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疲劳诱导的生物心脏瓣膜三维几何形状变化及其与组织损伤的关系。

Fatigue-induced changes in bioprosthetic heart valve three-dimensional geometry and the relation to tissue damage.

作者信息

Smith D B, Sacks M S, Pattany P M, Schroeder R

机构信息

Department of Bioengineering, University of Pittsburgh, USA.

出版信息

J Heart Valve Dis. 1999 Jan;8(1):25-33.

Abstract

BACKGROUND AND AIM OF THE STUDY

In a previous study, we used magnetic resonance (MR) imaging to reconstruct, three-dimensionally, porcine bioprosthetic heart valve (PBHV) cusp geometry. Initial results using three valves indicated that accelerated testing induced changes in cuspal shape, including focal regions of high curvature. Since for thin-walled shell structures, such as the PBHV cusp, curvature changes can affect the stress distribution independently from changes to mechanical properties, shape changes might have adverse effects on PBHV durability.

METHODS

The MR technique was applied to an expanded valve database to explore more fully shape change with fatigue. The spatial curvature distribution was compared across valves subjected to a range of accelerated test times.

RESULTS

Results confirmed our initial findings that PBHV cusps undergo a continuous, non-recoverable deformation with accelerated testing. This deformation resulted in an increase in the portion of cuspal surface exhibiting high curvature values. In one cusp we mapped structural information obtained by small-angle light scattering back to the three-dimensional cuspal surface using an interpolation technique. Results from the mapped cusp demonstrated a strong spatial correlation between elevated curvatures and structural damage.

CONCLUSIONS

The observed changes in cuspal shape accelerate PBHV damage due to an increase in flexural strains induced by an increase in curvature reversal during operation, rather than an increase in tension during closure.

摘要

研究背景与目的

在之前的一项研究中,我们使用磁共振(MR)成像对猪生物心脏瓣膜(PBHV)瓣叶的几何形状进行了三维重建。使用三个瓣膜的初步结果表明,加速测试会导致瓣叶形状发生变化,包括高曲率的局部区域。由于对于像PBHV瓣叶这样的薄壁壳结构,曲率变化会独立于力学性能的变化而影响应力分布,形状变化可能会对PBHV的耐久性产生不利影响。

方法

将MR技术应用于一个扩展的瓣膜数据库,以更全面地探索疲劳导致的形状变化。比较了在一系列加速测试时间下的瓣膜的空间曲率分布。

结果

结果证实了我们最初的发现,即PBHV瓣叶在加速测试中会经历持续的、不可恢复的变形。这种变形导致瓣叶表面呈现高曲率值的部分增加。在一个瓣叶中,我们使用插值技术将通过小角度光散射获得的结构信息映射回三维瓣叶表面。映射瓣叶的结果表明,曲率升高与结构损伤之间存在很强的空间相关性。

结论

观察到的瓣叶形状变化加速了PBHV的损伤,这是由于在操作过程中曲率反转增加导致弯曲应变增加,而不是关闭过程中的张力增加。

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