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用于受控生态生命支持系统的实验性藻类气体交换器的运行。

Operation of an experimental algal gas exchanger for use in a CELSS.

作者信息

Smernoff D T, Wharton R A, Averner M M

机构信息

Complex Systems Research Center, University of New Hampshire, Durham 03824, USA.

出版信息

Adv Space Res. 1987;7(4):17-27. doi: 10.1016/0273-1177(87)90028-7.

Abstract

Concepts of a CELSS anticipate the use of photosynthetic organisms (higher plants and algae) for air revitalization. The rates of production and uptake of carbon dioxide and oxygen between the crew and the photosynthetic organisms are mismatched. An algal [correction of aglal] system used for gas exchange only will have the difficulty of an accumulation or depletion of these gases beyond physiologically tolerable limits (in a materially closed system the mismatch between assimilatory quotient (AQ) and respiratory quotient (RQ) will be balanced by the operation of the waste processor). We report the results of a study designed to test the feasibility of using environmental manipulations to maintain physiologically appropriate atmospheres for algae (Chlorella pyrenoidosa) and mice (Mus musculus strain DW/J) in a gas-closed system. Specifically, we consider the atmosphere behavior of this system with Chlorella grown on nitrate or urea and at different light intensities and optical densities. Manipulation of both the photosynthetic rate and AQ of the alga has been found to reduce the mismatch of gas requirements and allow operation of the system in a gas-stable manner. Operation of such a system in a CELSS may be useful for reduction of buffer sizes, as a backup system for higher plant air revitalization and to supply extra oxygen to the waste processor or during crew changes. In addition, mass balance for components of the system (mouse, algae and a waste processor) are presented.

摘要

受控生态生命支持系统(CELSS)的概念预期利用光合生物(高等植物和藻类)来实现空气再生。乘员与光合生物之间二氧化碳和氧气的产生与吸收速率不匹配。仅用于气体交换的藻类系统会面临这些气体在生理可耐受限度之外积累或消耗的难题(在物质封闭系统中,同化商(AQ)与呼吸商(RQ)之间的不匹配将通过废物处理器的运行来平衡)。我们报告了一项研究的结果,该研究旨在测试在气体封闭系统中利用环境调控来为藻类(小球藻)和小鼠(小家鼠DW/J品系)维持生理适宜大气环境的可行性。具体而言,我们考虑了该系统在以硝酸盐或尿素为养分生长的小球藻以及不同光照强度和光密度条件下的大气行为。已发现对藻类光合速率和AQ进行调控可减少气体需求的不匹配,并使系统以气体稳定的方式运行。在CELSS中运行这样的系统可能有助于减小缓冲器规模,作为高等植物空气再生的备用系统,并在废物处理或乘员更替期间为其提供额外氧气。此外,还给出了系统各组成部分(小鼠、藻类和废物处理器)的质量平衡情况。

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