ASMEPTC502002燃料電池電源系統(tǒng)性能_第1頁
ASMEPTC502002燃料電池電源系統(tǒng)性能_第2頁
ASMEPTC502002燃料電池電源系統(tǒng)性能_第3頁
ASMEPTC502002燃料電池電源系統(tǒng)性能_第4頁
ASMEPTC502002燃料電池電源系統(tǒng)性能_第5頁
已閱讀5頁,還剩51頁未讀 繼續(xù)免費閱讀

下載本文檔

版權(quán)說明:本文檔由用戶提供并上傳,收益歸屬內(nèi)容提供方,若內(nèi)容存在侵權(quán),請進(jìn)行舉報或認(rèn)領(lǐng)

文檔簡介

TheAmericanSocietyof

MechanicalEngineers

ANAMERICANNATIONALSTANDARD

FUELCELL

POWERSYSTEMS

PERFORMANCE

PERFORMANCETESTCODES

ASMEPTC50-2002

標(biāo)準(zhǔn)分享網(wǎng)免費下載

DateofIssuance:November29,2002

ThisStandardwillberevisedwhentheSocietyapprovestheissuanceofanew

edition.Therewillbenoaddendaissuedtothisedition.

ASMEissueswrittenrepliestoinquiriesconcerninginterpretationsoftechnical

aspectsofthisStandard.InterpretationsarepublishedontheASMEWebsiteunder

theCommitteePagesat/codes/astheyareissued.

ASMEistheregisteredtrademarkofTheAmericanSocietyofMechanicalEngineers.

ThiscodeorstandardwasdevelopedunderproceduresaccreditedasmeetingthecriteriaforAmerican

NationalStandards.TheStandardsCommitteethatapprovedthecodeorstandardwasbalancedtoassure

thatindividualsfromcompetentandconcernedinterestshavehadanopportunitytoparticipate.The

proposedcodeorstandardwasmadeavailableforpublicreviewandcommentthatprovidesanopportunity

foradditionalpublicinputfromindustry,academia,regulatoryagencies,andthepublic-at-large.

ASMEdoesnot”approve,”“rate,”or“endorse”anyitem,construction,proprietarydevice,oractivity.

ASMEdoesnottakeanypositionwithrespecttothevalidityofanypatentrightsassertedinconnection

withanyitemsmentionedinthisdocument,anddoesnotundertaketoinsureanyoneutilizingastandard

againstliabilityforinfringementofanyapplicableletterspatent,norassumeanysuchliability.Usersof

acodeorstandardareexpresslyadvisedthatdeterminationofthevalidityofanysuchpatentrights,and

theriskofinfringementofsuchrights,isentirelytheirownresponsibility.

Participationbyfederalagencyrepresentative(s)orperson(s)affiliatedwithindustryisnottobe

interpretedasgovernmentorindustryendorsementofthiscodeorstandard.

ASMEacceptsresponsibilityforonlythoseinterpretationsofthisdocumentissuedinaccordance

withtheestablishedASMEproceduresandpolicies,whichprecludestheissuanceofinterpretationsby

individuals.

Nopartofthisdocumentmaybereproducedinanyform,

inanelectronicretrievalsystemorotherwise,

withoutthepriorwrittenpermissionofthepublisher.

TheAmericanSocietyofMechanicalEngineers

ThreeParkAvenue,NewYork,NY1O016-5990

CopyrightO2002by

THEAMERICANSOCIETYOFMECHANICALENGINEERS

Allrightsreserved

PrintedinU.S.A.

CONTENTS

Forewordv

CommitteeRostervi?

...

BoardRosterVIII

INTRQD.UCT.IDN1

1ObjectandScope2

1.1Object2

1.2Scope2

1.3TestUncertainty2

2DefinitionsandDescriptionofTerms3

2.1Introduction3

2.2FuelCellTypes3

2.3FuelCellPowerSystems4

2.4GeneralFuelCellNomenclature5

2.5GDefinitions5

3GuidingPrinciples8

3.1Introduction8

3.2Agreements8

3.3TestBoundary8

3.4TestPlan8

3.5PreparationforTest10

3.6ParameterstobeMeasuredorDeterminedDuringtheTestPeriod11

3.7OperationoftheTest14

3.8CalculationandReportingofResults14

3.9Records15

4InstrumentsandMethodsofMeasurement16

4.1GeneralRequirements16

4.2ChecklistofInstrumentsandApparatus18

4.3DeterminationofOutputs19

4.4DeterminationofFuelInput20

4.5DataCollectionandHandling22

5ComputationofResults23

5.1introduction23

5.2ComputationofInputs23

5.3ComputationofElectricPowerOutput27

...

III

標(biāo)準(zhǔn)分享網(wǎng)免費下載

5.4ComputationofThermalandMechanicalOutputs27

5.5ComputationofAverageNetPower28

5.6ComputationofEfficiencies28

5.7CorrectionofTestResultstoReferenceConditions29

6TestReportRequirements31

6.1GeneralRequirements31

6.2ExecutiveSummary31

6.3Introduction31

6.4Instrumentation31

6.5Results31

6.6Conclusions32

6.7Appendices32

Figures

2.1GenericFuelCellPowerSystemDiagram4

3.1GenericFuelCellSystemTestBoundary9

3.2FuelCellSystemTestBoundaryIllustratingInternalSubsystems9

Tables

3.1MaximumPermissibleVariationsinTestOperatingConditions14

4.1PotentialBiasLimitforHeatingValues21

MandatoryAppendix

IUncertaintyAnalysisandSampleCalculation33

iv

Duringthemid1990stheimportanceofdevelopingfuelcellstandardswasrecognized.

FuelCellpowerplantswereintheearlystagesofcommercialization.Potential

applicationsincludedvehicularpower,on-sitepowergeneration,andlargerscale

dispersalpowergenerators.Therewasagrowingdemandtoproduceindustrystandards

thatwouldkeeppacewiththecommercializationofthisnewtechnology.

ASMEhadaveryactiveFuelCellPowerSystemstechnicalcommitteewithinthe

AdvancedEnergySystemsDivision.Throughitsvolunteermembership,itrecommended

theformationofastandardscommitteetoworkondevelopingafuelcellstandard.

ASMECodesandStandardDirectorateundertookthistask.OnOctober14,1996.the

BoardonPerformanceTestCodesvotedtoapprovetheformationofapetformance

testcodeCommittee,PTC50.

ThisCommitteehaditsfirstmeetingonJanuary23-24,1997.Themembership

consistedofsome18fuelcellexpertsfromGovernment,academia,manufacturers,

andusersoffuelcells.RonaldL.Bannister;WestinghouseElectricCorporation;retired,

chairedthefirstmeeting.HehadbeenappointedbytheBoardonPTCastheBoard

Liaisonmembertothecommittee.Hechairedandsupervisedthecommittee’sactivities

untilpermanentofficerswereelectedfromthemembership.

IntheFall2001,theCommitteeissuedadraftoftheproposedCodetoIndustry

forandcomment.ThecommentswereaddressedinFebruary2002andthe

CommitteebyaletterballotvotedtoapprovethedocumentonMarch29,2002.It

wasthenapprovedandadoptedbytheCouncilasastandardpracticeoftheSociety

byactionoftheBoardonPerformanceTestCodesvotedonMay6,2002.Itwas

alsoapprovedasanAmericanNationalStandardbytheANSIBoardofStandards

ReviewonJuly3,2002.

V

標(biāo)準(zhǔn)分享網(wǎng)免費下載

NOTICE

AllPerformanceTestCodesMUSTadheretotherequirementsofPTC1,GENERAL

INSTRUCTIONS.Thefollowinginformationisbasedonthatdocumentandisincluded

hereforemphasisandfortheconvenienceoftheuserofthisSupplement.Itisexpected

thattheCodeuseriffullycognizantofPartsIandIIIofPTC1andhasreadthem

priortoapplyingthisSupplement.

ASMEPerformanceTestCodesprovidetestprocedureswhichyieldresultsofthe

highestlevelofaccuracyconsistentwiththebestengineeringknowledgeandpractice

currentlyavailable.Theyweredevelopedbybalancedcommitteesrepresentingall

concernedinterests.Theyspecifyprocedures,instrumentation,equipmentoperating

requirements,calculationmethods,anduncertaintyanalysis.

WhentestsareinaccordancewithaCode,thetestresultsthemselves,without

adjustmentforuncertainty,yieldthebestavailableindicationoftheactualperformance

ofthetestedequipement.ASMEPerformanceTestCodesdonotspecifymeansto

comparethoseresultstocontractualguarantees.Therefore,itisrecommendedthatthe

partiestoacommercialtestagreebeforestartingthetestandpreferablybeforesigning

thecontractonthemethodtobeusedforcomparingthetestresultstothecontractual

guarantees.ItisbeyondthescopeofanyCodetodetermineorinterprethowsuch

shallbemade.

vi

PERSONNELOFPERFORMANCETESTCODE

COMMITTEE50

FUELCELLPOWERSYSTEMSPERFORMANCE

(ThefollowingistherosteroftheBoardatthetimeofapprovalofthisCode.)

OFFICERS

A.J.Leo,Chair

K.Hecht,ViceChair

J.H.Karian,Secretary

COMMITTEEPERSONNEL

D.H.Archer,CarnegieMellonUniversity

P.J.Buckley,EnergyAlternatives

S.Comtois,HPowerEnterprisesofCanada,Inc.

J.S.Frick,SCANACorp.

K.Hecht,UTCFuelCells

F.H.Holcomb,U.S.ArmyCorpsofEngineers

J.H.Karian,TheAmericanSocietyofMechanicalEngineers

B.Knaggs,BallardGenerationSystems

M.Krumpelt,ArgonneNationalLaboratory

A.J.Leo,FuelCeIlEnergy

A.Skok,Alternate,FuelCellEnergy

R.M.Privette,OMGCorp.

L.A.Shockling,Siemens-WestinghousePowerCorp.

R.P.Wicherí,U.S.FuelCellCouncil

M.C.Williams,U.S.DOE,NETL

標(biāo)準(zhǔn)分享網(wǎng)免費下載

BOARDONPERFORMANCETESTCODES

OFFICERS

S.J.Korellis,Chair

J.R.Friedman,ViceChair

W.O.Hays,Secretary

COMMITTEE

PERSONNEL

P.G.AlbertG.J.GerberS.P.Nuspl

R.P.AllenY.GolandA.L.Plumley

R.L.BannisterT.C.HeilR.R.Priestley

J.M.BurnsT.S.JonasJ.W.Siegmund

W.C.CampbellD.R.KeyserJ.A.Silvaggio,Jr.

M.J.DooleyS.J.KorellisW.G.Steele,Ir.

A.J.EgliP.M.McHaleJ.C.Westcott

J.R.FriedmanJ.W.MiltonJ.G.Yost

P.M.GerhartG.H.Mittendorf,Ir.

...

VIII

ASMEPTC50-2002

FUELCELLPOWERSYSTEMSPERFORMANCE

INTRODUCTION

FuelcellsconverttheenergyofafueldirectlySection1definestheobjectiveandscopeofthis

intoelectricity,eliminatingthecombustionstageCode.Section2isdedicatedtodefiningafuelcell

thatischaracteristicofheatengines,andnotrequir-systemandtodefinitionsofterms.Italsocontains

inganymovingparts.Instead,thefuelmoleculesabriefdiscussionofthemajortypesoffuelcells.

(usuallyhydrogenoftenderivedfromhydrocarbonInSection3,methodologyofestablishingtestproto-

fuels)interactwiththesurfaceofananodematerialcolisoutlined.Instrumentationformeasuringthe

toformreactionproducts,liberatingelectrons.Theenergyofthefeedstreamaswellasoftheexiting

electronsflowthroughtheelectricloadtothecath-gasesandliquidsisgiveninSection4,asisthe

odewheretheyreactwithanoxidant,typicallyinstrumentationformeasuringelectricpower.Sec-

oxygenfromair.Ionsmigratebetweentheelectrodestion5describeshowtheefficiencyofthesystems

throughtheionicallyconductingelectrolytetocom-shallbecalculatedfromthemeasurements,and

howcorrectionsfornonstandardconditionsshallbe

pletethecircuit.Theproductofthiselectrochemical

made.

energyconversionprocessiswater,butunlikeheat

Typically,thisperformancetestcodewouldbe

engines,theprocesscantakeplaceatcloseto

usedforanindependentverificationoftheperform-

ambienttemperature,orcanalsobeconductedat

anceofaparticularfuelcellsystembyacustomer

highertemperatures,dependingonthetypesofortestagency.Intheviewofthemembersofthe

anode,electrolyte,andcathodematerials.Committee,thedescribedproceduresarerigorous,

Sincefuelcellsnotheatengines,theefficiencyandthetestwillrequirecommittingsignificantre-

ofafuelcellsystemisnotlimitedbytheCarnotsources.Forthecasualuseroffuelcells,itwill

principle.Itcan,infact,varyoverafairlywidesufficetodeterminetheelectricoutputofthesystem

range.Whenthecurrentdensityofthefuelcellisundersteadystateconditions,andtomeasurethe

verylow,theenergyconversionefficiencyap-fuelfeedrate.Asmentionedabove,theefficiency

proachestheratiooftheFreeEnergyofCombustionofafuelcellsystemvariessignificantlywithpower

ofthefueldividedbytheEnthalpyofCombustion.density.Atpowerdensitiesbelowthedesignpoint,

Formethanethislimitis94%.However,suchantheefficiencywillusuallyincrease,anditwillde-

operatingmodewouldrequireaverylargefuelcellcreasewhenthepoweroutputexceedsthedesign

andwouldbetooexpensiveinmostapplications.point.Oneofthecharacteristicsoffuelcellsisthe

abilitytooperatethemoverawidepowerrange,

Inpractice,fuelcellsystemsaredesignedto

evenexceedingthedesignpointby50%forafew

operateatapowerdensityreflectingthemosteco-

minutes.Underdynamicoperatingconditionsthe

nomicaltrade-offoffuelandcapitalcosts.Atthe

efficiencyofafuelcellwouldbedifferentthanat

designpointofthesystemthepoweroutputofthethedesignpoint,andwouldprobablybehigher,

systemisspecifiedbythemanufacturerforcertainsincemostloadscontainsignificantsegmentsof

standardconditionsoffuelandair.Itisthepurposelow-poweroperationandnormalsystemcontrol

ofthisCodetodefineinacommonlyacceptable(eg,forfuelflow)respondsfairlyquicklytothese

mannerhowthepoweroutputandtheenergyinputloadconditions.Measuringtheefficiencyunderdy-

shouldbemeasuredandhowtheefficiencyshouldnamicconditionsgoesbeyondthescopeofthe

becalculated.document.

1

標(biāo)準(zhǔn)分享網(wǎng)免費下載

ASMEPTC50-2002FUELCELLPOWERSYSTEMSPERFORMANCE

SECTION1

OBjECTANDSCOPE

1.1OBJECTincludinginstrumentationtobeused,testingtech-

niques,andmethodsforcalculatingandreporting

ThisCodeprovidestestprocedures,methods,andresults.

definitionsfortheperformancecharacterizationofTheCodedefinesthetestboundaryforfueland

fuelcellpowersystems.Fuelcellpowersystemsoxidantinput,secondaryenergyinputandnetelectri-

includeallcomponentsrequiredintheconversioncalandthermalenergyoutput.Attheseboundaries,

ofinputfuelandoxidizerintooutputelectricalandthisCodeprovidesproceduresformeasuringtemper-

thermalenergy.Performancecharacterizationoffuelature,pressure,inputfuelflowandcomposition,

systemsincludesevaluatingsystemenergyinputselectricalpower,andthermaloutput.

andelectricalandthermaloutputstodeterminefuel-TheCodeprovidesproceduresfordeterminationof

to-electricalenergyconversionefficiencyandwhereelectricalefficiencyorheatrateandoverallthermal

applicable,theoverallthermaleffectiveness.Theseeffectivenessatratedoranyothersteady-statecondi-

efficiencieswillbedeterminedtoanabsoluteuncer-tion.TheCodealsoprovidesthemethodtocorrect

taintyoflessthan12%ata95%confidencelevel.resultsfromthetesttoreferenceconditions.

(Forexample,foracalculatedefficiencyof4?%,

1.3TESTUNCERTAINTY

thetruevalueliesbetween38%and42%.)

InaccordancewithASMEPTC19.1,procedures

1.2SCOPEareprovidedfordeterminingtheuncertaintyassoci-

atedwiththecalculatedperformanceparametersof

ThisCodetoallfuelcellpowersystemsthisCode(energyinput,electricalenergyandthermal

regardlessoftheelectricalpoweroutput,thermaloutputs,andelectricalefficiencyorheatrate).In

output,fuelcelltype,fueltype,orsystemapplication.themeasurementsmadetodetermineperformance

Fuelcellpowersystemscontainanassemblyofparameters,therearesystematicerrorsproducedby

electrochemicalcells,whichoxidizeafueltogener-theproceduresandinstrumentationrecommended

atedirectcurrentelectricity.Balance-of-plantsubsys-inthisCode.Atableofthesesystematicerrorsmay

temsmayincludecontrols,thermalmanagement,abefoundinSection4ofthisCode.

fuelprocessorandapowerconditioner.SomefuelSamplecalculationsoftheuncertaintiesassociated

cellpowersystemsmaycontainadditionalpowerwiththesystemperformanceparameters,whichillus-

generatingequipmentsuchassteamgenerators,gastratetheeffectsofsystematicerrorsanddata,are

turbinegenerators,ormicro-turbinegenerators.ThepresentedinMandatoryAppendixIofthisCode.

netpoweroutputandallthefuelinputtothesystemApretestuncertaintyanalysisisrecommended.

shallbetakenintoaccountintheperformancetestThepretestanalysisallowscorrectiveactiontobe

takenpriortothetest,whichwilleitherdecrease

calculations.

theuncertaintytoanappropriatelevelconsistent

ThisCodeappliestotheperformanceofoverall

withtheoverallobjectiveofthetestorwillreduce

fuelcellpowersystems.TheCodeaddressescom-

thecostofthetestwhilestillattainingthetest

binedheatandpowersystems,thatis,thegeneration

uncertainty.

ofelectricityandusableheatatspecificthermalApost-testuncertaintyanalysisismandatory.It

conditions.Itdoesnotaddresstheperformanceofwillmakeuseofempiricaldatatodeterminerandom

specificsubsystemsnordoesitapplytoenergymeasurementerrorsandtestobservationstoestablish

storagesystems,suchasregenerativefuelcellsorwhetherornottherequireduncertaintyhasbeen

batteries.Italsodoesnotaddressemissions,reliabil-achieved.

ity,safetyissues,orendurance.Thisuncertaintyprocedureservesasaguidefor

ThisCodecontainsmethodsandproceduresforpretestandpost-testuncertaintycalculationswhen

conductingandreportingfuelcellsystemtesting,theCodeisused.

2

FUELCELLPOWERSYSTEMSPERFORMANCEASMEPTC50-2002

SECTION2

DEFINITIONSANDDESCRIPTIONOFTERMS

2.1INTRODUCTIONelectrolytesarelimitedtotemperaturesofabout

200°Corlowerbecauseoftheirhighwatervapor

Fuelcellpowersystemsconverttheenergyofa

pressureand/orrapiddegradationathighertempera-

fuelandanoxidantdirectlyintoelectricalenergy

tures.Theoperatingtemperaturealsoplaysanimpor-

andheatusinganelectrochemicalprocess.Fuelcell

tantroleindictatingthetypeoffuelthatcanbe

powersystemsconsistofelectrochemicalreactors

utilizedinafuelcell.Thelow-temperaturefuelcells

andthebalanceofplant.Electrochemicalreactors

withaqueouselectrolytesare,inmostapplications,

converttheenergyfromchemicaltoelectricalform.

restrictedtohydrogenasafuel.Inhigh-temperature

Balance-of-plantprovidestherequiredreactantand

fuelcells,COandevenCH4canbeusedbecause

productflows,toandfromtheelectrochemicalreac-

oftheinherentlyrapidelectrodekineticsandthe

tors,andconvertsthepoweroutputtoausable

lesserneedforhighcatalyticactivityathightemper-

form,suchasACpowerforautilitygrid.

ature.

Thereareanumberofdifferenttypesoffuelcells,

andwithineachfuelcelltype,designershavea2.2.2DescriptionoftheVariousElectrolyteCells.

varietyofoptionsforconfigurationofbalanceofThefollowingdescriptionsindicatetherangeof

plantsystems.Thebasictypeoffuelcellisdefinedsystemscurrentlyavailable.Theyarenotmeantto

bythechemistryofthematerialsusedinthecellrestrictthescopeofthisCodeinanyway.This

components.Section2.2belowdescribesfiveofcodecanbeappliedforallfuelcelltypessomeof

themostcommonfuelcelltypescurrentlybeingwhichmaynotbelistedhere.

commercialized.Section2.3discussesthevarious

AlkalineFuelCell(AFC):theelectrolyteinthisfuel

componentsandthatmakeupfuelcell

cellisanaqueousKOHsolution,retainedin.a

balanceofplantsystems.wickingmatrix,andthecellstypicallyoperateat

100°C.Awiderangeofelectro-catalystshasbeen

2.2FUELCELLTYPESused(e.g.,Ni,Ag,metaloxides,spinels,andnoble

metals).Thefuelsupplyislimitedtononreactive

2.2.1ClassificationofFuelCells.Themostcom-constituentsexceptforhydrogen.COisapoison,

monclassificationoffuelcellsisbythetypeofandCO2willreactwiththeKOHtoformK2C03,

electrolyteusedinthecellsandincludes:thusalteringtheelectrolyte.Eventhesmallamountof

(a)polymerelectrolytemembrane,alsoreferredCO2inairmustbeconsideredwiththealkalinecell.

toasprotonexchangemembrane(PEMFC)FuelCellReformate:reformedfueloutput(usually

(b)alkalinefuelcell(AFC)gaseous)fromthefuelreformer.Thefuelreformer

(c)phosphoricacidfuelcell(PAFC)isusedtoprocesstheinputhydrocarbonfuelinto

(d)moltencarbonatefuelcell(MCFC)afuelstream(thereformate)thatmatchesthefuel

(e)solidoxidefuelcell(SOFC)cellstackparametersandmeetstheneedsofthefuel

Thesefuelcellsarelistedintheorderofapproxi-cellsystem.FuelCellReformatetypicallyconsistsof

mateoperatingtemperature,rangingfrom-80°CfortheH2,CO,H20resultsfromasteamreforming

PEMFC,-100°CforAFC,-200°CforPAFC,-650°Cprocess.Forsomefuelcelltypes,suchasMCFC

forMCFC,and-800°Cto-1000°CforSOFC.InandSOFC,thisisutilizeddirectlyinthefuelcell

additiontothesefuelcelltypes,developmentisstack.Forotherfuelcelltypes,suchasPEM,the

proceedingonothertypesoffuelcellpowersystems.streamisconvertedtoahydrogenrichgas,with

Theoperatingtemperatureandusefullifeofaminimalamountsofcontaminantsbutsometimes

fuelcellarearesultofthepropertiesofmaterialscontainingnonreactivecompoundssuchasnitrogen,

usedinthecellcomponents(?.e.,electrodes,electro-carbondioxide,orothernonreactivecompoundsthat

lyte,interconnect,currentcollector,etc.).Aqueouscanpassthroughtheanodeintheunreactedstate.

3

標(biāo)準(zhǔn)分享網(wǎng)免費下載

ASMEPTC50-2002FUELCELLPOWERSYSTEM

溫馨提示

  • 1. 本站所有資源如無特殊說明,都需要本地電腦安裝OFFICE2007和PDF閱讀器。圖紙軟件為CAD,CAXA,PROE,UG,SolidWorks等.壓縮文件請下載最新的WinRAR軟件解壓。
  • 2. 本站的文檔不包含任何第三方提供的附件圖紙等,如果需要附件,請聯(lián)系上傳者。文件的所有權(quán)益歸上傳用戶所有。
  • 3. 本站RAR壓縮包中若帶圖紙,網(wǎng)頁內(nèi)容里面會有圖紙預(yù)覽,若沒有圖紙預(yù)覽就沒有圖紙。
  • 4. 未經(jīng)權(quán)益所有人同意不得將文件中的內(nèi)容挪作商業(yè)或盈利用途。
  • 5. 人人文庫網(wǎng)僅提供信息存儲空間,僅對用戶上傳內(nèi)容的表現(xiàn)方式做保護(hù)處理,對用戶上傳分享的文檔內(nèi)容本身不做任何修改或編輯,并不能對任何下載內(nèi)容負(fù)責(zé)。
  • 6. 下載文件中如有侵權(quán)或不適當(dāng)內(nèi)容,請與我們聯(lián)系,我們立即糾正。
  • 7. 本站不保證下載資源的準(zhǔn)確性、安全性和完整性, 同時也不承擔(dān)用戶因使用這些下載資源對自己和他人造成任何形式的傷害或損失。

評論

0/150

提交評論