• Bulletin of the Chinese Ceramic Society
  • Vol. 42, Issue 4, 1363 (2023)
ZHANG Xianwei1,2,*, GAO Yonghong1, WANG Ping2, LI Jiangshan2..., LIU Shiyu1,2, LANG Lei2 and LEI Xuewen1|Show fewer author(s)
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    ZHANG Xianwei, GAO Yonghong, WANG Ping, LI Jiangshan, LIU Shiyu, LANG Lei, LEI Xuewen. Experimental Research on Synergistic Preparation of Road Base Material by Electrolytic Manganese Residue-Municipal Solid Waste Incineration Bottom Ash[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(4): 1363 Copy Citation Text show less
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    [2] WANG D Q, WANG Q, XUE J F. Reuse of hazardous electrolytic Manganese residue: detailed leaching characterization and novel application as a cementitious material[J]. Resources, Conservation and Recycling, 2020, 154: 104645.

    [3] SHU J C, WU H P, LIU R L, et al. Simultaneous stabilization/solidification of Mn2+ and NH4+-N from electrolytic manganese residue using MgO and different phosphate resource[J]. Ecotoxicology and Environmental Safety, 2018, 148: 220-227.

    [4] SHU J C, LI B, CHEN M J, et al. An innovative method for Manganese (Mn2+) and ammonia nitrogen (NH4+-N) stabilization/solidification in electrolytic manganese residue by basic burning raw material[J]. Chemosphere, 2020, 253: 126896.

    [5] ZHOU Y X. Reusing electrolytic manganese residue as an activator: the effect of calcination on its mineralogy and activity[J]. Construction and Building Materials, 2021, 294: 123533.

    [8] ZHANG Y L, LIU X M, XU Y T, et al. Preparation and characterization of cement treated road base material utilizing electrolytic manganese residue[J]. Journal of Cleaner Production, 2019, 232: 980-992.

    [9] ZHANG Y L, LIU X M, XU Y T, et al. Preparation of road base material by utilizing electrolytic Manganese residue based on Si-Al structure: mechanical properties and Mn2+ stabilization/solidification characterization[J]. Journal of Hazardous Materials, 2020, 390: 122188.

    [10] MALDONADO-ALAMEDA A, GIRO-PALOMA J, SVOBODOVA-SEDLACKOVA A, et al. Municipal solid waste incineration bottom ash as alkali-activated cement precursor depending on particle size[J]. Journal of Cleaner Production, 2020, 242: 118443.

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    [15] HUBER F, BLASENBAUER D, ASCHENBRENNER P, et al. Chemical composition and leachability of differently sized material fractions of municipal solid waste incineration bottom ash[J]. Waste Management, 2019, 95: 593-603.

    [18] LIU X M, ZHAO X B, YIN H F, et al. Intermediate-calcium based cementitious materials prepared by MSWI fly ash and other solid wastes: hydration characteristics and heavy metals solidification behavior[J]. Journal of Hazardous Materials, 2018, 349: 262-271.

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    [24] ZHANG Y L, LIU X M, XU Y T, et al. Synergic effects of electrolytic manganese residue-red mud-carbide slag on the road base strength and durability properties[J]. Construction and Building Materials, 2019, 220: 364-374.

    [27] LI Y, LIU X M, LI Z P, et al. Preparation, characterization and application of red mud, fly ash and desulfurized gypsum based eco-friendly road base materials[J]. Journal of Cleaner Production, 2021, 284: 124777.

    [30] LAN J R, SUN Y, TIAN H, et al. Electrolytic manganese residue-based cement for manganese ore pit backfilling: performance and mechanism[J]. Journal of Hazardous Materials, 2021, 411: 124941.

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    ZHANG Xianwei, GAO Yonghong, WANG Ping, LI Jiangshan, LIU Shiyu, LANG Lei, LEI Xuewen. Experimental Research on Synergistic Preparation of Road Base Material by Electrolytic Manganese Residue-Municipal Solid Waste Incineration Bottom Ash[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(4): 1363
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