A 3-D Printed Optically Clear Rigid Diseased Carotid Bifurcation Arterial Mock Vessel Model for Particle Image Velocimetry Analysis in Pulsatile Flow

Nicholas Stanley, Ashley Ciero, W. Timms, Rodward L. Hewlin
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引用次数: 9

Abstract

In recent years, blood flow analyses of diseased arterial mock vessels using particle image velocimetry (PIV) have been hampered by the inability to fabricate optically clear anatomical vessel models that realistically replicate the complex morphology of arterial vessels and provide highly resolved flow images of flow tracer particles. The aim of this paper is to introduce a novel approach for producing optically clear 3-D printed rigid anatomical arterial vessel models that are suitable for PIV analysis using a common 3-D inkjet printing process (using a Formlabs Form 2 3-D printer) and stock clear resin (RS-F2-GPCL-04). By matching the index of refraction (IOR) of the working fluid to the stock clear resin material, and by printing the part in a 45-deg print orientation, a clear anatomical model that allows clear visualization of flow tracer particles can be produced which yields highly resolved flow images for PIV analyses. However, a 45-deg print orientation increases the need for post-processing due to an increased amount of printed support material. During post-processing, the part must be wet sanded in several steps and surface finished with Novus Plastic Polish 3 Step System to achieve the final surface finish needed to yield high-resolution flow images. The mock arterial vessel model produced in this work is a 3-D printed diseased carotid bifurcation artery developed from CTA scan data. A PIV analysis was conducted on the developed mock arterial vessel model installed in a complex transient flow loop to assess the flow profiles within the model and the clarity of the model. A computational fluid dynamics (CFD) simulation was conducted on the same carotid bifurcation arterial geometry, and the results were used as a benchmark comparison for PIV results. The results obtained in this work show excellent promise for using the developed approach for developing 3-D printed anatomical vessel models for experimental PIV analyses. The fabrication methodology of the clear anatomical models, PIV results, and CFD results is described in detail.
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3d打印光学清晰刚性病变颈动脉分叉动脉模拟血管模型用于脉冲血流颗粒图像测速分析
近年来,由于无法制造光学清晰的解剖血管模型来真实地复制动脉血管的复杂形态,并提供高分辨率的流动示踪颗粒的流动图像,使用颗粒图像测速法(PIV)对病变动脉模拟血管的血流分析受到了阻碍。本文的目的是介绍一种新的方法来生产光学清晰的3d打印刚性解剖动脉血管模型,该模型适用于PIV分析,使用普通的3d喷墨打印工艺(使用Formlabs Form 2 3d打印机)和透明树脂(RS-F2-GPCL-04)。通过将工作流体的折射率(IOR)与原始的透明树脂材料相匹配,并以45度的打印方向打印零件,可以产生清晰的解剖模型,从而可以清晰地显示流动示踪剂颗粒,从而产生用于PIV分析的高分辨率流动图像。然而,由于打印支撑材料的数量增加,45度的打印方向增加了后处理的需要。在后处理过程中,零件必须经过几个步骤的湿砂处理,并用Novus塑料抛光3步系统完成表面处理,以达到产生高分辨率流动图像所需的最终表面处理。在这项工作中产生的模拟动脉血管模型是根据CTA扫描数据开发的3d打印病变颈动脉分叉动脉。将开发的模拟动脉血管模型安装在一个复杂的瞬态流动环中,进行PIV分析,以评估模型内的流动剖面和模型的清晰度。计算流体动力学(CFD)模拟了相同的颈动脉分叉动脉几何形状,并将结果作为PIV结果的基准比较。在这项工作中获得的结果显示了使用开发的方法开发用于实验PIV分析的3d打印解剖血管模型的良好前景。详细描述了清晰解剖模型的制作方法、PIV结果和CFD结果。
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