Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations

With the advancement of high-resolution three-dimensional X-ray imaging, it is now possible to directly calculate the curvature of the interface of two phases extracted from segmented CT images during two-phase flow experiments to derive capillary pressure. However, there is an inherent difficulty o...

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Main Authors: Akai Takashi, Bijeljic Branko, Blunt Martin
Format: Article
Language:English
Published: EDP Sciences 2020-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/06/e3sconf_sca2019_04003.pdf
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spelling doaj-4b2a86d363804a6490ef465b830017432021-04-02T14:32:46ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011460400310.1051/e3sconf/202014604003e3sconf_sca2019_04003Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical SimulationsAkai TakashiBijeljic BrankoBlunt MartinWith the advancement of high-resolution three-dimensional X-ray imaging, it is now possible to directly calculate the curvature of the interface of two phases extracted from segmented CT images during two-phase flow experiments to derive capillary pressure. However, there is an inherent difficulty of this image-based curvature measurement: the use of voxelized image data for the calculation of curvature can cause significant errors. To address this, we first perform two-phase direct numerical simulations to obtain the oil and water phase distribution, the exact location of the interface, and local fluid pressure. We then investigate a method to compute curvature on the oil/water interface. The interface is defined in two ways. In one case the simulated interface which has a sub-resolution smoothness is used, while the other is a smoothed interface which is extracted from synthetic segmented data based on the simulated phase distribution. Computed mean curvature on these surfaces are compared with that obtained from the fluid pressure computed directly in the simulation. We discuss the accuracy of image-based curvature measurements for the calculation of capillary pressure and propose the best way to extract an accurate curvature measurement, quantifying the likely uncertainties.https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/06/e3sconf_sca2019_04003.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Akai Takashi
Bijeljic Branko
Blunt Martin
spellingShingle Akai Takashi
Bijeljic Branko
Blunt Martin
Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations
E3S Web of Conferences
author_facet Akai Takashi
Bijeljic Branko
Blunt Martin
author_sort Akai Takashi
title Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations
title_short Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations
title_full Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations
title_fullStr Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations
title_full_unstemmed Local Capillary Pressure Estimation Based on Curvature of the Fluid Interface – Validation with Two-Phase Direct Numerical Simulations
title_sort local capillary pressure estimation based on curvature of the fluid interface – validation with two-phase direct numerical simulations
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2020-01-01
description With the advancement of high-resolution three-dimensional X-ray imaging, it is now possible to directly calculate the curvature of the interface of two phases extracted from segmented CT images during two-phase flow experiments to derive capillary pressure. However, there is an inherent difficulty of this image-based curvature measurement: the use of voxelized image data for the calculation of curvature can cause significant errors. To address this, we first perform two-phase direct numerical simulations to obtain the oil and water phase distribution, the exact location of the interface, and local fluid pressure. We then investigate a method to compute curvature on the oil/water interface. The interface is defined in two ways. In one case the simulated interface which has a sub-resolution smoothness is used, while the other is a smoothed interface which is extracted from synthetic segmented data based on the simulated phase distribution. Computed mean curvature on these surfaces are compared with that obtained from the fluid pressure computed directly in the simulation. We discuss the accuracy of image-based curvature measurements for the calculation of capillary pressure and propose the best way to extract an accurate curvature measurement, quantifying the likely uncertainties.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/06/e3sconf_sca2019_04003.pdf
work_keys_str_mv AT akaitakashi localcapillarypressureestimationbasedoncurvatureofthefluidinterfacevalidationwithtwophasedirectnumericalsimulations
AT bijeljicbranko localcapillarypressureestimationbasedoncurvatureofthefluidinterfacevalidationwithtwophasedirectnumericalsimulations
AT bluntmartin localcapillarypressureestimationbasedoncurvatureofthefluidinterfacevalidationwithtwophasedirectnumericalsimulations
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