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Three-dimensional simulation of an argon–hydrogen DC non-transferred arc plasma torch

机译:氩氢直流非转移电弧等离子体炬的三维模拟

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摘要

Simulations of a DC non-transferred arc plasma torch operating with argon–hydrogen have been performed by using a three-dimensional model. An artificially high electrical conductivity layer is employed to allow the current passing through the low temperature region near the anode wall. A new way by using two equations to describe the current density distribution is developed. Besides, a new method for determining the location of the arc-root attachment is proposed, in which the minimum total heat transfer rate through the anode wall is considered as the criterion for the lowest energy loss. Based on this criterion, the real arc core radius and length are predicted. Moreover, the influences of arc current and mass flow rate on the plasma arc characteristics are also investigated. The results obtained show that the location of the arc-root attachment predicted by the minimum total heat transfer rate principle is in good agreement with the previous work and the experimental data. Additionally, it is found that arc length can be reduced by increasing current or decreasing flow rate. Also, higher current and flow rate lead to higher temperature and velocity inside the plasma torch.
机译:通过使用三维模型进行了直流氩弧氢非转移电弧等离子体炬的仿真。采用人为的高电导率层以允许电流流过阳极壁附近的低温区域。提出了使用两个方程式描述电流密度分布的新方法。此外,提出了一种确定弧根附连位置的新方法,其中将通过阳极壁的最小总传热率视为最低能量损失的标准。基于此标准,可以预测实际的弧芯半径和长度。此外,还研究了电弧电流和质量流量对等离子弧特性的影响。所得结果表明,用最小总传热率原理预测的弧根附着位置与先前的工作和实验数据吻合良好。另外,发现可以通过增加电流或减小流速来减小电弧长度。同样,较高的电流和流速导致等离子炬内部的较高温度和速度。

著录项

  • 作者

    Guo, Z; Yin, S; Liao, H; Gu, S;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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