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THMs precursor removal by an integrated process of ozonation and biological granular activated carbon for typical Northern China water

机译:通过臭氧化和生物颗粒活性炭的集成工艺去除THMs前体,用于典型的中国北方水

摘要

The removal of trihalomethanes (THMs) precursor and natural organic matter (NOM) by an integrated process of ozonation and biological granular activated carbon filtration (BGAC) as a deep water treatment process was investigated in pilot-scale tests. A comparison is also made with granular activated carbon filtration (GAC). The characteristics of the THMs precursor and the THMs formation potential (THMFP) were investigated by resin adsorption and ultrafiltration. The results show that the integrated process of ozonation and BGAC (O(3)/BGAC) is obviously superior to GAC for the removal of the THMs precursor because a considerable synergetic effect occurs between the ozonation and the BGAC. Although ozonation can limitedly remove dissolved organic carbon (DOC), it can cut down the molecular weight of the NOM, change its polarity, decrease the THMFP, and obviously enhance the efficiency of the BGAC. The BGAC could efficiently remove the hydrophobic base (HoB), hydrophobic neutral (HoN), weakly hydrophobic acid (WHOA), and low molecular weight fraction DOC that was produced in the optimized ozonation process. However, the BGAC stage should be carefully controlled to avoid the leakage of microbes and/or the products of metabolism because it has a high risk for producing THMs in following chlorination process. (C) 2010 Elsevier B.V. All rights reserved.
机译:在中试规模测试中,研究了通过臭氧化和生物颗粒活性炭过滤(BGAC)作为深水处理过程的集成过程,去除三卤甲烷(THMs)前体和天然有机物(NOM)。还对颗粒活性炭过滤(GAC)进行了比较。通过树脂吸附和超滤研究了THMs前体的特性和THMs的形成潜力(THMFP)。结果表明,臭氧化和BGAC的集成过程(O(3)/ BGAC)明显优于GAC去除THMs前体,因为在臭氧化和BGAC之间发生了显着的协同作用。尽管臭氧化可以有限地去除溶解的有机碳(DOC),但它可以降低NOM的分子量,改变其极性,降低THMFP并明显提高BGAC的效率。 BGAC可以有效去除在优化臭氧化过程中产生的疏水性碱(HoB),疏水性中性(HoN),弱疏水性酸(WHOA)和低分子量级分DOC。但是,应仔细控制BGAC阶段,以避免微生物和/或代谢产物泄漏,因为在随后的氯化过程中,BGAC阶段产生THM的风险很高。 (C)2010 Elsevier B.V.保留所有权利。

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