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Characterisation and Modelling of Ultrashort Laser-Driven Electromagnetic Pulses

机译:超超激光驱动电磁脉冲的特征和建模

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Recent advances on laser technology have enabled the generation of ultrashort (fs) high power (PW) laser systems. For such large scale laser facilities there is an imperative demand for high repetition rate operation in symbiosis with beamlines or end-stations. In such extreme conditions the generation of electromagnetic pulses (EMP) during high intense laser target interaction experiments can tip the scale for the good outcome of the campaign. The EMP effects are several including interference with diagnostic devices and actuators as well as damage of electrical components. The EMP issue is quite known in the picosecond (ps) pulse laser experiments but no systematic study on EMP issues at multi-Joule fs-class lasers has been conducted thus far. In this paper we report the first experimental campaign for EMP-measurements performed at the 200 TW laser system (VEGA 2) at CLPU laser center. EMP pulse energy has been measured as a function of the laser intensity and energy together with other relevant quantities such as (i) the charge of the laser-driven protons and their maximum energy, as well as (ii) the X-ray Kα emission coming from electron interaction inside the target. Analysis of experimental results demonstrate (and confirm) a direct correlation between the measured EMP pulse energy and the laser parameters such as laser intensity and laser energy in the ultrashort pulse duration regime. Numerical FEM (Finite Element Method) simulations of the EMP generated by the target holder system have been performed and the simulations results are shown to be in good agreement with the experimental ones.
机译:激光技术的最新进展使得超短(FS)高功率(PW)激光系统的产生。对于如此大规模的激光设施,对具有束束或终端站的共生中的高重复率操作的必要性需求。在这种极端条件下,在高强度激光靶相互作用实验期间产生电磁脉冲(EMP)可以提示良好的竞选结果。 EMP效果是几种,包括干扰诊断装置和执行器以及电气部件的损坏。 EMP问题在Pic秒(PS)脉冲激光实验中是非常熟知的,但到目前为止,没有关于多焦耳FS-Class激光器的EMP问题的系统研究。在本文中,我们在CLPU激光中心在200 TW激光系统(VEGA 2)上进行了第一个用于EMP-测量的实验活动。 EMP脉冲能量被测量为激光强度和能量的函数以及其他相关量,例如(i)激光驱动质子的电荷及其最大能量,以及(ii)X射线Kα发射来自目标内的电子相互作用。实验结果分析(并确认)测量的EMP脉冲能量与超短脉冲持续时间内的激光强度和激光能量之间的直接相关性。已经执行了由目标保持器系统产生的EMP的数值FEM(有限元方法)模拟,并且模拟结果与实验结果吻合良好。

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