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首页> 外文期刊>Metals >Crack Propagation in Honeycomb Cellular Materials: A Computational Approach
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Crack Propagation in Honeycomb Cellular Materials: A Computational Approach

机译:蜂窝状蜂窝材料中的裂纹扩展:一种计算方法

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Computational models based on the finite element method and linear or nonlinear fracture mechanics are herein proposed to study the mechanical response of functionally designed cellular components. It is demonstrated that, via a suitable tailoring of the properties of interfaces present in the meso- and micro-structures, the tensile strength can be substantially increased as compared to that of a standard polycrystalline material. Moreover, numerical examples regarding the structural response of these components when subjected to loading conditions typical of cutting operations are provided. As a general trend, the occurrence of tortuous crack paths is highly favorable: stable crack propagation can be achieved in case of critical crack growth, whereas an increased fatigue life can be obtained for a sub-critical crack propagation.
机译:本文提出了基于有限元方法和线性或非线性断裂力学的计算模型,以研究功能设计的细胞组件的机械响应。已经证明,通过适当地调整介孔结构和微结构中存在的界面的性能,与标准多晶材料相比,可以显着提高抗张强度。而且,提供了关于这些部件在经受切削操作典型的载荷条件时的结构响应的数值示例。通常,曲折裂纹路径的发生是非常有利的:在临界裂纹扩展的情况下,可以实现稳定的裂纹扩展,而对于次临界裂纹扩展,则可以提高疲劳寿命。

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