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Coal pillar size design and surrounding rock control techniques in deep longwall entry

机译:深层长墙入口煤柱尺寸设计及周边岩体控制技术

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摘要

We combine experimental data, FLAC3D numerical simulation results, and on-site industrial tests to study the problem of coal pillar size design in longwall entry. The Zhaozhuang coal mine located in Changzhi City, Shanxi Province, China, is used as a case study. We use an inversion calculation of the double-yield constitutive model to improve the reliability of the simulation results. Calculated results are fitted using a theoretical value of the Salamon strength formula to obtain mechanical parameters of the rock mass in the goaf, which are used to numerically simulate its compaction-bearing characteristics. The stress distribution state and plastic zone failure characteristics of entry surrounding rock under different coal pillar widths during mining are obtained by numerical calculation. The results show that increased coal pillar size leads to a gradual shift of the peak stress from the solid coal side to the coal pillar side. Use of an 8-m coal pillar generates a lower stress environment and has sufficient bearing capacity to remain stable. Based on the results obtained here, we propose differentiated support techniques that address the differential deformation and stress distribution of surrounding rock both sides of the goaf-side entry. On-site industrial tests show that the proposed support technology effectively reduces the deformation variation and ensures safe entry use during servicing.
机译:我们将实验数据,FLAC3D数值模拟结果和现场工业试验结合起来研究了长壁入口处的煤柱尺寸设计问题。赵庄煤矿位于中国山西省长治市,被用作案例研究。我们使用双产量组成型模型的反演计算来提高模拟结果的可靠性。计算结果使用萨拉莫龙强度公式的理论值装配,以获得GOF中的岩体的机械参数,其用于数值上模拟其压实轴承特性。通过数值计算得到不同煤柱宽度下进入围岩的应力分布状态和塑料区故障特性。结果表明,增加的煤柱尺寸导致从固体煤侧到煤柱侧的峰值应力的逐渐转变。使用8米的煤柱产生较低的应力环境,并且具有足够的承载能力以保持稳定。基于此处获得的结果,我们提出了解决围绕岩石侧进入的周围岩石两侧的差动变形和应力分布的差异化支持技术。现场工业测试表明,所提出的支持技术有效地降低了变形变形,并确保了在维修期间的安全进入。

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