Planar Biaxial Creep and Stress Relaxation of the Mitral Valve Anterior Leaflet

被引:0
作者
Jonathan S. Grashow
Michael S. Sacks
Jun Liao
Ajit P. Yoganathan
机构
[1] University of Pittsburgh,Department of Bioengineering, Engineered Tissue Mechanics Laboratory
[2] University of Pittsburgh,McGowan Institute for Regenerative Medicine
[3] Georgia Institute of Technology,Wallace H. Coulter Department of Biomedical Engineering
来源
Annals of Biomedical Engineering | 2006年 / 34卷
关键词
Biaxial tension; Biaxial mechanical properties; Creep; Heart valves; Mitral valve; Soft tissue biomechanics; Stress relaxation;
D O I
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中图分类号
学科分类号
摘要
A fundamental assumption in mitral valve (MV) therapies is that a repaired or replaced valve should mimic the functionality of the native valve as closely as possible. Thus, improvements in valvular treatments are dependent on the establishment of a complete understanding of the function and mechanical properties of the native normal MV. In a recent study [Grashow et al. ABME 34(2), 2006] we demonstrated that the planar biaxial stress–strain relationship of the MV anterior leaflet (MVAL) exhibited minimal hysteresis and a stress–strain response independent of strain rate, suggesting that MVAL could be modeled as a “quasi-elastic” material. The objective of our current study was to expand these results to provide a more complete picture of the time-dependent mechanical properties of the MVAL. To accomplish this, biaxial stress-relaxation and creep studies were performed on porcine MVAL specimens. Our primary finding was that while the MVAL leaflet exhibited significant stress relaxation, it exhibited negligible creep over the 3-h test. These results furthered our assertion that the MVAL functionally behaves not as a linear or non-linear viscoelastic material, but as an anisotropic quasi-elastic material. These results appear to be unique in the soft tissue literature; suggesting that valvular tissues are unequalled in their ability to withstand significant loading without time-dependent material effects. Moreover, insight into these specialized characteristics can help guide and inform efforts directed toward surgical repair and engineered valvular tissue replacements.
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页码:1509 / 1518
页数:9
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