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Electrostatic particle-in-cell simulation of heat flux mitigation using magnetic fields

机译:使用磁场减轻热通量的静电粒子模拟

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The particle-in-cell (PIC) method was used to simulate heat flux mitigation experiments with partially ionised argon. The experiments demonstrate the possibility of reducing heat flux towards a target using magnetic fields. Modelling using the PIC method is able to reproduce the heat flux mitigation qualitatively. This is driven by modified electron transport. Electrons are magnetised and react directly to the external magnetic field. In addition, an increase of radial turbulent transport is also needed to explain the experimental observations in the model. Close to the target an increase of electron density is created. Due to quasi-neutrality, ions follow the electrons. Charge exchange collisions couple the dynamics of the neutrals to the ions and reduce the flow velocity of neutrals by radial momentum transport and subsequent losses. By this, the dominant heat-transport channel by neutrals gets reduced and a reduction of the heat deposition, similar to the experiment, is observed. Using the simulation a diagnostic module for optical emission is developed and its results are compared with spectroscopic measurements and photos from the experiment. The results of this study are in good agreement with the experiment. Experimental observations such as a shrank bright emission region close to the nozzle exit, an additional emission in front of the target and an overall change in colour to red are reproduced by the simulation.
机译:电池中的粒子(PIC)方法用于模拟使用部分离子化氩气的热通量缓解实验。实验证明了使用磁场降低朝目标的热通量的可能性。使用PIC方法进行建模可以定性地再现热通量的降低情况。这是由改进的电子传输驱动的。电子被磁化并直接对外部磁场起反应。此外,还需要增加径向湍流传输来解释模型中的实验观察结果。靠近目标,会增加电子密度。由于准中性,离子跟随电子。电荷交换碰撞将中性离子的动力学耦合到离子上,并通过径向动量传输和随后的损失降低了中性离子的流速。通过这种方式,中性物占主导地位的传热通道减少,并且观察到与实验类似的热沉积减少。通过仿真,开发了用于光发射的诊断模块,并将其结果与光谱测量结果和实验照片进行了比较。这项研究的结果与实验非常吻合。通过仿真可以再现实验观察结果,例如靠近喷嘴出口的明亮的发亮区域,目标前方的其他发散以及颜色从红色变为红色的整体变化。

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