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Impacts of 'Pick-and-Eat' Plant Growth Systems on the ISS and Gateway

机译:“挑选”植物生长系统对ISS和网关的影响

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Experience with plant growth in micro-gravity is limited and plants have not yet experienced deep space radiation outside of the Earth’s magnetic field. NASA intends to address these knowledge gaps by performing plant research on present and future habitats. Incorporating plants into the physical chemical life support systems of the International Space Station (ISS) or the future Lunar Orbiting Platform Gateway poses a new challenge for the systems that must be analyzed beforehand. The simulation tool V-HAB is used to study the impact and analyze possible feedback loops between the physical chemical systems and 'Pick- and-Eat' plant systems. The studied plant systems range from the size of two Veggie experiments to a larger version using a complete International Standard Payload Rack for tomatoes and lettuce. The study for the ISS focused on the effects of plants on the cabin atmosphere and other life support systems, while for the Gateway, the main tradeoff was a comparison between an ‘open-loop’ approach using an Orion CAMRAS and a ‘closed-loop’ using ISS components. The results consistently show that the main impacts of small-scale cultivation areas are caused by transpiration. Thus, increasing the water loop closure of the Gateway is identified as the most important task. In follow-up simulations different viable solutions to partially close the water loop, like adding a CHX to the cabin of the Gateway or to a mostly closed plant growth chamber, were analyzed. The results indicate that the optimal solution depends on the size of the plant growth chamber, and a break even point between the two alternatives was estimated.
机译:植物生长在微重力的经验有限,植物尚未在地球磁场外尚未经历过深空间辐射。美国宇航局打算通过对现在和未来的栖息地进行植物研究来解决这些知识差距。将植物纳入国际空间站(ISS)或未来的月球轨道平台网关对必须事先分析的系统构成新的挑战。仿真工具V-HAB用于研究物理化学系统和“挑选”植物系统之间的影响和分析可能的反馈循环。学习的植物系统范围从两种素食实验的大小与较大的版本使用完整的国际标准有效载荷架用于西红柿和生菜。该研究的研究专注于植物对机舱气氛和其他生命支持系统的影响,而对于网关,主要权衡是使用猎户座Camras和'闭环的“开环”方法之间的比较'使用ISS组件。结果一致表明,小规模栽培区域的主要影响是由蒸腾引起的。因此,识别出网关的水循环闭合被识别为最重要的任务。在随访模拟中,分析了不同可行的解决方案,以部分地关闭水循环,例如将CHX添加到网关的机舱或主要封闭的植物生长室中。结果表明,最佳溶液取决于植物生长室的尺寸,估计两种替代方案之间的甚至点。

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