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Resistively-Heated Microlith-based Adsorber for Carbon Dioxide and Trace Contaminant Removal

机译:电阻加热的微石基吸附剂,用于二氧化碳和微量污染物的去除

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摘要

An integrated sorber-based Trace Contaminant Control System (TCCS) and Carbon Dioxide Removal Assembly (CDRA) prototype was designed, fabricated and tested. It corresponds to a 7-person load. Performance over several adsorption/regeneration cycles was examined. Vacuum regenerations at effective time/temperature conditions, and estimated power requirements were experimentally verified for the combined CO2/trace contaminant removal prototype. The current paper details the design and performance of this prototype during initial testing at CO2 and trace contaminant concentrations in the existing CDRA, downstream of the drier. Additional long-term performance characterization is planned at NASA. Potential system design options permitting associated weight, volume savings and logistic benefits, especially as relevant for long-duration space flight, are reviewed. The technology consisted of a sorption bed with sorbent- coated metal meshes, trademarked and patented as Microlith by Precision Combustion, Inc. (PCI). By contrast the current CO2 removal system on the International Space Station employs pellet beds. Preliminary bench scale performance data (without direct resistive heating) for simultaneous CO2 and trace contaminant removal was reviewed in SAE 2004-01-2442. In the prototype, the meshes were directly electrically heated for rapid response and accurate temperature control. This allowed regeneration via resistive heating with the potential for shorter regeneration times, reduced power requirement, and net energy savings vs. conventional systems. A novel flow arrangement, for removing both CO2 and trace contaminants within the same bed, was demonstrated. Thus, the need for a separate trace contaminant unit was eliminated resulting in an opportunity for significant weight savings. Unlike the current disposable charcoal bed, zeolites for trace contaminant removal are amenable to periodic regeneration.
机译:设计,制造和测试了集成的基于吸附剂的痕量污染物控制系统(TCCS)和二氧化碳去除组件(CDRA)原型。它对应一个7人的负载。检查了几个吸附/再生循环的性能。通过有效的时间/温度条件下的真空再生以及估算的功率需求,对组合的CO2 /痕量污染物去除原型进行了实验验证。当前论文详细介绍了该原型的设计和性能,该原型在二氧化碳进行初始测试期间以及干燥机下游现有CDRA中的痕量污染物浓度。 NASA计划进行其他长期性能表征。审查了可能的系统设计选项,这些选项可实现相关的重量,体积的节省和后勤收益,尤其是与长时间太空飞行有关的选项。该技术由具有吸附剂涂层金属网的吸附床组成,该床由Precision Combustion,Inc.(PCI)商标并获得了Microlith的专利。相比之下,国际空间站上当前的二氧化碳去除系统采用颗粒床。 SAE 2004-01-2442对同时清除CO2和去除痕量污染物的初步工作台规模性能数据(无直接电阻加热)进行了审查。在原型中,将网直接电加热以快速响应并进行精确的温度控制。与传统系统相比,这允许通过电阻加热进行再生,从而有可能缩短再生时间,降低电力需求并节省净能源。展示了一种新颖的流动装置,用于去除同一床内的CO2和痕量污染物。因此,消除了对单独的痕量污染物单元的需要,从而导致了显着减轻重量的机会。与当前的一次性木炭床不同,用于去除微量污染物的沸石适合定期再生。

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