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首页> 外文期刊>Journal of Biomechanics >Computational hemodynamics in arteries with the one-dimensional augmented fluid-structure interaction system: viscoelastic parameters estimation and comparison with in-vivo data
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Computational hemodynamics in arteries with the one-dimensional augmented fluid-structure interaction system: viscoelastic parameters estimation and comparison with in-vivo data

机译:一维增强流体结构交互系统的动脉中的计算血流动力学:粘弹性参数估计与体内数据的比较

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Mathematical models are widely recognized as a valuable tool for cardiovascular diagnosis and the study of circulatory diseases, especially to obtain data that require otherwise invasive measurements. To correctly simulate body hemodynamics, the viscoelastic properties of vessels walls are a key aspect to be taken into account as they play an essential role in cardiovascular behavior. The present work aims to apply the augmented fluid-structure interaction system of blood flow to real case studies to assess the validity of the model as a valuable resource to improve cardiovascular diagnostics and the treatment of pathologies. Main contributions of the paper include the evaluation of viscoelastic tube laws, estimation of viscoelastic parameters and comparison of models with literature results and in-vivo experiments. The ability of the model to correctly simulate pulse waveforms in single arterial segments is verified using literature benchmark test cases, designed taking into account a simple elastic behavior of the wall in the upper thoracic aorta and in the common carotid artery. Furthermore, in-vivo pressure waveforms, extracted from tonometric measurements performed on four human common carotid arteries and two common femoral arteries, are compared to numerical solutions. It is highlighted that the viscoelastic damping effect of arterial walls is required to avoid an overestimation of pressure peaks. Finally, an effective procedure to estimate the viscoelastic parameters of the model is herein proposed, which returns hysteresis curves of the common carotid arteries dissipating energy fractions in line with values calculated from literature hysteresis loops in the same vessel. (C) 2019 Elsevier Ltd. All rights reserved.
机译:数学模型被广泛认为是心血管诊断的有价值的工具和循环疾病的研究,特别是获得需要侵入性测量的数据。为了正确模拟身体血流动力学,血管壁的粘弹性是要考虑的关键方面,因为它们在心血管行为中发挥着重要作用。目前的工作旨在将血流的增强流体结构相互作用系统应用于实际案例研究,以评估模型的有效性作为改善心血管诊断和病理治疗的宝贵资源。本文的主要贡献包括评估粘弹管法,粘弹性参数的估计和文献结果和体内实验的模型的比较。使用文献基准测试用例验证了模型在单个动脉段中正确模拟脉冲波形的能力,设计考虑了上胸主动脉和常见的颈动脉中壁的简单弹性行为。此外,与在四个人常见的颈动脉和两个共同的股动脉上进行的血压测量中提取的体内压力波形与数值解决方案进行比较。突出显示动脉壁的粘弹性阻尼效果需要避免高估压力峰。最后,本文提出了一种估计模型的粘弹性参数的有效方法,该方法返回常见的颈动脉的滞后曲线逐渐消散能量级分,与来自相同容器中的文献滞后环的值逐渐计算。 (c)2019年elestvier有限公司保留所有权利。

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