ASTM E251-1992(2009) 5625 Standard Test Methods for Performance Characteristics of Metallic Bonded Resistance Strain Gages《金属胶结抗应变仪运行特性的标准试验方法》.pdf
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1、Designation: E 251 92 (Reapproved 2009)Standard Test Methods forPerformance Characteristics of Metallic Bonded ResistanceStrain Gauges1This standard is issued under the fixed designation E 251; the number immediately following the designation indicates the year oforiginal adoption or, in the case of
2、 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.This standard has been approved for use by agencies of the Department of Defense.INTRODUCTIONThe Organizati
3、on of International Legal Metrology is a treaty organization with approximately 75member nations. In 1984, OIML issued International Recommendation No. 62, 8PerformanceCharacteristics of Metallic Resistance Strain Gauges. Test Methods E 251 has been modified andexpanded to be the United States of Am
4、ericas compliant test specification. Throughout this standardthe terms “strain gauge” and “gauge” are to be understood to represent the longer, but more accurate,“metallic bonded resistance strain gauges.”1. Scope1.1 The purpose of this standard is to provide uniform testmethods for the determinatio
5、n of strain gauge performancecharacteristics. Suggested testing equipment designs are in-cluded.1.2 Test Methods E 251 describes methods and proceduresfor determining five strain gauge parameters:SectionPart IGeneral Requirements 7Part IIResistance at a Reference Temperature 8Part IIIGauge Factor at
6、 a Reference Temperature 9Part IVTemperature Coefficient of Gauge Factor 10Part VTransverse Sensitivity 11Part VIThermal Output 121.3 Strain gauges are very sensitive devices with essentiallyinfinite resolution. Their response to strain, however, is lowand great care must be exercised in their use.
7、The performancecharacteristics identified by these test methods must be knownto an acceptable accuracy to obtain meaningful results in fieldapplications.1.3.1 Strain gauge resistance is used to balance instrumen-tation circuits and to provide a reference value for measure-ments since all data are re
8、lated to a change in the gaugeresistance from a known reference value.1.3.2 Gauge factor is the transfer function of a strain gauge.It relates resistance change in the gauge and strain to which itis subjected. Accuracy of strain gauge data can be no betterthan the precision of the gauge factor.1.3.3
9、 Changes in gauge factor as temperature varies alsoaffect accuracy although to a much lesser degree since varia-tions are usually small.1.3.4 Transverse sensitivity is a measure of the straingauges response to strains perpendicular to its measurementaxis. Although transverse sensitivity is usually m
10、uch less than10 % of the gauge factor, large errors can occur if the value isnot known with reasonable precision.1.3.5 Thermal output is the response of a strain gauge totemperature changes. Thermal output is an additive (notmultiplicative) error. Therefore, it can often be much largerthan the gauge
11、 output from structural loading. To correct forthese effects, thermal output must be determined from gaugesbonded to specimens of the same material on which the testsare to run; often to the test structure itself.1.4 Bonded resistance strain gauges differ from extensom-eters in that they measure ave
12、rage unit elongation (DL/L) overa nominal gauge length rather than total elongation betweendefinite gauge points. Practice E83is not applicable to thesegauges.1.5 These test methods do not apply to transducers, such asload cells and extensometers, that use bonded resistance straingauges as sensing e
13、lements.1.6 Strain gauges are part of a complex system that includesstructure, adhesive, gauge, leadwires, instrumentation, and(often) environmental protection. As a result, many thingsaffect the performance of strain gauges, including user tech-nique. A further complication is that strain gauges on
14、ce1These test methods are under the jurisdiction of ASTM Committee E28 onMechanical Testing and are the direct responsibility of Subcommittee E28.01 onCalibration of Mechanical Testing Machines and Apparatus.Current edition approved April 1, 2009. Published September 2009. Originallyapproved in 1964
15、. Last previous edition approved in 2003 as E 251 92 (2003).1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.installed normally cannot be reinstalled in another location.Therefore, gauge characteristics can be stated only on astatisti
16、cal basis.1.7 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 appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Re
17、ferenced Documents2.1 ASTM Standards:2E83 Practice for Verification and Classification of Exten-someter SystemsE 228 Test Method for Linear Thermal Expansion of SolidMaterials With a Push-Rod DilatometerE 289 Test Method for Linear Thermal Expansion of RigidSolids with InterferometryE 1237 Guide for
18、 Installing Bonded Resistance StrainGages2.2 OIML International Recommendation No. 62:8 Perfor-mance Characteristics of Metallic Resistance Strain Gauges3. Terminology3.1 Definitions of Terms Specific to This Standard:3.1.1 The vocabulary included herein has been chosen sothat specialized terms in t
19、he strain gauge field will be clearlydefined. A typical strain gauge nomenclature is provided inAppendix X1.3.1.1.1 batcha group of strain gauges of the same typeand lot, manufactured as a set (made at the same time andunder the same conditions).3.1.1.2 calibration apparatusequipment for determining
20、a characteristic of a bonded resistance strain gauge by accu-rately producing the necessary strains, temperatures, and otherconditions; and, by accurately measuring the resulting changeof gauge resistance.3.1.1.3 error-strain gaugethe value obtained by subtract-ing the actual value of the strain, de
21、termined from thecalibration apparatus, from the indicated value of the straingiven by the strain gauge output. Errors attributable to mea-suring systems are excluded.3.1.1.4 gauge factorthe ratio between the unit change instrain gauge resistance due to strain and the causing strain. Thegauge factor
22、 is dimensionless and is expressed as follows:K 5R 2 RoRo/L 2 LoLo5DRRo/ (1)where:K = the gauge factor,R = the strain gauge resistance at test strain,Ro= the strain gauge resistance at zero or reference strain,L = the test structure length under the strain gauge at teststrain,Lo= the test structure
23、length under the strain gauge atzero or reference strain,DR = the change in strain gauge resistance when strain ischanged from zero (or reference strain to test strain), = the mechanical strain L 2 Lo /Lo.3.1.1.5 gauge length (see Fig. 1)the length of the strainsensitive section of a strain gauge in
24、 the measurement axisdirection. An approximation of this length is the distancebetween the inside of the strain gauge end loops. Since the truegauge length is not known, gauge length may be measured byother geometries (such as the outside of the end loops)providing that the deviation is defined.3.1.
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