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ANALYSIS OF STIFFNESS VARIATIONS IN CONTEXT OF STRAIN-, STRESS-, AND ENERGY-CONTROLLED PROCESSES

机译:应变,应力和能量控制过程中的刚度变化分析

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摘要

In compounded material systems, such as rubber, a wide range of properties can be achieved by design. This flexibility poses a challenge–how to balance stiffness against other considerations, such as energy dissipation under dynamic loading, fatigue, etc. Negotiating this balance requires that adequate account be taken of how a given mechanical input (i.e., strain, stress, energy) is controlled, and how other mechanical outputs vary as the stiffness changes. We outline here a simple analysis by which these considerations can be managed. The analysis is based on a novel split of the elasticity law into work-conjugate parts: one representing generally that which is to be held constant, and the other representing that which occurs in reaction to imposed control. The split gives rise to a scalar parameter suitable for quantifying the degree to which a given ID mechanical process is strain-, energy-, or stress-controlled. The physical sense of the parameter is illustrated through the example of a two-spring system, where one spring represents the subject material, and the other represents the mechanical environment in which the material operates. The example shows that the parameter concisely summarizes the effects of the environment on the operating conditions of the material. We also provide a simple example illustrating how the parameter can be used to rank the fatigue performance of a set of compounds, taking into account the stiffness and the test control mode.
机译:在橡胶等复合材料系统中,可以通过设计实现多种性能。这种灵活性提出了一个挑战-如何平衡刚度和其他考虑因素,例如在动态载荷,疲劳等情况下的能量耗散。要达成这种平衡,需要充分考虑给定的机械输入(例如,应变,应力,能量)控制,以及其他机械输出如何随刚度变化而变化。我们在这里概述了一个简单的分析,可以通过这些分析来管理这些注意事项。该分析基于将弹性定律新颖地分解为功共轭部分:一个通常代表要保持恒定的部分,另一个代表对施加控制的反应中发生的部分。分割产生标量参数,该标量参数适用于量化给定ID机械过程受应变,能量或应力控制的程度。通过两个弹簧系统的示例来说明参数的物理意义,其中一个弹簧代表主体材料,另一个弹簧代表材料在其中工作的机械环境。该示例表明,该参数简明扼要地总结了环境对材料操作条件的影响。我们还提供了一个简单的示例,说明了如何考虑到刚度和测试控制模式,使用该参数对一组化合物的疲劳性能进行排名。

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