围压梯度作用下热损伤黄砂岩渗透特性试验研究

    Experimental study on permeability characteristics of thermal damaged yellow sandstone under confining pressure gradient

    • 摘要: 岩石渗透性是岩石力学重要的研究内容之一,尤其在深地能源开发过程中,岩石热损伤后的渗透特性与岩体工程的稳定性和安全性密切相关。为研究流体在高温热损伤岩石内部的流动规律,针对五种不同温度(100 ℃、200 ℃、400 ℃、600 ℃、800 ℃)处理后的黄砂岩试样,分析了热损伤黄砂岩的渗透系数在围压梯度从10~30 MPa逐级增大过程的变化规律,并从微观角度揭示了不同温度状态下黄砂岩内部的孔隙分布特征,据此建立了微观结构特征与渗透特性的相关关系。试验结果表明:①高温会诱使黄砂岩内部的体积流速显著大于常温及较低温度状态下的体积流速,由此热损伤黄砂岩在相同围压下的渗透系数随热处理温度的升高而增大,经800 ℃高温处理后的黄砂岩渗透系数可增大50倍;②围压会使黄砂岩内部的渗流通道变窄,增加流体在岩石内部的运移阻力,导致渗透系数与围压呈幂函数的变化关系,但不同温度下围压对渗透系数的影响程度存在差异性;③热损伤会改变黄砂岩的孔隙结构,使岩石内部的微裂纹、微孔洞增多,然而不同高温导致的黄砂岩试样内部孔径分布特征不同,呈现出随温度的升高,孔径分布波动性越大且大尺度孔径占比增多的特点;④热损伤黄砂岩的孔隙分形维数随温度的升高而增大,并且不同围压作用下渗透系数与孔隙分形维数的拟合度较好,说明岩石渗透系数随温度变化的本质上是由于热处理而导致的岩石内部孔隙结构的改变。

       

      Abstract: Rock permeability is one of important research contents of rock mechanics, especially in the process of deep energy development, permeability characteristic after thermal damage is closely related to the stability and safety of rock engineering. In order to study flow law of fluid inside thermal damaged rock, the permeability coefficient of thermal damaged rock is analyzed as confining pressure gradient increased step by step from 10 MPa to 30 MPa, aiming at the yellow sandstone samples treated at five different temperatures(100 ℃, 200 ℃, 400 ℃, 600 ℃, 800 ℃). The pore distribution characteristics of rock at different temperatures are revealed and the correlation between the microstructure and permeability characteristics is established. The test results show that: ①high temperature induces the volume flow velocity inside the rock to be significantly higher than that at normal temperature and lower temperature. Therefore, the permeability coefficient of thermal damaged yellow sandstone increases with the increase of heat treatment temperature under the same confining pressure, and the permeability coefficient of sandstone treats at 800℃ can increase by 50 times. ②Confining pressure can narrow the seepage channel inside the rock and increase the resistance of fluid migration. The permeability coefficient shows a change relationship with the power function of confining pressure, but the influence of confining pressure on permeability coefficient is different under different temperatures. ③Thermal damage can change the pore structure of yellow sandstone and increase the number of micro-cracks and pores. However, the pore size distribution characteristics of yellow sandstone samples caused by different high temperatures are different, showing that with the increase of temperature, the pore size distribution fluctuation increases and the proportion of large-scale pore size increases. ④The fractal dimension of pores in thermal damaged yellow sandstone show an increasing trend with increasing temperature, and the fitting relation between the fractal dimension of pores and permeability coefficient is good under different confining pressures, indicating that the change in rock permeability coefficient with temperature is essentially due to the change in pore structure caused by rock thermal damage.

       

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