将膜曝气生物反应器(MABRs)集成到天基水循环系统架构中的评估

D. Christenson, Ritesh Sevanthi, A. Morse, A. Jackson
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引用次数: 9

摘要

摘要:本研究探讨了膜曝气生物反应器(MABRs)在整个水循环系统中对由尿液、卫生/灰水和湿度冷凝水组成的太空废物流进行生物处理的适用性。水是人类在空间居住和旅行的关键限制因素;因此,水循环系统是必不可少的。与目前使用刺激性化学品的化学稳定工艺相比,废水的生物处理提供了一种更有效、可持续的方法来稳定水循环系统架构中的废水流,而化学稳定工艺既危险又不可持续。为了评估MABR提供微重力兼容生物处理的能力,验证长时间运行和与海水淡化工艺的集成,两个全尺寸MABR系统在持续运行1年多的时间里,在不同的负载率和运行场景下受到了挑战。mabr能够保持196 g-C/m3- 3和194 g-N/m3- 3的体积转化率。此外,系统能够处理间歇性负载,并从长达27天的系统休眠期中快速恢复。总体而言,在废水处理系统架构中使用mabr提供了几个潜在的好处,包括最大限度地减少有毒化学预处理溶液的使用,并提供更容易脱盐和脱水的出水溶液。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessment of Membrane-Aerated Biological Reactors (MABRs) for Integration into Space-Based Water Recycling System Architectures
Abstract This work investigates the suitability of membrane aerated biological reactors (MABRs) for biological treatment of a space-based waste stream consisting of urine, hygiene/grey water, and humidity condensate within an overall water recycling system. Water represents a critical limiting factor for human habitation and travel within space; thus, water recycling systems are essential. Biological treatment of wastewater provides a more efficient sustainable means of stabilizing the waste stream within water recycling system architectures in comparison to current chemical stabilization processes that utilize harsh chemicals, which represent both a hazardous and an unsustainable approach. To assess the capabilities of MABRs for providing microgravity compatible biological treatment and verify long duration operation and integration with desalination processes, two full-scale MABR systems were challenged with various loading rates and operational scenarios during sustained operation for over 1 year. The MABRs were able to maintain 196 g-C/m3-d and 194 g-N/m3-d volumetric conversion rates. Additionally the systems were able to handle intermittent loading and recover rapidly from system hibernation periods of up to 27 days. Overall, the use of MABRs within a wastewater treatment system architecture provides several potential benefits including minimizing the use of toxic chemical pretreatment solutions and providing an effluent solution that is easier to desalinate and dewater.
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