基于酶的二氧化碳捕获,用于高级生命维持。

Jijun Ge, Robert M Cowan, Chingkuang Tu, Martin L McGregor, Michael C Trachtenberg
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引用次数: 0

摘要

空气中二氧化碳浓度升高会导致人体功能受损,甚至死亡。在没有多少物理或生物缓冲能力的密闭空间(如航天器、潜艇或飞机)中,控制二氧化碳至关重要。设计了一种新型的酶基含液膜生物反应器用于CO2捕集,并报道了一些应用实例。结果表明,液体层是输送阻力的主要来源。添加碳酸酐酶后,转运抗性降低71%。在1天的运行期间,预计在机组舱或植物生长室中存在的挥发性有机化合物的类型和浓度不会影响碳酸酐酶活性或反应器运行。作为一种消除消耗品的替代扫气方法研究表明,当与介质真空压力(-85 kPa)相结合时,原料气可以成功地在旁路模式下使用,以实现与惰性扫气相当的CO2分离。反应器对CO2对N2的选择性为1400:1,对CO2对O2的选择性为866:1。当进料浓度为0.1% CO2时,CO2渗透率为1.44 × 10(-7) mol m-2 Pa-1 s-1 (4.3 × 10(-4) cm3 cm-2 s-1 cmHg-1)。这些数据表明,基于酶的含液膜是一种很有前途的候选技术,可能适用于NASA的应用,以控制机组人员或植物舱内的二氧化碳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enzyme-based CO2 capture for advanced life support.

Elevated CO2 levels in air can lead to impaired functioning and even death to humans. Control of CO2 is critical in confined spaces that have little physical or biological buffering capacity (e.g., spacecraft, submarines, or aircraft). A novel enzyme-based contained liquid membrane bioreactor was designed for CO2 capture and certain application cases are reported in this article. The results show that the liquid layer accounts for the major transport resistance. With addition of carbonic anhydrase, the transport resistance decreased by 71%. Volatile organic compounds of the type and concentration expected to be present in either the crew cabin or a plant growth chamber did not influence carbonic anhydrase activity or reactor operation during 1-day operation. Alternative sweep method studies, examined as a means of eliminating consumables, showed that the feed gas could be used successfully in a bypass mode when combined with medium vacuum pressure (-85 kPa) to achieve CO2 separation comparable to that with an inert sweep gas. The reactor exhibited a selectivity for CO2 versus N2 of 1400:1 and CO2 versus O2 is 866:1. The CO2 permeance was 1.44 x 10(-7) mol m-2 Pa-1 s-1 (4.3 x 10(-4) cm3 cm-2 s-1 cmHg-1) at a feed concentration of 0.1% CO2. These data show that the enzyme-based contained liquid membrane is a promising candidate technology that may be suitable for NASA applications to control CO2 in the crew or plant chambers.

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