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巷道锚索支护全断面受力变形协同监测研究OA

Study on collaborative monitoring of full-section stress and deformation in roadway cable support

中文摘要英文摘要

针对综放工作面巷道在掘进期间围岩变形与锚索受力以点代面多、协同全断面监测少的现状,文章以淮北矿业集团袁店一井煤矿 826 综放工作面为工程依托,现场集成高精度激光测距仪、三维点云扫描与锚索应力传感器,对掘进过程中监测断面附近围岩应力重分布及巷道变形演化规律进行了分析,明确了综放工作面掘进巷道非对称矿压显现特征,并通过建立数值模型,模拟巷道掘进期间锚索受力变化与围岩受力变形情况,验证了巷道两帮受力与变形的空间分布形态及影响范围.研究结果表明:机巷掘进过程中围岩应力与变形整体呈现出"工作面侧高、实体煤侧低"的非对称分布特征;工作面侧肩部锚索轴力显著高于实体煤侧,顶底板垂直位移随掘进距离增加先快速增大后趋于稳定,且工作面侧围岩位移变化明显大于实体煤侧;三维点云扫描表明,机巷沿程可划分为显著影响段、明显影响段和基本不受影响段,两帮变形同样表现出非对称特征.该研究系统揭示了综放工作面掘进巷道非对称矿压显现规律,为类似地质条件下掘进巷道支护效果监测及方案优化设计提供了科学依据和借鉴.

[Objective]In fully mechanized top-coal caving faces,the deformation of surrounding rock and the loading response of anchor cables during roadway excavation are typically assessed through scattered monitoring points rather than coordinated full-section monitoring.This approach complicates the accurate identification of the spatial distribution of stress redistribution,surrounding rock deformation,and support response,particularly under asymmetric mining pressure.To address this issue,this study was conducted at the 826 fully mechanized top-coal caving face in Yuandian No.1 Coal Mine of Huaibei Mining Group,with the aim of investigating the stress redistribution of surrounding rock and the evolution of roadway deformation near the monitored section during excavation.The research sought to reveal the asymmetric behavior of strata in the excavation roadway and to verify the spatial distribution characteristics and influence range of stress and deformation through numerical simulation.The findings are expected to provide scientific support for monitoring,stability evaluation,and the optimization of support design in excavation roadways under similar geological conditions.[Methods]A coordinated field monitoring system was established,integrating a high-precision laser rangefinder,three-dimensional(3D)point-cloud scanning,and anchor-cable stress sensors.This integrated approach enabled the synchronous acquisition of deformation data for the roof,floor,and both ribs,as well as continuous recording of axial-force variations in anchor cables during excavation.The laser rangefinder was used to monitor the convergence and displacement of the roadway profile,whereas 3D point-cloud scanning was employed to reconstruct the overall geometry of the roadway and capture the spatial evolution of deformation along the excavation direction.In addition,anchor-cable stress sensors were installed at critical positions in the support system to measure variations in cable loading at different excavation locations and stages.Based on the field monitoring results,the stress redistribution and deformation evolution of the surrounding rock near the monitored section were analyzed in relation to the excavation distance.A numerical simulation model was also established according to the geological conditions and engineering layout of the 826 face and was then used to simulate variations in anchor-cable force,surrounding rock stress,and rock-mass deformation during excavation and to validate the spatial distribution patterns observed in the field.[Results]Results indicate that during roadway excavation,the stress and deformation of surrounding rock display a pronounced asymmetric distribution pattern characterized by higher values on the working-face side and lower values on the solid-coal side.The strata behavior on the working-face side is significantly stronger than that on the solid-coal side,indicating a clear nonuniform mechanical response during excavation.The axial force in the shoulder anchor cable on the working-face side is significantly greater than that on the solid-coal side,demonstrating that the support structure on the working-face side bears a more concentrated load.The vertical displacement of the roof and floor increases rapidly during the early stages of excavation and then gradually stabilizes as the excavation influence evolves.In addition,the displacement of surrounding rock on the working-face side is notably greater than that on the solid-coal side,further confirming the asymmetric deformation characteristics.The 3D point-cloud scanning results indicate that the roadway can be divided into three zones along its length:a significantly affected zone,an obviously affected zone,and a basically unaffected zone.The deformation of the two ribs also shows a pronounced asymmetric pattern.Numerical simulation results align well with field monitoring data,further validating the spatial distribution of rib loading and deformation as well as the extent of the excavation influence.[Conclusions]This study systematically reveals the asymmetric strata behavior of a roadway excavated in a fully mechanized top-coal caving face.The redistribution of surrounding rock stress,roadway deformation,and the anchor cable loading response all exhibit distinct asymmetry,with the working-face side serving as the dominant control area.The integrated monitoring method,which combines laser ranging,3D point-cloud scanning,and anchor-cable stress sensing,overcomes the limitations of conventional point-based observation,providing a more comprehensive understanding of full-section deformation and support response.The combined analysis of field monitoring and numerical simulation effectively verifies the spatial characteristics and influence range of asymmetric mining pressure,offering a scientific basis and practical reference for monitoring support effects and optimizing support parameters in excavation roadways under similar conditions.

陈登红;何道顺;张进京;庞宁;鲁德沛

安徽理工大学 矿业工程学院,安徽 淮南 232001安徽理工大学 矿业工程学院,安徽 淮南 232001安徽理工大学 矿业工程学院,安徽 淮南 232001安徽理工大学 矿业工程学院,安徽 淮南 232001金川集团镍钴股份有限公司龙首矿,甘肃 金昌 737100

矿业与冶金

锚索支护全断面非对称矿压显现特征监测设计模拟研究

anchor cable supportfull-sectionasymmetric ground pressure manifestation characteristicsmonitoring designsimulation study

《实验技术与管理》 2026 (7)

62-70,9

淮北矿业股份有限公司-安徽理工大学研究生联合培养基地(ZY7232411)安徽理工大学煤炭精准开采现代产业学院(ZY738251103)安徽理工大学研究生创新基金(2025cx2028)

10.16791/j.cnki.sjg.2026.07.007

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