References
- K. Zhu, Notice of Retraction: Environmental Hazards and
Comprehensive Utilization of Coal Gangue in Sustainable
Development. 2011 5th International Conference on
Bioinformatics and Biomedical Engineering, IEEE, Wuhan,
China, 2011, pp. 1–4.
- C.M. Ma, L.H. Zhao, 178 Environmental Problems of Coal
Gangue Air Storage in Pingdingshan Mining Area and
Prevention and Remediation Countermeasures, ASME Press
Select Proceedings, Geological Engineering: Proceedings of the
1st International Conference (ICGE 2007), ASME Press, 2009,
doi: 10.1115/1.802922.paper178.
- D. Ma, H.Y. Duan, J.F. Liu, X.B. Li, Z.L. Zhou, The role of
gangue on the mitigation of mining-induced hazards and
environmental pollution: an experimental investigation,
Sci. Total Environ., 664 (2019) 436–448.
- M.T. Gao, M. Zhang, M. Zhou, Study and practice on
the technology of filling mining in Xin Wen mining area,
Appl. Mech. Mater., 121–126 (2011) 2892–2896.
- W.B. Zhang, H.B. Song, Comprehensive utilization of the solid
wastes from coal in China, J. Kunming Univ. Sci. Technol.,
4 (2000) 15–18,24.
- L.F. Yang, Practice and research of comprehensive utilization
of coal gangue in Xiqu Mine, Shandong Coal Sci. Technol.,
7 (2020) 200–201,210.
- Y.F. Luo, Y.G. Wu, T.L. Fu, H. Wang, R.R. Xing, Z.L. Zheng,
Effects of a proline solution cover on the geochemical and
mineralogical characteristics of high-sulfur coal gangue, Acta
Geochim., 37 (2018) 701–714.
- T. Yang, X.Y. Chen, X. Liu, L.G. Zheng, Environmental
geochemical characteristics of cadmium of soil and coal
gangue in mining-induced subsidence area of Panji mine in
Huainan, Coal Geol. Explor., 46 (2018) 1–5.
- J.S. Fan, Y.Z. Sun, X.Y. Li, C.L. Zhao, D.X. Tian, L.Y. Shao,
J.X. Wang, 2013. Pollution of organic compounds and heavy
metals in a coal gangue dump of the Gequan Coal Mine,
China, Chin. J. Geochem., 32 (2013) 241–247.
- Y. Wang, Y.J. Zou, H. Wang, C.B. Wang, Geochemical characteristics
of Se and heavy metal elements in the soil of Youshan, Xinfeng
County, Jiangxi Province, N.a. N.a. Geol., 2 (2019) 152–160.
- W. Pian, J.K. Zhang, J.X. Wang, et al., Environmental pollution
of surrounding groundwater from coal gangue leaching in
mining area, J. Hebei Univ. Eng. (Nat. Sci. Ed.), 33 (2016)
80–84,108.
- W.Y. Qi, Y.L. Huang, H. He, J.X. Zhang, J.M. Li, M. Qiao,
Potential pollution of groundwater by dissolution and
release of contaminants due to using gangue for backfilling,
Mine Water Environ., 38 (2019) 281–293.
- C.Y. Hua, G.Z. Zhou, X. Yin, C.Z. Wang, B.R. Chi, Y.Y. Cao,
Y. Wang, Y. Zheng, Assessment of heavy metal in coal gangue:
distribution, leaching characteristic and potential ecological
risk, Environ. Sci. Pollut. Res., 25 (2018) 32321–32331.
- M. Chen, L.J. Zhu, Y.G. Wu, T.L. Fu, Y. Ran, Enrichment of heavy
metals in coal gangue by puff balls and mechanism research,
Chin. J. Geochem., 4 (2014) 419–424.
- J. Yang, J.J. Chen, X.Y. Wang, X.H. Li, Heavy metal concentrations
distribution around the coal gangue pile of Yanma Mine,
Res. Environ. Sci., 1 (2008) 90–96.
- C. Zhou, G. Liu, Z. Yan, T. Fang, R. Wang, Transformation
behavior of mineral composition and trace elements during
coal gangue combustion, Fuel, 97 (2012) 644–650.
- C. Zhu, S.J. Qu, J. Zhang, Y. Wang, Y.H. Zhang, Distribution,
occurrence and leaching dynamic behavior of sodium in
Zhundong coal, Fuel, 190 (2017) 189–197.
- X.C. Wang, Hydrogeological condition analysis of 3 coal seam
in Hong-qi coal mine, Jia-xiang, Shandong Coal Sci. Technol.,
5 (2017) 117–119.
- Y.P. Wang, Research on Water Inrush Prevention Technology
of Coal Seam Floor Lagging in Baizhuang Mine, N.a. Univ.
Min. Technol., 2019.
- H.Y. Yin, J.C. Wei, Y. Wang, J.B. Guo, L.Q. Shi, Risk evaluation
of water inrush from seam floor during mining of lower
group in Zhaizhen coal mine, N.a. Min. Mag., 18 (2009) 97–99.
- L.Q. Shi, R.A. Zhang, D.J. Xu, et al., Prediction of water inrush
from floor based on GWO-Elman neural network, J. China
Coal Soc., 45 (2020) 2455–2463.
- J.S. Zhang, et al., Minerals in the No. 3 Coal Seam and its
Surrounding Rock in Juye Coalfield, Proceedings of the 9th
National Congress and the 16th Annual Conference of the
Chinese Society of Mineralogy, Petrology and Geochemistry,
2017, p. 1220.
- S.F. Dai, Y.F. Jiang, C.R. Ward, L.D. Gu, V.V. Seredin,
H.D. Liu, D. Zhou, X.B. Wang, Y.Z. Sun, J.H. Zou, D.Y. Ren,
Mineralogical and geochemical compositions of the coal in the
Guanbanwusu Mine, Inner Mongolia, China: further evidence
for the existence of an Al (Ga and REE) ore deposit in the
Jungar Coalfield, Int. J. Coal Geol., 98 (2012) 10–40.
- State Bureau of Technical Supervision, Quality Standard for
Ground Water, GB/T 14848-93, 1993.
- L.G. Jiang, B. Liang, C.W. Yin, Experimental study of coal
gangue acid/alkali production kinetics in the leaching effect,
J. Exp. Mech., 4 (2013) 502–510.
- B. Li, Geochemistry Effect of Gangue Leaching and Its
Potential Risk—Take the Hancheng Coal Area as an Example,
Chang’an Univ., 2013.
- Z. Ran, W.L. Liu, Y.T. Pan, W. Liu, Z. Gao, Y. Zhao, Influence
of temperature on dynamic leaching characteristics of coal
gangue, J. N.a. Coal Soc., 44 (2019) 1239–1246.
- Q.F. Liu, L.T. Liu, S.L. Ding, The water-solubility and
exchangeability of NH4
+ in ammonium illite, Acta Miner. Sin.,
30 (2010) 278–282.
- X. Zhang, X.J. Li, Leaching Experiment and Leaching
Characteristics of Heavy Metals From Coal Gangue in Jining
Mining Area, The 8th National Conf. on Land Reclam. and Ecol.
Restor. in Min. Areas of N.a. Coal Soc., Jiaozuo, Henan, China,
2019, pp. 311–323.
- Z. Dang, C.Q. Liu, Z. Li, Experimental simulation of chemical
activity of heavy metals in coal gangue, J. N.a. N.a. Univ.
Technol. (Nat. Sci.), 29 (2001) 1–5.
- Y.Q. Zhang, M.H. Hung, F.F. Qi, Y. Du, The leaching
characteristics of metals and acid radical ions in gangue,
Environ. Chem., 3 (2014) 452–458.
- W.H. Ao, Study on the Geochemical Effects of Harmful
Substances in Coal Gangue in Wuda Mining Area, Inner
Mongolia, N.a. Univ. Geosci. (Beijing), 2005.
- Y. Zhao, L.P. Wang, S.L. He, M. Hou, X. Chen, L. Zhang,
Variation of ORP during p-nitrophenol degradation by Fenton
oxidation process, Environ. Pollut. Control, 4 (2011) 58–61,65.
- W.R. Jiang, Z.H. Tu, S. Zhou, Q. Wu, Z. Dang, H.J. He, et al.,
A brief overview on the mechanism and kinetic influencing
factors of the pyrite surface oxidation, Met. Min., 50 (2021)
88–102.
- Z.H. Tu, Studies of Sulfur Transformation in Oxidation of Pyrite
and Surface Electrochemistry of Pyrite Oxidation, N.a. N.a.
Univ. Technol., 2017.
- G.K. Druschel, R.J. Hamers, J.F. Banfield, Kinetics and
mechanism of polythionate oxidation to sulfate at low pH by
O2 and Fe3+, Geochim. Cosmochim. Acta, 67 (2003) 4457–4469.
- C.O. Moses, D.K. Nordstrom, J.S. Herman, A.L. Mills, Aqueous
pyrite oxidation by dissolved oxygen and by ferric iron.
Geochim. et Cosmochim., 51 (1987) 1561–1571.
- L. Lu, R.C. Wang, J.Y. Xue, et al., Experimental study on
oxidation rate of pyrite, Sci. N.a. Rress (Series D), 35 (2005)
434–440.
- Z.J. Zhang, Y.N. Li, Z.Y. Tong, H. Nong, X. Chen, Adsorption
characteristics of metal ions on kaolinite, J. Min. Sci. Technol.,
3 (2017) 294–300.
- H.-H. Wu, P.-H. Liu, Q.-Y. Zhang, G.-P. He, Mechanisms
of adsorption of heavy metal ions on kaolinite and their
solution as a function of pH, Geol. J. N.a. Univ., 1 (2005) 85–91.
- Z.Y. Fang, Research on Mechanism of Purifying Underground
Reservoir Water Storage by Collapsed Coal Rock in Goaf of
Wanli No. 1 Coal Mine, N.a. Univ. Min. Technol., 2020.
- K. Zhang, J. Gao, B.B. Jiang, J. Han, M. Chen, Experimental
study on the mechanism of water-rock interaction in the
coal mine underground reservoir, J. N.a. Coal Soc., 12 (2019)
3760–3772.