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MICF: A fusion propulsion system for interstellar missions

机译:MICF:间星际任务的融合推进系统

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摘要

A very promising propulsion device that could open up the solar system and beyond to human exploration is the Magnetically Insulated Inertial Confinement Fusion (MICF) system. This scheme combines the favorable aspects of inertial and magnetic fusion into one where physical containment of the hot plasma is provided by a metal shell while its thermal energy is insulated from this wall by a strong, self-generated magnetic field. The fusion nuclear reactions in this device can be triggered by a beam of antiprotons that enters the target through a hole and annihilates on the deuterium-tritium (DT) coated inner wall giving rise to the hot fusion plasma. In addition to thermally insulating the plasma, the magnetic field helps to contain the charged annihilation products and allows them to deposit their energy in the plasma to heat it to thermonuclear temperatures. Preliminary analysis given in this paper shows that an MICF propulsion system is capable of producing specific impulses on the order of 106106 seconds. Such capability makes not only the most distant planet in the solar system, but also the nearest star reachable in a human’s lifetime. It also shows that a robotic mission to 10,000 AU can readily be achieved in less than 50 years. © 2000 American Institute of Physics.
机译:一个非常有前途的推进装置,可以开辟太阳系和超越人类勘探是磁绝缘惯性矛盾融合(MICF)系统。该方案将惯性和磁熔融的有利方面与金属壳提供的热等离子体提供的,而其热能通过强的自成的磁场从该壁绝缘的情况下,其偏离等离子体提供。该装置中的融合核反应可以通过一束的反漏柱触发,该反漏剂通过孔进入靶通过孔并湮灭氘 - 氚(DT)涂覆的内壁产生热熔等离子体。除了热绝缘等离子体之外,磁场还有助于含有带电的湮灭产品,并允许它们在等离子体中沉积它们以将其加热至热核温度。本文给出的初步分析表明,MICF推进系统能够在106106秒的阶数产生特定的冲动。这种能力不仅使太阳系中最遥远的行星,而且也是人类一生中可达最近的明星。它还表明,在不到50年的时间内,可以在50年内实现10,000个AU的机器人任务。 ©2000美国物理研究所。

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    Terry Kammash;

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