4.7 Article

Improved dynamic imaging of multiphase flow by constrained tomographic reconstruction

期刊

SCIENTIFIC REPORTS
卷 11, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-021-91776-1

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资金

  1. Danish Hydrocarbon Research and Technology Centre
  2. Danish Agency for Science, Technology, and Innovation
  3. Capital Region of Denmark

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Dynamic tomography is used to study fluid flow in porous media, but limited by low X-ray brilliance in laboratory instruments. A new reconstruction algorithm has been developed that maintains high image quality while reducing exposure time and number of projections. The algorithm initializes reconstruction with a high-quality scan and constrains regions using segmentation of the static system, allowing for faster flow process study and improved reconstruction quality.
Dynamic tomography has become an important technique to study fluid flow processes in porous media. The use of laboratory X-ray tomography instruments is, however, limited by their low X-ray brilliance. The prolonged exposure times, in turn, greatly limit temporal resolution. We have developed a tomographic reconstruction algorithm that maintains high image quality, despite reducing the exposure time and the number of projections significantly. Our approach, based on the Simultaneous Iterative Reconstruction Technique, mitigates the problem of few and noisy exposures by utilising a high-quality scan of the system before the dynamic process is started. We use the high-quality scan to initialise the first time step of the dynamic reconstruction. We further constrain regions of the dynamic reconstruction with a segmentation of the static system. We test the performance of the algorithm by reconstructing the dynamics of fluid separation in a multiphase system. The algorithm is compared quantitatively and qualitatively with several other reconstruction algorithms and we show that it can maintain high image quality using only a fraction of the normally required number of projections and with a substantially larger noise level. By robustly allowing fewer projections and shorter exposure, our algorithm enables the study of faster flow processes using laboratory tomography instrumentation but it can also be used to improve the reconstruction quality of dynamic synchrotron experiments.

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