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考虑几何变化情况下脑动脉瘤CFD模拟的验证。

Validation of CFD simulations of cerebral aneurysms with implication of geometric variations.

作者信息

Hoi Yiemeng, Woodward Scott H, Kim Minsuok, Taulbee Dale B, Meng Hui

机构信息

Department of Mechanical and Aerospace Engineering, University at Buffalo, Buffalo, NY 14260, USA.

出版信息

J Biomech Eng. 2006 Dec;128(6):844-51. doi: 10.1115/1.2354209.

Abstract

BACKGROUND

Computational fluid dynamics (CFD) simulations using medical-image-based anatomical vascular geometry are now gaining clinical relevance. This study aimed at validating the CFD methodology for studying cerebral aneurysms by using particle image velocimetry (PIV) measurements, with a focus on the effects of small geometric variations in aneurysm models on the flow dynamics obtained with CFD.

METHOD OF APPROACH

An experimental phantom was fabricated out of silicone elastomer to best mimic a spherical aneurysm model. PIV measurements were obtained from the phantom and compared with the CFD results from an ideal spherical aneurysm model (S1). These measurements were also compared with CFD results, based on the geometry reconstructed from three-dimensional images of the experimental phantom. We further performed CFD analysis on two geometric variations, S2 and S3, of the phantom to investigate the effects of small geometric variations on the aneurysmal flow field. Results. We found poor agreement between the CFD results from the ideal spherical aneurysm model and the PIV measurements from the phantom, including inconsistent secondary flow patterns. The CFD results based on the actual phantom geometry, however, matched well with the PIV measurements. CFD of models S2 and S3 produced qualitatively similar flow fields to that of the phantom but quantitatively significant changes in key hemodynamic parameters such as vorticity, positive circulation, and wall shear stress.

CONCLUSION

CFD simulation results can closely match experimental measurements as long as both are performed on the same model geometry. Small geometric variations on the aneurysm model can significantly alter the flow-field and key hemodynamic parameters. Since medical images are subjected to geometric uncertainties, image-based patient-specific CFD results must be carefully scrutinized before providing clinical feedback.

摘要

背景

使用基于医学图像的解剖血管几何结构进行计算流体动力学(CFD)模拟如今正获得临床相关性。本研究旨在通过粒子图像测速(PIV)测量来验证用于研究脑动脉瘤的CFD方法,重点关注动脉瘤模型中小的几何变化对CFD获得的流动动力学的影响。

方法

用硅橡胶制作了一个实验模型,以最佳模拟球形动脉瘤模型。从该模型获得PIV测量结果,并与理想球形动脉瘤模型(S1)的CFD结果进行比较。这些测量结果还与基于实验模型三维图像重建的几何结构的CFD结果进行比较。我们进一步对该模型的两种几何变化S2和S3进行了CFD分析,以研究小的几何变化对动脉瘤流场的影响。结果。我们发现理想球形动脉瘤模型的CFD结果与模型的PIV测量结果之间一致性较差,包括二次流模式不一致。然而,基于实际模型几何结构的CFD结果与PIV测量结果匹配良好。模型S2和S3的CFD产生的流场在定性上与模型相似,但在关键血流动力学参数如涡度、正向环流和壁面剪应力方面有定量的显著变化。

结论

只要在相同的模型几何结构上进行CFD模拟结果和实验测量,两者就能紧密匹配。动脉瘤模型上小的几何变化会显著改变流场和关键血流动力学参数。由于医学图像存在几何不确定性,在提供临床反馈之前,必须仔细审查基于图像的患者特异性CFD结果。

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