Analysis of Cord-Rubber Composite Response Using the Nonlinear Continuum Damage Mechanics Approach

IF 1.2 4区 工程技术 Q4 POLYMER SCIENCE Rubber Chemistry and Technology Pub Date : 2023-09-29 DOI:10.5254/rct-23.361055
Mahmoud C Assaad, Ming Du, Tom Ebbott
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Abstract

ABSTRACT The phenomenon of damage observed in cord-rubber composite laminates is the result of deformation, heat, chemical damage and fracture. The micro cracks and the initial voids, present before any load is applied, grow through the mechanism of coalescence and generate permanent macroscopic cracks. A damage approach is proposed to describe the cumulative effects and damage evolution under cyclic loading, thermal and chemical impact. The approach parallels the Continuum Damage Mechanics (CDM) approach advocated by Kachanov and Rabotnov (ref.1, 2) It is a phenomenological model which depends on laboratory testing to describe the evolution of damage and contains one scalar parameter to describe the collective effect of material damage. The following analysis is based on the premise that the cyclic interlaminar shear strain, coupled with the running temperature at the free edge is the primary cause of damage. The model constants were derived from an S-N curve at room temperature. The temperature effect on the material damage was accounted for by an Arrhenius shift function of the S-N curve. Numerical simulation of a composite laminate was conducted using the user subroutine UMAT in ABAQUS. The results presented reflect the accuracy of the proposed methodology to predict the location of the ensuing damage, and the path of the damage propagation.
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基于非线性连续损伤力学方法的索-橡胶复合材料响应分析
在帘线橡胶复合材料层合板中观察到的损伤现象是变形、热、化学损伤和断裂的结果。在施加任何荷载之前就存在的微裂纹和初始空洞,通过聚结机制发展,形成永久性宏观裂纹。提出了一种损伤方法来描述循环载荷、热冲击和化学冲击下的累积效应和损伤演化。该方法与Kachanov和Rabotnov (ref. 1,2)所倡导的连续损伤力学(Continuum Damage Mechanics, CDM)方法相似,它是一种依赖于实验室测试来描述损伤演化的现象模型,包含一个标量参数来描述材料损伤的集体效应。下面的分析是基于循环层间剪切应变加上自由边的运行温度是破坏的主要原因的前提下进行的。模型常数由室温下的S-N曲线得到。温度对材料损伤的影响可以用S-N曲线的Arrhenius位移函数来解释。利用ABAQUS中的用户子程序UMAT对复合材料层合板进行了数值模拟。结果表明,该方法能够准确预测后续损伤的位置和损伤传播路径。
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来源期刊
Rubber Chemistry and Technology
Rubber Chemistry and Technology 工程技术-高分子科学
CiteScore
3.50
自引率
20.00%
发文量
21
审稿时长
3.6 months
期刊介绍: The scope of RC&T covers: -Chemistry and Properties- Mechanics- Materials Science- Nanocomposites- Biotechnology- Rubber Recycling- Green Technology- Characterization and Simulation. Published continuously since 1928, the journal provides the deepest archive of published research in the field. Rubber Chemistry & Technology is read by scientists and engineers in academia, industry and government.
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