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A dislocation kinetic model of the dislocation structure formation in a nanocrystalline material under intense shock wave propagation

机译:强冲击波传播下纳米晶材料中位错结构形成的位错动力学模型

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摘要

A dislocation kinetic model of the formation and propagation of plastic shock waves in nanocrystalline materials (with a grain size of 1-100 nm) at pressures ranging from 1 to 50 GPa has been discussed theoretically. The model is based on a nonlinear equation of the reaction-diffusion type for the dislocation density, which includes the processes of multiplication, annihilation, and diffusion of dislocations with a strong absorption of the dislocations by nanograin boundaries. The solution of this equation is obtained in the form of a traveling dislocation density wave propagating with a constant velocity. The dependences of the dislocation density and dislocation front width on the nanograin size and pressure in the wave are determined. A comparison of the obtained dependences with the available results of the experiments and molecular dynamics simulations of shock-deformed nanocrystalline materials demonstrates their good quantitative agreement.
机译:理论上讨论了在1至50 GPa压力下,纳米晶体材料(晶粒尺寸为1-100 nm)中塑性冲击波的形成和传播的位错动力学模型。该模型基于位错密度的反应扩散类型的非线性方程,其中包括位错的扩散,hil没和扩散过程,并且纳米颗粒边界对位错具有很强的吸收能力。该方程的解以以恒定速度传播的行错位密度波的形式获得。确定位错密度和位错前沿宽度对纳米晶粒尺寸和波中压力的依赖性。所获得的依赖性与冲击变形纳米晶材料的实验和分子动力学模拟的可用结果的比较证明了它们良好的定量一致性。

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