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Spatial Stabilization Strategies Applied to Multiphysics Modeling of Blood Clotting Using a Modified PTT Model

机译:使用修正的PTT模型的血液凝固多物理场模型的空间稳定策略

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In the past years multiphysics computational models aiming at describing clot formation and growth have been developed using different constitutive equations. Most models were designed to investigate the interactions between many agents of the so-called coagulation cascade but were based on simple assumptions to describe the complex interaction between the clot and the flow. The models integrating the more elaborate Phan-Thien-Tanner (PTT) model, able to describe the viscoelastic behavior of the clot, have been successfully implemented to simple geometries but seem to be difficult to control when applied to complex ones. In aneurysm clot modeling, where complex geometry and sophisticated viscoelastic models are essential to realistic simulation outcomes, its successful implementation appears as a necessity. The paper presented here focused on a stabilization strategy to circumvent the numerical difficulties when applying the PTT-model to a more complex aneurysm geometry with implanted flow diverter.
机译:在过去的几年中,使用不同的本构方程开发了旨在描述血块形成和生长的多物理场计算模型。大多数模型的设计目的是研究所谓的凝血级联反应的许多作用剂之间的相互作用,但是基于简单的假设来描述凝块和血流之间的复杂相互作用。能够描述血凝块粘弹性行为的模型,结合了更为详尽的Phan-Thien-Tanner(PTT)模型,已成功应用于简单的几何体,但应用于复杂几何体时似乎难以控制。在动脉瘤凝块建模中,复杂的几何形状和复杂的粘弹性模型对于逼真的模拟结果至关重要,因此成功实施它似乎是必要的。本文介绍的论文着重介绍了一种稳定策略,以在将PTT模型应用于带有植入式分流器的更复杂的动脉瘤几何体时,避免数值困难。

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