ASTM E2001-2013 Standard Guide for Resonant Ultrasound Spectroscopy for Defect Detection in Both Metallic and Non-metallic Parts《金属和非金属零件缺陷检测用共振超声谱法的标准指南》.pdf
《ASTM E2001-2013 Standard Guide for Resonant Ultrasound Spectroscopy for Defect Detection in Both Metallic and Non-metallic Parts《金属和非金属零件缺陷检测用共振超声谱法的标准指南》.pdf》由会员分享,可在线阅读,更多相关《ASTM E2001-2013 Standard Guide for Resonant Ultrasound Spectroscopy for Defect Detection in Both Metallic and Non-metallic Parts《金属和非金属零件缺陷检测用共振超声谱法的标准指南》.pdf(8页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E2001 08E2001 13Standard Guide forResonant Ultrasound Spectroscopy for Defect Detection inBoth Metallic and Non-metallic Parts1This standard is issued under the fixed designation E2001; the number immediately following the designation indicates the year oforiginal adoption or, in the ca
2、se 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.1. Scope Scope*1.1 This guide describes a procedure for detecting defects in metallic and non-metallic
3、 parts using the resonant ultrasoundspectroscopy method. The procedure is intended for use with instruments capable of exciting and recording whole body resonantstates within parts which exhibit acoustical or ultrasonic ringing. It is used to distinguish acceptable parts from those containingdefects
4、, such as cracks, voids, chips, density defects, tempering changes, and dimensional variations that are closely correlated withthe parts mechanical system dynamic response.1.2 The values stated in SI units are to be regarded as standard. No other units of measurement are included in this standard.1.
5、3 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate safety and health practices and determine the applicability of regulatorylimitations prior to use.2. Referenced Docum
6、ents2.1 ASTM Standards:2E1316 Terminology for Nondestructive ExaminationsE1876 Test Method for Dynamic Youngs Modulus, Shear Modulus, and Poissons Ratio by Impulse Excitation of VibrationE2534 Practice for Process Compensated Resonance Testing Via Swept Sine Input for Metallic and Non-Metallic Parts
7、3. Terminology3.1 DefinitionsThe definitions of terms relating to conventional ultrasonics can be found in Terminology E1316.3.2 Definitions of Terms Specific to This Standard:3.2.1 resonant ultrasonic spectroscopy (RUS), na nondestructive examination method, which employs resonant ultrasoundmethodo
8、logy for the detection and assessment of variations and mechanical properties of a test object. In this procedure, wherebya rigid part is caused to resonate, the resonances are compared to a previously defined resonance pattern. Based on this comparisonthe part is judged to be either acceptable or u
9、nacceptable.3.2.2 swept sine method, nthe use of an excitation source to create a transient vibration in a test object over a range offrequencies. Specifically, the input frequency is swept over a range of frequencies and the output is characterized by a resonantamplitude response spectrum.3.2.3 imp
10、ulse excitation method, nstriking an object with a mechanical impact, or electromagnetic field (laser and/or EMAT)causing multiple resonances to be simultaneously stimulated.3.2.4 resonant inspection (RI), nany induced resonant nondestructive examination method employing an excitation force tocreate
11、 mechanical resonances for the purpose of identifying a test objects conformity to an established acceptable pattern.4. Summary of the Technology (1)34.1 Introduction:1 This guide is under the jurisdiction of ASTM Committee E07 on Nondestructive Testing and is the direct responsibility of Subcommitt
12、ee E07.06 on Ultrasonic Method.Current edition approved July 1, 2008Dec. 1, 2013. Published July 2008January 2014. Originally approved in 1998. Last previous edition approved in 20032008 asE2001 - 98E2001 - 08.(2003). DOI: 10.1520/E2001-08.10.1520/E2001-13.2 For referencedASTM standards, visit theAS
13、TM website, www.astm.org, or contactASTM Customer Service at serviceastm.org. For Annual Book of ASTM Standardsvolume information, refer to the standards Document Summary page on the ASTM website.3 The boldface numbers in parentheses refer to the list of references at the end of this guide.This docu
14、ment is not an ASTM standard and is intended only to provide the user of an ASTM standard an indication of what changes have been made to the previous version. Becauseit may not be technically possible to adequately depict all changes accurately, ASTM recommends that users consult prior editions as
15、appropriate. In all cases only the current versionof the standard as published by ASTM is to be considered the official document.*A Summary of Changes section appears at the end of this standardCopyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United
16、 States14.1.1 In addition to its basic research applications in physics, materials science, and geophysics, Resonant UltrasoundSpectroscopy (RUS) has been used successfully as an applied nondestructive testing tool. Resonant ultrasound spectroscopy incommercial, nondestructive testing has a few reco
17、gnizable names including, RUS Nondestructive Testing, Acoustic ResonanceSpectroscopy (ARS), and Resonant Inspection. Early references to this body of science often are termed the “swept sine method.”It was not until 1990 (2) that the name Resonant Ultrasound Spectroscopy appeared, but the two techni
18、ques are synonymous.Additionally, impulse methods, like the striking of a rail car wheel with a hammer, and listening for the responses, have been usedfor over 100 years to detect the existence of large cracks. RUS based techniques are becoming commonly used in the manufactureof steel, ceramic, and
19、sintered metal parts. In these situations, a part is vibrated mechanically, and defects are detected based onchanges in the pattern of resonances or variations from theoretically calculated or empirically acceptable spectra. RUS measuresall resonances, in a defined range, of the part rather than sca
20、nning for individual defects. In a single measurement, RUS-basedtechniques potentially can test for numerous defects including cracks, chips, cold shuts, inclusions, voids, oxides, contaminants,missed processes or operations, and variations in dimension, hardness, porosity, nodularity, density, and
21、heat treatment. Since theRUS measurement yields a whole body response, it is often difficult to discriminate between defect types. The technique iseffective for detecting parts with structural anomalies, but less effective for diagnosing the exact location or cause of an anomalywithin a part. Nevert
22、heless, on certain types of parts, it can be accurate, fast, inexpensive and require no human judgment, making100 % examination possible in selected circumstances. Many theoretical texts (3) discuss the relationship between resonances andelastic constants and include the specific application of RUS
23、to the determination of elastic constants (4). The technology receiveda quantum increase in attention when Migliori published a review article, including the requisite inexpensive electronic designsand procedures from which materials properties could be measured quickly and accurately (5). The most
24、recent applicationsinclude studies in ultrasonic attenuation, modulus determinations, thermodynamic properties, structural phase transitions,superconducting transitions, magnetic transitions, and the electronic properties of solids.Acompendium of these applications maybe found in the Migliori (1) te
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