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The Orion spacecraft as a key element in a deep space gateway

机译:猎户座宇宙飞船作为深空网关中的一个关键元素

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With the Orion exploration vehicle and Space Launch System (SLS) approaching operational status, NASA and the international community are developing the next generation of habitats to serve as a deep space platform that will be the first of its kind, a cislunar Deep Space Gateway (DSG). The DSG is evolvable, flexible, and modular. It would be positioned in the vicinity of the Moon and allow astronauts to demonstrate they can operate for months at a time well beyond Low Earth Orbit. Orion is the next generation human exploration spacecraft being developed by NASA. It is designed to perform deep space exploration missions, and is capable of carrying a crew of 4 astronauts on independent free-flight missions up to 21 days, limited only by consumables. Because Orion meets the strict requirements for deep space flight environments (reentry conditions, deep-space communications, safety, radiation, and life support for example) it is a key element in a DSG and is more than just a transportation system. Orion has the capability to act as the command deck of any deep space piloted vehicle. To increase affordability and reduce the complexity and number of subsystem functions the early DSG must be responsible for, the DSG can leverage these unique deep space qualifications of Orion. For example, Orion already contains sleep stations, a galley, and a toilet. Therefore, the DSG would not need those functions especially in its early stages of buildup. Orion also meets deep space radiation storm shelter requirements and therefore removes the need for that accommodation on the gateway. As a visiting vehicle, Orion also has additional capacity for CO2 and humidity removal as well as excess power capacity that could be used to operate gateway systems. Because the gateway will be crew tended (meaning crew is not present continuously) it will need basic spacecraft functionality to provide functions like power, attitude control, low rate communication, and command and data handling when astronauts are not present. In this mode of operation, the gateway operates more like an interplanetary robotic vehicle, with a high level of self-sufficiency. While astronauts are living there however, the gateway will need to meet the difficult requirements of deep space and be astronaut-safe. This paper explores in more detail the many ways in which Orion can use its advanced capabilities to augment an early DSG, thereby decreasing complexity and improving affordability.
机译:随着猎户座勘探车和空间发射系统(SLS)接近运营状况,美国宇航局和国际社会正在开发下一代栖息地,作为一个深层空间平台,这将是它的第一个,即Cislunar深空网关( DSG)。 DSG是可以进一步的,柔性和模块化的。它将在月球附近定位,允许宇航员证明它们可以在远远超出低地轨道上的时间运行几个月。猎户座是美国宇航局开发的下一代人类勘探航天器。它旨在执行深度空间勘探任务,能够在独立的自由飞行任务上携带4艘宇航员的船员,最长21天,仅限于耗材。由于猎户座符合深空飞行环境的严格要求(再入条件,深空通信,安全,辐射和辐射和寿命支持),它是DSG中的关键元素,不仅仅是运输系统。猎户座具有充当任何深空的指挥甲板的能力。为了提高负担能力并降低子系统功能的复杂性和数量,早期的DSG必须负责,DSG可以利用这些独特的猎户座的深层空间资格。例如,Orion已经包含睡眠站,厨房和厕所。因此,DSG不需要这些功能,尤其是其早期的积累阶段。猎户座也符合深度空间辐射风暴避难所要求,因此消除了在网关上的住宿的需求。作为访问车辆,ORION还具有CO2和湿度去除的额外容量,以及可用于操作网关系统的过剩的电力容量。由于网关将被员工倾向于(含义持续存在),因此需要基本的航天器功能来提供电源,姿态控制,低速通信和命令和数据处理时的功能,并且当宇航员不存在时。在这种操作模式下,网关操作更像行星际机器人车辆,具有高水平的自给自足。然而,虽然宇航员在那里生活时,网关需要满足深空的难度要求,并宇航员安全。本文更详细地探讨了猎户座可以使用其高级功能来增强早期DSG的许多方式,从而降低了复杂性和提高了实惠。

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