光电催化氧化处理反渗透浓水

王超, 赵旭, 侯子义, 杨桂蓉, 冒冉. 光电催化氧化处理反渗透浓水[J]. 环境工程学报, 2014, 8(8): 3189-3194.
引用本文: 王超, 赵旭, 侯子义, 杨桂蓉, 冒冉. 光电催化氧化处理反渗透浓水[J]. 环境工程学报, 2014, 8(8): 3189-3194.
Wang Chao, Zhao Xu, Hou Ziyi, Yang Guirong, Mao Ran. Treatment of reverse osmosis concentrate by photoelectrocatalysis oxidation[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3189-3194.
Citation: Wang Chao, Zhao Xu, Hou Ziyi, Yang Guirong, Mao Ran. Treatment of reverse osmosis concentrate by photoelectrocatalysis oxidation[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3189-3194.

光电催化氧化处理反渗透浓水

  • 基金项目:

    国家自然科学基金优秀青年基金项目(51222802)

  • 中图分类号: X703

Treatment of reverse osmosis concentrate by photoelectrocatalysis oxidation

  • Fund Project:
  • 摘要: 采用光电催化氧化技术对天津市某石化企业反渗透单元浓水进行处理。经光催化、电化学及光电催化氧化处理后浓缩液出水的COD、氨氮及色度去除率进行了对比研究。详细探讨了不同电流密度、反应时间及紫外灯功率对COD、氨氮及色度去除效果的影响。结果表明,在电流密度为2.0 mA/cm2,紫外灯光强度为30 μW/cm2的条件下,处理150 min后,COD的去除率为92.06%,氨氮浓度从44.61 mg/L下降至2.84 mg/L,色度去除率达到100%。对光电催化氧化法处理不同时间的出水进行了三维荧光光谱及凝胶色谱分析。结果表明,光电催化氧化法可将反渗透浓水中大部分大分子有机物结构破坏,使其分解成小分子有机物。
  • 加载中
  • [1] Mark A. Shannon,Paul W. Bohn,M. Elimelech,el al. Science and technology for water purification in the coming decades. Nature,2008,452(20):301-310
    [2] 李常青,杨岳,刘发强,等.二氧化氯三相催化氧化法处理反渗透浓水试验研究.工业用水与废水,2011,42(5):38-41 Li Changqing,Yang Yue,Liu Faqiang,et al. Treatment of reverse osmosis concentrated water by ClO2 three phase catalytic oxidation. Industrial Water & Wastewater,2011,42(5):38-41(in Chinese)
    [3] 赵春霞,顾平,张光辉.反渗透浓水处理现状与研究进展.中国给水排水,2009,25(18):1-5 Zhao Chunxia,Gu Ping,Zhang Guanghui. Current status and research development of reverse osmosis concentrate treatment. China Water & Wastewater,2009,25(18):1-5(in Chinese)
    [4] Minghua Zhou,Liang Liu,Yongli Jiao,et al. Treatment of high-salinity reverse osmosis concentrate by electrochemical oxidation on BDD and DSA electrodes. Desalination,2011,277(1-3):201-206
    [5] 邓莉娟,王中琪,兰紫荆.电化学氧化预处理垃圾渗滤液的试验研究.环境科学与管理,2008,33(5):115-117 Deng Lijuan,Wang Zhongqi,Lan Zijing. Studies on treatment landfill leachate by electrochemical oxidizing. Environmental Science and Management,2008,33(5):115-117(in Chinese)
    [6] 赵宏生,胡红坡,张凯红,等.氮掺杂二氧化钛薄膜的制备与光催化性能.稀有金属材料与工程,2009,38(10):1815-1817 Zhao Hongsheng,Hu Hongpo,Zhang Kaihong,et al. Preparation and photocatalysis property of N-doped TiO2 film. Rare Metal Materials and Engineering,2009,38(10):1815-1817(in Chinese)
    [7] 国家环境保护总局.水和废水监测分析方法(第4版).北京:中国环境科学出版社,2002
    [8] 梁志霞,梁文艳,汪丽,等.光电催化氧化法降解藻毒素MCLR.环境工程学报,2012,6(11):3817-3821 Liang Zhixia,Liang Wenyan,Wang Li,et al. Degradation of algal MCLR by photoelectrocatalytic oxidation. Chinese Journal of Environmental Engineering,2012,6(11):3817-3821(in Chinese)
    [9] Dong Hyun Klm,Mark A. Anderson. Photoelectrocatalytic degradation of formic acid using a porous titanium dioxide thin film electrode. Environment Science & Technology,1994,28(3):479-483
    [10] 李国亭,王海荣,李东颖,等.紫外光协助下DSA电极对1,4-苯醌的强化开环作用研究.环境科学,2009,30(7):1955-1961 Li Guoting,Wang Hairong,Li Dongying,et al. Enhanced decomposition of 1,4 Benzoquinone ring by DSA electrode under ultraviolet irradiation. Environmental Science,2009,30(7):1955-1961(in Chinese)
    [11] 王海燕,蒋展鹏,余刚,等.光电协同催化氧化苯甲酸的试验研究.环境科学,2004,25(1):25-29 Wang Haiyan,Jiang Zhanpeng,Yu Gang,et al. Study of photoelectrocatalytic oxidation of Benzoic acid. Environmental Science,2004,25(1):25-29(in Chinese)
    [12] Bahnemann D.,Bockelmann D.,Golslich R. Mechanistic studies of water detoxification in illuminated TiO2 suspensions. Solar Energy Materials,1991,24(1-4):564-569
    [13] 马骁轩.TiO2光催化技术降解废水有机物的研究.安徽农业科学,2009,37(8):3739-3742 Ma Xiaoxuan. Degradation of organic pollutants in wastewater with photocatalytic oxidation of TiO2.Journal of Anhui Agriculture Science,2009,37(8):3739-3742(in Chinese)
    [14] 傅平青,刘从强,吴丰昌,等.洱海沉积物孔隙水中溶解有机质的三维荧光光谱特征.第四纪研究,2004,24(6):695-700 Fu Pingqing,Liu Congqiang,Wu Fengchang,et al. Three-Dimensional excitation emission matrix fluorescence spectroscopic characterization of dissolved organic matter in sediment pore water in Lake Erhai. Quaternary Sciences,2004,24(6):695-700(in Chinese)
    [15] Chen W.,Westerhoff P.,Leenheer J.A.,et al. Fluorescence excitation-emission matrix regional integration to quantify spectra for dissolved organic matter. Environment Science & Technology,2003,37(24):5701-5710
    [16] Xu Zhao,Baofeng Zhang,Huijuan Liu,et al. Transformation characteristics of refractory pollutants in plugboard wasterwater by an optimal electrocoagulation and electro-Fenton process. Chemosphere,2012,87(6):631-636
  • 加载中
计量
  • 文章访问数:  1991
  • HTML全文浏览数:  1282
  • PDF下载数:  771
  • 施引文献:  0
出版历程
  • 收稿日期:  2013-08-24
  • 刊出日期:  2014-07-31
王超, 赵旭, 侯子义, 杨桂蓉, 冒冉. 光电催化氧化处理反渗透浓水[J]. 环境工程学报, 2014, 8(8): 3189-3194.
引用本文: 王超, 赵旭, 侯子义, 杨桂蓉, 冒冉. 光电催化氧化处理反渗透浓水[J]. 环境工程学报, 2014, 8(8): 3189-3194.
Wang Chao, Zhao Xu, Hou Ziyi, Yang Guirong, Mao Ran. Treatment of reverse osmosis concentrate by photoelectrocatalysis oxidation[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3189-3194.
Citation: Wang Chao, Zhao Xu, Hou Ziyi, Yang Guirong, Mao Ran. Treatment of reverse osmosis concentrate by photoelectrocatalysis oxidation[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3189-3194.

光电催化氧化处理反渗透浓水

  • 1.  河北工业大学土木工程学院, 天津 300401
  • 2.  中国科学院生态环境研究中心环境水质学国家重点实验室, 北京 100085
基金项目:

国家自然科学基金优秀青年基金项目(51222802)

摘要: 采用光电催化氧化技术对天津市某石化企业反渗透单元浓水进行处理。经光催化、电化学及光电催化氧化处理后浓缩液出水的COD、氨氮及色度去除率进行了对比研究。详细探讨了不同电流密度、反应时间及紫外灯功率对COD、氨氮及色度去除效果的影响。结果表明,在电流密度为2.0 mA/cm2,紫外灯光强度为30 μW/cm2的条件下,处理150 min后,COD的去除率为92.06%,氨氮浓度从44.61 mg/L下降至2.84 mg/L,色度去除率达到100%。对光电催化氧化法处理不同时间的出水进行了三维荧光光谱及凝胶色谱分析。结果表明,光电催化氧化法可将反渗透浓水中大部分大分子有机物结构破坏,使其分解成小分子有机物。

English Abstract

参考文献 (16)

返回顶部

目录

/

返回文章
返回