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Thermodynamic analysis of dissociation of periodic dislocation dipoles in isotropic crystals

机译:各向同性晶体中周期性脱位偶极子解离的热力学分析

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In the past, experimentally observed dislocations were often interpreted using an isolated dislocation assumption because the effect of background dislocation density was difficult to evaluate. Contrarily, dislocations caused by atomistic simulations under periodic boundary conditions can be better interpreted because linear elastic theory has been developed to address the effect of periodic dislocation array in the literature. However, this elastic theory has been developed only for perfect dislocations, but not for dissociated dislocations. The periodic boundary conditions may significantly change the dissociation energy of dislocations and stacking fault width, which in turn, change the deformation phenomena observed in simulations. To enable materials scientists to understand the dislocation behavior under the periodic boundary conditions, we use isotropic elastic theory to analyze the thermodynamics of dissociated periodic dislocations with an arbitrary dislocation character angle. Analytical expressions for force, stacking fault width, and energies are presented in the study. Results obtained from the periodic dislocation array were compared with those obtained from isolated dislocations to shed light on the interpretation of experimentally observed and simulated dislocations.
机译:在过去,通过分离的位错假设来说,经过实验观察到的脱位,因为背景位错密度难以评估的效果。相反,由于连续边界条件下由原子模拟引起的脱位可以更好地解释,因为已经开发了线性弹性理论来解决文献中周期性位错阵列的影响。然而,这种弹性理论仅用于完美脱位,但不适用于解离错位。周期性边界条件可以显着改变错位的解离能和堆叠故障宽度,这反过来改变模拟中观察到的变形现象。为了使材料科学家理解周期性边界条件下的位错行为,我们使用各向同性弹性理论与任意位错角度角度分析解离周期性脱位的热力学。研究中提出了用于力,堆叠故障宽度和能量的分析表达式。将从周期性位错阵列获得的结果与从分离的脱位获得的结果进行比较,以在实验观察和模拟脱位的解释上脱光。

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    《RSC Advances》 |2020年第58期|共10页
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    X. W. Zhou;

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