• Bulletin of the Chinese Ceramic Society
  • Vol. 41, Issue 2, 740 (2022)
XIE Shenhao1、*, JIA Guanhua2, CUI Juanling1, and LI Zhu1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: Cite this Article
    XIE Shenhao, JIA Guanhua, CUI Juanling, LI Zhu. Compressive Strength of Unburned Microbial Municipal Solid Waste Incineration Fly Ash Brick[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(2): 740 Copy Citation Text show less
    References

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    [3] QUINA M J, BONTEMPI E, BOGUSH A, et al. Technologies for the management of MSW incineration ashes from gas cleaning: new perspectives on recovery of secondary raw materials and circular economy[J]. Science of the Total Environment, 2018, 635: 526-542.

    [4] LI J T, ZENG M, JI W X. Characteristics of the cement-solidified municipal solid waste incineration fly ash[J]. Environmental Science and Pollution Research, 2018, 25(36): 36736-36744.

    [5] TANG Q, LIU Y, GU F, et al. Solidification/stabilization of fly ash from a municipal solid waste incineration facility using Portland cement[J]. Advances in Materials Science and Engineering, 2016, 2016: 1-10.

    [6] LUAN J D, CHAI M Y, LI R D, et al. The mineral phase evolution behaviour in the production of glass-ceramics from municipal solid waste incineration fly ash by melting technology[J]. Environmental Technology, 2016, 37(8): 1036-1044.

    [7] XUE Y, LIU X M. Detoxification, solidification and recycling of municipal solid waste incineration fly ash: a review[J]. Chemical Engineering Journal, 2021, 420: 130349.

    [10] WANG J Y, VANDEVYVERE B, VANHESSCHE S, et al. Microbial carbonate precipitation for the improvement of quality of recycled aggregates[J]. Journal of Cleaner Production, 2017, 156: 355-366.

    [11] WILLIAMS S L, KIRISITS M J, FERRON R D. Optimization of growth medium for Sporosarcina pasteurii in bio-based cement pastes to mitigate delay in hydration kinetics[J]. Journal of Industrial Microbiology & Biotechnology, 2016, 43(4): 567-575.

    [13] ZHANG J G, LIU Y Z, FENG T, et al. Immobilizing bacteria in expanded perlite for the crack self-healing in concrete[J]. Construction and Building Materials, 2017, 148: 610-617.

    [14] KHADIM H J, AMMAR S H, EBRAHIM S E. Biomineralization based remediation of cadmium and nickel contaminated wastewater by ureolytic bacteria isolated from barn horses soil[J]. Environmental Technology & Innovation, 2019, 14: 100315.

    [15] KANG C H, HAN S H, SHIN Y, et al. Bioremediation of Cd by microbially induced calcite precipitation[J]. Applied Biochemistry and Biotechnology, 2014, 172(6): 2907-2915.

    [18] CHEN P, ZHENG H, XU H, et al. Microbial induced solidification and stabilization of municipal solid waste incineration fly ash with high alkalinity and heavy metal toxicity[J]. PLoS One, 2019, 14(10): e0223900.

    [21] CHEN Z L, LU S Y, TANG M H, et al. Mechanical activation of fly ash from MSWI for utilization in cementitious materials[J]. Waste Management, 2019, 88: 182-190.

    [22] XU P, ZHAO Q L, QIU W, et al. Microstructure and strength of alkali-activated bricks containing municipal solid waste incineration (MSWI) fly ash developed as construction materials[J]. Sustainability, 2019, 11(5): 1283.

    XIE Shenhao, JIA Guanhua, CUI Juanling, LI Zhu. Compressive Strength of Unburned Microbial Municipal Solid Waste Incineration Fly Ash Brick[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(2): 740
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