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3D-Printed Tissue-Mimicking Phantoms for Medical Imaging and Computational Validation Applications

机译:用于医学成像和计算验证应用程序的3D打印组织模仿模型

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摘要

Abdominal aortic aneurysm (AAA) is a permanent, irreversible dilation of the distal region of the aorta. Recent efforts have focused on improved AAA screening and biomechanics-based failure prediction. Idealized and patient-specific AAA phantoms are often employed to validate numerical models and imaging modalities. To produce such phantoms, the investment casting process is frequently used, reconstructing the 3D vessel geometry from computed tomography patient scans. In this study the alternative use of 3D printing to produce phantoms is investigated. The mechanical properties of flexible 3D-printed materials are benchmarked against proven elastomers. We demonstrate the utility of this process with particular application to the emerging imaging modality of ultrasound-based pulse wave imaging, a noninvasive diagnostic methodology being developed to obtain regional vascular wall stiffness properties, differentiating normal and pathologic tissue in vivo. Phantom wall displacements under pulsatile loading conditions were observed, showing good correlation to fluid–structure interaction simulations and regions of peak wall stress predicted by finite element analysis. 3D-printed phantoms show a strong potential to improve medical imaging and computational analysis, potentially helping bridge the gap between experimental and clinical diagnostic tools.
机译:腹主动脉瘤(AAA)是主动脉远端区域的永久性不可逆扩张。最近的工作集中在改进AAA筛选和基于生物力学的故障预测上。理想化和针对特定患者的AAA体模通常用于验证数值模型和成像模态。为了产生这样的体模,经常使用熔模铸造工艺,从计算机断层扫描患者扫描中重建3D血管的几何形状。在这项研究中,研究了3D打印产生幻像的替代用途。柔性3D打印材料的机械性能已与成熟的弹性体进行了比较。我们展示了这一过程的实用性,特别是对基于超声的脉搏波成像的新兴成像方式的实用性,这是一种非侵入性的诊断方法,正在开发以获得局部血管壁硬度特性,区分体内正常组织和病理组织。观察到在脉动载荷条件下的虚拟壁位移,与流体-结构相互作用模拟和通过有限元分析预测的峰值壁应力区域显示出良好的相关性。 3D打印的幻像在改善医学成像和计算分析方面显示出强大的潜力,有可能帮助弥合实验和临床诊断工具之间的鸿沟。

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