首页> 外文期刊>Journal of the British Interplanetary Scoiety >HIGH-TEMPERATURE NANOCOMPOSITES FOR NUCLEAR THERMAL PROPULSION AND IN-SPACE FABRICATION BY HYPERBARIC PRESSURE LASER CHEMICAL VAPOR DEPOSITION
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HIGH-TEMPERATURE NANOCOMPOSITES FOR NUCLEAR THERMAL PROPULSION AND IN-SPACE FABRICATION BY HYPERBARIC PRESSURE LASER CHEMICAL VAPOR DEPOSITION

机译:高温高压激光化学气相沉积法在核热推进和空间制造中的高温纳米复合材料

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摘要

Nuclear Thermal Propulsion (NTP) is an indispensable technology for the manned exploration of the solar system. By using Hyperbaric Pressure Laser Chemical Vapor Deposition (HP-LCVD), the authors propose to design and build a promising next-generation fuel element composed of uranium carbide UC embedded in a latticed matrix of highly refractory Ta_4HfC_5 for an NTP rocket capable of sustaining temperatures up to 4000 K, enabling an Isp of up to 1250 s. Furthermore, HP-LCVD technology can also be harnessed to enable 3D rapid prototyping of a variety of materials including metals, ceramics and composites, opening up the possibility of in-space fabrication of components, replacement parts, difficult-to-launch solar sails and panels and a variety of other space structures. Additionally, rapid prototyping with HP-LCVD makes a feasible "live off the land" strategy of interplanetary and interstellar exploration - the precursors commonly used in the technology are found, often in abundance, on other solar system bodies either as readily harvestable gas (e.g. methane) or as a raw material that could be converted into a suitable precursor (e.g. iron oxide into ferrocene on Mars).
机译:核热推进(NTP)是人为探索太阳系必不可少的技术。通过使用高压激光化学气相沉积(HP-LCVD),作者建议设计和制造一种有前途的下一代燃料元件,该燃料元件由碳化铀UC组成,埋置在高度耐火的Ta_4HfC_5晶格矩阵中,用于能够维持温度的NTP火箭弹高达4000 K,Isp长达1250 s。此外,还可以利用HP-LCVD技术对各种材料(包括金属,陶瓷和复合材料)进行3D快速原型制作,从而为在太空制造部件,更换零件,难以启动的太阳帆和面板和其他各种空间结构。此外,使用HP-LCVD进行快速原型制作成为可行的星际和星际探索“离地生存”策略-该技术中通常使用的前体通常以大量形式被发现在其他太阳系物体上,或者是易于收获的气体(例如,甲烷)或可以转化为合适的前体的原料(例如,氧化铁在火星上转化为二茂铁)。

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