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Discrete element method simulations of mechanical plating of composite coatings on aluminum substrates

机译:铝基板上复合涂层机械电镀的离散元件模拟

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Mechanical plating deposits coatings by cold welding fine particles to a workpiece through ball or shot impact treatment, for example in ball mills. This process offers flexibility in selecting material systems because the formation of coatings occurs in the solid state at near room temperature and ambient pressure. However, parametric optimization of the process remains a challenge since many parameters affect the process efficiency. The goal of this study was to numerically investigate the behavior of the balls and a substrate sample in a planetary ball mill and thus to elucidate the mechanisms involved in this mechanical plating treatment. An aluminum substrate with aluminum-carbon nanotube coating system that was previously investigated experimentally was simulated. A discrete element method model was proposed to perform numerical simulations to predict the energy, frequency, and angle of ball-to-substrate collisions. Measurements were also conducted to determine the friction coefficient necessary for the simulation. The results revealed that small balls caused more frequent and mild collisions with the substrate predominantly in the tangential direction. These collisions are assumed to be the primary contributor to the coating formation. Collisions between large balls and the substrate were less frequent but had greater intensity, and the probability of tangential and normal collisions was approximately equal. The numerical results were qualitatively supported by the as-treated substrate roughness measurements determined in this study.
机译:机械镀层通过冷焊接细颗粒通过球或射击冲击处理来涂层,例如在球磨机中。该过程在选择材料系统方面提供灵活性,因为在接近室温和环境压力下形成涂层的形成。然而,该过程的参数优化仍然是一个挑战,因为许多参数会影响过程效率。该研究的目标是在行星球磨机中进行数值研究球和基板样品的行为,从而阐明涉及该机械镀处理的机制。模拟了先前研究的铝基铝基铝合金涂层系统。提出了一种离散的元件方法模型来执行数值模拟以预测球对基板碰撞的能量,频率和角度。还进行了测量以确定模拟所需的摩擦系数。结果表明,小球主要在切向方向上与基材具有更频繁和温和的碰撞。假设这些碰撞是涂层形成的主要因素。大球和基板之间的碰撞频率较小但具有更大的强度,并且切向和正常碰撞的概率大致相等。通过本研究中确定的后处理的基质粗糙度测量值定性支持数值结果。

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