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PMID: 33545507 Published · ppublish English

CFD validation using in-vitro MRI velocity data - Methods for data matching and CFD error quantification.

Computers in biology and medicine ·Vol. 131 ·2021-00-00

Wüstenhagen C, John K, Langner S, Brede M, Grundmann S, Bruschewski M

Abstract

Predicting blood flow velocities in patient-specific geometries with Computational Fluid Dynamics (CFD) can provide additional data for diagnosis and treatment planning but the solution can be inaccurate. Therefore, it is crucial to understand the simulation errors and calibrate the numerical model. In-vitro velocity-encoded MRI is a versatile tool to validate CFD. The comparison between CFD and in-vitro MRI velocity data, and the analysis of the simulation error are the objectives of this study. A three-step routine is presented to validate medical CFD data. First, a properly scaled model of the patient-specific geometry is fabricated to achieve high relative resolution in the MRI experiment. Second, the measured flow geometry is matched with the CFD data using one of two algorithms, Coherent Point Drift and Iterative Closest Point. The aligned data sets are then interpolated onto a common grid to enable a point-to-point comparison. Third, the global and local deviations between CFD and MRI velocity data are calculated using different algorithms to reliably estimate the simulation error. The routine is successfully tested with a patient-specific model of a cerebral aneurysm. In conclusion, the methods presented here provide a framework for CFD validation using in-vitro MRI velocity data.

Keywords
Computational fluid mechanics Magnetic resonance velocimetry Reynolds similarity Simulation error Three-dimensional geometry matching
MeSH 主题词
Blood Flow Velocity Computer Simulation Humans Hydrodynamics Intracranial Aneurysm Magnetic Resonance Imaging Models, Cardiovascular
Article Info
Journal
Computers in biology and medicine
Abbr.
Comput Biol Med
ISSN
1879-0534
Corresponding email
Published
2021-00-00
Language
English
Country/Region
United States
NLM ID
1250250
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