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Bow shocks in ablated plasma streams for nested wire array z-pinches: A laboratory astrophysics testbed for radiatively cooled shocks

机译:嵌套线阵列z夹在消融等离子体流中产生的弓形激波:用于辐射冷却激波的实验室天体物理试验台

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摘要

Astrophysical observations have demonstrated many examples of bow shocks, for example, the head of protostellar jets or supernova remnants passing through the interstellar medium or between discrete clumps in jets. For such systems where supersonic and super-Alfv?nic flows and radiative cooling are all important, carefully scaled laboratory experiments can add insight into the physical processes involved. The early stage of a wire array z-pinch implosion consists of the steady ablation of material from fine metallic wires. Ablated material is accelerated toward the array axis by the J×B force. This flow is highly supersonic (M>5) and becomes super-Alfv?nic (M_A >2). Radiative cooling is significant in this flow and can be controlled by varying the material in the ablated plasma. The introduction of wires as obstructions in this steady flow leads to the formation of bow shocks, which can be used as a laboratory testbed for astrophysical bow shocks. The magnetic field associated with this obstruction wire can be controlled by varying the current through it. Differences in the shock for different cooling rates and different magnetic fields associated with the obstruction will be discussed, along with comparisons of dimensionless parameters in the experiments to astrophysical systems.
机译:天体物理学的观测结果证明了许多弓激波的例子,例如,通过星际介质或喷气机中不连续的团块之间的原恒星喷气机的头部或超新星残留物。对于超音速和超铝流以及辐射冷却都非常重要的系统,精心规模化的实验室实验可以使您深入了解所涉及的物理过程。线阵列Z夹缩内爆的早期阶段是由细金属丝对材料进行稳定烧蚀。烧蚀的材料通过J×B力朝阵列轴加速。该流是高度超音速的(M> 5)并变为超Alfvnic(M_A> 2)。辐射冷却在这种流动中很重要,可以通过改变烧蚀等离子体中的材料来控制。在这种稳定流动中引入金属丝作为障碍物会导致弓形冲击的形成,可以将其用作天体弓形冲击的实验室测试平台。可以通过改变流经该阻塞线的电流来控制与该阻塞线相关的磁场。将讨论与障碍物相关的不同冷却速率和不同磁场在冲击方面的差异,并将实验中的无量纲参数与天体物理系统进行比较。

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