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Compression, Heating and Fusion of Colliding Plasmoids by a Z-theta Driven Plasma Liner

机译:Z-θ驱动等离子体衬套对碰撞等离子体的压缩,加热和融合

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A potentially promising approach to fusion employs a plasma shell to radially compress two colliding plasmoids. The presence of the magnetic field in the target plasma suppresses the thermal transport to the confining shell, thus lowering the imploding power needed to compress the target to fusion conditions. With the momentum flux being delivered by an imploding plasma shell, many of the difficulties encountered in imploding a solid metal liner are eliminated or minimized. The best plasma for the target in this approach is the FRC. It has demonstrated both high β, and robustness in translation and compression that is demanded for the target plasma. A high density compressed plasmoid is formed by a staged axial and radial compression of two colliding/merging FRCs where the energy that is required for the implosion compression and heating of the magnetized target plasmoid is stored in the kinetic energy of the plasmas used to compress it. An experimental apparatus is being constructed for the demonstration of both the target plasmoid formation as well as the compression of the plasmoid by a plasma liner. It is believed that with the confinement properties and the high β nature of the FRC, combined with the unique approach to be taken, that an nτ_ET_i triple product ~5 x 10~(17) m~(-3) s keV can be achieved.
机译:一种潜在的有希望的融合方法是使用等离子壳体径向压缩两个碰撞的等离子体。目标等离子体中磁场的存在抑制了向约束壳的热传输,因此降低了将目标压缩至聚变条件所需的内爆功率。通过由破裂的等离子体壳传递动量通量,消除或最小化了在破裂固体金属衬里时遇到的许多困难。在这种方法中,目标的最佳血浆是FRC。它已经证明了高β以及目标血浆所需的平移和压缩鲁棒性。通过对两个碰撞/合并的FRC进行分阶段的轴向和径向压缩,形成高密度压缩等离子体,其中内爆压缩和磁化目标等离子体的加热所需的能量存储在用于压缩等离子体的动能中。正在建设一个实验仪器,以展示靶血浆的形成以及血浆衬里对血浆的压缩。相信通过FRC的约束性质和高β性质,结合所采取的独特方法,可以实现nτ_ET_i三乘积〜5 x 10〜(17)m〜(-3)s keV。 。

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