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Fabrication of artificial arteriovenous fistula and analysis of flow field and shear stress by using mu-PIV technology

机译:人工动静脉瘘的制作以及使用mu-PIV技术的流场和切应力分析

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摘要

Radio-cephalic arteriovenous fistula (RC-AVF) is an operation performed to achieve vascular access for hemodialysis. Although RC-AVF is a reliable and well-known method, this technique presents high rates of early failure depending on the vessel condition. These failures are due to blood shear stress around the anastomosis site and the vascular access failure caused by thrombosis secondary to stenosis formation, as well as vascular access reocclusion after percutaneous interventions. In this work, we fabricate in vitro 3D RC-AVF by using polydimethylsiloxane and 3D printing technology to understand the underlying mechanism and predict AVF failure. Micro- Particle image velocimetry (mu-PIV) focusing on the cardiac pulse cycle is used to measure the velocity field within the artificial blood vessel. Results are confirmed by numerical simulation. Accordingly, the in vitro AVF model agrees well with the simulations. Overall, this research would provide the future possibility of using the proposed method to reduce in vivo AVF failure for various conditions.
机译:放射头动静脉瘘(RC-AVF)是一项旨在实现血管通路以进行血液透析的手术。尽管RC-AVF是一种可靠且广为人知的方法,但根据血管状况,该技术会导致较高的早期故障率。这些失败是由于吻合部位周围的血切应力和由狭窄形成继发的血栓形成引起的血管通路失败,以及经皮干预后血管通路的重新闭塞。在这项工作中,我们通过使用聚二甲基硅氧烷和3D打印技术来制作体外3D RC-AVF,以了解其潜在机理并预测AVF失败。着重于心脏脉冲周期的微颗粒图像测速(mu-PIV)用于测量人造血管内的速度场。结果通过数值模拟得到证实。因此,体外AVF模型与模拟吻合得很好。总的来说,这项研究将为使用所提出的方法减少各种情况下的体内AVF衰竭提供未来的可能性。

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