ASTM C 996 : 2020
Superseded
A superseded Standard is one, which is fully replaced by another Standard, which is a new edition of the same Standard.
View Superseded by
Standard Specification for Uranium Hexafluoride Enriched to Less Than 5 % 235U
English
03-01-2020
04-16-2020
| Committee |
C 26
|
| DocumentType |
Standard
|
| Pages |
4
|
| ProductNote |
This standard is also refers to 10 CFR 50,DP-532,ORO-671-1,TID-7016.
|
| PublisherName |
American Society for Testing and Materials
|
| Status |
Superseded
|
| SupersededBy | |
| Supersedes |
1.1This specification covers nuclear grade uranium hexafluoride (UF6) that either has been processed through an enrichment plant or has been produced by the blending of Highly Enriched Uranium with other uranium to obtain uranium of any 235U concentration below 5 % and that is intended for fuel fabrication. The objectives of this specification are twofold: (1) to define the impurity and uranium isotope limits for Enriched Commercial Grade UF6 so that, with respect to fuel design and manufacture, it is essentially equivalent to enriched uranium made from natural UF6, and (2) to define limits for Enriched Reprocessed UF6 to be expected if Reprocessed UF6 is to be enriched without dilution with Commercial Natural UF6. For such UF6, special provisions, not defined herein, may be needed to ensure fuel performance and to protect the work force, process equipment, and the environment.
1.2This specification is intended to provide the nuclear industry with a standard for enriched UF6 that is to be used in the production of sinterable UO2 powder for fuel fabrication. In addition to this specification, the parties concerned may agree to other appropriate conditions.
1.3The scope of this specification does not comprehensively cover all provisions for preventing criticality accidents or requirements for health and safety or for shipping. Observance of this specification does not relieve the user of the obligation to conform to all applicable international, federal, state, and local regulations for processing, shipping, or in any other way using UF6 (see, for example, TID-7016, DP-532, and DOE O474.1).
1.4The values stated in SI units are to be regarded as standard. The values given in parentheses after SI units are provided for information only and are not considered standard.
1.5This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
| ASTM C 1561 : 2024 | Standard Guide for Determination of Plutonium and Neptunium in Uranium Hexafluoride and U-Rich Matrix by Alpha Spectrometry |
| ASTM C 1832 : 2023 | Standard Test Method for Determination of Uranium Isotopic Composition by Modified Total Evaporation (MTE) Method Using Thermal Ionization Mass Spectrometer |
| ASTM C 1477 : 2019 | Standard Test Method for Isotopic Abundance Analysis of Uranium Hexafluoride and Uranyl Nitrate Solutions by Multi-Collector, Inductively Coupled Plasma-Mass Spectrometry |
| ASTM C 1295 : 2024 | Standard Test Method for Gamma Energy Emission from Fission and Decay Products in Uranium Hexafluoride and Uranyl Nitrate Solution |
| ASTM C 1636 : 2022 | Standard Guide for Determination of Uranium-232 in Uranium Hexafluoride |
| ASTM C 1880 : 2019 | Standard Practice for Sampling Gaseous Uranium Hexafluoride using Alumina Pellets |
| ASTM C 1672 : 2023 | Standard Test Method for Determination of the Uranium, Plutonium or Americium Isotopic Composition or Concentration by the Total Evaporation Method Using a Thermal Ionization Mass Spectrometer |
| ASTM C 1429 : 2021 | Standard Test Method for Isotopic Analysis of Uranium Hexafluoride by Double-Standard Multi-Collector Gas Mass Spectrometer |
| ASTM C 1913 : 2021 | Standard Practice for Sampling Gaseous Uranium Hexafluoride Using Zeolite in Single-Use Destructive Assay Sampler |
| ASTM C 776 : 2017 : R2022 | Standard Specification for Sintered Uranium Dioxide Pellets for Light Water Reactors |
| ASTM C 1428 : 2018 : R2023 | Standard Test Method for Isotopic Analysis of Uranium Hexafluoride by Single–Standard Gas Source Multiple Collector Mass Spectrometer Method |
| ASTM C 1052 : 2020 | Standard Practice for Bulk Sampling of Liquid Uranium Hexafluoride |
| ASTM C 1413 : 2018 | Standard Test Method for Isotopic Analysis of Hydrolyzed Uranium Hexafluoride and Uranyl Nitrate Solutions by Thermal Ionization Mass Spectrometry |
| ASTM C 1689 : 2021 | Standard Practice for Subsampling of Uranium Hexafluoride |
| ASTM C 1842 : 2024 | Standard Test Method for The Analysis of Boron and Silicon in Uranium Hexfluoride via Fourier-Transform Infrared (FTIR) Spectroscopy |
| ASTM C 1346 : 2019 | Standard Practice for Dissolution of UF<inf>6</inf> from P-10 Tubes |
| ASTM C 1462 : 2021 | Standard Specification for Uranium Metal Enriched to Less Than 20 % <sup> 235</sup >U |
| ASTM C 1838 : 2016 : R2021 | Standard Practice for Cleaning for 1S and 2S Bottles |
| ASTM C 788 : 2003 : R2021 | Standard Specification for Nuclear-Grade Uranyl Nitrate Solution or Crystals |
| ASTM C 922 : 2021 | Standard Specification for Sintered Gadolinium Oxide-Uranium Dioxide Pellets for Light Water Reactors |
| ASTM C 1647 : 2020 | Standard Practice for Removal of Uranium or Plutonium, or both, for Impurity Assay in Uranium or Plutonium Materials |
| ASTM C 753 : 2016 : REV A : R2021 | Standard Specification for Nuclear-Grade, Sinterable Uranium Dioxide Powder |
| ASTM C 1771 : 2019 | Standard Test Method for Determination of Boron, Silicon, and Technetium in Hydrolyzed Uranium Hexafluoride by Inductively Coupled Plasma—Mass Spectrometer After Removal of Uranium by Solid Phase Extraction |
| ASTM C 1287 : 2018 | Standard Test Method for Determination of Impurities in Nuclear Grade Uranium Compounds by Inductively Coupled Plasma Mass Spectrometry |
| ASTM C 1334 : 2005 : R2022 | Standard Specification for Uranium Oxides with a <sup>235</sup>U Content of Less Than 5 % for Dissolution Prior to Conversion to Nuclear-Grade Uranium Dioxide |
| ASTM C 1871 : 2022 | Standard Test Method for Determination of Uranium Isotopic Composition by the Double Spike Method Using a Thermal Ionization Mass Spectrometer |
| ASTM C 859 : 2023 | Standard Terminology Relating to Nuclear Materials |
| ASTM E 29 : 2013 : R2019 | Standard Practice for Using Significant Digits in Test Data to Determine Conformance with Specifications |
| ASTM C 761 : 2018 | Standard Test Methods for Chemical, Mass Spectrometric, Spectrochemical, Nuclear, and Radiochemical Analysis of Uranium Hexafluoride |
| ASTM C 859 : 2014 : REV B | Standard Terminology Relating to Nuclear Materials |
| ASTM C 859 : 2024 | Standard Terminology Relating to Nuclear Materials |
| ASTM E 29 : 2002 | Standard Practice for Using Significant Digits in Test Data to Determine Conformance with Specifications |
| ASTM C 761 : 2024 | Standard Test Methods for Chemical, Mass Spectrometric, Spectrochemical, Nuclear, and Radiochemical Analysis of Uranium Hexafluoride |
| ASTM C 1052 : 1996 | Standard Practice for Bulk Sampling of Liquid Uranium Hexafluoride |
| ASTM C 859 : 2022 | Standard Terminology Relating to Nuclear Materials |
| ASTM C 859 : 2022 : REV A | Standard Terminology Relating to Nuclear Materials |
| ASTM E 29 : 2022 | Standard Practice for Using Significant Digits in Test Data to Determine Conformance with Specifications |
Access your standards online with a subscription
-
Simple online access to standards, technical information and regulations.
-
Critical updates of standards and customisable alerts and notifications.
-
Multi-user online standards collection: secure, flexible and cost effective.