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Enhanced removal of manganese in organic-rich surface water by combined sodium hypochlorite and potassium permanganate during drinking water treatment

机译:通过组合次氯酸钠和高锰酸钾在饮用水处理过程中增强了富含有机化物水中的锰中的去除

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摘要

High levels of manganese (Mn) are known to occur in ground waters and some organic-rich surface waters, and are sometimes in a form (e.g. organically-bound) that is difficult to remove during conventional drinking water treatment. In this study the potential benefits of combining permanganate and chlorine prior to coagulation for Mn removal have been investigated, with particular reference to an organic- rich surface water (river Bajiang, China). The respective roles and potential synergy of permanganate and chlorine when applied together were considered by comparing the removal of Mn with the chemicals together and separately, using samples of river water and model organic- Mn solutions (humic acid and EDTA). In addition, the significance of the order of NaClO and KMnO4 dosing, and the influence of coagulant dose have been evaluated. The results have shown that the combination of the two chemicals is beneficial and synergistic. For river water containing 0.22 mg L-1 Mn, a dose of 1.76 mg L-1 NaClO reduced the half dose of the permanganate required to achieve the drinking water target concentration of 0.05 mg L-1 Mn. The addition of chlorine appears to enhance the release of bound-Mn and the subsequent conversion of Mn(II) to insoluble Mn(IV). The mechanisms responsible are believed to involve chlorine-assisted autocatalytic Mn oxidation and MnO4- recycling.
机译:已知高水平的锰(MN)发生在地面水和一些有机富有机表面水中,并且有时是难以在常规饮用水处理期间难以去除的形式(例如有机染料)。在这项研究中,研究了在凝血前结合高锰酸盐和氯的潜在益处已经研究过,特别是有机化合物(中国河江河)的有机化水分。通过比较用化学物质的去除和分开的比较使用河水和模型有机Mn溶液(腐殖酸和EDTA)的样本来考虑当施加在一起时,考虑了高锰酸盐和氯当涂覆在一起时的各种作用和潜在协同作用。此外,已经评估了NaClO和KMNO4给药顺序的重要性,以及凝结剂剂量的影响。结果表明,两种化学品的组合是有益的和协同的。对于含有0.22mg L-1 Mn的河水,剂量为1.76mg L-1 NaClo,减少了达到饮用水靶浓度为0.05mg L-1mN所需的半剂量所需的半剂量。添加氯似乎增强了结合-Mn的释放以及随后的Mn(II)转化为不溶性Mn(IV)。据信,负责的机制涉及氯辅助自催化Mn氧化和MnO 4 - 再循环。

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  • 来源
    《RSC Advances》 |2015年第35期|共8页
  • 作者单位

    Univ London Imperial Coll Sci Technol &

    Med Dept Civil &

    Environm Engn London SW7 2AZ England;

    UCL Dept Civil Environm &

    Geomat Engn London WC1E 6BT England;

    Zhejiang Gongshang Univ Dept Civil &

    Environm Engn Hangzhou 310018 Zhejiang Peoples R China;

    Harbin Inst Technol Sch Municipal &

    Environm Engn State Key Lab Urban Water Resource &

    Environm Harbin 150090 Peoples R China;

    Univ London Imperial Coll Sci Technol &

    Med Dept Civil &

    Environm Engn London SW7 2AZ England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

  • 入库时间 2022-08-19 22:35:15

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