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PMID: 26611470 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Computational fluid dynamics simulations of blood flow regularized by 3D phase contrast MRI.

Biomedical engineering online ·Vol. 14 ·2015-11-26 ·页码 110

Rispoli VC, Nielsen JF, Nayak KS, Carvalho JL

Abstract

Phase contrast magnetic resonance imaging (PC-MRI) is used clinically for quantitative assessment of cardiovascular flow and function, as it is capable of providing directly-measured 3D velocity maps. Alternatively, vascular flow can be estimated from model-based computation fluid dynamics (CFD) calculations. CFD provides arbitrarily high resolution, but its accuracy hinges on model assumptions, while velocity fields measured with PC-MRI generally do not satisfy the equations of fluid dynamics, provide limited resolution, and suffer from partial volume effects. The purpose of this study is to develop a proof-of-concept numerical procedure for constructing a simulated flow field that is influenced by both direct PC-MRI measurements and a fluid physics model, thereby taking advantage of both the accuracy of PC-MRI and the high spatial resolution of CFD. The use of the proposed approach in regularizing 3D flow fields is evaluated. The proposed algorithm incorporates both a Newtonian fluid physics model and a linear PC-MRI signal model. The model equations are solved numerically using a modified CFD algorithm. The numerical solution corresponds to the optimal solution of a generalized Tikhonov regularization, which provides a flow field that satisfies the flow physics equations, while being close enough to the measured PC-MRI velocity profile. The feasibility of the proposed approach is demonstrated on data from the carotid bifurcation of one healthy volunteer, and also from a pulsatile carotid flow phantom. The proposed solver produces flow fields that are in better agreement with direct PC-MRI measurements than CFD alone, and converges faster, while closely satisfying the fluid dynamics equations. For the implementation that provided the best results, the signal-to-error ratio (with respect to the PC-MRI measurements) in the phantom experiment was 6.56 dB higher than that of conventional CFD; in the in vivo experiment, it was 2.15 dB higher. The proposed approach allows partial or complete measurements to be incorporated into a modified CFD solver, for improving the accuracy of the resulting flow fields estimates. This can be used for reducing scan time, increasing the spatial resolution, and/or denoising the PC-MRI measurements.

MeSH 主题词
Algorithms Blood Circulation Computer Simulation Humans Hydrodynamics Imaging, Three-Dimensional Magnetic Resonance Imaging Models, Biological Phantoms, Imaging
作者与单位
共 4 位作者,点击展开单位 / ORCID
Rispoli Vinicius C
Department of Electrical Engineering, University of Brasilia, Brasília, Brazil. [email protected]. | UnB Gama College, University of Brasilia, Brasília, Brazil. [email protected].
Nielsen Jon F
fMRI Laboratory, Biomedical Engineering Department, University of Michigan, Ann Arbor, USA. [email protected].
Nayak Krishna S
Magnetic Resonance Engineering Laboratory, Ming Hsieh Department of Electrical Engineering, University of Southern California, Los Angeles, USA. [email protected].
Carvalho Joao L A
Department of Electrical Engineering, University of Brasilia, Brasília, Brazil. [email protected].
Article Info
Journal
Biomedical engineering online
Abbr.
Biomed Eng Online
ISSN
1475-925X
Published
2015-11-26
电子出版
2015-00-26
页码
110
Language
English
Country/Region
England
NLM ID
101147518
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