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原位离子交换电催化生物偶联(i-IEEBC)用于同时增强电镀废水中有机污染物和重金属的降解。

In-situ ion exchange electrocatalysis biological coupling (i-IEEBC) for simultaneously enhanced degradation of organic pollutants and heavy metals in electroplating wastewater.

机构信息

School of Civil Engineering and Architecture, University of Jinan, Jinan 250022, China.

School of Civil Engineering and Architecture, University of Jinan, Jinan 250022, China.

出版信息

J Hazard Mater. 2019 Feb 15;364:562-570. doi: 10.1016/j.jhazmat.2018.10.068. Epub 2018 Oct 25.

DOI:10.1016/j.jhazmat.2018.10.068
PMID:30388640
Abstract

The goal of this research was to develop a new process for simultaneously removing organics and heavy metals of electroplating wastewater by in-situ ion exchange electrocatalysis biological coupling (i-IEEBC). The study evaluated the removal efficiency of coexisting refractory organics and heavy metal ions, and investigated the effects of current density (CD) on the removal performance of the i-IEEBC method. The results indicated the i-IEEBC reactor exhibited higher average removal rates of COD, TOC, Cr and Cu ions, i.e. 87.23%, 80.42%, 91.25%, and 95.97% in that order, which represented an increase by 32.59%, 40.10%, 31.86%, and 33.82%, respectively, compared with BAF. The optimum CD for simultaneously removing organics and heavy metals of electroplating wastewater in i-IEEBC was 0.40 mA/(cm). The change of biodegradability and the presence of short chain organic compounds also indirectly confirmed the excellent removal organic pollutants performance of i-IEEBC at the optimum CD. In addition, the composition and construction of CER before and after the application, under the optimum CD, SEM, EDS and FT-IR spectroscopy also showed that the cation exchange properties of CER improved the catalytic lifetime of the particle electrodes. This research provides a highly efficient new alternative to electroplating wastewater treatment technology.

摘要

本研究旨在开发一种新的过程,通过原位离子交换电催化生物耦合(i-IEEBC)同时去除电镀废水中的有机物和重金属。该研究评估了共存难降解有机物和重金属离子的去除效率,并考察了电流密度(CD)对 i-IEEBC 方法去除性能的影响。结果表明,i-IEEBC 反应器对 COD、TOC、Cr 和 Cu 离子的平均去除率分别为 87.23%、80.42%、91.25%和 95.97%,分别比 BAF 提高了 32.59%、40.10%、31.86%和 33.82%。在 i-IEEBC 中同时去除电镀废水中有机物和重金属的最佳 CD 为 0.40 mA/(cm)。生物降解性的变化和短链有机化合物的存在也间接证实了 i-IEEBC 在最佳 CD 下对有机污染物的优异去除性能。此外,在最佳 CD 下,CER 的应用前后的组成和结构,SEM、EDS 和 FT-IR 光谱也表明 CER 的阳离子交换性能提高了颗粒电极的催化寿命。本研究为电镀废水处理技术提供了一种高效的新选择。

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