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瓦斯涌出量与构造煤关联性预测研究 被引量:3
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作者 田世祥 林华颖 +3 位作者 马瑞帅 许石青 曾建华 余照阳 《中国安全科学学报》 CAS CSCD 北大核心 2019年第10期105-109,共5页
为研究煤矿开采钻进过程中构造煤瓦斯涌出量随钻进深度的变化特性,以薛湖煤矿2104运输巷掘进工作面为试验研究对象,采用自主研制的连续流量法预测系统中瓦斯流量情况,测定钻孔瓦斯涌出量及钻进深度数据;根据初始瓦斯涌出量变化趋势,预... 为研究煤矿开采钻进过程中构造煤瓦斯涌出量随钻进深度的变化特性,以薛湖煤矿2104运输巷掘进工作面为试验研究对象,采用自主研制的连续流量法预测系统中瓦斯流量情况,测定钻孔瓦斯涌出量及钻进深度数据;根据初始瓦斯涌出量变化趋势,预测钻孔前方构造煤的位置。研究结果表明:在原生结构煤体中钻进时,钻孔瓦斯涌出量随钻进深度增加而增大,钻孔瓦斯涌出曲线平稳;钻进到构造煤时,钻孔瓦斯涌出量迅速增加、曲线变陡;钻进为9.9 m时,钻孔瓦斯涌出量出现突变点;10.2 m时,瓦斯涌出量达到最大值,为89.9 L/min,是正常值的2.05倍;以3号钻孔为例,采掘活动验证了该预测方法的准确性和精度。 展开更多
关键词 破碎带 钻孔瓦斯涌出量 构造煤预测 连续流量法 瓦斯解吸
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赵庄井田3~#煤层碎粒-糜棱煤分布预测
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作者 杜天林 吴信波 +2 位作者 李贵红 宋孝忠 刘钰辉 《煤炭技术》 CAS 2020年第4期98-101,共4页
以赵庄井田3#煤层为研究对象,通过煤芯和煤壁观测描述确定了区内煤体结构类型。分析了不同煤体结构的测井响应特征,选择有利于判识煤体结构的关键测井曲线。根据测井曲线幅值变化特征和分层划分原则,探讨该区煤体结构划分方案,重点对区... 以赵庄井田3#煤层为研究对象,通过煤芯和煤壁观测描述确定了区内煤体结构类型。分析了不同煤体结构的测井响应特征,选择有利于判识煤体结构的关键测井曲线。根据测井曲线幅值变化特征和分层划分原则,探讨该区煤体结构划分方案,重点对区内碎粒-糜棱煤的分布进行了预测。研究结果表明,赵庄井田3#煤层的煤体结构有碎裂结构、碎粒结构和糜棱结构,利用测井曲线判识将其划分为碎裂结构和碎粒-糜棱结构2类较为合理,预测碎粒-糜棱煤主要位于3#煤层下部,厚度0.9 m左右,区内南北厚、中部较薄。 展开更多
关键词 赵庄井田 体结构 测井判识 构造煤预测
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THE "STRUCTURE-STRATIGRAPHY ANALYSIS" METHOD APPLIED IN THE PREDICTION OF SMALLER-SCALED STRUCTURE IN UNDERGROUND MINING
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作者 李增学 魏久传 李守春 《Journal of Coal Science & Engineering(China)》 1996年第1期61-66,共6页
Structure-stratigraphy analysis" is a new method used in the study and prediction of and small-scaled structures in coal mines. The object of this method is coalbed structure that includes the folds and fracture ... Structure-stratigraphy analysis" is a new method used in the study and prediction of and small-scaled structures in coal mines. The object of this method is coalbed structure that includes the folds and fracture occurred in the vicinity of coal-seams. It emphases the analysis on the relationship between structural deformation and stratal lithologic combination.Based on the statistics of a series of related parameters in stratigraphy and structure,comprehensive analysis and drawing, this method may provide a good means for the quantitative evaluation and prediction of small scale structure in coal mines. 展开更多
关键词 structure-stratigraphy analysis small-scaled structure structural prediction
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Effect of an electrostatic field on gas adsorption and diffusion in tectonic coal 被引量:4
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作者 Jian Kuo Lei Dongji +2 位作者 Fu Xuehai Zhang Yugui Li Hengle 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2015年第4期607-613,共7页
The characteristics of adsorption, desorption, and diffusion of gas in tectonic coal are important for the prediction of coal and gas outbursts. Three types of coal samples, of which both metamorphic grade and degree ... The characteristics of adsorption, desorption, and diffusion of gas in tectonic coal are important for the prediction of coal and gas outbursts. Three types of coal samples, of which both metamorphic grade and degree of damage is different, were selected from Tongchun, Qilin, and Pingdingshan mines. Using a series of experiments in an electrostatic field, we analyzed the characteristics of gas adsorption and diffusion in tectonic coal. We found that gas adsorption in coal conforms to the Langmuir equation in an electrostatic field. Both the depth of the adsorption potential well and the coal molecular electroneg- ativity increases under the action of an electrostatic field. A Joule heating effect was caused by changing the coal-gas system conductivity in an electrostatic field. The quantity of gas adsorbed and AP result from competition between the depth of the adsorption potential well, the coal molecular electronegativ- ity, and the Joule heating effect. △P peaks when the three factors control behavior equally. Compared with anthracite, the impact of the electrostatic field on the gas diffusion capacity of middle and high rank coals is greater. Compared with the original coal, the gas adsorption quantity,△P, and the gas diffusion capacity of tectonic coal are greater in an electrostatic field. In addition, the smaller the particle size of tectonic coal, the larger the△P. 展开更多
关键词 Electrostatic field Tectonic coal Depth of adsorption potential well Joule heating effect Initial velocity of gas diffusion
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