微重力条件下温室热设计与参数化研究

Nivedha Karigiri Madhusudhan, H. Najafi
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引用次数: 0

摘要

商业空间飞行的最新进展和行星际空间任务的前景引起了人们对微重力条件下可持续建筑环境的关注。为外层空间应用建立可持续生活条件的一个重要因素是生产粮食的能力。温室的热设计对植物的生存、用水效率、数量和质量都有重大影响。极低的环境温度需要使用加热器,而加热器确实消耗能源。鉴于能源获取的稀缺性,以尽可能低的能源需求实现适当的热条件是很重要的。本文讨论了微重力环境(即火星环境)下温室的热设计和考虑因素,该环境具有极低的环境温度条件(接近- 200 K)和有限的太阳辐射(最大590 W/ m2)。使用COMSOL Multiphysics进行了参数研究。研究了不同设计参数对温室室内热条件的影响,包括加热器容量和加热器的放置。评估了几种设计条件下温室内的温度分布,并进一步分析了植物生长所需的温度分布。通过比较微重力和正常重力条件的结果,对微重力条件的影响进行了评估。本研究的结果可用于外太空应用极端条件下温室的适当热设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Design and Parametric Study of a Greenhouse in Microgravity Conditions
The recent progress in commercial space flights and prospects for interplanetary space missions has attracted more attention towards developing sustainable built environments in microgravity conditions. An important factor in establishing a sustainable living condition for outer space applications is the ability to produce food. The thermal design considerations in a greenhouse have a major impact on the survival, water efficiency, quantity, and quality of plants produced. The extremely low environmental temperatures necessitate the use of heaters which do consume energy. Given the scarcity of energy access, it is important to achieve proper thermal conditions with the lowest possible energy requirements. This paper discusses the thermal design and considerations of a greenhouse in a microgravity environment (i.e. Martian environment) with extremely low ambient temperature conditions (nearly −200 K) and limited availability of solar radiation (maximum of 590 W/m 2). A parametric study is performed using COMSOL Multiphysics. The effects of varying several design parameters including heater capacity, and placement of heaters are investigated on the indoor thermal condition of the greenhouse. The temperature distribution inside the greenhouse is assessed for several design conditions and the desirable distributions for plant growth are further analyzed. The impact of microgravity conditions is also assessed through a comparison of results between microgravity and normal gravity conditions. The results from this study could be used towards the proper thermal design of greenhouses for the extreme conditions of outer space applications.
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