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Combination of Physico-Chemical Life Support Systems with Space Greenhouse Modules: A System Analysis

机译:物理化学生命支持系统与空间温室模块的组合:系统分析

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The cultivation of higher plants occupies an essential role within bio-regenerative life support systems. It contributes to all major functional aspects by closing the different loops in a habitat like food production, CO_2 reduction, O_2 production, waste recycling and water management. Fresh crops are also expected to have a positive impact towards the crew's psychological health. Nevertheless, plant cultivation in closed environments is challenging and further research on system, subsystem and crop level is required. The controlling and maintaining of closed environment agriculture systems such as space greenhouse modules is difficult due to lack of buffer capacity, low flexibility concerning varying crew size and eclipse periods, and the absence of backup systems in case of plant and system failures. The addition of physico-chemical (P/C) life support systems (LSS) as an intermediate system between the greenhouse module and the habitat/spacecraft has the potential to reduce or even eliminate the mentioned difficulties of greenhouse modules. This paper will investigate the potential of combining components of physico-chemical systems with greenhouse modules to increase the readiness of the latter. This would allow the creation of a more efficient life support systems by taking advantage of the experience gained in physico-chemical technologies and the related reliability and heritage of these technologies.
机译:高等植物的栽培在生物再生生命支持系统中起着至关重要的作用。它通过封闭栖息地中的不同回路,如食物生产,CO_2减少,O_2生产,废物回收和水管理,为所有主要功能方面做出了贡献。新鲜农作物也有望对船员的心理健康产生积极影响。然而,在封闭环境中种植植物具有挑战性,需要对系统,子系统和作物水平进行进一步的研究。由于缺乏缓冲能力,涉及不同的工作人员人数和日食周期的灵活性低以及在工厂和系统发生故障时没有备用系统,因此难以控制和维护诸如太空温室模块之类的封闭环境农业系统。作为温室模块和栖息地/航天器之间的中间系统,添加物理化学(P / C)生命支持系统(LSS)有可能减少甚至消除温室模块所提到的困难。本文将研究将物理化学系统的组件与温室模块结合起来以增加后者的准备度的潜力。通过利用在物理化学技术中获得的经验以及这些技术的相关可靠性和传统,这将允许创建更有效的生命支持系统。

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