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Strain-induced coarsening in nanocrystalline metals under cyclic deformation

机译:循环变形下纳米晶金属的应变诱导粗化

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Atomic-scale computer simulations have previously identified a deformation mechanism, which becomes important in nanocrystalline metals with grain sizes below 10-15 nm. Instead of proceeding through dislocation activity in the grains, the deformation occurs by slip events in the grain boundaries, leading to a reverse Hall-Petch effect, i.e. a decrease in hardness with decreasing grain size. In this paper, the consequences of this shift in deformation mode are investigated for systems subjected to large strains in a cyclic deformation pattern. In most coarse-grained metals, severe plastic deformation leads to grain refinement. Indeed, severe plastic deformation is often used to generate nanocrystalline metals with grain sizes down to hundred nanometres. The simulations indicate that these processes are suppressed in sufficiently small grains, and instead the sliding events in the grain boundaries dramatically enhance diffusion processes, and lead to grain coarsening as the deformation proceeds.
机译:原子级计算机模拟先前已经确定了变形机制,该变形机制在晶粒尺寸小于10-15 nm的纳米晶体金属中变得很重要。代替进行晶粒中的位错活性,而是通过晶界中的滑动事件发生变形,从而导致反向的霍尔-帕奇效应,即,硬度随着晶粒尺寸的减小而降低。在本文中,对于周期性变形模式中承受大应变的系统,研究了这种变形模式变化的后果。在大多数粗晶粒金属中,严重的塑性变形会导致晶粒细化。实际上,严重的塑性变形通常用于产生晶粒尺寸低至数百纳米的纳米晶体金属。仿真表明,在足够小的晶粒中抑制了这些过程,相反,晶界中的滑动事件显着增强了扩散过程,并随着变形的进行而导致晶粒粗化。

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