Patient-specific finite element analysis of human corneal lenticules: An experimental and numerical study.

M. Nambiar, Layko Liechti, Harald P. Studer, A. S. Roy, T. Seiler, P. Büchler
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Abstract

The number of elective refractive surgeries is constantly increasing due to the drastic increase in myopia prevalence. Since corneal biomechanics are critical to human vision, accurate modeling is essential to improve surgical planning and optimize the results of laser vision correction. In this study, we present a numerical model of the anterior cornea of young patients who are candidates for laser vision correction. Model parameters were determined from uniaxial tests performed on lenticules of patients undergoing refractive surgery by means of lenticule extraction, using patient-specific models of the lenticules. The models also took into account the known orientation of collagen fibers in the tissue, which have an isotropic distribution in the corneal plane, while they are aligned along the corneal curvature and have a low dispersion outside the corneal plane. The model was able to reproduce the experimental data well with only three parameters. These parameters, determined using a realistic fiber distribution, yielded lower values than those reported in the literature. Accurate characterization and modeling of the cornea of young patients is essential to study better refractive surgery for the population undergoing these treatments, to develop in silico models that take corneal biomechanics into account when planning refractive surgery, and to provide a basis for improving visual outcomes in the rapidly growing population undergoing these treatments.
人类角膜微透镜的患者特异性有限元分析:一项实验和数值研究。
由于近视患病率的急剧上升,选择性屈光手术的数量不断增加。由于角膜生物力学对人类视觉至关重要,因此准确的建模对于改进手术计划和优化激光视力矫正的结果至关重要。在这项研究中,我们提出了一个年轻患者前角膜的数值模型,这些患者是激光视力矫正的候选者。模型参数是通过使用患者特有的微透镜模型,通过微透镜提取对接受屈光手术的患者的微透镜进行单轴测试来确定的。该模型还考虑了组织中胶原纤维的已知方向,胶原纤维在角膜平面内具有各向同性分布,同时它们沿着角膜曲率排列,并且在角膜平面外具有低分散性。该模型仅用三个参数就能很好地再现实验数据。使用真实的纤维分布确定的这些参数产生的值低于文献中报道的值。年轻患者角膜的精确表征和建模对于为接受这些治疗的人群研究更好的屈光手术、开发在计划屈光手术时考虑角膜生物力学的计算机模型以及为改善接受这些治疗快速增长的人群的视觉结果提供基础至关重要。
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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