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Beam matter interaction physics for fast ignitors

机译:束物质相互作用物理学的快速点火器

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The fast ignitor scheme for achieving inertial fusion energy precompresses the DT fuel to more than 1000 times the solid state density with nanosecond laser pulses. It then employs a picosecond 10-100-PW laser pulse to deposit with very high efficiency the energy necessary to achieve the ignition temperature of approx. 4 keV. In this way the necessary driver energy for inertial fusion energy reactors is reduced from the megajoule level to the 100-kJ level. In this article, we present results relevant to the development of the fast ignitor scheme that have been achieved in recent years by Australian teams in collaboration with international teams. The topics that are specifically addressed are: (1) forces and relativistic mechanisms of laser interaction with the clectrons in the intense picosecond beams; (2) electron and ion emission from the focused beam into the precompressed plasma, including double layer effects and collective stopping power; and (3) the energy of the picosecond beam, which when nearly uniformly deposited into the precompressed DT-fuel can achieve the conditions for high-gain volume ignition. Positive results are derived for the volume ignition scheme from considerations of recent high neutron gain laser fusion experiments.
机译:用于实现惯性聚变能的快速点火器方案利用纳秒激光脉冲将DT燃料预压缩至固态密度的1000倍以上。然后,它采用皮秒级10-100-PW激光脉冲,以非常高的效率沉积达到点火温度约25摄氏度所需的能量。 4 keV。这样,惯性聚变能反应堆所需的驱动力就从兆焦耳的水平降低到100kJ的水平。在本文中,我们介绍了澳大利亚团队与国际团队合作在近年来实现的与快速点火器方案开发相关的结果。具体解决的主题是:(1)皮秒级强光束中激光与电子相互作用的力和相对论机制; (2)从聚焦束进入预压缩等离子体的电子和离子发射,包括双层效应和集体阻止能力; (3)皮秒光束的能量,当几乎均匀地沉积到预压缩的DT燃料中时,可以达到高增益点火的条件。考虑到最近的高中子增益激光聚变实验,对体积点火方案得出了积极的结果。

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