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Shock creation and particle acceleration driven by plasma expansion into a rarefied medium

机译:等离子体扩展为稀有介质可驱动震动产生和粒子加速

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The expansion of a dense plasma through a more rarefied ionized medium is a phenomenon of interest in various physics environments ranging from astrophysics to high energy density laser-matter laboratory experiments. Here this situation is modeled via a one-dimensional particle-in-cell simulation; a jump in the plasma density of a factor of 100 is introduced in the middle of an otherwise equally dense electron-proton plasma with an uniform proton and electron temperature of 10 eV and 1 keV, respectively. The diffusion of the dense plasma, through the rarefied one, triggers the onset of different nonlinear phenomena such as a strong ion-acoustic shock wave and a rarefaction wave. Secondary structures are detected, some of which are driven by a drift instability of the rarefaction wave. Efficient proton acceleration occurs ahead of the shock, bringing the maximum proton velocity up to 60 times the initial ion thermal speed.
机译:在从天体物理学到高能量密度激光物质实验室实验等各种物理环境中,浓密度等离子体通过更稀疏的电离介质膨胀引起人们关注。这里,这种情况是通过一维单元内粒子模拟来建模的。在原本均匀密度的质子和电子温度分别为10 eV和1 keV的原本同等密度的电子质子等离子体的中间引入了100倍的等离子体密度跃变。密集等离子体通过稀疏等离子体的扩散会触发各种非线性现象的发生,例如强离子声冲击波和稀疏波。检测到二级结构,其中一些是由稀疏波的漂移不稳定性驱动的。质子加速发生在冲击之前,使最大质子速度达到初始离子热速度的60倍。

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