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Hydrodynamic regimes induced by nanosecond pulsed discharges in air: mechanism of vorticity generation

机译:空气中纳秒脉冲放电诱导的流体动力学制度:涡度产生机制

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The mechanisms controlling the hydrodynamic effects induced by nanosecond pulsed discharges applied between two pin electrodes in air at atmospheric conditions are investigated experimentally and numerically. A cylindrical plasma kernel is formed between the electrodes during the discharge. After the discharge, schlieren images show that the cylindrical kernel evolves in different ways depending on the gap distance: (1) for short gap distances (d(gap) < 4mm), the cylindrical kernel collapses to form a torus-like structure. In this case, the flow field presents a significant source of vorticity; (2) for larger gaps (d(gap) >= 4mm), the kernel retains its initial cylindrical shape and cools down primarily through heat diffusion. The objective of this work is to understand the mechanisms leading to the formation of these two hydrodynamic regimes. To this end, simulations were performed and compared with the experimental schlieren images. It is shown that the main source of vorticity is the baroclinic torque caused by the cylindrical blast wave that follows the fast energy addition during the discharge. Finally, a criterion is given to predict the occurrence of the two hydrodynamic regimes. This criterion is then validated against experimental results from the literature.
机译:通过实验和数值在大气条件下在空气中施加的纳秒脉冲放电施加的纳米脉冲放电诱导的流体动力学效果。在放电期间在电极之间形成圆柱形等离子体核。在放电之后,Schlieren图像表明,圆柱形内核根据间隙距离的不同方式演变:(1)对于短间隙距离(D(间隙)<4mm),圆柱形核塌陷以形成圆环状结构。在这种情况下,流场具有重要的涡度来源; (2)对于较大的间隙(D(间隙)> = 4mm),核保留其初始圆柱形状并主要通过热扩散冷却。这项工作的目的是了解导致形成这两个流体动力学制度的机制。为此,与实验Schlieren图像进行仿真并进行比较。结果表明,涡度的主要来源是由圆柱形鼓波引起的曲金扭矩,其在放电期间遵循快速加法。最后,给出了标准来预测两个流体动力学制度的发生。然后对文献的实验结果验证了该标准。

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