煤炭工程 ›› 2025, Vol. 57 ›› Issue (9): 156-164.doi: 10. 11799/ ce202509021

• 研究探讨 • 上一篇    下一篇

基于CT扫描技术的煤岩瓦斯渗流规律研究

胡皓宇   

  1. 煤炭科学研究总院 开采研究分院,北京 100013

  • 收稿日期:2024-10-23 修回日期:2025-01-11 出版日期:2025-09-10 发布日期:2025-10-13
  • 通讯作者: 胡皓宇 E-mail:397417977@qq.com

Study on gas seepage law of coal and rock based on CT scanning technology

  • Received:2024-10-23 Revised:2025-01-11 Online:2025-09-10 Published:2025-10-13

摘要:

为研究煤岩受载后裂隙网络构成特征以及瓦斯流动规律,本研究采用CT扫描技术分析了煤岩受载过程中裂隙微观参数变化以及宏观裂隙形态特征, 结合COMSOL数值模拟软件研究了瓦斯流动过程中煤岩裂隙与瓦斯流体的相互作用规律。结果表明:砂岩、冲积层黏土和煤试件受载破坏后裂隙张开度集中在0.1~0.2mm,裂隙倾角分别集中在80°~90°,55°~70°,50°~90°;裂隙长度尺寸以及扩展方向不同导致裂隙形态不同,砂岩贯通岩石上下表面,整体破坏严重,破坏后呈“双斜面剪切破坏”,煤试件破坏后呈“单斜面剪切破坏”。砂岩裂隙贯通渗透率大,整个截面上流速超过0.01m/s,黏土和煤试件流速增长区域范围小。受瓦斯流动压力影响,砂岩试件内部压力大于0.5MPa的区域最大,体积占比达到21%,冲积层黏土体积占比16%,煤试件体积占比达到11%;裂隙形态改变引起瓦斯压力梯度变化,垂直裂隙区域气压分布形状呈一次函数线性增加,裂隙尖端区域气压分布形状呈二次函数变化。

关键词:

CT扫描技术 , 裂隙网络 , 裂隙参数 , 瓦斯流动 , 渗流速度

Abstract:

Abstract: In order to study the composition characteristics of fracture network and the law of gas flow after coal and rock are loaded, this paper uses CT scanning technology to study the changes of fracture microscopic parameters and macroscopic fracture morphological characteristics during the loading process of coal and rock, and COMSOL numerical simulation is used to study the interaction law between coal and rock fracture and gas fluid in the process of gas flow. The results show that the fissure aperture degree of sandstone, alluvial clay and coal specimens is concentrated in 0.1-0.2mm after loading failure, and the crack dip angle is concentrated in 80°-90°, 55°-70° and 50°-90° respectively. The different length and expansion direction of the fracture lead to different fracture morphology. The sandstone penetrates the upper and lower surfaces of the rock, and the overall damage is serious. After the failure, it is ' double inclined plane shear failure ', and the coal specimen is ' single inclined plane shear failure '. The permeability of sandstone fractures is large, and the flow velocity on the whole section exceeds 0.01 m/s. The flow velocity growth area of clay and coal specimens is small. Affected by the gas flow pressure, the area where the internal pressure of the sandstone specimen is greater than 0.5 MPa is the largest, with a volume ratio of 21%, an alluvial clay volume ratio of 16%, and a coal specimen volume ratio of 11%. The change of fracture morphology causes the change of gas pressure gradient. The shape of gas pressure distribution in the vertical fracture area increases linearly, and the shape of gas pressure distribution in the fracture tip area changes with a quadratic function.

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