山西省水土保持科学研究所,山西,太原,030013
纸质出版:2017
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聂兴山. 铝矿复垦土壤重金属含量变化及污染风险评价[J]. 水土保持通报, 2017,37(2):321-326.
NIE Xingshan. Contents and Pollution Risk Assessment of Heavy Mentals in Reclaimed Soil[J]. Bulletin of Soiland Water Conservation, 2017, 37(2): 321-326.
聂兴山. 铝矿复垦土壤重金属含量变化及污染风险评价[J]. 水土保持通报, 2017,37(2):321-326. DOI: 10.13961/j.cnki.stbctb.2017.02.049.
NIE Xingshan. Contents and Pollution Risk Assessment of Heavy Mentals in Reclaimed Soil[J]. Bulletin of Soiland Water Conservation, 2017, 37(2): 321-326. DOI: 10.13961/j.cnki.stbctb.2017.02.049.
[目的] 对孝义铝矿复垦区土壤重金属含量和污染状况进行研究,为了解和评价矿区复垦土壤重金属污染风险提供科学依据。[方法] 采用ICP-MS测定土壤中Cd,Cr,Cu,Pb,As,Ni等6种重金属元素含量,分析各含量随复垦年限的变化特征,并用单因子标识指数和内梅罗综合标识指数法对重金属的污染程度进行评价。[结果](1)Cd含量均值为5.19 mg/kg,是国家二级标准0.3 mg/kg的约10倍,其余5种元素含量均低于国家二级标准。随着复垦年限的延长,Cd含量在0-15 cm土层处逐渐降低,在15-30 cm土层处逐渐增加。(2)Cd的单项因子污染指数在所有样点均达到5级严重污染水平,其它元素均属清洁水平。内梅罗综合污染指数12.08~13.14,均值12.43,是5级重污染指数的3~4倍,属严重污染水平。(3)复垦用土中6种重金属含量均超过国家2级标准,是复垦土地重金属主要的来源。[结论] 复垦区土壤由于复垦用土及后期的施肥和粉尘沉降等所致已被Cd污染,在矿区复垦中,应当严格控制复垦用土的质量。
[Objective] The contents and pollution state of heavy mentals of soil in Xiaoyi bauxite mine of Shanxi Province were studied to provide scientific basis for the understanding and evaluating the risk of heavy metal pollution in reclaimed soil in mining area. [Methods] The contents of Cd
Cr
Cu
Pb
As and Ni by ICP-MS were measured
and their changes along different reclaimed years were analyzed. Single factor index and Nemerow comprehensive index methods were used to evaluate the potential pollution degree and risk. [Results] (1) The mean value of Cd was 5.19 mg/kg
exceeding the 0.3 mg/kg of national stand by 17 times. Other elements was not exceed the national stand and no pollution risk was observed. With the extension of reclamation time
the content of Cd increased at 0-15 cm and decreased at 15-30 cm layer. (2) The single pollution index of Cd is the highest of all sampling plots
was assessed at 5th level severe pollution. Other 5 elements are lower
and are at 1st degree of safe level. The Nemerow comprehensive index ranged from 12.08 to 13.14
with an average of 12.43
at severe pollution level
and it exceeds the 5th degree by 3~4 times. (3) Soil which was used to reclaim is the mainly pollution resource
the contents of 6 heavy mental elements exceeded the national stand. [Conclusion] The soil in reclamation area have been polluted by Cd sourced from reclaimed soil
manure and dust. When considering reclaimed mine
the quality of soil which will be used to reclaim should be protected strictly.
范英宏,陆兆华,程建龙,等.中国煤矿区主要生态环境问题及生态重建技术[J].生态学报,2003,23(10):2144-2152.
郭伟,赵仁鑫,张君,等.内蒙古包头铁矿区土壤重金属污染特征及其评价[J].环境科学,2011,32(10):3099-3105.
石平,王恩德,魏忠义,等.辽宁矿区尾矿废弃地及土壤重金属污染评价研究[J].金属矿山,2008(2):118-121.
Bhattacharyya P, Tripathy S, Chakrabarti K, et al. Fractionation and bioavailability of metals and their impacts on microbial properties in sewage irrigated soil[J]. Chemosphere, 2008,72(4):543-550.
Zhuang Ping, Zou Bi, Li Zhian, et al. Heavy metal contamination in soils and food crops around Dabaoshan mine in Guangdong, China:Implication for human health[J]. Environmental Geochemistry and Health, 2009,31(6):707-715.
Machender G, Dhakate R, Prasanna L, et al. Assessment of heavy metal contamination in soils around Balanagar industrial area, Hyderabad, India[J]. Environment Earth Sciences, 2011,63(5):945-953.
Soriano-Disla J M, Speir T W, Gómez I, et al. Evaluation of different extraction methods for the assessment of heavy metal bioavailability in various soils[J]. Water, Air and Soil Pollution, 2010,213(1):471-483.
彭建,蒋一军,吴健生,等.我国矿山开采的生态环境效应及土地复垦典型技术[J].地理科学进展,2005,24(2):38-48.
Reynderse, Bervoetsl, Geldersm, et al. Accumulation and effects of metals in caged carp and resident roach along a metal pollution gradient[J]. Science of the Total Environment, 2008,391(1):82-95.
Chopin E I, Alloway B J. Trace element partitioning and soil particle characterization around mining and smelting areas at Tharsis, Ríotinto and Huelva, SW Spain[J]. Science of the Total Environment, 2007,373(3):488-500.
Zheng Na, Liu Jingshuang, Wang Qichao, et al. Mercury contamination due to zinc smelting and chlor-alkali production in NE China[J]. Applied Geochemistry, 2011,26(2):188-193.
Olawoyin R, Ovewole S A, Grayson R L. Potential risk effect from elevated levels of soil heavy metals on human health in the Niger Delta[J]. Ecotoxicology and Environmental Safety, 2012,85(3):120-130.
何绪文,王宇翔,房增强,等.铅锌矿区土壤重金属污染特征及污染风险评价[J].环境工程技术学报,2016,6(5):476-483.
陈怀满.环境土壤学[M].北京:科学出版社,2005:522-523.
陈岩,季宏兵,朱先芳,等.北京市得田沟金矿和崎峰茶金矿周边土壤重金属形态分析和潜在风险评价[J].农业环境科学学报,2012,31(11):2142-2151.
胡明勇,蒋丽萍,张啸,等.常用肥料重金属含量的调查分析:以长沙市为例[J].湖南农业科学,2014(24):27-29.
王美,李书田.肥料重金属含量状况及施肥对土壤和作物重金属富集的影响[J].植物营养与肥料学报,2014,20(2):466-480.
闫湘,王旭,李秀英,等.水溶肥料重金属含量与安全评价[J].土壤通报,2015,46(5):1264-1271.
王雄军,赖健清,鲁艳红,等.基于因子分析法研究太原市土壤重金属污染的主要来源[J].生态环境,2008,17(2):671-676.
李倩,秦飞,季宏兵,等.北京市密云水库上游金矿区土壤重金属含量、来源及污染评价[J].农业环境科学学报,2013,32(12):2384-2394.
段雪梅,蔡焕兴,巢文军.南京市表层土壤重金属污染特征及污染来源[J].环境科学与管理,2010,35(10):31-35.
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