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BENEFITS OF APPLICATION OF ADVANCED TECHNOLOGIES FOR A NEPTUNE ORBITER, ATMOSPHERIC PROBES, AND TRITON LANDER

机译:高级技术在海王星轨道,大气探针和TRITON着陆器中的应用效益

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Missions with planned launch dates several years from today pose significant design challenges in properly accounting for technology advances that may occur in the time leading up to actual spacecraft design, build, test and launch. Conceptual mission and spacecraft designs that rely solely on off the shelf technology will result in conservative estimates that may not be attractive or truly representative of the mission as it actually will be designed and built. This past summer, as part of one of NASA's Vision Mission Studies, a group of students at the Laboratory for Spacecraft and Mission Design (LSMD) have developed and analyzed different Neptune mission baselines, and determined the benefits of various assumed technology improvements. The baseline mission uses either a chemical propulsion system or a solar-electric system. Insertion into orbit around Neptune is achieved by means of aerocapture. Neptune's large moon Triton is used as a tour engine. With these technologies a comprehensive Cassini-class investigation of the Neptune system is possible. Technologies under investigation include the aerocapture heat shield and thermal protection system, both chemical and solar electric propulsion systems, spacecraft power, and energy storage systems.
机译:具有计划发布日期的特派团从今天起几年来构成了显着的设计挑战,在适当核算技术进步时可能会发生在可能发生的实际航天器设计,建立,测试和发布时。依赖于货架技术依赖于货架技术的概念性使命和航天器设计将导致保守的估计,可能不会有吸引力或真正代表特派团,因为它实际上将被设计和建造。在过去的夏天,作为美国国家航空航天局的视觉特派团研究之一的一部分,一群在航天器和使命设计(LSMD)实验室的学生已经开发并分析了不同的海王星使命基准,并确定了各种假设技术改进的好处。基线特派团使用化学推进系统或太阳能电力系统。通过空气捕获来实现在海王星周围插入轨道。海王星的大型月球氚龙用作旅游引擎。通过这些技术,可以进行全面的Cassini-Class调查海王星系统。正在调查的技术包括Aercocapture隔热屏蔽和热保护系统,化学和太阳能推进系统,航天器电力和能量存储系统。

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