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Experimental Investigation of Relative Permeability Upscaling from the Micro-Scale to the Macro-Scale

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During this reporting period, shown experimentally that the optical coherence imaging system can acquire information on grain interfaces and void shape for a maximum depth of half a millimeter into sandstone. The measurement of interfacial area per volume (IAV), capillary pressure and saturation in two dimensional micro-models structures has shown the existence of a unique relationship among these hydraulic parameters for different pore geometry. The measurement of interfacial area per volume on a three-dimensional natural sample, i.e., sandstone, has shown the homogeneity of IAV with depth in a sample when the fluids are in equilibrium.

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Last Updated September 29, 2016, 15:43 (LMT)
Created September 29, 2016, 15:43 (LMT)
Citation Pyrak-Nolte, Laura J.; Cheng, JiangTao; Yu, Ping; Giordano, Nicholas; Mustata, Mirela; Chen, Diaquam; Coy, John; Cooper, Nathan; Nolte, David D. ---- Roy Long, Experimental Investigation of Relative Permeability Upscaling from the Micro-Scale to the Macro-Scale, 2016-09-29, https://edx.netl.doe.gov/dataset/experimental-investigation-of-relative-permeability-upscaling-from-the-micro-scale-to-the-macro-s1
Netl Product yes
Poc Email Roy.long@netl.doe.gov
Point Of Contact Roy Long
Program Or Project KMD
Publication Date 2003-1-29