上流式Fe0-沸石固定床去除水中的硝酸盐氮

赵爽, 王永庆, 杨永愿, 汪晓军. 上流式Fe0-沸石固定床去除水中的硝酸盐氮[J]. 环境工程学报, 2018, 12(1): 65-71. doi: 10.12030/j.cjee.201705149
引用本文: 赵爽, 王永庆, 杨永愿, 汪晓军. 上流式Fe0-沸石固定床去除水中的硝酸盐氮[J]. 环境工程学报, 2018, 12(1): 65-71. doi: 10.12030/j.cjee.201705149
ZHAO Shuang, WANG Yongqing, YANG Yongyuan, WANG Xiaojun. Removal of nitrate nitrogen from wastewater in upstream zero-valent iron-zeolite fixed bed reactor[J]. Chinese Journal of Environmental Engineering, 2018, 12(1): 65-71. doi: 10.12030/j.cjee.201705149
Citation: ZHAO Shuang, WANG Yongqing, YANG Yongyuan, WANG Xiaojun. Removal of nitrate nitrogen from wastewater in upstream zero-valent iron-zeolite fixed bed reactor[J]. Chinese Journal of Environmental Engineering, 2018, 12(1): 65-71. doi: 10.12030/j.cjee.201705149

上流式Fe0-沸石固定床去除水中的硝酸盐氮

  • 基金项目:

    国家自然科学基金应急管理项目(21646008)

    2015年度广东省应用型科技研发专项(重大)(2015B020235013)

Removal of nitrate nitrogen from wastewater in upstream zero-valent iron-zeolite fixed bed reactor

  • Fund Project:
  • 摘要: 针对目前废水经生化处理后,残余NO-3浓度较高导致总氮不达标的问题,采用上流式Fe0-沸石固定床对其进行处理,探究了纯铁粉+沸石、铁粉/石英砂+沸石和铁粉/活性炭+沸石3种填料对硝酸盐氮废水的处理效果。实验结果表明,当进水NO-3浓度为50 mg·L-1,pH=6,V(Fe0)/V(活性炭)=0.5时,NO-3去除率可达75.99%,反应符合准一级反应动力学模型,反应速率常数可达0.084 min-1,且反应产物中氨氮的比例较低。活性炭或石英砂的加入可以减缓反应柱内铁粉的板结。反应柱内的沸石对氨氮具有良好的吸附效果,且对出水的pH具有一定的调节作用。
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  • [1] 毕晶晶, 彭昌盛, 胥慧真.地下水硝酸盐污染与治理研究进展综述[J].地下水,2010,32(1):97-102
    [2] KIM J, BENJAMIN M M.Modeling a novel ion exchange process for arsenic and nitrate removal[J].Water Research,2004,38(8):2053-2062
    [3] RAUTENBACH R, KOPP W, OPBERGEN G V, et al.Nitrate reduction of well water by reverse osmosis and electrodialysis studies on plant performance and costs[J].Desalination,1987,65:241-258
    [4] BOSKO M L, RODRIGUES M A S, FERREIRA Z J, et al.Nitrate reduction of brines from water desalination plants by membrane electrolysis[J].Journal of Membrane Science,2014,451:276-284
    [5] VAVILIN V A, RYTOV S V.Nitrate denitrification with nitrite or nitrous oxide as intermediate products: Stoichiometry, kinetics and dynamics of stable isotope signatures[J].Chemosphere,2015,134:417-426
    [6] 李胜业, 金朝晖, 金晓秋,等.还原铁粉反应柱去除地下水中硝酸盐氮的研究[J].农业环境科学学报,2004,23(6):1203-1206
    [7] 陈占, 王海波, 韩陆超,等.溶液中Fe2+强化Fe0还原NO-3的机制[J].环境工程学报,2016,10(9):4940-4944
    [8] 周健, 陈博, 陈垚,等.铁炭微电解工艺对高硝态氮制药废水的脱氮效能[J].中国给水排水,2011,27(9):78-80
    [9] YANG G C, LEE H L.Chemical reduction of nitrate by nanosized iron: Kinetics and pathways[J].Water Research,2005,39(5):884-894
    [10] REN Y, ZHOU J F, BO L, et al.Fe0 and Fe0 fully covered with Cu0 (Fe0+Fe/Cu) in fixed bed reactor for nitrate removal[J].RSC Advances,2016,6:108229-108239
    [11] YONG H H, TIAN C Z.Effects of low pH on nitrate reduction by iron powder[J].Water Research,2004,38(11):2631-2642
    [12] AGRAWAL A, TRATNYEK P G.Reduction of nitro aromatic compounds by zero-valent iron metal[J].Environmental Science & Technology,1995,30(1):153-160
    [13] HU H Y, GOTO N, FUJIE K, et al.Reductive treatment characteristics of nitrate by metallic iron in aquatic solution[J].Journal of Chemical Engineering of Japan,2001,34(9):1097-1102
    [14] KIELEMOES J, BOEVER P D, VERSTRAETE W.Influence of denitrification on the corrosion of iron and stainless steel powder[J].Environmental Science & Technology,2000,34(4):663-671
    [15] ALOWITZ M J, SCHERER M M.Kinetics of nitrate, nitrite, and Cr(VI) reduction by iron metal[J].Environmental Science & Technology,2002,36(3):299-306
    [16] 范潇梦, 关小红, 马军.零价铁还原水中硝酸盐的机理及影响因素[J].中国给水排水,2008,24(14):5-9
    [17] 陈占, 王海波, 韩陆超,等.溶液中Fe2+强化Fe0还原NO-3的机制[J].环境工程学报,2016,10(9):4940-4944
    [18] LUO J, SONG G, LIU J, et al.Mechanism of enhanced nitrate reduction via micro-electrolysis at the powdered zero-valent iron/activated carbon interface[J].Journal of Colloid & Interface Science,2014,435:21-25
    [19] ODZIEMKOWSKI M S, GUI L, GILLHAM R W.Reduction of N-nitrosodimethylamine with granular iron and nickel-enhanced iron.2.Mechanistic studies[J].Environmental Science & Technology,2000,34(16):3495-3500
    [20] WANG J, FARREL J.Investigating the role of atomic hydrogen on chloroethene reactions with iron using Tafel analysis and electrochemical impedance spectroscopy[J].Environmental Science & Technology,2003,37(17):3891-3896
    [21] HUANG Y H, ZHANG T C.Kinetics of nitrate reduction by iron at near neutral pH[J].Journal of Environmental Engineering,2002,128(7):604-611
    [22] TILL B A, WEATHERS L J, ALVAREZ P J.Fe0-supported autotrophic denitrification[J].Environmental Science & Technology,1998,32(5):634-639
    [23] LIOU Y H, LO S L, LIN C J, et al.Methods for accelerating nitrate reduction using zero-valent iron at near-neutral pH: Effects of H2-reducing pretreatment and copper deposition[J].Environmental Science & Technology,2005,39(24):9643-9648
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  • 刊出日期:  2018-01-14

上流式Fe0-沸石固定床去除水中的硝酸盐氮

  • 1. 华南理工大学环境与能源学院,工业聚集区污染控制与生态修复教育部重点实验室,广州 510006
基金项目:

国家自然科学基金应急管理项目(21646008)

2015年度广东省应用型科技研发专项(重大)(2015B020235013)

摘要: 针对目前废水经生化处理后,残余NO-3浓度较高导致总氮不达标的问题,采用上流式Fe0-沸石固定床对其进行处理,探究了纯铁粉+沸石、铁粉/石英砂+沸石和铁粉/活性炭+沸石3种填料对硝酸盐氮废水的处理效果。实验结果表明,当进水NO-3浓度为50 mg·L-1,pH=6,V(Fe0)/V(活性炭)=0.5时,NO-3去除率可达75.99%,反应符合准一级反应动力学模型,反应速率常数可达0.084 min-1,且反应产物中氨氮的比例较低。活性炭或石英砂的加入可以减缓反应柱内铁粉的板结。反应柱内的沸石对氨氮具有良好的吸附效果,且对出水的pH具有一定的调节作用。

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