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电子垃圾拆解区表层土壤重金属水平分布特征及其污染评价
Characteristics of Horizontal Distribution and Pollution Assessment of Heavy Metals in the Surface Soil from Typical E-Waste Dismantling Region

DOI: 10.12677/hjss.2024.124024, PP. 215-224

Keywords: 温岭地区,表层农田土壤,重金属,水平分布,污染评价
Wenling
, Surface Soil, Heavy Metal, Horizontal Distribution, Pollution Assessment

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Abstract:

根据电子垃圾拆解较为集中的浙江温岭地区表层土壤的环境现状调查和检测分析结果,分析了表层农田土壤中6种重金属Cu、Pb、Zn、Cd、Ni、Cr和pH值的水平分布特征。结果显示,Cu、Zn、Pb、Cd水平分布特征相似,高浓度聚集区出现在温岭市西北区域的大溪镇、泽国镇和横峰街道,这与产业类型分布和元素性质相关;同时Ni与Cr也具有较为明显的相关性,高值区主要分布在横峰街道、泽国镇、箬横镇、新河镇。采用内梅罗综合指数法和单因子评价法对研究地区表层土壤中6种重金属和pH值污染水平进行了评价。以农用地土壤污染风险管控标准为评价标准,发现研究区域表层农田土壤样品中重金属Cd存在局部污染的特征,表层农田土壤中Cd的污染程度和电子垃圾拆解区的分布存在相关性,是研究该区农田土壤Cd污染的主要来源,也是研究区主要的土壤环境风险之一。
Based on the environmental status investigation and analysis results of the surface soil in Wenling, Zhejiang Province, where electronic waste dismantling is concentrated, the distribution characteristics of six heavy metals—Cu, Pb, Zn, Cd, Ni, and Cr—as well as pH values in the surface agricultural soil were analyzed. Results indicate that the horizontal distribution characteristics of Cu, Zn, Pb, and Cd are similar. Those sample sites with higher contamination levels were located in the northwest region of Wenling City, including Daxi Town, Zegu Town, and Hengfeng community. Research data shows local industry types and elemental properties may be responsible for these findings. In addition, Ni and Cr also have significant correlations, with high-value areas primarily distributed in Hengfeng Street, Zegu Town, Bixi Town, and Xinhe Town. For those six heavy metals and pH values, the Nemerow composite index method and single-factor evaluation method were used to assess samples from the study area. Using the risk control standard for soil contamination of agricultural land as the criterion, it was found that the pollution degree of Cd in the surface agricultural soils is related to the distribution of e-waste dismantling region; Cd is the main source of Cd pollution in the study area and one of the main environmental risks.

References

[1]  Raghunath, R., Tripathi, R.M., Kumar, A.V., Sathe, A.P., Khandekar, R.N. and Nambi, K.S.V. (1999) Assessment of Pb, Cd, Cu, and Zn Exposures of 6-to 10-Year-Old Children in Mumbai. Environmental Research, 80, 215-221.
https://doi.org/10.1006/enrs.1998.3919
[2]  Adriano, D.C. (2001) Trace Elements in the Terrestrial Environments. Springer.
[3]  Tembo, B.D., Sichilongo, K. and Cernak, J. (2006) Distribution of Copper, Lead, Cadmium and Zinc Concentrations in Soils around Kabwe Town in Zambia. Chemosphere, 63, 497-501.
https://doi.org/10.1016/j.chemosphere.2005.08.002
[4]  李恋卿, 潘根兴, 张平究, 等. 太湖地区水稻土表层土壤10年尺度重金属元素积累速率的估计[J]. 环境科学, 2002, 23(3): 119-123.
[5]  袁旭音, 陶于祥, 王润化, 等. 湖州市不同土壤重金属的污染现状[J]. 上海地质, 2002(3): 6-11.
[6]  章明奎, 王美青. 杭州市城市土壤重金属的潜在可淋洗性研究[J]. 土壤学报, 2003, 40(6): 915-920.
[7]  赵科理, 傅伟军, 叶正钱, 戴巍. 电子垃圾拆解区土壤重金属空间异质性及分布特征[J]. 环境科学, 2016, 37(8): 3151-3159.
[8]  Forti, V., Balde, C.P., Kuehr, R., et al. (2020) The Global E-Waste Monitor 2020: Quantities, Flows and the Circular Economy Potential. International Telecommunication Union and International Solid Waste Association, 1-2.
http://collections.unu.edu/view/UNU:7737
[9]  赵梓霖, 王境强, 王锐, 等. 电子垃圾拆解区不同用地类型土壤重金属空间分布特征与风险评价[J]. 环境工程学报, 2022, 16(4): 1294-1302.
[10]  Li, J.H., Duan, H.B., Shi, D.Z., et al. (2011) Heavy Metal Contamination of Surface Soil in Electronic Waste Dismantling Area: Site Investigation and Source-Apportionment Analysis. Waste Management & Research: The Journal for a Sustainable Circular Economy, 29, 727-738.
https://doi.org/10.1177/0734242x10397580
[11]  潘虹梅, 李凤全, 叶玮, 等. 电子废弃物拆解业对周边土壤环境的影响: 以台州路桥下谷岙村为例[J]. 浙江师范大学学报: 自然科学版, 2007, 30(1): 103-108.
[12]  陈多宏, 高博, 毕新慧, 等. 典型电子垃圾拆解区大气颗粒物中元素污染的季节变化特征[J]. 环境监测管理与技术, 2010, 22(4): 19-22.
[13]  Tang, X., Shen, C., Shi, D., Cheema, S.A., Khan, M.I., Zhang, C., et al. (2010) Heavy Metal and Persistent Organic Compound Contamination in Soil from Wenling: An Emerging E-Waste Recycling City in Taizhou Area, China. Journal of Hazardous Materials, 173, 653-660.
https://doi.org/10.1016/j.jhazmat.2009.08.134
[14]  周启星, 林茂宏. 我国主要电子垃圾处理地环境污染与人体健康影响[J]. 安全与环境学报, 2013, 13(5): 122-128.
[15]  李科, 丁晴晴, 蒙丽娜, 田媛. 电子垃圾拆解区不同深度土壤重金属污染特征[J]. 环境科学与技术, 2015, 38(6): 204-209+216.
[16]  中华人民共和国生态环境部. HJ/T166-2004土壤环境监测技术规范[S]. 北京: 中国环境出版社, 2004.
[17]  中华人民共和国生态环境部. GB15618-1995土壤质量环境标准[S]. 北京: 中国环境出版社, 1995.
[18]  陈怀满. 环境土壤学[M]. 北京: 科学出版社, 2005: 522-523.
[19]  陈潇霖, 杨丹, 胡迪青, 等. 北京土壤重金属分布及评价: 以五环以内为例[J]. 环境科学与技术, 2012, 35(12): 78-81.
[20]  Fu, W., Zhao, K., Zhang, C. and Tunney, H. (2011) Using Moran’s I and Geostatistics to Identify Spatial Patterns of Soil Nutrients in Two Different Long-Term Phosphorus-Application Plots. Journal of Plant Nutrition and Soil Science, 174, 785-798.
https://doi.org/10.1002/jpln.201000422

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