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液态CO2相变驱替煤层CH4钻孔压力脉动形成机制

Mechanism of pressure pulsation in borehole during the process of liquid CO2 phase change displacement for coal seam CH4

  • 摘要: 煤层钻孔压注液态CO2是提高CH4抽采效果的有效措施,以井下实际压注过程为原型建立顺层钻孔压注液态CO2相变驱替煤层CH4物理模型,在分析钻孔压力组成,结合理想气体状态方程、热量计算公式、傅里叶导热定律等传热学基本理论的基础上,阐述了钻孔压力脉动形成的本质原因和影响因素,并给出了数学表达式;由此可知恒压注入时,钻孔压力变化取决于液态CO2相变压力,而液态CO2相变压力受压注过程有效导热系数和孔内实时温度共同调控,为此,基于径向热流法原理开展了等高不等直径煤样液态CO2压注过程有效导热系数随煤样表面温度变化规律测定试验,据此得出压注过程中钻孔内液态CO2相变压力的理论预期值,最终给出液态CO2相变驱替煤层CH4过程中钻孔压力脉动变化的数学表达。研究结果表明:试验过程中不同直径煤样压注孔承受的液态CO2最大注入压力为2.0 MPa;红外热成像与温度传感器测得的煤样表面温变规律趋势基本一致,而有效导热系数随煤样半径、煤样表面温度降低值随煤样半径均表现为开口向下的指数函数变化形式,由此得出有效导热系数与煤样表面温度降低值之间呈现单调递增的函数变化形式,最终结合液态CO2相变压力与有效导热系数的量化表征关系得到钻孔内液态CO2相变压力以及钻孔压力脉动变化实时值的数学表达式,揭示了液态CO2相变驱替煤层CH4过程中钻孔压力脉动变化的形成机制。

     

    Abstract: Injecting liquid CO2 into coal seam boreholes is an effective measure to improve CH4 extraction efficiency. We established a physical model for CO2 phase change displacement of coal seam CH4 based on the actual injection process in boreholes. The model analyzes the composition of borehole pressure, using basic theories of heat transfer such as the ideal gas law, heat calculation formulas, and Fourier's law of heat conduction. It explains the essential causes and influencing factors of pressure fluctuations in boreholes, and provides mathematical expressions for these fluctuations. It is found that during constant pressure injection, borehole pressure variations depend on the phase change pressure of liquid CO2. This phase change pressure is jointly regulated by the effective thermal conductivity of the injection process and the real-time temperature inside the borehole. Therefore, based on the principle of radial heat flow, an experiment was conducted to determine the variation of effective thermal conductivity with the surface temperature of coal samples of varying diameters. The theoretical expected value of the phase change pressure of liquid CO2 during injection was derived. Ultimately, a mathematical expression for the pressure fluctuation in boreholes during the CO2 phase change displacement of coal seam CH4 was provided. The study results show that the maximum injection pressure of liquid CO2 in boreholes with different diameters is 2.0 MPa. The temperature variation trends of the coal sample surface measured by infrared thermography and temperature sensors are consistent, and the effective thermal conductivity varies as an exponential function with respect to the coal sample radius and surface temperature decrease. It was found that the effective thermal conductivity shows a monotonically increasing function with the decrease in surface temperature of the coal sample. By combining the quantitative relationship between CO2 phase change pressure and effective thermal conductivity, mathematical expressions for the phase change pressure of liquid CO2 and real-time pressure fluctuations in boreholes were obtained, revealing the formation mechanism of pressure fluctuation changes during CO2 phase change displacement of coal seam CH4.

     

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