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The Dissipation and Dispersion of Small Waves in Arteries and Veins with Viscoelastic Wall Properties

机译:小波在具有粘弹性壁特性的动脉和静脉中的耗散和弥散

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摘要

Theoretical and experimental evidence suggests that the dissipation of high frequency pressure waves in blood vessels is caused primarily by the viscoelastic behavior of the vessel wall. In this theoretical analysis the vessels are considered as fluid-filled circular cylindrical shells whose walls have isotropic and homogeneous viscoelastic properties and are subjected to an initial axial stretch and a transmural pressure. If the wall material is incompressible and behaves as a Voigt solid in shear, the results predict a decrease in wave amplitude per wavelength which is essentially independent of frequency over a wide range. This finding is in qualitative agreement with recent experiments on anesthetized dogs. A parametric study also shows a great sensitivity of the dissipation to changes in transmural pressure and axial stretch. Axisymmetric waves are only mildly dispersive, while all nonaxisymmetric waves are highly dispersive and exhibit much stronger damping per wavelength at low frequencies than do axisymmetric waves.
机译:理论和实验证据表明,血管中高频压力波的耗散主要是由血管壁的粘弹性行为引起的。在此理论分析中,这些容器被认为是充满流体的圆柱壳,其壁具有各向同性和均质的粘弹性,并承受初始轴向拉伸和透壁压力。如果壁材料是不可压缩的,并且在剪切作用下表现为Voigt固体,则结果可预测每个波长的波幅减小,而该幅度基本上不依赖于大范围内的频率。这一发现与最近对麻醉狗进行的实验在质量上吻合。参数研究还显示,耗散对透壁压力和轴向拉伸的变化非常敏感。轴对称波只具有中等色散,而所有非轴对称波都具有很高的色散,并且在低频下每个波长的衰减都比轴对称波强得多。

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