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Plasma Physics Study and Laser Development for the Fast Ignition Realization Experiment (FIREX) Project

机译:快速点火实现实验(FIREX)项目的等离子体物理研究和激光开发

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Since the approval of the first phase of Fast Ignition Realization Experiment (FIREX-I), we have devoted our efforts on designing advanced targets and constructing the world highestenergy Peta Watt laser. The new target design has the following features. The coupling efficiency from the heating laser to the thermal energy of the compressed core plasma can be increased by the two ways:1) Low-Z foam layer on the inner surface of the cone for optimum absorption. 2) Double cone. Electrons generated in the inner surface of the double cone will return by sheathe potential generated between two cones. The implosion performance can be improved by three ways: 3) Low-Z plastic layer on the outer surface of the cone may suppress the expansion of the Au cone that flows into the interior of the compressed core. 4) Br doped plastic ablator may significantly moderate the Rayleigh-Taylor instability, making implosion more stable. 5) Evacuation of the target center to prevent gas jets from destroying the cone tip. For project robustness, we also explore 6) impact ignition scheme that eliminates complexity of laser-plasma interaction while keeping the compactness advantage of fast ignition. The fully integrated fast ignition experiment is scheduled on 2009. If subsequent FIREX-II will start as proposed, the ignition and burn will be demonstrated shortly after the ignition at NIF and LMJ, providing a scientific database of both central and fast ignition.
机译:自第一阶段快速点火实现实验(FIREX-I)获批以来,我们一直致力于设计先进的目标并构建世界上能量最高的Peta Watt激光器。新的目标设计具有以下功能。可以通过两种方式提高从加热激光到压缩核等离子体的热能的耦合效率:1)圆锥形内表面上的低Z泡沫层可实现最佳吸收。 2)双锥。双锥内表面产生的电子将通过两个锥之间产生的鞘电势返回。内爆性能可通过以下三种方法来改善:3)圆锥体外表面上的低Z塑料层可抑制流入压缩芯内部的Au圆锥体的膨胀。 4)掺Br的塑料烧蚀剂可显着缓解Rayleigh-Taylor的不稳定性,使内爆更稳定。 5)疏散目标中心,以防止气体喷射流破坏锥头。对于项目的鲁棒性,我们还探索了6)冲击点火方案,该方案消除了激光等离子体相互作用的复杂性,同时保持了快速点火的紧凑优势。完全集成的快速点火实验计划于2009年进行。如果随后的FIREX-II按照提议进行启动,将在NIF和LMJ点火后不久证明点火和燃烧,从而提供集中点火和快速点火的科学数据库。

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