用重建方法对微蜂窝模型中气液置换的可视化实验研究

Shaojie Chen, Jicheng Zhang, Dawei Yin, Faxin Li, Jialin Lu, Peiyang Zhu
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引用次数: 4

摘要

裂隙是煤储层流体运移的主要通道。然而,初级割理中气相和水相的微观流动特性尚未得到充分研究。因此,使用图像处理技术确定了割理的局部形态特征,并使用多相流体可视化测试系统通过微流体光刻构建了透明割理结构模型。此外,本文还分析了微通道弯曲特性对两相流的影响。结果表明:(1)煤原始割理结构的局部宽度具有强烈的不均匀性。割理在水平方向上表现为收缩和扩张,在垂直方向上表现出起伏特征。(2) 由于主割理的结构特征,瞬态流速出现波动。水驱气界面在流动过程中表现出凹凸不稳定性,而气驱水界面呈现出相对稳定的凹面。(3) 弯月面在平坦通道中以对称模式前进,并且由于部分弯曲通道中波动点的影响,流动停滞。只有当弯液面绕过驻点并达到新的平衡位置时,流动才会继续。(4) 气液界面剪切的增强增加了气体注入压力,这反过来又增加了壁槽中的残余液体和壁表面的液膜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Visualizing experimental investigation on gas–liquid replacements in a microcleat model using the reconstruction method

Cleats are the main channels for fluid transport in coal reservoirs. However, the microscale flow characteristics of both gas and water phases in primary cleats have not been fully studied as yet. Accordingly, the local morphological features of the cleat were determined using image processing technology and a transparent cleat structure model was constructed by microfluidic lithography using the multiphase fluid visualization test system. Besides, the effect of microchannel tortuosity characteristics on two-phase flow was analyzed in this study. The results are as follows: (1) The local width of the original cleat structure of coal was strongly nonhomogeneous. The cleats showed contraction and expansion in the horizontal direction and undulating characteristics in the vertical direction. (2) The transient flow velocity fluctuated due to the structural characteristics of the primary cleat. The water-driven gas interface showed concave and convex instability during flow, whereas the gas-driven water interface presented a relatively stable concave surface. (3) The meniscus advanced in a symmetrical pattern in the flat channel, and the flow stagnated due to the influence of undulation points in a partially curved channel. The flow would continue only when the meniscus surface bypassed the stagnation point and reached a new equilibrium position. (4) Enhanced shearing at the gas–liquid interface increased the gas-injection pressure, which in turn increased residual liquids in wall grooves and liquid films on the wall surface.

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Issue Information Two-year growth of Deep Underground Science and Engineering: A perspective Acknowledgment of reviewers A review of mechanical deformation and seepage mechanism of rock with filled joints Issue Information
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