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Heat and mass transfer of a low-pressure Mars greenhouse: Simulation and experimental analysis.

机译:低压火星温室的传热和传质:模拟和实验分析。

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Biological life support systems based on plant growth offer the advantage of producing fresh food for the crew during a long surface stay on Mars. Greenhouses on Mars are also used for air and water regeneration and waste treatment. A major challenge in developing a Mars greenhouse is its interaction with the thin and cold Mars environment. Operating a Mars greenhouse at low interior pressure reduces the pressure differential across the structure and therefore saves structural mass as well as reduces leakage.; Experiments were conducted to analyze the heating requirements as well as the temperature and humidity distribution within a small-scale greenhouse that was placed in a chamber simulating the temperatures, pressure and light conditions on Mars. Lettuce plants were successfully grown inside of the Mars greenhouse for up to seven days. The greenhouse atmosphere parameters, including temperature, total pressure, oxygen and carbon dioxide concentration were controlled tightly; radiation level, relative humidity and plant evapo-transpiration rates were measured.; A vertical stratification of temperature and humidity across the greenhouse atmosphere was observed. Condensation formed on the inside of the greenhouse when the shell temperature dropped below the dew-point. During the night cycles frost built up on the greenhouse base plate and the lower part of the shell. Heat loss increased significantly during the night cycle. Due to the placement of the heating system and the fan blowing warm air directly on the upper greenhouse shell, condensation above the plants was avoided and therefore the photosynthetically active radiation at plant level was kept constant. Plant growth was not affected by the temperature stratification due to the tight temperature control of the warmer upper section of the greenhouse, where the lettuce plants were placed.; A steady state and a transient heat transfer model of the low pressure greenhouse were developed for the day and the night cycle. Furthermore, low pressure psychrometric relations for closed systems and modified atmospheres were generated to calculate the properties of the moist air in order to predict condensate formation. The results of this study improve the design of the environmental control system leading to an optimization of plant growth conditions.
机译:基于植物生长的生物生命支持系统具有在船员长时间在火星上停留期间为船员生产新鲜食物的优势。火星上的温室还用于空气和水的再生和废物处理。开发火星温室的主要挑战是其与稀薄而寒冷的火星环境的相互作用。在较低的内部压力下操作火星温室可减少整个结构的压差,从而节省结构质量并减少泄漏。进行了实验,以分析小规模温室中的供暖需求以及温度和湿度分布,该温室放置在一个模拟火星温度,压力和光照条件的室内。生菜植物在火星温室内成功生长了多达7天。严格控制温室温度,总压,氧气和二氧化碳浓度等大气参数;测量辐射水平,相对湿度和植物蒸腾速率。在整个温室大气中观察到温度和湿度的垂直分层。当外壳温度降至露点以下时,在温室内部形成冷凝。在夜间循环过程中,温室底板和外壳下部会结霜。在夜间循环中,热量损失显着增加。由于放置了加热系统,并且风扇直接在上部温室外壳上吹送暖风,因此避免了植物上方的凝结,因此植物水平的光合有效辐射保持恒定。由于对放置生菜植物的温室较暖的上部进行严格的温度控制,植物的生长不受温度分层的影响。建立了昼夜周期的低压温室稳态和瞬态传热模型。此外,还生成了用于密闭系统和修改后的气氛的低压湿热关系式,以计算湿空气的性质,以预测冷凝物的形成。这项研究的结果改善了环境控制系统的设计,从而优化了植物的生长条件。

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