粘弹性复合材料损伤演化的高保真广义细胞法细观力学分析

IF 2.1 4区 材料科学 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING Mechanics of Time-Dependent Materials Pub Date : 2024-12-11 DOI:10.1007/s11043-024-09756-7
Nathan Perchikov, Jacob Aboudi, Konstantin Y. Volokh
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引用次数: 0

摘要

采用材料沉降渐进损伤演化理论和微力学有限应变高保真广义单元法(HFGMC),研究了粘弹性材料中典型的时滞应力响应对多孔软材料和纤维增强软基复合材料损伤演化的影响。在材料沉降法中,损伤和裂纹的位置不是预先假定的,而是通过力学推导的微分方程的双向耦合系统的解来预测的,其中包括完整-材料平衡定律,以及应力平衡。粘弹性响应是基于广义麦克斯韦型流变模型,典型的生物组织。将粘弹性本构关系推广到包含演化损伤,从而得到加载速率敏感的时变响应。有限应变HFGMC细观力学分析了具有周期性微观结构的复合材料,该复合材料由具有复杂响应特征的组分组成,包括粘性部分、超弹性部分和退化部分,由类似相场的方法描述,尽管是从力学上推导的。在HFGMC细观力学框架下,周期性复合材料的重复单元胞被划分为多个亚胞。所得到的耦合方程组在子单元中以体积平均意义上的强形式强制执行,并且在表面平均意义上施加内部(连续性)和全局(周期性)边界条件。在场连续之前,算法实现了亚单元平衡。介绍了在多孔软粘弹性材料和纤维增强粘弹性复合材料的应力响应和损伤演化历史预测中的应用。
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High-fidelity-generalized-method-of-cells micromechanical analysis of damage evolution in viscoelastic composites

The effect of time-delayed stress response, typical for viscoelastic materials, on the evolution of damage in porous soft materials and fiber-reinforced soft-matrix composites is studied by employing the material-sink gradual damage evolution theory and the micromechanical finite strain high-fidelity generalized method of cells (HFGMC). In the material-sink approach, damage and crack locations are not postulated in advance, but are instead predicted by the solution of a two-way coupled system of mechanistically derived differential equations, which include the intact-material balance law, in addition to stress equilibrium. The viscoelastic response is based on a rheological model of the generalized Maxwell type, typical for biological tissues. The viscoelastic constitutive relation is generalized to incorporate evolving damage, resulting in loading-rate sensitive time-dependent response. The finite strain HFGMC micromechanics analyzes composite materials that possess periodic microstructure and are comprised of constituents characterized by complex response, with a viscous part, a hyperelastic part and a degradation part, described by a phase-field like approach, albeit derived mechanistically. In the framework of HFGMC micromechanics, the repeating unit cell of the periodic composite is divided into numerous subcells. The resulting coupled system of equations is enforced in the subcell in strong form in the volume-averaged sense and the internal (continuity) and global (periodic) boundary conditions are imposed in the surface-averaged sense. Subcell equilibrium is algorithmically attained prior to fields continuity. Applications are presented for the prediction of the stress response and damage evolution history in porous soft viscoelastic materials and fiber-reinforced viscoelastic composites.

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来源期刊
Mechanics of Time-Dependent Materials
Mechanics of Time-Dependent Materials 工程技术-材料科学:表征与测试
CiteScore
4.90
自引率
8.00%
发文量
47
审稿时长
>12 weeks
期刊介绍: Mechanics of Time-Dependent Materials accepts contributions dealing with the time-dependent mechanical properties of solid polymers, metals, ceramics, concrete, wood, or their composites. It is recognized that certain materials can be in the melt state as function of temperature and/or pressure. Contributions concerned with fundamental issues relating to processing and melt-to-solid transition behaviour are welcome, as are contributions addressing time-dependent failure and fracture phenomena. Manuscripts addressing environmental issues will be considered if they relate to time-dependent mechanical properties. The journal promotes the transfer of knowledge between various disciplines that deal with the properties of time-dependent solid materials but approach these from different angles. Among these disciplines are: Mechanical Engineering, Aerospace Engineering, Chemical Engineering, Rheology, Materials Science, Polymer Physics, Design, and others.
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