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结合离心和轴流泵原理的血泵特性:螺旋泵

Characteristics of a Blood Pump Combining the Centrifugal and Axial Pumping Principles: The Spiral Pump.

作者信息

Andrade Aron, Biscegli José, Dinkhuysen Jarbas, Sousa José Eduardo, Ohashi Yukio, Hemmings Sarah, Glueck Julie, Kawahito Koji, Nosé Yukihiko

机构信息

Institute Dante Pazzanese of Cardiology, Department of Bioengineering, Sao Paulo, BrazilBaylor College of Medicine, Department of Surgery, Houston, Texas, U.S.A.

出版信息

Artif Organs. 1996 May;20(5):605-612. doi: 10.1111/j.1525-1594.1996.tb04489.x.

Abstract

Two well-known centrifugal and axial pumping principles are used simultaneously in a new blood pump design. Inside the pump housing is a spiral impeller, a conically shaped structure with threads on the surface. The worm gears provide an axial motion of the blood column through the threads of the central cone. The rotational motion of the conical shape generates the centrifugal pumping effect and improves the efficiency of the pump without increasing hemolysis. The hydrodynamic performance of the pump was examined with a 40% glycerin-water solution at several rotation speeds. The gap between the housing and the top of the thread is a very important factor: when the gap increases, the hydrodynamic performance decreases. To determine the optimum gap, several in vitro hemolysis tests were performed with different gaps using bovine blood in a closed circuit loop under two conditions. The first simulated condition was a left ventricular assist device (LVAD) with a flow rate of 5 L/min against a pressure head of 100 mm Hg, and the second was a cardiopulmonary bypass (CPB) simulation with a flow rate of 5 L/min against 350 mm Hg of pressure. The best hemolysis results were seen at a gap of 1.5 mm with the normalized index of hemolysis (NIH) of 0.0063 ± 0.0020 g/100 L and 0.0251 ± 0.0124 g/100 L (mean ± SD; n = 4) for LVAD and CPB conditions, respectively.

摘要

一种新型血泵设计同时运用了两种著名的离心和轴向泵送原理。泵壳内部是一个螺旋叶轮,这是一种表面带有螺纹的锥形结构。蜗轮通过中心锥体的螺纹使血柱产生轴向运动。锥形结构的旋转运动产生离心泵送效果,在不增加溶血的情况下提高了泵的效率。使用40%甘油水溶液在几个转速下对泵的流体动力学性能进行了检测。泵壳与螺纹顶部之间的间隙是一个非常重要的因素:当间隙增大时,流体动力学性能会下降。为了确定最佳间隙,在两种条件下,在封闭回路中使用牛血对不同间隙进行了多次体外溶血试验。第一种模拟工况是作为左心室辅助装置(LVAD),流速为5升/分钟,对抗100毫米汞柱的压头;第二种是体外循环(CPB)模拟,流速为5升/分钟,对抗350毫米汞柱的压力。在间隙为1.5毫米时获得了最佳溶血结果,左心室辅助装置和体外循环工况下溶血标准化指数(NIH)分别为0.0063±0.0020克/100升和0.0251±0.0124克/100升(平均值±标准差;n = 4)。

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