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具有损伤效应的人下肢大隐静脉本构方程。

Constitutive laws with damage effect for the human great saphenous vein.

机构信息

School of Mathematics & Statistics, University of Glasgow, Glasgow G12, 8QQ, UK.

出版信息

J Mech Behav Biomed Mater. 2018 May;81:202-213. doi: 10.1016/j.jmbbm.2018.02.027. Epub 2018 Feb 23.

Abstract

Strain energy-based constitutive laws with damage effect were proposed by using existing both uniaxial tensile test and tubular biaxial inflation test data on the human great saphenous vein (GSV) segments. These laws were applied into GSV coronary artery bypass grafts (CABG) by employing a thin-walled vessel model to evaluate their passive biomechanical performance under coronary artery physiological conditions at a fixed axial pre-stretch. At a peak systolic pressure in 100-150 mmHg, a 20-33% GSV diameter dilation was predicted with the law based on tubular biaxial inflation test data and agreed well with 25% dilation in clinical observation in comparison with as small as 2-4% dilation estimated with the law based on uniaxial tensile test data. The constitutive law generated by tubular biaxial inflation test data was mostly suitable for GSV CABG under coronary artery physiological conditions than that based on uniaxial tensile test results. With these laws, the fibre ultimate stretch was extracted from uniaxial tensile test data and the structural sub-failure/damage threshold of 1.0731 was decided for the human GSV. GSV fibres could exhibit damage effect but unlikely undergo a structure failure/break, suggesting a damage factor might exist during CABG arterialization. The damage in GSV tissue might initiate or contribute to early remodelling of CABG after implantation.

摘要

基于应变能的本构律与损伤效应相结合,利用人体大隐静脉(GSV)段的单轴拉伸试验和管状双轴膨胀试验数据进行了提出。这些定律被应用于 GSV 冠状动脉旁路移植术(CABG)中,通过采用薄壁血管模型,在固定轴向预拉伸下,评估其在冠状动脉生理条件下的被动生物力学性能。在 100-150mmHg 的峰值收缩压下,基于管状双轴膨胀试验数据的定律预测 GSV 直径扩张 20-33%,与临床观察中 25%的扩张情况吻合良好,而基于单轴拉伸试验数据的定律预测的扩张情况仅为 2-4%。与基于单轴拉伸试验结果的定律相比,基于管状双轴膨胀试验数据的本构律更适用于冠状动脉生理条件下的 GSV CABG。通过这些定律,可以从单轴拉伸试验数据中提取纤维极限拉伸,并确定人体 GSV 的结构亚失效/损伤阈值为 1.0731。GSV 纤维可能会表现出损伤效应,但不太可能发生结构失效/断裂,这表明在 CABG 动脉化过程中可能存在损伤因素。GSV 组织的损伤可能会引发或导致植入后的 CABG 早期重塑。

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