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考虑弹性结构变形的透析导管、血管和血液相互作用的数值建模。

Numerical modelling of the interaction between dialysis catheter, vascular vessel and blood considering elastic structural deformation.

机构信息

Southeast University-Monash University Joint Research Institute, Suzhou, China.

Department of Chemical and Biological Engineering, Monash University, Clayton, Victoria, Australia.

出版信息

Int J Numer Method Biomed Eng. 2024 May;40(5):e3811. doi: 10.1002/cnm.3811. Epub 2024 Mar 11.

Abstract

The dialysis catheter indwelling in human bodies has a high risk of inducing thrombus and stenosis. Biomechanical research showed that such physiological complications are triggered by the wall shear stress of the vascular vessel. This study aimed to assess the impact of CVC implantation on central venous haemodynamics and the potential alterations in the haemodynamic environment related to thrombus development. The SVC structure was built from the images from computed tomography. The blood flow was calculated using the Carreau model, and the fluid domain was determined by CFD. The vascular wall and the CVC were computed using FEA. The elastic interaction between the vessel wall and the flow field was considered using FSI simulation. With consideration of the effect of coupling, it was shown that the catheter vibrated in the vascular systems due to the periodic variation of blood pressure, with an amplitude of up to 10% of the vessel width. Spiral flow was observed along the catheter after CVC indwelling, and recirculation flow appeared near the catheter tip. High OSI and WSS regions occurred at the catheter tip and the vascular junction. The arterial lumen tip had a larger effect on the WSS and OSI values on the vascular wall. Considering FSI simulation, the movement of the catheter inside the blood flow was simulated in the deformable vessel. After CVC indwelling, spiral flow and recirculation flow were observed near the regions with high WSS and OSI values.

摘要

人体留置的透析导管有很高的引发血栓和狭窄的风险。生物力学研究表明,这种生理并发症是由血管壁切应力引发的。本研究旨在评估 CVC 植入对中心静脉血液动力学的影响,以及与血栓形成相关的血液动力学环境的潜在变化。使用 CT 图像构建 SVC 结构。使用 Carreau 模型计算血流,使用 CFD 确定流场域。使用 FEA 计算血管壁和 CVC。使用 FSI 模拟考虑血管壁和流场之间的弹性相互作用。考虑到耦合的影响,结果表明导管由于血压的周期性变化而在血管系统中振动,其振幅可达血管宽度的 10%。在 CVC 留置后,导管周围观察到螺旋流,并且在导管尖端附近出现回流流。在导管尖端和血管交界处出现高 OSI 和 WSS 区域。动脉管腔尖端对血管壁上的 WSS 和 OSI 值有更大的影响。考虑到 FSI 模拟,在可变形血管中模拟了导管在血流中的运动。在 CVC 留置后,在高 WSS 和 OSI 值区域附近观察到螺旋流和回流流。

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