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Hyperelasticity model for finite element analysis of natural and high damping rubbers in compression and shear

机译:天然橡胶和高阻尼橡胶在压缩和剪切作用下的有限元分析的超弹性模型

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摘要

Rate-independent monotonic behavior of filled natural rubber and high damping rubber is investigated in compression and shear regimes. Monotonic responses obtained from tests conducted in both regimes demonstrate the prominent existence of the Fletcher-Gent effect, indicated by high stiffness at low strain levels. An improved hyperelasticity model for compression and shear regimes is proposed to represent the rate-independent instantaneous and equilibrium responses including the Fletcher-Gent effect. A parameter identification scheme involving simultaneous minimization of least-square residuals of uniaxial compression and simple shear data is delineated. The difficulties of identifying a unique set of hyperelasticity parameters that hold for both compression and shear deformation modes are thus overcome. The proposed hyperelasticity model has been implemented in a general purpose finite element program. Finite element simulations of experiments have shown the adequacy of the proposed hyperelasticity model, estimated parameters, and employed numerical procedures. Finally, numerical experiments were conducted to further explore the potential of the proposed model, and estimated parameters in analyzing rubber layers of a base isolation bearing subjected either to compression or to a combination of compression and shear.
机译:在压缩和剪切状态下研究了填充天然橡胶和高阻尼橡胶的速率无关的单调行为。从这两种方案中进行的测试中获得的单调响应表明,存在Fletcher-Gent效应的显着性表现为低应变水平下的高刚度。提出了一种改进的压缩和剪切状态超弹性模型,以表示速率无关的瞬时和平衡响应,包括Fletcher-Gent效应。描述了一种参数识别方案,该方案涉及同时最小化单轴压缩的最小二乘残差和简单剪切数据。因此克服了识别对于压缩和剪切变形模式都成立的独特的一组超弹性参数的困难。拟议的超弹性模型已在通用有限元程序中实现。有限元模拟实验表明,所提出的超弹性模型,估计的参数和采用的数值程序是足够的。最后,进行了数值实验,以进一步探索所提出模型的潜力,并在分析受压或受压与受剪组合的基础隔震轴承的橡胶层中估计参数。

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