ASTM E1942-1998(2018)e1 Standard Guide for Evaluating Data Acquisition Systems Used in Cyclic Fatigue and Fracture Mechanics Testing.pdf
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1、Designation: E1942 98 (Reapproved 2018)1Standard Guide forEvaluating Data Acquisition Systems Used in Cyclic Fatigueand Fracture Mechanics Testing1This standard is issued under the fixed designation E1942; the number immediately following the designation indicates the year oforiginal adoption or, in
2、 the case 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.1NOTESections 3.1.3, A1.2.2.1, A1.2.3, and A1.2.4 were editorially corrected in August 2018.1.
3、Scope1.1 This guide covers how to understand and minimize theerrors associated with data acquisition in fatigue and fracturemechanics testing equipment. This guide is not intended to beused instead of certified traceable calibration or verification ofdata acquisition systems when such certification
4、is required. Itdoes not cover static load verification, for which the user isreferred to the current revision of Practices E4, or staticextensometer verification, for which the user is referred to thecurrent revision of Practice E83. The user is also referred toPractice E467.1.2 The output of the fa
5、tigue and fracture mechanics dataacquisition systems described in this guide is essentially astream of digital data. Such digital data may be considered tobe divided into two types Basic Data, which are a sequence ofdigital samples of an equivalent analog waveform representingthe output of transduce
6、rs connected to the specimen under test,and Derived Data, which are digital values obtained from theBasic Data by application of appropriate computational algo-rithms. The purpose of this guide is to provide methods thatgive confidence that such Basic and Derived Data describe theproperties of the m
7、aterial adequately. It does this by settingminimum or maximum targets for key system parameters,suggesting how to measure these parameters if their actualvalues are not known.1.3 This international standard was developed in accor-dance with internationally recognized principles on standard-ization e
8、stablished in the Decision on Principles for theDevelopment of International Standards, Guides and Recom-mendations issued by the World Trade Organization TechnicalBarriers to Trade (TBT) Committee.2. Referenced Documents2.1 ASTM Standards:2E4 Practices for Force Verification of Testing MachinesE83
9、Practice for Verification and Classification of Exten-someter SystemsE467 Practice for Verification of Constant Amplitude Dy-namic Forces in an Axial Fatigue Testing SystemE1823 Terminology Relating to Fatigue and Fracture Testing3. Terminology3.1 Definitions:3.1.1 bandwidth T1the frequency at which
10、 the amplituderesponse of the channel has fallen to 1/=2 of its value at lowfrequency.3.1.1.1 DiscussionThis definition assumes the sensorchannel response is low-pass, as in most materials testing. Anillustration of bandwidth is shown in Fig. 1.3.1.2 Basic Data samplethe sampled value of a sensorwav
11、eform taken at fixed time intervals. Each sample representsthe actual sensor value at that instant of time.3.1.2.1 DiscussionFig. 2 shows examples of Basic Datasamples.3.1.3 data rate T1the data rate is1td Hertz where thetime intervals between samples is1td in seconds.3.1.3.1 DiscussionThe data rate
12、 is the number of datasamples per second made available to the user, assuming therate is constant.3.1.4 derived datadata obtained through processing of theraw data.3.1.4.1 DiscussionFig. 2 illustrates examples of DerivedData.3.1.5 noise levelthe standard deviation of the data samplesof noise in the
13、transducer channel, expressed in the unitsappropriate to that channel.1This guide is under the jurisdiction of ASTM Committee E08 on Fatigue andFracture and is the direct responsibility of SubcommitteeE08.03 on AdvancedApparatus and Techniques.Current edition approved June 1, 2018. Published August
14、2018. Originallyapproved in 1998. Last previous edition approved in 2010 as E1942 - 98(2010)1.DOI: 10.1520/E1942-98R18E012For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refe
15、r to the standards Document Summary page onthe ASTM website.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United StatesThis international standard was developed in accordance with internationally recognized principles on standardization establish
16、ed in the Decision on Principles for theDevelopment of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.13.1.6 peakthe point of maximum load in constant ampli-tude loading (see Terminology E1823).3.1.7 phase differ
17、ence the angle in degrees separatingcorresponding parts of two waveforms (such as peaks), whereone complete cycle represents 360.3.1.7.1 DiscussionThe phase difference of a cyclic wave-form only has meaning in reference to a second cyclicwaveform of the same frequency.3.1.8 sampling rate T1the rate
18、at which the analog-to-digital converter samples a waveform. This rate may not bevisible to the user of the data acquisition system.3.1.8.1 DiscussionA distinction is made here betweensampling rate and data rate, because in some data acquisitionsystems, the analog waveform may be sampled at a muchhi
19、gher rate than the rate at which data are made available to theuser. (Such a technique is commonly known as over-sampling).3.1.9 word sizethe number of significant bits in a singledata sample.3.1.9.1 DiscussionThe word size is one parameter whichdetermines the system resolution. Usually it will be d
20、eterminedby the analog-digital converter used, and typically may be 12or 16 bits. If the word size is w, then the smallest step changein the data that can be seen is 1 part in 2w, that is thequantization step is d =2w.3.1.10 valleyThe point of minimum load in constantamplitude loading (see Terminolo
21、gy E1823).4. Description of a Basic Data Acquisition System4.1 In its most basic form, a mechanical testing systemconsists of a test frame with grips which attach to a testspecimen, a method of applying forces to the specimen, and anumber of transducers which measure the forces and displace-ments ap
22、plied to the specimen (see Fig. 3). The output fromthese transducers may be in digital or analog form, but if theyare analog, they are first amplified and filtered and thenconverted to digital form using analog-to-digital converters(ADCs). The resulting stream of digital data may be digitallyfiltere
23、d and manipulated to result in a stream of output BasicData which is presented to the user in the form of a displayedor printed output, or as a data file in a computer. Variousalgorithms may be applied to the Basic Data to deriveparameters representing, for example, the peaks and valleys ofthe force
24、s and displacements applied to the specimen, or thestresses and strains applied to the specimen and so forth. Suchparameters are the Derived Data.4.1.1 The whole measurement system may be divided intothree sections for the purpose of verification: the mechanicaltest frame and its components, the ele
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