细观渗流的研究与进展
Research and Development on Micro Seepage
摘要: 随着渗流力学在各个领域的发展,很多问题需求描述细观的渗流过程例如多孔介质中气液界面的运动。本文基于多孔介质,阐述了经典渗流力学、CT扫描建模技术、逾渗理论、微观渗流仿真模拟技术和拓扑网络模型等若干方法对细观单相渗流与多相渗流的描述与解决方法,并对每种方法的特点进行总结分析,展望了发展前景。
Abstract: With the development of seepage mechanics in various fields, many problems demand the flow process of micro seepage such as the movement of gas-liquid interface in porous medium. In this paper, the problems and solutions of the single phase and multi phase micro seepage based on the classical seepage mechanics, CT scanning technique, percolation theory, micro seepage simulation technique and topology network model in porous medium are expounded. Also the characteristics of each method were analyzed, and the future development was prospected.
文章引用:李清宇, 王乾, 徐献芝. 细观渗流的研究与进展[J]. 渗流力学进展, 2014, 4(2): 29-41. http://dx.doi.org/10.12677/APF.2014.42004

参考文献

[1] Touma, J. and Vauclin, M. (1986) Experimental and numerical analysis of two-phase infiltration in a partially saturated soil. Transport in Porous Media, 1, 27-55.
[2] Leverett, M.C. (1939) Flow of oil-water mixtures through unconsolidated sands. Transactions of the Iron and Steel So- ciety of AIME, 132, 149.
[3] Kolyagin, G.A., Kornienko, V.L., Kuznetsov, B.N. and Chesnokov, N.V. (2005) Electrical conductivity of hydropho- bized electrodes fabricated from thermally expanded graphite and their activity in electroreduction of oxygen. Russian Journal of Applied Chemistry, 10, 1625-1630.
[4] Paganin, V.A., Ticianelli, E.A. and Gonzalez, E.R. (1996) Development and electrochemical studies of gas diffusion electrodes for polymer electrolyte fuel cells. Journal of Applied Electrochemistry, 26, 297-304.
[5] Jahanshaloo, L., Pouryazdanpanah, E. and Sidik, N.A.C. (2013) A review on the application of the lattice Boltzmann method for turbulent flow simulation. Numerical Heat Transfer Part A—Applications, 11, 938-953.
[6] 孔祥言 (2012) 高等渗流力学. 中国科学技术大学出版社, 合肥, 708-796.
[7] Gerard Girvin, F. and Gupta, D. (2006) Peach stone ileus: CT appearances of impacted fruit stones. European Journal of Radiology Extra, 57, 75-77.
[8] Boero, G., Frounchi, J., Furrer, B., et al. (2001) Fully integrated probe for proton nuclear magnetic resonance magne- tometry. Review of Scientific Instruments, 72, 2764-2768.
[9] Yang, W.T., Feng, Z.M., Liu, W.Z. and Zou, X.C. (2007) Blurred defocused image restoration based on FRFT. Wuhan University Journal of Natural Sciences, 3, 496-500.
[10] Qi, L., Tao, R., Zhou, S.Y. and Wang, Y. (2004) Detection and parameter estimation of multicomponent LFM signal based on the fractional fourier transform. Science in China Series F: Information Sciences, 2, 184-198.
[11] Pollefeys, M., Nistér, D., Frahm, J.-M., Akbarzadeh, A., Mordohai, P., Clipp, B., Engels, C., Gallup, D., Kim, S.-J., Merrell, P., Salmi, C., Sinha, S., Talton, B., Wang, L., Yang, Q., Stewénius, H., Yang, R., Welch, G. and Towles, H. (2008) Detailed real-time urban 3D reconstruction from video. International Journal of Computer Vision, 2-3, 143- 167.
[12] Weiss, J.A., Gardiner, J.C., Ellis, B.J., Lujan, T.J. and Phatak, N.S. (2005) Three-dimensional finite element modeling of ligaments: Technical aspects. Medical Engineering and Physics, 27, 845-861.
[13] Noll, W. (1958) A mathematical theory of the mechanical behavior of continuous media. Archive for Rational Me- chanics and Analysis, 1, 197-226.
[14] Gubbels, F., Jerome, R., Teyssie, P., et al. (1994) Selective localization of carbon black in immiscible polymer blends: A useful tool to design electrical conductive composites. Macromolecules, 27, 1972-1974.
[15] Lux, F. (1993) Models proposed to explain the electrical conductivity of mixtures made of conductive and insulating materials. Journal of Materials Science, 28, 285-301.
[16] Sumita, M., Kayaki, H. and Miyasaka, K. (1986) Effect of melt viscosity and surface tension of polymers on the per- colation thres-hold of conductive-particle-filled polymeric composites. Journal of Macromolecular Science: Physics, B25, 171.
[17] 郭尚平等 (1990) 物理化学渗流微观机理. 科学出版社, 78-122.
[18] 杨建, 陈家军, 田亮 (2007) 基于孔隙结构的二维微观网络模型. 中国科技论文在线.
[19] Chakkaravarthy, C., Waheed, A.K. and Udupa, H.V.K. (1981) Zinc—Air alkaline batteries—A review. Journal of Power Sources, 6, 203-228.
[20] Prabal, S. and Honggon, K. (2009) Zinc-air fuel cell, a potential candidate for alternative energy. Journal of Industrial and Engineering Chemistry, 15, 445-450.
[21] 王乾, 李清宇等 (2012) 气体扩散电极的拓扑网络模型数值研究. 应用物理, 2, 163-174.
[22] 安勇 (2007) 油田开采过程中环境影响分析要点. 2007中国环境科学学会学术年会优秀论文集(下卷).