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A three-body spacecraft as a testbed for artificially-induced gravity research in Low Earth Orbit

机译:一种三体宇宙飞船作为在低地轨道中人工引起的重力研究的试验台

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This paper presents research and design of a three-body rotating system to be used as a precursor / testbed for research of systems functionality and human physiology under different gravity variables including simulations of lunar and Martian gravitational conditions. The testbed will be a necessary step to collect data on effects of artificial gravity on spacecraft systems and human physiology helping to optimize design solutions for lunar and Martian surface habitats and artificial gravity spacecraft. It will be the first stage of the development of a Variable Gravity Research Platform in Low Earth Orbit for long-term investigations of effects of variable gravity gradients and rotationally-induced gravity simulations.Ensuring astronauts' safety during a long Mars mission and their recovery upon return is a critical requirement for mission success. Therefore, acquiring a good understanding of long-term effects of partial gravity on physiological and psychological capabilities must be fulfilled prior to the mission and a research platform to investigate partial gravity effects on humans and technical systems is needed. A Variable Gravity Research Platform that orbits the Earth in Low Earth Orbit (LEO) can address this knowledge-gap. LEO is a good location for such a facility due to proximity to Earth's surface and access to existing infrastructure and commercial activities there. The development of such a platform will require a phased approach. The first stage of it is presented in this paper. It is a testbed for the research platform which comprises two customized crew Dragons docked to a Central Hub, which in turn will dock to the Zvezda module of the International Space Station. The intent of the proposal is to utilize off-the-shelf elements to reduce development costs and time which will enable us to perform testing "tomorrow" with today's technology. To execute operations, the testbed will undock, retreat 2000m aft of the ISS and initiate rotation by firing its augmented thrusters. Then, the crewed-Dragons will tether out to the desired radius of rotation to begin test operations. Upon completion, the testbed will de-spin, retract its tethers and re-dock to the ISS. The sequence will repeat as needed. The paper also presents the test objectives of the testbed, an analysis of its strengths, weaknesses, opportunities & threats, design development and selection criteria of the constituent elements of the testbed, Concept of Operations and possible risks associated with the testbed and their respective mitigations.
机译:本文介绍了一个三体旋转系统的研究和设计,以用作在不同的重力变量下的系统功能和人体生理学研究的前体/试验表,包括月球和火星重力条件的模拟。该测试平台将收集关于人工重力对航天器系统和人类生理学效果的数据有助于优化农历和火星地面栖息地和人工重力航天器的设计解决方案的必要步骤。它将是在低地球轨道中发展变量重力研究平台的第一阶段,以便长期调查可变重力梯度和旋转引起的重力模拟的影响。宇航员在长火星任务期间的安全性及其恢复返回是使命成功的关键要求。因此,必须在使命事件之前实现对生理和心理能力的部分重力对生理和心理能力的长期影响的良好理解,并且需要研究对人类和技术系统的部分重力影响。一个可变的重力研究平台,在低地球轨道(LEO)中轨道地球(LEO)可以解决这种知识差距。 Leo是由于地球表面靠近以及在那里获得现有基础设施和商业活动而导致这种设施的良好位置。这种平台的发展将需要一个相位的方法。本文提出了第一阶段。它是研究平台的测试平台,其中两个定制的船员龙对停靠在中心集线器,这反过来将停靠在国际空间站的Zvezda模块。提案的目的是利用现成的元素来降低开发成本和时间,使我们能够通过当今的技术进行“明天”进行测试。要执行操作,测试平台将撤消,退回ISS的AFT并通过触发增强推进器来启动旋转。然后,船员将被系绳向所需的旋转半径以开始测试操作。完成后,测试床将脱旋,缩回其微合作并重新停靠ISS。根据需要序列将重复。本文还介绍了试验台的测试目标,分析了其优势,劣势,机会和威胁,设计开发和试验组成部分的设计开发和选择标准,运营概念以及与试验台相关的可能性及其各自的减轻的可能性。

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