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Development of a Photocatalytic Oxidation-Based TOC Analyzer Part II: Effect of Reactor Design and Operation Parameters on Oxidation Efficiency of VOCs

机译:基于光催化氧化的TOC分析仪第II部分的开发:反应器设计与运行参数对VOCS氧化效率的影响

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This project sought to develop a photocatalytic oxidation (PCO) based total organic carbon (TOC) analyzer for real time monitoring of air quality in spacecraft. Specific requirements for this application were to convert volatile organic contaminants (VOC) into CO2 stoichiometrically in a single pass through a small reactor with low power requirement. One of the greatest challenges of this TiO2-mediated PCO was the incomplete oxidation of some recalcitrant VOCs leading to less reactive intermediates that deactivate the catalyst over time. Dichloromethane (DCM) is one of these VOCs. The effect of some design factors (e.g. TiO2 catalyst surface area to volume ratio and UV photon flux field) as well as operating conditions of an annular reactor (e.g. VOC residence time and relative humidity) on the efficiency in converting DCM to CO2 were investigated. Results demonstrated that UV irradiated TiO2 surface areas and VOC residence time were key controlling factors for overall conversion efficiency and sustainability of the catalyst activity.
机译:该项目试图开发基于光催化氧化(PCO)总有机碳(TOC)分析仪,用于实时监测航天器中的空气质量。本申请的具体要求是将挥发性有机污染物(VOC)转化为在单次通过的小型反应器中以低功率要求转化为CO 2。这种TiO2介导的PCO的最大挑战之一是对一些醋培的VOC不完全氧化,导致较少的反应性中间体,其随时间停用催化剂。二氯甲烷(DCM)是其中一种VOC。研究了一些设计因子(例如TiO2催化剂表面积至体积比和UV光子通量场)的影响以及对转换DCM至CO2的效率的环形反应器(例如VOC停留时间和相对湿度)的操作条件。结果表明,UV辐照的TiO2表面积和VOC停留时间是用于整体转化效率和催化剂活性可持续性的关键控制因子。

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