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首页> 外文期刊>Acta of Bioengineering and Biomechanics >Three-dimensional biomechanical modeling and simulation of trephine cutting cornea for keratoplasty
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Three-dimensional biomechanical modeling and simulation of trephine cutting cornea for keratoplasty

机译:角膜术中的三维生物力学建模与颅骨切割角膜模拟

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Purpose: Trephination is one of the basic operations of keratoplasty, and the biomechanical mechanism of the operation can be revealed based on three-dimensional modeling and simulation of trephine cutting cornea. Methods: Based on the analysis of the physical and biomechanical characteristics of corneal trephination, a three-dimensional numerical model of corneal trephination is built, where the cornea can be simplified to two layers structure including stroma and epithelium, and the trephine cuts the cornea under the vertical motion load and the rotational motion load. A three-dimensional failure criterion of corneal material is proposed based on the yield strength theory. On this basis, trephination simulation is carried out, and the units of corneal material are removed from the model when they meet the defined failure criterion. Results: Under the given parameters including the velocity, the angle and the angular velocity, the trephine force curves, include the linear cutting force and the rotary cutting force are obtained, and show the change of the forces with displacement during the process of trephination simulation. The maps of the equivalent stress show the destruction and deformation of the cornea. Then, the experiment of robotic trephination is carried out under the same parameters and the effectiveness of the simulation is evaluated. Conclusions: Based on mechanics theory and finite element method, the process of trephine cutting cornea has been reproduced, and the interaction mechanism is revealed, which lays the foundation for the development of real-time simulation and virtual system of the corneal surgery.
机译:目的:横向是角膜变形术的基本操作之一,可以基于三维建模和半纤维切割角膜的三维建模和模拟来揭示该操作的生物力学机制。方法:基于角膜迁移的物理和生物力学特征的分析,构建了角膜翼部的三维数值模型,其中角膜可以简化到两层结构,包括基质和上皮,并且内部切割角膜垂直运动负载和旋转运动负载。基于屈服强度理论提出了角膜材料的三维故障标准。在此基础上,进行横向模拟,并且当符合定义的故障标准时,从模型中移除角膜材料单元。结果:在包括速度,角度和角速度的给定参数下,传星力曲线包括线性切割力和旋转切割力,并在横向模拟过程中显示出在置换过程中的力的变化。等同应力的地图显示了角膜的破坏和变形。然后,在相同的参数下进行机器人曲程的实验,并评估模拟的有效性。结论:基于力学理论和有限元方法,复制了十字切割角膜的过程,揭示了互动机制,为角膜外科实时仿真和虚拟系统的发展为基础。

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