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Numerical analysis on effects of various cathode and nozzle geometries on plasma characteristics of transferred arc torches for waste treatment

机译:阴极和喷嘴几何形状对转移废物处理炬炬等离子体特性影响的数值分析

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摘要

Summary form only given, as follows. A numerical model is presented to investigate the influences of cathode and nozzle geometries on the characteristics of transferred arc torches for waste melting process. The arc plasma is described in the atmospheric condition by a two dimensional magnetohydrodynamic (MHD) model with the assumptions of steady state, axisymmetry, local thermodynamic equilibrium (LTE) and optically thin plasma. In order to simulate the realistic torch configurations with complex nozzle and cathode arrangements, the unstructured triangular and/or quadrilateral grid systems are used with a finite volume discretization, gradient reconstruction procedure and a SIMPLE-like pressure-correction algorithm. For the self-consistent prediction of temperature profiles on the anode workpiece and heat transfer rates to it, the energy conservation and current continuity equations are solved not only in the thermal plasma region but also in the anode region with the special treatment of electric conductivity and energy balance at the interface of the plasma and the anode material. By the suggested numerical model, the temperature and flow field distributions of argon plasmas and the heat flux rates to anode material are calculated for the various nozzle length and diameter and for a wide range of vertex angle of the cone-shaped cathode. As a result of these calculations, optimum geometrical design parameters of the transferred plasma torch are obtained for the waste melting process. The predicted results are validated by comparing with some experimental data.
机译:仅给出摘要表格,如下。提出了一个数值模型来研究阴极和喷嘴的几何形状对废物熔化过程中传递的电弧炬特性的影响。电弧等离子体是在大气条件下通过二维磁流体动力学(MHD)模型描述的,该模型具有稳态,轴对称,局部热力学平衡(LTE)和光学薄等离子体的假设。为了模拟具有复杂喷嘴和阴极布置的实际炬管配置,将非结构化三角形和/或四边形网格系统与有限体积离散化,梯度重建程序和类似SIMPLE的压力校正算法一起使用。为了对阳极工件上的温度曲线及其传热率进行自洽的预测,不仅对热等离子体区域,而且对阳极区域进行了特殊的电导率处理,也求解了能量守恒和电流连续性方程。在等离子体和阳极材料的界面处的能量平衡。通过建议的数值模型,可以计算出锥形喷嘴的各种喷嘴长度和直径以及大范围的顶角,从而计算出氩气等离子体的温度和流场分布以及对阳极材料的热通量。这些计算的结果是,为废物熔化过程获得了转移的等离子炬的最佳几何设计参数。通过与一些实验数据进行比较,验证了预测结果。

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