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Occurrence and Removal of Organic Micropollutants in Landfill Leachates Treated by Electrochemical Advanced Oxidation Processes

机译:电化学高级氧化工艺处理垃圾渗滤液中有机微量污染物的发生与去除

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摘要

In recent years, electrochemical advanced oxidation processes have been shown to be an effective alternative for the removal of refractory organic compounds from water. This study is focused on the effective removal of recalcitrant organic matter (micropollutants, humic substances, etc.) present in municipal solid waste landfill leachates. A mixture of eight landfill leachates has been studied by the electro-Fenton process using a Pt or boron-doped diamond (BDD) anode and a carbon felt cathode or by the anodic oxidation process with a BDD anode. These processes exhibit great oxidation ability due to the in situ production of hydroxyl radicals (~·OH), a highly powerful oxidizing species. Both electrochemical processes were shown to be efficient in the removal of dissolved total organic carbon (TOC) from landfill leachates. Regarding the electro-Fenton process, the replacement of the classical anode Pt by the anode BDD allows better performance in terms of dissolved TOC removal. The occurrence and removal yield of 19 polycydic aromatic hydrocarbons, 15 volatile organic compounds, 7 alkylphenols, 7 polychlorobiphenyls, 5 organochlorine pesticides, and 2 polybrominated diphenyl ethers in landfill leachate were also investigated. Both electrochemical processes allow one to reach a quasicomplete removal (about 98%) of these organic micropollutants.
机译:近年来,电化学先进的氧化工艺已被证明是从水中去除难降解有机化合物的有效替代方法。这项研究的重点是有效去除生活垃圾填埋场渗滤液中存在的顽固有机物(微量污染物,腐殖质等)。已经通过使用Pt或掺硼金刚石(BDD)阳极和碳毡阴极的电子芬顿工艺,或通过使用BDD阳极的阳极氧化工艺,研究了八种垃圾填埋场渗滤液的混合物。由于羟基自由基(〜·OH)的原位产生,这些过程显示出强大的氧化能力,这是一种高度强大的氧化物种。两种电化学方法均能有效地从垃圾渗滤液中去除溶解的总有机碳(TOC)。关于电芬顿法,用阳极BDD代替经典阳极Pt可以实现更好的溶解TOC去除性能。还研究了垃圾渗滤液中19种多环芳烃,15种挥发性有机化合物,7种烷基酚,7种多氯联苯,5种有机氯农药和2种多溴联苯醚的发生和去除率。两种电化学方法都可以使这些有机微污染物达到准完全去除(约98%)的目的。

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  • 来源
    《Environmental Science & Technology》 |2015年第20期|12187-12196|共10页
  • 作者单位

    Laboratoire Geomateriaux et Environnement, Universite Paris-Est, EA 4508, UPEM, 5 Boulevard Descartes, Marne-la-Vallee 77454 Cedex 2, France;

    Laboratoire Geomateriaux et Environnement, Universite Paris-Est, EA 4508, UPEM, 5 Boulevard Descartes, Marne-la-Vallee 77454 Cedex 2, France;

    Department of Environmental Engineering, Wuhan University, P.O. Box C319 Luoyu Road 129#, Wuhan 430079, China;

    Hydrosystems and Bioprocesses Research Unit, IRSTEA, 1 Rue Pierre-Gilles de Gennes, CS 10030, Antony F-92761 Cedex, France;

    Environnements et Paleoenvironnements Oceaniques et Continentaux, EPOC-UMR 5805 CNRS, Laboratoire de Physico-et Toxico-Chimie de l'environnement (LPTC), Universite de Bordeaux, Batiment A12, 351 Cours de la Liberation, 33405 Talence, France;

    Environnements et Paleoenvironnements Oceaniques et Continentaux, EPOC-UMR 5805 CNRS, Laboratoire de Physico-et Toxico-Chimie de l'environnement (LPTC), Universite de Bordeaux, Batiment A12, 351 Cours de la Liberation, 33405 Talence, France;

    Laboratoire Geomateriaux et Environnement, Universite Paris-Est, EA 4508, UPEM, 5 Boulevard Descartes, Marne-la-Vallee 77454 Cedex 2, France;

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