ASTM E1854-2007 Standard Practice for Ensuring Test Consistency in Neutron-Induced Displacement Damage of Electronic Parts《确保电子部件的中子引起的位移损伤试验一致性的标准实施规程》.pdf
《ASTM E1854-2007 Standard Practice for Ensuring Test Consistency in Neutron-Induced Displacement Damage of Electronic Parts《确保电子部件的中子引起的位移损伤试验一致性的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM E1854-2007 Standard Practice for Ensuring Test Consistency in Neutron-Induced Displacement Damage of Electronic Parts《确保电子部件的中子引起的位移损伤试验一致性的标准实施规程》.pdf(16页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 1854 07Standard Practice forEnsuring Test Consistency in Neutron-InducedDisplacement Damage of Electronic Parts1This standard is issued under the fixed designation E 1854; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revisi
2、on, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice sets forth requirements to ensure consis-tency in neutron-induced displacement damage t
3、esting ofsilicon and gallium arsenide electronic piece parts. This re-quires controls on facility, dosimetry, tester, and communica-tions processes that affect the accuracy and reproducibility ofthese tests. It provides background information on the technicalbasis for the requirements and additional
4、 recommendations onneutron testing. In addition to neutrons, reactors are used toprovide gamma-ray pulses of intensities and durations that arenot achievable elsewhere. This practice also provides back-ground information and recommendations on gamma-ray test-ing of electronics using nuclear reactors
5、.1.2 Methods are presented for ensuring and validatingconsistency in neutron displacement damage testing of elec-tronic parts such as integrated circuits, transistors, and diodes.The issues identified and the controls set forth in this practiceaddress the characterization and suitability of the radi
6、ationenvironments. They generally apply to reactor and 14-MeVneutron sources when used for displacement damage testing,and apply to252Cf testing when this source is used for thisapplication. Facility and environment characteristics that intro-duce complications or problems are identified, and recomm
7、en-dations are offered as to how problems can be recognized andminimized or solved. This practice may be used by facilityusers, test personnel, facility operators, and independent pro-cess validators to determine the suitability of a specificenvironment within a facility and of the testing process a
8、s awhole, with the exception of the electrical measurements,which are addressed in other standards.Additional informationon conducting irradiations can be found in Practices E 798 andF 1190. This practice also may be of use to test sponsors (thatis, organizations that establish test specifications o
9、r otherwisehave a vested interest in the performance of electronics inneutron environments).1.3 Methods for evaluation and control of undesired con-tributors to damage are discussed in this practice, and refer-ences to relevant ASTM standards and technical reports areprovided. Processes and methods
10、used to arrive at the appro-priate test environments and specification levels for electronicssystems are beyond the scope of this practice; however, theprocess for determining the 1-MeV equivalent displacementspecifications from operational environment neutron spectrashould employ the methods and pa
11、rameters described herein.Some important considerations are addressed in Appendix X1through X1.3.1 (Nonmandatory information)1.4 This standard 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 app
12、ro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 The ASTM standards listed below present methods forensuring proper determination of neutron spectra and fluences,gamma-ray doses, and damage in silicon and gallium
13、 arsenidedevices. The proper use of these standards is the responsibilityof the radiation metrology or dosimetry organization that isoften closely affiliated with facility operations. The referenceslisted in each standard are also relevant to all participants asbackground material for testing consis
14、tency.2.2 ASTM Standards:2E 170 Terminology Relating to Radiation Measurementsand DosimetryE 181 Test Methods for Detector Calibration and Analysisof RadionuclidesE 261 Practice for Determining Neutron Fluence, FluenceRate, and Spectra by Radioactivation TechniquesE 262 Test Method for Determining T
15、hermal Neutron Re-action and Fluence Rates by Radioactivation TechniquesE 263 Test Method for Measuring Fast-Neutron ReactionRates by Radioactivation of IronE 264 Test Method for Measuring Fast-Neutron ReactionRates by Radioactivation of NickelE 265 Test Method for Measuring Reaction Rates and1This
16、practice is under the jurisdiction of ASTM Committee E10 on NuclearTechnology and Applications and is the direct responsibility of SubcommitteeE10.07 on Radiation Dosimetry for Radiation Effects on Materials and Devices.Current edition approved June 1, 2007. Published July 2007. Originally approvedi
17、n 1996. Last previous edition approved in 2005 as E 1854 - 05.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website
18、.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.Fast-Neutron Fluences by Radioactivation of Sulfur-32E 393 Test Method for Measuring Reaction Rates byAnaly-sis of Barium-140 From Fission DosimetersE 481 Test Method for Measuring Neu
19、tron Fluence Ratesby Radioactivation of Cobalt and SilverE 482 Guide for Application of Neutron Transport Methodsfor Reactor Vessel Surveillance, E706 (IID)E 523 Test Method for Measuring Fast-Neutron ReactionRates by Radioactivation of CopperE 526 Test Method for Measuring Fast-Neutron ReactionRate
20、s by Radioactivation of TitaniumE 665 Practice for Determining Absorbed Dose VersusDepth in Material Exposed to the X-Ray Output of FlashX-Ray Machines3E 666 Practice for Calculating Absorbed Dose FromGamma or X RadiationE 668 Practice for Application of Thermoluminescence-Dosimetry (TLD) Systems fo
21、r DeterminingAbsorbed Dosein Radiation-Hardness Testing of Electronic DevicesE 704 Test Method for Measuring Reaction Rates by Ra-dioactivation of Uranium-238E 705 Test Method for Measuring Reaction Rates by Ra-dioactivation of Neptunium-237E 720 Guide for Selection and Use of Neutron Sensors forDet
22、ermining Neutron Spectra Employed in Radiation-Hardness Testing of ElectronicsE 721 Guide for Determining Neutron Energy Spectra fromNeutron Sensors for Radiation-Hardness Testing of Elec-tronicsE 722 Practice for Characterizing Neutron Energy FluenceSpectra in Terms of an Equivalent Monoenergetic N
23、eutronFluence for Radiation-Hardness Testing of ElectronicsE 798 Practice for Conducting Irradiations at Accelerator-Based Neutron SourcesE 844 Guide for Sensor Set Design and Irradiation forReactor Surveillance, E 706(IIC)E 944 Guide for Application of Neutron Spectrum Adjust-ment Methods in Reacto
24、r Surveillance, E 706 (IIA)E 1018 Guide for Application of ASTM Evaluated CrossSection Data File, Matrix E 706 (IIB)E 1249 Practice for Minimizing Dosimetry Errors in Radia-tion Hardness Testing of Silicon Electronic Devices UsingCo-60 SourcesE 1250 Test Method for Application of Ionization Cham-ber
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