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Computational modeling of mechanical anisotropy in the cornea and sclera.

机译:角膜和巩膜中机械各向异性的计算模型。

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PURPOSE: To determine the biomechanical deformation of the cornea resulting from tissue cutting and removal by use of a new computational model and to investigate the effect of mechanical anisotrophy resulting from the fibrillar architecture. SETTING: Department of Mechanical Engineering, Stanford University, Stanford, California, USA. METHODS: A mathematical model for a typical lamella that explicitly accounts for the strain energy of the collagen fibrils, extrafibrillar matrix, and proteoglycan cross-linking was developed. A stromal model was then obtained by generalized averaging of the lamella properties through the stromal thickness, taking into account the preferred orientations of the collagen fibrils, which were obtained from x-ray scattering data. RESULTS: The model was used to predict astigmatism induced by a tunnel incision in the sclera, such as is used for cataract extraction and intraocular lens implantation. The amount of induced cylinder was in good agreement with published clinical data. Results show it is important for the model to incorporate preexisting corneal physiological stress caused by intraocular pressure. CONCLUSIONS: The mathematical model described appears to provide a framework for further development, capturing the essential features of mechanical anisotropy of the cornea. The tunnel incision simulation indicated the importance of the anisotropy in this case.
机译:目的:通过使用新的计算模型确定组织切割和去除所导致的角膜的生物力学变形,并研究原纤维结构所导致的机械各向异性的影响。地点:美国加利福尼亚州斯坦福市,斯坦福大学机械工程系。方法:建立了典型薄片的数学模型,该模型明确考虑了胶原纤维,原纤维外基质和蛋白聚糖交联的应变能。然后考虑到从X射线散射数据获得的胶原原纤维的优选取向,通过对整个基质厚度的薄片性质进行一般性平均来获得基质模型。结果:该模型用于预测巩膜中隧道切口引起的散光,例如用于白内障摘除和人工晶状体植入。诱导气瓶的数量与已发表的临床数据非常吻合。结果表明,对于该模型而言,重要的是要纳入由眼内压引起的角膜生理应力。结论:所描述的数学模型似乎为进一步开发提供了框架,捕捉了角膜机械各向异性的基本特征。隧道切口模拟表明了在这种情况下各向异性的重要性。

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