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FINITE STRAIN MICROMECHANICAL MODELING OF THERMOVISCOELASTIC MATRIX COMPOSITES

机译:热粘弹性基体复合材料的有限应变微观力学模拟

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摘要

A finite strain micromechanical analysis is generalized for the modeling of thermoviscoelastic matrix composites. The thermoviscoelastic matrix of the composite is represented by a finite thermoviscoelas-ticity theory that permits (in contrast to finite linear thermoviscoelasticity theories) large deviations away from thermodynamic equilibrium. As a result, it is possible to subject the composite to large thermome-chanical loadings. In addition, the possibility of evolving damage in the matrix is included. The derived micromechanical model is applied to investigate the behavior of a thermoviscoelastic rubber-like matrix reinforced by steel fibers in various circumstances. By subjecting the composite to mechanical loading under isentropic conditions, the micromechanical model is employed for the prediction of thermoelastic inversion point at which the Gough-Joule phenomenon at the rubber-like phase occurs. Results are given that show the effect of damage, elevated temperature and viscoelasticity of the matrix on the global response of the composite including its creep and relaxation behavior.
机译:有限应变微机械分析被普遍用于热粘弹性基体复合材料的建模。复合材料的热粘弹性矩阵由有限的热粘弹性理论表示,该理论允许(与有限的线性热粘弹性理论相反)远离热力学平衡的偏差。结果,可以使复合材料承受大的热机械负荷。此外,还包括损坏矩阵的可能性。导出的微力学模型用于研究钢纤维增强的热粘弹性橡胶状基质在各种情况下的行为。通过在等熵条件下使复合材料承受机械载荷,可将微机械模型用于预测在橡胶状相处发生高夫-焦耳现象的热弹性转变点。结果表明,损伤,高温和粘弹性对复合材料的整体响应(包括蠕变和松弛行为)的影响。

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