ASTM E2509-2008 Standard Test Method for Temperature Calibration of Rheometers in Isothermal Mode《等温模式下流变仪的温度校准的标准试验方法》.pdf
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1、Designation: E 2509 08Standard Test Method forTemperature Calibration of Rheometers in Isothermal Mode1This standard is issued under the fixed designation E 2509; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year of last rev
2、ision. 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 describes the temperature calibrationor conformance of rheometers. The applicable temperaturerange is 0 to 8
3、0 C however other ranges may be selected for thepurpose at hand.1.2 SI units are the standard.1.3 There are no ISO equivalents to this standard.1.4 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 standa
4、rd 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:2E 473 Terminology Relating to Thermal Analysis and Rhe-ologyE 1142 Terminology Relating to Thermophysical Properties3. Terminolo
5、gy3.1 Specific technical terms found in this standard aredefined in Terminologies E 473 and E 1142 including rheom-eter and rheometry4. Summary of Test Method4.1 An electronic thermometer of known characteristics isplaced in the center of a dummy test specimen in contact withthe torque applying inst
6、rument plates of a rheometer atconstant (isothermal) temperature. The difference between therheometer set temperature and that indicated by the thermom-eter is used to calibrate the rheometer temperature signal.5. Significance and Use5.1 Rheological properties such as viscosity and storage andloss m
7、odulus change rapidly with temperature. High qualitydeterminations of these properties depend upon a stable andwell-known temperature of the measuring apparatus.6. Interferences6.1 In many rheological experiments, temperature is variedwith time. The calibration in this method is made under stableand
8、 isothermal temperature conditions. Thus the effects ofchanges in temperature with time are not addressed. Thisisothermal calibration does not provide any information aboutthe specimen under temperature scanning conditions.7. Apparatus7.1 An Electronic Thermometer that includes:7.1.1 Temperature Sen
9、sor, (such as a thermocouple, plati-num resistance thermometer, thermistor, etc.) with an accuracy(traceable to a known absolute standard) and resolution of 60.1 C and a range of 0 to 80 C.NOTE 1Sensors with other temperature ranges may be used at theoperators convenience.NOTE 2Some sensors are avai
10、lable already affixed with dummy testspecimens from section 7.27.1.2 Temperature indicator , to convert the signal presentedby the temperature sensor into a digital electronic temperaturedisplay with the accuracy and precision indicated in section7.1.1.7.2 Dummy Test Specimen, Two polymer sheets eac
11、h 1mmin thickness of such a diameter to fill the space (i.e. gap)between the instrument plates.NOTE 3The dummy test specimen may be composed of the materialto be tested or some other representative polymer material. Polydimeth-ylsiloxane (PDMS) (e.g. “Silly Putty” ) may be used for this purpose.NOTE
12、 4Polydimethylsiloxane may leave a residue of silicone oil onthe surfaces of the instrument plates. This oil should be removed prior tosubsequent use.7.3 Rheometer , The essential instrumentation required pro-viding the minimum rheological analytical capabilities for thismethod include:7.3.1 A drive
13、 actuator, to apply torque or displacement tothe specimen in a periodic manner capable of frequencies ofoscillation from 0.01 to 10 rad/s (0.0016 to 1.6 Hz). Thisactuator may also be capable of providing static force ortransient step or displacement of the test specimen.1This test method is under th
14、e jurisdiction ofASTM Committee E37 on ThermalMeasurements and is the direct responsibility of Subcommittee E37.01 on ThermalTest Methods and Practices.Current edition approved Feb. 1, 2008. Published April 2008.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Cus
15、tomer 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 Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.7.3.2 Acoupling shaft, or other me
16、ans to transmit the torqueor displacement from the actuator to the specimen.7.3.3 A geometry, tools or plates, to fix the specimenbetween the coupling shaft and a stationary position. For thepurposes of this test, parallel plates are the preferred configu-ration7.3.4 Either a torque sensor, to measu
17、re force developed bythe specimen or a position sensor to measure the angulardisplacement , either one being capable of measuring withinlimits appropriate to the specimen and test being performed.7.3.5 A temperature sensor, to provide an indication of thespecimen temperature readable to within 6 0.1
18、 C.7.3.6 A furnace or heating/cooling element , to providecontrolled heating or cooling of a specimen to a constanttemperature constant to within +/- 0.1 C over the temperaturerange of interest.7.3.7 A temperature controller , capable of executing aspecific temperature program by operating the furna
19、ce orheating/cooling element between selected temperature limitsconstant to within 6 0.1 C.7.3.8 A stress or stain controller , capable of executing aspecific unidirectional or oscillatory stress or strain programbetween selected stress or strain limits capable of controllingwithin limits appropriat
20、e to the specimen and test beingperformed.7.3.9 A recording device, capable of recording all signalsand displaying on the Y-axis any subset of the measured signal(such as applied force, position or frequency) or calculatedsignal (such as viscosity, storage modulus, loss modulus ortangent delta) usin
21、g a linear or logarithmic scale as a functionof any subset of the independent experimental parameter (suchas temperature time, stress, strain or frequency of oscillation.)on the X-axis.7.3.10 Auxiliary instrumentation considered necessary oruseful in conducting this method includes:7.3.10.1 A coolin
22、g capability to hasten cool down fromelevated temperatures, to provide constant cooling rates, or tosustain an isothermal subambient temperature.7.3.10.2 Data analysis capability, to provide determinedsignals (such as viscosity, storage or loss modulus) or otheruseful parameters derived from the mea
23、sured signals.8. Preparation of Apparatus8.1 Turn on the rheometer and allow it to equilibrate for atleast 30 minutes prior to temperature calibration.8.2 Assemble the rheometer with the instrument plates to beused during subsequent tests.9. Calibration and Standardization9.1 Perform any temperature
24、 calibration procedures recom-mended by the rheometer manufacturer as described in theinstruments operations manual.10. Procedure10.1 Insert the temperature sensor so that it is located at thevertical and radial center of the dummy test specimen.NOTE 5This may be accomplished by placing the sensor b
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