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Designing the Ares I Crew Launch Vehicle Upper Stage Element and Integrating the Stack at NASA's Marshall Space Flight Center

机译:在NASA的马歇尔太空飞行中心设计Ares I Crew运载火箭的上级元素并整合堆栈

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摘要

Fielding an integrated launch vehicle system entails many challenges, not the least of which is the fact that it has been over 30 years since the United States has developed a human-rated vehicle - the venerable Space Shuttle. Over time, whole generations of rocket scientists have passed through the aerospace community without the opportunity to perform such exacting, demanding, and rewarding work. However, with almost 50 years of experience leading the design, development, and end-to-end systems engineering and integration of complex launch vehicles, NASA's Marshall Space Flight Center offers the in-house talent - both junior- and senior-level personnel - to shape a new national asset to meet the requirements for safe, reliable, and affordable space exploration solutions.' These personnel are housed primarily in Marshall's Engineering Directorate and are matrixed into the programs and projects that reside at the rocket center. Fortunately, many Apollo era and Shuttle engineers, as well as those who gained valuable hands-on experience in the 1990s by conducting technology demonstrator projects such as the Delta-Clipper Experimental Advanced, X-33, X-34, and X-37, as well as the short-lived Orbital Space Plane, work closely with industry partners to advance the nation's strategic capability for human access to space. Currently, only three spacefaring nations have this distinction, including the United States, Russia, and, more recently, China. The U.S. National Space Policy of2006 directs that NASA provide the means to travel to space, and the NASA Appropriations Act of2005 provided the initial funding to begin in earnest to replace the Shuttle after the International Space Station construction is complete in 20 IO? These and other strategic goals and objectives are documented in NASA's 2006 Strategic Plan.3 In 2005, a team of NASA aerospace experts conducted the Exploration Systems Architecture Study, which recommended a two-vehicle approach to America's next space transportation system for missions to the International Space Station in the next decade and to explore the Moon and establish an outpost around the 2020 timeframe.4 Based on this extensive study, NASA selected the Ares I crew launch vehicle configuration and the heavy-lift Ares V cargo launch vehicle (fig 1). This paper will give an overview of NASA's approach to integrating the Ares I vehicle stack using capabilities and assets that are resident in Marshall's Engineering Directorate, working in partnership with other NASA Centers and the U.S. aerospace industry. It also will provide top-level details on the progress of the in-house design of the Ares I vehicle's upper stage element.
机译:部署集成式运载火箭系统面临许多挑战,其中最重要的一个事实是,自美国开发出人类额定的运载工具-古老的航天飞机以来已经有30多年的历史了。随着时间的流逝,一代又一代的火箭科学家已经穿越航空航天界,而没有机会进行如此严格,苛刻和有益的工作。但是,凭借近50年的领导设计,开发和端对端系统工程以及复杂运载火箭集成的经验,NASA的马歇尔太空飞行中心提供了内部人才-初级和高级人员-塑造一种新的国家资产,以满足对安全,可靠和负担得起的太空探索解决方案的要求。”这些人员主要居住在马歇尔工程局,并被安排到位于火箭中心的计划和项目中。幸运的是,许多阿波罗时代和航天飞机工程师,以及在1990年代通过开展技术演示项目(例如Delta-Clipper实验高级版,X-33,X-34和X-37)获得了宝贵的实践经验的工程师,以及寿命短的轨道太空飞机,与行业合作伙伴紧密合作,以提高国家人类进入太空的战略能力。目前,只有三个航天国家具有这种区别,包括美国,俄罗斯以及最近的中国。 《 2006年美国国家太空政策》指示NASA提供前往太空旅行的手段,而《 2005年NASA拨款法案》提供了最初的资金,以期在20 IO完成国际空间站建设后开始真正取代航天飞机。这些战略目标和其他战略目标已记录在NASA的2006年战略计划中。32005年,一个由NASA航空航天专家组成的团队进行了“探索系统架构研究”,该研究为美国的下一个太空运输系统推荐了两种方法来执行国际飞行任务在接下来的十年中,太空站将继续探索月球,并在2020年左右建立前哨基地。4根据这项广泛的研究,美国宇航局选择了Ares I乘员运载火箭的配置和重型Ares V运载火箭的运载工具(图1) 。本文将概述NASA与其他NASA中心和美国航空航天业合作使用马歇尔工程局的能力和资产整合Ares I车辆堆栈的方法。它还将提供有关Ares I车辆上层元素内部设计进度的顶级详细信息。

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    Lyles, Garry; Otte, Neil E.;

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  • 年度 2008
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