Numerical simulation of CO generation and migration patterns in goaf based on coupled multi-physics fields

M Mengxuan Ren Y Yongli Liu B Bingkun Duan X Xinxu Li H Haitao Wang (Department of Central Laboratory, College & Hospital of Stomatology, Anhui Provincial Key Laboratory of Oral Diseases Research, Anhui Medical University)

Abstract

Abstract To explore early prediction methods for goaf spontaneous combustion, a numerical simulation was conducted to investigate the generation and migration laws of indicator gases in the goaf. A multi-physics coupling model integrating flow field, temperature field and concentration field was adopted to systematically analyze the spatio-temporal evolution of the temperature field and indicator gases. Programmed heating experiments revealed that CO exhibits a good correlation with temperature at low stages. Accordingly, CO was determined as the indicator gas in the numerical simulation, and the oxygen consumption rate, CO generation rate and heat release intensity were obtained. The multi-physics coupling results demonstrate that thermal buoyancy is the dominant driving force controlling the vertical migration and spatial distribution of CO in the goaf. Under the combined effect of air leakage and thermal buoyancy, CO accumulates in the upper, deep and return side regions of the goaf, which should be prioritized for monitoring. The findings provide important theoretical and engineering support for the prevention and control of goaf spontaneous combustion.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 23, 2026
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (5)

M

Mengxuan Ren

Y

Yongli Liu

B

Bingkun Duan

X

Xinxu Li

H

Haitao Wang

Department of Central Laboratory, College & Hospital of Stomatology, Anhui Provincial Key Laboratory of Oral Diseases Research, Anhui Medical University