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鼠李糖脂协助下的土壤中镉电动修复 被引量:10

Rhamnoilpid-assisted electrokinetic remediation of cadmium contaminated soil
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摘要 实验研究了重金属Cd在生物表面活性剂鼠李糖脂协助下的电动修复过程,通过不同方式、不同浓度、不同酸碱度的鼠李糖脂溶液的添加与空白处理对比,探讨了鼠李糖脂协助下电动修复过程中的Cd在土壤介质中的迁移转化和机理,分析了鼠李糖脂溶液作为电动修复添加剂的可行性。结果表明,中等浓度酸性的鼠李糖脂溶液(pH=4.78,浓度为0.5、1和2 g/L)能对土壤中的重金属Cd进行有效的富集,富集量均在初始值的4倍以上,且其可交换态比重均大于42.07%,非常有利于土壤进行二次修复。此外,以pH=4.78,浓度为0.5 g/L的鼠李糖脂溶液作为预处理剂的Ex-08中的重金属Cd并未出现富集现象,但其对重金属的Cd的总去除效率达到了49.27%。表明利用鼠李糖脂溶液作为电动修复添加剂进行土壤重金属修复是可行的。 The effect of rhamnoilpid,a biosurfactant,on electrokinetic remediation of cadmium(Cd) contaminated soil was investigated in this study.A range of laboratory experiments were conducted to determine characteristics and mechanisms of electrokinetic remediation of the contaminated soil under different conditions.The feasibility of using rhamnolipid as an additive was discussed as well.The results indicated that the rhamnolipid at pH=4.78 and different concentrations,in the range of 0.5~2 g/L,can be used as a cathode additive to improve the effect of electrokinetic remediation of Cd-contaminated soils through controlling soil pH values,increasing Cd accumulations(more than 4 times),increasing exchangeable Cd,and favoring secondary remediation.In additon,when the rhamnolipid(pH=4.78,0.5 g/L)was saturated with soil,there was no accumulation of Cd found in the soil,and 49.27% of Cd was removed.It is feasible to conduct electrokinetic remediation by usig rhamnolipid as the cathode additives.
出处 《环境工程学报》 CAS CSCD 北大核心 2012年第10期3801-3808,共8页 Chinese Journal of Environmental Engineering
基金 广西科技攻关项目(桂科攻10142003)
关键词 鼠李糖脂 电动修复 rhamnoilpid electrokinetic remediation cadmium(Cd)
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参考文献24

  • 1周东美,郝秀珍,薛艳,仓龙,王玉军,陈怀满.污染土壤的修复技术研究进展[J].生态环境,2004,13(2):234-242. 被引量:125
  • 2Al-Hamdan A. Z.,Reddy K. R. Transient behavior ofheavy metals in soils during electrokinetic remediation.Chemosphere, 2008,71(5):860-871.
  • 3Giannis A.,Nikolaou A. , Pentari D. , et al. Chelating a-gent-assisted electrokinetic removal of cadmium, lead andcopper from contaminated soils. Environmental Pollution,2009,157(12) :3379-3386.
  • 4Virkutyte J.,Sillanpaa M.,Latostenmaa P. Electrokineticsoil remediation-Critical overview. The Science of TheTotal Environment, 2002,289( 1-3) :97-121.
  • 5Gidarakos E.,Giannis A. Chelate agents enhanced electro-kinetic remediation for removal cadmium and zinc by condi-tioning catholyte pH. Water, Air and Soil Poll.,2006 ,172(1-4) :295-312.
  • 6Reddy K. R.,Chinthamreddy S. Sequentially enhancedelectrokinetic remediation of heavy metals in low bufferingclayey soils. Journal of Geotechnical and GeoenvironmentalEngineering,2003,129 (3 ) : 263 -277.
  • 7Zhao S.,Lian F.,Duo L. EDTA-assisted phytoextractionof heavy metals by turf grass from municipal solid wastecompost using permeable barriers and associated potentialleaching risk. Bioresource Technology, 2011,102 ( 2 );621-626.
  • 8Hong K. J.,Tokunaga S. , Kajiuchi T. Evaluation of re-mediation process with plant-derived biosurfactant for recov-ery of heavy metals from contaminated soils. Chemosphere,2002,49(4) :379-387.
  • 9Mulligan C. IS. , Yong R. N.,Gibbs B. F. Heavy metalremoval from sediments by biosurfactants. Journal of Haz-ardous Materials, 2001, 85(1-2) :111-125.
  • 10Wen J.,Stacey S. P.,McLaughlin M. J.,et al. Bio-degradation of rhamnolipid,EDTA and citric acid in cad-mium and zinc contaminated soils. Soil Biology & Bio-chemistry ,2009,41(10) :2214-2221.

二级参考文献51

  • 1ZHOUDong-mei,AlshawabkehAkramN,DENGChang-fen,CANGLong,SIYou-bin.Electrokinetic removal of chromium and copper from contaminated soils by lactic acid enhancement in the catholyte[J].Journal of Environmental Sciences,2004,16(4):529-532. 被引量:4
  • 2李振泽,郭增玉.增强土料击/压实性能的试验研究[J].水力发电学报,2006,25(3):67-71. 被引量:5
  • 3李保雄,牛永红,苗天德.兰州马兰黄土的物理力学特性[J].岩土力学,2007,28(6):1077-1082. 被引量:45
  • 4TAN K H. Principles of soil chemistry (second edition)[M]. USA: Marcel Dekker, Inc., 1993.
  • 5RAO P H, HE M. Adsorption of anionic and nonionic surfactant mixtures from synthetic detergents on soil[J]. Chemosphere, 2006, 63(7): 1214--1221.
  • 6YING G G. Fate behavior and effects of surfactants and their degradation products in the environment[J]. Environment International, 2006, 32(3): 417-- 431.
  • 7KALM V E, RUTTER N W, ROKOSH C D. Clay minerals and their paleoenviromental interpretation in the Baoji loess section[J]. Southern Loess Plateau, 1996, 27(1): 49--61.
  • 8TANG X W, LI Z Z, CHEN Y M. Behaviour and mechanism of Zn(lI) adsorption on Chinese loess at dilute slurry concentrations[J]. Journal of Chemical Technology & Biotechnology, 2008, 83(5): 673--682.
  • 9CHU C P, LEE D J, CHIHPIN H. The role of ionic surfactants in compression dewatering of alum sludge[J]. Journal of Colloid and Interface Science, 1998, 206(1): 181--188.
  • 10NG C W W, PANG Y W. Experimental investigation of the soil-water characteristics of a volcanic soil[J]. Canadian Geoteehnieal Journal, 2000, 37(6): 1252--1264.

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