Earth stabilisation via carbonate precipitation by plant-derived urease for building applications
Tài liệu tham khảo
Jaquin, 2009, The strength of unstabilised rammed earth materials, Géotechnique, 59, 10.1680/geot.2007.00129
Gallipoli, 2017, A geotechnical perspective of raw earth building, Acta Geotech, 12, 463, 10.1007/s11440-016-0521-1
Walker P. Strength and durability testing of earth blocks. In: Proceedings of the 6th International Seminar on Structural Masonry for Developing Countries. 2000;110–118.
Jayasinghe, 2007, Compressive strength characteristics of cement stabilized rammed earth walls, Constr Build Mater, 21, 1971, 10.1016/j.conbuildmat.2006.05.049
Lucas, 1918, Ueber das Zeitgesetz des kapillaren Aufstiegs von Flüssigkeiten, Colloid Polym Sci, 23, 15
Washburn, 1921, The dynamics of capillary flow, Phys Rev, 17, 273, 10.1103/PhysRev.17.273
Bui, 2009, Durability of rammed earth walls exposed for 20 years to natural weathering, Build Environ, 44, 912, 10.1016/j.buildenv.2008.07.001
Bui, 2014, Effect of moisture content on the mechanical characteristics of rammed earth, Constr Build Mater, 54, 163, 10.1016/j.conbuildmat.2013.12.067
Bruno, 2016
Price, 2011
Stocks-Fischer, 1999, Microbiological precipitation of CaCO3, Soil Biol Biochem, 31, 1563, 10.1016/S0038-0717(99)00082-6
Barkay, 2001, Metal and radionuclide bioremediation: issues, considerations and potentials, Curr Opin Microbiol, 4, 318, 10.1016/S1369-5274(00)00210-1
DeJong, 2006, Microbially induced cementation to control sand response to undrained shear, J Geotech Geoenviron Eng, 132, 1381, 10.1061/(ASCE)1090-0241(2006)132:11(1381)
Whiffin, 2007, Microbial carbonate precipitation as a soil improvement technique, Geomicrobiol J, 24, 417, 10.1080/01490450701436505
De Muynck, 2010, Microbial carbonate precipitation in construction materials: a review, Ecol Eng, 36, 118, 10.1016/j.ecoleng.2009.02.006
Dilrukshi RAN, Kawasaki S. Plant-derived urease induced sand cementation used in geotechnical engineering applications. In: International Conference on Geomechanics, Geo-Energy and Geo-Resources-IC3G; 2016:28–29.
Ismail, 2002, Cementation of porous materials using calcite, Géotechnique, 52, 313, 10.1680/geot.2002.52.5.313
Whiffin, 2004
Mitchell, 2005, Biological considerations in geotechnical engineering, J Geotech Geoenviron Eng, 131, 1222, 10.1061/(ASCE)1090-0241(2005)131:10(1222)
Van Paassen, 2011, Bio-mediated ground improvement: from laboratory experiment to pilot applications, 4099
Ng, 2012, An overview of the factors affecting microbial-induced calcite precipitation and its potential application in soil improvement, World Acad Sci Eng Technol, 62, 723
Van Paassen, 2010, Quantifying biomediated ground improvement by ureolysis: large-scale biogrout experiment, J Geotech Eoenviron Eng, 136, 1721, 10.1061/(ASCE)GT.1943-5606.0000382
Al Qabany, 2013, Effect of chemical treatment used in MICP on engineering properties of cemented soils, Géotechnique, 63, 331, 10.1680/geot.SIP13.P.022
Cheng, 2013, Cementation of sand soil by microbially induced calcite precipitation at various degrees of saturation, Can Geotech J, 50, 81, 10.1139/cgj-2012-0023
Cheng, 2014, Upscaling effects of soil improvement by microbially induced calcite precipitation by surface percolation, Geomicrobiol J, 31, 396, 10.1080/01490451.2013.836579
El Mountassir, 2014, Hydrodynamic coupling in microbially mediated fracture mineralization: Formation of self-organized groundwater flow channels, Water Resour Res, 50, 1, 10.1002/2013WR013578
Martirena, 2014, Microorganism - based bioplasticizer for cementitious materials, Constr Build Mater, 60, 91, 10.1016/j.conbuildmat.2014.02.063
Gomez, 2015, Field-scale bio-cementation tests to improve sands, Proc Inst Civil Eng-Ground Improv, 168, 1
Choi, 2016, Biocementation for sand using an eggshell as calcium source, J Geotech Geoenviron Eng, 142, 2, 10.1061/(ASCE)GT.1943-5606.0001534
Terzis D, Laloui L. On the application of microbially induced calcite precipitation for soils: a multiscale study. In: Advances in Laboratory Testing and Modelling of Soils and Shales; 2017:388–394. http://dx.doi.org/10.1007/978-3-319-52773-4_46.
Terzis, 2018, 3-D micro-architecture and mechanical response of soil cemented via microbial-induced calcite precipitation, Sci Rep, 8, 1416, 10.1038/s41598-018-19895-w
Morales, 2015, Feasibility of a soft biological improvement of natural soils used in compacted linear earth construction, Acta Geotech, 10, 157, 10.1007/s11440-014-0344-x
Nemati, 2003, Modification of porous media permeability, using calcium carbonate produced enzymatically in situ, Enzyme Microbial Technol, 33, 635, 10.1016/S0141-0229(03)00191-1
Yasuhara, 2012, Experiments and predictions of physical properties of sand cemented by enzymetically-induced carbonate precipitation, Soil Found, 52, 539, 10.1016/j.sandf.2012.05.011
Neupane, 2013, Applicability of enzymatic calcium carbonate precipitation as a soil-strengthening technique, J Geotech Geoenviron Eng, 139, 2201, 10.1061/(ASCE)GT.1943-5606.0000959
Park, 2014, Effect of plant-induced calcite precipitation on the strength of sand, J Mater Civil Eng, 26, 10.1061/(ASCE)MT.1943-5533.0001029
Nam, 2015, Calcite precipitation by ureolytic plant (Canavalia ensiformis) extracts as effective biomaterials, KSCE J Civil Eng, 19, 1620, 10.1007/s12205-014-0558-3
Kavazanjian E, Hamdan N. Enzyme induced carbonate precipitation (EICP) columns for ground improvement. In: IFCEE; 2015: 2252–2261. http://dx.doi.org/10.1061/9780784479087.209.
Carmona, 2016, Biostabilization of a sandy soil using enzymatic calcium carbonate precipitation, Proc Eng, 143, 10.1016/j.proeng.2016.06.144
Kavazanjian Jr, 2017, Bio-inspired soil improvement using EICP soil columns and soil nails, 13
Pettit, 1976, Soil urease: Activity stability and kinetic properties, Soil Biol Biochem, 8, 479, 10.1016/0038-0717(76)90089-4
Larsen, 2008, Plugging of fractures in chalk reservoirs by enzyme-induced calcium carbonate precipitation, Proc SPE Prod Oper Soc Petrol Eng, 23, 478
Dilrukshi, 2018, Soil improvement using plant-derived urease-induced calcium carbonate precipitation, Soil Found, 58, 894, 10.1016/j.sandf.2018.04.003
Javadi N, Khodadadi H, Hamdan N, Kavazanjian Jr E. EICP treatment of soil by using urease enzyme extracted from watermelon seeds. In: IFCEE 2018; 2018:115–124. http://dx.doi.org/10.1061/9780784481592.012.
Khodadadi Tirkolaei, 2020, Crude urease extract for biocementation, J Mater Civil Eng, 32
Hammes, 2002, Key roles of pH and calcium metabolism in microbial carbonate precipitation, Rev Environ Sci Biotechnol, 1, 3, 10.1023/A:1015135629155
Kile, 2000, An assessment of calcite crystal growth mechanisms based on crystal size distributions, Geochim Cosmochim Acta, 64, 2937, 10.1016/S0016-7037(00)00394-X
Castanier, 1999, Ca-carbonates precipitation and limestone genesis-the micro-biogeologist point of view, Sediment Geol, 126, 9
Wei, 2003, Influence of polyvinylpyrrolidone on the precipitation of calcium carbonate and on the transformation of vaterite to calcite, J Cryst Growth, 250, 516, 10.1016/S0022-0248(02)02484-3
Shen, 2006, Oriented aggregation and novel phase transformation of vaterite controlled by the synergistic effect of calcium dodecyl sulfate and n-pentanol, J Phys Chem B, 110, 23148, 10.1021/jp064039n
Hua, 2007, Incorporation of chromate into calcium carbonate structure during coprecipitation, Water Air Soil Pollut, 179, 381, 10.1007/s11270-006-9242-7
De Yoreo, 2003, Principles of crystal nucleation and growth, Rev Mineral Geochem, 54, 57, 10.2113/0540057
Favre, 2009, Biocatalytic capture of CO2 with carbonic anhydrase and its transformation to solid carbonate, J Mol Catal B: Enzymatic, 60, 163, 10.1016/j.molcatb.2009.04.018
Gorospe, 2013, Effects of different calcium salts on calcium carbonate crystal formation by Sporosarcina pasteurii KCTC 3558, Biotechnol Bioprocess Eng, 18, 903, 10.1007/s12257-013-0030-0
Tai, 1998, Polymorphism of CaCO3 precipitated in a constant-composition environment, AIChE J, 44, 1790, 10.1002/aic.690440810
Achal, 2014, Influence of calcium sources on microbially induced calcium carbonate precipitation by Bacillus sp. CR2, Appl Biochem Biotechnol, 173, 307, 10.1007/s12010-014-0842-1
Simatupang, 2017, Liquefaction resistance of sand remediated with carbonate precipitation at different degrees of saturation during curing, Soil Found, 57, 619, 10.1016/j.sandf.2017.04.003
Almajed, 2018, Baseline investigation on enzyme-induced calcium carbonate precipitation, J Geotechn Geoenviron Eng, 144, 10.1061/(ASCE)GT.1943-5606.0001973
Chandra A, Ravi K. Application of Enzyme Induced Carbonate Precipitation (EICP) to improve the shear strength of different type of soils. In: Indian Geotechnical Conference, Bengaluru; 2018.
Labana, 2005, A microcosm study on bioremediation of p-nitrophenol-contaminated soil using Arthrobacter protophormiae RKJ100, Appl Microbiol Biotechnol, 68, 417, 10.1007/s00253-005-1926-1
Rohy H, Arab M, Zeiada W, Omar M, Almajed A, Tahmaz A. One phase soil bio-cementation with EICP-soil mixing. In: Conference Proceedings of the 4th World Congress on Civil, Structural, and Environmental Engineering; 2019. http://dx.doi.org/10.11159/icgre19.164.
Cheng, 2018, Soil bio-cementation using a new one-phase low-pH injection method, Acta Geotech, 1
Neupane, 2015, Distribution of grout material within 1-m sand column in insitu calcite precipitation technique, Soil Found, 55, 1512, 10.1016/j.sandf.2015.10.015
Van Paassen, 2009
Illeová, 2003, Experimental modelling of thermal inactivation of urease, J Biotechnol, 105, 235, 10.1016/j.jbiotec.2003.07.005
Dhami, 2014, A synergistic role of bacterial urease and carbonic anhydrase in carbonate mineralization, Appl Biochem Biotechnol, 172, 2552, 10.1007/s12010-013-0694-0
Wu, 2017, Microbially induced calcium carbonate precipitation driven by ureolysis to enhance oil recovery, RSC Adv, 7, 37382, 10.1039/C7RA05748B
TERCRUSO. Caractérisation des briques de terre crue de Midi-Pyrénées. http://www.cercad.fr/IMG/pdf/tercruso_rapport_final_lmdc-2013-04-r120.pdf; 2013 Accessed 25.07.16.
AFNOR. XP 94-041 Soils: investigation and testing – Granulometric description – Wet sieving method. 1995.
AFNOR. NF 94-057 Soils: investigation and testing – Granulometric analysis – Hydrometer method. 1992.
AFNOR. XP P13-901 Compressed earth blocks for walls and partitions: definitions – Specifications – Test methods – Delivery acceptance conditions. 2001.
CRATerre-EAG, 1998
MOPT, 1992
AFNOR. NF 94-054 Soils: investigation and testing – Determination of particle density- Pycnometer method. 1991.
AFNOR. NF 94-051 Soils: Investigation and testing – Determination of Atterberg’s limits – Liquid limit test using Casagrande apparatus – Plastic limit test on rolled thread. 1993.
Houben, 1994
Skempton AW. The colloidal activity of clays. In: Proceedings of the Third International Conference on Soil Mechanics and Foundation Engineering. Vol. 1; 1953: 57–61.
Cuccurullo, 2019, Soil stabilization against water erosion via calcite precipitation by plant-derived urease, Vol. 40, 753
Harkes, 2010, Fixation and distribution of bacterial activity in sand to induce carbonate precipitation for ground reinforcement, Ecol Eng, 36, 112, 10.1016/j.ecoleng.2009.01.004
Cuccurullo A, Gallipoli D, Bruno AW, Augarde C, Hughes P, La Borderie C. Advances in the enzymatic stabilisation of soils. In: Proceedings of the XVII European Conference on Soil Mechanics and Geotechnical Engineering. 2019.
ISO 24353, 2008
DIN 18945. Earth blocks - Terms and definitions, requirements, test methods. 2013.
