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Three-dimensional Fluid Dynamic Simulation of Radio-frequency Inductively Coupled Thermal Plasmas

机译:射频感应耦合热等离子体的三维流体动力学模拟

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This paper presents modelling work and numerical simulations of radio-frequency inductively coupled thermal plasmas (RF-ICTPs) without/with a stationary central injection of a direct-current (DC) plasma jet, which has recently yielded new insights into the three-dimensional structure and dynamics of the plasma flows. The numerical results show that the flows have complicated 3D structures with a noticeable recirculating zone. That recirculating flow prevents the cold sheath gas from flowing downstream through the plasma. The higher-temperature regions in and around the plasma exhibit larger vortex structures principally by the Lorentz force, whereas the lower-temperature flows form smaller eddies by fluid dynamical instability near the top and side walls of the torch. A plasma jet breaks such a structure in the RF coil region, and consequently the flow becomes more complicated. In the RF coil region, the region near the torch wall has a larger standard deviation in the vorticity than the central region.
机译:本文介绍了不带/不带固定中央注入的直流(DC)等离子体射流的射频感应耦合热等离子体(RF-ICTP)的建模工作和数值模拟,这最近对三维产生了新的见解等离子体流的结构和动力学。数值结果表明,流动具有复杂的3D结构,并具有明显的回流区域。该再循环流防止冷鞘气向下游流过等离子体。等离子体中及其周围的较高温度区域主要通过洛伦兹力表现出较大的涡旋结构,而较低温度的流动则由于炬顶部和侧壁附近的流体动力学不稳定而形成较小的涡流。等离子体射流破坏了RF线圈区域中的这种结构,因此流动变得更加复杂。在RF线圈区域中,割炬壁附近的区域的涡旋度比中心区域大。

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