ASTM E1949-2003(2009) Standard Test Method for Ambient Temperature Fatigue Life of Metallic Bonded Resistance Strain Gages《金属粘合抗应变仪的环境温度疲劳寿命的标准试验方法》.pdf
《ASTM E1949-2003(2009) Standard Test Method for Ambient Temperature Fatigue Life of Metallic Bonded Resistance Strain Gages《金属粘合抗应变仪的环境温度疲劳寿命的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM E1949-2003(2009) Standard Test Method for Ambient Temperature Fatigue Life of Metallic Bonded Resistance Strain Gages《金属粘合抗应变仪的环境温度疲劳寿命的标准试验方法》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 1949 03 (Reapproved 2009)Standard Test Method forAmbient Temperature Fatigue Life of Metallic BondedResistance Strain Gages1This standard is issued under the fixed designation E 1949; 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. Scope1.1 This test method covers a uniform procedure for thedetermination of strain gage fatigue li
3、fe at ambient tempera-ture. A suggested testing equipment design is included.1.2 This test method does not apply to force transducers orextensometers that use bonded resistance strain gages assensing elements.1.3 Strain gages are part of a complex system that includesstructure, adhesive, gage, leadw
4、ires, instrumentation, and (of-ten) environmental protection. As a result, many things affectthe performance of strain gages, including user technique. Afurther complication is that strain gages, once installed, nor-mally cannot be reinstalled in another location. Therefore, it isnot possible to cal
5、ibrate individual strain gages; performancecharacteristics are normally presented on a statistical basis.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 appro-priate safety and
6、 health practices and determine the applica-bility of regulatory limitations prior to its use.2. Referenced Documents2.1 ASTM Standards:2E 1237 Guide for Installing Bonded Resistance StrainGages3. Terminology3.1 strain gage fatigue life, nthe number of fully reversedstrain cycles corresponding to th
7、e onset of degraded gageperformance, whether due to excessive zero shift or otherdetectable failure mode (see Section 9.6).4. Significance and Use4.1 Strain gages are the most widely used devices formeasuring strains and for evaluating stresses in structures. Inmany applications there are often cycl
8、ic loads which can causestrain gage failure. Performance parameters of strain gages areaffected by both the materials from which they are made andtheir geometric design.4.2 The determination of most strain gage parameters re-quires mechanical testing that is destructive. Since gages testedfor fatigu
9、e life cannot be used again, it is necessary to treat datastatistically. In general, longer and wider gages with lowerresistances will have greater fatigue life. Optional additions togages (integral leads are an example) will often reduce fatiguelife.4.3 To be used, strain gages must be bonded to a
10、structure.Good results, particularly in a fatigue environment, dependheavily on the materials used to clean the bonding surface, tobond the gage, and to provide a protective coating. Skill of theinstaller is another major factor in success. Finally, instrumen-tation systems must be carefully selecte
11、d and calibrated toensure that they do not unduly degrade the performance of thegages.4.4 This test method encompasses only fully reversed straincycles.4.5 Fatigue failure of a strain gage may not involve visiblecracking or fracture of the gage, but merely sufficient zero shiftto compromise the accu
12、racy of the gage output for static straincomponents.5. Interferences5.1 In order to ensure that strain gage test data are within adefined accuracy, the gages must be properly bonded andprotected with acceptable materials. Aids in the strain gageinstallation and verification thereof can be found in G
13、uideE 1237. It is important to note that good performance in cyclicapplications requires the best installations possible.6. Hazards6.1 WarningIn the specimen surface cleaning, gage bond-ing, and protection steps of strain gage installations, hazardouschemicals are often employed. Users of these test
14、 methods areresponsible for contacting manufactures of such chemicals forapplicable Material Safety Data Sheets, and to adhere to therequired precautions.1This test method is under the jurisdiction of ASTM Committee E28 onMechanical Testing and is the direct responsibility of Subcommittee E28.01 onC
15、alibration of Mechanical Testing Machines and Apparatus.Current edition approved April 1, 2009. Published September 2009. Originallyapproved in 1998. Last previous edition approved in 2003 as E 1949 03.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Serv
16、ice at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.7. Apparatus7.1 Test Measurement Requirement
17、s:7.1.1 For fatigue life determination the uncertainty of therelative resistance change measurement shall not exceed 65V/V or 60.1 % of the actual value, whichever is greater.7.1.2 Several methods are available for measuring thechange of gage resistance with sufficient resolution and accu-racy. In g
18、eneral, any method that is convenient may be usedafter it has been shown that the particular combination ofinstruments or components used produces a system with therequired accuracy.7.1.3 Many types of instruments are available for obtainingstrain data directly from a resistance strain gage. Thesein
19、struments use various types of excitation and read-outsystems. Such indicators may be used only after their resolu-tion, accuracy, and stability have been verified by connecting aresistor that can be varied in accurately known increments inplace of the gage and calibrating the strain indicator over
20、theentire range for which it will be used. The calibrating resistorsteps shall be accurate to 0.1 % of the resistance change or 2ppm of the total resistance, whichever is greater. Effects fromthe following influences on measurement accuracy must bequantified and found within limits that preserve the
21、 requiredoverall system accuracy: thermal emfs within the bridge circuitand within the gage leadwire, reactive changes within thebridge and lead circuits, initial bridge unbalance, and batteryconditions or power line fluctuations.7.2 Mechanical Equipment Requirements:7.2.1 A suggested cantilever tes
22、t beam is shown in Fig. 1.The beam must have a fatigue life exceeding that of the straingages to be tested. One material which meets this requirementis 3Ms3Aerospace FP 525, which is a unidirectional glass-reinforced epoxy composite material, with all fibers alignedwith the long axis of the beam. Su
23、rface spalling of metallic testbeams and crazing of plastic specimens are examples of beamfailures that will produce faulty, misleadingly low, strain gagefatigue life.7.2.1.1 Beam specimens must be cut such that the glassfibers are aligned with the long dimension of the specimen. Acantilever specime
24、n is recommended for this testing because itprovides a range of strain levels in a single test. (A conse-quence is that the specimens strain level near the clamp is veryhigh. Normal structural materials will not survive such highlevels and may fail in ways that imply strain gage failure whensuch is
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