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Granular-activated carbon adsorption followed by annular-type photocatalytic system for control of indoor aromatic compounds

机译:颗粒活性炭吸附及环型光催化体系控制室内芳香族化合物

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摘要

An adsorbent coupled with other control devices may enhance the removal of various indoor pollutants, including indoor benzene, toluene, ethyl benzene, and xylene (BTEX). In addition, the regeneration of adsorbent is subsequently required for reusing and lowering disposal cost. Accordingly, this study investigated the technical feasibility of an activated carbon (AC)-photocatalytic oxidation (PCO) hybrid system connected in series for AC regenerations as well as for controls of indoor air levels of BTEX. The hybrid system presented higher removal efficiencies (close to 100%) compared to the AC unit alone. Unlike the AC unit alone, the relative humidity or inlet concentration dependence was insignificant for the hybrid system. The desorption efficiency of the AC unit was between 75 and 94% for the desorption temperature of 300℃ PCO efficiencies of BTEX desorbed from the AC unit represented relatively high degradation efficiencies for low loadings ≤5000ng (above 70%). An elevated CO concentration by PCO processes was a negligible addition to indoor CO levels. The hybrid system could enhance control efficiency of BTEX in indoor air levels compared with AC adsorption alone, without a significant CO generation. Under certain conditions, the PCO unit located downstream from the adsorbent unit could effectively be employed for AC regeneration.
机译:吸附剂与其他控制设备耦合可以增强各种室内污染物的去除,包括室内苯,甲苯,乙苯和二甲苯(BTEX)。另外,随后需要再生吸附剂以重复使用并降低处置成本。因此,本研究调查了串联连接的活性炭(AC)-光催化氧化(PCO)混合系统在AC再生以及控制BTEX室内空气中的技术可行性。与单独的AC单元相比,混合动力系统具有更高的去除效率(接近100%)。与单独使用交流单元不同,混合系统的相对湿度或入口浓度依赖性不明显。对于300℃的解吸温度,AC单元的解吸效率在75%至94%之间。从AC单元解吸的BTEX的PCO效率代表了相对高的降解效率,适用于≤5000ng的低负荷(高于70%)。通过PCO工艺提高的CO浓度对室内CO含量的影响可忽略不计。与单独的AC吸附相比,该混合系统可以提高BTEX在室内空气中的控制效率,而不会产生大量的CO。在某些条件下,位于吸附剂单元下游的PCO单元可以有效地用于AC再生。

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