• Bulletin of the Chinese Ceramic Society
  • Vol. 43, Issue 8, 2737 (2024)
WEI Shuangni1,2, WANG Yinghui1,3, LAI Junxiang2, WEI Chaoshuai1..., HUANG Aiguo1, YAO Shengxun2, ZHAI Xiaofan4 and SUN Congtao4,*|Show fewer author(s)
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    WEI Shuangni, WANG Yinghui, LAI Junxiang, WEI Chaoshuai, HUANG Aiguo, YAO Shengxun, ZHAI Xiaofan, SUN Congtao. Research Developments on Microbial Self-Healing Concrete[J]. Bulletin of the Chinese Ceramic Society, 2024, 43(8): 2737 Copy Citation Text show less
    References

    [5] FRONCZYK J, JANEK M, SZELG M, et al. Immobilization of (bio-) healing agents for self-healing concrete technology: does it really ensure long-term performance?[J]. Composites Part B: Engineering, 2023, 266: 110997.

    [8] WANG J Y, SOENS H, VERSTRAETE W, et al. Self-healing concrete by use of microencapsulated bacterial spores[J]. Cement and Concrete Research, 2014, 56: 139-152.

    [10] WANG X Z, XU J, WANG Z P, et al. Use of recycled concrete aggregates as carriers for self-healing of concrete cracks by bacteria with high urease activity[J]. Construction and Building Materials, 2022, 337: 127581.

    [11] XU J, TANG Y H, WANG X Z, et al. Application of ureolysis-based microbial CaCO3 precipitation in self-healing of concrete and inhibition of reinforcement corrosion[J]. Construction and Building Materials, 2020, 265: 120364.

    [12] SU Y L, ZHENG T W, QIAN C X. Application potential of Bacillus megaterium encapsulated by low alkaline sulphoaluminate cement in self-healing concrete[J]. Construction and Building Materials, 2021, 273: 121740.

    [13] AMIRI Y, HASSANINASAB S, CHEHRI K, et al. Investigating the effect of adding bacillus bacteria and nano-clay on cement mortar properties[J]. Case Studies in Construction Materials, 2022, 17: e01167.

    [14] SHAHEEN N, KHUSHNOOD R A, KHALIQ W, et al. Synthesis and characterization of bio-immobilized nano/micro inert and reactive additives for feasibility investigation in self-healing concrete[J]. Construction and Building Materials, 2019, 226: 492-506.

    [15] LUO M, QIAN C X, LI R Y. Factors affecting crack repairing capacity of bacteria-based self-healing concrete[J]. Construction and Building Materials, 2015, 87: 1-7.

    [16] DU X Q, SI Z, QI D Y, et al. Optimization of spore production and activation conditions of concrete crack healing bacteria and research on crack repair effect[J]. Construction and Building Materials, 2023, 394: 132140.

    [18] QIAN C X, CHEN H C, REN L F, et al. Self-healing of early age cracks in cement-based materials by mineralization of carbonic anhydrase microorganism[J]. Frontiers in Microbiology, 2015, 6: 1225.

    [19] LI Z F, LIU A Z, SUN C H, et al. Biomineralization Process of CaCO3 precipitation induced by bacillus mucilaginous and its potential application in microbial self-healing concrete[J]. Applied Biochemistry and Biotechnology, 2024, 196(4): 1896-1920.

    [20] ZHENG T W, QIAN C X. Influencing factors and formation mechanism of CaCO3 precipitation induced by microbial carbonic anhydrase[J]. Process Biochemistry, 2020, 91: 271-281.

    [21] ERSAN Y C, GRUYAERT E, LOUIS G, et al. Self-protected nitrate reducing culture for intrinsic repair of concrete cracks[J]. Frontiers in Microbiology, 2015, 6: 1228.

    [22] ERSAN Y C, DE BELIE N, BOON N. Microbially induced CaCO3 precipitation through denitrification: an optimization study in minimal nutrient environment[J]. Biochemical Engineering Journal, 2015, 101: 108-118.

    [23] SONMEZ M, ERSAN Y C. Production and compatibility assessment of denitrifying biogranules tailored for self-healing concrete applications[J]. Cement and Concrete Composites, 2022, 126: 104344.

    [24] LUO J, CHEN X B, CRUMP J, et al. Interactions of fungi with concrete: significant importance for bio-based self-healing concrete[J]. Construction and Building Materials, 2018, 164: 275-285.

    [35] ZHU Y P, WU M, GAO N Y, et al. Removal of antimonate from wastewater by dissimilatory bacterial reduction: role of the coexisting sulfate[J]. Journal of Hazardous Materials, 2018, 341: 36-45.

    [36] ERSAN Y C, VERBRUGGEN H, DE GRAEVE I, et al. Nitrate reducing CaCO3 precipitating bacteria survive in mortar and inhibit steel corrosion[J]. Cement and Concrete Research, 2016, 83: 19-30.

    [37] VAN PAASSEN L A, DAZA C M, STAAL M, et al. Potential soil reinforcement by biological denitrification[J]. Ecological Engineering, 2010, 36(2): 168-175.

    [38] WIKTOR V, JONKERS H M. Quantification of crack-healing in novel bacteria-based self-healing concrete[J]. Cement and Concrete Composites, 2011, 33(7): 763-770.

    [42] ZHANG X, JIN Z K, LI M, et al. Effects of carrier on the performance of bacteria-based self-healing concrete[J]. Construction and Building Materials, 2021, 305: 124771.

    [44] YUAN L, LIANG G Z, XIE J Q, et al. Synthesis and characterization of microencapsulated dicyclopentadiene with melamine-formaldehyde resins[J]. Colloid and Polymer Science, 2007, 285(7): 781-791.

    [45] WANG J Y, MIGNON A, SNOECK D, et al. Application of modified-alginate encapsulated carbonate producing bacteria in concrete: a promising strategy for crack self-healing[J]. Frontiers in Microbiology, 2015, 6: 1088.

    [47] KHUSHNOOD R A, ALI QURESHI Z, SHAHEEN N, et al. Bio-mineralized self-healing recycled aggregate concrete for sustainable infrastructure[J]. Science of the Total Environment, 2020, 703: 135007.

    [48] XIANG J C, SONG Y Y, SHU H, et al. Expanded polystyrene (EPS) particles as a carrier to improve the growth of microorganisms in concrete[J]. Journal of Cleaner Production, 2022, 369: 133363.

    [49] XU J, WANG X Z. Self-healing of concrete cracks by use of bacteria-containing low alkali cementitious material[J]. Construction and Building Materials, 2018, 167: 1-14.

    [50] KHALIQ W, EHSAN M B. Crack healing in concrete using various bio influenced self-healing techniques[J]. Construction and Building Materials, 2016, 102: 349-357.

    [51] MUYNCK W, COX K, DE BELIE N, et al. Bacterial carbonate precipitation as an alternative surface treatment for concrete[J]. Construction and Building Materials, 2008, 22(5): 875-885.

    [54] LIU C, XING L, LIU H W, et al. Experimental on repair performance and complete stress-strain curve of self-healing recycled concrete under uniaxial loading[J]. Construction and Building Materials, 2021, 285: 122900.

    [55] JIANG L, JIA G H, WANG Y Z, et al. Optimization of sporulation and germination conditions of functional bacteria for concrete crack-healing and evaluation of their repair capacity[J]. ACS Applied Materials & Interfaces, 2020, 12(9): 10938-10948.

    [56] YANG D F, XU G B, DUAN Y, et al. Self-healing cement composites based on bleaching earth immobilized bacteria[J]. Journal of Cleaner Production, 2022, 358: 132045.

    [57] SILVA F B, DE BELIE N, BOON N, et al. Production of non-axenic ureolytic spores for self-healing concrete applications[J]. Construction and Building Materials, 2015, 93: 1034-1041.

    [58] ACHAL V, MUKERJEE A, SUDHAKARA REDDY M. Biogenic treatment improves the durability and remediates the cracks of concrete structures[J]. Construction and Building Materials, 2013, 48: 1-5.

    [59] TZIVILOGLOU E, WIKTOR V, JONKERS H M, et al. Selection of nutrient used in biogenic healing agent for cementitious materials[J]. Frontiers in Materials, 2017, 4: 15.

    [60] NGUYEN T H, GHORBEL E, FARES H, et al. Bacterial self-healing of concrete and durability assessment[J]. Cement and Concrete Composites, 2019, 104: 103340.

    [61] BHASKAR S, ANWAR HOSSAIN K M, LACHEMI M, et al. Effect of self-healing on strength and durability of zeolite-immobilized bacterial cementitious mortar composites[J]. Cement and Concrete Composites, 2017, 82: 23-33.

    [62] MUYNCK W, DEBROUWER D, DE BELIE N, et al. Bacterial carbonate precipitation improves the durability of cementitious materials[J]. Cement and Concrete Research, 2008, 38(7): 1005-1014.

    [65] TITTELBOOM K, DE BELIE N, DE MUYNCK W, et al. Use of bacteria to repair cracks in concrete[J]. Cement and Concrete Research, 2010, 40(1): 157-166.

    [66] SIDDIQUE R, SINGH K, KUNAL, et al. Properties of bacterial rice husk ash concrete[J]. Construction and Building Materials, 2016, 121: 112-119.

    WEI Shuangni, WANG Yinghui, LAI Junxiang, WEI Chaoshuai, HUANG Aiguo, YAO Shengxun, ZHAI Xiaofan, SUN Congtao. Research Developments on Microbial Self-Healing Concrete[J]. Bulletin of the Chinese Ceramic Society, 2024, 43(8): 2737
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