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采用反束配置对内爆芯进行快速加热。

Fast Heating of Imploded Core with Counterbeam Configuration.

作者信息

Mori Y, Nishimura Y, Hanayama R, Nakayama S, Ishii K, Kitagawa Y, Sekine T, Sato N, Kurita T, Kawashima T, Kan H, Komeda O, Nishi T, Azuma H, Hioki T, Motohiro T, Sunahara A, Sentoku Y, Miura E

机构信息

The Graduate School for the Creation of New Photonics Industries, 1955-1 Kurematsuchou, Nishi-ku, Hamamatsu 431-1202, Japan.

Hamamatsu Photonics, K. K. 1820 Kurematsuchou, Nishi-ku, Hamamatsu 431-1202, Japan.

出版信息

Phys Rev Lett. 2016 Jul 29;117(5):055001. doi: 10.1103/PhysRevLett.117.055001. Epub 2016 Jul 26.

Abstract

A tailored-pulse-imploded core with a diameter of 70  μm is flashed by counterirradiating 110 fs, 7 TW laser pulses. Photon emission (>40  eV) from the core exceeds the emission from the imploded core by 6 times, even though the heating pulse energies are only one seventh of the implosion energy. The coupling efficiency from the heating laser to the core using counterirradiation is 14% from the enhancement of photon emission. Neutrons are also produced by counterpropagating fast deuterons accelerated by the photon pressure of the heating pulses. A collisional two-dimensional particle-in-cell simulation reveals that the collisionless two counterpropagating fast-electron currents induce mega-Gauss magnetic filaments in the center of the core due to the Weibel instability. The counterpropagating fast-electron currents are absolutely unstable and independent of the core density and resistivity. Fast electrons with energy below a few MeV are trapped by these filaments in the core region, inducing an additional coupling. This might lead to the observed bright photon emissions.

摘要

通过对一个直径为70微米的定制脉冲内爆核心进行110飞秒、7太瓦激光脉冲的反向辐照,使其产生闪光。核心的光子发射(>40电子伏特)比内爆核心的发射高出6倍,尽管加热脉冲能量仅为内爆能量的七分之一。利用反向辐照,加热激光与核心的耦合效率因光子发射增强而达到14%。反向传播的快速氘核在加热脉冲的光子压力作用下加速,也会产生中子。二维粒子模拟表明,由于韦贝尔不稳定性,无碰撞的两个反向传播的快速电子流在核心中心诱导出兆高斯磁丝。反向传播的快速电子流绝对不稳定,且与核心密度和电阻率无关。能量低于几兆电子伏特的快速电子被核心区域的这些磁丝捕获,从而诱导出额外的耦合。这可能导致观测到的明亮光子发射。

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