核反应堆工程核反应堆工程 (11).ppt
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1、Nuclear Engineering ReactorIntroduction of Space Nuclear Power1Overview1BackgroundDesignfeatures23Typicalspacereactorsystems4Summary2Background3MannedLandingonMars(theUSA)Spaceexplorationprogram(Russia)Unmannedbaseonthemoon(Japan)Inthebitterlycold,radiation-rich,poorlylitenvironmentsoftheouterplanet
2、s,onlyarugged,solar-independentpowersourcehasthewherewithaltosurviveandfunctionforlongperiodsoftime.Thedevelopmentanduseofnuclearpowerinspacehasenabledthehumanracetoextenditsvisionintoregionsthatwouldnothavebeenpossiblewithnon-nuclearpowersources.Withthespreadingoftheresearchresultsofspacescienceand
3、applications,spacesciencehasbecomeoneoftheimportantmotiveforcesforthedevelopmentofeconomy and society.4BackgroundNuclearpowerIndependently of sunlight.Nuclearreactorscanmass less thansolarcellsofequivalentcapacity.Nuclearpowerconceptsthatcanpowerbothlife support andpropulsionsystemsmayreducebothcost
4、 and flight time.ChemicalpowerSolarpowerAdvantageSpaceStation30kWPlanetarysurface40kW20MWDeepspaceexploration100kWOverview1BackgroundDesign features23Typicalspacereactorsystems4Summary5Design requirements6Space environmentSpace environment:VacuumenvironmentandlowcorrosivenessLowambientpressure.Highr
5、equirementsforcompressionresistanceandsealingExtremetemperature.Equipmentinsulationandheatdissipation.Design requirements:Design requirements:Long-termreliableLightweightandsmallsizeRadiationprotectionandnuclearsafetySimplifieddesignrequiresmorerigorouscontrolandsafety7ClassificationRTG:Radioisotope
6、ThermoelectricGeneratorRHU:RadioisotopeHeatUnitTEC:ThermionicEnergyConvertorAMTEC:AlkaliMetalThermaltoElectricConverterOverview1BackgroundDesignfeatures23Typical space reactor systems4Summary89Typical systemsSNAP-10ASP-100pForalmost55years,spacenuclearpowersourceshaveprovedtobesafe,reliable,sturdy,l
7、ong-livedsourcesofelectricalpower.pSince1961,theU.S.hassuccessfullylaunched42nuclearpowersources(41radioisotopethermoelectricgeneratorsandonenuclearreactor)on24spacemissionsalongwithhundredsofradioisotopeheaterunits(RHUs).pRussiahasalsosuccessfullydevelopedfourmaintypesofSpaceNuclearReactors,haslaun
8、chedmorethan35satellitesequippedwithNuclearreactors.CORECORECONVCONVERSIERSIONONSHIELDSHIELDELECTELECTLOADLOADHEAT HEAT REAJECTIONREAJECTIONBUKTOPAZ-10Typical systemsFission Surface Power(FSP)11pSystem Concepts for Affordable Fission Surface PowerTypical systems FSPpTheproposedFSPsystemusesalow temp
9、erature,uranium dioxide-fueled,liquid metal-cooledfissionreactorcoupledtofree-pistonStirlingconverters.pTheconceptwasdeterminedbya12monthNASA/DOEstudythatexamineddesignoptionsanddevelopmentstrategiesbasedonaffordability and risk.UndertheVisionforExploration,NASAisevaluatingoptionsforhumanmissionstot
10、heMoonandMars.Lunar missionsareexpectedtobeginintheearly2020s.Mars missionsmayoccurlater,possiblyinthe2030s.12pReactor-Converter CombinationpAmatrixofsystemconcepts,asshownintable,wasgeneratedbyselectingreactor fuel,primary coolant,power conversion type,andradiator coolant.pTheaffordabilitygoalledto
11、adecisionbythegovernmentteamtolimitreactorfuel-cladtemperatureto900K tominimizefuelandmaterialdevelopmentcostsandmaximizetheuseofexistingtechnology.Typical systems FSP13pReactor-Converter CombinationTypical systems FSP14pPreliminary Reference ConceptAsampleofthescreeningstudyresultsisprovidedinfigur
12、eshowinga comparison of reactor thermal power and radiator area forthevariouspowerconversionoptionsassuminga900Kpumped-NaKreactorheatsource.Typical systems FSP15pPreliminary Reference ConceptThereactorislocated at the bottom of a 2 m excavation withanupperplugshieldprotectingtheequipmentabovefromdir
13、ectradiation.pThereactor(Rx)producesapproximately175 kWt withapeakcladtemperatureof900KanddeliversheatedNaKat890Ktoapairofintermediateheatexchangers(IHX)viatwo,redundantprimarypumps.Typical systems FSP16pSystem SchematicpTheIHXisaNaK-to-NaKheatexchangerthatisolatestheprimaryNaKfromtheStirlingconvert
14、ersandpermitstheNaKinterfacetemperaturestobeoptimizedfortheStirling,whiletheprimaryNaKconditionscanbetailoredforthereactor.pEachintermediateNaKloopincludesredundantpumpsandservices two Stirling convertersatasupplytemperatureof880K.12kWedual-opposedstirlingconvertorconceptHeatrejectionandradiatorpane
15、lconceptsTypical systems FSP17pTheaverageStirlinghot-endtemperatureis830K.EachStirlingconverterhasadedicatedcoolingloopwitha400K waterexittemperature.pTheeffectiveradiatortemperatureis380K.Typical systems FSP18pReactor and ShieldpThereactorcoolantisa78 percent Na,22 percent K mixturethatcanmoreeasil
16、ybemaintainedasaliquidpriortostartupbecauseofitsrelativelylow262Kfreezingtemperature.pThepeakfuelburn-upisestimatedat1.3at.%forthe8 yr designlife.Reactivitycontrolisprovidedbysix radial beryllium(Be)reflector drums.pTheouterstainlesssteelvesselisdodecagon-shapedfortightpackagingwiththeradialreflecto
17、rs.Typical systems FSP19pReactor and ShieldTheshieldconsistsofboron-carbide(B4C)inastainlesssteelcontainerprovidingbothneutronandgammaattenuationAthinnerradialshield,asshowninfigure,mayalsobeneededtoreduceneutronleakagethroughtheregolith.Typical systems FSP20pReference concept mass summarySystemmass
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