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Simulation and design study of cryogenic cone shell target for Fast Ignition Realization Experiment project

机译:快速点火实现实验项目的低温锥壳靶的仿真设计研究

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In the fast ignition (FI) scheme, at first, high-density fuel core plasma is assembled by implosion laser, and is then heated by petawatt laser to achieve a fusion burning condition. The formation of high-density fuel core plasma is one of the key issues for FI. A typical target for FI is a shell fitted with a reentrant gold cone to make a pass for heating laser. The ablated plasma of gold cone interferes with the implosion dynamics, which is quite different from that of the conventional central-hot-spot approach. Therefore, the dynamics of a nonspherical implosion must be controlled to assemble high density and high areal density. Numerical simulations are performed to study radiation hydrodynamics of cone-guided implosions. In the results, the effect of the cone on implosion dynamics is clarified. The cone surface is irradiated by the radiation and ablated plasma affects the imploding shell. Coating on the cone, which tamps the gold plasma, is effective to improve the implosion performance, although the result does not satisfy the condition of core plasma for the first stage of the Fast Ignition Realization Experiment +AFs-K. Mima , Proceedings of the IAEA Fusion Energy Conference, Lyon, 2002 (IAEA, Vienna, 2002), Paper No. IAEA-CN-94/IF/03+AF0-. (C) 2007 American Institute of Physics.
机译:在快速点火(FI)方案中,首先,高密度燃料堆芯等离子体由内爆激光组装,然后由petawatt激光加热以达到聚变燃烧条件。高密度燃料芯等离子体的形成是FI的关键问题之一。 FI的典型目标是装有凹角金锥的外壳,以通过激光加热。金锥的烧蚀等离子体干扰内爆动力学,这与传统的中心热点方法大不相同。因此,必须控制非球形内爆的动力学,以组装高密度和高面密度。进行数值模拟以研究锥导内爆的辐射流体动力学。结果表明,锥体对内爆动力学的影响得以阐明。锥体表面受到辐射的照射,烧蚀后的等离子体会影响内爆壳。尽管结果不满足快速点火实现实验+ AFs-K的第一阶段的核心等离子体条件,但在锥体上涂覆金等离子体可以有效地改善内爆性能。米玛,《国际原子能机构聚变能会议记录,2002年,里昂》(国际原子能机构,维也纳,2002年),文件号IAEA-CN-94 / IF / 03 + AF0-。 (C)2007美国物理研究所。

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