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Nuclear propulsion choices for space exploration

机译:太空探索的核动力选择

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The potential for nuclear propulsion as a substitute for chemical propulsion for near term space exploration is examined. Chemical rockets face limitations on the generated thrust per unit mass of fuel. Increasing the specific impulse Is by using nuclear propulsion significantly reduces the percentage of total mass that must be allocated for the propellant, thereby increasing the payload. For long distance missions, Is becomes increasingly important, as the propellant mass approaches 100 percent of the total mass. The near term potential of nuclear propulsion is for a mission to Mars. The higher Is reduces the mission duration from about a year for a chemical rocket, to a few weeks in the case of a nuclear rocket. This is crucial to avoid the effects of space radiation from solar flares on the astronauts, as well as the effects of gravity's absence on their muscular, bone, and other bodily functions. Details of the designs of solid core nuclear reactors for propulsion are discussed including the core design, shielding and reactivity control drums. The most promising options for near future space solar system space exploration are identified as the newer technologies of nuclear powered ion thrusters and gas core nuclear reactors.
机译:研究了核动力替代化学动力进行短期太空探索的潜力。化学火箭在单位质量燃料产生的推力方面面临局限性。通过使用核推进来增加比冲量Is大大降低了必须分配给推进剂的总质量的百分比,从而增加了有效载荷。对于长距离任务,随着推进剂质量接近总质量的100%,Is变得越来越重要。核动力的近期潜力是执行火星任务。较高的Is将任务持续时间从化学火箭的大约一年减少到核火箭的几周。这对于避免太阳耀斑产生的空间辐射对宇航员的影响以及避免重力对其宇航员的肌肉,骨骼和其他身体机能的影响至关重要。讨论了用于推进的固体核反应堆设计的细节,包括堆芯设计,屏蔽和反应堆控制筒。在不久的将来,太阳系太空探索的最有前途的选择被确定为核动力离子推进器和气芯核反应堆的较新技术。

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