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ISt.LucieUnit1Figure1Cycle14CoreLoadingPatternTSRPNMLKJHeIIIIIIIIFR14R46R47FR10FEabcdabC21R30S04T16102S10T18105T24802R3720R18T02137T59T3092S29S12302832T32136T67T0482R20G19R22T25201S24S47139S72T70107S37T8093S75S46138S21T10204R23e16R40T0581S23R34T81T4694R14T33R15T4896T58R36S17T06142R32S05T89S44141T62S55123857T75R02T76S50S54127841140T73S0816seeT38143S74T4984852S25114S63T54103862S28113860T5597S69T3979T12FR16abGdR42R43T2189S13T19120S34S15305S31T6688S40T86119R08T69T29R12R03T84S65T45109861T5799R07T78F02R10R25135R09T79132R06T9287S67T56104S64T65R04R11T40T77R05T6491S39T74122S35S16303S30T2290S14T20121FR12abCCIR44R411211-10FR11abGdT15T3183S70T47131S59S27100S66T52110S68S2698S51T53112S73T3680T17FR15abCS07T83S45128T63S5395S49T88R01T61S58S5685T68S48126T82S06R31T07125S18R35T71T50115R16T37R13T51116T85R33S20T01124R39R24T09203S22S42130S76T87106838T91118S71843129S19T23205R21R19T08134T60T34117836S11304S33T35133T90T03101R17R38801T14T13108S09T27111T26803R29FR09R48abCR45FR13abCdR38~A66eeee5y¹102m-In@eeet¹  
ISt.LucieUnit1Figure1Cycle14CoreLoadingPatternTSRPNMLKJHeIIIIIIIIFR14R46R47FR10FEabcdabC21R30S04T16102S10T18105T24802R3720R18T02137T59T3092S29S12302832T32136T67T0482R20G19R22T25201S24S47139S72T70107S37T8093S75S46138S21T10204R23e16R40T0581S23R34T81T4694R14T33R15T4896T58R36S17T06142R32S05T89S44141T62S55123857T75R02T76S50S54127841140T73S0816seeT38143S74T4984852S25114S63T54103862S28113860T5597S69T3979T12FR16abGdR42R43T2189S13T19120S34S15305S31T6688S40T86119R08T69T29R12R03T84S65T45109861T5799R07T78F02R10R25135R09T79132R06T9287S67T56104S64T65R04R11T40T77R05T6491S39T74122S35S16303S30T2290S14T20121FR12abCCIR44R411211-10FR11abGdT15T3183S70T47131S59S27100S66T52110S68S2698S51T53112S73T3680T17FR15abCS07T83S45128T63S5395S49T88R01T61S58S5685T68S48126T82S06R31T07125S18R35T71T50115R16T37R13T51116T85R33S20T01124R39R24T09203S22S42130S76T87106838T91118S71843129S19T23205R21R19T08134T60T34117836S11304S33T35133T90T03101R17R38801T14T13108S09T27111T26803R29FR09R48abCR45FR13abCdR38~A66eeee5y¹102m-In@eeet¹  


nverseCountRatioPlot-ChannelBFigure21.0Cb+150Nlode288QpmCb+5044~pmCb50SeenfOdilutlen1.0-0.90.90.80.80.70.70.60.60.50.50.40.40.30.3~0.20.20.10.10.0015003000450060007500900010500120001350015000165000.0Page10 nverseCouatioPlot-ChanelDFigure31.0Cb+t50Mode288gpmICb+5044ItpmCbICb50eecuf0dilution1.00.90.90.80.80.70.70.60.60.50.50.40.40.30.3~0.20.20.10.10.001500~3000~4500~6000~75009000~1050012000135001500016500ottoneDiluted0.0Page11 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St.LucieUnit1,Cycle14StartupPhysicsTestingReportTable1Cycle14ReloadSub-BatchIDSub-BatchRlSlS2S3S4SSS6S7T3T4NumberofAssemblics16201612121612201212Enrichment3.93.883.813.93.883.813.783.793.760.304.454.454.454.45T5364.4515 St.LucieUnit1,Cycle14StartupPhysicsTestingReportTable2ApproachtoCritcalityDilutionRate132gpm88gpm44gpmInitialBoronConcentrationNA18181553FinalBoronConcentration15531476DilutionTime(minutes)3pumpsnotused177247Table3CEAGroupWorthSummaryCKAGroupReferenceGroupAMeasuredWorth(pcm)928.94595.11658.78649.75Design*Worth(pcm)896.00584.00633.00650.00PercentDifference3.551.873.91-0.04761.36779.00-2.32B&6749.00788.00-5.215&3Total859.305202.24868.005198.00-1.010.08*Reference5.Percentdifference=(Measured-Design)/(Measured)*10016 F  
nverseCountRatioPlot-ChannelBFigure21.0Cb+150Nlode288QpmCb+5044~pmCb50SeenfOdilutlen1.0-0.90.90.80.80.70.70.60.60.50.50.40.40.30.3~0.20.20.10.10.0015003000450060007500900010500120001350015000165000.0Page10 nverseCouatioPlot-ChanelDFigure31.0Cb+t50Mode288gpmICb+5044ItpmCbICb50eecuf0dilution1.00.90.90.80.80.70.70.60.60.50.50.40.40.30.3~0.20.20.10.10.001500~3000~4500~6000~75009000~1050012000135001500016500ottoneDiluted0.0Page11 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}}

Revision as of 15:30, 18 May 2018

Startup Physics Testing Rept. W/961018 Ltr
ML17229A086
Person / Time
Site: Saint Lucie NextEra Energy icon.png
Issue date: 10/18/1996
From: KLEIN R M, MEAD W D, OFARRILL C G
FLORIDA POWER & LIGHT CO.
To:
NRC OFFICE OF INFORMATION RESOURCES MANAGEMENT (IRM)
References
L-96-265, NUDOCS 9610240215
Download: ML17229A086 (23)


Text

CATEGORY1REGULATINFORMATIONDISTRIBUTIONtSTEM(RIDE)VACCESSIONNBR:9610240215DOC.DATE:96/10/18NOTARIZED:NOFACIL:50-335St.LuciePlant,Unit1,FloridaPower6LightCo.AUTH.NAMEAUTHORAFFILIATIONMEAD,W.D.FloridaPower6LightCo.KLEIN,R.M;FloridaPower&LightCo.O'FARRILL,C.G.FloridaPower6LightCo.RECIP.NAMERECIPIENTAFFILIATIONDOCKETt05000335

SUBJECT:

"StartupPhysicsTestingRept."W/961018ltr.DISTRIBUTIONCODE:A001DCOPIESRECEIVED:LTRENCLSIZE:TITLE:ORSubmittal:GeneralDistributionNOTES:RECIPIENTIDCODE/NAMEPD2-3LAWIENSFL.COPIESLTTRENCL1111RECIPIENTIDCODE/NAMEPD2-3PDCOPIESLTTRENCL11E0INTERNAL:ACRSNRR/DE/EMCBNRP/DSSA/SPLBNUDOCS-ABSTRACTEXTERNAL:NOAC1111111111FILECENTER~RR/DRCH/QICNRR/DSSA/SRXBOGC/HDS3NRCPDR1111111011DNOTETOALL"RZDS"RECIPIENTS:PLEASEHELPUSTOREDUCEWASTE.TOHAVEYOURNAMEORORGANIZATIONREMOVEDFROMDISTRIBUTIONLISTSORREDUCETHENUMBEROFCOPIESRECEIVEDBYYOUORYOURORGANIZATION,CONTACTTHEDOCUMENTCONTROLDESK(DCD)ONEXTENSION415-2083TOTALNUMBEROFCOPIESREQUIRED:LTTR13ENCL12 y~~S ppFloridaPower&LightCompany,P.O.Box128,FortPierce,FL34954-0128October18,1996L-96-26510CFR50.36U.S.NuclearRegulatoryCommissionAttn:DocumentControlDeskWashington,DC20555Re:St.LucieUnit1Docket50-335PursuanttoSt.LucieUnit1.TechnicalSpecification6.9.1.1,theenclosedsummaryreportofCycle14plantstartupandpowerescalationtesting'isherebysubmitted.Shouldyouhaveanyquestions,pleasecontactus.Verytrulyyours,J.A.StallVicePresidentSt.LuciePlantJAS/RLD

Enclosure:

St.LucieUnit1,Cycle14,StartupPhysicsTestingReport(ApprovedOctober16,1996)cc:StewartD.Ebneter,RegionalAdministrator,RegionII,USNRCSeniorResidentInspector,USNRC,St.LuciePlant96f0240215'rr61018I,PDR'iADDCK05000335P'-"-"PDRanFPLGroupcompany ST.LVCIEUNIT1,CYCLE14STARTUPPHYSICSTESTINGREPORT

~~St.LucieUnit1,Cycle14StartupPhysicsTestingReportAuthorWalterD.Mead,Jr.ReactorEngineering,St.LuciePlantDateReviewedRayM.einReactorEngineering,St.LuciePlantDate0/4ApprovedCarlG.O'FarrillReactorEngineeringSupervisorSt.LuciePlant

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St.LucieUnit1,Cycle14StartupPhysicsTestingReportTaleofnents~SectinP~aeIIIIIIIVVVIVIIVIIIIntroductionCycle14FuelDesignCEADropTimeTestingApproachtoCriticalityZeroPowerPhysicsTestingPowerAscensionProgramSummaryReferencesLifFiureF~i~12345691011121314Cycle14CoreLoadingPatternInverseCountRatioPlot-ChannelBInverseCountRatioPlot-ChannelDPowerDistribution-25%PowerPowerDistribution-50%PowerPowerDistribution-98%Power151616Cycle14ReloadSub-BatchIDApproachtoCriticalityCEAGroupWorthSummary St.LucieUnit1,Cycle14StartupPhysicsTestingReportI.IntroductionThepurposeofthisreportistoprovideadescriptionofthefueldesignandcoreloadandtosummarizethestartupphysicstestingperformedatSt.LucieUnit1followingthecycle14refuelingoutage.TheStartupphysicstestingverifiesthatkeycoreparametersareaspredicted.Themajorpartsofthistestingprograminclude:1)Initialcriticalityfollowingrefueling,2)Zeropowerphysicstesting,and3)Powerascensiontesting.ThisCycle14StartupReportisbeingsubmittedinaccordancewithTechnicalSpecification6.9.1.1becausethesignificantnumberofsteamgeneratortubespluggedduringtherefuelingoutagemayhavesignificantlyalteredthenuclear,thermal,orhydraulicperformanceoftheunit.However,thetestdatacollectedduringstartupandsummarizedinthisreportindicatesthatalthoughkeythermal-hydraulicparametersexhibitedsomechangestherewasnosignificantimpacttothenuclear,thermal,orhydraulicperformanceoftheunit.II.cle4FuelDeinThecycle14reloadconsistsentirelyoffuelmanufacturedbySiemensPowerCorporation(SPC).The217assembliesofthecycle14corearecomprisedoffuelfromthreebatches.Ofthese,88arefreshassemblies(batchT),84areonce-burnedassemblies(batchS)consistingof76naturaluraniumblanketassembliesand8VesselFluenceReductionAssemblies(VFRAs),and45aretwice-burnedassembliesfrombatchR.Table1providesenrichmentinformationforthecycle14reloadsub-batches.Theentirecycle14fuelload,batchesR,S,andT,consistofthedebrisresistantfuelassemblydesign.Thisdesignhaslongfuelrodlowerendcapswhichprovidesprotectionagainstdebrisinducedfrettinginthelowerend-fittingregion.Thecycle14coremapisrepresentedinFigure1.Theassemblyserialnumbersandcontrolelementassembly(CEA)serialnumbersaregivenforeachcorelocation.Thefuelisarrangedinalowleakagepatternwithnosignificantdifferencesfromthecycle13loadingpattern.Twentyfourtwice-irradiatedbatchRassemblieswereplacedonthecoreperipherywiththeVFRAsoccupyingthethecornerpositionsofeachdog-ear.Theremainingirradiatedandfreshfuelwasloadedinboard.

St.LucieUnit1,Cycle14StartupPhysicsTestingReportIII.EADroTimeTestinFollowingthecorereloadandpriortotheapproachtocriticality,CEAdroptimetestingwasperformed.Theobjectiveofthistestistomeasurethetimeofinsertionfromthefullywithdrawnposition(upperelectricallimit)tothe90%insertedpositionunderhot,fullflowconditions.TheaverageCEAdroptimewasfoundtobe2.21secondswithmaximumandminimumtimesof2.39secondsand2.1seconds,respectively.Alldroptimeswerewithintherequirementsoftechnicalspecification3.1.3.4andthereloadPC/M054-196(Reference5).IV.AroachtoriticaliTheapproachtocriticalityinvolveddilutingfromanon-criticalboronconcentrationof1820ppmtoapredictedcriticalboronconcentrationof1503ppm.Inversecountrateratio(ICRR)plotsweremaintainedduringthedilutionprocessusingwiderangechannelsBandD.RefertoFigures2and3forICRRinformation.Table2summarizesthedilutionratesandtimes,aswellasbeginningandendingboronconcentrations.InitialcriticalityforSt.LucieUnit1,Cycle14,wasachievedonJuly23,1996at1722withCEAgroup7at60incheswithdrawnandallotherCEAsattheall-rods-out(ARO)position.Theactualcriticalconcentrationwasobservedtobe1476ppm.Acalculationofpost-criticalityconditionsvarianceshowedtheactualcriticalconditionstobewithin224pcmofpredicted.Thissatisfiedthecriteriathatpredictedconditionsshouldbewithin1000pcmoftheobservedcondition.V.ZeroPwerPhicTetinToensurethattheoperatingcharateristicsofthecycle14corewereconsistentwiththedesignpredictions,thefollowingtestswereperformed:1)ReactivityComputerCheckout,2)DualCEDMSymmetryTest,3)AllRodsOutCriticalBoronConcentration, St.LucieUnit1,Cycle14StartupPhysicsTestingReportand4)IsothermalTemperatureCoefficientMeasurement,5)CEAGroupRodWorthMeasurements.Properoperationofthereactivitycomputerwasverifiedthroughtheperformanceoftwotests.Inthefirst,reactorpowerwaselevatedsufficientlyhightoensuremaximumsensitivityofthereactivitymeasuringsystemandatthesametimepreserveadequatemargintothepointofaddingheat.Thesecondtestascertainstheresponsetoaknownvalueofpositiveornegativereactivitybymeasuringthevaluesofpositiveornegativereactorperiodsthatresult.TheresultsofthereactivitycomputercheckoutwerecomparedtotheappropriatepredictionssuppliedinthereloadPC/M056-194(Reference5).Satisfactoryagreementwasobtained.VerificationofproperCEAlatchingisconfirmedthroughttheuseofaCEAsymmetrytestforthosegroupswhichcontaindualCEAs(shutdownbanksAHAB).TheprescribedacceptancecriteriaisthatthereactivitymeasuredforeachdualCEAshallbewithin+15.0pcmoftheaveragereactivitymeasuredfortheentiregroup.TherewerenounlatchedCEAsforeithergroup.Themeasurementoftheall-rods-out(ARO)criticalboronconcentrationwasperformed.Themeasuredvaluewas1519ppmwhichcomparedfavorablywiththedesignvalueof1545ppm.Thiswaswithintheacceptancelimitsof+100ppm.Themeasurementoftheisothermaltemperaturecoefficientwasperformedandtheresultingmoderatortemperaturecoefficient(MTC)wasobtained.TheMTCwasdeterminedtobe2.458pcm/'Fwhichfellwellwithintheacceptancecriteriaof+2.0pcm/'FofthedesignMTCof2.716pcm/'F(corrected).ThissatisfiestheUnit1TechnicalSpecificationwhichstatesthattheMTCshallbelesspositivethan5.0pcm/'F.ThefinalsectionofinterestforzeropowerphysicstestingisinthemeasurementofCEAgroupworths.Rodworthmeasurementswereperformedusingtherodswapmethodology.Thismethodinvolvesexchangingthereferencegroup,whichismeasuredbytheborationdilutiontechnique,witheachoftheremainingtestgroups.AcomparisonofthemeasuredanddesignCEAreactivityworthsisprovidedinTable3.Thefollowingacceptancecriteriaappliestothemeasurementsmade:1)Themeasuredvalueofeachtestgroup,orSupergroupmeasured,iswithin+15%or+100pcmofitscorrespondingdesignCEAworths,whicheverisgreater;and,2)ThemeasureworthofthereferencegroupandthetotalworthforalltheCEAgroupsmeasurediswithin+10%ofthetotaldesignworth.

St.LucieUnit1,Cycle14StartupPhysicsTestingReportAllacceptancecriteriaweremet.VI.PwerAcenionProramDuringpowerascension,thefixedincoredetectorsystemisutilizedtoverifythatthecoreisloadedproperlyandthattherearenoabnormalitiesoccuringinvariouscoreparameters(corepeakingfactors,linearheatrate,andtilt)forpowerplateausat25%,50%,andgreaterthan98%ratedthermalpower.Ashapeannealingfactor(SAF)testwasperformedinconjunctionwiththepowerascension.Thistestwasnecessitatedbythereplacementofthe"B"LinearRangenuclearinstrumentchanneldetector.Asummaryofthefluxmapsatthe25%,45%and98%powerlevelsisprovidedinFigures4,5Ec6.Thesefluxmapsareusedforcomparingthemeasuredpowerdistributionwiththepredictedpowerdistribution.Forthepurposesofthepowerascension,theacceptancecriteriarequirestheRMSvalueofthepowerdeviationbelessthanorequalto5%.Inaddition,forthe25%and98%plateaus,theindividualassemblypowersshouldbewithin10%ofthepredictedpower(both)andtherelativepowerdensity(RPD)shouldbewithin0.1RPDunitsofpredictedforthe25%powercase.Thesecriteriaweresatisfied.Whentheunitreached98%power,acalorimetricwasperformedinaccordancewithreference6forthepurposeofcalculatingtheRCSflowrate.TheRCSflowratewasdeterminedtohavebeenreducedfrom394,420gpm(measuredincycle13)to374,674gpmincycle14.ThisvalueofflowremainsabovetheTechnicalSpecificationminimumof345,000gpm.Withinseveneffectivefullpowerdaysofattainingtheequilibriumvalueof100%power,ahotfullpower(HFP)MTCtestwasperformedbymaintainingpowerconstantandvaryingtemperature.ThecenterCEA(7-1)wasoperatedtopermitcompensationoftheresultingreactivitychanges.TheHFPMTCwasmeasuredtobe-7.364pcm/'Fwhichwaswithinthe+2.0pcm/'Fofthedesignvalueof-7.293pcm/'F(corrected).ThistestalsoverifiedcompliancewithTechnicalSpecification3.1.1.4whichrequiresthemeasuredMTCbelessnegativethan-28.0pcm/'Fandlesspositivethan+2.0pcm/'Fwhilethermalpowerisgreaterthan70%.Thepowercoefficientwasnotmeasured.VII.$ummaryThetestdatacollectedduringstartupandsummarizedinthisreportindicatesthatalthoughkeythermal-hydraulicparametersexhibitedsomechangestherewasnosignificantimpacttothe St.LucioUnit1,Cycle14StartupPhysicsTestingReportnuclear,thermal,orhydraulicperformanceoftheunit.CompliancewiththeapplicableUnit1TechnicalSpecificationswassatisfactoryandallacceptancecriteriaweremet.VIII.References1)"InitialCriticality,"Pre-OperationalProcedure1-3200088,Revision9.2)"ReloadStartupPhysicsTesting,"Pre-OperationalProcedure3200091,Revision6.3)"ReactorEngineeringPowerAscensionProgram,"Pre-OperationalProcedure3200092,Revisions9%10.4)St.LucieUnit1TechnicalSpecifications.5)St.LucieUnit1,Cycle14FuelReloadPC/M054-196.6)"RCSFlowDeterminationByCalorimetricProcedure,"St.LucieUnit1OperatingProcedure1-0120051,Revision16.

ISt.LucieUnit1Figure1Cycle14CoreLoadingPatternTSRPNMLKJHeIIIIIIIIFR14R46R47FR10FEabcdabC21R30S04T16102S10T18105T24802R3720R18T02137T59T3092S29S12302832T32136T67T0482R20G19R22T25201S24S47139S72T70107S37T8093S75S46138S21T10204R23e16R40T0581S23R34T81T4694R14T33R15T4896T58R36S17T06142R32S05T89S44141T62S55123857T75R02T76S50S54127841140T73S0816seeT38143S74T4984852S25114S63T54103862S28113860T5597S69T3979T12FR16abGdR42R43T2189S13T19120S34S15305S31T6688S40T86119R08T69T29R12R03T84S65T45109861T5799R07T78F02R10R25135R09T79132R06T9287S67T56104S64T65R04R11T40T77R05T6491S39T74122S35S16303S30T2290S14T20121FR12abCCIR44R411211-10FR11abGdT15T3183S70T47131S59S27100S66T52110S68S2698S51T53112S73T3680T17FR15abCS07T83S45128T63S5395S49T88R01T61S58S5685T68S48126T82S06R31T07125S18R35T71T50115R16T37R13T51116T85R33S20T01124R39R24T09203S22S42130S76T87106838T91118S71843129S19T23205R21R19T08134T60T34117836S11304S33T35133T90T03101R17R38801T14T13108S09T27111T26803R29FR09R48abCR45FR13abCdR38~A66eeee5y¹102m-In@eeet¹

nverseCountRatioPlot-ChannelBFigure21.0Cb+150Nlode288QpmCb+5044~pmCb50SeenfOdilutlen1.0-0.90.90.80.80.70.70.60.60.50.50.40.40.30.3~0.20.20.10.10.0015003000450060007500900010500120001350015000165000.0Page10 nverseCouatioPlot-ChanelDFigure31.0Cb+t50Mode288gpmICb+5044ItpmCbICb50eecuf0dilution1.00.90.90.80.80.70.70.60.60.50.50.40.40.30.3~0.20.20.10.10.001500~3000~4500~6000~75009000~1050012000135001500016500ottoneDiluted0.0Page11 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