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中压 UV 催化生物电化学高级氧化工艺去除难降解微量污染物:影响因素、转化途径和毒性评估。

Elimination of recalcitrant micropollutants by medium pressure UV-catalyzed bioelectrochemical advanced oxidation process: Influencing factors, transformation pathway and toxicity assessment.

机构信息

Department of Environmental Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark.

Department of Environmental Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark.

出版信息

Sci Total Environ. 2022 Jul 1;828:154543. doi: 10.1016/j.scitotenv.2022.154543. Epub 2022 Mar 15.

DOI:10.1016/j.scitotenv.2022.154543
PMID:35302016
Abstract

Bio-electro-Fenton (BEF) processes have been widely studied in recent years to remove recalcitrant micropollutants from wastewater. Though promising, it still faces the critical challenge of residual iron and iron sludge in the treated effluent. Thus, an innovative medium-pressure ultraviolet-catalyzed bio-electrochemical system (MUBEC), in which medium-pressure ultraviolet was employed as an alternative to iron for in-situ HO activation, was developed for the removal of recalcitrant micropollutants. The influence of operating parameters, including initial catholyte pH, cathodic aeration rate, and input voltage, on the system performance, was explored. Results indicated that complete reduction of 10 mg L of model micro-pollutants ibuprofen (IBU) and carbamazepine (CBZ) was achieved at pH 3, with an aeration rate of 1 mL min and a voltage of 0.3 V, following pseudo-first-order kinetics. Moreover, potential transformation pathways and the associated intermediates during the degradation were deduced and detected, respectively. Thus, the MUBEC system shows the potential for the efficient and cost-effective degradation of recalcitrant micropollutants from wastewater.

摘要

近年来,生物电化学-Fenton(BEF)工艺已广泛应用于去除废水中的难降解微量污染物。尽管前景广阔,但该工艺仍面临处理后废水中残留铁和铁污泥的关键挑战。因此,开发了一种创新的中压紫外光催化生物电化学系统(MUBEC),该系统采用中压紫外光代替铁原位 HO 活化,用于去除难降解微量污染物。探讨了操作参数,包括初始阴极电解液 pH 值、阴极曝气速率和输入电压,对系统性能的影响。结果表明,在 pH 值为 3、曝气速率为 1 mL min 和电压为 0.3 V 的条件下,模型微量污染物布洛芬(IBU)和卡马西平(CBZ)的 10 mg L 可完全还原,遵循准一级动力学。此外,还分别推导出了降解过程中的潜在转化途径和相关中间体。因此,MUBEC 系统具有从废水中高效、经济地降解难降解微量污染物的潜力。

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