Vascular Flow Phantom of A Cohort-Based Averaged Abdominal Aortic Aneurysm: Design, Fabrication and Characterization

IF 5.4 2区 医学 Q3 ENGINEERING, BIOMEDICAL Annals of Biomedical Engineering Pub Date : 2025-04-01 DOI:10.1007/s10439-025-03717-y
H. Mirgolbabaee, J. R. Nagel, J. Plomp, A. Ghanbarzadeh-Dagheyan, J. A. Simmering, M. Versluis, M. M. P. J. Reijnen, E. Groot Jebbink
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Abstract

Purpose

Vascular flow phantoms are an invaluable tool for in vitro and in silico studies, but their design and fabrication processes are often not reported. In this study, a framework is introduced to design and fabricate 3D printable high-fidelity cohort-based averaged abdominal aortic aneurysm (AAA) phantoms.

Methods

AAA geometries of 50 patients were segmented from preoperative computed tomography angiography scans. The segmented geometries and center lumen lines (CLL) were used in an in-house developed algorithm to average the CLL coordinates and corresponding diameters over the entire cohort. The reconstructed averaged anatomy was 3D printed as a thin-walled flow phantom with Formlabs Flexible 80A resin. The acoustic properties of the resin were characterized and the feasibility of flow field quantification inside the phantom with ultrasound particle imaging velocimetry (echoPIV) was investigated.

Results

Comparison between patient-specific models generated by our method and their corresponding reference segmentations, for ten patients, showed a mean Sørensen–Dice similarity coefficient of 0.916 ± 0.21 and the largest distances (5-10% of the lumen diameter) were found at the aneurysmal sac. The Flexible 80A resin had an average speed of sound of 1785 m/s, attenuation of 7.8 dB/mm and density of 1130 kg/m3. Volumetric flow profiles obtained with echoPIV in the suprarenal artery (i.e. phantom inlet) matched the flow sensor data.

Conclusion

The reported framework was used to make an averaged, cohort-based AAA model, which showed a good match with its reference model. A 3D printed, thin-walled phantom was made based on this model and the feasibility of flow field quantification inside the phantom was shown.

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基于队列的平均腹主动脉瘤的血管流动幻象:设计、制造和表征。
目的:血管流动模型是体外和计算机研究的宝贵工具,但其设计和制造过程往往没有报道。在这项研究中,引入了一个框架来设计和制造3D打印高保真的基于队列的平均腹主动脉瘤(AAA)模型。方法:对50例患者术前计算机断层血管造影扫描的AAA几何形状进行分割。在内部开发的算法中使用分割的几何形状和中心管腔线(CLL)来平均整个队列的CLL坐标和相应的直径。用Formlabs Flexible 80A树脂将重建的平均解剖结构3D打印为薄壁流动体。对树脂的声学特性进行了表征,并探讨了超声颗粒成像测速仪(echoPIV)在模体内进行流场量化的可行性。结果:10例患者的Sørensen-Dice相似系数平均值为0.916±0.21,动脉瘤囊处距离最大(管腔直径的5-10%)。柔性80A树脂的平均声速为1785 m/s,衰减7.8 dB/mm,密度为1130 kg/m3。echoPIV在肾上动脉(即幻像入口)获得的体积流量曲线与流量传感器数据相匹配。结论:采用所报道的框架建立了一个平均的、基于队列的AAA模型,该模型与参考模型吻合良好。基于该模型制作了3D打印薄壁体模,并验证了体模内部流场量化的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annals of Biomedical Engineering
Annals of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
7.50
自引率
15.80%
发文量
212
审稿时长
3 months
期刊介绍: Annals of Biomedical Engineering is an official journal of the Biomedical Engineering Society, publishing original articles in the major fields of bioengineering and biomedical engineering. The Annals is an interdisciplinary and international journal with the aim to highlight integrated approaches to the solutions of biological and biomedical problems.
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