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Numerical simulation of fatigue crack propagation in WC/Co based on a continuum damage mechanics approach

机译:基于连续伤害力学方法的WC / CO疲劳裂纹繁殖的数值模拟

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WC/Co referred also as hardmetal is one of the most widely used composite materials because of its high strength and wear resistance. The two interpenetrating phases of this advanced material have different mechanical properties: the brittle (elastic) WC phase contributes to the very high hardness whereas the ductile (elasto-plastic) Co phase contributes to the increased toughness of the material. There is a common agreement in literature that the hardmetals exhibit high fatigue sensitivity and the fatigue occurs predominantly in the ductile binder phase featuring ductile failure mechanisms. In this study the main focus was given to the numerical study of the microscale fatigue crack development in WC/Co. In this respect a damage model based on a continuum damage mechanics approach was implemented in commercial solver Abaqus/Explicit for simulating the crack propagation in the material. Separate damage laws based on brittle failure and fatigue are implemented for the WC and the Co phases, respectively. In order to evaluate the performance of the approach a numerical model based on a real damaged microstructure was generated. Based on the simulation results, the numerical model reflected strong agreement in comparison with the real crack pattern generated during the experiment. Results of this study indicate a strong dependence of the fatigue crack on accumulated plasticity within the binder phase; this suggests a novel understanding of the fatigue mechanism of this material and provides a basis for larger microstructural models.
机译:WC / CO也称为硬质合金是由于其高强度和耐磨性而使用最广泛使用的复合材料之一。这种先进材料的两个互进相具有不同的机械性能:脆性(弹性)WC相有助于非常高的硬度,而延性(弹性塑料)CO相有助于提高材料的韧性。在文献中存在共同的一致性,硬质制品表现出高疲劳敏感性,并且疲劳主要发生在延性粘合剂相中具有韧性失效机构的延性粘合剂相。在本研究中,主要重点是WC / CO中的微观疲劳裂纹发育的数值研究。在这方面,在商业解决方案中实施了基于连续损伤力学方法的损伤模型,用于模拟材料中的裂纹传播。分别为WC和CO阶段实施了基于脆性故障和疲劳的单独损害定律。为了评估方法的性能,产生了基于真实损坏的微观结构的数值模型。基于仿真结果,与实验期间生成的真正裂缝模式相比,数值模型反映了强烈的一致性。该研究的结果表明疲劳裂纹对粘合剂相中累积可塑性的强烈依赖性;这表明对这种材料的疲劳机制的新颖理解,并为较大的微观结构模型提供了基础。

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