废水中可吸附有机卤化物的去除:先进化学和电化学工艺综述

IF 2.3 4区 环境科学与生态学 Q3 ENGINEERING, CHEMICAL
Marco Carnevale Miino, Maria Cristina Collivignarelli, Stefano Bellazzi, Alessandro Abbà, Marco Baldi, Alberto Pietro Damiano Baltrocchi, Elena Cristina Rada, Vincenzo Torretta
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引用次数: 0

摘要

为了克服目前从废水中去除可吸附有机卤化物(AOX)的传统技术的局限性,先进的化学和电化学工艺引起了人们的兴趣。本工作旨在系统地回顾从废水中去除AOX化合物的最新发现,讨论当前的主要差距,并为未来的研究提出可能的建议。Fenton和光Fenton、光催化与生物系统耦合以及还原过程分别显示了高达98%、95%和75%的AOX矿化效果。分析还强调,这些研究主要是在真实的废水中进行的,但除了Fenton和photo-Fenton之外,实验室规模的条件往往与现实条件相差甚远,存在巨大差距。在所有的研究中,使用了非常低的体积,在全面应用的情况下,对结果的可靠性有很大的关注。由于这些原因,化学和电化学技术去除AOX的前景很好,在可能应用于实际的工业和城市污水处理厂之前,应该充分验证。如果采用还原性工艺,废水中约一半的AOX的减少需要数天时间,这与大规模应用不兼容。此外,还需要更多的研究来了解处理废水的实际毒性,以估计处理过程中产生的副产物的潜在有害影响。这些结果对科学界和技术利益相关者都很有用,可以激发科学辩论,提高人们对这些去除AOX的新方法的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Removal of adsorbable organic halides from wastewater: A review of advanced chemical and electrochemical processes

Removal of adsorbable organic halides from wastewater: A review of advanced chemical and electrochemical processes

Removal of adsorbable organic halides from wastewater: A review of advanced chemical and electrochemical processes

Removal of adsorbable organic halides from wastewater: A review of advanced chemical and electrochemical processes

Removal of adsorbable organic halides from wastewater: A review of advanced chemical and electrochemical processes

To overcome the current limitations of conventional technologies for removing adsorbable organic halides (AOX) from wastewater, advanced chemical and electrochemical processes are attracting interest. This work aims to systematically review the latest findings for the removal of AOX compounds from wastewater, discussing the current main gaps and proposing possible tips for future research. Fenton and photo-Fenton, photocatalysis coupled with biological systems, and reductive processes showed encouraging results with up to 98%, 95%, and 75% of AOX mineralization, respectively. The analysis also highlighted that the studies were mainly carried out on real wastewater, but, except for Fenton and photo-Fenton, lab scale conditions are often far from the realistic ones, representing a huge gap. In all studies, a very low amount of volume has been used with significant concerns about the reliability of results in case of full-scale applications. For these reasons, the promising outcomes of chemical and electrochemical technologies for AOX removal should be fully validated before a possible application on real industrial and municipal wastewater treatment plants. In case of reductive processes, the reduction of approximately half of the AOX present in the wastewater needs days, which is not compatible with large-scale application. Moreover, more studies are also needed to understand the actual toxicity of the treated effluent to estimate the potential detrimental effect of by-products generated during the treatment. These results can be useful both for the scientific community and technical stakeholders to stimulate the scientific debate and increase awareness of these new approaches for AOX removal.

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来源期刊
Environmental Progress & Sustainable Energy
Environmental Progress & Sustainable Energy 环境科学-工程:化工
CiteScore
5.00
自引率
3.60%
发文量
231
审稿时长
4.3 months
期刊介绍: Environmental Progress , a quarterly publication of the American Institute of Chemical Engineers, reports on critical issues like remediation and treatment of solid or aqueous wastes, air pollution, sustainability, and sustainable energy. Each issue helps chemical engineers (and those in related fields) stay on top of technological advances in all areas associated with the environment through feature articles, updates, book and software reviews, and editorials.
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