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首页> 外文期刊>Theoretical and Experimental Plant Physiology >A coupled ductile fracture phase-field model for crystal plasticity
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A coupled ductile fracture phase-field model for crystal plasticity

机译:晶体塑性的耦合延性裂缝相场模型

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Nowadays crack initiation and evolution play a key role in the design of mechanical components. In the past few decades, several numerical approaches have been developed with the objective to predict these phenomena. The objective of this work is to present a simplified, nonetheless representative phenomenological model to predict the crack evolution of ductile fracture in single crystals. The proposed numerical approach is carried out by merging a conventional elasto-plastic crystal plasticity model and a phase-field model modified to predict ductile fracture. A two-dimensional initial boundary value problem of ductile fracture is introduced considering a single-crystal setup and Nickel-base superalloy material properties. The model is implemented into the finite element context subjected to a quasi-static uniaxial tension test. The results are then qualitatively analyzed and briefly compared to current benchmark results in the literature.
机译:如今破裂启动和进化在机械部件的设计中发挥着关键作用。 在过去的几十年里,已经开发了几种数值方法,目的是预测这些现象。 本作作品的目的是呈现简化的,尤其代表性的现象学模型,以预测单晶的延性骨折的裂纹演变。 通过合并传统的弹塑性塑性塑性模型和改性的相场模型来进行所提出的数值方法,以预测延展性裂缝。 考虑单晶设定和镍基超合金材料性能,引入了延展性裂缝的二维初始边值问题。 该模型被实施在经过准静态单轴张力测试的有限元上下文中。 然后将结果与文献中的当前基准导致进行了定性分析和简要地进行了分析。

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