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颈静脉衍生静脉瓣组织的本构建模。

Constitutive modeling of jugular vein-derived venous valve leaflet tissues.

机构信息

North Carolina State University, Department of Mechanical and Aerospace Engineering, R3158 Engineering Building 3, Campus Box 7910, 911 Oval Drive, Raleigh, NC 27695, USA.

North Carolina State University, Department of Mechanical and Aerospace Engineering, R3158 Engineering Building 3, Campus Box 7910, 911 Oval Drive, Raleigh, NC 27695, USA.

出版信息

J Mech Behav Biomed Mater. 2017 Nov;75:50-57. doi: 10.1016/j.jmbbm.2017.06.037. Epub 2017 Jul 1.

Abstract

Venous valve tissues, though used in vein reconstruction surgeries and bioprosthetic valves with moderate success, have not been extensively studied with respect to their structure. Their inherent anisotropic, non-linear behavior combined with severe diseases which affect veins, such as chronic venous insufficiency, warrant understanding the structure and material behavior of these tissues. Hence, before any bioprosthetic grafts may be used in place of tissues, it is of the utmost importance to understand the mechanical and structural properties of these tissues as this may lead to higher success rates for valve replacement surgeries. The longevity of the bioprosthetics may also increase if the manufactured grafts behave the same as native valves. Building on the scant information about the uniaxial and biaxial mechanical properties of jugular venous valves and wall tissues from previous studies, the current focus of our investigation lies in understanding the material behavior by establishing a phenomenological strain energy-based constitutive relation for the tissues. We used bovine veins to study the behavior of valve leaflet tissue and adjoining wall tissue (from the proximal and distal ends of the veins) under different biaxial testing protocols. We looked at the behavior of numerical partial derivatives of the strain energy to select a suitable functional form for the strain energy for wall and valve tissues. Using this strain energy descriptor, we determined the Cauchy stress and compared it with experimental results under additional sets of displacement-controlled biaxial testing protocols to find material specific model parameters by the Powell's method algorithm. Results show that whereas wall tissue strain energy can be explained using a polynomial non-linear function, the valve tissue, due to higher non-linearities, requires an exponential function. This study may provide useful information for the primary stages of bioprosthetic designs and replacement surgeries and may support future studies investigating structural models. It may also support the study of valvular diseases by providing a way to understand material properties and behavior and to form a continuum model when required for numerical analyses and computational simulations.

摘要

静脉瓣膜组织虽然在静脉重建手术和生物假体瓣膜中取得了一定的成功,但对于其结构的研究还不够广泛。它们固有的各向异性、非线性行为,加上严重影响静脉的疾病,如慢性静脉功能不全,都需要了解这些组织的结构和材料行为。因此,在任何生物假体移植物可以替代组织之前,了解这些组织的力学和结构特性是至关重要的,这可能会提高瓣膜置换手术的成功率。如果制造的移植物的行为与天然瓣膜相同,那么生物假体的寿命也可能会延长。在前人研究中关于颈静脉瓣膜和壁组织单轴和双轴力学性能的有限信息的基础上,我们目前的研究重点是通过建立组织的基于唯象应变能的本构关系来了解材料行为。我们使用牛静脉来研究瓣膜小叶组织和相邻壁组织(来自静脉的近端和远端)在不同双轴测试方案下的行为。我们观察了应变能的数值偏导数的行为,以选择适合壁组织和瓣膜组织的应变能的函数形式。使用这种应变能描述符,我们确定了柯西应力,并将其与附加的位移控制双轴测试方案下的实验结果进行了比较,以通过鲍威尔方法算法找到材料特定的模型参数。结果表明,壁组织的应变能可以用多项式非线性函数来解释,而由于较高的非线性,瓣膜组织需要用指数函数来解释。这项研究可能为生物假体设计和置换手术的初始阶段提供有用的信息,并支持未来研究结构模型。它还可以通过提供理解材料性质和行为的方法,并在需要时形成连续体模型来支持对瓣膜疾病的研究,以进行数值分析和计算模拟。

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