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Multiphysics modeling in support of ultrasonic image development: integration of fluid-structure interaction simulations and Field II applied to the carotid artery

机译:超声波图像开发支持的多体型造型:流体结构相互作用模拟与颈动脉施加田间II的整合

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Previously, we proposed a multiphysics model coupling computational fluid dynamics (CFD) and Field II, allowing assessment of the performance of current and new blood flow estimators (e.g. color flow imaging=CFI, PW Doppler, speckle tracking, vector Doppler) in the carotid artery against ground truth information retrieved from CFD. Important limitations however were the rigid walls and the absence of the arterial wall and surrounding tissue in the simulations. The aim of this study was to improve and expand the model to a more realistic setup of a distensible carotid artery embedded in surrounding tissue. For this purpose, we integrated fluid-structure interaction (FSI) simulations with an ultrasound simulator (Field II), which allows comparison of the ultrasound (US) images with the input data from FSI. Field II represents tissue as random points on which ultrasound waves reflect and whose position can be updated based on the flow field and vessel wall deformation from FSI. We simulated the RF-signal of a patient-specific carotid bifurcation, including the blood pool as well as the vessel wall and surrounding tissue. Realism of the multiphysics model was demonstrated with duplex images.
机译:此前,我们提出了一种多体模型耦合计算流体动力学(CFD)和田间II,允许评估颈动脉中的电流和新血流估计的性能(例如颜色流量成像= CFI,PW多普勒,散斑追踪,矢量多普勒)从CFD检索的地面真理信息的动脉。然而,重要的局限性是刚性墙壁和跨越动脉壁的缺失和围绕模拟组织。本研究的目的是改善和扩展模型,以更现实的一种嵌入周围组织中的颈动脉的更现实的设置。为此目的,我们用超声模拟器(FIAL II)进行流体结构交互(FSI)模拟,这允许将超声(US)图像与FSI的输入数据进行比较。字段II代表组织作为其中的随机点,超声波反射并且可以基于来自FSI的流场和血管壁变形来更新其位置。我们模拟了患者特异性颈动脉分叉的RF信号,包括血液池以及血管壁和周围组织。用双面图像演示了多体型模型的现实主义。

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