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Energy partitioning within a micro-particle cluster due to impact with a rigid planar wall

机译:由于与刚性平面壁的撞击,微粒簇内的能量分配

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摘要

A combined finite and discrete element method is used to examine the energetics of a two-dimensional micro-particle cluster that impacts a rigid planar wall. The method combines conservation principles with an elastic-viscoplastic and friction constitutive theory to predict thermomechanical fields within particles resulting from both particle-wall and particle-particle contact. Emphasis is placed on characterizing the temporal and spatial partitioning of cluster energy with impact angle (0◦ ≤ f{phi} ≤ 80◦, where f{phi} = 0◦ corresponds to normal impact). Predictions for a close-packed cluster of well-resolved particles having an average initial radius and uniform speed of 50μm and 300 m/s indicate that particles adjacent to the wall experience the largest plastic and friction work. Friction significantly affects cluster kinetic energy, but minimally affects its elastic strain energy and plastic work. Local temperature rises in excess of 900K are predicted for f{phi} = 0◦, increasing to 4,400K for approximately f{phi} > 60◦, with most of the cluster mass (≈98%) experiencing temperature rises less than 200K due to plastic work. These predictions highlight the importance of friction work as a heating mechanism that may induce combustion of energetic clusters. Sensitivity of the cluster response to its initial packing configuration is demonstrated.
机译:有限元和离散元的组合方法用于检查冲击刚性平面壁的二维微粒簇的能量。该方法将守恒原理与弹性-粘塑性和摩擦本构理论相结合,以预测由于粒子壁和粒子-粒子接触而产生的粒子内部的热机械场。重点放在表征具有碰撞角(0 ◦≤f {phi}≤80 ◦,其中f {phi} = 0 < sup>◦对应于正常影响)。对平均密度为50μm和300 m / s的平均初始半径和均匀速度的紧密堆积的良好解析粒子簇的预测表明,与壁相邻的粒子经历了最大的塑性和摩擦功。摩擦力显着影响团簇动能,但最小程度地影响其弹性应变能和塑性功。对于f {phi} = 0 ◦,预计局部温度升高超过900K,对于大约f {phi}> 60 ◦,升高到4,400K,其中大部分由于塑性功,温度升高不到200K的团簇质量(≈98%)。这些预测突显了摩擦功作为一种可能引起高能团簇燃烧的加热机制的重要性。证明了簇响应对其初始填充构型的敏感性。

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