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PMID: 15171472 Published · ppublish English Evaluation Study Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Design and transient computational fluid dynamics study of a continuous axial flow ventricular assist device.

ASAIO journal (American Society for Artificial Internal Organs : 1992) ·Vol. 50 ·No. 3 ·2004-00-00 ·页码 215-24

Song X, Untaroiu A, Wood HG, Allaire PE, Throckmorton AL, Day SW, Olsen DB

Abstract

A ventricular assist device (VAD), which is a miniaturized axial flow pump from the point of view of mechanism, has been designed and studied in this report. It consists of an inducer, an impeller, and a diffuser. The main design objective of this VAD is to produce an axial pump with a streamlined, idealized, and nonobstructing blood flow path. The magnetic bearings are adapted so that the impeller is completely magnetically levitated. The VAD operates under transient conditions because of the spinning movement of the impeller and the pulsatile inlet flow rate. The design method, procedure, and iterations are presented. The VAD's performance under transient conditions is investigated by means of computational fluid dynamics (CFD). Two reference frames, rotational and stationary, are implemented in the CFD simulations. The inlet and outlet surfaces of the impeller, which are connected to the inducer and diffuser respectively, are allowed to rotate and slide during the calculation to simulate the realistic spinning motion of the impeller. The flow head curves are determined, and the variation of pressure distribution during a cardiac cycle (including systole and diastole) is given. The axial oscillation of impeller is also estimated for the magnetic bearing design. The transient CFD simulation, which requires more computer resources and calculation efforts than the steady simulation, provides a range rather than only a point for the VAD's performance. Because of pulsatile flow phenomena and virtual spinning movement of the impeller, the transient simulation, which is realistically correlated with the in vivo implant scenarios of a VAD, is essential to ensure an effective and reliable VAD design.

MeSH 主题词
Blood Flow Velocity Blood Pressure Computer Simulation Heart Ventricles/physiopathology Heart-Assist Devices Hemorheology/methods Magnetics/instrumentation Models, Cardiovascular Prosthesis Design/instrumentation,methods Pulsatile Flow
作者与单位
共 7 位作者,点击展开单位 / ORCID
Song Xinwei
Mechanical and Aerospace Engineering Department, Virginia Artificial Heart Institute, University of Virginia, Charlottesville, VA 22903, USA.
Untaroiu Alexandrina
Wood Houston G
Allaire Paul E
Throckmorton Amy L
Day Steven W
Olsen Donald B
Article Info
Journal
ASAIO journal (American Society for Artificial Internal Organs : 1992)
Abbr.
ASAIO J
ISSN
1058-2916
Published
2004-00-00
页码
215-24
Language
English
Country/Region
United States
NLM ID
9204109
基金资助
NHLBI NIH HHS · R01 HL64378-01 · United States
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