[1] National Research Council. Alternatives for ground water cleanup[M]. Washington D C:Academy Press,1994:336-350.
[2] 陈梦舫,骆永明,宋静,等. 场地含水层氯代烃污染物自然衰减机制与纳米铁修复技术的研究进展[J]. 环境监测管理与技术,2011,22(3):85-89.
[3] Ministry of Housing,Spatial Planning and Environment Directorate-General for Environmental Protection. Circular on target values and intervention values for soil remediation[R]. The Hague:VROM, 2000.
[4] 何江涛,李烨,刘石,等. 浅层地下水氯代烃污染的天然生物降解[J]. 环境科学,2005,26(2):121-125.
[5] 程莉蓉,刘奕慧,丁爱中,等. 地下水三氯乙烯原位生物修复及其影响因素综述[J]. 安全与环境学报,2012,12(4):88-95.
[6] He Feng, Zhao Dongye,Paul C. Field assessment of carboxymethyl cellulose stabilized iron nanoparticles for in situ destruction of chlorinated solvents in source zones[J]. Water Research,2010,44(7):2360-2370.
[7] Bennet P,He Feng,Zhao Dongye,et al. In situ testing of metallic iron nanoparticle mobility and reactivity in a shallow granular aquifer[J]. Journal of Contaminant Hydrology,2010,116(1/2/3/4):35-46.
[8] Swift D, Rothermel J,Peterson L, et al. Remediating TCE-contaminated groundwater in low-permeability media using hydraulic fracturing to emplace zero-valent iron/organic carbon amendment[J]. Remediation Journal,2012,22(2):49-67.
[9] 杨柱,李义连,陈华清,等. 零价铁修复水土中含氯有机污染物的研究进展[J]. 安全与环境工程,2007,14(1):43-46.
[10] 夏凡,刘玉龙,刘菲,等. 苯、甲苯对粒状铁去除四氯乙烯影响的柱实验研究[J]. 地学前缘,2008,15(6):142-150.
[11] Scheutz C,Durant N D,Hansen M H,et al. Natural and enhanced anaerobic degradation of 1,1,1-trichloroethane and its degrada-tion products in the subsurface:a critical review[J]. Water Re-search,2011,45(9):2701-2723. |