Effects of lime treatment on the hydraulic conductivity and microstructure of loess

被引:0
作者
Yanyan Gao
Hui Qian
Xinyan Li
Jie Chen
Hui Jia
机构
[1] Chang’an University,School of Environmental Science and Engineering
[2] Chang’an University,Key Laboratory of Subsurface Hydrology and Ecological Effects in Arid Region of the Ministry of Education
来源
Environmental Earth Sciences | 2018年 / 77卷
关键词
Hydraulic conductivity; Dry density; Lime content; Microstructure; Lime-treated loess;
D O I
暂无
中图分类号
学科分类号
摘要
Lime treatment of loess in foundation engineering modifies the soil structure, leading to changes in mechanical and hydraulic properties of soil, which in turn will affect the flow of water and transport of contaminants in the loess. In light of this, it is essential to identify the dominant effects of different lime treatments on hydraulic conductivity, and to ascertain the optimum lime treatment. For this purpose, we investigated the effects of dry density and lime content on changes in hydraulic conductivity and microstructure of loess in Yan’an City, China. The results indicate that hydraulic conductivity has a log negative correlation with dry density, and lime addition can result in a decrease of hydraulic conductivity of loess at the same dry density. Under a given degree of compaction, however, lime addition can lead to a decrease in dry density due to an increase in flocculation and aggregations. The significant decrease of dry density leads to an increase in hydraulic conductivity when lime content (in mass percentage) is lower than 3%. Nevertheless, when lime content is higher than 3%, the reactions between loess particles and lime will be intensified with an increase in lime content, and become the primary factors affecting pore characteristics. These reactions can further decrease the hydraulic conductivity of lime-treated loess, and the lowest hydraulic conductivity was obtained for lime-treated loess with 9% lime content. The excess lime (above 9% lime content) dramatically increased pore size, leading to a significant increase in hydraulic conductivity. Therefore, 9% is the optimum lime content for loess treatment, and the degree of compaction in engineering should be higher than 95%. In addition, statistical analysis of microstructure of lime-treated loess shows that the distribution trends of macro- and meso-pores coincided with that of saturated hydraulic conductivity, which indicates that lime content affects saturated hydraulic conductivity of lime-treated loess by changing the soil structure, especially the properties of pores larger than 8 µm.
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  • [31] Pelletier M(2014)Determining the optimal pumping duration of transient pumping tests for estimating hydraulic properties of leaky aquifers using global curve-fitting method: a simulation approach Environ Earth Sci 74 7267-237
  • [32] Villieras F(2015)Building a new and sustainable “Silk Road economic belt” Environ Earth Sci 76 105-353
  • [33] Mosser-ruck R(2017)Finding harmony between the environment and humanity: an introduction to the thematic issue of the Silk Road Environ Earth Sci 24 13224-158
  • [34] Cuisinier O(2017)Progress, opportunities and key fields for groundwater quality research under the impacts of human activities in China with a special focus on western China Environ Sci Pollut Res 37 222-43
  • [35] Auriol JC(2018)Solute geochemistry and multivariate analysis of water quality in the Guohua phosphorite mine, Guizhou Province, China Expos Health 34 337-669
  • [36] Le Borgne T(2018)Geochemistry, hydraulic connectivity and quality appraisal of multilayered groundwater in the Hongdunzi Coal Mine, Northwest China Mine Water Environ 19 151-65
  • [37] Deneele D(2018)Conjunctive use of groundwater and surface water to reduce soil salinization in the Yinchuan Plain, north-west China Int J Water Resour Dev 61 37-160
  • [38] Di Maio C(1971)Mechanisms controlling the permeability of clays Clays Clay Miner 26 663-63
  • [39] Di Sante M(2012)Maturation of loess treated with variable lime admixture: pore space textural evolution and related phase changes Appl Clay Sci 4 41-1512
  • [40] Fratalocchi E(2012)Microstructure, geotechnical and mechanical characteristics of quicklime-lateritic gravels mixtures used in road construction Constr Build Mater 38 154-58