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CO2 Reduction Assembly Prototype using Microlith-based Sabatier Reactor for Ground Demonstration

机译:CO2减少组装原型使用微透镜基驻变反应器进行地面演示

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The utilization of CO2 to produce life support consumables, such as O2 and H2O, via the Sabatier reaction is an important aspect of NASA’s cabin Atmosphere Revitalization System (ARS) and In-Situ Resource Utilization (ISRU) architectures for both low-earth orbit and long-term manned space missions. Carbon dioxide can be reacted with H2, obtained from the electrolysis of water, via Sabatier reaction to produce methane and H2O. Methane can be stored and utilized as propellant while H2O can be either stored or electrolyzed to produce oxygen and regain the hydrogen atoms. Depending on the application, O2 can be used to replenish the atmosphere in human-crewed missions or as an oxidant for robotic and return missions. Precision Combustion, Inc. (PCI), with support from NASA, has previously developed an efficient and compact Sabatier reactor based on its Microlith~R catalytic technology and demonstrated the capability to achieve high CO2 conversion and CH4 selectivity (i.e., ≥90% of the thermodynamic equilibrium values) at high space velocities and low operating temperatures. This was made possible through the use of high-heat-transfer and high-surface-area Microlith catalytic substrates. Using this Sabatier reactor, PCI designed, developed, and demonstrated a stand-alone CO2 Reduction Assembly (CRA) test system for ground demonstration and performance validation. The Sabatier reactor was integrated with the necessary balance-of-plant components and controls system, allowing an automated, single “push–button” start-up and shutdown. Additionally, the versatility of the test system prototype was demonstrated by operating it under H2-rich (H2/CO2 of >4), stoichiometric (ratio of 4), and CO2-rich conditions (ratio of <4) without affecting its performance and meeting the equilibrium-predicted water recovery rates. In this paper, the development of the CRA test system for ground demonstration will be discussed. Additionally, the performance results from testing the system at various operating conditions and the results from durability testing will be presented.
机译:通过Sabatier反应利用CO2以产生寿命支持的消耗品,例如O2和H2O,是美国宇航局的机舱气氛振兴系统(ARS)和原位资源利用(ISRU)架构的重要方面,以及低地球轨道的架构长期载人空间任务。二氧化碳可以通过从水的电解中获得的H 2反应,通过皂化反应产生甲烷和H2O。甲烷可以作为推进剂储存并用作推进剂,而H 2 O可以储存或电解以产生氧气并重新引起氢原子。根据申请,O2可用于补充人营业任务中的气氛或作为机器人和返回任务的氧化剂。 Precision Combustion,Inc。(PCI),来自美国宇航局的支持,先前已经基于其微溶液催化技术开发了一种高效且紧凑的跨型反应器,并证明了实现高二氧化碳转化和CH4选择性的能力(即≥90%热力学平衡值)在高空间速度和低操作温度下。这是通过使用高温转移和高表面积微催化基材来实现的。使用这种驻扎式电抗器,PCI设计,开发,并展示了一个独立的CO2减少组件(CRA)测试系统,用于地面演示和性能验证。 Sabatier反应堆与工厂必要的植物平衡组件和控制系统集成,允许自动化的单一“按钮”启动和关闭。另外,通过在富含H 2的(H2 / CO 2)下,化学计量(比率为4)和富含CO 2的条件(<4的比例),证明了测试系统原型的多功能性,而不影响其性能,并且满足均衡预测的水回收率。本文将讨论CRA测试系统的开发,将讨论地面演示。另外,将提出从测试系统在各种操作条件下测试系统的性能和耐用性测试的结果。

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