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

IF 2.3 3区 医学 Q2 ENGINEERING, BIOMEDICAL ASAIO Journal Pub Date : 2025-04-03 DOI:10.1097/MAT.0000000000002434
Marko Grujic, Rosmarie Schoefbeck, Bente Thamsen, Philipp Aigner, Michael Röhrich, Stefan Jakubek, Daniel Zimpfer, Marcus Granegger
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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.

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磁悬浮旋转动力血液泵的叶轮位置及其对模拟血液相容性的影响
在磁悬浮旋转动力血泵(RPBs)中,叶轮的位置取决于电磁力和流体动力的平衡。本研究的目的是描述HeartMate 3在各种操作条件下的叶轮位置,并评估其对血液相容性的潜在影响。利用透明的HeartMate 3泵壳、激光距离测量和高速摄像机测量叶轮的三维位置。比较了典型工况下置换叶轮和居中叶轮的计算流体力学(CFD)血液相容性预测结果。叶轮位置随工作点的不同而变化很大,在7 L/min和7000 rpm时最大轴向位移为223µm,在0 L/min和7000 rpm时最大径向位移为145µm。在CFD中,叶轮位移对整体泵参数的影响很小(
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来源期刊
ASAIO Journal
ASAIO Journal 医学-工程:生物医学
CiteScore
6.60
自引率
7.10%
发文量
651
审稿时长
4-8 weeks
期刊介绍: ASAIO Journal is in the forefront of artificial organ research and development. On the cutting edge of innovative technology, it features peer-reviewed articles of the highest quality that describe research, development, the most recent advances in the design of artificial organ devices and findings from initial testing. Bimonthly, the ASAIO Journal features state-of-the-art investigations, laboratory and clinical trials, and discussions and opinions from experts around the world. The official publication of the American Society for Artificial Internal Organs.
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