微模型
毛细管作用
机械
孔隙水压力
排水
毛细管压力
流离失所(心理学)
体积流量
流量(数学)
土壤孔隙空间特征
材料科学
地质学
色散(光学)
岩土工程
多孔介质
物理
复合材料
多孔性
光学
心理治疗师
生态学
生物
心理学
作者
Ryan T. Armstrong,Steffen Berg
出处
期刊:Physical Review E
[American Physical Society]
日期:2013-10-22
卷期号:88 (4): 043010-043010
被引量:201
标识
DOI:10.1103/physreve.88.043010
摘要
Drainage is typically understood as a process where the pore space is invaded by a nonwetting phase pore-by-pore, the controlling parameters of which are represented by capillary number and mobility ratio. However, what is less understood and where experimental data are lacking is direct knowledge of the dynamics of pore drainage and the associated intrinsic time scales since the rate dependencies often observed with displacement processes are potentially dependent on these time scales. Herein, we study pore drainage events with a high speed camera in a micromodel system and analyze the dependency of interfacial velocity on bulk flow rate and spatial fluid configurations. We find that pore drainage events are cooperative, meaning that capillary pressure differences which extend over multiple pores directly affect fluid topology and menisci dynamics. Results suggest that not only viscous forces but also capillarity acts in a nonlocal way. Lastly, the existence of a pore morphological parameter where pore drainage transitions from capillary to inertial and/or viscous dominated is discussed followed by a discussion on capillary dispersion and time scale dependencies. We show that the displacement front is disperse when volumetric flow rate is less than the intrinsic time scale for a pore drainage event and becomes sharp when the flow rate is greater than the intrinsic time scale (i.e., overruns the pore drainage event), which clearly shows how pore-scale parameters influence macroscale flow behavior.
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