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MBBR及UVC高级氧化技术深度处理典型医药品微污染物效能

周康 王贞凯 张桂成 陈新安 程艳 罗刚 孙胜鹏

周康, 王贞凯, 张桂成, 陈新安, 程艳, 罗刚, 孙胜鹏. MBBR及UVC高级氧化技术深度处理典型医药品微污染物效能[J]. 环境工程, 2022, 40(5): 37-43. doi: 10.13205/j.hjgc.202205006
引用本文: 周康, 王贞凯, 张桂成, 陈新安, 程艳, 罗刚, 孙胜鹏. MBBR及UVC高级氧化技术深度处理典型医药品微污染物效能[J]. 环境工程, 2022, 40(5): 37-43. doi: 10.13205/j.hjgc.202205006
ZHOU Kang, WANG Zhen-kai, ZHANG Gui-cheng, CHEN Xin-an, CHENG Yan, LUO Gang, SUN Sheng-peng. BIODEGRADATION AND TERTIARY TREATMENT EFFICIENCIES OF TYPICAL PHARMACEUTICAL MICROPOLLUTANTS BY MBBR AND UVC-BASED ADVANCED OXIDATION PROCESSES[J]. ENVIRONMENTAL ENGINEERING , 2022, 40(5): 37-43. doi: 10.13205/j.hjgc.202205006
Citation: ZHOU Kang, WANG Zhen-kai, ZHANG Gui-cheng, CHEN Xin-an, CHENG Yan, LUO Gang, SUN Sheng-peng. BIODEGRADATION AND TERTIARY TREATMENT EFFICIENCIES OF TYPICAL PHARMACEUTICAL MICROPOLLUTANTS BY MBBR AND UVC-BASED ADVANCED OXIDATION PROCESSES[J]. ENVIRONMENTAL ENGINEERING , 2022, 40(5): 37-43. doi: 10.13205/j.hjgc.202205006

MBBR及UVC高级氧化技术深度处理典型医药品微污染物效能

doi: 10.13205/j.hjgc.202205006
基金项目: 

江苏高校优势学科建设工程项目(PAPD)

宁波国家高新区(新材料科技城)重大科技专项(20181CX050011)

详细信息
    作者简介:

    周康(1994-),男,硕士研究生,主要研究方向为新污染物削减与控制技术。zhouk1314520xy@163.com

    通讯作者:

    孙胜鹏(1982-),男,副教授,主要研究方向为水处理技术。shepsun@suda.edu.cn

BIODEGRADATION AND TERTIARY TREATMENT EFFICIENCIES OF TYPICAL PHARMACEUTICAL MICROPOLLUTANTS BY MBBR AND UVC-BASED ADVANCED OXIDATION PROCESSES

  • 摘要: 研究了移动床生物膜反应器(MBBR)对废水中6种典型医药品微污染物的生化去除特性,对比探究了短波紫外光(UVC)活化H2O2、HSO-5和S2O2-8工艺在连续流模式下对MBBR生化出水中残余目标医药品的深度处理效能。结果显示:MBBR能有效降解避蚊胺、吉非罗齐和布洛芬,其平均降解速率分别为835.5,889.2,653.3μg/(L·d),但难以有效去除卡马西平、克罗米通和甲氧苄啶。目标医药品微污染物对MBBR中有机碳源去除和氨氮的硝化过程影响较小。高通量基因测序结果表明:MBBR中的优势菌群包括变形菌门(65.6%)、浮霉菌门(14.8%)、拟杆菌门(7.4%)和绿弯菌门(4.2%);优势菌属包括生丝微菌属(31.6%)、甲基娇养杆菌属(10.7%)、SMIA02(9.6%)和OLB12(4.9%)。UVC活化H2O2、HSO-5和S2O2-8工艺能够有效降解MBBR出水中残余的目标医药品微污染物,在氧化剂浓度为1.0 mmol/L的条件下,目标医药品去除率达到92.7%~99.4%。与UVC/H2O2工艺相比,UVC/S2O2-8和UVC/HSO-5工艺对目标医药品微污染物的去除具有更明显的选择性。
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出版历程
  • 收稿日期:  2021-07-09
  • 网络出版日期:  2022-07-02

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