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首页> 外文期刊>Journal of Biomechanics >Hemodialysis arterio-venous graft design reducing the hemodynamic risk of vascular access dysfunction
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Hemodialysis arterio-venous graft design reducing the hemodynamic risk of vascular access dysfunction

机译:血液透析动脉静脉移植设计降低了血管内接入功能障碍的血流动力学风险

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摘要

Although arterio-venous grafts (AVGs) represent the second choice as permanent vascular access for hemodialysis, this solution is still affected by a relevant failure rate due to graft thrombosis, and development of neointimal hyperplasia (IH) at the distal vein. As a key role in these processes has been attributed to the abnormal hemodynamics establishing in the distal vein, the optimization of AVGs design aimed at minimizing flow disturbances would reduce AVG hemodynamic-related risks. In this study we used computational fluid dynamics to investigate the impact of alternative AVG designs on the reduction of IH and thrombosis risk at the distal venous anastomosis. The performance of the newly designed AVGs was compared to that of commercially available devices. In detail, a total of eight AVG models in closed-loop configuration were constructed: two models resemble the commercially available straight conventional and helical-shaped AVGs; six models are characterized by the insertion of a flow divider (FD), straight or helical shaped, differently positioned inside the graft. Unfavorable hemodynamic conditions were analyzed by assessing the exposure to disturbed shear at the distal vein. Bulk flow was investigated in terms of helical blood flow features, potential thrombosis risk, and pressure drop over the graft.
机译:虽然动脉静脉移植物(AVGS)代表血液透析永久性血管接入的第二种选择,但该溶液仍然受到由于接枝血栓形成引起的相关破坏率的影响,并且在远端静脉的新内膜增生(IH)的发育。作为这些过程中的关键作用归因于在远端静脉中建立的异常血液动力学,AVGS设计的优化旨在最小化流动紊乱将减少与血流动力学相关的风险。在这项研究中,我们使用计算流体动力学来研究替代AVG设计对远端静脉吻合术的减少和血栓形成风险的影响。将新设计的AVG的性能与市售设备的性能进行了比较。详细地,构建了闭环配置中的总共八种AVG型号:两种型号类似于市售的直常规和螺旋形平均值;六种模型的特征在于插入流量分压器(FD),直的或螺旋形状,不同地定位在移植物内。通过评估在远端静脉处暴露于干扰剪切来分析不利的血液动力学条件。在螺旋血流特征,潜在的血栓形成风险和移植物上压力下降,对散装流程进行了研究。

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