[1]

Apicella B, Russo C, Cerciello F, Stanzione F, Ciajolo A, et al. 2020. Insights on the role of primary and secondary tar reactions in soot inception during fast pyrolysis of coal. Fuel 275:117957

doi: 10.1016/j.fuel.2020.117957
[2]

Cui X, Li M, Chen X, Shao Y, Li Y, et al. 2023. Effect of addition of K2CO3 on the structure of coals with different ranks by FTIR and TG/MS. Journal of Analytical and Applied Pyrolysis 172:106027

doi: 10.1016/j.jaap.2023.106027
[3]

Tian B, Qiao Y, Tian Y, Liu Q. 2016. Investigation on the effect of particle size and heating rate on pyrolysis characteristics of a bituminous coal by TG–FTIR. Journal of Analytical and Applied Pyrolysis 121:376−386

doi: 10.1016/j.jaap.2016.08.020
[4]

Wu L, Liu J, Xu P, Zhou J, Yang F. 2022. Biomass hydrogen donor assisted microwave pyrolysis of low-rank pulverized coal: optimization, product upgrade and synergistic mechanism. Waste Management 143:177−185

doi: 10.1016/j.wasman.2022.02.020
[5]

Ling P, Xu J, Liu T, An X, Wang X, Mostafa ME, et al. 2022. Pyrolysis kinetics and reaction mechanisms of coal slime for cleaner energy. Journal of Analytical and Applied Pyrolysis 168:105718

doi: 10.1016/j.jaap.2022.105718
[6]

Jin L, Zhao H, Wang M, Wei B, Hu H. 2019. Effect of temperature and simulated coal gas composition on tar production during pyrolysis of a subbituminous coal. Fuel 241:1129−1137

doi: 10.1016/j.fuel.2018.12.093
[7]

Czajka KM, Modliński N, Kisiela-Czajka AM, Naidoo R, Peta S, et al. 2019. Volatile matter release from coal at different heating rates – experimental study and kinetic modelling. Journal of Analytical and Applied Pyrolysis 139:282−290

doi: 10.1016/j.jaap.2019.03.001
[8]

Jiang Y, Zong P, Tian B, Xu F, Tian Y, et al. 2019. Pyrolysis behaviors and product distribution of Shenmu coal at high heating rate: a study using TG-FTIR and Py-GC/MS. Energy Conversion and Management 179:72−80

doi: 10.1016/j.enconman.2018.10.049
[9]

Howaniec N. 2016. The effects of pressure on coal chars porous structure development. Fuel 172:118−123

doi: 10.1016/j.fuel.2016.01.028
[10]

Luo K, Zhang C, Zhu S, Bai Y, Li F. 2016. Tar formation during coal pyrolysis under N2 and CO2 atmospheres at elevated pressures. Journal of Analytical and Applied Pyrolysis 118:130−135

doi: 10.1016/j.jaap.2016.01.009
[11]

Dufourny A, Van De Steene L, Humbert G, Guibal D, Martin L, et al. 2019. Influence of pyrolysis conditions and the nature of the wood on the quality of charcoal as a reducing agent. Journal of Analytical and Applied Pyrolysis 137:1−13

doi: 10.1016/j.jaap.2018.10.013
[12]

Liu Z, Liu T, Zhao W, Zhang Y, Liu W. 2026. Rich hydrogen syngas production from microwave-assisted catalytic pyrolysis of polypropylene plastic particles. Journal of Analytical and Applied Pyrolysis 195:107628

doi: 10.1016/j.jaap.2026.107628
[13]

Ram S, Patil Y, Abdelrhman F, Memon TA, Zhang Y. 2025. Kinetics for catalytic pyrolysis of organic solid wastes. Green Energy and Fuel Research 2(4):328−359

doi: 10.53941/gefr.2025.100023
[14]

Qiu T, Xie K, Liu C, Ahmad F, Zhao W, et al. 2025. Microwave-assisted pyrolysis for advanced sustainable carbon materials. Sustainable Carbon Materials 1:e011

doi: 10.48130/scm-0025-0011
[15]

Cao W, Jing H, Araya D, Zhao W. 2026. Optimization of microwave-assisted pyrolysis parameters for sugarcane bagasse biochar using response surface methodology. Sustainable Carbon Materials 2:e003

doi: 10.48130/scm-0025-0014
[16]

Karin K, Kuboon S, Panyapinyopol B, Youngjan S, Wanmolee W, et al. 2025. Efficient corn stover-derived metal-supported biochar catalyst for hydrogenation of xylose to xylitol. Resources Chemicals and Materials 4(1):100083

doi: 10.1016/j.recm.2024.10.002
[17]

Huang Y, Li WY, Wu GS, Feng J, Yi Q. 2017. Comparative analysis of typical low rank coal pyrolysis technology based on a nonlinear programming model. Energy & Fuels 31(11):12977−12987

doi: 10.1021/acs.energyfuels.7b02412
[18]

Li Q, Lin Y. 2016. Exergy analysis of the LFC process. Energy Conversion and Management 108:348−354

doi: 10.1016/j.enconman.2015.11.024
[19]

Shamsi A, Shadle LJ, Seshadri KS. 2004. Study of low-temperature oxidation of buckskin subbituminous coal and derived chars produced in ENCOAL process. Fuel Processing Technology 86(3):275−292

doi: 10.1016/j.fuproc.2004.03.007
[20]

Chen Z, Wang D, Li C, Yang H, Wang D, et al. 2020. A tandem pyrolysis-upgrading strategy in an integrated reactor to improve the quality of coal tar. Energy Conversion and Management 220:113065

doi: 10.1016/j.enconman.2020.113065
[21]

Hu E, Zeng X, Ma D, Wang F, Yi X, et al. 2017. Effect of the moisture content in coal on the pyrolysis behavior in an indirectly heated fixed-bed reactor with internals. Energy & Fuels 31(2):1347−1354

doi: 10.1021/acs.energyfuels.6b02780
[22]

Cheng S, Lai D, Shi Z, Hong L, Zhang J, et al. 2017. Suppressing secondary reactions of coal pyrolysis by reducing pressure and mounting internals in fixed-bed reactor. Chinese Journal of Chemical Engineering 25(4):507−515

doi: 10.1016/j.cjche.2016.09.013
[23]

Xu S, Lai D, Zeng X, Zhang L, Han Z, et al. 2018. Pyrolysis characteristics of waste tire particles in fixed-bed reactor with internals. Carbon Resources Conversion 1(3):228−237

doi: 10.1016/j.crcon.2018.10.001
[24]

Lin L, Lai D, Guo E, Zhang C, Xu G. 2016. Oil shale pyrolysis in indirectly heated fixed bed with metallic plates of heating enhancement. Fuel 163:48−55

doi: 10.1016/j.fuel.2015.09.024
[25]

Lai D, Chen Z, Lin L, Zhang Y, Gao S, et al. 2015. Secondary cracking and upgrading of shale oil from pyrolyzing oil shale over shale ash. Energy & Fuels 29(4):2219−2226

doi: 10.1021/ef502821c
[26]

Siramard S, Lin L, Zhang C, Lai D, Cheng S, et al. 2016. Oil shale pyrolysis in indirectly heated fixed bed with internals under reduced pressure. Fuel Processing Technology 148:248−255

doi: 10.1016/j.fuproc.2016.02.033
[27]

Zhou W, Zhu G, Cheng H, Xia Z, Wang X, et al. 2023. Investigation of EPET, EPEI, and EPU pyrolysis characteristics: thermal decomposition behaviours, pyrolysis products and mechanism. Journal of Analytical and Applied Pyrolysis 175:106203

doi: 10.1016/j.jaap.2023.106203
[28]

Song H, Liu G, Zhang J, Wu J. 2017. Pyrolysis characteristics and kinetics of low rank coals by TG-FTIR method. Fuel Processing Technology 156:454−460

doi: 10.1016/j.fuproc.2016.10.008
[29]

Ma C, Zhao Y, Lang T, Zou C, Zhao J, et al. 2023. Pyrolysis characteristics of low-rank coal in a low-nitrogen pyrolysis atmosphere and properties of the prepared chars. Energy 277:127524

doi: 10.1016/j.energy.2023.127524
[30]

Wang J, Li P, Liang L, Yang J, Hao X, et al. 2016. Kinetics modeling of low-rank coal pyrolysis based on a three-gaussian distributed activation energy model (DAEM) reaction model. Energy & Fuels 30(11):9693−9702

doi: 10.1021/acs.energyfuels.6b01599
[31]

Shen J, Liu J, Xing Y, Zhang H, Luo L, et al. 2018. Application of TG-FTIR analysis to superfine pulverized coal. Journal of Analytical and Applied Pyrolysis 133:154−161

doi: 10.1016/j.jaap.2018.04.007
[32]

Wang F, Gao N, Quan C, López G. 2020. Investigation of hot char catalytic role in the pyrolysis of waste tires in a two-step process. Journal of Analytical and Applied Pyrolysis 146:104770

doi: 10.1016/j.jaap.2019.104770
[33]

Chen X, Xing C, Zhang L, Jiao Z, Yang C, et al. 2021. Effect of mixing ratio and active alkali and alkaline earth metals on gaseous products from co-pyrolysis of coal and corn stalks. Journal of Analytical and Applied Pyrolysis 159:105326

doi: 10.1016/j.jaap.2021.105326
[34]

Ni Z, Bi H, Jiang C, Tian J, Sun H, et al. 2022. Research on the co-pyrolysis of coal gangue and coffee industry residue based on machine language: interaction, kinetics, and thermodynamics. Science of The Total Environment 804:150217

doi: 10.1016/j.scitotenv.2021.150217
[35]

Zhang C, Wu R, Hu E, Liu S, Xu G. 2014. Coal pyrolysis for high-quality tar and gas in 100 kg fixed bed enhanced with internals. Energy & Fuels 28:7294−7302

doi: 10.1021/ef501923f