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首页> 外文期刊>Environmental & Engineering Geoscience >Effects of Igneous Intrusions on Coal Pore Structure, Methane Desorption and Diffusion within Coal, and Gas Occurrence
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Effects of Igneous Intrusions on Coal Pore Structure, Methane Desorption and Diffusion within Coal, and Gas Occurrence

机译:火成侵入对煤孔结构,甲烷解吸和煤中扩散的影响及气体发生

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摘要

Igneous intrusions are distributed extensively in the Huaibei coalfield, China. In the Haizi coal mine, coal and gas outbursts have occurred 11 times under an extremely thick sill (average thickness 120 m). This paper presents the results of a study on the influences of the igneous rock on coal pore structure, methane desorption and diffusion properties, and coal seam gas occurrence. The results show that the thermal evolution effect of the igneous sill prominently increases the specific surface area and pore volume of the affected coal. Samples HZ1 and HZ2 (No. 7 and No. 9 seams, respectively) closer to the sill possess improved pore connectivity, while samples HZ3 and HZ4 (away from the sill) and sample HZ5 (without sill covering) of the No. 10 coal seam have poor pore connectivity. Moreover, the effective diffusivity and desorption indexes of the coal increase progressively closer to the sill. The thermal effect of the igneous sill promotes the development of coal pores, thus leading to better pore connectivity, more desorbed gas, and much higher gas desorption and diffusion rates. Consequently, the thermal evolution effect of the igneous sill can change the occurrence and characteristics of the entrapment effect in the underlying coal seams, thus resulting in a high probability of gas hazards or even coal and gas outbursts in the coal seam close to the igneous sill. Engineering practices show that the affected coal seams have high gas content, gas pressure, and gas emission amounts as well as a high propensity for coal and gas outburst.
机译:发火机入侵在中国淮北煤田广泛分发。在海子煤矿中,煤炭和天然气爆发在极厚的窗台下发生了11次(平均厚度120米)。本文介绍了对火岩对煤孔结构,甲烷解吸和扩散性能的影响的研究结果,以及煤层气发生。结果表明,火成岩的热演化效果突出地增加了受影响煤的比表面积和孔隙体积。将Hz1和Hz2(分别为7和9号接缝)更接近窗台具有改善的孔连接,而样品Hz3和Hz4(远离窗台)和10号煤的样品Hz5(没有窗台覆盖物)缝合孔隙连接差。此外,煤的有效扩散和解吸指数逐渐更接近窗台。发泡窗台的热效应促进了煤孔的发育,从而导致更好的孔连接,更吸附的气体,以及更高的气体解吸和扩散速率。因此,火原岩的热演化效果可以改变底层煤层中夹带效果的发生和特征,从而导致煤层中的气体危险甚至煤炭和煤气爆发的高概率,靠近火油梯子。工程实践表明,受影响的煤层具有高气体含量,气体压力和气体排放量以及煤气和燃气突出的高度倾向。

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