4.7 Article

Dynamic CT Reconstruction With Improved Temporal Resolution for Scanning of Fluid Flow in Porous Media

期刊

WATER RESOURCES RESEARCH
卷 58, 期 4, 页码 -

出版社

AMER GEOPHYSICAL UNION
DOI: 10.1029/2021WR031365

关键词

dynamic imaging; fluid flow; porous media; iterative reconstruction

资金

  1. Research Foundation - Flanders [S003418N, 3G036518]
  2. Research Foundation-Flanders (FWO) [G051418N]
  3. [12X0919N]

向作者/读者索取更多资源

This article presents a method to improve the temporal resolution of multiphase flow imaging experiments by limiting the angular range of radiographs used to reconstruct each time step, while compensating for this loss of information by including a temporal total variation term in the reconstruction algorithm. The method is validated on both simulated and experimental data representing multiphase flow in porous media, and it is found that the temporal resolution can be improved up to three times.
Lab-based high-resolution Computed Tomography (mu CT) is an important tool to investigate multiphase fluid flow through porous media. Rapid and continuous mu CT acquisition can be used to resolve the dynamics of the 3D fluid distribution in the pores over time while the flow processes occur. However, the temporal resolution of this technique remains limited due to a trade-off between acquisition time and image quality. This work presents a method to improve the temporal resolution of multiphase flow imaging experiments by limiting the angular range of radiographs used to reconstruct each time step, while compensating for this loss of information by including a temporal total variation term in the reconstruction algorithm. This addition penalizes improper temporal fluctuations in the reconstructed images, but not those dynamic events that are consistent with the radiographs. We perform a thorough evaluation of the resulting gain in temporal resolution at the single-pore level. The method is validated on both simulated and experimental data representing multiphase flow in porous media. We find that this method improved the temporal resolution up to a factor 3 compared to reconstructions that use full 360 degrees rotations for each time step.

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