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An antiproton-driven magnetically insulated inertial fusion propulsion system

机译:一种防罗朗驱动的磁绝缘惯性融合推进系统

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摘要

The magnetically Insulated Inertial Confinement Fusion (MICF) reactor, in its initial conception, concepts of a target in the form of a metal shell whose inner surface is coated with a fusion fuel which is ignited by an incident laser beam that enters the pellet through a hole. A very strong magnetic field, generated when the surface is ablated by the incident laser beam, provides thermal insulation of the wall from the hot plasma, and allows the plasma to burn longer thereby generating a larger energy amplification. When ejected through a magnetic nozzle the plasma can provide a very large specific impulse if MICF is utilized as a propulsion device. For application to space travel, however, the mass of the laser and associated power supply may prove to be prohibitively large and another driver should be considered in its place. In this paper we examine the potential use of antimatter annihilation reactions along with a fissionable component to generate the energy needed to initiate the fusion reactions. We find that a modest amount of antiprotons impinging on a tiny fissioning ‘‘spark’’ can ignite the pellet and produce specific impulses in excess a hundred thousand seconds. © 1995 American Institute of Physics
机译:磁绝缘惯性限制融合(MICF)反应器在其初始构思中,其内表面涂覆有融合燃料的金属壳形式的靶的概念,该燃料由进入颗粒通过A进入颗粒的入射激光束点燃洞。当表面被入射激光束烧蚀时产生的非常强的磁场,从热等离子体中提供壁的隔热,并且允许等离子体延长,从而产生更大的能量放大。当通过磁性喷嘴喷射时,如果MICF用作推进装置,则等离子体可以提供非常大的脉冲。然而,对于空间旅行的应用,激光器和相关电源的质量可能被证明是不够大的,并且应该在其位置考虑另一个驾驶员。在本文中,我们检查潜在使用反物质湮灭反应以及可裂变成分,以产生引发融合反应所需的能量。我们发现,撞击微小裂变''火花'的适度的反桨子可以点燃颗粒,产生特定的冲动超过十万秒。 ©1995美国物理研究所

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