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Hybrid Processes Combining Photocatalysis and Ceramic Membrane Filtration for Degradation of Humic Acids in Saline Water

机译:光催化与陶瓷膜过滤相结合的混合工艺降解盐水中的腐殖酸

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摘要

This study explored the combined effects of photocatalysis with ceramic membrane filtration for the removal of humic acid in the presence of sa to simulate saline wastewater conditions. The effects of operating parameters, such as salinity and TiO2 concentration on permeate fluxes, total organic carbon (TOC), and UV absorbance removal, were investigated. The interaction between the humic acids and TiO2 photocatalyst played an important role in the observed flux change during ceramic membrane filtration. The results for this hybrid system showed that the TOC removal was more than 70% for both without NaCl and with the 500 ppm NaCl concentration, and 62% and 66% for 1000 and 2000 ppm NaCl concentrations. The reduction in UV absorbance was more complete in the absence of NaCl compared to the presence of NaCl. The operation of the integrated photoreactor-ceramic membrane filter over five repeat cycles is described. It can be concluded that the overall removal performance of the hybrid system was influenced by the presence of salts, as salt leads to agglomeration of TiO2 particles by suppressing the stabilising effects of electrostatic repulsion and thereby reduces the effective surface contact between the pollutant and the photocatalyst.
机译:这项研究探索了光催化与陶瓷膜过滤在盐存在下去除腐殖酸的联合作用。模拟含盐废水条件。研究了盐度和TiO2浓度等操作参数对渗透通量,总有机碳(TOC)和紫外线吸收去除的影响。腐殖酸和TiO2光催化剂之间的相互作用在陶瓷膜过滤过程中观察到的通量变化中起着重要作用。该混合系统的结果表明,在无NaCl和500 ppm NaCl浓度的情况下,TOC去除率均超过70%,而对于1000和2000 ppm NaCl浓度,TOC去除率分别为62%和66%。与氯化钠的存在相比,在没有氯化钠的情况下,紫外线吸收的降低更为完全。描述了集成的光反应器-陶瓷膜过滤器在五个重复循环中的操作。可以得出结论,盐的存在会影响杂化系统的整体去除性能,因为盐通过抑制静电排斥的稳定作用而导致TiO2颗粒的团聚,从而降低了污染物与光催化剂之间的有效表面接触。 。

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