Bolting control of a coal roadway under multi-seam mining – a case study

IF 1.2 4区 工程技术 Q3 MINING & MINERAL PROCESSING Archives of Mining Sciences Pub Date : 2024-06-10 DOI:10.24425/ams.2024.150347
Kunyou Zhou, Jiaxuan Wu, Jiliang Kann, Ke Yang, Xiangzhuo Zhao, Yunpeng Li
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Abstract

The stress field of the roadway under multi-seam mining is complex due to multiple mining disturbances. The bolting control of the roadway under multi-seam mining has attracted wide concern. Moreover, conventional metal supporting materials in the coal rib are prone to sparks when shearer works, and new bolting materials are urgently needed. Taking a track roadway under multi-seam mining in China as the engineering case, the mining-induced stress field of the track roadway under multi-seam mining was investigated through numerical simulation and lab and field tests. The test evaluated the mechanical behaviour of FRP bolts and rebar bolts, as well as their anchorage performance under different conditions. Comparative analysis was conducted on the deformation and failure characteristics of the roadway under different bolting parameters to determine an optimised bolting scheme for the track roadway in the I011501 working face. The results show that the goafs and the remaining coal pillars in the overlying coal seams increase the stress in the track roadway in the I011501 working face, especially for the lower rib and roof. The tensile force of the 27 mm-diameter FRP bolt is 1.2 times that of the 22 mm-diameter rebar bolt. The shear strength of the full-length anchored FRP bolt is 70.8% higher than that of the end-anchored bolt. The peak stress of the full-length-anchored bolt is in the shallow coal and rock mass. The optimised bolting scheme of the track roadway subject to multi-seam mining is determined, and the cost of the optimised bolting scheme is lower by about 25.2%, as compared with the primary bolting scheme. Numerical simulation and field application results indicate that the optimised bolting scheme can significantly reduce the deformation and plastic failure of the track roadway in the I011501 working face, which is under multi-seam mining conditions.
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多煤层开采下煤炭巷道的锚固控制 - 案例研究
由于多重采矿扰动,多煤层开采下巷道的应力场非常复杂。多煤层开采下巷道的锚固控制受到广泛关注。此外,传统的煤肋金属支护材料在剪切机工作时容易产生火花,急需新的锚固材料。以中国多煤层开采下的轨道巷道为工程案例,通过数值模拟、实验室和现场试验,研究了多煤层开采下轨道巷道的采动应力场。试验评估了玻璃钢螺栓和螺纹钢螺栓的力学性能,以及它们在不同条件下的锚固性能。对不同锚固参数下巷道的变形和破坏特征进行了对比分析,以确定 I011501 工作面轨道巷道的优化锚固方案。结果表明,上覆煤层中的羊群和残留煤柱增加了 I011501 工作面轨道巷道的应力,尤其是下筋和顶板。直径 27 毫米玻璃钢螺栓的拉力是直径 22 毫米螺纹钢螺栓的 1.2 倍。全长锚固玻璃钢螺栓的剪切强度比端部锚固螺栓高 70.8%。全长锚固螺栓的峰值应力位于浅层煤岩层。确定了多煤层开采轨道巷道的优化锚固方案,与主要锚固方案相比,优化锚固方案的成本降低了约 25.2%。数值模拟和现场应用结果表明,优化后的锚固方案可显著减少多煤层开采条件下 I011501 工作面轨道巷道的变形和塑性破坏。
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来源期刊
Archives of Mining Sciences
Archives of Mining Sciences 工程技术-矿业与矿物加工
CiteScore
2.40
自引率
16.70%
发文量
0
审稿时长
20 months
期刊介绍: Archives of Mining Sciences (AMS) is concerned with original research, new developments and case studies in mining sciences and energy, civil engineering and environmental engineering. The journal provides an international forum for the publication of high quality research results in: mining technologies, mineral processing, stability of mine workings, mining machine science, ventilation systems, rock mechanics, termodynamics, underground storage of oil and gas, mining and engineering geology, geotechnical engineering, tunnelling, design and construction of tunnels, design and construction on mining areas, mining geodesy, environmental protection in mining, revitalisation of postindustrial areas. Papers are welcomed on all relevant topics and especially on theoretical developments, analytical methods, numerical methods, rock testing, site investigation, and case studies.
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