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基于瓣膜关闭动力学的人工心脏瓣膜空化潜力比较。

A comparison of the cavitation potential of prosthetic heart valves based on valve closing dynamics.

作者信息

Zapanta C M, Stinebring D R, Deutsch S, Geselowitz D B, Tarbell J M

机构信息

Bioengineering Program, Pennsylvania State University, University Park 16802, USA.

出版信息

J Heart Valve Dis. 1998 Nov;7(6):655-67.

PMID:9870200
Abstract

BACKGROUND AND AIMS OF THE STUDY

This study compares the cavitation potential of prosthetic heart valves based on valve closing dynamics.

METHODS

A laser sweeping technique measured valve closing dynamics (average closing velocity and deceleration) immediately before valve closure. A high-fidelity, piezoelectric pressure transducer was mounted proximal to the mitral valve and measured the high-frequency pressure fluctuations caused by cavitation bubble formation and collapse after valve closure. The band-pass filtered root mean squared (RMS) value of the mitral pressure signal was used as a measure of cavitation intensity. The combination of these two techniques allowed the direct correlation of valve dynamics and cavitation intensity for each valve closure. The effects of three parameters on prosthetic heart valve dynamics and cavitation were examined: valve geometry (Medtronic Hall and Björk-Shiley Monostrut), occluder material (pyrolytic carbon and Delrin), and gap width between the occluder and housing. A dimensional analysis was also performed to investigate the general form of the relationship between valve dynamics and cavitation intensity.

RESULTS

For all of the valves investigated in this study, the RMS pressure increased (signifying an increase in cavitation) as the average closing velocity and deceleration increased. In order to compare the cavitation potential of the valves, the RMS pressure was estimated at specific closing velocities using the linear regression of RMS pressure versus average closing velocity for each valve. The effects of valve geometry, occluder material and gap width were then examined at high valve loading conditions (closing velocity of 4.0 m/s). For both pyrolytic carbon and Delrin, the Medtronic Hall valves had significantly higher RMS pressures than did the Björk-Shiley Monostrut valves. For a given valve geometry, the pyrolytic carbon occluder had a significantly higher RMS pressure than the Delrin occluder. The valve gap width did not have a significant effect on RMS pressure. The dimensional analysis revealed the general relationship among average closing velocity, occluder material properties and cavitation intensity.

CONCLUSIONS

The results presented here contribute to our fundamental understanding of cavitation on mechanical heart valves.

摘要

研究背景与目的

本研究基于瓣膜关闭动力学比较人工心脏瓣膜的空化潜能。

方法

采用激光扫描技术在瓣膜关闭前即刻测量瓣膜关闭动力学(平均关闭速度和减速度)。在二尖瓣近端安装一个高保真压电压力传感器,测量瓣膜关闭后由空化气泡形成和崩溃引起的高频压力波动。二尖瓣压力信号的带通滤波均方根(RMS)值用作空化强度的度量。这两种技术的结合使得能够直接关联每个瓣膜关闭时的瓣膜动力学和空化强度。研究了三个参数对人工心脏瓣膜动力学和空化的影响:瓣膜几何形状(美敦力霍尔瓣和 Björk-Shiley 单支柱瓣)、封堵器材料(热解碳和聚甲醛)以及封堵器与外壳之间的间隙宽度。还进行了量纲分析以研究瓣膜动力学与空化强度之间关系的一般形式。

结果

对于本研究中所研究的所有瓣膜,随着平均关闭速度和减速度增加,RMS 压力升高(表明空化增加)。为了比较瓣膜的空化潜能,利用每个瓣膜的 RMS 压力与平均关闭速度的线性回归,在特定关闭速度下估算 RMS 压力。然后在高瓣膜负荷条件(关闭速度为 4.0 m/s)下研究瓣膜几何形状、封堵器材料和间隙宽度的影响。对于热解碳和聚甲醛,美敦力霍尔瓣的 RMS 压力均显著高于 Björk-Shiley 单支柱瓣。对于给定的瓣膜几何形状,热解碳封堵器的 RMS 压力显著高于聚甲醛封堵器。瓣膜间隙宽度对 RMS 压力没有显著影响。量纲分析揭示了平均关闭速度、封堵器材料特性和空化强度之间的一般关系。

结论

此处呈现的结果有助于我们对机械心脏瓣膜上空化的基本理解。

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