ANSI B93.35-1978 液动专用装置的空腔尺寸(英制)

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【英文标准名称】:FluidPowerExclusionDevices(InchSeries),CavityDimensionsfor
【原文标准名称】:液动专用装置的空腔尺寸(英制)
【标准号】:ANSIB93.35-1978
【标准状态】:作废
【国别】:美国
【发布日期】:1978
【实施或试行日期】:
【发布单位】:美国国家标准学会(ANSI)
【起草单位】:ANSI
【标准类型】:()
【标准水平】:()
【中文主题词】:空腔;尺寸;;液压系统;流体技术;流体;液压传动;液压传动系统;
【英文主题词】:Cavity;Dimensions;Exclusion;Fluidsystems;Fluidtechnologies;Fluids;Hydraulicfluidpower;Hydraulictransmissionsystems;Powerdevices
【摘要】:
【中国标准分类号】:J20
【国际标准分类号】:23_100_01
【页数】:
【正文语种】:英语


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【英文标准名称】:StandardTestMethodsforChemical,MassSpectrometric,Spectrochemical,Nuclear,andRadiochemicalAnalysisofUraniumHexafluoride
【原文标准名称】:六氟化铀的化学、质谱、光谱化学、核(放射性)及放射化学分析的标准试验方法
【标准号】:ASTMC761-2004e1
【标准状态】:现行
【国别】:
【发布日期】:2004
【实施或试行日期】:
【发布单位】:美国材料与试验协会(US-ASTM)
【起草单位】:C26.05
【标准类型】:(TestMethod)
【标准水平】:()
【中文主题词】:试验;铀;六氟化物;分析;核能
【英文主题词】:analyticalmethods;massspectrometry;radiochemistry;uraniumhexafluoride
【摘要】:1.1Thesetestmethodscoverproceduresforsubsamplingandforchemical,massspectrometric,spectrochemical,nuclear,andradiochemicalanalysisofuraniumhexafluorideUF6.MostofthesetestmethodsareinroutineusetodetermineconformancetoUF6specificationsintheEnrichmentandConversionFacilities.1.2Theanalyticalproceduresinthisdocumentappearinthefollowingorder:Note18212;SubcommitteeC26.05willconferwithC26.02concerningtherenumberedsectioninTestMethodsC761todeterminehowconcernswithrenumberingthesesections,asanalyticalmethodsarereplacedwithstand-aloneanalyticalmethods,arebestaddressedinsubsequentpublications.SectionsSubsamplingofUraniumHexafluoride7-10GravimetricDeterminationofUranium11-19TitrimetricDeterminationofUranium20PreparationofHigh-PurityU3O821IsotopicAnalysis22IsotopicAnalysisbyDouble-StandardMass-SpectrometerMethod23-29DeterminationofHydrocarbons,Chlorocarbons,andPartiallySubstitutedHalohydrocarbons29-36AtomicAbsorptionDeterminationofAntimony36SpectrophotometricDeterminationofBromine37TitrimetricDeterminationofChlorine38-44DeterminationofSiliconandPhosphorus45-51DeterminationofBoronandSilicon52-59DeterminationofRuthenium60DeterminationofTitaniumandVanadium61SpectrographicDeterminationofMetallicImpurities62DeterminationofTungsten63DeterminationofThoriumandRareEarths64-69DeterminationofMolybdenum70AtomicAbsorptionDeterminationofMetallicImpurities71-76ImpurityDeterminationbySpark-SourceMassSpectrography77DeterminationofBoron-EquivalentNeutronCrossSection78DeterminationofUranium-233AbundancebyThermalIonizationMassSpectrometry79DeterminationofUranium-232byAlphaSpectrometry80-86DeterminationofFissionProductActivity87DeterminationofPlutoniumbyIonExchangeandAlphaCounting88-92DeterminationofPlutoniumbyExtractionandAlphaCounting93-100DeterminationofNeptuniumbyExtractionandAlphaCounting101-108AtomicAbsorptionDeterminationofChromiumSolubleInUraniumHexafluoride109-115AtomicAbsorptionDeterminationofChromiumInsolubleInUraniumHexafluoride116-122DeterminationofTechnetium-99InUraniumHexafluoride123-131MethodfortheDetermiationofGamma-EnergyEmissionRatefromFissionProductsinUraniumHexafluoride132DeterminationofMetallicImpuritiesbyICP-AES133-142DeterminationofMolybdenum,Niobium,Tantalum,Titanium,andTungstenbyICP-AES143-152