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Research Article

Influence of the Grouting Parameters on Microbially Induced Carbonate Precipitation for Soil Stabilization

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Pages 755-767 | Received 29 Nov 2020, Accepted 16 Jun 2021, Published online: 10 Aug 2021

References

  • Aamir M, Abdelmalek B, Gates WP. 2018. Improvement of coarse sand engineering properties by microbially induced calcite precipitation. Geomicrobiol J 35(10):887–897.
  • Al Qabany A, Soga K, Santamarina C. 2012. Factors affecting efficiency of microbially induced calcite precipitation. J Geotech Geoenviron Eng 138(8):992–1001.
  • Al-Thawadi S. 2008. High strength in-situ biocementation of soil by calcite precipitating locally isolated ureolytic bacteria. Doctoral dissertation, Murdoch University, Australia.
  • Al-Thawadi S, Cord-Ruwisch R, Bououdina M. 2012. Consolidation of sand particles by nanoparticles of calcite after concentrating ureolytic bacteria. Int J Nanotechnol 4(1):28–36.
  • Barkouki TH, Martinez BC, Mortensen BM, Weathers TS, De Jong JD, Ginn TR, Spycher NF, Smith RW, Fujita Y. 2011. Forward and inverse bio-geochemical modeling of microbially induced calcite precipitation in half-meter column experiments. Transp Porous Med 90(1):23–39.
  • Bradford SA, Simunek J, Walker SL. 2006. Transport and straining of E. coli O157:H7 in saturated porous media. Water Resour Res 42(12):1–12.
  • Cheng L, Shahin M, Mujah D. 2017. Influence of key environmental conditions on microbially induced cementation for soil stabilization. J Geotech Geoenviron Eng 143(1):04016083.
  • Choi SG, Park SS, Wu S, Chu J. 2017. Methods for calcium carbonate content measurement of biocemented soils. J Mater Civ Eng 29(11):06017015.
  • Chou CW, Seagren EA, Aydilek AH, Lai M. 2011. Biocalcification of sand through ureolysis. J Geotech Geoenviron Eng 137(12):1179–1189.
  • Chu J, Ivanov V, Naeimi M, Stabnikov V, Liu HL. 2014. Optimization of calcium-based bioclogging and biocementation of sand. Acta Geotech 9(2):277–285.
  • Chu J, Stabnikov V, Ivanov V. 2012. Microbially induced calcium carbonate precipitation on surface or in the bulk of soil. Geomicrobiol J 29(6):544–549.
  • Cui MJ, Zheng JJ, Zhang RJ, Lai HJ, Zhang J. 2017. Influence of cementation level on the strength behaviour of biocemented sand. Acta Geotech 12(5):971–986.
  • Dejong JT, Fritzges MB, Nüsslein K. 2006. Microbially induced cementation to control sand response to undrained shear. J Geotech Geoenviron Eng 132(11):1381–1392.
  • Dejong JT, Mortensen BM, Martinez BM, Nelson DC. 2010. Bio-mediated soil improvement. Ecol Eng 36(2):197–210.
  • Dhami NK, Reddy MS, Mukherjee A. 2013. Biomineralization of calcium carbonate polymorphs by the bacterial strains isolated from calcareous sites. J Microbiol Biotechnol 23(5):707–714.
  • Ebigbo A, Phillips A, Gerlach R, Helmig R, Cunningham AB, Class H, Spangler LH. 2012. Darcy-scale modeling of microbially induced carbonate mineral precipitation in sand columns. Water Resour Res 48(7):W07519.
  • Fang XW, Yang Y, Chen Z, Liu HL, Xiao Y, Shen CN. 2020. Influence of fiber content and length on engineering properties of MICP-treated coral sand. Geomicrobiol J 37(6):582–594.
  • Hammes F, Verstraete W. 2002. Key roles of pH and calcium metabolism in microbial carbonate precipitation. Rev Environ Sci Biotechnol 1(1):3–7.
  • Hommel J, Lauchnor E, Gerlach R, Cunningham AB, Ebigbo A, Helmig R, Class H. 2016. Investigating the influence of the initial biomass distribution and injection strategies on biofilm-mediated calcite precipitation in porous media. Transp Porous Med 114(2):557–579.
  • Hommel J, Lauchnor E, Phillips A, Gerlach R, Cunningham AB, Helmig R, Ebigbo A, Class H. 2015. A revised model for microbially induced calcite precipitation: improvements and new insights based on recent experiments. Water Resour Res 51(5):3695–3715.
  • Jiang NJ, Tang CS, Yin LY, Xie YH, Shi B. 2019. Applicability of microbial calcification method for sandy-slope surface erosion control. J Mater Civ Eng 31(11):04019250.
  • Kim JS, Lee IM, Jang JH, Choi H. 2009. Groutability of cementbased grout with consideration of viscosity and penetration phenomenon. Int J Numer Anal Meth Geomech 33(16):1771–1797.
  • Li C, Yao D, Liu S, Zhou T, Bai S, Gao Y, Li L. 2018. Improvement of geomechanical properties of bio-remediated aeolian sand. Geomicrobiol J 35(2):132–140.
  • Liu L, Liu H, Xiao Y, Chu J, Xiao P, Wang Y. 2018. Biocementation of calcareous sand using soluble calcium derived from calcareous sand. Bull Eng Geol Environ 77(4):1781–1791.
  • Mahawish A, Bouazza A, Gates WP. 2018. Effect of particle size distribution on the bio-cementation of coarse aggregates. Acta Geotech 13 (4):1019–1025.
  • Martinez BC, Dejong JT, Ginn TR, Montoya BM, Barkouki TH, Hunt C, Tanyu B, Major D. 2013. Experimental optimization of microbial-induced carbonate precipitation for soil improvement. J Geotech Geoenviron Eng 139(4):587–598.
  • Marzin T, Desvages B, Creppy A, Lépine L, Esnault-Filet A, Auradou H. 2020. Using Microfluidic Set-Up to Determine the Adsorption Rate of Sporosarcina pasteurii Bacteria on Sandstone. Transp Porous Med 132: 283–297.
  • Mitchell JK, Santamarina JC. 2005. Biological considerations in geotechnical engineering. J Geotech Geoenviron Eng 131(10):1222–1233.
  • Montoya BM, Dejong JT. 2015. Stress-strain behavior of sands cemented by microbially induced calcite precipitation. J Geotech Geoenviron Eng 141(6):04015019.
  • Mortensen BM, Haber MJ, Dejong JT, Caslake LF, Nelson DC. 2011. Effects of environmental factors on microbial induced calcium carbonate precipitation. J Appl Microbiol 111(2):338–349.
  • Mujah D, Cheng L, Shahin MA. 2019. Microstructural and geomechanical study on biocemented sand for optimization of MICP process. J Mater Civ Eng 31(4):04019025.
  • Pan XH, Chu J, Yang Y, Cheng L. 2020. A new biogrouting method for fine to coarse sand. Acta Geotech 15(1):1–16.
  • Park SS, Le TT, Nong Z, Moon HD, Lee DE. 2020. Chemically induced calcium carbonate precipitation for improving strength of sand. J Mater Civ Eng 32(9):04020238.
  • Qabany AA, Soga K. 2013. Effect of chemical treatment used in MICP on engineering properties of cemented soils. Geotechnique 63(4):331–339.
  • Ramachandran SK, Ramakrishnan V, Bang SS. 2001. Remediation of concrete using microorganisms. ACI Mater J 98:3–9.
  • Ruyt MVD, Zon WVD. 2009. Biological in situ reinforcement of sand in near-shore areas. Geotech Eng 162(2):81–83.
  • Saada Z, Canou J, Dormieux L, Dupla J-C. 2006. Evaluation of elementary filtration properties of cement grout injected in a sand. Can Geotech J 43(12):1273–1289.
  • Sasaki T, Kuwano R. 2016. Undrained cyclic triaxial testing on sand with non-plastic fines content cemented with microbially induced CaCO3. Soils Found 56(3):485–495.
  • Tian ZF, Tang XW, Xiu ZL, Xue ZJ. 2020. Effect of different biological solutions on microbially induced carbonate precipitation and reinforcement of sand. Mar Georesour Geotec 38(4):450–460.
  • Tobler D, Cuthbert M, Phoenix V. 2014. Transport of Sporosarcina pasteurii in sandstone and its significance for subsurface engineering technologies. Appl Geochem 42:38–44.
  • Van Paassen LA, Ghose R, van der Linden TJM, van der Star WRL, van Loosdrecht MCM. 2010. Quantifying biomediated ground improvement by ureolysis: large-scale biogrout experiment. J Geotech Geoenviron Eng 136(12):1721–1728.
  • Wei SH, Cui HP, Jiang ZL, Liu H, He H, Fang NQ. 2015. Biomineralization processes of calcite induced by bacteria isolated from marine sediments. Braz J Microbiol 46 (2):455–464.
  • Whiffin VS, van Paassen, LA, Harkes, MP. 2007. Microbial carbonate precipitation as a soil improvement technique. Geomicrobiol J 24(5):417–423.
  • Wu S, Li B, Chu J. 2019. Large scale model tests of biogrouting for sand and rock. Proceedings of the Institution of Civil Engineers Ground Improvement 2019, p1–30.
  • Xiao P, Liu H, Xiao Y, Stuedlein AW, Evans TM. 2017. Liquefaction resistance of bio-cemented calcareous sand. Soil Dyn Earthq Eng 4(1):28–36.
  • Zhao Y, Fan C, Ge F, Cheng X, Liu P. 2020. Enhancing strength of MICP-treated sand with scrap of activated carbon-fiber felt. J Mater Civ Eng 32(4):04020061.
  • Zheng J, Wu C, Song Y, Cui M. 2020. Study of the strength test and strength dispersion of MICP-treated calcareous sand. J Harbin Eng Univ 41(02):250–256.

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