Bulletin of the Chinese Ceramic Society, Volume. 44, Issue 4, 1386(2025)

Analysis of Performance and Environmental Effect of Electrolytic Manganese Residue-Based Green Concrete

WANG Fan1,2, LONG Guangcheng1、*, BAI Min1, and SHI Yingying1,3
Author Affiliations
  • 1School of Civil Engineering, Central South University, Changsha 410075, China
  • 2School of Resource Processing and Bioengineering, Central South University, Changsha 410083, China
  • 3School of Resources and Safety Engineering, Central South University, Changsha 410083, China
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    References(21)

    [4] [4] WANG F, LONG G C, MA K L, et al. Recyling manganese-rich electrolytic residues: a review[J]. Environmental Chemistry Letters, 2023, 21(4): 2251-2284.

    [8] [8] 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.

    [9] [9] WANG F, LONG G C, BAI M, et al. Application of electrolytic manganese residues in cement products through pozzolanic activity motivation and calcination[J]. Journal of Cleaner Production, 2022, 338: 130629.

    [10] [10] LIU X Y, REN Y Y, ZHANG Z Q, et al. Harmless treatment of electrolytic manganese residue: ammonia nitrogen recovery, preparation of struvite and nonsintered bricks[J]. Chemical Engineering Journal, 2023, 455: 140739.

    [12] [12] WANG F, LONG G C, BAI M, et al. Feasibility of low-carbon electrolytic manganese residue-based supplementary cementitious materials[J]. Science of The Total Environment, 2023, 883: 163672.

    [13] [13] WANG F, LONG G C, ZHOU J L. Deep insight into green remediation and hazard-free disposal of electrolytic manganese residue-based cementitious material[J]. Science of The Total Environment, 2023, 894: 165049.

    [16] [16] WANG D Q, FANG J R, WANG Q, et al. Utilizing desulphurized electrolytic-manganese residue as a mineral admixture: a feasibility study[J]. Cement and Concrete Composites, 2022, 134: 104822.

    [17] [17] 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.

    [18] [18] 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.

    [19] [19] HE W L, LI R, ZHANG Y, et al. Synergistic use of electrolytic manganese residue and barium slag to prepare belite- sulphoaluminate cement study[J]. Construction and Building Materials, 2022, 326: 126672.

    [20] [20] ZHAN X Y, WANG Y, WANG L A, et al. Migration, solidification/stabilization mechanism of heavy metal in lightweight ceramisite from co-sintering fly ash and electrolytic manganese residue[J]. Process Safety and Environmental Protection, 2023, 173: 485-494.

    [21] [21] 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.

    [22] [22] WANG F, LONG G C, ZHOU J L. Enhanced green remediation and refinement disposal of electrolytic manganese residue using air-jet milling and horizontal-shaking leaching[J]. Journal of Hazardous Materials, 2024, 465: 133419.

    [24] [24] WANG F, LONG G C, BAI M, et al. Cleaner and safer disposal of electrolytic manganese residues in cement-based materials using direct electric curing[J]. Journal of Cleaner Production, 2022, 356: 131842.

    [25] [25] BAI M, LONG G C, WANG F. Properties and microstructural characteristics of manganese tailing sand concrete[J]. Materials, 2022, 15(16): 5583.

    [27] [27] WANG F, LONG G C, BAI M, et al. A new perspective on Belite-ye’elimite-ferrite cement manufactured from electrolytic manganese residue: production, properties, and environmental analysis[J]. Cement and Concrete Research, 2023, 163: 107019.

    [31] [31] INTERNATIONAL A. Standard test method for fundamental transverse, longitudinal, and torsional resonant frequencies of concrete specimens: ASTM C215—19[S]. West Conshohocken, PA: ASTM International, 2019.

    [34] [34] LI M K, HE Z G, ZHONG H, et al. Multi-walled carbon nanotubes facilitated Roxarsone elimination in SR-AOPs by accelerating electron transfer in modified electrolytic manganese residue and forming surface activated-complexes[J]. Water Research, 2021, 200: 117266.

    [35] [35] SHI Y Y, LONG G C, WANG F, et al. Innovative co-treatment technology for effective disposal of electrolytic manganese residue[J]. Environmental Pollution, 2023, 335: 122234.

    [36] [36] SHI C J, QU B, PROVIS J L. Recent progress in low-carbon binders[J]. Cement and Concrete Research, 2019, 122: 227-250.

    [37] [37] SHAH I H, MILLER S A, JIANG D Q, et al. Cement substitution with secondary materials can reduce annual global CO2 emissions by up to 1.3 gigatons[J]. Nature Communications, 2022, 13(1): 5758.

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    WANG Fan, LONG Guangcheng, BAI Min, SHI Yingying. Analysis of Performance and Environmental Effect of Electrolytic Manganese Residue-Based Green Concrete[J]. Bulletin of the Chinese Ceramic Society, 2025, 44(4): 1386

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    Paper Information

    Received: Jan. 2, 2025

    Accepted: May. 26, 2025

    Published Online: May. 26, 2025

    The Author Email: LONG Guangcheng (longguangcheng@csu.edu.cn)

    DOI:10.16552/j.cnki.issn1001-1625.2025.0002

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