基于均质化理论的易用配方,用于血管支架设计和机械特性分析。

IF 4.9 2区 医学 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Dario Carbonaro , Nicola Ferro , Francesco Mezzadri , Diego Gallo , Alberto L. Audenino , Simona Perotto , Umberto Morbiducci , Claudio Chiastra
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引用次数: 0

摘要

背景和目的:血管支架是植入阻塞性疾病患者血管的支架结构。支架通常设计为圆柱形晶格结构,其特点是单元格的周期性重复。支架的设计,包括几何形状和材料特性,会影响其机械性能,进而影响临床效果。计算优化框架已被证明能有效协助血管支架的设计阶段,促进实现更高的机械性能。然而,依赖耗时的模拟和设计过程自动化的挑战限制了设计评估的数量,降低了优化效率。在此背景下,本文介绍了一种用于血管支架机械特性分析的快速自动方法,该方法将支架几何形状(视为单元格的周期性重复)和材料作为输入,并将支架的机械响应作为输出:方法:假定血管支架为薄壁空心圆柱体,具有与圆柱晶格结构相同的宏观几何特征,但由各向异性的匀质材料组成。应用均质化理论将支架单元格层面的微观不均匀性平均化为宏观尺度的均质材料,从而计算出相关的均质材料张量。考虑到薄壁空心圆柱体的线性弹性理论以及与血管支架相关的三种加载情况:径向卷边、轴向牵引和扭转,得出了将支架机械行为与均质化刚度张量相关联的分析公式。通过将得出的分析公式与典型支架设计的有限元分析结果进行比较,对结果进行了验证:结果:计算了三种支架设计的单元格的均质化刚度张量,揭示了它们的机械性能,包括它们是否表现出辅助行为。得出的分析公式成功地与有限元分析进行了验证,所有三种支架的前伸、径向、轴向和扭转刚度计算值的相对差异较小:结论:所提出的方法提供了一种快速、全自动的程序,有助于评估血管支架的机械行为,适合有效集成到计算优化框架中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Easy-to-use formulations based on the homogenization theory for vascular stent design and mechanical characterization

Background and objectives

Vascular stents are scaffolding structures implanted in the vessels of patients with obstructive disease. Stents are typically designed as cylindrical lattice structures characterized by the periodic repetition of unit cells. Their design, including geometry and material characteristics, influences their mechanical performance and, consequently, the clinical outcomes. Computational optimization frameworks have proven to be effective in assisting the design phase of vascular stents, facilitating the achievement of enhanced mechanical performances. However, the reliance on time-consuming simulations and the challenge of automating the design process limit the number of design evaluations and reduce optimization efficiency. In this context, a rapid and automated method for the mechanical characterization of vascular stents is presented, taking the stent geometry, conceived as the periodic repetition of a unit cell, and material as input and providing the mechanical response of the stent as output.

Methods

Vascular stents were assumed to be thin-walled hollow cylinders sharing the same macroscopic geometrical characteristics as the cylindrical lattice structure but composed of an anisotropic homogenized material. Homogenization theory was applied to average the microscopic inhomogeneities at the stent unit cell level into a homogenized material at the macro-scale, enabling the calculation of the associated homogenized material tensor. Analytical formulations were derived to relate the stent mechanical behavior to the homogenized stiffness tensor, considering linear elastic theory for thin-walled hollow cylinders and three loading scenarios of relevance for vascular stents: radial crimping; axial traction; torsion. Validation was conducted by comparing the derived analytical formulations with results obtained from finite element analyses on typical stent designs.

Results

Homogenized stiffness tensors were computed for the unit cells of three stent designs, revealing insights into their mechanical performance, including whether they exhibit auxetic behavior. The derived analytical formulations were successfully validated with finite element analyses, yielding low relative differences in the computed values of foreshortening, radial, axial and torsional stiffnesses for all three stents.

Conclusions

The proposed method offers a rapid, fully automated procedure that facilitates the assessment of the mechanical behavior of vascular stents and is suitable for effective integration into computational optimization frameworks.
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来源期刊
Computer methods and programs in biomedicine
Computer methods and programs in biomedicine 工程技术-工程:生物医学
CiteScore
12.30
自引率
6.60%
发文量
601
审稿时长
135 days
期刊介绍: To encourage the development of formal computing methods, and their application in biomedical research and medical practice, by illustration of fundamental principles in biomedical informatics research; to stimulate basic research into application software design; to report the state of research of biomedical information processing projects; to report new computer methodologies applied in biomedical areas; the eventual distribution of demonstrable software to avoid duplication of effort; to provide a forum for discussion and improvement of existing software; to optimize contact between national organizations and regional user groups by promoting an international exchange of information on formal methods, standards and software in biomedicine. Computer Methods and Programs in Biomedicine covers computing methodology and software systems derived from computing science for implementation in all aspects of biomedical research and medical practice. It is designed to serve: biochemists; biologists; geneticists; immunologists; neuroscientists; pharmacologists; toxicologists; clinicians; epidemiologists; psychiatrists; psychologists; cardiologists; chemists; (radio)physicists; computer scientists; programmers and systems analysts; biomedical, clinical, electrical and other engineers; teachers of medical informatics and users of educational software.
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