Characteristics and multiscale study of deep coal spontaneous combustion under thermal-fluid-solid coupling

This study elucidates the evolution mechanisms of spontaneous combustion in deep coal bodies under thermal-fluid-solid coupling through macroscopic programmed temperature-rise experiments using a coal spontaneous combustion temperature-programmed heating system, mesoscale triaxial compression-seepage tests using a triaxial seepage test apparatus, and microscopic electron spin resonance (ESR) spectroscopy. As temperature rose from 60 °C to 210 °C, oxygen consumption and CO/CO 2 /C 2 H 4 production increased continuously. Dry coal oxygen consumption first decreased, then increased with stress; 8 % moisture coal continued to rise with stress; 15 % moisture coal exhibited different response characteristics around 140 °C. Triaxial tests showed that confining pressure from 5 MPa to 15 MPa increased elastic modulus from 1980 MPa to 2493 MPa and peak strength from 32.8 MPa to 41.7 MPa; moisture from 0 % to 15 % reduced peak strength to 21.3 – 26.7 MPa. Permeability decreased sharply at 0.3 – 0.9 MPa CO 2 and stabilized beyond. ESR revealed that 8 % moisture coal reached 8.23 × 10 16 g −1 at 210 °C, exceeding 6.27 × 10 16 g −1 in dry coal. The results confirm that deep coal spontaneous combustion arises from synergistic effects of “stress-enhanced reactions, delayed moisture release, and oxygen supply constrained by seepage,” refining the mechanism and providing new insights for prevention and control.

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Publication Details

Journal
Case Studies in Thermal Engineering
Published
2026-09-04
DOI
https://doi.org/10.1016/j.csite.2026.108485
Primary Topic
Coal Properties and Utilization
Type
article
Field-Weighted Citation Impact
0.00

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article

Characteristics and multiscale study of deep coal spontaneous combustion under thermal-fluid-solid coupling

Zuwen Liu, Xiaotian Zhang, Pengyu Zhang, Yifan Gao et al.
Case Studies in Thermal Engineering
Coal Properties and Utilization
article

Characteristics and multiscale study of deep coal spontaneous combustion under thermal-fluid-solid coupling

Zuwen Liu, Xiaotian Zhang, Pengyu Zhang, Yifan Gao, Zhiguo Guo
article en

Abstract

This study elucidates the evolution mechanisms of spontaneous combustion in deep coal bodies under thermal-fluid-solid coupling through macroscopic programmed temperature-rise experiments using a coal spontaneous combustion temperature-programmed heating system, mesoscale triaxial compression-seepage tests using a triaxial seepage test apparatus, and microscopic electron spin resonance (ESR) spectroscopy. As temperature rose from 60 °C to 210 °C, oxygen consumption and CO/CO 2 /C 2 H 4 production increased continuously. Dry coal oxygen consumption first decreased, then increased with stress; 8 % moisture coal continued to rise with stress; 15 % moisture coal exhibited different response characteristics around 140 °C. Triaxial tests showed that confining pressure from 5 MPa to 15 MPa increased elastic modulus from 1980 MPa to 2493 MPa and peak strength from 32.8 MPa to 41.7 MPa; moisture from 0 % to 15 % reduced peak strength to 21.3 – 26.7 MPa. Permeability decreased sharply at 0.3 – 0.9 MPa CO 2 and stabilized beyond. ESR revealed that 8 % moisture coal reached 8.23 × 10 16 g −1 at 210 °C, exceeding 6.27 × 10 16 g −1 in dry coal. The results confirm that deep coal spontaneous combustion arises from synergistic effects of “stress-enhanced reactions, delayed moisture release, and oxygen supply constrained by seepage,” refining the mechanism and providing new insights for prevention and control.

Case Studies in Thermal EngineeringVol. 86
Jiangxi University of Science and Technology (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 14%
Coal Properties and Utilization
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