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Ignition of a Deuterium Micro-Detonation with a Gigavolt Super Marx Generator

机译:用千兆伏特超级马克思发生器点燃氘的微爆轰

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The Centurion-Halite experiment demonstrated the feasibility of igniting a deuterium-tritium micro-explosion with an energy of not more than a few megajoule, and the Mike test, the feasibility of a pure deuterium explosion with an energy of more than 10~6 MJ. In both cases the ignition energy was supplied by a fission bomb explosive. While an energy of a few megajoule, to be released in the time required of less than 10~(-9) s, can be supplied by lasers and intense particle beams, this is not enough to ignite a pure deuterium explosion. Because the deuterium-tritium reaction depends on the availability of lithium, the non-fission ignition of a pure deuterium fusion reaction would be highly desirable. It is shown that this goal can conceivably be reached with a "Super Marx Generator", where a large number of "ordinary" Marx generators charge (magnetically insulated) fast high voltage capacitors of a second stage Marx generator, called a "Super Marx Generator", ultimately reaching gigavolt potentials with an energy output in excess of 100 MJ. An intense 10~7 Ampere-GeV proton beam drawn from a "Super Marx Generator" can ignite a deuterium thermonuclear detonation wave in a compressed deuterium cylinder, where the strong magnetic field of the proton beam entraps the charged fusion reaction products inside the cylinder. In solving the stand-off problem, the stiffness of a GeV proton beam permits to place the deuterium target at a comparatively large distance from the wall of a cavity confining the deuterium micro-explosion.
机译:Centurion-Halite实验证明了以不超过几兆焦耳的能量点燃氘-micro微爆炸的可行性,以及Mike试验,证明了能量超过10〜6 MJ的纯氘爆炸的可行性。 。在这两种情况下,点火能量都是由裂变炸弹爆炸物提供的。尽管可以在不到10〜(-9)s的时间内释放出几兆焦耳的能量,但是激光和强粒子束可以提供这种能量,但这不足以点燃纯氘爆炸。因为氘-reaction反应取决于锂的可用性,所以非常需要纯氘聚变反应的不裂变点火。结果表明,可以通过“超级马克思发生器”实现这一目标,其中大量的“普通”马克思发生器对第二级马克思发生器(称为“超级马克思发生器”)的快速高压电容器进行充电(磁绝缘) ”,最终达到千兆伏电位,能量输出超过100 MJ。由“超级马克思发生器”引出的10〜7 Ampere-GeV质子束很强,可以在压缩的氘气筒中点燃氘热核爆轰波,质子束的强磁场将带电的聚变反应产物截留在汽缸内部。在解决隔离问题中,GeV质子束的刚度允许将氘靶放置在距离腔壁较远的距离,从而限制了氘的微爆炸。

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