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Studies of ablated plasma and shocks produced in a planar target by a sub-nanosecond laser pulse of intensity relevant to shock ignition

机译:研究与冲击点火有关的亚纳秒激光脉冲在平面目标中产生的烧蚀等离子体和冲击

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The effect of laser intensity on characteristics of the plasma ablated from a low-Z (CH) planar target irradiated by a 250 ps, 0.438 mu m laser pulse with the intensity of up to 10(16) W/cm(2) as well as on parameters of the laser-driven shock generated in the target for various scale-lengths of preformed plasma was investigated at the kilojoule Prague Asterix Laser System (PALS) laser facility. Characteristics of the plasma were measured with the use of 3-frame interferometry, ion diagnostics, an X-ray spectrometer, and K imaging. Parameters of the shock generated in a Cl doped CH target by the intense 3 laser pulse were inferred by numerical hydrodynamic simulations from the measurements of craters produced by the shock in the massive Cu target behind the CH layer. It was found that the pressure of the shock generated in the plastic layer is relatively weakly influenced by the preplasma (the pressure drop due to the preplasma presence is similar to 10-20%) and at the pulse intensity of similar to 10(16) W/cm(2) the maximum pressure reaches similar to 80-90 Mbar. However, an increase in pressure of the shock with the laser intensity is slower than predicted by theory for a planar shock and the maximum pressure achieved in the experiment is by a factor of similar to 2 lower than predicted by the theory. Both at the preplasma absence and presence, the laser-to-hot electrons energy conversion efficiency is small, similar to 1% or below, and the influence of hot electrons on the generated shock is expected to be weak.
机译:激光强度对250 ps,0.438μm激光脉冲,辐射强度也高达10(16)W / cm(2)的低Z(CH)平面靶材烧蚀的等离子体特性的影响在千焦耳的布拉格Asterix激光系统(PALS)激光设备上研究了针对各种尺度长度的预制等离子体在目标中产生的激光驱动冲击的参数。血浆的特征是通过使用3帧干涉仪,离子诊断仪,X射线光谱仪和K成像来测量的。由数值3的流体动力学模拟可以从在CH层后面的块状Cu靶中的冲击产生的弹坑的测量值中推断出强3激光脉冲在Cl掺杂的CH靶中产生的冲击的参数。发现在塑料层中产生的冲击压力受等离子体的影响相对较弱(由于等离子体的存在而导致的压降约为10-20%),并且脉冲强度近似为10(16)。 W / cm(2)时,最大压力达到80-90 Mbar。然而,随着激光强度的增加,冲击压力的增加比平面冲击的理论预测要慢,并且实验中达到的最大压力比理论预测的压力低约2倍。无论在等离子体前体存在与否,激光到热电子的能量转换效率都很小,接近1%或更低,并且热电子对所产生的冲击的影响预计会很弱。

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