升主动脉入口不同流速波形对人主动脉弓血流动力学影响的数值研究。

IF 1 4区 医学 Q4 BIOPHYSICS
Biorheology Pub Date : 2021-01-01 DOI:10.3233/BIR-201009
Ying Chen, Yunmei Yang, Wenchang Tan, Liqin Fu, Xiaoyan Deng, Yubin Xing
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引用次数: 1

摘要

背景:心力衰竭(HF)是一种全球常见病。心室辅助装置(VADs)被广泛用于治疗心衰。与天然心脏相比,不同的vad在主动脉中产生不同的血流波。目的:探讨升主动脉不同流速波形是否对人体主动脉弓产生深远的血流动力学影响。方法:根据心衰患者的ct资料重建主动脉几何模型。共进行了5个数值模拟,包括生理正常情况下的升主动脉流速波形,2例HF, 2例典型VAD支持。计算了壁面剪切应力(WSS)、振荡剪切指数(OSI)、相对停留时间(RRT)和螺旋流强度等血流动力学参数。结果:与天然心脏相比,数值模拟显示HF降低了WSS,导致了更高的OSI和RRT。此外,HF还削弱了螺旋流强度。脉动流VADs提高了WSS,诱导了一定程度的螺旋流,而连续流VADs则不能。结论:心衰通过降低WSS和降低螺旋流强度导致不良的血流动力学环境。基于血流动力学效应,脉动式VADs可能比连续式VADs更有利。因此,搏动血流VADs可能是心衰患者更好的选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hemodynamic effects of the human aorta arch with different inflow rate waveforms from the ascending aorta inlet: A numerical study.

Background: Heart failure (HF) is a common disease globally. Ventricular assist devices (VADs) are widely used to treat HF. In contrast to the natural heart, different VADs generate different blood flow waves in the aorta.

Objective: To explore whether the different inflow rate waveforms from the ascending aorta generate far-reaching hemodynamic influences on the human aortic arch.

Methods: An aortic geometric model was reconstructed based on computed tomography data of a patient with HF. A total of five numerical simulations were conducted, including a case with the inflow rate waveforms from the ascending aorta with normal physiological conditions, two HF, and two with typical VAD support. The hemodynamic parameters, wall shear stress (WSS), oscillatory shear index (OSI), relative residence time (RRT), and the strength of the helical flow, were calculated.

Results: In contrast to the natural heart, numerical simulations showed that HF decreased WSS and induced higher OSI and RRT. Moreover, HF weakened helical flow strength. Pulsatile flow VADs that elevated the WSS, induced some helical flow, while continuous flow VADs could not.

Conclusions: HF leads to an adverse hemodynamic environment by decreasing WSS and reducing the helical flow strength. Based upon hemodynamic effects, pulsatile flow VADs may be more advantageous than continuous flow VADs. Thus, pulsatile flow VADs may be a better option for patients with HF.

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来源期刊
Biorheology
Biorheology 医学-工程:生物医学
CiteScore
2.00
自引率
0.00%
发文量
5
审稿时长
>12 weeks
期刊介绍: Biorheology is an international interdisciplinary journal that publishes research on the deformation and flow properties of biological systems or materials. It is the aim of the editors and publishers of Biorheology to bring together contributions from those working in various fields of biorheological research from all over the world. A diverse editorial board with broad international representation provides guidance and expertise in wide-ranging applications of rheological methods to biological systems and materials. The scope of papers solicited by Biorheology extends to systems at different levels of organization that have never been studied before, or, if studied previously, have either never been analyzed in terms of their rheological properties or have not been studied from the point of view of the rheological matching between their structural and functional properties. This biorheological approach applies in particular to molecular studies where changes of physical properties and conformation are investigated without reference to how the process actually takes place, how the forces generated are matched to the properties of the structures and environment concerned, proper time scales, or what structures or strength of structures are required.
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