化学淋洗对土壤团聚体稳定性及其重金属赋存形态的影响
作者:

Effects of chemical washing on the stability of soil aggregates and the form of heavy metals
Author:
  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [40]
  • |
  • 相似文献 [20]
  • | | |
  • 文章评论
    摘要:

    为探究重金属在土壤非均质体系中的淋洗特性,分别考察了3种化学淋洗剂乙二胺四乙酸(EDTA)、柠檬酸和三氯化铁(FeCl3)等对粒径为0.25~2.00 mm、0.05~<0.25 mm和<0.05 mm的土壤团聚体淋洗过程中团聚体结构、重金属Pb和Cd质量分数及其赋存形态影响。结果表明,不同粒径团聚体中重金属的淋洗效率存在显著差异(P<0.05),小粒径(<0.05 mm)的团聚体上Pb和Cd具有更高的淋洗效率。淋洗后较小粒径团聚体上残渣态Cd所占比例升高,但有效态的Pb所占比例增加。淋洗后团聚体的平均直径分别减小了77.25%、80.98%和49.15%,团聚体解体可能增加土壤对Pb和Cd的专性吸附能力。淋洗剂FeCl3相较于EDTA和柠檬酸,对水稳性团聚体具有较低的结构破坏作用,同时具有较好的重金属淋洗效果,有利于土壤后续的安全再利用。

    Abstract:

    In order to investigate the characteristics of heavy metal removal with chemical washing from soil which was considered as a heterogeneous system, the soil aggregates were screened and graded on particle sizes of 0.25 mm to 2.00 mm, 0.05 mm to less than 0.25 mm and less than 0.05 mm. Then the effects of EDTA, citric acid and ferric chloride (FeCl3) on the aggregate structure, the mass fraction of lead (Pb) and cadmium (Cd) and their speciation during washing were investigated. The results show that the removal rates of heavy metals in aggregates of different particle sizes were significantly different (P<0.05). Pb and Cd in small aggregates (particle sizes less than 0.05 mm) had higher removal rates than that in large aggregates. After washing, the proportion of residual state Cd on small aggregates increased, but the proportion of effective state Pb also increased. After washing, the average diameter of the aggregates of the three different particle sizes decreased by 77.25%, 80.98% and 49.15%, respectively. The disintegration of water-stable aggregates might increase the specific adsorption capacity of soil to Pb and Cd. Compared with EDTA and citric acid, FeCl3 had lower structural damage to water-stable aggregates and better heavy metal leaching effect, which was beneficial to the subsequent safe reuse of soil.

    参考文献
    [1] Su S, Jiang L Q, Zhang W J. A review on heavy metal contamination in the soil worldwide:situation, impact and remediation techniques[J]. Environmental Skeptics & Critics, 2014, 3(2):24-38.
    [2] 蔡立群, 齐鹏, 张仁陟. 保护性耕作对麦-豆轮作条件下土壤团聚体组成及有机碳含量的影响[J]. 水土保持学报, 2008, 22(2):141-145. Cai L Q, Qi P, Zhang R Z. Effects of conservation tillage measures on soil aggregates stability and soil organic carbon in two sequence rotation system with spring wheat and field pea[J]. Journal of Soil and Water Conservation, 2008, 22(2):141-145.(in Chinese)
    [3] Deng A M, Wang L, Chen F, et al. Soil aggregate-associated heavy metals subjected to different types of land use in subtropical China[J]. Global Ecology and Conservation, 2018, 16:e00465. DOI:10.1016/j.gecco.2018.e00465.
    [4] Arshad M A, Coen G M. Characterization of soil quality:physical and chemical criteria[J]. American Journal of Alternative Agriculture, 1992, 7(1/2):25-31.
    [5] Dexter A R. Advances in characterization of soil structure[J]. Soil and Tillage Research, 1988, 11(3/4):199-238.
    [6] Huang B, Li Z W, Li D Q, et al. Distribution characteristics of heavy metal(loid)s in aggregates of different size fractions along contaminated paddy soil profile[J]. Environmental Science and Pollution Research, 2017, 24(30):23939-23952.
    [7] Quenea K, Lamy I, Winterton P, et al. Interactions between metals and soil organic matter in various particle size fractions of soil contaminated with waste water[J]. Geoderma, 2009, 149(3/4):217-223.
    [8] Hou D Y, Al-Tabbaa A, Guthrie P, et al. Using a hybrid LCA method to evaluate the sustainability of sediment remediation at the London Olympic Park[J]. Journal of Cleaner Production, 2014, 83:87-95.
    [9] Jho E H, Im J, Yang K, et al. Changes in soil toxicity by phosphate-aided soil washing:effect of soil characteristics, chemical forms of arsenic, and cations in washing solutions[J]. Chemosphere, 2015, 119:1399-1405.
    [10] Zeng M, Liao B H, Lei M, et al. Arsenic removal from contaminated soil using phosphoric acid and phosphate[J]. Journal of Environmental Sciences, 2008, 20(1):75-79.
    [11] Khaokaew S, Landrot G, Chaney R L, et al. Speciation and release kinetics of zinc in contaminated paddy soils[J]. Environmental Science & Technology, 2012, 46(7):3957-3963.
    [12] Okkenhaug G, Zhu Y G, He J W, et al. Antimony (Sb) and arsenic (As) in Sb mining impacted paddy soil from Xikuangshan, China:differences in mechanisms controlling soil sequestration and uptake in rice[J]. Environmental Science & Technology, 2012, 46(6):3155-3162.
    [13] 龚仓, 徐殿斗, 成杭新, 等. 典型热带林地土壤团聚体颗粒中重金属的分布特征及其环境意义[J]. 环境科学, 2013, 34(3):1094-1100. Gong C, Xu D D, Cheng H X, et al. Distribution characteristics and environmental significance of heavy metals in soil particle size fractions from tropical forests in China[J]. Environmental Science, 2013, 34(3):1094-1100.(in Chinese)
    [14] Guo X F, Zhao G H, Zhang G X, et al. Effect of mixed chelators of EDTA, GLDA, and citric acid on bioavailability of residual heavy metals in soils and soil properties[J]. Chemosphere, 2018, 209:776-782.
    [15] Yu Z H, Zhang J B, Zhang C Z, et al. The coupling effects of soil organic matter and particle interaction forces on soil aggregate stability[J]. Soil and Tillage Research, 2017,174:251-260.
    [16] Wang G Y, Zhang S R, Zhong Q M, et al. Effect of soil washing with biodegradable chelators on the toxicity of residual metals and soil biological properties[J]. Science of the Total Environment, 2018, 625:1021-1029.
    [17] Lei K, Giubilato E, Critto A, et al. Contamination and human health risk of lead in soils around lead/zinc smelting areas in China[J]. Environmental Science and Pollution Research, 2016, 23(13):13128-13136.
    [18] Makino T, Takano H, Kamiya T, et al. Restoration of cadmium-contaminated paddy soils by washing with ferric chloride:Cd extraction mechanism and bench-scale verification[J]. Chemosphere, 2008, 70(6):1035-1043.
    [19] Huang B, Li Z W, Huang J Q, et al. Aging effect on the leaching behavior of heavy metals (Cu, Zn, and Cd) in red paddy soil[J]. Environmental Science and Pollution Research, 2015, 22(15):11467-11477.
    [20] Lu A X, Zhang S Z, Shan X Q. Time effect on the fractionation of heavy metals in soils[J]. Geoderma, 2004, 125(3/4):225-234.
    [21] 鲁如坤. 土壤农业化学分析方法[M]. 北京: 中国农业科技出版社, 2000: 146-213. Lu R K. Soil argrochemistry analysis protocoes[M]. China Agriculture Scientech Press, 2000: 146-213.
    [22] EPA U. Method 3052 Microwave assisted acid digestion of sediments, sludges, soils, and oils[S]. [S.l.]: Washington DC US Environmental Agency, 1996.
    [23] Pueyo M, Mateu J, Rigol A, et al. Use of the modified BCR three-step sequential extraction procedure for the study of trace element dynamics in contaminated soils[J]. Environmental Pollution, 2008, 152(2):330-341.
    [24] Liao X Y, Li Y, Yan X L. Removal of heavy metals and arsenic from a co-contaminated soil by sieving combined with washing process[J]. Journal of Environmental Sciences, 2016, 41:202-210.
    [25] Boente C, Sierra C, Rodríguez-Valdés E, et al. Soil washing optimization by means of attributive analysis:case study for the removal of potentially toxic elements from soil contaminated with pyrite ash[J]. Journal of Cleaner Production, 2017, 142:2693-2699.
    [26] Wang H H, Li L Q, Wu X M, et al. Distribution of Cu and Pb in particle size fractions of urban soils from different city zones of Nanjing, China[J]. Journal of environmental sciences (China), 2006, 18(3):482-487.
    [27] Wang X S, Qin Y, Chen Y K. Heavy meals in urban roadside soils, part 1:effect of particle size fractions on heavy metals partitioning[J]. Environmental Geology, 2006, 50(7):1061-1066.
    [28] Li Z W, Huang B, Huang J Q, et al. Influence of removal of organic matter and iron and manganese oxides on cadmium adsorption by red paddy soil aggregates[J]. RSC Advances, 2015, 5(110):90588-90595.
    [29] Finzgar N, Jez E, Voglar D, et al. Spatial distribution of metal contamination before and after remediation in the Meza Valley, Slovenia[J]. Geoderma, 2014, 217/218:135-143.
    [30] 向玥皎, 刘阳生. 柠檬酸、草酸对污染土壤中铅锌的静态浸提实验研究[J]. 环境工程, 2015, 33(9):153-157, 30. Xiang Y J, Liu Y S. Remediation of heavy metals(Pb, Zn) contaminated soil with citric acid and oxalic acid[J]. Environmental Engineering, 2015, 33(9):153-157, 30.(in Chinese)
    [31] Guo X F, Wei Z B, Wu Q T, et al. Effect of soil washing with only chelators or combining with ferric chloride on soil heavy metal removal and phytoavailability:Field experiments[J]. Chemosphere, 2016, 147:412-419.
    [32] Chen C L, Tian T, Wang M K, et al. Release of Pb in soils washed with various extractants[J]. Geoderma, 2016, 275:74-81.
    [33] Barthès B, Roose E. Aggregate stability as an indicator of soil susceptibility to runoff and erosion; validation at several levels[J]. Catena, 2002, 47(2):133-149.
    [34] Angers D A, Recous S, Aita C. Fate of carbon and nitrogen in water-stable aggregates during decomposition of 13C15N-labelled wheat straw in situ[J]. European Journal of Soil Science, 1997, 48(2):295-300.
    [35] 赵友朋, 孟苗婧, 张金池, 等. 不同林地类型土壤团聚体稳定性与铁铝氧化物的关系[J]. 水土保持通报, 2018, 38(4):75-81, 86. Zhao Y P, Meng M J, Zhang J C, et al. Relationship between soil aggregate stability and different forms of Fe and Al oxides in different forest types[J]. Bulletin of Soil and Water Conservation, 2018, 38(4):75-81, 86. (in Chinese)
    [36] Komárek M, Tlustoš P, Száková J, et al. The role of Fe- and Mn-oxides during EDTA-enhanced phytoextraction of heavy metals[J]. Plant Soil and Environment, 2007, 53(5):216-224.
    [37] 许端平, 李晓波, 孙璐. 有机酸对土壤中Pb和Cd淋洗动力学特征及去除机理[J]. 安全与环境学报, 2015, 15(3):261-266.Xu D P, Li X B, Sun L. Washing kinetics and mechanism of removing Pb and Cd from the contaminated soil with the organic acids[J]. Journal of Safety and Environment, 2015, 15(3):261-266.(in Chinese)
    [38] 郭观林, 周启星. 重金属镉在黑土和棕壤中的解吸行为比较[J]. 环境科学, 2006, 27(5):1013-1019. Guo G L, Zhou Q X. Comparison on desorptive behavior of cadmium in phaeozem and burozem[J]. Environmental Science, 2006, 27(5):1013-1019.(in Chinese)
    [39] 吴烈善, 吕宏虹, 苏翠翠, 等. 环境友好型淋洗剂对重金属污染土壤的修复效果[J]. 环境工程学报, 2014, 8(10): 4486-4491. Wu L S, Lyu H H, Su C C, et al. Remediation of heavy metals contaminated soil by washing with environmentally friendly washing liquids[J]. Chinese Journal of Environmental Engineering, 2014, 8(10): 4486-4491.(in Chinese)
    [40] Makino T, Maejima Y, Akahane I, et al. A practical soil washing method for use in a Cd-contaminated paddy field, with simple on-site wastewater treatment[J]. Geoderma, 2016, 270: 3-9.
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

程剑雄,谢更新,丁文川,晏卓逸,李桥,王颖.化学淋洗对土壤团聚体稳定性及其重金属赋存形态的影响[J].重庆大学学报,2021,44(4):86-96.

复制
分享
文章指标
  • 点击次数:380
  • 下载次数: 1021
  • HTML阅读次数: 1228
  • 引用次数: 0
历史
  • 收稿日期:2019-12-13
  • 在线发布日期: 2021-04-20
文章二维码