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The influence of magnetised electron transport on thermal self-focusing and channelling of nanosecond laser beams

机译:磁化电子传输对纳秒激光束热自聚焦和沟道的影响

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摘要

The propagation of a nanosecond IR laser pulse through an under-dense (0.01 — 0.1ncr) magnetised laser-plasma is considered. The interplay between magnetised transport, B-field evolution and plasma hydrodynamics in the presence of a dynamically evolving beam are investigated by means of a paraxial wave solving module coupled to CTC, a 2D MHD code including Braginskii electron transport and IMPACT, a 2D implicit Vlasov-Fokker-Planck (VFP) code with magnetic fields. Magnetic fields have previously been shown to improve density channel formation for plasma waveguides however fluid simulations presented here indicate that Nernst advection can result in the rapid cavitation of magnetic field in the laser-heated region resulting in beam defocusing. Kinetic simulations indicate that strong non-local transport is present leading to the fluid code overestimating heat-flow and magnetic field advection and resulting in the recovery of beam channelling for the conditions considered.
机译:考虑了纳秒级IR激光脉冲通过低密度(0.01_0.1ncr)磁化激光等离子体的传播。通过耦合到CTC的旁轴波求解模块,包括Braginskii电子传输和IMPACT的2D MHD代码,2D隐式Vlasov,研究了在动态演化束存在下磁化输运,B场演化和等离子体流体动力学之间的相互作用。 -具有磁场的福克-普朗克(VFP)代码。以前已经显示出磁场可以改善等离子波导的密度通道的形成,但是此处提供的流体模拟表明,能斯特对流可以导致激光加热区域中的磁场快速空化,从而导致光束散焦。动力学模拟表明,存在强烈的非局部传输,导致流体代码高估了热流和磁场对流,并导致在所考虑的条件下束流通道的恢复。

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