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PMID: 33948748 Published · ppublish English Journal Article

Accelerated Estimation of Pulmonary Artery Stenosis Pressure Gradients with Distributed Lumped Parameter Modeling vs. 3D CFD with Instantaneous Adaptive Mesh Refinement: Experimental Validation in Swine.

Annals of biomedical engineering ·Vol. 49 ·No. 9 ·2021-09-00 ·页码 2365-2376

Pewowaruk R, Lamers L, Roldán-Alzate A

Abstract

Branch pulmonary artery stenosis (PAS) commonly occurs in congenital heart disease and the pressure gradient over a stenotic PA lesion is an important marker for re-intervention. Image based computational fluid dynamics (CFD) has shown promise for non-invasively estimating pressure gradients but one limitation of CFD is long simulation times. The goal of this study was to compare accelerated predictions of PAS pressure gradients from 3D CFD with instantaneous adaptive mesh refinement (AMR) versus a recently developed 0D distributed lumped parameter CFD model. Predictions were then experimentally validated using a swine PAS model (n = 13). 3D CFD simulations with AMR improved efficiency by 5 times compared to fixed grid CFD simulations. 0D simulations further improved efficiency by 6 times compared to the 3D simulations with AMR. Both 0D and 3D simulations underestimated the pressure gradients measured by catheterization (- 1.87 ± 4.20 and - 1.78 ± 3.70 mmHg respectively). This was partially due to simulations neglecting the effects of a catheter in the stenosis. There was good agreement between 0D and 3D simulations (ICC 0.88 [0.66-0.96]) but only moderate agreement between simulations and experimental measurements (0D ICC 0.60 [0.11-0.86] and 3D ICC 0.66 [0.21-0.88]). Uncertainty assessment indicates that this was likely due to limited medical imaging resolution causing uncertainty in the segmented stenosis diameter in addition to uncertainty in the outlet resistances. This study showed that 0D lumped parameter models and 3D CFD with instantaneous AMR both improve the efficiency of hemodynamic modeling, but uncertainty from medical imaging resolution will limit the accuracy of pressure gradient estimations.

Keywords
Branch pulmonary artery stenosis Congenital heart disease Non-invasive diagnostics
作者与单位
共 3 位作者,点击展开单位 / ORCID
Pewowaruk Ryan ORCID
Biomedical Engineering, University of Wisconsin, Madison, WI, USA.
Lamers Luke
Pediatrics, Division of Cardiology, University of Wisconsin, Madison, WI, USA.
Roldán-Alzate Alejandro ORCID
Biomedical Engineering, University of Wisconsin, Madison, WI, USA. [email protected]. | Mechanical Engineering, University of Wisconsin, Madison, WI, USA. [email protected]. | Radiology, University of Wisconsin, Madison, WI, USA. [email protected].
Article Info
Journal
Annals of biomedical engineering
Abbr.
Ann Biomed Eng
ISSN
1573-9686
Corresponding email
Published
2021-09-00
电子出版
2021-00-04
页码
2365-2376
Language
English
Country/Region
United States
NLM ID
0361512
基金资助
NHLBI NIH HHS · T32 HL007936 · United States
NCATS NIH HHS · UL1 TR002373 · United States
NCATS NIH HHS · UL1TR002373 · United States
National Heart, Lung, and Blood Institute (US) · T32 HL 007936
NCATS NIH HHS · UL1TR002373 · United States
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