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DESIGN AND ANALYSIS OF AN INNOVATIVE CUBESAT THERMAL CONTROL SYSTEM FOR BIOLOGICAL EXPERIMENT IN LUNAR ENVIRONMENT

机译:农历环境生物实验创新立方体热控制系统的设计与分析

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After about 50 years since the Apollo missions, Space Agencies are planning new manned missions beyond LEO, aiming to full functional Lunar and Martian outposts. Leaving the protection of Earth's magnetic field, human body will be exposed by a huge amount of harmful radiations coming from both solar wind and cosmic rays, which represent a risk for the astronauts. In order to prepare for future manned exploration missions, many biological experiments have been conducted inside and outside the International Space Station (ISS). From these experiments, engineers and scientists gained knowledge about biological degradation after a long period of exposure to space radiations. Similar experiments were also carried out in small free-flyers. For example, the O/OREOS mission is built with a 3U CubeSat that is evaluating how microorganisms can survive and can adapt to the harsh orbit environment. Small platforms, such as CubeSats, are gaining interest for many applications including science experiments. Biological payloads require very stable environmental conditions, implying that environment requirements are very stringent and that existing passive thermal control systems may not be sufficient to support these class of experiments. The goal of this paper is to describe and discuss the design of an active environmental control system suitable for supporting biological payloads hosted onboard nanosatellites. In particular, we focused the attention on the case of a payload constituted by a bacterial culture that needs oxygen supply for growing up. The rate of growth and vitality are measured through bacteria metabolic parameters. The reference mission is built with a 6U CubeSat in Lunar Polar Orbit, with the main scientific objective of measuring the effect of the lunar radiation environment on a culture of "Bacterium Deinococcus Radiodurans". This kind of bacteria exhibits significant resistance to ionising radiation and the survival temperature range is 30°C ± 10°C. The the
机译:在阿波罗任务以来大约50年后,太空机构规划了狮子座以外的新载人任务,旨在全功能的农历和火星前哨。离开地球磁场的保护,人体将通过来自太阳风和宇宙射线的大量有害辐射来暴露,这代表了宇航员的风险。为了为未来的载人勘探任务做好准备,许多生物实验已经在国际空间站(ISS)内外进行。从这些实验中,工程师和科学家在长期暴露于空间辐射后获得了关于生物降解的了解。在小的自由型飞行物中也进行了类似的实验。例如,O / OREOS使命由3U CubeSAT构建,这是评估微生物如何生存并且可以适应苛刻的轨道环境。小型平台,如CubeSats,对许多应用程序的兴趣获得了兴趣,包括科学实验。生物有效载荷需要非常稳定的环境条件,这意味着环境要求非常严格,并且现有的无源热控制系统可能不足以支持这些类实验。本文的目的是描述和讨论适用于支持纳米替肽的生物有效载荷的活性环境控制系统的设计。特别是,我们将注意力集中在需要受氧气供应的细菌培养物中所构成的有效载荷的情况。通过细菌代谢参数测量生长率和活力。参考任务是在月球极性轨道中的6U CubeSat建造的,主要科学目标测量月球辐射环境对“细菌脱孢子酰基罗替氏菌”培养的影响。这种细菌表现出对电离辐射的显着抗性,并且存活温度范围为30℃±10℃。王子

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