Coal Rib Instability and Differential Control in Steeply Inclined Working Faces with Coal Seam Partings

Coal rib instability is a critical challenge in steeply inclined, large-mining-height longwall faces containing coal seam partings. Taking the No. 4103 working face of Changcheng No. 1 Coal Mine as an engineering case, this study integrates theoretical analysis, numerical simulation, and field verification to investigate the underlying failure mechanisms. A segmented shear–slip mechanical model is developed using limit-equilibrium analysis to derive the stability margin, through which the coupled effects of seam dip, mining height, and parting properties on rib stability are quantified. Three-dimensional distinct-element simulations further reveal that rib deformation follows a consistent spatial pattern—middle section > upper section > lower section—and that the position and number of partings modify the load-transfer path and failure-surface continuity. Based on these findings, a coordinated control strategy is implemented, incorporating zoned differential support, dynamic adjustment of mining parameters, and localized reinforcement. Field application substantially reduces the frequency and depth of rib spalling and improves support stability and production continuity. The results provide a practical basis for coal rib control under comparable steeply inclined, large-mining-height conditions.

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Publication Details

Journal
Eng—Advances in Engineering
Published
2026-09-01
DOI
https://doi.org/10.3390/eng7090442
Primary Topic
Rock Mechanics and Modeling
Type
article
Field-Weighted Citation Impact
0.00

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article

Coal Rib Instability and Differential Control in Steeply Inclined Working Faces with Coal Seam Partings

Chuanwei Zang, Miao Chen, Linchong Zhang, Zhengyang Zhao et al.
Eng—Advances in Engineering
Rock Mechanics and Modeling
article

Coal Rib Instability and Differential Control in Steeply Inclined Working Faces with Coal Seam Partings

Chuanwei Zang, Miao Chen, Linchong Zhang, Zhengyang Zhao, Huanlei Sun, Chao Wang, Gang Feng
article en

Abstract

Coal rib instability is a critical challenge in steeply inclined, large-mining-height longwall faces containing coal seam partings. Taking the No. 4103 working face of Changcheng No. 1 Coal Mine as an engineering case, this study integrates theoretical analysis, numerical simulation, and field verification to investigate the underlying failure mechanisms. A segmented shear–slip mechanical model is developed using limit-equilibrium analysis to derive the stability margin, through which the coupled effects of seam dip, mining height, and parting properties on rib stability are quantified. Three-dimensional distinct-element simulations further reveal that rib deformation follows a consistent spatial pattern—middle section > upper section > lower section—and that the position and number of partings modify the load-transfer path and failure-surface continuity. Based on these findings, a coordinated control strategy is implemented, incorporating zoned differential support, dynamic adjustment of mining parameters, and localized reinforcement. Field application substantially reduces the frequency and depth of rib spalling and improves support stability and production continuity. The results provide a practical basis for coal rib control under comparable steeply inclined, large-mining-height conditions.

Eng—Advances in EngineeringVol. 7(9)
Huainan Mining Industry Group (China) (CN), Shandong University of Science and Technology (CN)
Natural Science Foundation of Shandong Province
Openalex Percentile: Top 19%
Rock Mechanics and Modeling
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Coal Rib Instability and Differential Control in Steeply Inclined Working Faces with Coal Seam Partings — Chuanwei Zang, Miao Chen, et al. · Eng—Advances in Engineering (2026) | TGRS Research Map | TGRS