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Micromechanics-based viscoelastic damage model for particle-reinforced polymeric composites

机译:基于微力学的颗粒增强聚合物复合材料的粘弹性损伤模型

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摘要

The objective of this study is to develop a micromechanics-based viscoelastic damage model that can predict the overall viscoelastic behavior of particle-reinforced polymeric composites undergoing damage. The emphasis here is that the present model successfully combines a rate-dependent viscoelastic constitutive model and a damage model. The Laplace transform based on the Boltzmann superposition principle and the ensemble-volume averaged method suggested by Ju and Chen (Acta Mech 103:103–121, 1994a; Acta Mech 103:123–144, 1994b) are extended toward effective viscoelastic properties. Further, the probability of the distribution function of Weibull (J Appl Mech 18:293–297, 1951) is adopted to describe a damage model that is dependent on damage parameters. A series of numerical simulations including parametric studies, and experimental comparisons are carried out to give insight into the potential capacity of the present micromechanics-based viscoelastic damage framework.
机译:这项研究的目的是建立一个基于微力学的粘弹性损伤模型,该模型可以预测遭受损伤的颗粒增强聚合物复合材料的整体粘弹性行为。这里的重点是本模型成功地结合了速率相关的粘弹性本构模型和损伤​​模型。 Ju和Chen(Acta Mech 103:103-121,1994a; Acta Mech 103:123-144,1994b)提出的基于玻尔兹曼叠加原理的拉普拉斯变换和整体体积平均方法已扩展到有效的粘弹性。此外,采用威布尔分布函数的概率(J Appl Mech 18:293–297,1951)来描述依赖于损伤参数的损伤模型。进行了一系列数值模拟,包括参数研究和实验比较,以洞察当前基于微力学的粘弹性损伤框架的潜在能力。

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