /MTB 9H 1

1 NRR/ DEST /RSB 8E 1

1 NRR/DOEA/TSB 11 1

1 NUDOCS-ABSTRACT 1

1

.5 OC/LFMB 1

0 OGC/HDS2 1

O.

REG FILE 01 1

1 RES/DSIR/EIB 1

1 EXTERNAL: LPDR 1

1 NRC PDR 1

1 NSIC 1

1 R

I D

S

/

A D

D NOTE 70 ALL " RIDS" RinuwCS:

S PLEASE RELP US 70 REDOCE WAEFTE! CCtTIACT THE DOCD{E2C CDIEROL DESK, RON P1-37 (EXT. 20079) TO ELINDOCE If00R 30ME FEN DISTRDUTION LIFIS FOR ECCUENIS 100 DN'T NEEDI TOTAL NUMBER OF COPIES REQUIRED: LTTR 27 ENCL 25

t 4

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bd DOITOll Edison EE;"

1r a September 28, 1989 NIC-89-0207 U. S. Nuclear Regulatory Ccanission Attn: Document Control Desk Washington, D. C. 20555'-

References:

1) Fermi 2 NBC Docket No. 50-341 NBC License No. NPF-43 2) NUREG 0798, Safety Evaluation Report - Fermi 2, dated July 10, 1981 3)- Detroit Edison' letter, NIC-89-0204, data 3 September 12, 1989

Subject:

Control Systems Failure Analysis Licenne Cordition 2.C.8 Reference 3 discussed the results of the control systers failure analysis required by Fermi 2 License Condition 2.C.B.

'Ibe' analysis consists of two portions, a common sensor failure analysis and a common power source failure ar.alysis. The final report for the common sensor failure analysis was attached to Reference 3.

The letter stata3 that the report for the common power failure analysis portion was in preparation and was anticipated to be submitted by October 1,1989. Atta:ha3 is the final report for the common power failure analysis.

A prompt NBC review would be greatly appreciate 3.

If there any questions, please contact Lynne Goodman at (313) 586-4211.

Sincerely, Attachment cc:

A. B.-Davis J

R. C. Knop l-W. G. Rogers h

l J. F. Stang 0

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