首页> 外文会议>AIAA space and astronautics forum and exposition >NASA GRC Compass Team Conceptual Point Design and Trades of a Hybrid Solar Electric Propulsion (SEP)/Chemical Propulsion Human Mars Deep Space Transport (DST) Vehicle
【24h】

NASA GRC Compass Team Conceptual Point Design and Trades of a Hybrid Solar Electric Propulsion (SEP)/Chemical Propulsion Human Mars Deep Space Transport (DST) Vehicle

机译:NASA GRC指南针队概念点设计和混合太阳能电动推进(SEP)/化学推进人火星深空运输(DST)车辆

获取原文

摘要

NASA has long been conducting studies which apply different in-space propulsion technology assumptions to the mission of sending humans to Mars. Two of the technologies under study that are considered to be the most near-term with respect to technology readiness level (TRL) are traditional chemical propulsion systems and high-power Solar Electric Propulsion (SEP) systems. The benefit of relatively low trip times inherent in using impulsive chemical propulsion systems to perform the full round-trip AV for human Mars missions is hampered by the large propellant mass required to perform these burns. SEP systems offer the benefit of much lower propellant requirements to perform the same round-trip missions, at the cost of longer trip times. Traditionally, impulsive chemical systems are better suited than SEP when used in a gravity well, and SEP systems are more efficient than traditional impulsive systems when used in interplanetary space. A typical mission to Mars includes both of these scenarios, and thus several NASA architecture studies, performed over the last few years, have looked to combine the use of both SEP and chemical propulsion systems where they are the most beneficial to human Mars missions. This combined propulsion system concept has been referred to as a SEP/Chem hybrid Mars Transfer Vehicle and is currently shown as the concept Deep Space Transport (DST) in the March 2017 NASA presentation to the National Aerospace Council (NAC).
机译:NASA长期以来一直在进行适用不同的空间推进技术假设在发送人类到火星的使命研究。所研究的技术,被认为是最近期关于技术准备水平(TRL)的两个是传统的化学推进系统和大功率太阳能电力推进系统(SEP)系统。在使用化学冲动推进系统进行人类火星任务由大推进剂质量阻碍了全往返AV固有的相对较低的出行次数的好处需要执行这些灼伤。 SEP系统提供的要低得多推进剂要求益处来执行相同的往返飞行任务,在较长的行程倍的成本。传统上,冲动的化学系统更适合比SEP在重力用得好的时候,和SEP系统比星际空间使用时,传统的脉冲系统更高效。火星典型任务包括这两种情形,因而一些NASA架构的研究,在过去的几年中进行的,都看向同时使用SEP以及它们对人类的火星任务最有益的化学推进系统相结合。这种结合推进系统的概念已在2017年3月美国航空航天局提交给国家航空航天局(NAC)被称为SEP /化学混合火星转移飞行器,目前显示为理念的深层空间运输(DST)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号