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Fatigue-driven acceleration of abnormal grain growth in nanocrystalline wires

机译:缺乏驱动的纳米晶丝异常晶粒生长的加速度

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Molecular dynamics simulations were employed to simulate the mechanical response and grain evolution in a Ni nanowire for both static and cyclic loading conditions at both 300 and 500 K for periods of 40 ns. The loading conditions included thermal annealing with no deformation, constant 1% extension (creep loading) and cyclic loading with strain amplitudes of 0.5% and 1% for 200 cycles. Under cyclic loading, the stress-strain response showed permanent deformation and cyclic hardening behavior. At 300 K, modest grain evolution was observed at all conditions within the 40 ns simulations. At 500 K, substantial grain growth is observed in all cases, but is most pronounced under cyclic loading. This may result mechanistically from a net motion of the boundaries associated with boundary ratcheting. There is a striking qualitative consistency between the present simulation results and the experimental observation of abnormal grain growth in nanocrystalline metals as a precursor to fatigue crack initiation.
机译:使用分子动力学模拟在300和500K的静态和循环加载条件下模拟Ni纳米线中的机械响应和晶粒演化,以便为40ns的周期。负载条件包括热退火,无变形,恒定的1%延伸(蠕变加载)和循环载荷,应变幅度为0.5%和1%,持续200次循环。在循环负载下,应力 - 应变反应显示永久变形和环状硬化行为。在40 ns模拟中的所有条件下观察到300 k,在所有条件下观察到适度的谷物进化。在500 k下,在所有情况下观察到大量晶粒生长,但在循环载荷下最为明显。这可以从与边界棘轮相关联的边界的净运动机械地产生。本发明的模拟结果与纳米晶金属异常谷物生长的实验观察,缺乏脂肪裂纹引发的前体之间存在显着的定性一致性。

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