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PMID: 40179007 Published · ppublish English Journal Article

Impeller Position in a Magnetically Levitated Rotodynamic Blood Pump and Its Impact on In-Silico Hemocompatibility.

ASAIO journal (American Society for Artificial Internal Organs : 1992) ·Vol. 71 ·No. 11 ·2025-11-01 ·页码 905-911

Grujic M, Schoefbeck R, Thamsen B, Aigner P, Röhrich M, Jakubek S, Zimpfer D, Granegger M

Abstract

In magnetically levitated rotodynamic blood pumps (RPBs), the impeller position depends on a balance of electromagnetic and fluid dynamic forces. The aim of this study was to describe the impeller position of the HeartMate 3 over a wide range of operating conditions and assess its potential impact on hemocompatibility. Three-dimensional impeller positions were measured using a transparent HeartMate 3 pump casing, laser distance measurements, and a high-speed camera. Accompanying computational fluid dynamic (CFD) hemocompatibility predictions of a displaced and centered impeller at a typical operating point were compared. Impeller positions vary substantially with different operating points with a maximum axial displacement of 223 µm at 7 L/min and 7,000 rpm and a maximum radial displacement of 145 µm at 0 L/min and 7,000 rpm. In CFD, a displaced impeller had only a minor influence on global pump parameters (<2%) at an operating point of 5 L/min and 6,000 rpm. However, deviations in local flow metrics of up to 9% were observed compared with a centered impeller simulation. We here provide the impeller position of the HeartMate 3 over the full operating range (0-9 L/min, 3,000-7,000 rpm) to support further research, including more extensive CFD simulations.

Keywords
HeartMate 3 LVAD computational fluid dynamics gap clearance hemocompatibility impeller position rotodynamic blood pumps
MeSH 主题词
Heart-Assist Devices Hydrodynamics Humans Computer Simulation Materials Testing Equipment Design Models, Cardiovascular
作者与单位
共 8 位作者,点击展开单位 / ORCID
Grujic Marko
From the Christian Doppler Laboratory for Mechanical Circulatory Support, Department of Cardiac Surgery, Medical University of Vienna, Vienna, Austria.
Schoefbeck Rosmarie ORCID
From the Christian Doppler Laboratory for Mechanical Circulatory Support, Department of Cardiac Surgery, Medical University of Vienna, Vienna, Austria.
Thamsen Bente
From the Christian Doppler Laboratory for Mechanical Circulatory Support, Department of Cardiac Surgery, Medical University of Vienna, Vienna, Austria.
Aigner Philipp
From the Christian Doppler Laboratory for Mechanical Circulatory Support, Department of Cardiac Surgery, Medical University of Vienna, Vienna, Austria.
Röhrich Michael
Department of Anaesthesia, Intensive Care Medicine and Pain Medicine, Medical University of Vienna, Vienna, Austria.
Jakubek Stefan
Division of Control and Process Automation, Institute of Mechanics and Mechatronics, Vienna University of Technology, Vienna, Austria.
Zimpfer Daniel
From the Christian Doppler Laboratory for Mechanical Circulatory Support, Department of Cardiac Surgery, Medical University of Vienna, Vienna, Austria.
Granegger Marcus ORCID
From the Christian Doppler Laboratory for Mechanical Circulatory Support, Department of Cardiac Surgery, Medical University of Vienna, Vienna, Austria.
Article Info
Journal
ASAIO journal (American Society for Artificial Internal Organs : 1992)
Abbr.
ASAIO J
ISSN
1538-943X
Published
2025-11-01
电子出版
2025-00-03
页码
905-911
Language
English
Country/Region
United States
NLM ID
9204109
基金资助
Austrian Federal Ministry of Labour and Economy
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