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首页> 外文期刊>Inverse Problems in Science & Engineering >A meshless CFD approach for evolutionary shape optimization of bypass grafts anastomoses
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A meshless CFD approach for evolutionary shape optimization of bypass grafts anastomoses

机译:无网格CFD方法用于旁路移植吻合术的进化形状优化

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Improving the blood flow or hemodynamics in the synthetic bypass graft end-to-side distal anastomosis (ETSDA) is an important element for the long-term success of bypass surgeries. An ETSDA is the interconnection between the graft and the operated-on artery. The control of hemodynamic conditions through the ETSDA is mostly dictated by the shape of the ETSDA. Thus, a formal ETSDA shape optimization would serve the goal of improving the ETSDA flowfield. Computational fluid dynamics (CFD) is a convenient tool to quantify hemodynamic parameters; also, the genetic algorithm (GA) is an effective tool to identify the ETSDA optimal shape that modify those hemodynamic quantities such that the optimization objective is met. The present article introduces a unique approach where a meshless CFD solver is coupled to a GA for the purpose of optimizing the ETSDA shape. Three anastomotic models are optimized herein: the conventional ETSDA, the Miller cuff ETSDA and the hood ETSDA. Results demonstrate the effectiveness of the proposed integrated optimization approach in obtaining anastomoses optimal shapes.
机译:改善人工旁路移植术端到端远端吻合术(ETSDA)中的血流或血液动力学是旁路手术长期成功的重要因素。 ETSDA是移植物和手术动脉之间的互连。通过ETSDA对血液动力学状况的控制主要由ETSDA的形状决定。因此,正式的ETSDA形状优化将达到改善ETSDA流场的目的。计算流体动力学(CFD)是定量血液动力学参数的便捷工具。同样,遗传算法(GA)是识别ETSDA最佳形状的有效工具,该形状可以修​​改那些血液动力学量,从而达到优化目标。本文介绍了一种独特的方法,其中将无网格CFD求解器耦合到GA以优化ETSDA形状。本文优化了三种吻合模型:常规ETSDA,米勒袖套ETSDA和引擎盖ETSDA。结果证明了所提出的综合优化方法在获得吻合口最佳形状方面的有效性。

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