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Drilling large diameter cross-measure boreholes to improve gas drainage in highly gassy soft coal seams

机译:钻大直径的交叉钻孔,以改善高瓦斯软煤层的瓦斯抽采

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Reducing gas content via cross-measure boreholes is one of the primary gas control technologies in China, where most outburst-threat coal seams are soft and highly gassy. Regardless of the significant costs associated with drilling boreholes, the gas drainage rate remains low because of the low permeability of the soft coal seam and the small influence zone of a single borehole. In this paper, the effect of increasing borehole diameter on coal seam permeability is discussed and a new method for drilling large diameter cross-measure boreholes by using the water-jet technique is proposed. Numerical modeling results indicate that the plastic zone and the effective influence zone of one borehole expand as borehole diameter increases, and the interaction between adjacent boreholes is strengthened. The field test shows that when the borehole diameter is 1.0 m, the effective influence zone radius reaches 4 m which is 2.67 times larger than that of an ordinary borehole. After using the new method, the number of cross-measure boreholes per hundred meters and the length of cross-measure boreholes per meter can reduce by 32.5% and 42.9%, respectively. In addition, the gas drainage rate reaches 52.1%, and the monthly excavation length of coal roadway increases from 50-70 m to 109 m. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过跨界钻孔减少瓦斯含量是中国的主要瓦斯控制技术之一,在中国,大多数突出威胁性煤层都是柔软且高度瓦斯的。不管与钻孔相关的大量成本,由于软煤层的低渗透性和单个钻孔的影响区较小,因此瓦斯抽采率仍然较低。本文讨论了增加井眼直径对煤层渗透率的影响,并提出了一种利用喷水技术钻探大口径跨井眼的新方法。数值模拟结果表明,一个井眼的塑性区和有效影响区随井眼直径的增大而扩大,相邻井眼之间的相互作用增强。现场测试表明,当井眼直径为1.0 m时,有效影响区半径达到4 m,是普通井眼的2.67倍。使用新方法后,每百米的交叉测量孔数和每米的交叉测量孔的长度可以分别减少32.5%和42.9%。此外,瓦斯抽采率达到52.1%,煤巷的每月开挖长度从50-70 m增加到109 m。 (C)2015 Elsevier B.V.保留所有权利。

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