ML20053E751

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Fire Protection Associated Cable Rept
ML20053E751
Person / Time
Site: Zion  File:ZionSolutions icon.png
Issue date: 06/30/1982
From:
COMMONWEALTH EDISON CO.
To:
Shared Package
ML20053E749 List:
References
NUDOCS 8206100011
Download: ML20053E751 (100)


Text

1 FIRE PROTECTION ASSOCIATED CABLE REPORT ZION STATION UNITS 1&2 COMMONWEALTII EDISON COMPANY JUNE 1982 1

I

@206100011 82'0607 PDR ADOCK 05000295 F

PDR

I ZION 1&2 Table of Contents i

1.0 Introduction i

1.1 Alternate Shutdown Systems 1.2 Description of Charts 1.2.1 Instrumentation Charts 1.2.2

' Power and Associated Control Charts 2.0 Zion 2 Analysis for Instrument Cables 2.1 Aux Feed Water Flow 2.1.1 Analysis 2.1.2 Conclusion 2.2 Steam Generator Wide Range Level 2.2.1 Analysis 2.2.2 Conclusion 2.3 Steam Generator Pressure 2.3.1 Analysis 2.3.2 Conclusion 2.4 Pressurizer Pressure and Level 2.4.1 Analysis 2.4.2 Conclusion 2.5 Reactor Coolant Hot Leg Temperature 2.5.1 Analysis 2.5.2 Conclusion l

2.6 Charging Pump Flow I

2.6.1 Analysis 2.6.1 Conclusion 1

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7 ZION 1&2 2.7 Residual !! eat Removal Pump Temperature and Flow 2.7.1 Analysis 2.7.2 Conclusion 3.0 Zion 2 Analysis for Power, Control and Associated Cable 3.1 Power Distribution 3.1.1 Analysis 3.1.2 Conclusion 3.2 Switchgear and Diesel Generator Rooms 3.2.1 Analysis 3.2.2 Conclusion 3.3 Aux Building Ventilation 3.3.1 Analysis 3.3.2 Conclusion 3.4 Service Water System 3.4.1 Analysis l

3.4.2 Conclusion 3.5 Component Cooling Pumps j

3.5.1 Analysis j

3.5.2 Conclusion 3.6 Centrifugal Charging Pumps 3.6.1 Analysis i-3.6.2 Conclusion ii t

I ZION 1&2 3.7 Aux Feedwater Pump 3.7.1 Analysis 3.7.2 Conclusion 3.8 Pressurizer Isolation Valves 3.8.1 Analysis 3.8.2 Conclusion 3.9 Atmospheric Relief Valves MOV-MS0017 thru MOV-MS0020 3.9.1 Analysis 3.9.2 Conclusion 3.10 Residual lieat Removal System 3.10.1 Analysis 3.10.2 Conclusion 4.0 Zion 1 Analysis for Instrument Cables 4.1 Auxiliary Feed Water Flow 4.1.1 Analysis 4.1.2 Conclusion 4.2 Steam Generator Wide Range Level 4.2.1 Analysis 4.2.2 Conclusion l

4.3

-Steam Generator Pressure 4.3.1 Analysis 4.3.2 Conclusion 4.4 Pressurizer Pressure and Level 4.4.1 Analysis 4.4.2 Conclusion i

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ZION 1&2-4.5 Reactor Coolant Hot Leg Temperature 4.5.1 Analysis i

4.5.2 Conclusion 4.6 Charging Pump Flow 4.6.1 Analysis 4.5.2 Conclusion 4.7 Residual Heat Removal Pump Temperature and Flow 4.7.1 Analysis 4.7.2 Conclusion 5.0 Zion 1 Analysis of Power, Control and Associated Cables 5.1 Power Distribution 5.1.1 Analysis 5.1.2 Conclusion 5.2 Switchgear and Diesel Generator Rooms

(

5.2.1 Analysis 5.2.2 Conclusion 5.3 Aux Building Ventilation 5.3.1 Analysis 5.3.2 Conclusion 5.4 Service Water System 5.4.1 Analysis l

l 5.4.2 Conclusion iv

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ZION 1&2 5.5 Component Cooling Pumps 5.5.1 Analysis 5.5.2 Conclusion 5.6 Centrifugal Charging Pumps 5.6.1 Analysis 5.6.2 Conclusion 5.7 Aux Feedwater Pump 5.7.1 Analysis 5.7.2 Conclusion 5.8 Pressurizer Isolation Valves 5.8.1 Analysis 5.8.2 Conclusion 5.9 Atmospheric Relief Valves MOV-MS0017 thru MOV-MS0020 5.9.1 Analysis 5.9.2 Conclusion 5.10 Residual Heat Removal System 5.10.1 Analysis 5.10.2 Conclusion 6.0 Conclusion 7.0 References 8.0 Glossary of Chart Abbreviations 8.1 Instrumentation Equipment Number Symbols v

ZION 1&2 Figures Simplified schematic of Aux Feedwater System S1 Simplified schematic of Centrifugal Charging S2 and Safety Injection System Simplified schematic of Pressurizer Aux Spray, S3 Safety and Relief Valve Systems Simplified schematic of Steam Generator Safety S4 Valves and Atmospheric Relief System Simplified schematic of Residual Heat Removal S5 (RHR) System Charts Unit 2 Instrumentation Aux Feed Water Flow Steam Generator Level Steam Generator Pressure Pressurizer Pressure Pressurizer Level Reactor Hot Leg Temperature Charging Pump Flow RHR Indication Temperature Flow Mechanical Indication Unit 2 Power and Associated Control Cables 125V DC Bus 011 Switchgear Room and Diesel Generator Room Aux Building Ventilation Service Water j

Component Cooling Pumps Centrifugal Charging Pump I

Aux Feedwater Pressurizer Atmospheric Relief Valves Residual Heat Removal Pump Summary Cable List l

vi

ZION 1&2 Charts (Cont'd)

Unit 1 Instrumentation i

Aux Feedwater Flow Steam Generator Level Steam Generator Pressure Pressurizer Pressure Pressurizer Ievel

. Reactor Hot Leg Temperature Charging Pump Flou RIIR Indication Temperature Flow Mechanical Unit 1 Power and Associated Control Cables 125V DC Bus 011 Switchgear Room and Diesel Generator Centrifugal Charging Pump Aux Feedwater Pumps and Auxiliaries Pressurizer Atmospheric Relief Valves Residual Heat Removal Pump and Auxiliaries i

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ZION 1&2 1.0 Introduction This report discusses Zion Units 1 and 2 associated circuits as related to the safe shutdown method used in the event of fire.

The report is based on information taken from lists of associated circuits developed for Zion Station.

It gives details of the methodology used to acccmplish the associated circuit analysis.

It also discusses the modifications, planned or installed to ensure that associated circuits will not prevent the capability to safely shutdown Zion Station in the event of fire.

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i ZION 1&2 1.1 Alternate Shutdown Systems The alternate safe shutdown systems used in this analysis are based on the analysis and shutdown systems described in the Zion Safe Ifot shutdown Analysis, (April 1980) and Revision 1, (April 1982).

Briefly stated these systems provide:

(1)

Reactivity control; ( 2).

Borated reactor coolant (Primary System), makeup water;

(.3-).

Decay heat i

removal and Secondary System makeup water; and (4)

Support i

systems for (.1). thru (.3 )., assuming loss of offsite power.

Simp 1'ified schematic piping diagrams S1 thru S5 have been provided to assist in understanding the safe shutdown me thod.

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ZION 1&2 1.2 Description of Charts 1.2.0 The attached alternate safe shutdown cable charts identify the cables required for instrumentation, power, control and associated circuits tabulated for each unit by system and fire area / zone.

In the analysis credit is taken for existing circuit breakers, fuses and other installed isolation devices.

1,2.0.1 Use of Charts These charts are a compilation of the cables required for hot shutdown and RHR verses the fire area / zones through which the cables run.

The charts are arranged with the fire area / zones (hereafter fire zones) listed horizontally at the top of the page.

The equipment / function and cables are listed vertically along the lef t side.

If a symbol, ie. x, s, etc., appearsat the intersection of a fire zone column and a cable row, then that cable runs through that fire zone.

If no symbol appears at the intersection, then the cable does not run through that fire zone.

The following symbols are used throughout the charts:

The cable starts its run in the fire zone.

S I

E The cable ends its run in the fire zone.

The cable continues its run through the X

l fire zone, or if only one symbol appears for the cable, then the cable starts and ends in the zone.

For Mechanical Indication an X shows instrument piping in the fire zone.

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ZION 1&2 S/E -

The cable starts and ends in the fire zone, but, during its run it goes through other zones.

Instrument transmitter is located in the T

fire zone.

Resistance Thermocouple device is located R

in the fire zone.

Isolation panel is in the fire zone.

I

  • 0,A, etc.

These symbols appears only in the unit 2 charts where the cable runs through a zone which is not listed along the top of the page.

The actual zone through which the cable runs is then indicated in the Remarks column.

The' Remarks column is also used to provide additional rele-vant information (i.e.,

isolation switches, e tc. ) '.

The intent of these charts is to provide visual comparison of equipment cable versus fire zones.

These charts are used as the first step in analyzing whether or not there is sufficient fire protection separation between cables for redun-dant equipment.

If the chart shows a symbol for one piece ~of equipment in a given fire zone and the redundant piece of equip-ment shows no symbol in that fire zone,-then no further analysis is needed in that zone.

If, however, both pieces of equip-ment show a symbol in the same-zone then a potential problem is indicated and further study is required.

1-4

ZION 1&2 3.2.0.2 Cable Segregation Codes The power, control and instrumentation cables for the 4

engineered safeguards system are divided into three separate divisions 17, 18 and 19 for Unit 1, (27, 28 and 29 for Unit 2).

Division 17, 18 and 19 (27, 28 and 29) j cables are associated with the equipment and auxiliaries which are essential to the safe shutdown of the plant during and after an accident and are designated as engi-neered safeguards.

These Divisions each have their own cable segregation code, which is shown on the charts directly to the right of the five digit cable number.

These 3 digit segregation codes are 17, 18, and 19 (27, 28 and 29) followed by the letter "P,"

"C" or "K";

"P" referring to power cable, "C"

to control cable, and "K" to i

instrumention cable.

I In addition, there are codes for cables associated with bal-ance of plant auxiliaries, essential to maintaining continuity of service.

These cables are fed from the engineered safeguard power buses.

These segregation codes are Divisions 7, 8 and 9 (A, 5 and 6) again followed by the letter "P",

"C" or "K".

Finally, there are segregation codes for balance of plant equipment.

These codes are C, P, or K (2P, 2C or 2K).

The segregation codes are used to assign cables to specific cable trays or conduit to maintain separation criteria.

1-5

i ZION 1&i j

1.2.1 Instrumentation Cable Charts Instrumentation cables are listed on a separate chart from the power, control, and associated circuits.

For a shutdown parameter the instrument type and number, cable number, and segregation code with an X for a cable run, a T for transmitter 2

location or an I for isolation panel in the zone column are shown.

]

Additional information is provided in the Remarks column.

Also indicated are alternato local mechanical gauges for selected parameters with a comment in the Remarks column.

The instrument channel for equipment numbers are listed in order of steam generators (A, B, C, D) for the following system parameters:

i 1.

Auxiliary feed water flow - FWO2, 03, 04, 25 2.

Steam generator wide range level - 501, 504, 502, 503 1

3.

Steam generator pressure - 514, 544, 524, 534

- Mech - 514C, 524C 4.

Pressurizer pressure - 455, 456 i

l 5.

Pressurizer level - 459, 460 6.

Reactor coolant hot leg temperature - 413, 443, 423, i

433, 413A, 423A 7.

Centrifugal charging pump flow - 121

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8.

Residual heat removal pump temperature -

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Elect. 612, 613 Mech 612, 613 9.

Residual heat removal pump flow -

t Elect. 970A, 970B, 971A, 971B Mech 970C, 971C 1-6

ZION 1&2 The instrumentation cable analysis is based on modifications:

rerouting instrument cables, provisions for energizing indication at the remote shutdown panels (RSP), and installing local mechanical gauges.

1.2.1.1 Criteria for Instrument Channel / Cable Routing The method used to assure that a single fire would not damage all instrument channels required to' monitor a specific system parameter is based on the following approach:

1.

The nine system parameters were independently reviewed as a cable group and also reviewed for compatibility for each steam generator.

2.

Each group is subdivided into three typical branch circuits that provide dual indication in control room branch and also indication at a remote shutdown i

panel.

These are:

(i) transmitter to isolation transfer panel, (ii) isolatable loop to the control room via the auxiliary electric equipment room, and (iii) alternate loop to the remote shutdown panel.

3.

Cable routings have been compared for physical l

separation within each one of the three major branch circuits and then are examined and summarized in Section 2 (Unit 2) or Section 4 (Unit 1) for the combined overall circuit.

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ZIOM 1&2 1.2.1.2 Modifications The attached cable chart reflect the basic design criteria to revise the remote shutdown panol from live to dead indication.

Upon completion of this modification, the indication at the RSP will be normally inactive.

In the event of an emergency requiring operation at RSP (i.e. a fire in the control room),

the isolation transfer switch and emergency power switch will be repositioned to RSP indication.

This will isolate the RSP circuit fres, the main control room and also transfer power to a local twentyfour volt battery power supply.

Modifications described in June 2, 1981 transmittal, included revisions for both electrical and mechanical instrument channels to I

achieve this design concep,t are summarized as follows:

v A.

Auxiliary feedwater flow and s$ cam generator wide s,

range levels were electric 11y, segregate'd and physically i

separated for steam generator pairs A, B (i.e. Loops 1,

4) and C. D (i.e. Loops 2, 3).

i B.

Steam generator mechanical indicators were added adjacent to the RSP',s, because all existing electrical channels are routed from valve houses to the auxiliary building via the connecting pipe tunnel.

C.

Pressurizer pressure indicator PI-456B was added in a RSP to provide a second channel to assure that at least one circuit would be available under any postulated fire.

1-8

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ZION 1&2-D.

Reactor coolant hot leg dual element RTD's were added to existing thermowells because of four channel auctioneered control circuit logic and to provide alternate instrument indication in a RSP for steam generators A and C.

E.

Residual heat removal pump flow and temperature mechanical indicators were added in the vicinity of the pump rooms to provide an alt'ernate diverse indication for the electrical indication in the control room.

1.2.2 Power and Associated Control Charts Power, control, and associated control cables for the power distribution system, shutdown equipment and their auxiliaries are listed.

For each function / shutdown system the equipment is listed, immediately followed by the cable i

number and if applicable, the segregation code.

Cables in a fire zone are indicated by either an S'for start of a cable run, X for continuing cable run, or a E for cable end in the fire zone.

The cable chart for each unit are organized according to systems and listed in the following order:

)

1.

Power distribution system for switchgear and motor control center (Ul & U2) 2.

Switchgear room and diesel generator room auxiliary equipment (Ul & U2) 3.

Auxiliary building ventilation (common to both units) 4.

Service water pump and cross ties (common) 5.

Component cooling pumps (common) 6.

Charging pu'p and auxiliary equipment (U1 & U2) m 1-9

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ZION 1&2 DRAFT 7.

Aux. feed water pump and auxiliary equipment (Ul & U2) 8.

Pressurizer (U1 & U2) 9.

Atmospheric Relief Valves (U1 & U2) 10.

Residusl heat renoval pump and auxiliary equipment (U1 & U2)

The analysis for powered equipment is based on modifications: -

rerouting power cables; installing fire barriers, as required j

to maintain separation; installing isolation switches for associate control cables.

Credit is also taken, where applicable, for existing fuses, breakers, and other installed-isolation devices.

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1-10

ZION 2 2.1 Auxiliary Feed Water Flow The auxiliary feedwater flow indication channels were electrically segregated and physically separated for steam generator pairs A, B (Loops 1, 4; channels FWO2, FWO3) and C, D (Loops 2, 3;

channels FWO4, FW25).

2.1.1 Analysis The cable chart indicates potential problem areas due to common zone branch cables in Fire Zone 11.4-0; 2.0-0, 11.4-0 and 11.3-0.

2.1.1.1 In Fire Zone 11.4-0, 592' floor elevation, cable 35874, 35875, 35910 and 35911 are routed in.this zone.

However, there is more than feet separation.

If necessary, these cables will be wrapped for up to 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> fire protection.

2.1.1.2 In Fire Zones 2.0-0 Control Room; 11.4-0 and 11.3-0, 579' floor elevation cables 35913, 35912, 35915, 35914 could be affected by l

l a fire in any one of these zones.

Thus only both control room and remote shutdown panel loops FWO4 and FW25 could be disabled.

Cables 35878, 35879, 35914, 35915 are routed together in the control room and would be affected by a postulated fire there.

However, this branch is isolable and therefore would not affect RSP indication.

Cables 35876, 35877, 35912 35913 are routed together in Zones 11.4-0 and 11.3-0, but this branch is normally deenergized at the RSP and therefore, a fire in these two zones would not affect control room indication.

2-1

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f ZION 2 2.1.1.3 In Fire Zone 11.4-0 cables 35874, 35875, 35911, 35910, 35876, 35877, 35913, 35912 are all routed in this zone.

Ilowever, there is feet separation between channels.

If necessary, these cables will be wrapped with up to 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> fire protection.

1 2.1.2 Conclusion Upon the installation of isolation and power transfer switches there will always be at least one channel of auxiliar;r feedwater flow available for any postualted fire.

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ZION 2 2.2 Steam Generator Wide Range Level Physical separation for each bracketed branch circuit pairs were evaluated in this order:

1.

Transmitter to electrical penetration, (501, 504) and (502, 503) 2.

Penetration to isolation transfer panel 3.

Transmitter to RSP and CR indication for (501, 504)

(502, 503) 2.2.1 Analysis The cable chart indicated potential problem areas for the common zone cables in the reactor building and containment.

However, there is more than 20' separation in reactor building.

The cable route of pairs inside containment is in opposite directions along the containment wall to electrical penetrations that are separated by a vertical 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> rated fire wall.

2.2.2 Conclusion There will always be at least one channel of steam generator wide range level available for any postulated fire.

2-3

ZION 2 2.3 Steam Generator Pressure 2.3.1 Analysis It is not feasible to separate the transmitters located in each valve house because they share a common steam pipe tunnel, all in zone 18.5-2.

Therefore, a mechanical indication system was added for one steam generator of each pair group.

2.3.2 Conclusion Thus, a fire in this zone could possibly destroy all electrical indication, but would not damage these steam line pressure instr'ument lines which would provide mechanical indication.

2-4

1 ZION 2 2.4 Pressuriser Pressure and Level Physical separa, tion of branch circuits and pressurizer level loops A59, 460, 461, were evaluated in the indicated order:

1.

Transmitter to electrical penetration for instruments 455, 456, 457, 2.

Penetration to isolation transfer panel for instruments 455,'456, 3.

Isolation transfer panel to RSP and CR indication for 455 (B, A) and 456 (B, A) 2.4.1 Analysis Cable chart indicates potential problem areas because of the detailed review, is summarized in the following manner:

Common Zone Cables 2.4.1.1 Zone 1.2-2, there is more than 30' separation between transmitter racks for 457 and 455, 456.

2.4.1.2 Zone 1.4-2, electrical penetrations for (455, 457) and 456 are separated by a fire wall and the cable was routed in opposite directions via cable pans located next to containment wall.

2.4.1.3 Zone 11.4-0 and 11.3-0, this branch of the circuit is normally deenergized and isolated from the control room.

Therefore, a fire could not interrupt or degrade control room indication.

2.4.1.4 Zones 3.1-2 and 5.6-2, the control room branch of the circuit can be isolated from the transmitter by means of an isolation switch to protect RSP indication from fire effects on the energized circuit.

2-5

ZION 2 2.4.2 Conclusion At least one of the three available instrument loops would always be available with a postulated fire in either the reactor building or auxiliary building.

2-6

ZION 2 2.5 Reactor Coolant Hot Leg Temperature Physical separation from branch and alternate circuits were evaluated in the order:

1.

RTD to electrical penetration for (413, 443, 423, 433) and (413A, 423A) 2.

Penetration to CR for (413, 443, 423, 433) and to RSP via isolation transfer panel.

2.5.1. Analysis The cable chart indicates potential problem areas for common zone cables at; 2.5.1.1 Zone 1.3-2, approximate 580' elevation at steam generators, RTD groups are separated by more than 45'.

The 423A cable route for steam generator C is separated from the other steam generators by more than 20'.

The RTD's in 413 well and cable 35870 will be wrapped with a 1 hour1.157407e-5 days <br />2.777778e-4 hours <br />1.653439e-6 weeks <br />3.805e-7 months <br /> fire barrier because the separation distance between the common combined route for single element RTD's approaches a maximum of 10' at the RTD.

l 2.5.1.2 Zone 1.2-2 and 1.4-2, containment annular area and electrical penetrations.

Inservice RTD's and added RTD's terminate on opposite sides of the penetrations 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> fire wall and the'new cables are routed in the direction that achieves 20' separation.

2.5.2 Conclusion At least one channel of temperature indication will be available for a postulated fire.

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J ZION 2 2.6 Charging Pump Flow 2.6.1 Analysis Physical separation of cables was not evaluated because there is only one instrument channel.

If this flow indication is not available, then pressurizer level could be used to gauge makeup flow rate.

2.6.2 Conclusion This charging pump flow loop was included in the chart of

' instrument cables to indicate current fire protection.

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ZION 2 2.7 Residual Heat Removal Pump Temperature and Flow 2.7.1 Analysis-The cable chart show that the cables associated with RHR

' Indication all pass through mutliple fire zones together.

To alleviate the problem of losing this indication due to a fire in any one of the fire zones, local mechanical guages will be available at different floor elevations.

These gauges, in the vicinity of the pump rooms, provide diverse indication between redundant pump instrument transmitters.

The instrument lines for use chemical indication are shown with an X on the cable charts for reference.

2.7.2 Conclusion Upon installation of mechanical indication, two channels of independent diverse, local indication will be available redundant to control room electrical indication for RHR temperature and flow for any postulated fire.

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ZION 2 3.0 Zion 2 Power, Control and Associated Control Cables 3.1 Power Distribution 3.1.1 Analysis 3.1.1.1 A.C. cables for the power system and' all directly supporting auxiliaries that are required to maintain power to safe shutdown pumps are listed for each sub group.

1.

Main feed to 4kV Bus 247, 248, 249 2.

Reserve feed to 4kV BUS 247, 248, 249 3.

Diesel generator feed to 4kV BUS 147, 247, 248, 249 4.

480 volt unit substations for BUS 237, 238, 239 5.

Motor control centers (MCC's) for 2371, 2381A, 2391, 2372, 2383A, 2383B, 2393ABC 3.1.1.2 D.C. cables are organized for each dedicated battery that supplies control power to Division 28, 29, and includes the common battery for the swing diesel generator that connects to Division 27 or 17.

6.

Cells, charger, and distribution panel for battery 211, 212 l

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7.

Feed to switch gear 247, 248, 249 8.

Cells, charger, and distribution panels for battery 011 9.

Feed to diesel generator 0, 2A, 2B 10.

Feed to switch gear 237, 238, 239-l 3-1 t

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i ZION 2 3.1.1.3 Composite Routing The summary cable list shows composite routes for each system.

A.

D.C.

system for Division 29 and combined 27, 28 B.

A.C.

system for Division 29 and 27, 28 (excludes main and reserve feeds and MCCS)

C.

Combined A.C.

and D.C.

systems Associated control cables for the above circuits are

, included.

The cable tables indicate in the Remarks column that isolation transfer switches are located at the switch-gear cubicles for various breaker locations.

The isolation switches are installed on cables which that because of postualted fire damage could adversely affect breaker operation Operation of the isolation switch will remove these cables from the control circuitry.

3.1.1.4 Te charts indicate potential problem areas due to common zone cable groups: -

3.1.1.4.1 There is less than 20' separation between main feed cables that are energized from either the unit auxiliary or system auxiliary transformer.

The reserve feed is connected to the other system auxillary transformer via one cable.

The power transformer for these cables depends on the switch BUS and therefore, will be lost with loss of offsite power.

However, the availability of either Division 29 Diesel Generator or combined Division 27 and 28 Diesel Generators will be assured.

3-2

ZION 2 3.1.1.4.2 MCC Feeds 1.

ESF Equipment Rooms, MCC 2391 cables rerouted with 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> fire separation between combined MCC 2371, 2381A feeds.

Only one of three MCC is required.

2.

In Fire Area 11.5-0, 617' el., adjacent risers are at column row 19/N for MCC's 2383B, 2393A.

This area requires additional analysis.

3.

In Firea Areas 11.4-0, 11.3-0, 592' el. and 579' el.,

more than 100' ceparation exists between risers for (MCC's 2372, 2383A) at 14/H and risers for (MCC's 23838, 2393A) at 19/N.

The separation includes MCC 2382B at 579' el.

4.

In Fire Area 11.2-0, 560' el.,

55' separation exists between risers for (MCC's 2372, 2383A) and the riser for MCC 2393A.

This separation includes MCC 2383A, MCC 2393A, MCC 2393B and MCC 2393C.

3.1.2 Conclusion Upon installation of planned and proposed modification, the availability of either the Division 29 Diesel Generator or the combined Division 27 and 28 Diesel Generators will be assured for any postulated fire.

3-3

ZION 2 3.2 Switchgear and Diesel Generator Rooms (Later)

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3-4

ZION 2 3.3 Auxiliary Building Ventilation Fans 3.3.1 Analysis 3.3.1.1 Auxiliary Building Supply Fans - OAV013-OA, OAV014-OB and OAV015-OC The supply fans are used to ventilate the auxiliary building.

The auxiliary building ventilation system also utilizes individual cubicle cooler units to provide cooling to the safeguard equipment (i.e. charging pumps).

As indicated in this report the safeguard equipment are located in other fire zones.

Supply fans OA and OC are separated from OB by 9 feet.

For fans OB, ESF power is supplied from Unit 1, while fan OC is power from Unit 2.

The combustible material located in Zone 11.7-0 are associated with the IIVAC equipment:

lubricating oil for the supply fans, the flexible connections of the fans, prefilters and charcoal filters.

The supply fan prefilter is located in its own cubicle approximately 20 feet away from the fans.

The closest charcoal filters are located in concrete cubicles located over 20 feet from the fans.

One hose station and one portable extinguisher are located in this fire area.

Fire extinguishing equipment from nearby fire zones are also readily available.

Smoke detectors are also installed in this zone.

An automatic water suppression system protects the charcoal filter banks.

3-5

ZION 2" 3.3.1.2 Auxiliary Building Exhaust Fans OAV016-OA, OAV017-OB, OAV018-OC, OAV019-OD, OAV020-OE and OAV021-OF The auxiliary building ventilation system has 6 cxhaust fans.

At a minimum 2 of the 6 fans are required.

Exhaust fans OAV019-OD, OAV020-OE and OAV021-OF are located in one room at column rows 9/L-M and are power from Unit 1.

While OAV016-Or, OAV017-OB and OAV013-CC are located in another room with concrete walls, approximately 40 feet away at column rows 21/L-M.

As identified in the Power Cable Chart, the common zones where or more of the exhaust fans are affected is in 11.5-0 and 11.7-0.

However, at not time will there be less than 2_ fans available.

In these zones, sufficient separation is provided between channels.

At most 4 fans may be lost to a fire.

This can occur in Zone 11.7-0 were separation between cables 02325-02327, 02331-02333, 02334-07336 and 02337-02339 is less then 20 feet.

In Zone 11.5-0, the separation between Divisions 4, 5 and 6 is greater than 22'-0" from Divisien 7, 8 and 9~.

1 Therefore, since under any postulated fire condition, at least 2 exhaust fans will be available, no further action is required by licensee t

i 3-6

~

4 a

ZION 2

  • 3.3.2 Conclusion l

Therefore, considering the small fire loading and the manual

~

and automatic suppression system in the area of the supply fans, any postulated fire would be quickly identified and extinguished before reaching proportions capable of affecting all 3 supply fans.

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1 3-7

ZION 2 3.4 Service Wacer System 3

3.4.1 Analysis 3.4.1.1 Service Water Pumps ISW001-1A, IP9002-1B, 1SWOO3-lC, 2SW001-2A, 2SWOO2-2B and 2SW003-2C There are six service water pumps at Zion Station, three on the ESF buses of each unit, taking suction from the crib house intake tunnels upstream of the circulating water pumps.

As a minimum of any two out of the six pumps are sufficient to supply the shutdown requirements of both units simultaneously.

This is possible because the service water pumps of each unit are crosstied; in the crib house (line OSWO12-48" x l-N) and in the auxiliary building (i.e. lines OSW001-12" x l-N and 1SW003-20" x l-N).

As identified in the Power Cable Chart, the common zones where 5 or morc pumps could be affected are Zones 18.4A-0, 18.4B-0, 11.3-0 and 11.4-0.

However, at no tiine will there be less than 2 pumps 4

available.

In these zones, sufficient separation is provided between the division within each unit or between Unit 1 and 2.

At most, 3 pumps may be lost to a fire.

This can occur due to fire at the cable risers in Zones 18.4B-0, 11.3-0 or 11.4-0..

In Zone 11.3-0 and 11.4-0, however, there is over 100 feet of separation between cable 10624 and 20624.

In Zone 18.4B-0 there is approximately 30 feet between 10624 and 20624.

In Zone 18.4A-0, the minimum separation is approximately 23 feet between cables 10624 and 20624.

3-8

ZION 2 Therefore, since under any postulated fire condition at least 2 service water pumps will be available, no further action is i

required by the licensee.

3.4.1.2 Service Water Outlet Isolation Valves OMOV-SW0003, OMOV-SW0004 These valves are used to crosstie the service water system between the two units.

The failure of these service water valves due to a fire will not affect the shutdown capability of the unit.

If the valves fail closed, service water could still be provided by the available service water pumps, either by

1) each unit's service water pump through parallel lines OSW013-48" X1-N and OSWO14-48" X1-N,or 2) if only one unit's pumps are available thru the cross

.ies in the auxiliary building (i.e. OMOV-SW0007, OMOV-SW0008).

Because of the redundancy, the loss of these valves is not a safety concern.

3.4.1.3 Service Water valves - OMOV-SW0005 and OMOV-SW0006 These valves are the isolation valves between the service water system and non-essential loads (i.e. service water to i

travel screens).

It is more important for these valves to isolate l

under a LOCA, because of the greater cooling loads, than for a fire, since failure of these valves to close would not have a significant affect on cooling the essential loads (e.g. Diesel Generator).

l If necessary, the operator could isolate the non-essential loads -

by other means (i.e. operating either manually or automatically the isolation valves associated with the non-essential equipment).

3-9 1

_, ~. _.. _,

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4

- ZION 2 Therefore, loss of these valves is not a safety concern.

3.4.3 Conclusion The service water requirement for a fire would not be compromised for any postulated fire.

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9 3-10

ZION 2 3.5.0 Component Cooling Pumps Five component cooling pumps feed three component cooling heat exchangers thru a common header.

Cabics for the five component cooling pumps are arranged into a power group and an associated control group.

Pumps OA, OB are located in Unit 2 and the remaining pumps are in Unit 1 side of auxiliary building.

The FSAR states any two component cooling pumps and two heat exchangers can supply normal needs of both units.

One pump and one heat exchanger are needed for a LOCA on one unit.

~

3.5.1 Anrlysis The cable chart indicates potential problems due to common zone cables in fire zone 11.2-0.

3.5.1.1 Pump Feeds In Fire Area 11.2-0, about 50' separation exists between end pumps and this decreases to 8' between OB, OC at the unit point of separation.

Pump OA and OC are separated by 20'.

There is an automatic overlapping CO-2 local fire suppression system over the five pump combination.

A single zone fire could at most only destroy adjacent pumps because the power feeds for the pump groups are separately routed within each' units dedicated areas to their respective 4kV E.S.F.

buses.

3-11

ZION 2 3.5.1.2 Pump Breaker Control Circuits only cables connected to isolation switch are included because these cables and all other interconnecting cables required to provide the various circuit parameters will be de-energized when the isolation switch is repositioned to local.

In addition a portable pendant control station is provided in the switchgear room for local control at the front of the breaker.

3.5.2 Conclusion i

A p'ostulated fire will not compromise the function of the component cooling system.

4 e

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3-12

~. _ - - _., _. - _. _ _ -,

ZION 2 3.6 Centrifugal Charging Pumps cables are organized into three major groups, (.1) the power feeds to the motors, (ii) associated control circuits for each power feed, and (iii) valves that control the lineup to the r fueling water storage tank.

3.6.1 Analysis The cable charts indicate the following potential problem areas due to common zone cables:

3.6.1.1 Pump, Unit Cooler and Auxiliary Lube Oil Pump Feeds 1.

In Fire Zones 11.4-0 and 11.3-0, there is more than 100' of separation between risers at 19/N and 14/H.

Conduits for the pump feeds in Zone 11.3-0 are separated by at least 20' at the pump rooms and then are routed in opposite directic :s to these risers.

The cables are routed, in diffe: ent fire zones, up to the ESF switchgear rooms.

The centrifugal charging pumps also has a integral shaft mounted oil pump.

The new conduit will be fire proofed for a 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> fire rating.

2.

In Fire Zones 11.3-0 and 11.2-0, there is more than 100' of separation between risers at 19/N and 14/H.

Conduits for the pump room unit cooler fans and the auxiliary lube oil pump motors are separated by at least 20' at the pump room penetrations and are then routed in opposite directions to these risers.

The cables are routed down to MCC's 2393A and 2372 located, respectively, on elevations 560 ' and 542'.

The new conduit will be fire 3-13

ZION 2 proofed for a 3 hour3.472222e-5 days <br />8.333333e-4 hours <br />4.960317e-6 weeks <br />1.1415e-6 months <br /> fire rating.

Power cable routes for Division 27 and 29 pumps and auxiliaries are shown on the summary cable list.

The following list provides the composite route for all linking cables and indicates that all fire zone overlapping routing points have been identified and reviewed:

1.

Diesel generator feed to 4kV switchgear 2.-

Battery feed to distribution panel 3.

AC feed to battery charger 4.

DC circuit from discribution panel to switchgear 5.

DC circuit from distribution panel to diesel generator room 6.

Switchgear room feed to pump 7.

MCC 2372 and 2393A feeds to pump auxiliaries 8.

Switchgear room feed to MCC's A single fire could at most only destroy the shutdown capability of one electrical division because:

rerouted Division 29 cables; new fire zones erected in auxiliary electric equipment rooms, the outer cable spreading rooms and on the auxiliary building roof; fireproofing applied to the new conduits that penetrate the pump room walls.

l 3.6.1.2 Associated control Cables Associated control cables are included in the cable charts which indicato in the Remarks column t*.at isolation switches are located at the switchgear and motor control center cubicles for each of the breaker locations.

These associated control I

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3-14 7

ZION 2 3.6.1.2 4kV and 480V Starter Circuits The shutdown capability of the charging pumps would not be lost for a postulated fire.

3.6.1.3 Valves Valves for this system are listed with their power and control cables.

The cable chart indicates potential problem areas due to common zone cables in Fire Zones 3.1.2 and 11.3-0.

Credit is taken in the hot shutdown analysis for manual control of motor-operated valves and also for the air-operated valves failing in the open position.

3.6.2 2onclusions A postulated fire would not compromise the safe shutdown i

capability of the centrifugal charging pumps.

l l

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3-15

~

ZIOM 2 cables are the cables that, because of postulated fire damage, could adversely affect breaker operation.

The isolation switches, when repositioned from the " remote" to the " local" i

position, completely remove all interlocks.

Operation of the breaker from the front of the switchgear or motor control center is then possible using a pendant mounted control switch availabic in the Switchgear room.

3.6.2 Conclusion The' shutdown capability of the charging pumps would not be lost for a single fire.

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3-16 j

ZION 2 3.7 Auxiliary Feedwater Pump, Auxiliary Lube Oil Pump, and Associated Valves Cables are organized into three major groups (i) the steam driven pump and power feeds to the motor driven pump, (ii) the associated control circuits, and (iii) one for each power feed, and the valves that control this system.

3.7.1 Analysis The cable chart indicates potential problem areas due to common zone cable for: -

3.7.1.1 Pump and Auxiliary Lube Oil Pump Feeds 1.

In Fire Zone 11.3-0, approximately 15' or separation exists between turbine driven pump 2A and motor driven pump 2C.

The turbine and motor driven pumps, including auxiliary lube oil pumps, are independently protected by an automatic CO2 fire suppression system.

2.

In Fire Zones 11.4-0, 11.5-0 and 3.1.2, inadequate separation is present in the outer cable spreading room.

The turbine driven AFW will be available.

3.

In Fire Zone 11.3-0, 32' of separation exists between the 2A and 2C auxiliary lube oil pump feeds.

However, in the event a fire disables a motor driven lube oil pump, lubrication to the affected AFW pump is accomplished by an installed integral shaft mounted lube oil pump.

3.7.2 Conclusion A single fire could, at mopt, either disable only the steam d rivt.' oump or the motor driven pumps because the four foot 3-17

ZION 2 high missile barrier provides separation in addition to the automatic CO2 fire suppression, and the redundant lube oil supply, i.e.

. rerouted auxiliary lube oil pump feeds and integral shaft mounted lube oil.

Therefore, a postulated fire would not compromise the shutdown capability of the Aux Feedwater System.

3-18

ZION 2 3.8.0 Pressurizer Isolation Valves MOV-RC8000A and MOV-RC8000B i

i 3.8.1 Analysis The cable chart indicates a potential problem area for common zone cables in Fire Zone 1.3-2.

If.these valves failed in the open position, block valves PCV-RC455C and PCV-RC456 are available to isolate the system.

PCV-RC455C and PCV-RC456 are normally deenergized.

Their solenoid valves would have to be energized to open its I

associated aux operated valves.

Isolation switches will be provided as indicated in the Remarks Column in the chart.

The reactor coolant system pressure and water level can be maintained by any one of either the Safety Injection, or centrifugal ch.arging pumps (CCP).

Overpressurization of pressurizer is prevented by the aux spray on the CCP line or ultimately by the safety talves.

See also attached schematic diagram S3.

3.8.2 Conclusion The functional capability of this system would not be compromised by a postulated fire.

i 3

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3-19

ZION 2 3.9.0 Atmospheric Relief Valves MOV-MS0017 thru MOV-MS0020 Fire Area 18.5-0 See the attached simplified schematic diagram S4 for this system.

These valves are required on postulated loss of offnite power to dump steam for decay heat removal and to control secondary system pressure.

3.9.1 Analysis The cable : hart indicates potential problem areas due to common zone cables in several zones.

Two valves are located in each containment valve house with 200 feet separation.

These valves can be either pneumatic or electrically operated.

Isolation switches will be installed as indicated in the Remarks Column of the cable chart.

A local accumulatcr and control valve have been installed adjacent to th2 valve rooms for manual control, if necessary, of these valves.

3.9.2 Conclusion The functional capability of this system would not be compromised by a postulated fire.

3-20

ZION 2 3.10 Residual Heat Removal System The residual heat removal system primary function is to re-move decay heat from the reactor coolant system to achieve 1

and maintain cold shutdown.

The system consists of two 4

pumps, two heat exchangers, system piping and valves and cubicle coolers.

See also simplified schematic S5.

3.10.1 Analysis s

l 3.10.1.1 Residual Heat Removal Pumps 2RH0001 and 2RH0001 Each pump is located in a separate concrete cubicle.

FSAR Section 9.4 states, each pump is sized to provide 50% the flow necessary to meet the design cooldown requirements.

Therefore, loss of one pump will only extend the cooldown i

period, but will at no time endanger the unit.

The cable charts indicate potential problem areas with common zone cables in Zones 11.1-0, 11.2-0, 11.3-0 and 11.4-0.

In Zones 11.2-0, 11.3-0 and 11.4-0, sufficient l

separation exists between cable 32294 and 20504; approxi-i

{

mately 112'-0.

For fire zone 11.1-0, separation between l

the cabic is provided by a common wall between the cubicles, j

In conclusion, no design changes are required.

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3-21 l

c....

,. _,. - ~ _

ZION 2 4

3.10.1.2 Residual Heat Removal Pump-Unit Cubicle Coolers 2AV001 and 2AV002 1

j

'The residual heat removal pump-unit cubicle coolers are 1

provided to keep the residual pump cubicle _less than a O

maximum ambient temperature of 10G F.

t As identified in the cable charts, the common fire zones are Zones 11.1-0 and 11.2-0.

In zone 11.2-0, 1

sufficient separation is provided between divisions; I

j approximately 145 '-0.

In zone 11.1-0, the separation be -

tween divisions is only 8'-0.

For this zone, cables 32270, 32271, 32272, and 22273, and their junction box will be t

relocated to fire zone 11.1B-2.

With this design modifica-y i

4 tion, at least one cubicle cooler will be available for i

any postulated fire.

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3-22 i - -..., _... _ _ _ _ _ _ _. _ _ _..____ _.. _. __

ZION 1 4.0 Zion 1 Instrumentation (Later) p me m

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5.0 zion 1 Analysis for Power Control and Associated Cable 4

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ZION 1&2 6.0 Conclusion (Later)

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ZION 1&2"

7.0 REFERENCES

1.

Zion Nuclear Power Station - Units 1 and 2, Final Safety Analysis Report (FSARL.

2.

Appendix A to Facility Operating License DPR-39 and 42, Technical Specifications and Bases for Zion Nuclear Power Station, Unit 1 LDocket No.

50-2951 and Unit 2 (Docket No. 50-3401.

3.

Information Relevant to Fire Protection Systems and Programs, Zion Nuclear Power Stations Unit 1 and 2, Commonwealth Edison Company, April 1977 (Fire Protection Reportl.

4.

Zion Station Fire Protection Safe Shutdown Analysis for Control Room, Electrical Penetration Vaults, and Auxiliary Electric Equipment Room, May 1, 1978.

5.

Safe Hot Shutdown Analysis Zion Station Units 1 and 2, April 1980 and Revision 1, April 1982.

6.

Safe Cold Shutdown Supplement Zion Station Units 1 and 2, May 1980 and Revision 1, April 1982.

7 Letter from T.R. Tramm (CECol to II.R. Denton (NRCl, dated June 2, 1981.

.l

ZION 162 6

8.0 GLOSSARY OF CHART ABBREVIATIONS Alternating Current AC A~

Auxiliary Electric Equipmenr Room Auxiliary Electric Equipment Room AUX ELECT EQ RM i

Auxiliary Feed Water AFW Alternate ALT Auxiliary Lube Oil Pump ALOP Atmosphere Relief Valve ATMOS RELF VLV AUX Auxiliary AUX FEED WTR Auxiliary Feed Water BATT Battery Battery Charger BATT CHGR Current Breaker Panel BKR Building BLDG Current Breaker Panel BRKR Centrifugal Charging CENT CHG i

Centrifugal Charging CENT CHRG l

Charger j

CHGR CLR Cooler COMP Component CVCS Chemical Volume and Control System Direct Current DC Diesel Generator DG Distribution Panel DIST PNL Diesel Generator DSL GEN l

8-1

ZION 1&2 i

GLOSSARY OF CHART ABBREVIATIONS (CONT'D)

End of Cable in Fire Area / Zone on Chart E

EXCH Exchanger Exhaust EXH Feed FD Pipe Header HDR Isolation Valve ISOL VLV Junction Box JB Line Control Valve LN CONT VLV LSC Limit Switch Closed Limit Switch Open LSO Main Control Board in Control Room MCB Motor Control Center MCC Minimum Flow (Bypass) Line MIN FLOW MN'FD Main Feed Penetration PENETR PMP Pump PNL Panel PRESS Pressure i

[WR Power Relief RELF Reserve Feed RES FD Residual Heat Removal RHR RM Room Resistance Thermocouple Device i

RTD(R)

I S

Start of Cable in Fire Area / Zone in Chart 8-2

'l

ZION 1&2 o

GLOSSARY OF CHART ABBREVIATIONS (CONT'D)

SPG CD Segregation Code Examples:

29P - Division 29 Power Cable 28C - Division 28 Control Cable 20K - Division 20 Instrumentation Cable SER WTR Service Water Solenoid SOL Steam Generator STM GEN Stop Valve STP VLV SUC Suction SW '-

Switch Switchgear SWGR

=

T Transmitter In Fire Area / Zone on Chart TEMP Temperature Ventilation Fan VENT FN VLV Valve Electrical Cable or Instrument Line in X

Fire Area / Zone on Chart Transfer Pump XPER PMP Crosstie Lines Between Units X TIES i

i 8-3 i

ZION.1&2 o

GLOSSARY OF CHART ABBREVIATIONS (CONT'D) 8.1 Instrumentation Equiprent Number Symbols Flow Indication FI FT Flow Transmitter Aux Feedwater System FW LI Level Indicator Local Pressure Transducer on an Instrument Line P

Pressure Indication PI TI,-

Temperature Indication TR -

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