BS 4618-4 6-1974 Recommendations for the presentation of plastics design data - Environmental and chemical effects - The thermal endurance of plastics《塑料设计数据表示方法推荐标准 第4部分 环境和化学效应 第.pdf
《BS 4618-4 6-1974 Recommendations for the presentation of plastics design data - Environmental and chemical effects - The thermal endurance of plastics《塑料设计数据表示方法推荐标准 第4部分 环境和化学效应 第.pdf》由会员分享,可在线阅读,更多相关《BS 4618-4 6-1974 Recommendations for the presentation of plastics design data - Environmental and chemical effects - The thermal endurance of plastics《塑料设计数据表示方法推荐标准 第4部分 环境和化学效应 第.pdf(16页珍藏版)》请在麦多课文档分享上搜索。
1、BRITISH STANDARD BS4618-4.6: 1974 Recommendations for The presentation of plastics design data Part 4: Environmental and chemical effects Section 4.6: The thermal endurance of plastics IMPORTANT NOTE. Before reading this section it is essential to read the General Introduction to this series of Reco
2、mmendations issued separately. UDC001.8:678.5/.8:620.193.94:536.495BS4618-4.6:1974 BSI11-1999 The following BSI references relate to work on this Recommendation: Committee reference PLC/36/5 Draft for comment 72/54305 ISBN 0 580 08467 1 A British Standard does not purport to include all the necessar
3、y provisions of a contract. Users of British Standards are responsible for their correct application. Compliance with a British Standard does not of itself confer immunity from legal obligations. Summary of pages This document comprises a front cover, an inside front cover, pagesi andii, pages1to11
4、and a back cover. This standard has been updated (see copyright date) and may have had amendments incorporated. This will be indicated in the amendment table on the inside front cover. Amendments issued since publication Amd. No. Date CommentsBS4618-4.6:1974 BSI 11-1999 i Contents Page 0 Introductio
5、n 1 1 Principle 1 2 General 1 3 Special considerations for thermoplastics 2 4 Procedure 2 5 Form of presentation 3 Appendix A Example of test procedure 5 Appendix B Notes on ageing ovens 5 Appendix C Method for determining line of “best fit” (least squaresmethod) 6 Appendix D Tables of test methods
6、8 Figure 1 Example of life temperature characteristics for materials,basedonflexural strength 10 Figure 2 Example of test results from flexural strength testsforspecimensaged at 170 C 11 Table 1 Suggested ageing intervals (days) 4 Table 2 Model data and calculation 7 Table 3 Suggested test methods (
7、mainly from BS 2782) 9ii blankBS4618-4.6:1974 BSI 11-1999 1 0 Introduction This section gives a basis for assessing the thermal endurance of plastics in air. A procedure for heat ageing is given, together with suggested tests for assessing changes in properties which may be affected. The section dea
8、ls with a test for one property but the procedure may be repeated, if required, using tests for other properties (seeAppendix D andTable 3). The changes in properties after ageing at various temperatures are plotted and extrapolated to show the temperature at which a life of20000h can be expected. T
9、his temperature is known in the electrical industry as the “temperature index” of the material and the procedure given in this section originates from that industry. This index is a good basis for the comparison of materials but the life times actually achieved in service may be affected by other fa
10、ctors not included in the tests. The measurements of changes in properties are usually made at room temperature. Where the material has to remain serviceable at an elevated temperature, it is necessary to estimate the permissible change in a property at room temperature which corresponds to the limi
11、t of useful life at the operating temperature. Where appropriate, changes in properties at the service temperature may be measured at that temperature. Special effects due to contact between different materials are not considered. The interpretation of results can often be assisted if parallel tests
12、 are carried out on a reference material whose thermal endurance in practical applications is well known. The technique was originally developed for thermosetting materials, but its application to thermoplastics is also considered. It should also be noted that using the same experimental data, more
13、complete information than is given by the “temperature index” may be provided by adding to this the temperature corresponding to a measured life of5000h and the temperature corresponding to the lower95% confidence limit on this. This form of presentation of results is called the “thermal endurance p
14、rofile” and is written, for example,139/159(154). The procedure for obtaining the temperature corresponding to the lower confidence limit is given in IEC Publication 1)“Guide for determination of thermal endurance properties of electrical insulating materials”: PartI“General procedure for determinat
15、ion of thermal endurance properties, temperature indices and thermal endurance profiles”, and PartII “List of materials and available tests”. 1 Principle In this procedure, of which an example is given inAppendix A, a material is thermally aged at three, or preferably more, temperatures. The measure
16、d life of the material,i.e.the point at which the measured property has changed by a stated amount which is taken to indicate the limit of serviceability for the material, is obtained at each of these temperatures so that the results can be extrapolated to the operating temperature (seeFigure 1). It
17、 is customary to quote as the “temperature index”, the temperature corresponding to an extrapolated life of20000h. 2 General 2.1 The effects of ageing can be characterized by the change in any suitable property or properties; mechanical and electrical measurements are often convenient. It should be
18、noted, however, that even for materials used for electrical applications, the end of useful life is often due to mechanical failure which may, of course, lead to an electrical failure. 1) At present in the form of a draft.BS4618-4.6:1974 2 BSI 11-1999 2.2 The following safeguards are necessary to av
19、oid misleading results. 2.2.1 The extrapolation to the temperature corresponding to20000h should not be by more than25 C. 2.2.2 The lowest ageing temperature should give an average measured life of over5000h. 2.2.3 The highest ageing temperature should give an average measured life of over100h. 2.2.
20、4 At least three ageing temperatures should be used at suitable temperature intervals. 3 Special considerations for thermoplastics The safeguards given in2.2 present little difficulty with thermosetting materials, but there may be difficulty with thermoplastics for the following reasons. a) The oper
21、ating temperatures for thermoplastics are normally close to the temperatures at which appreciable softening occurs over small temperature intervals, with corresponding changes in most other physical properties. In these circumstances the ageing temperature intervals may be reduced, but much closer t
22、emperature control is necessary than that specified in the normal procedure. Extrapolation, as shown inFigure 1, from above to below the glass transition temperature cannot generally be assumed valid. b) The morphological structure of thermoplastics, and hence their physical properties, can be affec
23、ted by their complete thermal ageing history,i.e.,by the rates of heating and cooling as well as by the ageing temperatures and duration of ageing. If partially crystalline thermoplastics are aged at temperatures which cause crystallite melting, then recrystallization on cooling can give a structure
24、 different from the original structure and the associated changes in the physical properties of the cooled test pieces will be superimposed upon the changes due to ageing. The test pieces may have “frozen-in” strains. Thermal ageing will cause molecular re-orientation, with a consequent reduction in
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