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    电化学-水动力循环耦合井内生物反应器去除地下水中苯胺

    李爽 文章 朱棋 刘慧 杨舒婷

    李爽, 文章, 朱棋, 刘慧, 杨舒婷, 2022. 电化学-水动力循环耦合井内生物反应器去除地下水中苯胺. 地球科学, 47(11): 4176-4183. doi: 10.3799/dqkx.2022.375
    引用本文: 李爽, 文章, 朱棋, 刘慧, 杨舒婷, 2022. 电化学-水动力循环耦合井内生物反应器去除地下水中苯胺. 地球科学, 47(11): 4176-4183. doi: 10.3799/dqkx.2022.375
    Li Shuang, Wen Zhang, Zhu Qi, Liu Hui, Yang Shuting, 2022. Removal of Aniline from Groundwater by an Electrochemical-Hydrodynamic Cyclic Coupling In-Well Bioreactor. Earth Science, 47(11): 4176-4183. doi: 10.3799/dqkx.2022.375
    Citation: Li Shuang, Wen Zhang, Zhu Qi, Liu Hui, Yang Shuting, 2022. Removal of Aniline from Groundwater by an Electrochemical-Hydrodynamic Cyclic Coupling In-Well Bioreactor. Earth Science, 47(11): 4176-4183. doi: 10.3799/dqkx.2022.375

    电化学-水动力循环耦合井内生物反应器去除地下水中苯胺

    doi: 10.3799/dqkx.2022.375
    基金项目: 

    国家重点研发计划项目 2018YFC1802504

    国家自然科学基金项目 42022018

    详细信息
      作者简介:

      李爽(1997-),女,硕士研究生,从事地下水污染与防治工作.ORCID:0000-0002-7525-4457. E-mail:763056016@qq.com

      通讯作者:

      文章,ORCID: 0000-0001-9672-3219. E-mail: wenz@cug.edu.cn

    • 中图分类号: X523

    Removal of Aniline from Groundwater by an Electrochemical-Hydrodynamic Cyclic Coupling In-Well Bioreactor

    • 摘要: 为使含水层中苯胺污染的原位修复过程高效安全且不产生二次污染,提出了一种电化学-水动力循环下的井内生物反应器修复地下水中苯胺的方法.在水动力循环系统的驱动下,评价了苯胺在水动力循环系统的挥发情况并且通过电化学手段提供氧气,井内生物反应器提供修复载体,在砂槽模拟的含水层体系中开展井内生物反应器降解苯胺的修复实验,并对生长曲线及含水层中苯胺修复进行了模拟.289 h的修复使体系内苯胺平均浓度从298 mg/L降低到132 mg/L,去除率为56.5%.运行过程中,监测点苯胺平均浓度在48 h内去除速率为1.10 mg/(L·h),48~72 h内去除速率为0.85 mg/(L·h),72 h到289 h内苯胺去除速率维持在0.65 mg/(L·h),氧化降解逐步减弱.该过程符合Michaelis-Menten方程,反应速率为:-6.71×10-7/(15+t2.该修复系统是基于地下水动力循环技术的改进,有望应用于有机污染地下水修复.

       

    • 图  1  实验装置

      Fig.  1.  Diagram of experimental device

      图  2  不同浓度苯胺条件下微生物生长曲线及其拟合曲线

      Fig.  2.  Microbial growth curves and their fitting curves under different concentrations of aniline

      图  3  挂膜前和挂膜后的生物载体

      Fig.  3.  Biological carriers before and after membrane hanging

      图  4  砂槽体系中初始时刻载体不同部位的生物量分布情况

      Fig.  4.  Biomass distribution of different parts of the carrier at the initial time in the sand tank system

      图  5  含水层监测点苯胺平均浓度和井筒中DO随时间的变化

      Fig.  5.  The average concentration of aniline in aquifer monitoring points and the change of DO in wellbore with time

      图  6  含水层中砂槽内苯胺浓度分布变化图

      Fig.  6.  Distribution change of aniline concentration in sand tank in aquifer

      a. t=0 h; b. t=120 h; c. t=196 h; d. t=289 h

      图  7  苯胺浓度模拟图

      Fig.  7.  Simulation dia gram of aniline concentration

      a.A2; b.A6;c.B3;d.B5;e.C1; f.C4; g.D2;h.D6; i.E1; j.E4; k.F3;j.F5

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    出版历程
    • 收稿日期:  2022-07-14
    • 网络出版日期:  2022-12-07
    • 刊出日期:  2022-11-25

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