首页> 外文会议>Conference on Imaging Informatics for Healthcare, Research, and Applications >Design Optimization for Accurate Flow Simulations in 3D Printed Vascular Phantoms Derived from Computed Tomography Angiography
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Design Optimization for Accurate Flow Simulations in 3D Printed Vascular Phantoms Derived from Computed Tomography Angiography

机译:基于计算断层造影血管造影的3D印刷血管幽灵精确流模拟的设计优化

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3D printing has been used to create complex arterial phantoms to advance device testing and physiological condition evaluation. Stereolithographic (STL) files of patient-specific cardiovascular anatomy are acquired to build cardiac vasculature through advanced mesh-manipulation techniques. Management of distal branches in the arterial tree is important to make such phantoms practicable. We investigated methods to manage the distal arterial flow resistance and pressure thus creating physiologically and geometrically accurate phantoms that can be used for simulations of image-guided interventional procedures with new devices. Patient specific CT data were imported into a Vital Imaging workstation, segmented, and exported as STL files. Using a mesh-manipulation program (Meshmixer) we created flow models of the coronary tree. Distal arteries were connected to a compliance chamber. The phantom was then printed using a Stratasys Connex3 multi-material printer: the vessel in TangoPlus and the fluid flow simulation chamber in Vero. The model was connected to a programmable pump and pressure sensors measured flow characteristics through the phantoms. Physiological flow simulations for patient-specific vasculature were done for six cardiac models (three different vasculatures comparing two new designs). For the coronary phantom we obtained physiologically relevant waves which oscillated between 80 and 120 mmHg and a flow rate of ~125 ml/min, within the literature reported values. The pressure wave was similar with those acquired in human patients. Thus we demonstrated that 3D printed phantoms can be used not only to reproduce the correct patient anatomy for device testing in image-guided interventions, but also for physiological simulations. This has great potential to advance treatment assessment and diagnosis.
机译:3D打印已被用于创建复杂的动脉幻影,以提前设备测试和生理条件评估。通过先进的网格操纵技术,获得了患者特异性心血管解剖学的立体光谱(STL)文件,以通过先进的网格操纵技术构建心脏脉管系统。动脉树中远端分支的管理对于制造这种幽灵可行的重要性是重要的。我们调查了管理远端动脉耐流性和压力的方法,从而产生生理和几何准确幻像,可用于模拟与新设备的图像引导介入程序。患者特定的CT数据被导入到生命的成像工作站,分段,并导出为STL文件。使用网格操纵程序(Meshmixer)我们创建了冠状动脉树的流模型。远端动脉连接到合规室。然后使用Stratasys Connex3多材料打印机打印幻像:展位中的血管和VERO中的流体流模拟室。该模型连接到可编程泵,压力传感器通过幻像测量流动特性。为六种心脏模型进行了患者特异性脉管系统的生理流动模拟(比较两种新设计的三种不同的血管)。对于冠状动脉族幻影,我们在文献报告的值内获得了在80至120mmHg之间振荡的生理相关的波和〜125mL / min的流速。压力波与人类患者中获得的那些相似。因此,我们证明了3D印刷的幻像不仅可以用于再现在图像引导干预中的装置测试的正确患者解剖学,而且用于生理模拟。这具有巨大的潜力,可以推进治疗评估和诊断。

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