DIN 53529-1-1983 Testing of rubber and elastomers measurement of vulcanization characteristics (curometry) general working principles《橡胶和弹性体的检验 硫化特性的测定 一般工作原理》.pdf
《DIN 53529-1-1983 Testing of rubber and elastomers measurement of vulcanization characteristics (curometry) general working principles《橡胶和弹性体的检验 硫化特性的测定 一般工作原理》.pdf》由会员分享,可在线阅读,更多相关《DIN 53529-1-1983 Testing of rubber and elastomers measurement of vulcanization characteristics (curometry) general working principles《橡胶和弹性体的检验 硫化特性的测定 一般工作原理》.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、Testing of rubber and elastomers Measurement of vulcanization Characteristics (curometry) General workina Drincides Prfung von Kautschuk und Elastomeren; Vulkametrie, allgemeine Arbeitsgrundlagen Supersedes February 1971 edition In keeping with current practice in standards published by the Internat
2、ional Organization for Standardization (ISO), a comma has been used throughout as the decimal marker. - DIN 53 529 - Part 1 1 Curometry is the study of the vulcanization process in cross-linkable rubbermixes.The present standard specifies design features of instruments employed in curometry, namely
3、curemeters, and the requirements which such instruments shall meet. DIN 53 529 Part 2 specifiesa method of determining vulcanization characteristics and of evaluating cross-linking isotherms in terms of reaction kinetics and DIN 53 529 Part 3 deals with the determina- tion of cross-linking behaviour
4、 with the aid of rotorless curemeters. Scope and field of application 2 Concept Curemeters are test instruments which, on the basis of the strain produced in a specimen by their mechanical oscillation, make it possible to plot the course of vulcan- ization processes and evaluate cross-linking isothe
5、rms in terms of reaction kinetics (see DIN 53 501 for the concept “vulcanization“, and DIN 53 529 Part 2 in connection with the evaluation ofcross-linking isotherms). According to the type of strain which they produce, curemeters are classified either as a) linear shear curemeters (see figure I), in
6、 which speci- mens are subjected uniaxially to an alternating linear strain, or as b) torsion shear curerneters (see figure 2), in which specimens are subjected to an alternating torsional strain. This type of curemeter may be either rotorless or fitted with an oscillating disc. 3 Apparatus A cureme
7、ter assembly consists of the following compo- nents: a) reaction cavity (containing the specimen); b) device for applying strain to the specimen (drive c) heating device; system); Figure 1. Linear shear e- ,- Directions of motion - W of moving shear element In figures 1 and 2 d is the thickness 1 is
8、 the length 6 is the width y is the shear angle; h is the deflection of the moving shear element; P is the angular deflection of the moving shear element. d) device for measuring either the force or torque, or The above-listed curerneter components shall meet the requirements specified in subclauses
9、 4.1 to 4.4. Figure 2. Torsional shear strain strain of the specimen; I the linear or angular amplitude. , 4 Apparatus requirements 4.1 Reaction cavity 4.1.1 When cross-linking isotherms are to be plotted, the poor thermal conductivity of rubber mixes requires that the thickness of the specimen be k
10、ept to a mini- mum. The design of the reaction cavity shall hence be such that the thickness of the specimen does not exceed 5 mm (see figures 3 and 4). Preliminary tests shall, however, be conducted with the standard test mix in order to establish that the initial value F (see DIN 53 529 Part 2) ma
11、y still be reliably ascertained despite the thinness of the specimen tested. Continued on pages 2 to 6 Beuth Verlag GrnhH Berlin 30, has exclusive sale rights for German Standards (DIN-Normen) DIN 53 529 Part 1 Engl. Price group 6 Sales No. O106 09.85 Page 2 DIN 53 529 Part 1 4.1.2 Examples of react
12、ion cavities Temperature sensors Temperature sensors Specimen - Lad c-) v d is the thickness of specimen, or thickness of specimen at distance r,. r, is the radius of spec.imen. Figure 3. Reaction cavity of a linear shear curemeter 4.1.3 Cross-linking causes rubber mixes to contract in volume, with
13、the result that slippage may occur between specimen and cavity walls. It is thus recommended that provision be made to compensate for such shrinkage in the specimen. 4.1.4 The curemeter indication is produced by the oscillating strain applied to the specimen in the deforma- tion zone. The design of
14、this zone shall be such as to ensure that the stress on the specimen is distributed as uniformly as possible. It is thus specified that specimens tested in linear shear curemeters (figure 3) shall be of constant thickness d, and those tested in torsion shear curemeters shall have a constant ratio rl
15、d as shown in figure 4. Equivalent requirements shall apply to other types of curemeter. It is of particular importance for the determination of the shear modulus G that the dimensions of the defor- mation zone are kept to so closely that the error in the value of the shear modulus resulting from th
16、e specified dimensional tolerances remains less than 3% (see Ex- planatory notes). Note. When measurements are made in the curemeter, the linear range of the force (or torque) strain characteristic of the rubber mix should not be exceeded. In borderline cases, this shall be checked by plotting the c
17、haracteristic con- cerned after the apparatus requirements specified in subclause 4.1.3 (prevention of slippage) and subclause 4.1.4 (uniformity of stress distribution in the deformation zone) have been fulfilled. 4.1.5 The temperature distribution in the deformation zone shall be as uniform as poss
18、ible. When thermal equilibrium has been attained, the temperature differ- ences overall shall not exceed 3OC. 4.1.6 Provision shall be made for temperature control in the deformation zone by means of temperature sensors with low thermal dissipation. With the drive system switched off, the temperatur
19、e sensors shall be introduced into the specimen in such a way that the points of highest and lowest temperature in the deformation zone may be registered. Specimen Figure 4. Reaction cavity of a torsion shear curemeter The average specimen temperature is dependent on the type of apparatus used. Thus
20、 the temperature to be designated as test temperature shall be that which corresponds to the measured rate constant specified in DIN 53 529 Part 2. 4.1.7 The temperature measured in the wall of the reac- tion cavity is termed the reference temperature. I t is not identical with the test temperature.
21、 Once temperature equilibrium has been established in the specimen, the reference temperature shall not deviate by more than 2C from the test temperature specified in subclause 4.1.6. The temperature sensors used for measuring and con- trolling the reference temperature shall be easily remov- able f
22、or purposes of calibrating the indicating instruments; they shall form a close fit with the cavity wall so as to avoid dead time in the controlled system. The reference temperature shall be reached without overshoot within 3 minutes of the specimen being in- serted. Note. The reference temperature g
23、ives only an approx- imate guide to the test temperature, since the latter, for a given temperature gradient between the cavity wall and the test space, is also deter- mined by the thermal conductivity of the rubber mix and the tolerance of the temperature meas- uring instruments. 4.2 Device for app
24、lying strain to the specimen (drive system) 4.2.1 Elastic deformation of the drive system of cure- meters with a given linear or angular amplitude shall be as small as possible when subjected to load and temper- ature fluctuations. If elastic deformation does result from the loading of the drive sys
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