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Confinement of laser plasma expansion with strong external magnetic field

机译:具有强外部磁场的激光等离子体膨胀的限制

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The evolutions of laser ablation plasma, expanding in strong (similar to 10T) transverse external magnetic field, were investigated in experiments and simulations. The experimental results show that the magnetic field pressure causes the plasma decelerate and accumulate at the plasma-field interface, and then form a low-density plasma bubble. The saturation size of the plasma bubble has a scaling law on laser energy and magnetic field intensity. Magnetohydrodynamic simulation results support the observation and find that the scaling law (V-max alpha E-p/B-2, where Vmax is the maximum volume of the plasma bubble, E-p is the absorbed laser energy, and B is the magnetic field intensity) is effective in a broad laser energy range from several joules to kilo-joules, since the plasma is always in the state of magnetic field frozen while expanding. About 15% absorbed laser energy converts into magnetic field energy stored in compressed and curved magnetic field lines. The duration that the plasma bubble comes to maximum size has another scaling law t(max) alpha E-p(1/2)/B-2. The plasma expanding dynamics in external magnetic field have a similar character with that in underdense gas, which indicates that the external magnetic field may be a feasible approach to replace the gas filled in hohlraum to suppress the wall plasma expansion and mitigate the stimulated scattering process in indirect drive ignition.
机译:在实验和模拟中研究了激光烧蚀等离子体的演变,在强(类似于10T)横向外部磁场中,进行了研究。实验结果表明,磁场压力使等离子体减速并在等离子体场界面处积聚,然后形成低密度等离子体泡沫。等离子气泡的饱和度尺寸具有关于激光能量和磁场强度的缩放规律。磁力动力学仿真结果支持观察和发现缩放法(V-MAX alpha EP / B-2,其中Vmax是等离子泡沫的最大体积,EP是吸收的激光能量,B是磁场强度)是从几个焦耳到千焦耳的宽激光能量范围内有效,因为等离子体总是处于磁场的状态,同时膨胀。大约15%的吸收激光能量转换成压缩和弯曲磁场线中的磁场能量。等离子泡沫到最大尺寸的持续时间具有另一个缩放法T(最大)αE-P(1/2)/ B-2。外部磁场中的等离子体膨胀动力学具有类似的特征,其具有不稳定的气体,这表明外部磁场可以是更换填充在Hohlraum中的气体以抑制壁等离子体的膨胀并减轻刺激的散射过程的可行方法间接驱动点火。

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