[1]

Gao L, Liu Y, Xu K, Bai L, Guo N, et al. 2024. A short review of the sustainable utilization of coal gangue in environmental applications. RSC Advances 14:39285−39296

doi: 10.1039/D4RA06071G
[2]

Liu Y, Qi X, Luo D, Zhang Y, Qin J. 2023. Detection of spontaneous combustion areas of coal gangue dumps and comprehensive governance technologies: a case study. ACS Omega 8:47690−47700

doi: 10.1021/acsomega.3c05942
[3]

Wang Q, Zhao Y, Xiao W, Lin Z, Ren H. 2022. Assessing potential spontaneous combustion of coal gangue dumps after reclamation by simulating alfalfa heat stress based on the spectral features of chlorophyll fluorescence parameters. Remote Sensing 14:5974

doi: 10.3390/rs14235974
[4]

Yang Z, Zhang Y, Liu L, Wang X, Zhang Z. 2016. Environmental investigation on co-combustion of sewage sludge and coal gangue: SO2, NOx and trace elements emissions. Waste Management 50:213−221

doi: 10.1016/j.wasman.2015.11.011
[5]

Peng H, Wang B, Li W, Yang F, Cheng F. 2023. Combustion characteristics and NO emissions during co-combustion of coal gangue and coal slime in O2/CO2 atmospheres. Journal of Thermal Science 32:457−467

doi: 10.1007/s11630-022-1742-2
[6]

Qu Z, Wei X, Chen W, Wang F, Wang Y, et al. 2023. Co-combustion characteristics of municipal sewage sludge and coal in a lab-scale fluidized bed furnace. Energies 16:2374

doi: 10.3390/en16052374
[7]

Chen CR, Zhan YY, Zhao PZ, Zhao WX, Wang PC, et al. 2023. Effect of calcium based desulfurizers on rheological properties of sludge. Clean Coal Technology 29:124−131

doi: 10.13226/j.issn.1006-6772.22091701
[8]

Guo S, Han Y, Wang L, Che D, Liu H, et al. 2020. Synergistic effects of co-combustion of sewage sludge and corn stalk and the resulting gas emission characteristics. IET Renewable Power Generation 14:1596−1605

doi: 10.1049/iet-rpg.2020.0104
[9]

Zhou C, Liu G, Fang T, Lam PKS. 2015. Investigation on thermal and trace element characteristics during co-combustion biomass with coal gangue. Bioresource Technology 175:454−462

doi: 10.1016/j.biortech.2014.10.129
[10]

Ke D, Zhang L, Yan J, Lei Z, Lei Z, et al. 2023. Interactions of co-firing coal gangue and high sodium coal: combustion characteristics and emission behaviors of polluting gases. Fuel 339:127382

doi: 10.1016/j.fuel.2022.127382
[11]

Lv Z, Xiong X, Ruan R, Wang Y, Tan H. 2023. NO emission and burnout characteristics in co-combustion of coal and sewage sludge following high-temperature preheating. Fuel 331:125887

doi: 10.1016/j.fuel.2022.125887
[12]

Wang Y, Jia L, Guo J, Wang B, Zhang L, et al. 2021. Thermogravimetric analysis of co-combustion between municipal sewage sludge and coal slime: combustion characteristics, interaction and kinetics. Thermochimica Acta 706:179056

doi: 10.1016/j.tca.2021.179056
[13]

Wu M, Li H, Wang L, Feng S, Wang Y, et al. 2024. Investigation on coal/coal gangue mixtures co-combustion via TG-DSC tests, multicomponent reaction model, and artificial neural network. Fuel 359:130443

doi: 10.1016/j.fuel.2023.130443
[14]

Yang K, Sun J, Liu H, Yang W, Dong L. 2023. Study on the thermogravimetric kinetics of dehydrated sewage sludge regulated by cationic polyacrylamide and sawdust. Polymers 15:2396

doi: 10.3390/polym15102396
[15]

Yan J, Wu Y, Zhang L, Huang S, Lei Z, et al. 2023. Synergistic retention of heavy metals and in-situ reduction of NO and SO2 by co-combustion of sewage sludge and coal gangue: a promising approach for contaminant management and emission reduction. Fuel Processing Technology 252:107984

doi: 10.1016/j.fuproc.2023.107984
[16]

Sun Y, Sun H, Yang T, Zhu Y, Li R. 2024. Combustion characterization and kinetic analysis of mixed sludge and lignite combustion. ACS Omega 9:6912−6923

doi: 10.1021/acsomega.3c08541
[17]

Ma T, Chen X, Zhai X, Bai Ye. 2019. Thermogravimetric and infrared spectroscopic studies of the spontaneous combustion characteristics of different pre-oxidized lignites. RSC Advances 9:32476−32489

doi: 10.1039/C9RA05993H
[18]

Song C, Liu K, Gong Z, Liu Y. 2019. Thermogravimetric analysis of combustion characteristics of coal gangue and petroleum coke mixture. Journal of Physics: Conference Series 1324:012077

doi: 10.1088/1742-6596/1324/1/012077
[19]

Liu H, Liu J, Huang H, Wen Y, Evrendilek F, et al. 2022. Technical and environmental feasibility of gas-solid decontamination by oxygen-enriched co-combustion of textile dyeing sludge and durian shell. Journal of Cleaner Production 360:131967

doi: 10.1016/j.jclepro.2022.131967
[20]

Wei M, Yu Q, Duan W, Yang F, Wu T, et al. 2017. CO2 desorption kinetics for waste ion-exchange resin-based activated carbon by model-fitting and model-free. Thermochimica Acta 655:52−62

doi: 10.1016/j.tca.2017.06.008
[21]

Li B, Liu G, Gao W, Cong HY, Bi MS, et al. 2020. Study of combustion behaviour and kinetics modelling of Chinese Gongwusu coal gangue: model-fitting and model-free approaches. Fuel 268:117284

doi: 10.1016/j.fuel.2020.117284
[22]

Flynn JH, Wall LA. 1966. A quick, direct method for the determination of activation energy from thermogravimetric data. Journal of Polymer Science Part B: Polymer Letters 4:323−328

doi: 10.1002/pol.1966.110040504
[23]

Ozawa T. 1965. A new method of analyzing thermogravimetric data. Bulletin of the Chemical Society of Japan 38:1881−1886

doi: 10.1246/bcsj.38.1881
[24]

Doyle CD. 1962. Estimating isothermal life from thermogravimetric data. Journal of Applied Polymer Science 6:639−642

doi: 10.1002/app.1962.070062406
[25]

Lin Y, Ma X, Ning X, Yu Z. 2015. TGA–FTIR analysis of co-combustion characteristics of paper sludge and oil-palm solid wastes. Energy Conversion and Management 89:727−734

doi: 10.1016/j.enconman.2014.10.042
[26]

Peng X, Ma X, Xu Z. 2015. Thermogravimetric analysis of co-combustion between microalgae and textile dyeing sludge. Bioresource Technology 180:288−295

doi: 10.1016/j.biortech.2015.01.023
[27]

Chen Y, Gui H, Xia Z, Chen X, Zheng L. 2021. Thermochemical and toxic element behavior during co-combustion of coal and municipal sludge. Molecules 26:4170

doi: 10.3390/molecules26144170
[28]

Yang X, Wang B, Guo Y, Yang F, Cheng F. 2024. Co-hydrothermal carbonization of sewage sludge and coal slime for clean solid fuel production: a comprehensive assessment of hydrochar fuel characteristics and combustion behavior. Biomass Conversion and Biorefinery 14:14491−14503

doi: 10.1007/s13399-022-03601-y
[29]

Guo Y, Wu J, Jia W, Guo F, Qiu G, et al. 2021. Evaluation of the thermal behavior, synergistic catalysis, and pollutant emissions during the co-combustion of sewage sludge and coal gasification fine slag residual carbon. Catalysts 11:1142

doi: 10.3390/catal11101142
[30]

Wang Z, Hong C, Xing Y, Li Y, Feng L, et al. 2018. Combustion behaviors and kinetics of sewage sludge blended with pulverized coal: with and without catalysts. Waste Management 74:288−296

doi: 10.1016/j.wasman.2018.01.002
[31]

Zhang LM, Tan ZC, Wang SD, Wu DY. 1997. Combustion calorimetric and thermogravimetric studies of graphite and coals doped with a coal-burning additive. Thermochimica Acta 299:13−17

doi: 10.1016/S0040-6031(97)00130-5
[32]

Das P, Tiwari P. 2017. Thermal degradation kinetics of plastics and model selection. Thermochimica Acta 654:191−202

doi: 10.1016/j.tca.2017.06.001
[33]

Yeo JY, Chin BLF, Tan JK, Loh YS. 2019. Comparative studies on the pyrolysis of cellulose, hemicellulose, and lignin based on combined kinetics. Journal of the Energy Institute 92:27−37

doi: 10.1016/j.joei.2017.12.003
[34]

Ali I, Tariq R, Naqvi SR, Khoja AH, Mehran MT, et al. 2021. Kinetic and thermodynamic analyses of dried oily sludge pyrolysis. Journal of the Energy Institute 95:30−40

doi: 10.1016/j.joei.2020.12.002
[35]

Zhang Y, Guo Y, Cheng F, Yan K, Cao Y. 2015. Investigation of combustion characteristics and kinetics of coal gangue with different feedstock properties by thermogravimetric analysis. Thermochimica Acta 614:137−148

doi: 10.1016/j.tca.2015.06.018
[36]

Mian MM, Ao W, Deng S. 2023. Sludge-based biochar adsorbent: pore tuning mechanisms, challenges, and role in carbon sequestration. Biochar 5:83

doi: 10.1007/s42773-023-00288-w