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首页> 外文期刊>KSCE journal of civil engineering >Experimental Study on Key Parameters of Bidirectional Cumulative Tensile Blasting with Coal-Containing Composite Roof
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Experimental Study on Key Parameters of Bidirectional Cumulative Tensile Blasting with Coal-Containing Composite Roof

机译:含煤复合屋顶双向累积拉伸爆破关键参数的试验研究

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摘要

To improve the effectiveness of the directional-predetermined crack blasting in the weak and alternate composite roof, this paper took the coal-containing composite roof of the 12201 working face of Halagou Coal Mine as the engineering background, and based on the technical principles of roof cutting pressure releasing gob-side entry retaining, comprehensive used of theoretical analysis, field experiments and other means, carried out in-depth research on the shaped energy blasting method and parameter design of the coal-containing composite roof. The results show: Through theoretical analysis, in the process of shaped energy blasting, the air column in the hole can reduce the peak blast pressure, which can effectively prevent the weak surrounding rock in the hole from being damaged in the non-cumulative direction and enhance the pre-splitting effect. During detonation at the bottom, the instantaneous pressure in the blast hole is lower than that of detonation at the top, and the action time of blast pressure is longer than detonation at the top. When the buried depth of the explosive (near the blast hole) is less than the critical depth, a "V"-shaped blasting funnel will be formed after the rock blasting, and the critical depth is proportional to the charge. Through field tests on the charge quantity and the length of the sealing mud, when the blast hole depth is 6m, the charge parameters of "3+2+0+1" have a better effect of energy-concentrating blasting, and the crack rate reaches 87%. Besides, field tests have shown that when shaped energy blasting is carried out on soft and hard rock formations, the stemming separation in the shaped energy tube at the interlayer position can ensure the directional pre-cracking effect of hard rock, while effectively avoiding damage to the weak rock formation in the non-cumulative direction.
机译:为了提高弱和交替复合屋顶定向预定裂纹爆破的有效性,本文采用了煤炭煤矿12201年工作面为工程背景,基于屋顶技术原则切割压力释放胶合侧进入保留,综合使用的理论分析,现场实验等手段,对含煤复合屋顶的形状能喷射方法和参数设计进行了深入研究。结果表明:通过理论分析,在形状的能量爆破过程中,孔中的空气柱可以减少峰值爆破压力,这可以有效地防止孔中的弱周围岩石在非累积方向上损坏。增强预分裂效果。在底部的爆炸过程中,喷射孔中的瞬时压力低于顶部的爆炸的瞬时压力,并且鼓压的动作时间比顶部的爆炸长。当爆炸爆炸的深度(在爆破孔附近)小于临界深度时,将在岩石爆破之后形成“V”形爆破漏斗,并且临界深度与电荷成比例。通过对电荷量和密封泥的长度的现场测试,当喷射孔深度为6m时,“3 + 2 + 0 + 1”的电荷参数具有更好的能量集中爆破效果,以及裂缝率达到87%。此外,现场试验表明,当在柔软和硬岩形成上进行成形的能量爆破时,在夹层位置的成形能管中的杆状分离可以保证硬岩的定向预开裂效果,同时有效地避免损坏非累积方向的弱岩层。

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