Rheological approaches of arteries.

R D Bauer
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引用次数: 19

Abstract

A fundamental problem of haemodynamics lies in the description of the rheological properties of arteries. The time and history dependency of stress and strain, the nonlinearity of the stress-radius relationship, and the activity of vascular smooth muscle complicate or even prevent a complete mathematical characterization of the arterial wall mechanics. Due to this nonlinearity, dynamic investigations were hitherto performed in excised arteries in vitro by means of small sinusoidal changes of stress and radius at different stress levels in a wide frequency range. To allow an analysis of the dynamic rheological properties of arteries in vivo, we have developed a procedure which permits the separate determination of the elastic, the viscous, and the inertial forces acting on the arterial wall. The stress can be subdivided into an elastic stress which is a function of radius (r), a viscous stress which is a function of dr/dt, and an inertial stress which is a function of d2r/dt2. These stresses are formulated as polynomials. Under cyclic loading and unloading, hysteresis loops appear in the stress-radius diagrams of arteries. Since the elastic stress-radius diagram must be free from any loop, the coefficients of the viscous and the inertial stress can be found by a fitting procedure, using the criterion of loop elimination. Investigations were performed on exposed canine arteries in vivo. The main result was that the elastic stress-radius curve was markedly nonlinear at greater pulse pressures. The viscous wall behaviour, too, was nonlinear and depended mainly on the square of the vessel radius.

动脉的流变入路。
血流动力学的一个基本问题在于对动脉流变特性的描述。应力和应变的时间和历史依赖性、应力-半径关系的非线性以及血管平滑肌的活动使动脉壁力学的完整数学表征复杂化甚至复杂化。由于这种非线性,迄今为止,在体外切除的动脉中,通过在宽频率范围内不同应力水平下应力和半径的小正弦变化来进行动态研究。为了分析体内动脉的动态流变特性,我们开发了一种程序,可以分别测定作用在动脉壁上的弹性、粘性和惯性力。应力可以细分为弹性应力,弹性应力是半径(r)的函数,粘性应力是dr/dt的函数,惯性应力是d2r/dt2的函数。这些应力用多项式表示。在循环加卸载作用下,动脉应力-半径图中出现迟滞回线。由于弹性应力-半径图必须不存在任何环,因此可以利用消环准则通过拟合程序求出粘应力系数和惯性应力系数。在体内对暴露的犬动脉进行了调查。主要结果是,在较大的脉冲压力下,弹性应力-半径曲线呈明显的非线性。粘性壁面的行为也是非线性的,主要取决于容器半径的平方。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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