Thermal role and reaction kinetics of functional groups during coal smoldering at high temperatures: A case study of long-flame coal

Guangyu Bai , Haihui Xin , Bekir Genc , Xuyao Qi , Wei Lu , Jinhu Li , Deming Wang , Qiang Zeng , Yi Yang , Ze Zhang

Int J Min Sci Technol ›› 2026, Vol. 36 ›› Issue (5) : 1079 -1099.

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Int J Min Sci Technol ›› 2026, Vol. 36 ›› Issue (5) :1079 -1099. DOI: 10.1016/j.ijmst.2026.02.002
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Thermal role and reaction kinetics of functional groups during coal smoldering at high temperatures: A case study of long-flame coal
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Abstract

Understanding the microscopic reaction mechanisms of high-temperature smoldering combustion (SC) is essential for efficient fire management. This study adopted high-temperature in-situ FTIR and DSC techniques to investigate the real-time evolution laws of 11 typical functional groups and their correlation with heat release during SC of long-flame coal. The reaction kinetics mechanism of typical functional groups under time-scale effects (TSE) was revealed. The results demonstrated that reduced oxygen level (100%–21%, 16%–1%) mainly affects coal combustion performance by restricting or delaying the rapid consumption of typical functional groups. Heat release restriction follows a two-stage linear model, with sensitivity to this limitation being about 21 times higher from 21%–3% to 3%–1% oxygen level. Aliphatic hydrocarbons at low temperatures and carboxyl/carbonyl groups at high temperatures exhibit the highest correlation degree with heat release. Aliphatic hydrocarbons determine the early-stage ignition capability of coal, while aromatic hydrocarbons (benzene rings) govern the burnout capability, and oxygen-containing functional groups dictate the burnout characteristics and maximum heat release intensity. The sensitivity to TSE follows the sequence: benzene rings ≈ oxygen-containing functional groups > aliphatic hydrocarbons > hydroxyl groups, and oxygen-limited conditions > normal oxygen conditions. Kinetic studies confirm that the activation energies under oxygen limited conditions (3%, 50–100 kJ/mol) are lower than those under normal oxygen conditions (140–200 kJ/mol). An oxygen level of 3% can be adopted as a critical safety threshold for the on site sealing management of fire zones.

Keywords

Smoldering combustion / In-situ FTIR / Correlation degree / Time-scale effects / Kinetic

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Guangyu Bai, Haihui Xin, Bekir Genc, Xuyao Qi, Wei Lu, Jinhu Li, Deming Wang, Qiang Zeng, Yi Yang, Ze Zhang. Thermal role and reaction kinetics of functional groups during coal smoldering at high temperatures: A case study of long-flame coal. Int J Min Sci Technol, 2026, 36 (5) : 1079-1099 DOI:10.1016/j.ijmst.2026.02.002

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