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Rebound mechanics of micrometre-scale spherical particles in high-velocity impacts

机译:高速撞击中微米级球形颗粒的回弹力学

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摘要

The impact mechanics of micrometre-scale metal particles with flat metal surfaces is investigated for high-velocity impacts ranging from 50 m s−1 to more than 1 km s−1, where impact causes predominantly plastic deformation. A material model that includes high strain rate and temperature effects on the yield stress, heat generation due to plasticity, material damage due to excessive plastic strain and heat transfer is used in the numerical analysis. The coefficient of restitution e is predicted by the classical work using elastic–plastic deformation analysis with quasi-static impact mechanics to be proportional to Vi1/4 and Vi1/2 for the low and moderate impact velocities that span the ranges of 0–10 and 10–100 m s−1, respectively. In the elastic–plastic and fully plastic deformation regimes the particle rebound is attributed to the elastic spring-back that initiates at the particle–substrate interface. At higher impact velocities (0.1–1 km s−1) e is shown to be proportional to approximately Vi1. In this deeply plastic deformation regime various deformation modes that depend on plastic flow of the material including the time lag between the rebound instances of the top and bottom points of particle and the lateral spreading of the particle are identified. In this deformation regime, the elastic spring-back initiates subsurface, in the substrate.
机译:研究了具有平坦金属表面的微米级金属粒子对高速冲击的影响机理,其高速冲击范围从50 m s -1 到大于1 km s -1 ,冲击主要导致塑性变形的地方。在数值分析中使用了一种材料模型,该模型包括高应变速率和温度对屈服应力,可塑性产生的热量,过度塑性应变导致的材料损坏以及热传递的影响。恢复系数e由经典工作使用准静态冲击力学进行的弹塑性变形分析来预测,与 V i -< / mo> 1 / 4 V i 1 / 2 分别表示影响范围在0–10和10–100 m s -1 范围内的低和中等冲击速度。在弹塑性和全塑性变形状态下,颗粒回弹归因于在颗粒-基底界面处开始的弹性回弹。在较高的撞击速度下(0.1–1 km s -1 ),e与大约 V i - 1 。在这种深层塑性变形状态中,确定了取决于材料塑性流动的各种变形模式,包括粒子的最高点和最低点的回弹实例之间的时间滞后以及粒子的横向扩散。在这种变形状态下,弹性回弹在基底中启动了地下。

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