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Electrical and mechanical behavior of filled rubber. III. Dynamic loading and the rate of recovery

机译:填充橡胶的电气和机械性能。三,动态加载和恢复速率

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Following the earlier articles in this series, the changes in the electrical resistivity and mechanical behavior as a result of static and dynamic deformation have been studied. Cyclic shear and tensile loading were used to follow the changes in stress and resistivity with strain, including the recovery with time from the effects of a large strain as monitored by the small-strain behavior. The recovery of resistivity from a prestrain was not complete even after 7 days at room temperature or at 50 degrees C, but swelling with a solvent and subsequent drying produced rapid recovery. It appears from the detailed results that there are two strain regions. Below about 10% the resistance and the modulus are strongly dependent on the filler-filler structure, which can break down and reform fairly readily, but the changes at higher strains are probably influenced by changes in the elastomer matrix and also by slippage at the filler-rubber interface. (c) 2005 Wiley Periodicals, Inc.
机译:在本系列的前几篇文章之后,研究了由于静态和动态变形而导致的电阻率和机械性能的变化。循环剪切和拉伸载荷用于跟踪应力和电阻率随应变的变化,包括随小应变行为监测的大应变影响随时间的恢复。即使在室温或50℃下7天后,从预应变的电阻率恢复也没有完成,但是用溶剂溶胀并随后干燥产生了快速恢复。从详细结果看来,存在两个应变区域。低于约10%时,电阻和模量在很大程度上取决于填料-填料结构,填料结构很容易破裂和重新形成,但较高应变下的变化可能受弹性体基质变化以及填料滑动的影响-橡胶接口。 (c)2005年Wiley Periodicals,Inc.

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