ASTM E521-1996(2009)e2 1295 Standard Practice for Neutron Radiation Damage Simulation by Charged-Particle Irradiation《用带电粒子照射法模拟中子辐射损害的标准实施规程》.pdf
《ASTM E521-1996(2009)e2 1295 Standard Practice for Neutron Radiation Damage Simulation by Charged-Particle Irradiation《用带电粒子照射法模拟中子辐射损害的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM E521-1996(2009)e2 1295 Standard Practice for Neutron Radiation Damage Simulation by Charged-Particle Irradiation《用带电粒子照射法模拟中子辐射损害的标准实施规程》.pdf(20页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E521 96 (Reapproved 2009)2Standard Practice forNeutron Radiation Damage Simulation by Charged-ParticleIrradiation1This standard is issued under the fixed designation E521; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision
2、, the 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.1NOTEEditorial corrections were made in Section 14 in November 2012.2NOTEEditorial corrections were made in 13.1 and
3、 14.4.1.1 in October 2015.INTRODUCTIONThis practice is intended to provide the nuclear research community with recommended proceduresfor the simulation of neutron radiation damage by charged-particle irradiation. It recognizes thediversity of energetic-ion producing devices, the complexities in expe
4、rimental procedures, and thedifficulties in correlating the experimental results with those produced by reactor neutron irradiation.Such results may be used to estimate density changes and the changes in microstructure that wouldbe caused by neutron irradiation. The information can also be useful in
5、 elucidating fundamentalmechanisms of radiation damage in reactor materials.1. Scope1.1 This practice provides guidance on performing charged-particle irradiations of metals and alloys. It is generallyconfined to studies of microstructural and microchemicalchanges carried out with ions of low-penetr
6、ating power thatcome to rest in the specimen. Density changes can be measureddirectly and changes in other properties can be inferred. Thisinformation can be used to estimate similar changes that wouldresult from neutron irradiation. More generally, this informa-tion is of value in deducing the fund
7、amental mechanisms ofradiation damage for a wide range of materials and irradiationconditions.1.2 The word simulation is used here in a broad sense toimply an approximation of the relevant neutron irradiationenvironment. The degree of conformity can range from poor tonearly exact. The intent is to p
8、roduce a correspondencebetween one or more aspects of the neutron and chargedparticle irradiations such that fundamental relationships areestablished between irradiation or material parameters and thematerial response.1.3 The practice appears as follows:SectionApparatus 4Specimen Preparation 510Irra
9、diation Techniques (including Helium Injection) 1112Damage Calculations 13Postirradiation Examination 1416Reporting of Results 17Correlation and Interpretation 18221.4 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.5 This sta
10、ndard does not purport to address all of thesafety 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
11、ASTM Standards:2C859 Terminology Relating to Nuclear MaterialsE170 Terminology Relating to Radiation Measurements andDosimetryE821 Practice for Measurement of Mechanical PropertiesDuring Charged-Particle IrradiationE910 Test Method for Application and Analysis of HeliumAccumulation Fluence Monitors
12、for Reactor VesselSurveillance, E706 (IIIC)1This practice is under the jurisdiction of ASTM Committee E10 on NuclearTechnology and Applicationsand is the direct responsibility of SubcommitteeE10.08 on Procedures for Neutron Radiation Damage Simulation.Current edition approved Aug. 1, 2009. Published
13、 September 2009. Originallyapproved in 1976. Last previous edition approved in 2003 as E521 96 (2003)1.DOI: 10.1520/E0521-96R09E02.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume informa
14、tion, refer to the standards Document Summary page onthe ASTM website.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1E942 Guide for Simulation of Helium Effects in IrradiatedMetals3. Terminology3.1 Definitions of Terms Specific to Th
15、is Standard:3.1.1 Descriptions of relevant terms are found in Terminol-ogy C859 and Terminology E170.3.2 Definitions:3.2.1 damage energy, nthat portion of the energy lost byan ion moving through a solid that is transferred as kineticenergy to atoms of the medium; strictly speaking, the energytransfe
16、r in a single encounter must exceed the energy requiredto displace an atom from its lattice cite.3.2.2 displacement, nthe process of dislodging an atomfrom its normal site in the lattice.3.2.3 path length, nthe total length of path measuredalong the actual path of the particle.3.2.4 penetration dept
17、h, na projection of the range alongthe normal to the entry face of the target.3.2.5 projected range, nthe projection of the range alongthe direction of the incidence ion prior to entering the target.3.2.6 range, nthe distance from the point of entry at thesurface of the target to the point at which
18、the particle comes torest.3.2.7 stopping power (or stopping cross section), ntheenergy lost per unit path length due to a particular process;usually expressed in differential form as dE/dx.3.2.8 straggling, nthe statistical fluctuation due to atomicor electronic scattering of some quantity such as p
19、article rangeor particle energy at a given depth.3.3 Symbols:3.3.1 A1,Z1the atomic weight and the number of thebombarding ion.A2,Z2the atomic weight and number of the atoms of themedium undergoing irradiation.depadamage energy per atom; a unit of radiation expo-sure. It can be expressed as the produ
20、ct of deand the fluence.dpadisplacements per atom; a unit of radiation exposuregiving the mean number of times an atom is displaced from itslattice site. It can be expressed as the product of dand thefluence.heavy ionused here to denote an ion of mass 4.light ionan arbitrary designation used here fo
21、r conve-nience to denote an ion of mass 4.Tdan effective value of the energy required to displace anatom from its lattice site.d(E)an energy-dependent displacement cross section; ddenotes a spectrum-averaged value. Usual unit is barns.de(E)an energy-dependent damage energy cross section;dedenotes a
22、spectrum-averaged value. Usual unit is barns-eVor barns-keV.4. Significance and Use4.1 A characteristic advantage of charged-particle irradia-tion experiments is precise, individual, control over most of theimportant irradiation conditions such as dose, dose rate,temperature, and quantity of gases p
23、resent. Additional attri-butes are the lack of induced radioactivation of specimens and,in general, a substantial compression of irradiation time, fromyears to hours, to achieve comparable damage as measured indisplacements per atom (dpa). An important application ofsuch experiments is the investiga
24、tion of radiation effects innot-yet-existing environments, such as fusion reactors.4.2 The primary shortcoming of ion bombardments stemsfrom the damage rate, or temperature dependences of themicrostructural evolutionary processes in complex alloys, orboth. It cannot be assumed that the time scale fo
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