ASTM D5422-2003 Standard Test Method for Measurement of Properties of Thermoplastic Materials by Screw-Extrusion Capillary Rheometer《用螺杆挤压毛细管流变仪测量热塑性塑料性能的标准试验方法》.pdf
《ASTM D5422-2003 Standard Test Method for Measurement of Properties of Thermoplastic Materials by Screw-Extrusion Capillary Rheometer《用螺杆挤压毛细管流变仪测量热塑性塑料性能的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM D5422-2003 Standard Test Method for Measurement of Properties of Thermoplastic Materials by Screw-Extrusion Capillary Rheometer《用螺杆挤压毛细管流变仪测量热塑性塑料性能的标准试验方法》.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 5422 03Standard Test Method forMeasurement of Properties of Thermoplastic Materials byScrew-Extrusion Capillary Rheometer1This standard is issued under the fixed designation D 5422; 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 (e) indicates an editorial change since the last revision or reapproval.INTRODUCTIONThis test method uses capillary rheometry to measure the rheological properties of thermopl
3、asticsand thermoplastic compounds. This test method utilizes a screw-extrusion-type capillary rheometer.1. Scope*1.1 This test method covers the use of a screw-extrusion-type capillary rheometer for the measurement of flow proper-ties of thermoplastics and thermoplastic compounds. Themeasured flow p
4、roperties, which are obtained through labora-tory investigation, may help to describe the material behaviorthat occurs in factory processing.1.2 Since a screw-type capillary rheometer imparts shearenergy to the material during testing, the measurements willusually differ from those obtained with a p
5、iston-type capillaryrheometer (see Test Method D 3835).1.3 Capillary rheometer measurements for thermoplasticsand thermoplastic compounds are described in Test MethodD 3835.1.4 The values stated in SI units are to be regarded asstandard.1.5 This standard does not purport to address all of thesafety
6、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.NOTE 1There is currently no equivalent ISO standard.2. Referenced Documents2.1
7、 ASTM Standards:D 618 Practice for Conditioning Plastics for Testing2D 883 Terminology Relating to Plastics2D 1238 Test Method for Flow Rates of Thermoplastics byExtrusion Plastometer2D 3835 Test Method for Determination of Properties ofPolymeric Materials by Means of a Capillary Rheometer3E 691 Pra
8、ctice for Conducting an Interlaboratory Study toDetermine the Precision of a Test Method43. Terminology3.1 Definitions (See Terminology D 883) :3.1.1 apparent shear rate (ga)shear strain rate (or veloc-ity gradient) of the thermoplastic or thermoplastic compoundextrudate as it passes through the cap
9、illary die.3.1.1.1 DiscussionThis velocity gradient is not uniformthrough the cross-section of the capillary die. The shear rate iscalculated for the region of highest shear, which is at the wallof the capillary. By selecting a die diameter and controlling thevolume flow per unit time through the di
10、e, a specific level ofapparent shear rate may be achieved. Alternately, the shearstress (entrance pressure) may be controlled, and the apparentshear rate measured.3.1.1.2 DiscussionMathematically, the apparent shearrate at the wall of the capillary for a Newtonian fluid at thecapillary wall is given
11、 by the following:ga532 Qp D3(1)where:ga= apparent shear rate, s1,Q = quantity of fluid extruded per time, mm3/s,p = 3.142, andD = diameter of the measuring capillary, mm.3.1.2 apparent shear stress (ta)the measured resistance tothe flow through a capillary die. It may be determined bymeasuring the
12、die entrance pressure for a specific die, thenapplying appropriate geometric factors.3.1.2.1 DiscussionMathematically, apparent shear stressis given by the following:ta5P4L/D!(2)1This test method is under the jurisdiction ofASTM Committee D20 on Plasticsand is the direct responsibility of Subcommitt
13、ee D20.30 on Thermal Properties.Current edition approved April 10, 2003. Published June 2003. Originallyapproved in 1993. Last previous edition approved in 2000 as D 5422 00.2Annual Book of ASTM Standards, Vol 08.01.3Annual Book of ASTM Standards, Vol 08.02.4Annual Book of ASTM Standards, Vol 14.02.
14、1*A Summary of Changes section appears at the end of this standard.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.where:ta= apparent shear stress, Pa,P = pressure at the entrance of the measuring capillary,Pa,L = length of the measur
15、ing capillary, mm, andD = diameter of the measuring capillary, mm.3.1.3 apparent viscosity (ha)ratio of apparent shear stressto apparent shear rate, Pas.3.1.3.1 DiscussionFor an extrusion capillary rheometer,the ratio is usually calculated at a given shear rate. At constanttemperature, the apparent
16、viscosity of most polymers is notconstant, but varies with shear rate. The viscosity is generallyannotated with the shear rate at which the measurement wasmade.3.1.4 capillary rheometeran instrument in which thermo-plastics or thermoplastic compounds can be forced from areservoir through a capillary
17、 die. The temperature, pressureentering the die, and flow rate through the die can be controlledand accurately measured.3.1.5 corrected shear rate (gw)the actual shear rate at thewall of the capillary die determined by applying the Rabinow-itsch correction for non-Newtonian materials, s1.3.1.5.1 Dis
18、cussionThe Rabinowitsch correction math-ematically adjusts the shear-rate values to compensate fornon-Newtonian behavior of the polymer. To obtain correctedshear rate, at least two measurements of apparent shear stressand apparent shear rate are made. This is generally accom-plished by increasing th
19、e rate of extrusion (Q) while using thesame measuring capillary.3.1.5.2 DiscussionAs a first step, the Bagley correction(as stated in 3.1.6) is made to the shear-stress values. Then,either by algebraic means (if only two measurements aremade), or by a regression method (for a greater number ofpoints
20、), the equation in 3.1.11 is solved for n, using thecorrected shear stress (tw).3.1.5.3 DiscussionThe corrected shear rate (gw) is deter-mined by the following:gw5F3n1 14nG ga(3)For most thermoplastics and thermoplastic compounds, the magni-tude of shear sensitivity (n) will vary, depending on mater
21、ial compo-sition.3.1.6 corrected shear stress (tW)the actual shear stress atthe wall of the capillary die, Pa. The corrected shear stress isobtained by applying the Bagley Correction Factor (E)totheapparent shear stress (see 3.1.7.1 and 3.1.7.2). The Bagleycorrection compensates for energy losses at
22、 the entrance andexit of the die.3.1.6.1 DiscussionThis correction is often applied asthough it were an additional length of capillary. The correctionis often termed “end effect.” Capillary entrance angle andgeometry have great influence on the magnitude of thiscorrection.3.1.6.2 DiscussionThe Bagle
23、y correction will also re-move the influence of any static pressure in the system thatdoes not vary with die length.3.1.6.3 DiscussionSince the magnitude of correction is afunction of shear rate, data for this correction are obtained byusing two or more dies of different length, but of the samediame
24、ter (and thus the same apparent shear rate, as calculatedin 3.1.4.2). If the data from these additional dies are compared,either graphically or mathematically, a linear relationship ofextrusion pressure with die geometry is usually obtained in thefollowing form:P 5 c FLD1 EG(4)where:E = the Bagley C
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