ASTM D6048-2007(2012) 4142 Standard Practice for Stress Relaxation Testing of Raw Rubber Unvulcanized Rubber Compounds and Thermoplastic Elastomers 《生橡胶、非硫化橡胶化合物和热塑弹性体的应力松弛试验的标准实施规.pdf
《ASTM D6048-2007(2012) 4142 Standard Practice for Stress Relaxation Testing of Raw Rubber Unvulcanized Rubber Compounds and Thermoplastic Elastomers 《生橡胶、非硫化橡胶化合物和热塑弹性体的应力松弛试验的标准实施规.pdf》由会员分享,可在线阅读,更多相关《ASTM D6048-2007(2012) 4142 Standard Practice for Stress Relaxation Testing of Raw Rubber Unvulcanized Rubber Compounds and Thermoplastic Elastomers 《生橡胶、非硫化橡胶化合物和热塑弹性体的应力松弛试验的标准实施规.pdf(15页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D6048 07 (Reapproved 2012)Standard Practice forStress Relaxation Testing of Raw Rubber, UnvulcanizedRubber Compounds, and Thermoplastic Elastomers1This standard is issued under the fixed designation D6048; the number immediately following the designation indicates the year oforiginal ad
2、option 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.INTRODUCTIONThere are a number of techniques used to identify the processability o
3、f raw rubber, unvulcanizedrubber compounds, and thermoplastic elastomers (rubber and rubberlike materials). Most measure asingle averaged value of non-Newtonian viscosity with some doing so after a period of steady shear.These techniques may not provide sufficient information with regards to the pro
4、cessability of aselected material, as they: (1) fail to provide a measure of the viscoelastic behavior, and (2) destroystructure of the selected material through the steady shearing.Stress relaxation testing provides a measure of the viscoelastic response of a material over a periodof time without d
5、estroying the structure of the sample. In such testing both the instantaneous andtime-dependent response to an applied deformation are measured. The information from this singleexperiment can then be used to examine a materials reaction to various different process conditions.There are several diffe
6、rent techniques for measuring stress relaxation properties of rubber andrubberlike materials. This practice serves to provide the reader with some background informationabout those techniques in terms of the theory of testing and the interpretation of results. Manyconcepts are put forward that are n
7、ot discussed in depth, for to do so would require a textbook, nota practice. The reader is therefore encouraged to consult the identified references.1. Scope1.1 This practice covers several different techniques fordetermining the stress relaxation characteristics of rubber andrubberlike materials an
8、d for the possible interconversion of thisstress relaxation information into dynamic mechanical proper-ties.1.2 The techniques are intended for materials having stressrelaxation moduli in the range of 103to 108Pa (0.1 to1.5 3 104psi) and for test temperatures from 23 to 225C (73to 437F). Not all mea
9、suring apparatus may be able toaccommodate the entire ranges. These techniques are alsointended for measurement of materials in their rubbery ormolten states, or both.1.3 Differences in results will be found among the tech-niques. Because of these differences, the test report needs toinclude the tec
10、hnique and the conditions of the test. Thisinformation will allow for resolving any issues pertaining tothe test measurements.1.4 The generalized descriptions of apparatus are based onthe measurement of force as a function of time. Mathematicaltreatment of that relationship produces information that
11、 can berepresentative of material properties. Mathematical transfor-mation of the force measurements will first yield stressrelaxation moduli with subsequent transformation producingdynamic mechanical properties.1.5 The values stated in SI units are to be regarded as thestandard. The values given in
12、 parentheses are provided forinformation only.1.6 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 regul
13、atory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D1566 Terminology Relating to RubberD1646 Test Methods for RubberViscosity, Stress Relax-ation, and Pre-Vulcanization Characteristics (Mooney Vis-cometer)1This practice is under the jurisdiction of Committee D11 on Rubber and
14、is thedirect responsibility of Subcommittee D11.12 on Processability Tests.Current edition approved May 1, 2012. Published July 2012. Originally approvedin 1996. Last previous edition approved in 2007 as D6048 07. DOI: 10.1520/D6048-07R12.2For referenced ASTM standards, visit the ASTM website, www.a
15、stm.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 Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.D5992 G
16、uide for Dynamic Testing of Vulcanized Rubberand Rubber-Like Materials Using Vibratory MethodsE328 Test Methods for Stress Relaxation for Materials andStructures3. Terminology3.1 Definitions:3.1.1 Each of the following terms applies to linear vis-coelastic behavior. The terms have been arranged logi
17、cally sothat simple basic terms are defined first and are then used todefine more complex terms that either contain the simple termsor depend upon the simple terms for comprehension. Someterms in this section have been excerpted from TerminologyD1566, Guide D5992, or Test Methods E328.3.1.2 stress,
18、nthe force per unit area that acts on the faceof a cubical element that is perpendicular to the force.3.1.3 strain, nthe change in the size or shape of a bodydue to force when referred to its original size or shape.3.1.4 initial stress, nthe stress occurring in a specimenimmediately upon achieving t
19、he given input strain.3.1.5 damping, na material property that results in theconversion of mechanical energy to heat when the material issubjected to deformation.3.1.6 modulus, na material property that is the ratio ofstress to strain.3.1.7 stress relaxation, nthe time-dependent decrease instress un
20、der constant strain at constant temperature.3.1.8 relaxation curve, na plot of the force, stress, orrelaxation modulus as a function of time.3.1.9 relaxation time, nthe time required for a body torelax after deformation (synonym: time constant).3.1.10 relaxation spectrum, nthe response of a group of
21、bodies to deformation, each having a unique relaxation time;normally defined as a mathematical function, an integral overwhich describes linear viscoelastic behavior.3.1.11 elastic, adjthe tendency for a material to return tooriginal shape after release of stress; specifically, descriptive ofthat co
22、mponent of the complex force in phase with dynamicdeflection that does not convert mechanical energy to heat andthat can return energy to an oscillating mass-spring system(synonym: storage).3.1.12 loss, adjdescriptive of that fraction of energyabsorbed by a strained object that is converted to heat,
23、 that is,that which is hysteretic.3.1.13 viscous, adjdescriptive of that type of energy lossin which the damping component of stress is proportional tothe rate of deformation.3.1.14 compression, nthe type of strain parallel to thedirection of displacement that results in a decrease in the heightof t
24、he strained body.3.1.15 shear, nthe type of strain that is perpendicular tothe direction of displacement.3.1.16 shape factor, nfor disks or cylinders to be tested incompression, the ratio of the diameter of the specimen to itsheight.3.1.17 compression modulus, na material property ofresistance to ch
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