ASTM C1458-2009e1 Standard Test Method for Nondestructive Assay of Plutonium Tritium and 241Am by Calorimetric Assay《用量热分析进行钚、氚和241Am无损试验的标准试验方法》.pdf
《ASTM C1458-2009e1 Standard Test Method for Nondestructive Assay of Plutonium Tritium and 241Am by Calorimetric Assay《用量热分析进行钚、氚和241Am无损试验的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM C1458-2009e1 Standard Test Method for Nondestructive Assay of Plutonium Tritium and 241Am by Calorimetric Assay《用量热分析进行钚、氚和241Am无损试验的标准试验方法》.pdf(12页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C 1458 091Standard Test Method forNondestructive Assay of Plutonium, Tritium and241Am byCalorimetric Assay1This standard is issued under the fixed designation C 1458; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the
2、 year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1NOTESection 6.2 was corrected editorially in March 2009.1. Scope1.1 This test method describes the nondestructive assay(
3、NDA) of plutonium, tritium, and241Am using heat flowcalorimetry. For plutonium the typical range of applicabilitycorresponds to 1 g to 2000 g quantities while for tritium thetypical range extends from 0.001 g to 10 g. This test methodcan be applied to materials in a wide range of container sizesup t
4、o 50 L. It has been used routinely to assay items whosethermal power ranges from 0.001 W to 135 W.1.2 This test method requires knowledge of the relativeabundances of the plutonium isotopes and the241Am/Pu massratio to determine the total plutonium mass.1.3 This test method provides a direct measure
5、 of tritiumcontent.1.4 This test method provides a measure of241Am either asa single isotope or mixed with plutonium.1.5 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.6 This standard does not purport to address all of thesaf
6、ety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2C 697 Test Methods for Chemical
7、, Mass Spectrometric, andSpectrochemical Analysis of Nuclear-Grade PlutoniumDioxide Powders and PelletsC 1009 Guide for Establishing a Quality Assurance Pro-gram for Analytical Chemistry Laboratories Within theNuclear IndustryC 1030 Test Method for Determination of Plutonium Isoto-pic Composition by
8、 Gamma-Ray SpectrometryC 1592 Guide for Nondestructive Assay MeasurementsC 1673 Terminology of C26.10 Nondestructive AssayMethods2.2 ANSI Standards:3ANSI N15.22 PlutoniumBearing SolidsCalibrationTechniques for Calorimetric AssayANSI N15.54 Radiometric CalorimetersMeasurementControl Program3. Termino
9、logy3.1 Definitions: Terms shall be defined in accordance withC26.10 Terminology C 1673 except for the following:3.1.1 baseline, nthe calorimeter output signal with noheat-generating item in the calorimeter item chamber.3.1.2 basepower, na constant thermal power applied in acalorimeter through an el
10、ectrical resistance heater with noheat-generating item in the item chamber.3.1.3 equilibrium, nthe point at which the temperature ofthe calorimeter measurement cell and the item being measuredstops changing.3.1.4 heat distribution error, nthe bias arising from thelocation of the heat source within t
11、he calorimeter chamber.3.1.5 passive mode, na mode of calorimeter operationwhere no external power is applied to the calorimeter except inthe case of Wheatstone bridge temperature sensors whereelectrical current is needed to excite the bridge circuit.3.1.6 sensitivity, nthe change in calorimeter res
12、ponse perWatt of thermal power (usually in units of micro Volts perWatt) for a heat flow calorimeter.3.1.7 servo control mode, na mode of calorimeter opera-tion where a constant applied thermal power is maintained in acalorimeter measurement chamber through the use of anelectric resistance heater in
13、 a closed loop control system.3.1.8 specific power, nthe rate of energy emission byionizing radiation per unit mass of a radionuclide, suchas241Am or tritium.1This test method is under the jurisdiction ofASTM Committee C26 on NuclearFuel Cycle and is the direct responsibility of Subcommittee C26.10
14、on NonDestructive Assay.Current edition approved Feb. 1, 2009. Published March 2009. Originallyapproved in 2000. Last previous edition approved in 2000 as C 1458 00.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Bo
15、ok of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3Available from American National Standards Institute (ANSI), 25 W. 43rd St.,4th Floor, New York, NY 10036, http:/www.ansi.org.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, We
16、st Conshohocken, PA 19428-2959, United States.3.1.9 thermal diffusivity, nthe ratio of thermal conductiv-ity to the heat capacity. It measures the ability of a material toconduct thermal energy relative to its ability to store thermalenergy.3.1.10 thermal power, nthe rate at which heat is generatedi
17、n a radioactively decaying item.3.1.11 thermal resistance, nratio of the temperature dif-ference at two different surfaces to the heat flux through thesurfaces at equilibrium.3.1.12 thermal time constant, nan exponential decay con-stant describing the rate at which a temperature approaches aconstant
18、 value. An item container combination will havenumerous thermal time constants.3.1.13 thermel, nthe THERMal ELement of the calorim-eter, including the item chamber, and temperature sensor.4. Summary of Test Method4.1 The item is placed in the calorimeter measurementchamber and the heat flow at equil
19、ibrium, that is, the thermalpower, from the item is determined by temperature sensors andassociated electronic equipment.4.2 The thermal power emitted by a test item is directlyrelated to the quantity of radioactive material in it. The powergenerated by ionizing radiation absorbed in the item is mea
20、-sured by the calorimeter.4.3 The mass (m) of Pu, tritium, or241Am is calculated fromthe measured thermal power of an item (Wi) using thefollowing relationship:m 5WiPeff(1)where:Peff= the effective specific power calculated from theisotopic composition of the item (see 11.3.2 fordetails of the calcu
21、lation of Pefffor plutonium).4.3.1 When tritium is the only heat source the measuredthermal power can be directly converted into mass using thespecific power of tritium, Peff= (0.3240 6 0.00045) (SD) W/g(1).44.3.2 For241Am as a single isotope the measured thermalpower can be directly converted into
22、mass using the specificpower of241Am, Peff= (0.1142 6 0.00042) (SD) W/g (seeTable 1).4.3.3 For241Am mixed with plutonium, the241Am mass,MAm, is determined byMAm5 RAmMPu(2)where:RAm= the mass ratio of241Am to Pu, andMPu= the mass of Pu.5. Significance and Use5.1 This test method is the most accurate
23、NDAtechnique forthe assay of many physical forms of Pu. Isotopic measurementsby gamma-ray spectroscopy or destructive analysis techniquesare part of the test method when it is applied to the assay of Pu.5.1.1 Calorimetry has been applied to a wide variety ofPu-bearing solids including metals, alloys
24、, oxides, fluorides,mixed Pu-U oxides, mixed oxide fuel pins, waste, and scrap,for example, ash, ash heels, salts, crucibles, and graphitescarfings) (2,3). This test method has been routinely used atU.S. and European facilities for Pu process measurements andnuclear material accountability for the l
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