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Adaptive atomistic-to-continuum modeling of propagating defects

机译:传播缺陷的自适应原子到连续谱建模

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SUMMARY: An adaptive atomistic-to-continuum method is presented for modeling the propagation of material defects. This method extends the bridging domain method to allow the atomic domain to dynamically conform to the evolving defect regions during a simulation, without introducing spurious oscillations and without requiring mesh refinement. The atomic domain expands as defects approach the bridging domain method coupling domain by fine graining nearby finite elements into equivalent atomistic subdomains. Additional algorithms coarse grain portions of the atomic domain to the continuum scale, reducing the degrees of freedom, when the atomic displacements in a subdomain can be approximated by FEM or extended FEM elements to within a certain homogeneity tolerance. The extended FEM approximations are created by fitting the broken inter-atomic bonds of fractured surfaces and dislocation slip planes. Because atomic degrees of freedom are maintained only where needed for each timestep, the solution retains the advantages of multiscale modeling, with a reduced computational cost compared with other multiscale methods.
机译:摘要:提出了一种自适应的原子连续谱方法,用于对材料缺陷的传播进行建模。此方法扩展了桥接域方法,以允许原子域在仿真过程中动态符合不断发展的缺陷区域,而不会引入杂散振荡,也不需要网格细化。当缺陷接近桥接域方法时,通过将附近的有限元细化为等效的原子子域,原子域会扩展。当子域中的原子位移可以通过FEM或扩展的FEM元素近似在一定的同质性容差范围内时,其他算法可以将原子域的晶粒部分粗化到连续尺度,从而降低自由度。扩展的FEM近似值是通过拟合断裂表面和位错滑移面的断裂原子间键来创建的。由于仅在每个时间步需要的地方都保持原子自由度,因此该解决方案保留了多尺度建模的优势,与其他多尺度方法相比,降低了计算成本。

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