ASTM C1198-2001 Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio for Advanced Ceramics by Sonic Resonance《声谐振测定动态扬氏模量、剪切模量和泊松比的标准试验方法》.pdf
《ASTM C1198-2001 Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio for Advanced Ceramics by Sonic Resonance《声谐振测定动态扬氏模量、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 C1198-2001 Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio for Advanced Ceramics by Sonic Resonance《声谐振测定动态扬氏模量、剪切模量和泊松比的标准试验方法》.pdf(11页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C 1198 01Standard Test Method forDynamic Youngs Modulus, Shear Modulus, and PoissonsRatio for Advanced Ceramics by Sonic Resonance1This standard is issued under the fixed designation C 1198; the number immediately following the designation indicates the year oforiginal adoption or, in t
2、he case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method covers the determination of the dy-namic elastic properties of adva
3、nced ceramics. Specimens ofthese materials possess specific mechanical resonant frequen-cies that are determined by the elastic modulus, mass, andgeometry of the test specimen. Therefore, the dynamic elasticproperties of a material can be computed if the geometry, mass,and mechanical resonant freque
4、ncies of a suitable test speci-men of that material can be measured. Dynamic Youngsmodulus is determined using the resonant frequency in theflexural mode of vibration. The dynamic shear modulus, ormodulus of rigidity, is found using torsional resonant vibra-tions. Dynamic Youngs modulus and dynamic
5、shear modulusare used to compute Poissons ratio.1.2 This test method is specifically appropriate for advancedceramics that are elastic, homogeneous, and isotropic (1).2Advanced ceramics of a composite character (particulate,whisker, or fiber reinforced) may be tested by this test methodwith the unde
6、rstanding that the character (volume fraction,size, morphology, distribution, orientation, elastic properties,and interfacial bonding) of the reinforcement in the testspecimen will have a direct effect on the elastic properties.These reinforcement effects must be considered in interpretingthe test r
7、esults for composites. This test method is notsatisfactory for specimens that have cracks or voids that aremajor discontinuities in the specimen. Neither is the testmethod satisfactory when these materials cannot be fabricatedin a uniform rectangular or circular cross section.1.3 A high-temperature
8、furnace and cryogenic cabinet aredescribed for measuring the dynamic elastic moduli as afunction of temperature from 195 to 1200C.1.4 Modification of this test method for use in qualitycontrol is possible. A range of acceptable resonant frequenciesis determined for a specimen with a particular geome
9、try andmass. Any specimen with a frequency response falling outsidethis frequency range is rejected. The actual modulus of eachspecimen need not be determined as long as the limits of theselected frequency range are known to include the resonantfrequency that the specimen must possess if its geometr
10、y andmass are within specified tolerances.1.5 The procedures in this test method are, where possible,consistent with the procedures of Test Methods C 623, C 747,and C 848. The tables of these test methods have been replacedby the actual formulas from the original references. With theadvent of comput
11、ers and sophisticated hand calculators, theactual formulas can be easily used and provide greater accu-racy than factor tables.1.6 The values stated in SI units are to be regarded as thestandard. The values given in parentheses are for informationonly.1.7 This standard does not purport to address al
12、l 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. Referenced Documents2.1 ASTM Standards:C 372 Test Method for
13、 Linear Thermal Expansion of Por-celain Enamel and Glaze Frits and Fired Ceramic Whitew-are Products by the Dilatomer Method3C 623 Test Method for Youngs Modulus, Shear Modulus,and Poissons Ratio for Glass and Glass-Ceramics byResonance3C 747 Test Method for Moduli of Elasticity and Fundamen-tal Fre
14、quencies of Carbon and Graphite Materials by SonicResonance4C 848 Test Method for Youngs Modulus, Shear Modulus,and Poissons Ratio for Ceramic Whitewares by Reso-nance3C 1145 Terminology of Advanced Ceramics4C 1161 Test Method for Flexural Strength of Advanced1This test method is under the jurisdict
15、ion of ASTM Committee C28 onAdvanced Ceramics and is the direct responsibility of Subcommittee C28.01 onMechanical Properties and Performance.Current edition approved April 10, 2001. Published June 2001. Originallypublished as C 1198 91. Last previous edition C 1198 96.2The boldface numbers given in
16、 parentheses refer to a list of references at theend of the text.3Annual Book of ASTM Standards, Vol 15.02.4Annual Book of ASTM Standards, Vol 15.01.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.Ceramics at Ambient Temperatures4D 4
17、092 Terminology Relating to Dynamic MechanicalMeasurements on Plastics53. Terminology3.1 Definitions:3.1.1 advanced ceramic, na highly engineered, high per-formance, predominately nonmetallic, inorganic, ceramic ma-terial having specific functional attributes. (C 1145)3.1.1.1 dynamic mechanical meas
18、urement, na techniquein which either the modulus or damping, or both, of a substanceunder oscillatory load or displacement is measured as afunction of temperature, frequency, or time, or combinationthereof. (D 4092)3.1.2 elastic limit FL2, nthe greatest stress that amaterial is capable of sustaining
19、 without permanent strainremaining upon complete release of the stress.3.1.3 elastic modulus FL2, nthe ratio of stress to strainbelow the proportional limit.3.1.4 Poissons ratio () nd, nthe absolute value of theratio of transverse strain to the corresponding axial strainresulting from uniformly dist
20、ributed axial stress below theproportional limit of the material.3.1.4.1 DiscussionIn isotropic materials Youngs modu-lus (E), shear modulus (G), and Poissons ratio () are relatedby the following equation: 5 E/2G ! 2 13.1.5 proportional limit FL2, nthe greatest stress that amaterial is capable of su
21、staining without deviation fromproportionality of stress to strain (Hookes law).3.1.6 shear modulus (G) FL2, nthe elastic modulus inshear or torsion. Also called modulus of rigidity or torsionalmodulus.3.1.7 Youngs modulus ( E) FL2, nthe elastic modulusin tension or compression.3.2 Definitions of Te
22、rms Specific to This Standard:3.2.1 anti-nodes, nan unconstrained slender rod or bar inresonance contains two or more locations that have localmaximum displacements, called anti-nodes. For the fundamen-tal flexure resonance, the anti-nodes are located at the two endsand the center of the specimen.3.
23、2.2 elastic, adjthe property of a material such that anapplication of stress within the elastic limit of that materialmaking up the body being stressed will cause an instantaneousand uniform deformation, that will be eliminated upon removalof the stress, with the body returning instantly to its orig
24、inalsize and shape without energy loss. Most advanced ceramicsconform to this definition well enough to make this resonancetest valid.3.2.3 flexural vibrations, nthe vibrations that occur whenthe oscillations in a slender rod or bar are in the plane normalto the length dimension.3.2.4 homogeneous, a
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