利用活性等离子体元件控制微波能量沉积在材料加工中的应用

B. Graber, A. Iliopoulos, J. Michopoulos, J. Steuben, N. Apetre, G. Petrov, L. A. Johnson, R. Fischer, E. Gorzkowski, E. Patterson
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引用次数: 0

摘要

这项工作的动机是需要调制微波束的传播,相位,形状和方向使用等离子体元件阵列。以这种方式剪裁微波光束将使新的材料加工能力成为可能,例如诱导局部加热。初始过程示例包括插入到微波辐射源和感兴趣的材料之间的波导中的圆柱形等离子体元件。为了验证该方法的可行性,建立了包括等离子体-微波耦合在内的氩汞等离子体的精确模型。考虑了微波等离子体加热和磁等离子体耦合。所需的计算框架在COMSOL多物理场有限元求解器中实现。该模型首先用于研究二维几何形状,然后扩展到三维几何形状。得到的相关偏微分方程的解和相关的预测增加了对模型中考虑的等离子体和电磁特性之间相互作用的理解。模型实现证实了等离子体元件可以用来调制入射微波辐射,从而塑造发射光束。该框架还可以分析陶瓷材料加工中考虑的光束成形技术。对于陶瓷加工,束整形技术被用来引导微波辐射到可预测的局部区域,以便烧结所考虑的介电粉末。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controlling Microwave Energy Deposition Using Active Plasma Elements for Material Processing Applications
This work is motivated by the need to modulate microwave beam propagation, phase, shape, and direction using an array of plasma elements. Tailoring microwave beams in this fashion will enable new material processing capabilities such as induced localized heating. An initial process example consists of a cylindrical plasma element inserted into a waveguide between a microwave radiation source and a material of interest. In order to establish the feasibility of the proposed process, an accurate model of an argon mercury plasma including plasma-microwave coupling was developed and described herein. Both microwave plasma heating and magnetic plasma couplings are considered. The required computational framework was implemented within the COMSOL Multiphysics finite element solver. The model is first used to investigate a 2D geometry, before being extended to a 3D geometry. The obtained solutions of the relevant partial differential equations and the associated predictions increased the understanding of the interplay between plasma and electromagnetic properties under consideration in the model. Model implementation confirms that a plasma element can be used to modulate incident microwave radiation, thereby shaping the transmitted beam. The framework also enables analysis of beam shaping techniques under consideration for material processing of ceramics. For ceramic processing, beam shaping techniques are being used to direct microwave radiation to predictable, localized areas in order to sinter the dielectric powders under consideration.
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