首页> 外文期刊>Proceedings of the Royal Society. Mathematical, physical and engineering sciences >A Mars hopping vehicle propelled by a radioisotope thermal rocket: Thermofluid design and materials selection
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A Mars hopping vehicle propelled by a radioisotope thermal rocket: Thermofluid design and materials selection

机译:放射性同位素热火箭推动的火星跳车:热流体设计和材料选择

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Rocket-propelled vehicles capable of travelling a kilometre or more in a ballistic hop with propellants acquired from the Martian atmosphere offer the potential for increased mobility and planetary science return compared with conventional rovers. In concept, a radioisotope heat source heats a core or thermal capacitor, which in turn heats propellant exhausted through a rocket nozzle to provide thrust. A systematic study of the thermodynamics, heat transfer and selection of core materials for a Mars hopper was undertaken. The aim was to advance the motor design and assess technical risks and feasibility. Analytical and numerical motor models were developed; the former to generate thermodynamic performance limits, an ideal hop distance and plot a materials selection chart using simple explicit relations. The numerical model assessed the effect of core configuration and geometry. A hop coefficient Chop is shown to characterize the effect of core geometry independently of core material and temperature. The target hop distance of 1km is shown to be robust. A moderate advantage to pebble-bed cores over a core consisting of straight channels was suggested. High-performance engineering ceramics such as boron carbide offer the longest hop providing the core temperature can be increased significantly above 1200 K.
机译:与传统火星车相比,能够从火星大气层中获取的推进剂在弹道中飞行一公里或更长时间的火箭推进车具有增加机动性和行星科学回报的潜力。从概念上讲,放射性同位素热源加热芯或热电容器,后者又加热通过火箭喷嘴排出的推进剂以提供推力。对火星料斗的热力学,传热和核心材料的选择进行了系统的研究。目的是推进电动机设计并评估技术风险和可行性。开发了分析和数值电动机模型;前者产生热力学性能极限,理想的跃点距离,并使用简单的显式关系绘制材料选择表。数值模型评估了岩心构造和几何形状的影响。示出了跳跃系数Chop,其独立于芯材料和温度来表征芯几何形状的影响。 1 km的目标跳距被证明是可靠的。提出了卵石床岩心比直通道岩心具有中等优势。高性能工程陶瓷(例如碳化硼)提供最长的跃点,前提是可以将中心温度显着提高到1200 K以上。

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