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首页> 外文期刊>Journal of Materials Engineering and Performance >Constitutive Model of Micromechanical Damage to Predict Reduction in Stiffness of a Fatigued SMC Composite
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Constitutive Model of Micromechanical Damage to Predict Reduction in Stiffness of a Fatigued SMC Composite

机译:预测疲劳SMC复合材料刚度降低的微机械损伤本构模型。

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摘要

Elastic behavior of sheet molding compound (SMC) composites with a given orientational distribution of fibers under cyclic loading is investigated herein. Fatigue tests were carried out over various strain ranges. During each test, evolution of Young's modulus was measured and the composite was analyzed using scanning electron microscopy. Observations revealed the principal form of degradation to be matrix fiber debonding. A constitutive model that takes into account the reduction of overall elastic properties, i.e.. Young's modulus, was developed. This model uses a Mori-Tanaka mean field approach coupled with a micromechanical damage law. The energetic failure criterion and the failure probability are functions of local shear and normal stresses calculated at each point of the interface of each fiber family. A procedure for identifying the most appropriate material parameters is described in detail. The proposed model agrees well with the experimental results.
机译:本文研究了在循环载荷下具有给定纤维取向分布的片状模塑料(SMC)复合材料的弹性行为。在各种应变范围内进行了疲劳测试。在每次测试期间,测量杨氏模量的演变,并使用扫描电子显微镜分析复合材料。观察结果表明,降解的主要形式是基质纤维脱粘。开发了一种考虑到整体弹性特性即杨氏模量降低的本构模型。该模型使用Mori-Tanaka平均场方法以及微机械损伤定律。高能破坏准则和破坏概率是在每个纤维家族的界面的每个点计算的局部剪切力和正应力的函数。详细描述了识别最合适的材料参数的过程。提出的模型与实验结果吻合良好。

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