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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Direction-dependent fracture in solids: Atomistically calibrated phase-field and cohesive zone model
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Direction-dependent fracture in solids: Atomistically calibrated phase-field and cohesive zone model

机译:固体方向依赖性骨折:原子校准的相场和粘性区域模型

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We propose a new phase-field damage formulation which takes into account anisotropic damage evolution in solids. Such anisotropy projects itself in fracture energy values which depend on the direction of the crack surface. Therefore, instead of one constant scalar parameter for the fracture energy value, we use a direction-dependent fracture energy function. By incorporating a direction-dependent fracture energy function, only a single damage variable as well as a first order damage gradient need to be used within the standard phase-field damage model. This is in contrast to other available anisotropic phase-field models which typically use multiple variables or higher order gradient terms. To obtain values for the fracture energy function, atomistic calculations are performed. Here, molecular static simulations are utilized to calculate the energy of free surfaces within an Aluminum crystal. As a result, we report the fracture energy value as a function of the surface orientation. The obtained fracture energy function is passed directly to the phase-field damage formulation to investigate transgranular fracture within a single crystalline. Moreover, the grain boundary is represented via a cohesive zone model to take into account intergranular fracture in a bi-crystalline structure. The predicted crack path is in good agreement with obtained results from molecular dynamics simulations. Finally, by calibrating the length scale parameter in the phase-field damage model, it is possible to compare the reaction forces from finite element calculations with atomistic ones.
机译:我们提出了一种新的阶段损伤制剂,其考虑了固体的各向异性损伤演化。这种各向异性在裂缝能量值中突出,这取决于裂缝表面的方向。因此,代替裂缝能值的一个恒定标量参数,我们使用方向依赖性裂缝能量功能。通过结合方向依赖性裂缝能量函数,只需要在标准相场损伤模型中使用单个损伤变量以及一阶损伤梯度。这与其他可用的各向异性相位场模型相反,其通常使用多个变量或更高阶梯度术语。为了获得裂缝能量函数的值,执行原子计算。这里,利用分子静态模拟来计算铝晶体内自由表面的能量。结果,我们将裂缝能量值报告为表面取向的函数。所获得的裂缝能量函数直接通过相位损伤制剂,以研究单晶内的骨压骨折。此外,晶界通过粘性区域模型表示,以考虑双晶结构中的晶间骨折。预测的裂缝路径与分子动力学模拟的获得结果良好。最后,通过校准相位损伤模型中的长度比例,可以将反应力与原子原子的有限元计算进行比较。

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