Numerical Modelling of an Aneurysm Mechanical Characterisation Device: Validation Procedure Based on FEA-DIC Comparisons

IF 2 3区 工程技术 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING Experimental Mechanics Pub Date : 2024-03-13 DOI:10.1007/s11340-024-01049-x
J. Raviol, G. Plet, H. Magoariec, C. Pailler-Mattei
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引用次数: 0

Abstract

Background

Intracranial aneurysm is a pathology related to the biomechanical deterioration of the arterial wall. As yet, there is no method capable of predicting rupture risk based on quantitative, in vivo mechanical data. This study is part of a large-scale project aimed at providing clinicians with a non-invasive, patient-specific decision support tool, based on the in vivo mechanical characterisation of the aneurysm wall. To this end, an original arterial wall deformation device was developed and tested on polymeric phantom arteries. Concurrently, a computational model coupled with the experimental study was developed to improve understanding of the interaction between the arterial wall deformation device and the aneurysm wall.

Objective

An original procedure was implemented to validate the numerical model against experimental results.

Methods

The deformation induced by the device on the polymeric phantom arteries is quantified by Digital Image Correlation. The Fluid-Structure Interaction between the device and the arterial wall was modelled numerically with the Finite Element method. The validation procedure encompasses the extraction and the interpolation of the numerical results. The computed strains were compared with the data measured experimentally.

Results

The numerical results interpolated on the experimental reference image were associated with several deformation device locations. These configurations induced strains and displacements ranges that included the experimental results, which validates the proposed model.

Conclusions

The reliability of the procedure was validated with various study cases and artery materials. The procedure could be extended to experimental studies involving more complex phantom arteries in terms of shape and wall heterogeneity.

Abstract Image

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动脉瘤机械表征装置的数值建模:基于 FEA-DIC 比较的验证程序
背景颅内动脉瘤是一种与动脉壁生物力学恶化有关的病理现象。到目前为止,还没有一种方法能够根据定量的活体机械数据预测破裂风险。这项研究是一个大型项目的一部分,该项目旨在根据动脉瘤壁的活体机械特征,为临床医生提供一种无创、针对特定患者的决策支持工具。为此,我们开发了一种独创的动脉壁变形装置,并在聚合物模型动脉上进行了测试。同时,还开发了一个与实验研究相结合的计算模型,以加深对动脉壁变形装置与动脉瘤壁之间相互作用的理解。方法通过数字图像相关性对装置在聚合物模型动脉上引起的变形进行量化。利用有限元方法对装置与动脉壁之间的流体-结构相互作用进行了数值模拟。验证程序包括数值结果的提取和插值。计算出的应变与实验测量的数据进行了比较。结果在实验参考图像上插值的数值结果与多个变形装置位置相关联。这些配置引起的应变和位移范围与实验结果一致,从而验证了所提出的模型。结论该程序的可靠性通过各种研究案例和动脉材料得到了验证。该程序可扩展到涉及形状和管壁异质性更复杂的模型动脉的实验研究中。
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来源期刊
Experimental Mechanics
Experimental Mechanics 物理-材料科学:表征与测试
CiteScore
4.40
自引率
16.70%
发文量
111
审稿时长
3 months
期刊介绍: Experimental Mechanics is the official journal of the Society for Experimental Mechanics that publishes papers in all areas of experimentation including its theoretical and computational analysis. The journal covers research in design and implementation of novel or improved experiments to characterize materials, structures and systems. Articles extending the frontiers of experimental mechanics at large and small scales are particularly welcome. Coverage extends from research in solid and fluids mechanics to fields at the intersection of disciplines including physics, chemistry and biology. Development of new devices and technologies for metrology applications in a wide range of industrial sectors (e.g., manufacturing, high-performance materials, aerospace, information technology, medicine, energy and environmental technologies) is also covered.
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