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COUPLED FLUID-CHEMICAL COMPUTATIONAL MODELING OF ANTICOAGULATION THERAPIES IN A STENTED ARTERY

机译:冠状动脉抗凝治疗的流体化学耦合计算模型

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Stent thrombosis is a major complication that occurs after the placement of stents in the coronary artery through balloon angioplasty. The common treatment for stent thrombosis is to provide patients with anticoagulant and antiplatelet therapy through the bloodstream. This study uses numerical modeling to compare two delivery methods of heparin anticoagulant to the arterial wall to reduce thrombus formation: through the flow and via a drug-eluting stent. A unique computational fluid dynamics model is developed that couples an incompressible flow solver with a convection-diffusion-reaction equation solver. The flow solver uses a sharp-interface immersed boundary method on a Cartesian grid to characterize pulsatile flow over the curved wires of the stent. Concurrently, the convection-diffusion-reaction equations are solved for the 19 coupled reactions that make up the coagulation cascade and heparin interactions, as well as reaction and transport equations for both active and inactive platelet species. The simulation is run with input boundary conditions of steady flow, pulsatile Poiseuille flow, and a Womersley flow profile. Results are collected for the bare metal stent case, anticoagulant delivered through the bloodstream, and anticoagulant delivered through a drug-eluting stent. The results generally find that the drug-eluting stent delivery of anticoagulant is more effective in reducing platelet activation and clotting, while also providing a more localized anticoagulant distribution.
机译:支架血栓形成是一种主要的并发症,是通过球囊血管成形术将支架置入冠状动脉后发生的。支架血栓形成的常见治疗方法是通过血液向患者提供抗凝和抗血小板治疗。这项研究使用数值模型比较了两种肝素抗凝剂向动脉壁递送以减少血栓形成的方法:通过血流和通过药物洗脱支架。开发了一种独特的计算流体动力学模型,该模型将不可压缩的流量求解器与对流扩散反应方程式求解器耦合在一起。流量求解器在笛卡尔网格上使用尖锐界面浸入边界方法来表征支架弯曲线上的脉动流。同时,对流扩散反应方程式求解了19个耦合反应,这些反应构成了凝血级联反应和肝素相互作用,以及活性和非活性血小板物种的反应和转运方程式。该模拟是在输入边界条件为稳流,脉动波瓦数流和Womersley流量剖面的情况下进行的。收集裸金属支架盒,通过血液输送的抗凝剂和通过药物洗脱支架输送的抗凝剂的结果。结果通常发现,抗凝剂的药物洗脱支架递送在减少血小板活化和凝结方面更有效,同时还提供了更局限的抗凝剂分布。

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