Modeling and Visualization of Plasma Spray Process for Depositing Functionally Graded Materials

Y. Wan, V. Gupta, H. Zhang, A. Varshney, S. Sampath, V. Prasad, J. Fincke
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Abstract

Recently, several models have been developed to simulate the plasma spraying process. The present paper extends our previous model (Wan et al., 1999a) to the plasma spray system of two-component materials with two different feed nozzles. It accounts for plasma-particle interaction, particle heating/melting/evaporation and solidification on the substrate. A special visualization algorithm has been developed to demonstrate the effects of various parameters on particle conditions while in flight, growth of functionally graded materials and distribution of the two components in the coating. Visualization of thermal processes is a challenging task if it has to be used for materials design and system development. It requires special schemes for data management in a multivariate system that includes at least velocity, temperature and species in four co-ordinates (space and time). Our effort is focused on developing a visualization scheme which goes far beyond the process animation and can be ultimately used for virtual prototyping of the processes, an area that needs special research efforts. Simulation and visualization have been performed for spraying of zirconia and NiCrAlY powders, with many combinations of powder injection features, e.g., number of nozzles, nozzle location and injection velocity. The fluctuation of the voltage is also simulated and animated to show its effect on both plasma gas and particle behavior. The optimized operating parameters are deduced from the distribution of these two materials in the coating layer. Issues related to visualization are also discussed.
等离子喷涂沉积功能梯度材料的建模与可视化
近年来,人们建立了几个模型来模拟等离子喷涂过程。本文将我们之前的模型(Wan et al., 1999a)扩展到具有两种不同进料喷嘴的双组分材料等离子喷涂系统。它解释了等离子体-粒子相互作用,粒子加热/熔化/蒸发和基底上的凝固。开发了一种特殊的可视化算法来演示各种参数对飞行过程中颗粒状况的影响,功能梯度材料的生长以及两种组分在涂层中的分布。热过程的可视化是一项具有挑战性的任务,如果它必须用于材料设计和系统开发。它需要在多元系统中进行数据管理的特殊方案,该系统至少包括四个坐标(空间和时间)中的速度、温度和物种。我们的工作重点是开发一个可视化方案,它远远超出了过程动画,最终可以用于过程的虚拟原型,这是一个需要特别研究的领域。对氧化锆和NiCrAlY粉末的喷涂进行了仿真和可视化,使用了许多粉末喷射特征的组合,例如喷嘴数量、喷嘴位置和喷射速度。模拟和动画显示了电压的波动对等离子体气体和粒子行为的影响。根据这两种材料在涂层中的分布,推导出了优化的操作参数。还讨论了与可视化相关的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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