ASTM E1876-2015 Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio by Impulse Excitation of Vibration《采用脉冲激振法测定动态扬氏模量 剪切模量和泊松比的标准试验方法》.pdf
《ASTM E1876-2015 Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio by Impulse Excitation of Vibration《采用脉冲激振法测定动态扬氏模量 剪切模量和泊松比的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM E1876-2015 Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio by Impulse Excitation of Vibration《采用脉冲激振法测定动态扬氏模量 剪切模量和泊松比的标准试验方法》.pdf(17页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E1876 15Standard Test Method forDynamic Youngs Modulus, Shear Modulus, and PoissonsRatio by Impulse Excitation of Vibration1This standard is issued under the fixed designation E1876; the number immediately following the designation indicates the year oforiginal adoption or, in the case
2、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 determination of the dynamicelastic properties of elastic materials a
3、t ambient temperatures.Specimens of these materials possess specific mechanicalresonant frequencies that are determined by the elasticmodulus, mass, and geometry of the test specimen. Thedynamic elastic properties of a material can therefore becomputed if the geometry, mass, and mechanical resonantf
4、requencies of a suitable (rectangular or cylindrical geometry)test specimen of that material can be measured. DynamicYoungs modulus is determined using the resonant frequencyin either the flexural or longitudinal mode of vibration. Thedynamic shear modulus, or modulus of rigidity, is found usingtors
5、ional resonant vibrations. Dynamic Youngs modulus anddynamic shear modulus are used to compute Poissons ratio.1.2 Although not specifically described herein, this testmethod can also be performed at cryogenic and high tempera-tures with suitable equipment modifications and appropriatemodifications t
6、o the calculations to compensate for thermalexpansion.1.3 There are material specific ASTM standards that coverthe determination of resonance frequencies and elastic proper-ties of specific materials by sonic resonance or by impulseexcitation of vibration. Test Methods C215, C623, C747, C848,C1198,
7、and C1259 may differ from this test method in severalareas (for example; sample size, dimensional tolerances,sample preparation). The testing of these materials shall bedone in compliance with these material specific standards.Where possible, the procedures, sample specifications andcalculations are
8、 consistent with these test methods.1.4 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.5 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the use
9、r of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2C215 Test Method for Fundamental Transverse,Longitudinal, and Torsional Resonant Frequencies ofConcrete Specimen
10、sC372 Test Method for Linear Thermal Expansion of Porce-lain Enamel and Glaze Frits and Fired Ceramic WhitewareProducts by the Dilatometer MethodC623 Test Method for Youngs Modulus, Shear Modulus,and Poissons Ratio for Glass and Glass-Ceramics byResonanceC747 Test Method for Moduli of Elasticity and
11、 FundamentalFrequencies of Carbon and Graphite Materials by SonicResonanceC848 Test Method for Youngs Modulus, Shear Modulus,and Poissons Ratio For Ceramic Whitewares by Reso-nanceC1161 Test Method for Flexural Strength of AdvancedCeramics at Ambient TemperatureC1198 Test Method for Dynamic Youngs M
12、odulus, ShearModulus, and Poissons Ratio for Advanced Ceramics bySonic ResonanceC1259 Test Method for Dynamic Youngs Modulus, ShearModulus, and Poissons Ratio for Advanced Ceramics byImpulse Excitation of VibrationE6 Terminology Relating to Methods of Mechanical TestingE177 Practice for Use of the T
13、erms Precision and Bias inASTM Test Methods3. Terminology3.1 Definitions:3.1.1 The definitions of terms relating to mechanical testingappearing in Terminology E6 and C1198 should be consideredas applying to the terms used in this test method.1This test method is under the jurisdiction of ASTM Commit
14、tee E28 onMechanical Testing and is the direct responsibility of Subcommittee E28.04 onUniaxial Testing.Current edition approved Dec. 15, 2015. Published March 2016. Originallyapproved in 1997. Last previous edition approved in 2009 as E1876 09. DOI:10.1520/E1876-15.2For referenced ASTM standards, v
15、isit 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.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-
16、2959. United States13.1.2 dynamic elastic modulus, nthe elastic modulus,either Youngs modulus or shear modulus, that is measured ina dynamic mechanical measurement.3.1.3 dynamic mechanical measurement, na technique inwhich either the modulus or damping, or both, of a substanceunder oscillatory appli
17、ed force or displacement is measured asa function of temperature, frequency, or time, or combinationthereof.3.1.4 elastic limit FL2,nthe greatest stress that amaterial is capable of sustaining without permanent strainremaining upon complete release of the stress. E63.1.5 modulus of elasticity FL2,nt
18、he ratio of stress tocorresponding strain below the proportional limit.3.1.5.1 DiscussionThe stress-strain relationships of manymaterials do not conform to Hookes law throughout the elasticrange, but deviate therefrom even at stresses well below theelastic limit. For such materials, the slope of eit
19、her the tangentto the stress-strain curve at the origin or at a low stress, thesecant drawn from the origin to any specified point on thestress-strain curve, or the chord connecting any two specifiedpoints on the stress-strain curve is usually taken to be the“modulus of elasticity.” In these cases,
20、the modulus should bedesignated as the “tangent modulus,” the “secant modulus,” orthe “chord modulus,” and the point or points on the stress-strain curve described. Thus, for materials where the stress-strain relationship is curvilinear rather than linear, one of thefour following terms may be used:
21、(a) initial tangent modulus FL2, nthe slope of thestress-strain curve at the origin.(b) tangent modulus FL2, nthe slope of the stress-strain curve at any specified stress or strain.(c) secant modulus FL2, nthe slope of the secantdrawn from the origin to any specified point on the stress-straincurve.
22、(d) chord modulus FL2, nthe slope of the chord drawnbetween any two specified points on the stress-strain curvebelow the elastic limit of the material.3.1.5.2 DiscussionModulus of elasticity, like stress, isexpressed in force per unit of area (pounds per square inch,etc.).3.1.6 Poissons ratio, ,nthe
23、 negative of the ratio oftransverse strain to the corresponding axial strain resultingfrom an axial stress below the proportional limit of thematerial.3.1.6.1 DiscussionPoissons ratio may be negative forsome materials, for example, a tensile transverse strain willresult from a tensile axial strain.3
24、.1.6.2 DiscussionPoissons ratio will have more than onevalue if the material is not isotropic. E63.1.7 proportional limit FL2 ,nthe greatest stress that amaterial is capable of sustaining without deviation fromproportionality of stress to strain (Hookes law). E63.1.7.1 DiscussionMany experiments hav
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