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Coal Burst Induced by Horizontal Section Mining of a Steeply Inclined, Extra-Thick Coal Seam and Its Prevention: A Case Study from Yaojie No. 3 Coal Mine, China

机译:水平段采矿抗煤突发,巨大倾斜,厚厚的煤层及其预防:姚杰No.3煤矿的案例研究

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At present, coal bursts in working faces of steeply inclined coal seams (SICSs) have rarely been investigated, and current research focuses on the influences of roof breaking and instability of overlying structures in goaf on coal bursts; however, the stress state of coal masses in working faces being subjected to coal bursts is rarely researched. To overcome the above defects, a model for analysing stresses on coal masses in horizontal section of SICSs was established based on the coal burst that occurred in LW5521-20, Yaojie No. 3 Coal Mine, Lanzhou, Gansu Province, China. Moreover, the mechanism underpinning such a coal burst in SICSs was analysed based on the superposition mechanism of dynamic and static loads. The results show that the side abutment pressure near the roof and floor under the horizontal sections of SICSs is asymmetrically distributed in the vertical direction in which the peak of side abutment pressure near the roof is closer to the working face and therefore is taken as the source of static loads for coal bursts in working faces. When the superimposed dynamic load caused by hanging roof breaking and high static load borne in the coal masses is larger than the critical load for coal burst inception, a coal burst will occur. Furthermore, the superimposed dynamic load induced by coal bursts on the support and the initial static load on the supports are larger than their limiting load, which leads to support collapse and eventually causes dynamic failure of the working face. The coal burst in working faces in horizontal sections of SICSs can be prevented by using deep-hole presplit blasting in a hard roof, destress blasting in coal masses, and support optimisation of working faces, showing a favourable preventative effect.
机译:目前,很少调查彻底倾斜煤层(SICSS)工作面上的煤爆发,目前的研究侧重于屋顶破碎和覆盖结构在煤爆发中的覆盖结构的影响;然而,很少研究煤突发的工作面中的煤炭质量的应力状态。为了克服上述缺陷,基于LW5521-20,瑶家第3煤矿,甘肃省,甘肃省,甘肃省兰州3号煤矿,建立了一种分析SICS水平部分煤炭质量的模型。此外,基于动态和静载荷的叠加机理分析了在SICSS中占据这种煤突发的机制。结果表明,在SICS水平部分下的屋顶和地板附近的侧面邻接压力在垂直方向上是不对称的分布,其中屋顶附近的侧面邻接压力的峰值更靠近工作面,因此被视为源极煤爆静电负荷在工作面上。当悬挂屋顶破碎和高静电载荷引起的叠加动态载荷大于煤突发成立的临界负荷时,将发生煤突发。此外,由煤突发引起的支撑件上的叠加的动态载荷和支撑件上的初始静载荷大于其限制负载,这导致支撑塌陷,最终导致工作面的动态失效。通过在煤炭质量的硬顶,裂缝爆破中使用深孔预布爆破,可以防止在SICS水平部分工作面上的煤爆裂,并支持工作面优化,显示出有利的预防效果。

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