ASTM C848-1988(2011) Standard Test Method for Youngs Modulus Shear Modulus and Poissons Ratio For Ceramic Whitewares by Resonance《用共振法测定卫生陶瓷的杨氏模量 切变模量和泊松比的标准试验方法》.pdf
《ASTM C848-1988(2011) Standard Test Method for Youngs Modulus Shear Modulus and Poissons Ratio For Ceramic Whitewares by Resonance《用共振法测定卫生陶瓷的杨氏模量 切变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 C848-1988(2011) Standard Test Method for Youngs Modulus Shear Modulus and Poissons Ratio For Ceramic Whitewares by Resonance《用共振法测定卫生陶瓷的杨氏模量 切变模量和泊松比的标准试验方法》.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C848 88 (Reapproved 2011)Standard Test Method forYoungs Modulus, Shear Modulus, and Poissons Ratio ForCeramic Whitewares by Resonance1This standard is issued under the fixed designation C848; 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.1. Scope1.1 This test method covers the determination of the elasticproperties of ceramic whitew
3、are materials. Specimens of thesematerials possess specific mechanical resonance frequencieswhich are defined by the elastic moduli, density, and geometryof the test specimen. Therefore the elastic properties of amaterial can be computed if the geometry, density, and me-chanical resonance frequencie
4、s of a suitable test specimen ofthat material can be measured. Youngs modulus is determinedusing the resonance frequency in the flexural mode of vibra-tion. The shear modulus, or modulus of rigidity, is found usingtorsional resonance vibrations. Youngs modulus and shearmodulus are used to compute Po
5、issons ratio, the factor oflateral contraction.1.2 All ceramic whiteware materials that are elastic, homo-geneous, and isotropic may be tested by this test method.2Thistest method is not satisfactory for specimens that have cracksor voids that represent inhomogeneities in the material; neitheris it
6、satisfactory when these materials cannot be prepared in asuitable geometry.NOTE 1Elastic here means that an application of stress within theelastic limit of that material making up the body being stressed will causean instantaneous and uniform deformation, which will cease upon removalof the stress,
7、 with the body returning instantly to its original size and shapewithout an energy loss. Many ceramic whiteware materials conform to thisdefinition well enough that this test is meaningful.NOTE 2Isotropic means that the elastic properties are the same in alldirections in the material.1.3 A cryogenic
8、 cabinet and high-temperature furnace aredescribed for measuring the elastic moduli as a function oftemperature from 195 to 1200C.1.4 Modification of the test for use in quality control ispossible. A range of acceptable resonance frequencies isdetermined for a piece with a particular geometry and de
9、nsity.Any specimen with a frequency response falling outside thisfrequency range is rejected. The actual modulus of each pieceneed not be determined as long as the limits of the selectedfrequency range are known to include the resonance frequencythat the piece must possess if its geometry and densit
10、y arewithin specified tolerances.1.5 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 limitat
11、ions prior to use.2. Summary of Test Method2.1 This test method measures the resonance frequencies oftest bars of suitable geometry by exciting them at continuouslyvariable frequencies. Mechanical excitation of the specimen isprovided through use of a transducer that transforms an initialelectrical
12、signal into a mechanical vibration. Another trans-ducer senses the resulting mechanical vibrations of the speci-men and transforms them into an electrical signal that can bedisplayed on the screen of an oscilloscope to detect resonance.The resonance frequencies, the dimensions, and the mass of thesp
13、ecimen are used to calculate Youngs modulus and the shearmodulus.3. Significance and Use3.1 This test system has advantages in certain respects overthe use of static loading systems in the measurement of ceramicwhitewares.3.1.1 Only minute stresses are applied to the specimen, thusminimizing the pos
14、sibility of fracture.1This test method is under the jurisdiction ofASTM Committee C21 on CeramicWhitewares and Related Products and is the direct responsibility of SubcommitteeC21.03 on Methods for Whitewares and Environmental Concerns.Current edition approved March 1, 2011. Published March 2011. Or
15、iginallyapproved in 1976. Last previous edition approved in 2006 as C848 88 (2006).DOI: 10.1520/C0848-88R11.2Spinner, S., and Tefft, W. E., “A Method for Determining MechanicalResonance Frequencies and for Calculating Elastic Moduli from These Frequen-cies,” Proceedings, ASTM, 1961, pp. 12211238.1Co
16、pyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.1.2 The period of time during which stress is applied andremoved is of the order of hundreds of microseconds, makingit feasible to perform measurements at temperatures wheredelayed elast
17、ic and creep effects proceed on a much-shortenedtime scale.3.2 This test method is suitable for detecting whether amaterial meets specifications, if cognizance is given to oneimportant fact: ceramic whiteware materials are sensitive tothermal history. Therefore, the thermal history of a testspecimen
18、 must be known before the moduli can be consideredin terms of specified values. Material specifications shouldinclude a specific thermal treatment for all test specimens.4. Apparatus4.1 The test apparatus is shown in Fig. 1. It consists of avariable-frequency audio oscillator, used to generate a sin
19、usoi-dal voltage, and a power amplifier and suitable transducer toconvert the electrical signal to a mechanical driving vibration.A frequency meter monitors the audio oscillator output toprovide an accurate frequency determination. A suitablesuspension-coupling system cradles the test specimen, anda
20、nother transducer acts to detect mechanical resonance in thespecimen and to convert it into an electrical signal which ispassed through an amplifier and displayed on the vertical platesof an oscilloscope. If a Lissajous figure is desired, the output ofthe oscillator is also coupled to the horizontal
21、 plates of theoscilloscope. If temperature-dependent data are desired, asuitable furnace or cryogenic chamber is used. Details of theequipment are as follows:4.2 Audio Oscillator, having a continuously variable fre-quency output from about 100 to at least 20 kHz. Frequencydrift shall not exceed 1 Hz
22、/min for any given setting.4.3 Audio Amplifier, having a power output sufficient toensure that the type of transducer used can excite any specimenthe mass of which falls within a specified range.4.4 TransducersTwo are required; one used as a drivermay be a speaker of the tweeter type or a magnetic c
23、utting heador other similar device, depending on the type of couplingchosen for use between the transducer and the specimen. Theother transducer, used as a detector, may be a crystal ormagnetic reluctance type of phonograph cartridge.Acapacitivepickup may be used if desired. The frequency response o
24、f thetransducer shall be as good as possible with at least a 6.5-kHzbandwidth before 3-dB power loss occurs.4.5 Power Amplifier, in the detector circuit shall be imped-ance matched with the type of detector transducer selected andshall serve as a prescope amplifier.4.6 Cathode-Ray Oscilloscope, shal
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