Three-dimensional quantification of vorticity and helicity from 3D cine PC-MRI using finite-element interpolations

Julio Sotelo, Jesús Urbina, Israel Valverde, Joaquín Mura, Cristián Tejos, Pablo Irarrazaval, Marcelo E. Andia, Daniel E. Hurtado, Sergio Uribe

Research output: Contribution to journalArticleResearchpeer-review

26 Citations (Scopus)

Abstract

Purpose: We propose a 3D finite-element method for the quantification of vorticity and helicity density from 3D cine phase-contrast (PC) MRI. Methods: By using a 3D finite-element method, we seamlessly estimate velocity gradients in 3D. The robustness and convergence were analyzed using a combined Poiseuille and Lamb-Ossen equation. A computational fluid dynamics simulation was used to compared our method with others available in the literature. Additionally, we computed 3D maps for different 3D cine PC-MRI data sets: phantom without and with coarctation (18 healthy volunteers and 3 patients). Results: We found a good agreement between our method and both the analytical solution of the combined Poiseuille and Lamb-Ossen. The computational fluid dynamics results showed that our method outperforms current approaches to estimate vorticity and helicity values. In the in silico model, we observed that for a tetrahedral element of 2 mm of characteristic length, we underestimated the vorticity in less than 5% with respect to the analytical solution. In patients, we found higher values of helicity density in comparison to healthy volunteers, associated with vortices in the lumen of the vessels. Conclusions: We proposed a novel method that provides entire 3D vorticity and helicity density maps, avoiding the used of reformatted 2D planes from 3D cine PC-MRI. Magn Reson Med 79:541–553, 2018.

Original languageEnglish
Pages (from-to)541-553
Number of pages13
JournalMagnetic Resonance in Medicine
Volume79
Issue number1
DOIs
Publication statusPublished - Jan 2018
Externally publishedYes

Keywords

  • 3D cine PC-MRI
  • finite elements
  • flow quantification
  • helicity
  • vorticity

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