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Damage modelling of epoxy material under uniaxial tension based on micromechanics and experimental analysis

机译:基于微力学和实验分析的环氧树脂材料单轴拉伸损伤建模

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摘要

Epoxy is a widely used thermosetting polymer in various engineering fields to develop composites. Studying its damage and fracture behaviour under various loading conditions is highly important. In this work, a micromechanics-based damage model is developed for understanding the damage initiation and growth in epoxy. To support this damage model, tests are performed for obtaining mechanical properties and to study the damage behaviour of epoxy. Diglycidyl ether of bisphenol A (DGEBA) resin with triethylenetetramine (TETA) hardener in 10:1 ratio are mixed and cured to make the epoxy. To give a physical meaning to damage, the model quantifies the damage as volume fraction of a spherical void in a unit representative volume element (RVE) of epoxy material. Degraded effective properties are computed for damaged RVE using standard mechanics-based micromechanical approach. A second-degree polynomial is established for effective stiffness with damage at any loading instance. This functional form of degraded stiffness in terms of damage is used in constitutive relations. A strain energy- based approach is used to compute thermodynamic forces, a state variable used for the evolution of damage. A damage evolution model is proposed with two material-specific parameters which are determined using experimental tests. The model is implemented by user material subroutine (UMAT) in commercial finite element software, Abaqus/Standard. The proposed model accurately captures the tensile behaviour of the epoxy material and gives capability to simulate an epoxy material's damage behaviour from its initiation till failure or macrolevel rupture under uniaxial tensile loading. The developed model predicts the behaviour of the material in agreement with experimental results.
机译:环氧是在各种工程领域中广泛用于开发复合材料的热固性聚合物。研究其在各种载荷条件下的破坏和断裂行为非常重要。在这项工作中,建立了基于微力学的损伤模型,以了解环氧树脂的损伤引发和增长。为了支持此损坏模型,进行了测试以获得机械性能并研究环氧树脂的损坏行为。将双酚A(DGEBA)树脂的二缩水甘油醚与三亚乙基四胺(TETA)固化剂按10:1的比例混合并固化,以制成环氧树脂。为了给损伤提供物理意义,该模型将损伤量化为环氧树脂材料的单位代表体积元素(RVE)中球形空隙的体积分数。使用基于标准力学的微机械方法计算受损RVE的有效性能。建立了一个二阶多项式,以求在任何载荷情况下均具有有效的刚度而受到破坏。就损伤而言,这种刚度降低的功能形式用于本构关系。基于应变能的方法用于计算热力学力,热力学力是用于破坏演化的状态变量。提出了具有两个特定于材料的参数的损伤演化模型,这些参数是通过实验测试确定的。该模型由商业有限元软件Abaqus / Standard中的用户材料子例程(UMAT)实现。所提出的模型准确地捕获了环氧树脂材料的拉伸行为,并提供了模拟环氧树脂材料从其萌生直至单轴拉伸载荷下的破坏或宏观破坏之前的破坏行为的能力。所开发的模型与实验结果一致地预测了材料的行为。

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