FEM ANALYSIS OF ENERGY LOSS DUE TO WAVE PROPAGATION FOR MICRO-PARTICLE IMPACTING SUBSTRATE WITH HIGH VELOCITIES

Giedrius Jočbalis
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引用次数: 0

Abstract

The impact between particles and material surface is a micro-scaled physical phenomenon found in various technological processes and in the study of the mechanical properties of materials. Design of materials with desired properties is a challenging issue for most industries. And especially in aviation one of the most important factors is mass. Recently with the innovations in 3D printing technologies, the importance of this phenomenon has increased. Numerical simulation of multi-particle systems is based on considering binary interactions; therefore, a simplified but as much accurate as possible particle interaction model is required for simulations. Particular cases of axisymmetric particle to substrate contact is modelled at select impact velocities and using different layer thicknesses. When modelling the particle impact at high contact velocity, a substrate thickness dependent change in the restitution coefficient was observed. This change happens is due to elastic waves and is important both to coating and 3D printing technologies when building layers of different properties materials.
微粒高速冲击基材时波传播能量损失的有限元分析
颗粒与材料表面的碰撞是各种工艺过程和材料力学性能研究中存在的微观物理现象。对大多数行业来说,设计具有理想性能的材料是一个具有挑战性的问题。尤其是在航空领域,最重要的因素之一就是质量。最近,随着3D打印技术的创新,这种现象的重要性增加了。多粒子系统的数值模拟是在考虑二元相互作用的基础上进行的;因此,模拟需要一个简化但尽可能精确的粒子相互作用模型。在选择的冲击速度和使用不同的层厚度下,对轴对称颗粒与衬底接触的特殊情况进行了建模。当模拟颗粒在高接触速度下的冲击时,观察到衬底厚度随恢复系数的变化。这种变化的发生是由于弹性波,当构建不同性能材料的层时,这对涂层和3D打印技术都很重要。
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