螺旋槽轴承设计用于改善旋转式血泵的血浆撇取效果。

IF 1.1 4区 医学 Q4 ENGINEERING, BIOMEDICAL
Journal of Artificial Organs Pub Date : 2024-09-01 Epub Date: 2023-12-28 DOI:10.1007/s10047-023-01422-y
Ming Jiang, Wataru Hijikata
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引用次数: 0

摘要

螺旋槽轴承(SGB)内的高效血浆撇取可将红细胞从具有高剪切力的脊间隙中排除,因此有希望防止溶血。然而,目前还没有研究揭示如何设计螺旋槽轴承的形状以改善血浆撇取效果。因此,本研究提出并应用了一种凹槽设计策略,以设计出一种最佳的 SGB,从而提高旋转血液泵(RBP)的血浆撇取能力。首先,我们提出的设计策略是,用于加强血浆撇取的凹槽形状与脊隙中的血流方向相对应。其次,我们对专门设计的实验 RBP 中的细胞流进行了可视化,以确定血流方向,这有助于随后的 SGB 设计。然后,我们设计了一种能提供出色血浆撇取效果的 SGB,并将其应用于实验 RBP。我们评估了 SGB 在 2400 至 3000 转/分钟的转速和 1%至 40% 的血细胞比容条件下的血浆撇取效果。当血细胞比容为 1%时,整个 SGB 的血浆撇取效率大于 95%。在所有血细胞比容条件下,SGB 内脊的效率都高于 80%。结果表明,设计的 SGB 成功地在脊间隙内诱导了出色的血浆撇取。这项研究首次提出并应用了一种形状设计策略,以在 SGB 内产生极佳的等离子撇取效果。这项研究可能有助于防止用于 RBP 的 SGB 内部发生溶血。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spiral groove bearing design for improving plasma skimming in rotary blood pumps.

Spiral groove bearing design for improving plasma skimming in rotary blood pumps.

High-efficiency plasma skimming is hopeful to prevent hemolysis inside spiral groove bearings (SGBs) because it can exclude red blood cells from the ridge gap with a high shear force. However, no study reveals the shape design of SGBs to improve plasma skimming. Therefore, this study proposed and applied a groove design strategy to designing an optimal SGB for enhancing plasma skimming in a rotary blood pump (RBP). Initially, we proposed the design strategy that the shape of the groove for enhancing plasma skimming corresponds to the direction of blood flow in the ridge gap. Second, we visualized the cell flow in a specially designed experimental RBP to determine the direction of blood flow, which was helpful in the subsequent SGB design. Then, we created an SGB to provide superior plasma skimming and applied it to the experimental RBP. We evaluated the plasma skimming effect of SGB at rotational speeds ranging from 2400 to 3000 rpm and hematocrit conditions between 1% and 40%. At a 1% hematocrit, the plasma skimming efficiency for the entire SGB was greater than 95%. In all hematocrit conditions, the efficiency at the inner ridges of the SGB was greater than 80%. The results showed the designed SGB successfully induced excellent plasma skimming within ridge gaps. This study is the first to propose and apply a shape design strategy to generate excellent plasma skimming within an SGB. This study may contribute to the prevention of SGB hemolysis inside SGB for use in RBPs.

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来源期刊
Journal of Artificial Organs
Journal of Artificial Organs 医学-工程:生物医学
CiteScore
2.80
自引率
15.40%
发文量
68
审稿时长
6-12 weeks
期刊介绍: The aim of the Journal of Artificial Organs is to introduce to colleagues worldwide a broad spectrum of important new achievements in the field of artificial organs, ranging from fundamental research to clinical applications. The scope of the Journal of Artificial Organs encompasses but is not restricted to blood purification, cardiovascular intervention, biomaterials, and artificial metabolic organs. Additionally, the journal will cover technical and industrial innovations. Membership in the Japanese Society for Artificial Organs is not a prerequisite for submission.
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