Reducing the hydraulic erosion of sand using microbial-induced carbonate precipitation

被引:54
作者
Amin M. [1 ]
Zomorodian S.M.A. [1 ]
O’Kelly B.C. [2 ]
机构
[1] Department of Water Engineering, Shiraz University, Shiraz, Fars
[2] Department of Civil, Structural and Environmental Engineering, Trinity College Dublin, Dublin
关键词
Barrages & reservoirs; Dams; Granular materials; Grouting;
D O I
10.1680/jgrim.16.00028
中图分类号
学科分类号
摘要
Hydraulic erosion is one of the main causes of failure within earth dams and embankments. Various methods are used to mitigate against such erosion, a common approach being grouting with cement, clay or chemical materials. Biogrouting using the microbial-induced carbonate precipitation technique is a relatively new, cost-effective, technically appropriate and environmentally friendly soil improvement method. Bacteria injected into the soil produce urease enzyme, which converts urea to ammonium and carbonate, causing calcite precipitation that binds soil grains together. In this study, the erodibility parameters of dense silica sand specimens treated with different injection strategies were investigated at bench scale. More effective treatment - in terms of greater and more uniform calcite precipitation over the test-specimen length, and hence greater erosion resistance - was achieved by aeration during solution injections and by incorporating a drained stage between injection cycles. With the latter, calcite precipitated as larger crystals, accumulating extensively over grain surfaces and also formed integrated in the pore voids. The best-performing treatment strategy produced a 95% reduction in erodibility and a five-fold increase in critical shear stress relative to untreated sand. These findings were confirmed by scanning electronic microscopy and calcium carbonate titration tests. © ICE Publishing: All rights reserved.
引用
收藏
页码:112 / 122
页数:10
相关论文
共 36 条
[1]  
Achal V., Mukherjee A., Reddy M.S., Microbial concrete: Way to enhance the durability of building structures, Journal of Materials in Civil Engineering, 23, 6, pp. 730-734, (2010)
[2]  
Al Qabany A., Soga K., Santamarina C., Factors affecting efficiency of microbially induced calcite precipitation, Geotechnical and Geoenvironmental Engineering, 138, 8, pp. 992-1001, (2012)
[3]  
Al-Thawadi S.M., High Strength In-Situ Biocementation of Soil by Calcite Precipitating Locally Isolated Ureolytic Bacteria, (2008)
[4]  
Aminpour M., O'Kelly B.C., Applications of biopolymers in dam construction and operation activities, International Dam World Conference, Lisbon, Portugal, 1, pp. 937-946, (2015)
[5]  
Bang S.S., Galinat J.K., Ramakrishnan V., Calcite precipitation induced by polyurethane-immobilized Bacillus pasteurii, Enzyme and Microbial Technology, 28, 4-5, pp. 404-409, (2001)
[6]  
Briaud J.L., Ting F., Chen H.C., Et al., SRICOS: Prediction of scour rate in cohesive soils at bridge piers, Geotechnical and Geoenvironmental Engineering, 125, 4, pp. 237-246, (1999)
[7]  
Briaud J.L., Ting F., Chen H.C., Et al., Erosion function apparatus for scour rate predictions, Geotechnical and Geoenvironmental Engineering, 127, 2, pp. 105-113, (2001)
[8]  
Cheng L., Cord-Ruwisch R.F., In situ soil cementation with ureolytic bacteria by surface percolation, Ecological Engineering, 42, pp. 64-72, (2012)
[9]  
Chou C.W., Seagren E.A., Aydilek A.H., Lai M., Biocalcification of sand through ureolysis, Geotechnical and Geoenvironmental Engineering, 137, 12, pp. 1179-1189, (2011)
[10]  
Defarge C., Trichet J., Jaunet A.-M., Et al., Texture of microbial sediments revealed by cryo-scanning electron microscopy, Sedimentary Research, 66, 5, pp. 935-947, (1996)