首页> 外文会议>Shock Compression of Condensed Matter―2001 >ATOMISTIC SIMULATIONS OF THE MOTION OF AN EDGE DISLOCATION IN ALUMINUM USING THE EMBEDDED ATOM METHOD
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ATOMISTIC SIMULATIONS OF THE MOTION OF AN EDGE DISLOCATION IN ALUMINUM USING THE EMBEDDED ATOM METHOD

机译:嵌入原子法在铝中边缘错位运动的原子模拟

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The motion of an edge dislocation is analyzed for temperatures ranging from 10 K to 200 K aad for stresses up to 5 GPa. The dislocation velocity versus the applied shear stress curve can be divided into four regimes corresponding to successively higher shear stresses. In the first regime, the applied shear stress is below the Peierls stress and the dislocation velocity is nominally zero. In the second regime, the dislocation velocity decreases with increasing temperature indicating the presence of a drag due to thermal phonons. In the third regime, the dislocation reaches a sub-sonic limiting velocity that can be predicted by a two-dimensional lattice-dynamics analysis. Such an analysis predicts a limiting velocity for a moving defect when the phase velocity and the group velocity are equal. If even higher shear stresses are applied, the dislocation travels with a transonic velocity of 2~(1/2) times the shear wave speed.
机译:分析边缘错位的运动,温度范围从10 K aad到200 K aad,最大应力不超过5 GPa。位错速度对施加的剪切应力曲线可分为四个区域,分别对应于相继较高的剪切应力。在第一种状态下,施加的剪切应力低于Peierls应力,位错速度名义上为零。在第二种状态下,位错速度随着温度的升高而降低,表明存在由于热声子而产生的阻力。在第三种状态下,位错达到亚音速极限速度,该速度可以通过二维晶格动力学分析来预测。当相速度和群速度相等时,这样的分析预测了运动缺陷的极限速度。如果施加更高的剪切应力,则位错以横波速度为剪切波速度的2〜(1/2)倍的速度行进。

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