Cooperative load-carrying mechanism and control technology of the gob-side entry retaining by roof cutting and goaf filling

IF 1.827 Q2 Earth and Planetary Sciences Arabian Journal of Geosciences Pub Date : 2024-12-24 DOI:10.1007/s12517-024-12160-7
Hongchun Xu, Hang Yin, Pei Ge
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Abstract

The deep mining industry commonly encounters significant challenges, including large displacements of the roof in the gob-side entry retaining, and large deformations and failures of the filling body, which seriously compromise the structural safety and reliability of mines. In this study, we focus on a specific engineering case of the 8318 working face from the Xinzhou coal mine, employing the methodology of roof cutting for pressure relief and goaf filling with gangue reinforcement. Through a comprehensive approach involving numerical analysis, theoretical derivation, and experimental validation, the key parameters of the gob-side entry retaining by roof cutting, and the cooperative load-carrying mechanism of gangue reinforcement in gob-side entry retaining by cutting roof were systematically investigated. The numerical simulations and underground mine pressure monitoring data demonstrated that the optimum roof cutting height is 10 m at an optimum roof cutting angle of 8°. The proposed cooperative load-carrying technology of gob-side entry retaining by roof cutting significantly reduced the peak vertical stresses in the centre of the roof and the filling body by 22.6% and 43.4%, respectively. Furthermore, individual pillar stress levels showed notable reductions, with the maximum working stress and average stress decreasing by 34.2% and 47.8%, respectively. The practical implementation of our study offers valuable guidance in the control of surrounding rock in deep mining, thereby contributing significantly to the advancement in the field of surrounding rock support control.

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切顶充填空侧进路协同承载机理及控制技术
深部采矿行业普遍面临着采空区侧进路支护顶板大位移、充填体大变形破坏等重大挑战,严重影响矿山结构安全可靠。本文以忻州煤矿8318工作面为具体工程实例,采用截顶卸压、矸石充填加固采空区的方法进行研究。通过数值分析、理论推导、实验验证等综合方法,系统研究了采空区截顶留巷关键参数及采空区截顶留巷矸石加固协同承载机理。数值模拟和井下压力监测数据表明,最佳顶板切割高度为10 m,最佳顶板切割角度为8°。提出的采空区侧进巷切顶协同承载技术可显著降低顶板中部和充填体中部的峰值垂直应力,分别降低22.6%和43.4%。各矿柱应力水平明显降低,最大工作应力和平均应力分别下降34.2%和47.8%。本研究的实际实施为深部开采围岩控制提供了有价值的指导,从而对围岩支护控制领域的发展做出了重要贡献。
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来源期刊
Arabian Journal of Geosciences
Arabian Journal of Geosciences GEOSCIENCES, MULTIDISCIPLINARY-
自引率
0.00%
发文量
1587
审稿时长
6.7 months
期刊介绍: The Arabian Journal of Geosciences is the official journal of the Saudi Society for Geosciences and publishes peer-reviewed original and review articles on the entire range of Earth Science themes, focused on, but not limited to, those that have regional significance to the Middle East and the Euro-Mediterranean Zone. Key topics therefore include; geology, hydrogeology, earth system science, petroleum sciences, geophysics, seismology and crustal structures, tectonics, sedimentology, palaeontology, metamorphic and igneous petrology, natural hazards, environmental sciences and sustainable development, geoarchaeology, geomorphology, paleo-environment studies, oceanography, atmospheric sciences, GIS and remote sensing, geodesy, mineralogy, volcanology, geochemistry and metallogenesis.
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