ASTM C1548-2002(2012) Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio of Refractory Materials by Impulse Excitation of Vibration《用振动的脉冲激励法测试耐火材料动态杨.pdf
《ASTM C1548-2002(2012) Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio of Refractory Materials by Impulse Excitation of Vibration《用振动的脉冲激励法测试耐火材料动态杨.pdf》由会员分享,可在线阅读,更多相关《ASTM C1548-2002(2012) Standard Test Method for Dynamic Youngs Modulus Shear Modulus and Poissons Ratio of Refractory Materials by Impulse Excitation of Vibration《用振动的脉冲激励法测试耐火材料动态杨.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C1548 02 (Reapproved 2012)Standard Test Method forDynamic Youngs Modulus, Shear Modulus, and PoissonsRatio of Refractory Materials by Impulse Excitation ofVibration1This standard is issued under the fixed designation C1548; the number immediately following the designation indicates the
2、year oforiginal adoption or, in 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 measurement of the funda
3、-mental resonant frequencies for the purpose of calculating thedynamic Youngs modulus, the dynamic shear modulus (alsoknown as the modulus of rigidity), and the dynamic Poissonsratio of refractory materials at ambient temperatures. Speci-mens of these materials possess specific mechanical resonantfr
4、equencies, which are determined by the elastic modulus,mass, and geometry of the test specimen. Therefore, thedynamic elastic properties can be computed if the geometry,mass, and mechanical resonant frequencies of a suitablespecimen can be measured. The dynamic Youngs modulus isdetermined using the
5、resonant frequency in the flexural modeof vibration and the dynamic shear modulus is determinedusing the resonant frequency in the torsional mode of vibration.Poissons ratio is computed from the dynamic Youngs modu-lus and the dynamic shear modulus.1.2 Although not specifically described herein, thi
6、s methodcan also be performed at high temperatures with suitableequipment modifications and appropriate modifications to thecalculations to compensate for thermal expansion.1.3 The values are stated in SI units and are to be regardedas the standard.1.4 This standard may involve hazardous materials,
7、opera-tions, and equipment. This standard does not purport toaddress all of the safety concerns, if any, associated with itsuse. It is the responsibility of the user of this standard toestablish appropriate safety and health practices and deter-mine the applicability of regulatory limitations prior
8、to use.2. Referenced Documents2.1 ASTM Standards:2C71 Terminology Relating to RefractoriesC215 Test Method for Fundamental Transverse, Longitudi-nal, and Torsional Resonant Frequencies of ConcreteSpecimensC885 Test Method for Youngs Modulus of RefractoryShapes by Sonic ResonanceC1259 Test Method for
9、 Dynamic Youngs Modulus, ShearModulus, and Poissons Ratio for Advanced Ceramics byImpulse Excitation of Vibration3. Summary of Test Method3.1 The fundamental resonant frequencies are determinedby measuring the resonant frequency of specimens struck oncemechanically with an impacting tool. Frequencie
10、s are mea-sured with a transducer held lightly against the specimen usinga signal analyzer circuit. Impulse and transducer locations areselected to induce and measure one of two different modes ofvibration. The appropriate resonant frequencies, dimensions,and mass of each specimen may be used to cal
11、culate dynamicYoungs modulus, dynamic shear modulus, and dynamic Pois-sons ratio.4. Significance and Use4.1 This test method is non-destructive and is commonlyused for material characterization and development, designdata generation, and quality control purposes. The test assumesthat the properties
12、of the specimen are perfectly isotropic,which may not be true for some refractory materials. The testalso assumes that the specimen is homogeneous and elastic.Specimens that are micro-cracked are difficult to test since theydo not yield consistent results. Specimens with low densitieshave a damping
13、effect and are easily damaged locally at theimpact point. Insulating bricks can generally be tested with thistechnique, but fibrous insulating materials are generally tooweak and soft to test.4.2 For quality control use, the test method may be used formeasuring only resonant frequencies of any stand
14、ard sizespecimen.An elastic modulus calculation may not be needed oreven feasible if the shape is non-standard, such as a slide gateplate containing a hole. Since specimens will vary in both sizeand mass, acceptable frequencies for each shape and materialmust be established from statistical data.1Th
15、is test method is under the jurisdiction of ASTM Committee C08 onRefractories and is the direct responsibility of Subcommittee C08.01 on Strength.Current edition approved March 1, 2012. Published April 2012. Originallyapproved in 2002. Last previous edition approved in 2007 as C1548 02 (2007).DOI: 1
16、0.1520/C1548-02R12.2For referenced ASTM standards, visit 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.1Copyright ASTM International, 100 Barr Ha
17、rbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.4.3 Dimensional variations can have a significant effect onmodulus values calculated from the frequency measurements.Surface grinding may be required to bring some materials intothe specified tolerance range.4.4 Since cylindric
18、al shapes are not commonly made fromrefractory materials they are not covered by this test method,but are covered in Test Method C215.5. Apparatus5.1 Electronic SystemThe electronic system in Fig. 1consists of a signal conditioner/amplifier, a signal analyzer, afrequency readout device, and a signal
19、 transducer for sensingthe vibrations. The system should have sufficient precision tomeasure frequencies to an accuracy of 0.1 %. Commercialinstrumentation is available which meets this requirement.35.1.1 Frequency AnalyzerThis consists of a signalconditioner/amplifier to power the transducer and a
20、digitalwaveform analyzer or frequency counter with storage capabil-ity to analyze the signal from the transducer. The waveformanalyzer shall have a sampling rate of at least 20 000 Hz. Thefrequency counter should have an accuracy of 0.1 %.5.1.2 SensorA piezeoelectric accelerometer contact trans-duce
21、r is most commonly used, although non-contact transduc-ers based on acoustic, magnetic, or capacitance measurementsmay also be used. The transducer shall have a frequencyresponse in the range of 50 Hz to 10 000 Hz, and have aresonant frequency above 20 000 Hz. The sensor shall have amark identifying
22、 the maximum sensitivity direction so that itcan be properly oriented for each vibration mode.5.2 ImpactorBecause refractory materials are tested withspecimens of various sizes, it is not feasible to specify animpactor with a specific size, weight, or construction method.However, hammer style impact
23、ors which have light weighthandles with the impacting mass concentrated near the end arepreferred to dropping vertical impactors. Steel hammer styleimpactors, with head weights between 0.3 and 3 % of thespecimen weight, are recommended. To avoid damaging thesurface of insulating bricks or other weak
24、 materials, plastic orrubber shapes should be substituted for the steel impactors.5.3 Specimen SupportThe support shall permit the speci-men to vibrate freely without restricting the desired mode ofvibration. For room temperature measurements, soft rubber orplastic strips located at the nodal points
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