Structural properties of residual carbon in coal gasification fine slag and their influence on flotation separation and resource utilization: A review
Rui Han, Anning Zhou, Ningning Zhang, Kaiqiang Guo, Mengyan Cheng, Heng Chen, Cuicui Li
Structural properties of residual carbon in coal gasification fine slag and their influence on flotation separation and resource utilization: A review
Coal gasification fine slag (FS) is a typical solid waste generated in coal gasification. Its current disposal methods of stockpiling and landfilling have caused serious soil and ecological hazards. Separation recovery and the high-value utilization of residual carbon (RC) in FS are the keys to realizing the win-win situation of the coal chemical industry in terms of economic and environmental benefits. The structural properties, such as pore, surface functional group, and microcrystalline structures, of RC in FS (FS-RC) not only affect the flotation recovery efficiency of FS-RC but also form the basis for the high-value utilization of FS-RC. In this paper, the characteristics of FS-RC in terms of pore structure, surface functional groups, and microcrystalline structure are sorted out in accordance with gasification type and FS particle size. The reasons for the formation of the special structural properties of FS-RC are analyzed, and their influence on the flotation separation and high-value utilization of FS-RC is summarized. Separation methods based on the pore structural characteristics of FS-RC, such as ultrasonic pretreatment–pore-blocking flotation and pore breaking–flocculation flotation, are proposed to be the key development technologies for improving FS-RC recovery in the future. The design of low-cost, low-dose collectors containing polar bonds based on the surface and microcrystalline structures of FS-RC is proposed to be an important breakthrough point for strengthening the flotation efficiency of FS-RC in the future. The high-value utilization of FS should be based on the physicochemical structural properties of FS-RC and should focus on the environmental impact of hazardous elements and the recyclability of chemical waste liquid to establish an environmentally friendly utilization method. This review is of great theoretical importance for the comprehensive understanding of the unique structural properties of FS-RC, the breakthrough of the technological bottleneck in the efficient flotation separation of FS, and the expansion of the field of the high value-added utilization of FS-RC.
coal gasification fine slag / residual carbon / pore structure / surface functional groups / microcrystalline structure / flotation separation / resource utilization
[1] |
|
[2] |
|
[3] |
|
[4] |
|
[5] |
|
[6] |
Z.J. Shen, H. Nikolic, L.S. Caudill, and K.L. Liu, A deep insight on the coal ash-to-slag transformation behavior during the entrained flow gasification process, Fuel, 289(2021), art. No. 119953.
|
[7] |
|
[8] |
B. Lv, X.M. Chai, X.W. Deng, et al. Recovery of residual carbon from coal gasification fine slag by a combined gravity separation-flotation process, J. Environ. Manage., 348(2023), art. No. 119351.
|
[9] |
W.Y. Wang, W. Li, C. Liang, L. Zhou, and Q.Q. Ren, Decar-burization and ash characteristics during melting combustion of fine ash from entrained-flow gasifier, Energy, 263(2023), art. No. 125676.
|
[10] |
|
[11] |
|
[12] |
K.Z. Fang, D.M. Wang, and Y. Gu, Utilization of gasification coarse slag powder as cement partial replacement: Hydration kinetics characteristics, microstructure and hardening properties, Materials, 16(2023), No. 5, art. No. 1922.
|
[13] |
|
[14] |
B. Fu, Z.Y. Cheng, D.Z. Wang, and N. Li, Investigation on the utilization of coal gasification slag in Portland cement: Reaction kinetics and microstructure, Constr. Build. Mater., 323(2022), art. No. 126587.
|
[15] |
J. Xin, L. Liu, Q. Jiang, P. Yang, H.S. Qu, and G. Xie, Early-age hydration characteristics of modified coal gasification slag–cement–aeolian sand paste backfill, Constr. Build. Mater., 322(2022), art. No. 125936.
|
[16] |
N. Yuan, A.J. Zhao, Z.K. Hu, K.Q. Tan, and J.B. Zhang, Preparation and application of porous materials from coal gasification slag for wastewater treatment: A review, Chemosphere, 287(2022), art. No. 132227.
|
[17] |
Y. Guo, F.H. Guo, L. Zhou, et al., Investigation on co-combustion of coal gasification fine slag residual carbon and sawdust char blends: Physiochemical properties, combustion characteristic and kinetic behavior, Fuel, 292(2021), art. No. 120387.
|
[18] |
W. Yu, H.L. Zhang, X.B. Wang, et al., Enrichment of residual carbon from coal gasification fine slag by spiral separator, J. Environ. Manage., 315(2022), art. No. 115149.
|
[19] |
|
[20] |
B. Lv, Z.Y. Zhao, B.B. Dong, X.W. Deng, C.J. Fang, and B. Zhang, Enrichment of residual carbon from coal gasification fine slag in an inflatable-inclined liquid-solid fluidized bed, J. Clean. Prod., 344(2022), art. No. 131132.
|
[21] |
|
[22] |
D.H. Liu, W.D. Wang, Y.N. Tu, et al., Flotation specificity of coal gasification fine slag based on release analysis, J. Clean. Prod., 363(2022), art. No. 132426.
|
[23] |
F.H. Guo, Z.K. Miao, Z.K. Guo, J. Li, Y.X. Zhang, and J.J. Wu, Properties of flotation residual carbon from gasification fine slag, Fuel, 267(2020), art. No. 117043.
|
[24] |
F.H. Guo, J.J. Wu, Y.X. Zhang, K. Hou, and L.X. Jiang, Characterization of gasification-coke prepared with coal by-product and a high ratio of low-rank coal addition, Energy Sources Part A: Recovery Util. Environ Eff., 2020. DOI: https://doi.org/10.1080/15567036.2020.1725691
|
[25] |
|
[26] |
|
[27] |
|
[28] |
Z.K. Miao, J.J. Wu, Y.J. Niu, Z.K. Guo, F.H. Guo, and Y.X. Zhang, Development of a novel type hierarchical porous composite from coal gasification fine slag for CO2 capture, Chem. Eng. J., 435(2022), art. No. 134909.
|
[29] |
|
[30] |
Y.C. Zhang, S.T. Gao, J. He, H.X. Li, C.L. Wu, and Y.H. Bai, PANI-wrapped high-graphitized residual carbon hybrid with boosted electromagnetic wave absorption performance, Synth. Met., 287(2022), art. No. 117077.
|
[31] |
S.X Xiong, W. Zhang, J. Cheng, et al. Preparation of coal gasification fine slag-based supercapacitive carbon using hydrothermal deashing and alkali activation, J. Mater. Sci. Mater. Electron., 35(2024), art. No. 99.
|
[32] |
B. Xu, M.K. Yang, X.J. Cao, et al., Adsorption behaviors of phenol onto gasification residual cokes with different structural and surface properties, Environ. Prog. Sustainable Energy, 40(2021), No. 4, art. No. e13619.
|
[33] |
|
[34] |
|
[35] |
Q.M. Shi, B.Y. Kou, Q. Sun, and H.L. Jia, Experimental study on pore structure evolution of high volatile bituminous coal with thermal treatment, Case Stud. Therm. Eng., 32(2022), art. No. 101862.
|
[36] |
|
[37] |
|
[38] |
|
[39] |
Z.S. Liu, D.M. Liu, Y.D. Cai, Y.B. Yao, Z.J. Pan, and Y.F. Zhou, Application of nuclear magnetic resonance (NMR) in coalbed methane and shale reservoirs: A review, Int. J. Coal Geol., 218(2020), art. No. 103261.
|
[40] |
G.F. Dai, S.J. Zheng, X.B. Wang, et al., Combustibility analysis of high-carbon fine slags from an entrained flow gasifier, J. Environ. Manage., 271(2020), art. No. 111009.
|
[41] |
|
[42] |
|
[43] |
|
[44] |
Q.Y. Wang, Y.H. Bai, P. Lv, et al. Separation and characterization of different types of residual carbon in fine slag from entrained flow coal gasification, Fuel, 339 (2023), art. No. 127437.
|
[45] |
|
[46] |
|
[47] |
|
[48] |
|
[49] |
Y. Shen, G.H. Lu, Y.H. Bai, et al. Structural features of residue carbon formed by gasification of different coal macerals, Fuel, 320(2022), art. No. 123918.
|
[50] |
F.H. Guo, X. Zhao, Y. Guo, Y.X. Zhang, and J.J. Wu, Fractal analysis and pore structure of gasification fine slag and its flotation residual carbon, Colloids Surf. A: Physicochem. Eng. Aspects, 585(2020), art. No. 124148.
|
[51] |
|
[52] |
Y.C. Zhang, H.X. Li, S.T. Gao, Y. Geng, and C.L. Wu, A study on the chemical state of carbon present in fine ash from gasification, Asia Pac. J. Chem. Eng., 14(2019), No. 4, art. No. e2336.
|
[53] |
J.W. Li, S.B. Fan, X.Y. Zhang, et al., Physicochemical structure, combustion characteristics and SiO2 properties of entrained flow gasification ash, Energy, 251(2022), art. No. 123930.
|
[54] |
|
[55] |
Y.J. Niu, J. Xu, Z.K. Miao, F.H. Guo, Y.X. Zhang, and J.J. Wu, Distribution modes of residual carbon and ash in coal gasification fine slag and its feasibility analysis as particle electrodes, Chemosphere, 303(2022), art. No. 135159.
|
[56] |
|
[57] |
|
[58] |
|
[59] |
|
[60] |
|
[61] |
Y. Guo, C.F. Ma, Y.X. Zhang, et al., Comparative study on the structure characteristics, combustion reactivity, and potential environmental impacts of coal gasification fine slag with different particle size fractions, Fuel, 311(2022), art. No. 122493.
|
[62] |
|
[63] |
|
[64] |
|
[65] |
|
[66] |
|
[67] |
N.N. Zhang, T. Pang, R. Han, Z.L. Zhu, and Z. Li, Insight into anionic and cationic flotation discrepancy of quartz with altered surface roughness by acid etching, J. Mol. Liq., 381(2023), art. No. 121816.
|
[68] |
|
[69] |
L. Ren, Y. Gong, Q.H. Guo, and G.S. Yu, Enhanced flotation of coal gasification fine slag based on ultrasonic pretreatment pulp and composite collector, Powder Technol., 424(2023), art. No. 118530.
|
[70] |
W.D. Wang, D.H. Liu, Y.N. Tu, L.Z. Jin, and H. Wang, Enrichment of residual carbon in entrained-flow gasification coal fine slag by ultrasonic flotation, Fuel, 278(2020), art. No. 118195.
|
[71] |
N.N. Zhang, M.Y. Cheng, R. Han, et al., Innovative flotation separation considering pores blocking to facilitate residual carbon recovery from coal gasification fine slag, Sep. Purif. Tech-nol., 310(2023), art. No. 123254.
|
[72] |
|
[73] |
R. Zhang, H.S. Huang, J.C. Liu, et al., Improving flotation de-carbonization efficiency of coal gasification fly ash by mechanically breaking pore: An experimental and molecular dynamics simulation study, Colloids Surf. A: Physicochem. Eng. Aspects, 663(2023), art. No. 131074.
|
[74] |
D. Shi, J.B. Zhang, H.Q. Li, et al., Insight into the mechanism of gasification fine slag enhanced flotation with selective dispersion flocculation, Fuel, 336(2023), art. No. 127134.
|
[75] |
|
[76] |
Y.H. Wu, K. Xue, Q.L. Ma, et al., Removal of hazardous crystal violet dye by low-cost P-type zeolite/carbon composite obtained from in situ conversion of coal gasification fine slag, Microporous Mesoporous Mater., 312(2021), art. No. 110742.
|
[77] |
|
[78] |
|
[79] |
Q.H. Guo, Y.C. Huang, Y. Gong, X.D. Zhuang, A. Richter, and G.S. Yu, Recovered carbon from coal gasification fine slag as electrocatalyst for oxygen reduction reaction and zinc-air battery, Energy Technol., 9(2021), No. 4, art. No. 2000890.
|
[80] |
R. Han, A.N. Zhou, N.N. Zhang, and Z. Li, A review of kinetic studies on evaporative dehydration of lignite, Fuel, 329(2022), art. No. 125445.
|
[81] |
X. Zhao, F.H. Guo, Y.X. Zhang, and J.J. Wu, Water distribution and adsorption behaviors of two typical coal gasification fine slags from Ningxia Region, Colloids Surf. A: Physico-chem. Eng. Aspects, 625(2021), art. No. 126935.
|
[82] |
|
[83] |
|
[84] |
Z.X. Wan, L.Y. Duan, X.D. Hu, et al., Removal of mercury from flue gas using coal gasification slag, Fuel Process. Tech-nol., 231(2022), art. No. 107258.
|
[85] |
J.W. Li, Z.C. Chen, L.K. Li, et al., Study on pore and chemical structure characteristics of atmospheric circulating fluidized bed coal gasification fly ash, J. Cleaner Prod., 308(2021), art. No. 127395.
|
[86] |
|
[87] |
G.X. Fan, M.Y. Zhang, W.J. Peng, et al., Clean products from coal gasification waste by flotation using waste engine oil as collector: Synergetic cleaner disposal of wastes, J. Cleaner Prod., 286(2021), art. No. 124943.
|
[88] |
D. Shi, J.B. Zhang, X.J. Hou, et al., Occurrence mode and molecular structure model of unburned carbon in coal gasification fine slags, Fuel, 323(2022), art. No. 124364.
|
[89] |
|
[90] |
Z.H. Xue, F. Gao, L.P. Dong, et al. Promotion of hydrophobic-hydrophilic separation of coal gasification fine slag through ultrasonic pre-treatment, J. Environ. Chem. Eng., 11 (2023), art. No. 110653.
|
[91] |
|
[92] |
|
[93] |
|
[94] |
Z.H. Xue, L.P. Dong, H.P. Li, et al., Study on the mechanism of flotation of coal gasification fine slag reinforced with naph-thenic acids, Fuel, 324(2022), art. No. 124557.
|
[95] |
|
[96] |
|
[97] |
|
[98] |
Z.K. Miao, G.F. Qiu, X. Zhao, F.H. Guo, Y.X. Zhang, and J.J. Wu, Influence of pre-oxidization on the characterizations of coal gasification fine slag-derived activated carbons for CO2 capture, J. CO 2 Util, 54(2021), art. No. 101754.
|
[99] |
B. Petrovic, M. Gorbounov, and S. Masoudi Soltani, Influence of surface modification on selective CO2 adsorption: A technical review on mechanisms and methods, Microporous Meso-porous Mater., 312(2021), art. No. 110751.
|
[100] |
J.P. Zhang, J. Zuo, W.D. Ai, et al., Preparation of mesoporous coal-gasification fine slag adsorbent via amine modification and applications in CO2 capture, Appl. Surf. Sci., 537(2021), art. No. 147938.
|
[101] |
|
[102] |
S.T. Gao, Y.C. Zhang, H.X. Li, J. He, H. Xu, and C.L. Wu, The microwave absorption properties of residual carbon from coal gasification fine slag, Fuel, 290(2021), art. No. 120050.
|
[103] |
Y.K. Xiong, L.J. Jin, H. Yang, Y. Li, and H.Q. Hu, Insight into the aromatic ring structures of a low-rank coal by step-wise oxidation degradation, Fuel Process. Technol., 210(2020), art. No. 106563.
|
[104] |
J.T. Wei, Q.H. Guo, X.D. Song, et al., Effect of hydrothermal carbonization temperature on reactivity and synergy of co-gasification of biomass hydrochar and coal, Appl. Therm. Eng., 183(2021), art. No. 116232.
|
[105] |
|
[106] |
J.Q. Yu, Q.H. Guo, L. Ding, Y. Gong, and G.S. Yu, Studying effects of solid structure evolution on gasification reactivity of coal chars by in situ Raman spectroscopy, Fuel, 270(2020), art. No. 117603.
|
[107] |
|
[108] |
|
[109] |
|
[110] |
|
[111] |
C.D. Ma, X.T. Li, J.Q. Lyu, et al., Study on characteristics of coal gasification fine slag–coal water slurry slurrying, combustion, and ash fusion, Fuel, 332(2023), art. No. 126039.
|
[112] |
F.H. Guo, H.G. Wang, H.C. Li, et al., Waste coal gasification fine slag disposal mode via a promising “efficient non-evaporative dewatering & mixed combustion”: A comprehensive theoretical analysis of energy recovery and environmental benefits, Fuel, 339(2023), art. No. 126924.
|
[113] |
X. Zhao, K.J. Liu, F.H. Guo, Y.X. Zhang, and J.J. Wu, Catalytic graphitization of residual carbon from gasification fine slag with ferric chloride as catalyst, Colloids Surf. A: Physico-chem. Eng. Aspects, 636(2022), art. No. 128142.
|
[114] |
Q.H. Guo, H. Li, S.M. Wang, Y. Gong, L. Ren, and G.S. Yu, Experimental study on preparation of oxygen reduction catalyst from coal gasification residual carbon, Chem. Eng. J., 446(2022), art. No. 137256.
|
[115] |
S.M. Wang, H. Li, Y. Gong, Q.H. Guo, and G.S. Yu, Investigation of the heteroatom doping effect on gasification fine slag residue carbon oxygen reduction reaction catalysts, SSRN Electron. J., (2022), art. No. 2201425.
|
[116] |
J. He, S.T. Gao, Y.C. Zhang, and H.X. Li, Nanoferric tetroxide decorated N-doped residual carbon from entrained-flow coal gasification fine slag for enhancing the electromagnetic wave absorption capacity, J. Alloys Compd., 874(2021), art. No. 159878.
|
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