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Phase field modeling and simulation of coupled fracture and twinning in single crystals and polycrystals

机译:单晶和多晶耦合断裂和孪生的相场建模和仿真

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摘要

A phase field theory incorporating both fracture and deformation twinning behaviors in crystalline solids is described and implemented in finite element calculations. A variational approach is used to derive governing equations for quasi-static loading. The constitutive theory accounts for possible anisotropy of surface energy of fracture, enabling preferential cleavage on intrinsically weak crystallographic plane(s). Both linear elastic and nonlinear elastic models for bulk material behavior are addressed, the latter via compressible neo-Hookean elasticity. Numerical implementation is undertaken via the finite element method, wherein nodal degrees of freedom are displacement components and order parameters associated with twinning shear and local elastic stiffness reduction from fracture. Three dimensional simulations are reported, with solutions obtained via incremental energy minimization subjected to appropriate boundary and irreversibility constraints. Two sets of calculations are considered: a single crystal with a geometric notch, from which a crack and/or twin may extend upon mode I or mode II loading, and simple tension of a polycrystal consisting of grains with various lattice orientations. Results from the first set of calculations demonstrate a tendency for fracture before twinning when surface energies of the two mechanisms are equal, and a tendency for twinning to delay fracture when the fracture energy substantially exceeds the twin boundary energy. Results from the second set demonstrate effects of relative orientations of cleavage planes to habit planes (parallel or perpendicular), effects of initial orientation distributions, and effects of secondary grain boundary phases differing in strength and stiffness from surrounding crystals. Published by Elsevier B.V.
机译:描述并结合了在结晶固体中断裂和变形孪生行为的相场理论,并在有限元计算中实现。使用变分方法来导出准静态载荷的控制方程。本构理论考虑了断裂表面能的各向异性,从而能够在本征较弱的晶体学平面上优先裂解。解决了用于块状材料行为的线性弹性和非线性弹性模型,后者通过可压缩的新霍克弹性来解决。通过有限元方法进行数值实施,其中节点自由度是位移分量和与孪生剪切和断裂引起的局部弹性刚度降低相关的阶次参数。报道了三维模拟,其中通过增量能量最小化获得的解决方案受到适当的边界和不可逆性约束。考虑两组计算:具有几何凹口的单晶,在模式I或模式II加载下,裂纹和/或孪晶可能从该晶体延伸,以及由具有各种晶格取向的晶粒组成的多晶的简单张力。第一组计算的结果表明,当两种机理的表面能相等时,孪晶发生断裂前的趋势,而当断裂能大大超过孪晶边界能时,孪生会延迟断裂的趋势。第二组结果表明,解理面相对于习惯面的相对取向(平行或垂直)的影响,初始取向分布的影响以及次生晶界相的强度和刚度与周围晶体不同。由Elsevier B.V.发布

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