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Optimization and performance analysis of waverider configured interplanetary space vehicles

机译:乘波谱仪配置的星际航天器的优化和性能分析

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摘要

This thesis describes a number of issues associated with waverider configured spacecraft designed for interplanetary missions. The first such issue is the determination of the magnitude of the energies and velocities required for conventional gravity-assist (GA) spaceflight maneuvers contrasted with energies and velocities required for less conventional aero-gravity assisted (AGA) maneuvers for interplanetary spaceflight travel These comparisons will be made for an Earth-Mars shuttle mission, a mission to Saturn, a mission to Neptune, and a round-trip mission to Saturn. Two additional issues considered for each mission are the fuel requirements and flight time parameters for both gravity-assist and AGA maneuvering spaceflight trajectories. This research includes the use of the patched conic interplanetary trajectory optimization MIDAS (Mission Design and Analysis Software) code for mission flight path analysis developed by the Jet Propulsion Laboratory. Waverider configuration development and off-design aerothermal analysis for each mission was supported by the NASA Ames Research Center's Waverider code (a subset of the Hypersonic Aircraft Vehicle Optimization Code) and a modified AEROSA code employing a Martian atmosphere, respectively. The results of this research showed that by using AGA, launch windows could be widened, flight times could be reduced by 25%, and fuels could be reduced by 30%.
机译:本论文描述了与专为行星际飞行而设计的配置了乘波峰飞行器的航天器相关的许多问题。第一个这样的问题是确定常规重力辅助(GA)航天飞行所需的能量和速度的大小,与较少的常规星际重力辅助(AGA)进行行星际航天飞行所需的能量和速度的对比。这些比较将适用于地球-火星航天飞机任务,土星任务,海王星任务以及土星往返任务。每个任务要考虑的两个其他问题是重力辅助和AGA机动飞行轨迹的燃料需求和飞行时间参数。这项研究包括使用由喷气推进实验室开发的补丁圆锥形行星际轨迹优化MIDAS(任务设计和分析软件)代码进行任务飞行路径分析。美国国家航空航天局埃姆斯研究中心的Waverider代码(高超音速飞机优化代码的子集)和采用火星大气的经修改的AEROSA代码分别为每个任务的Waverider配置开发和设计外的空气热分析提供了支持。这项研究的结果表明,通过使用AGA,发射窗口可以扩大,飞行时间可以减少25%,燃料可以减少30%。

著录项

  • 作者

    Flynn John M.;

  • 作者单位
  • 年度 1996
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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