首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Investigation into early stage fatigue-damage accumulation in glutaraldehyde-fixed bovine pericardium using a novel equibiaxial bulge inflation system
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Investigation into early stage fatigue-damage accumulation in glutaraldehyde-fixed bovine pericardium using a novel equibiaxial bulge inflation system

机译:用新型扶纤维膨胀膨胀系统对戊二醛固定牛心包的早期疲劳损伤积累的研究

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摘要

A primary cause of bioprosthetic heart valve failure is premature degeneration of the pericardial leaflets, owing specifically to mechanical fatigue. There remains a paucity of experimental data and understanding of the fatigue-damage behaviour of this collagenous tissue under complex loading regimes. To meet this knowledge gap, a novel pressure inflation system was designed and built, to cyclically load circular samples of glutaraldehyde fixed bovine pericardium, under equibiaxial bulge conditions. A study up to 60 million cycles revealed new insights into the fatigue behaviour of pericardial tissue, where a statistically significantly higher level of permanent set was found in samples with high collagen fibre dispersion, in comparison to those with highly aligned fibres. Whilst permanent set is known to occur in the non-collagenous matrix of pericardium, this study demonstrates that at physiological loads, which elicit a matrix dominant mechanical response, permanent set and thus tissue-level damage, is still mediated by the underlying collagen fibres.
机译:生物人工心脏瓣膜衰竭的一个主要原因是心包小叶过早退化,尤其是由于机械疲劳。对于这种胶原组织在复杂载荷状态下的疲劳损伤行为,仍然缺乏实验数据和理解。为了满足这一知识缺口,设计并制造了一种新型的压力充气系统,在等双轴膨胀条件下,循环加载戊二醛固定的牛心包圆形样品。一项长达6000万个周期的研究揭示了对心包组织疲劳行为的新见解,与具有高度排列纤维的样品相比,具有高胶原纤维分散性的样品中的永久变形在统计学上显著更高。虽然心包的非胶原基质中存在永久性硬化,但这项研究表明,在引起基质主导的机械反应的生理负荷下,永久性硬化和组织水平的损伤仍由潜在的胶原纤维介导。

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