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PMID: 31971269 Published · ppublish English Journal Article

Computational modeling of the Food and Drug Administration's benchmark centrifugal blood pump.

Artificial organs ·Vol. 44 ·No. 7 ·2020-07-00 ·页码 E263-E276

Good BC, Manning KB

Abstract

In order to simulate hemodynamics within centrifugal blood pumps and to predict pump hemolysis, CFD simulations must be thoroughly validated against experimental data. They must also account for and accurately model the specific working fluid in the pump, whether that is a blood-analog solution to match an experimental PIV study or animal blood in a hemolysis experiment. Therefore, the Food and Drug Administration (FDA) benchmark centrifugal blood pump and its database of experimental PIV and hemolysis data were used to thoroughly validate CFD simulations of the same blood pump. A Newtonian blood model was first used to compare to the PIV data with a blood analog fluid while hemolysis data were compared using a power-law hemolysis model fit to porcine blood data. A viscoelastic blood model was then incorporated into the CFD solver to investigate the importance of modeling blood's viscoelasticity in centrifugal pumps. The established computational framework, including a dynamic rotating mesh, animal blood-specific fluid properties and hemolysis modeling, and a k-ω SST turbulence model, was shown to more accurately predict pump pressure heads, velocity fields, and hemolysis compared to previously published CFD studies of the FDA centrifugal pump. The CFD simulations were able to match the FDA pressure and hemolysis data for multiple pump operating conditions, with the CFD results being within the standard deviations of the experimental results. While CFD radial velocity profiles between the impeller blades also compared well to the PIV velocity results, more work is still needed to address the large variability among both experimental and computational predictions of velocity in the diffuser outlet jet. Small differences were observed between the Newtonian and viscoelastic blood models in pressure head and hemolysis at the higher flow rate cases (FDA Conditions 4 and 5) but were more significant at lower flow rate and pump impeller speeds (FDA Condition 1). These results suggest that the importance of accounting for blood's viscoelasticity may be dependent on the specific blood pump operating conditions. This detailed computational framework with improved modeling techniques and an extensive validation procedure will be used in future CFD studies of centrifugal blood pumps to aid in device design and predictions of their biological responses.

Keywords
Food and Drug Administration centrifugal blood pump computational fluid dynamics hemolysis validation
MeSH 主题词
Animals Blood Flow Velocity/physiology Blood Viscosity/physiology Computer Simulation Device Approval/standards Elasticity Heart-Assist Devices/standards Hemolysis/physiology Models, Cardiovascular Prosthesis Design/standards United States United States Food and Drug Administration/standards
作者与单位
共 2 位作者,点击展开单位 / ORCID
Good Bryan C ORCID
Department of Biomedical Engineering, Pennsylvania State University, University Park, PA, USA.
Manning Keefe B ORCID
Department of Biomedical Engineering, Pennsylvania State University, University Park, PA, USA. | Department of Surgery, Penn State Hershey Medical Center, Hershey, PA, USA.
Article Info
Journal
Artificial organs
Abbr.
Artif Organs
ISSN
1525-1594
Published
2020-07-00
电子出版
2020-00-16
页码
E263-E276
Language
English
Country/Region
United States
NLM ID
7802778
基金资助
NHLBI NIH HHS · R01 HL136369 · United States
NHLBI NIH HHS · HL136369 · United States
American Heart Association · 19POST34370040
U.S. Department of Defense · W81XWH-16-1-0536
NHLBI NIH HHS · HL136369 · United States
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