ASTM E854-2014e1 6131 Standard Test Method for Application and Analysis of Solid State Track Recorder (SSTR) Monitors for Reactor Surveillance《反应堆监测用固态径迹记录器(SSTR)监测器应用和分析的标准试验方法》.pdf
《ASTM E854-2014e1 6131 Standard Test Method for Application and Analysis of Solid State Track Recorder (SSTR) Monitors for Reactor Surveillance《反应堆监测用固态径迹记录器(SSTR)监测器应用和分析的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM E854-2014e1 6131 Standard Test Method for Application and Analysis of Solid State Track Recorder (SSTR) Monitors for Reactor Surveillance《反应堆监测用固态径迹记录器(SSTR)监测器应用和分析的标准试验方法》.pdf(16页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E854 141Standard Test Method forApplication and Analysis of Solid State Track Recorder(SSTR) Monitors for Reactor Surveillance1This standard is issued under the fixed designation E854; the number immediately following the designation indicates the year oforiginal adoption or, in the cas
2、e of revision, 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.1NOTEThe title of this test method and the Referenced Documents were updated editorially in May 2017.1.
3、 Scope1.1 This test method describes the use of solid-state trackrecorders (SSTRs) for neutron dosimetry in light-water reactor(LWR) applications. These applications extend from lowneutron fluence to high neutron fluence, including high powerpressure vessel surveillance and test reactor irradiations
4、 as wellas low power benchmark field measurement. (1)2This testmethod replaces Method E418. This test method is moredetailed and special attention is given to the use of state-of-the-art manual and automated track counting methods to attainhigh absolute accuracies. In-situ dosimetry in actual highfl
5、uence-high temperature LWR applications is emphasized.1.2 This test method includes SSTR analysis by bothmanual and automated methods. To attain a desired accuracy,the track scanning method selected places limits on theallowable track density. Typically good results are obtained inthe range of 5 to
6、800 000 tracks/cm2and accurate results athigher track densities have been demonstrated for some cases.(2) Track density and other factors place limits on the appli-cability of the SSTR method at high fluences. Special caremust be exerted when measuring neutron fluences (E1MeV)above 1016n/cm2(3).1.3
7、Low fluence and high fluence limitations exist. Theselimitations are discussed in detail in Sections 13 and 14 and inRefs (3-5).1.4 SSTR observations provide time-integrated reactionrates. Therefore, SSTR are truly passive-fluence detectors.They provide permanent records of dosimetry experimentswith
8、out the need for time-dependent corrections, such as decayfactors that arise with radiometric monitors.1.5 Since SSTR provide a spatial record of the time-integrated reaction rate at a microscopic level, they can be usedfor “fine-structure” measurements. For example, spatial distri-butions of isotop
9、ic fission rates can be obtained at very highresolution with SSTR.1.6 This standard does not purport to address the safetyproblems associated with its use. It is the responsibility of theuser of this standard to establish appropriate safety and healthpractices and determine the applicability of regu
10、latory limita-tions prior to use.1.7 This international standard was developed in accor-dance with internationally recognized principles on standard-ization established in the Decision on Principles for theDevelopment of International Standards, Guides and Recom-mendations issued by the World Trade
11、Organization TechnicalBarriers to Trade (TBT) Committee.2. Referenced Documents2.1 ASTM Standards:3E418 Test Method for Fast-Neutron Flux Measurements byTrack-Etch Techniques (Withdrawn 1984)4E844 Guide for Sensor Set Design and Irradiation forReactor Surveillance3. Summary of Test Method3.1 SSTR ar
12、e usually placed in firm surface contact with afissionable nuclide that has been deposited on a pure nonfis-sionable metal substrate (backing). This typical SSTR geom-etry is depicted in Fig. 1. Neutron-induced fission produceslatent fission-fragment tracks in the SSTR. These tracks maybe developed
13、by chemical etching to a size that is observablewith an optical microscope. Microphotographs of etched fis-sion tracks in mica, quartz glass, and natural quartz crystals canbe seen in Fig. 2.3.1.1 While the conventional SSTR geometry depicted inFig. 1 is not mandatory, it does possess distinct advan
14、tages for1This test method is under the jurisdiction ofASTM Committee E10 on NuclearTechnology and Applications and is the direct responsibility of SubcommitteeE10.05 on Nuclear Radiation Metrology.Current edition approved July 1, 2014. Published October 2014. Originallyapproved in 1981. Last previo
15、us edition approved in 2009 as E854 03(2009). DOI:10.1520/E0854-14E01.2The boldface numbers in parentheses refer to the list of references appended tothis test method.3For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual
16、Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.4The last approved version of this historical standard is referenced onwww.astm.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United Sta
17、tesThis international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for theDevelopment of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Tr
18、ade (TBT) Committee.1dosimetry applications. In particular, it provides the highestefficiency and sensitivity while maintaining a fixed and easilyreproducible geometry.3.1.2 The track density (that is, the number of tracks per unitarea) is proportional to the fission density (that is, the numberof f
19、issions per unit area). The fission density is, in turn,proportional to the exposure fluence experienced by the SSTR.The existence of nonuniformity in the fission deposit or thepresence of neutron fluence rate gradients can produce non-uniform track density. Conversely, with fission deposits ofprove
20、n uniformity, gradients of the neutron field can beinvestigated with very high spatial resolution.3.2 The total uncertainty of SSTR fission rates is comprisedof two independent sources. These two error components arisefrom track counting uncertainties and fission-deposit massuncertainties. For work
21、at the highest accuracy levels, fission-deposit mass assay should be performed both before and afterthe SSTR irradiation. In this way, it can be ascertained that nosignificant removal of fission deposit material arose in thecourse of the experiment.4. Significance and Use4.1 The SSTR method provides
22、 for the measurement ofabsolute-fission density per unit mass. Absolute-neutron flu-ence can then be inferred from these SSTR-based absolutefission rate observations if an appropriate neutron spectrumaverage fission cross section is known. This method is highlydiscriminatory against other components
23、 of the in-core radia-tion field. Gamma rays, beta rays, and other lightly ionizingparticles do not produce observable tracks in appropriate LWRSSTR candidate materials. However, photofission can contrib-ute to the observed fission track density and should therefore beaccounted for when nonnegligibl
24、e. For a more detailed discus-sion of photofission effects, see 14.4.4.2 In this test method, SSTR are placed in surface contactwith fissionable deposits and record neutron-induced fissionfragments. By variation of the surface mass density (g/cm2)ofthe fissionable deposit as well as employing the al
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