Bulletin of the Chinese Ceramic Society, Volume. 44, Issue 5, 1779(2025)
Effect of Solid Activator on One-Part Alkali-Activated Slag-Fly Ash Composite Cementitious Material
[1] [1] ZHANG Y Y, WANG L, CHEN L, et al. Treatment of municipal solid waste incineration fly ash: state-of-the-art technologies and future perspectives[J]. Journal of Hazardous Materials, 2021, 411: 125132.
[3] [3] GUO X L, ZHANG L Y, HUANG J B, et al. Detoxification and solidification of heavy metal of chromium using fly ash-based geopolymer with chemical agents[J]. Construction and Building Materials, 2017, 151: 394-404.
[4] [4] LAN T, MENG Y, JU T Y, et al. Synthesis and application of geopolymers from municipal waste incineration fly ash (MSWI FA) as raw ingredient: a review[J]. Resources, Conservation and Recycling, 2022, 182: 106308.
[5] [5] LIU J, HU L, TANG L P, et al. Utilisation of municipal solid waste incinerator (MSWI) fly ash with metakaolin for preparation of alkali-activated cementitious material[J]. Journal of Hazardous Materials, 2021, 402: 123451.
[6] [6] REN J, HU L, DONG Z J, et al. Effect of silica fume on the mechanical property and hydration characteristic of alkali-activated municipal solid waste incinerator (MSWI) fly ash[J]. Journal of Cleaner Production, 2021, 295: 126317.
[7] [7] FENG D L, WANG J, WANG Y X, et al. Alkali-activated geopolymer materials prepared from coal gangue and municipal solid waste incineration byproducts[J]. Journal of Building Engineering, 2023, 80: 108074.
[9] [9] NEMATOLLAHI B, SANJAYAN J, SHAIKH F U A. Synthesis of heat and ambient cured one-part geopolymer mixes with different grades of sodium silicate[J]. Ceramics International, 2015, 41(4): 5696-5704.
[10] [10] ALI SHAH S F, CHEN B, ODERJI S Y, et al. Comparative study on the effect of fiber type and content on the performance of one-part alkali-activated mortar[J]. Construction and Building Materials, 2020, 243: 118221.
[11] [11] KIM M S, JUN Y B, LEE C H, et al. Use of CaO as an activator for producing a price-competitive non-cement structural binder using ground granulated blast furnace slag[J]. Cement and Concrete Research, 2013, 54: 208-214.
[12] [12] ISHWARYA G, SINGH B, DESHWAL S, et al. Effect of sodium carbonate/sodium silicate activator on the rheology, geopolymerization and strength of fly ash/slag geopolymer pastes[J]. Cement and Concrete Composites, 2019, 97: 226-238.
[13] [13] PROVIS J L. Alkali-activated materials[J]. Cement and Concrete Research, 2018, 114: 40-48.
[14] [14] LUO S Y, ZHAO S J, ZHANG P P, et al. Co-disposal of MSWI fly ash and lead-zinc smelting slag through alkali-activation technology[J]. Construction and Building Materials, 2022, 327: 127006.
[15] [15] 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.
[18] [18] GU K, JIN F, AL-TABBAA A, et al. Mechanical and hydration properties of ground granulated blastfurnace slag pastes activated with MgO-CaO mixtures[J]. Construction and Building Materials, 2014, 69: 101-108.
[19] [19] TAN H B, DENG X F, HE X Y, et al. Compressive strength and hydration process of wet-grinded granulated blast-furnace slag activated by sodium sulfate and sodium carbonate[J]. Cement and Concrete Composites, 2019, 97: 387-398.
[20] [20] BERNAL S A, PROVIS J L, ROSE V, et al. Evolution of binder structure in sodium silicate-activated slag-metakaolin blends[J]. Cement and Concrete Composites, 2011, 33(1): 46-54.
[21] [21] SUN B B, YE G, DE SCHUTTER G. A review: reaction mechanism and strength of slag and fly ash-based alkali-activated materials[J]. Construction and Building Materials, 2022, 326: 126843.
[22] [22] ZHENG L, WANG C W, WANG W, et al. Immobilization of MSWI fly ash through geopolymerization: effects of water-wash[J]. Waste Management, 2011, 31(2): 311-317.
[23] [23] BEN HAHA M, LE SAOUT G, WINNEFELD F, et al. Influence of activator type on hydration kinetics, hydrate assemblage and microstructural development of alkali activated blast-furnace slags[J]. Cement and Concrete Research, 2011, 41(3): 301-310.
[24] [24] CAI Y M, TAO Y, XUAN D X, et al. Effects of seawater on the formation and mechanical properties of Friedel’s salt associated with tricalcium aluminate[J]. Cement and Concrete Research, 2023, 174: 107340.
[25] [25] REN P F, LING T C. Roles of chlorine and sulphate in MSWIFA in GGBFS binder: hydration, mechanical properties and stabilization considerations[J]. Environmental Pollution, 2021, 284: 117175.
[26] [26] WANG X, NI W, JIN R Z, et al. Formation of Friedel's salt using steel slag and potash mine brine water[J]. Construction and Building Materials, 2019, 220: 119-127.
[27] [27] LIU J, XIE G M, WANG Z D, et al. Manufacture of alkali-activated cementitious materials using municipal solid waste incineration (MSWI) ash: immobilization of heavy metals in MSWI fly ash by MSWI bottom ash[J]. Construction and Building Materials, 2023, 392: 131848.
[28] [28] GLASSER F P, KINDNESS A, STRONACH S A. Stability and solubility relationships in AFm phases: part I. chloride, sulfate and hydroxide[J]. Cement and Concrete Research, 1999, 29(6): 861-866.
[29] [29] KAPELUSZNA E, KOTWICA , RYCKA A, et al. Incorporation of Al in C-A-S-H gels with various Ca/Si and Al/Si ratio: microstructural and structural characteristics with DTA/TG, XRD, FTIR and TEM analysis[J]. Construction and Building Materials, 2017, 155: 643-653.
[30] [30] 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.
[31] [31] ZHANG N, LI H X, ZHAO Y Z, et al. Hydration characteristics and environmental friendly performance of a cementitious material composed of calcium silicate slag[J]. Journal of Hazardous Materials, 2016, 306: 67-76.
[32] [32] LIU J, XIE G M, WANG Z D, et al. Synthesis of geopolymer using municipal solid waste incineration fly ash and steel slag: hydration properties and immobilization of heavy metals[J]. Journal of Environmental Management, 2023, 341: 118053.
[33] [33] LAN T, MENG Y, JU T Y, et al. Manufacture of alkali-activated and geopolymer hybrid binder (AGHB) by municipal waste incineration fly ash incorporating aluminosilicate supplementary cementitious materials (ASCM)[J]. Chemosphere, 2022, 303: 134978.
[34] [34] GARCIA-LODEIRO I, PALOMO A, FERNNDEZ-JIMNEZ A, et al. Compatibility studies between N-A-S-H and C-A-S-H gels. Study in the ternary diagram Na2O-CaO-Al2O3-SiO2-H2O[J]. Cement and Concrete Research, 2011, 41(9): 923-931.
[35] [35] ROEK P, KRL M, MOZGAWA W. Spectroscopic studies of fly ash-based geopolymers[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2018, 198: 283-289.
[36] [36] WANG Y G, HAN F L, MU J Q. Solidification/stabilization mechanism of Pb(II), Cd(II), Mn(II) and Cr(III) in fly ash based geopolymers[J]. Construction and Building Materials, 2018, 160: 818-827.
[37] [37] FAN C C, WU Z L, WANG B M, et al. Solidification of municipal solid waste incineration fly ash with alkali-activated technology[J]. Journal of Environmental Management, 2023, 348: 119404.
[38] [38] AHMAD ZAIDI F H, AHMAD R, AL BAKRI ABDULLAH M M, et al. Geopolymer as underwater concreting material: a review[J]. Construction and Building Materials, 2021, 291: 123276.
[39] [39] LI X Y, CHEN Q Y, ZHOU Y S, et al. Stabilization of heavy metals in MSWI fly ash using silica fume[J]. Waste Management, 2014, 34(12): 2494-2504.
[40] [40] TIAN X, RAO F, LEN-PATIO C A, et al. Co-disposal of MSWI fly ash and spent caustic through alkaline-activation: immobilization of heavy metals and organics[J]. Cement and Concrete Composites, 2020, 114: 103824.
[41] [41] EL-ESWED B I. Chemical evaluation of immobilization of wastes containing Pb, Cd, Cu and Zn in alkali-activated materials: a critical review[J]. Journal of Environmental Chemical Engineering, 2020, 8(5): 104194.
Get Citation
Copy Citation Text
[in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Effect of Solid Activator on One-Part Alkali-Activated Slag-Fly Ash Composite Cementitious Material[J]. Bulletin of the Chinese Ceramic Society, 2025, 44(5): 1779
Category:
Received: Nov. 4, 2024
Accepted: Jun. 12, 2025
Published Online: Jun. 12, 2025
The Author Email: (chinalodger1@163.com)