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有限元衍生的锁定钢板骨折固定生物力学替代模型

Finite Element-Derived Surrogate Models of Locked Plate Fracture Fixation Biomechanics.

作者信息

Wee Hwabok, Reid J Spence, Chinchilli Vernon M, Lewis Gregory S

机构信息

Department of Orthopaedics and Rehabilitation, Penn State College of Medicine, 500 University Drive, Mail Code H089, Hershey, PA, 17033, USA.

Department of Public Health Sciences, Penn State College of Medicine, Hershey, PA, USA.

出版信息

Ann Biomed Eng. 2017 Mar;45(3):668-680. doi: 10.1007/s10439-016-1714-3. Epub 2016 Aug 23.

Abstract

Internal fixation of bone fractures using plates and screws involves many choices-implant type, material, sizes, and geometric configuration-made by the surgeon. These decisions can be important for providing adequate stability to promote healing and prevent implant mechanical failure. The purpose of this study was to develop mathematical models of the relationships between fracture fixation construct parameters and resulting 3D biomechanics, based on parametric computer simulations. Finite element models of hundreds of different locked plate fixation constructs for midshaft diaphyseal fractures were systematically assembled using custom algorithms, and axial, torsional, and bending loadings were simulated. Multivariate regression was used to fit response surface polynomial equations relating fixation design parameters to outputs including maximum implant stresses, axial and shear strain at the fracture site, and construct stiffness. Surrogate models with as little as three regressors showed good fitting (R  = 0.62-0.97). Inner working length was the strongest predictor of maximum plate and screw stresses, and a variety of quadratic and interaction terms influenced resulting biomechanics. The framework presented in this study can be applied to additional types of bone fractures to provide clinicians and implant designers with clinical insight, surgical optimization, and a comprehensive mathematical description of biomechanics.

摘要

使用钢板和螺钉对骨折进行内固定涉及外科医生做出的许多选择,包括植入物类型、材料、尺寸和几何构型。这些决策对于提供足够的稳定性以促进愈合和防止植入物机械故障可能很重要。本研究的目的是基于参数化计算机模拟,建立骨折固定结构参数与所得三维生物力学之间关系的数学模型。使用定制算法系统地组装了数百种不同的用于骨干中段骨折的锁定钢板固定结构的有限元模型,并模拟了轴向、扭转和弯曲载荷。采用多元回归来拟合将固定设计参数与输出相关联的响应面多项式方程,输出包括最大植入物应力、骨折部位的轴向和剪切应变以及结构刚度。仅含三个回归变量的替代模型显示出良好的拟合效果(R = 0.62 - 0.97)。内工作长度是最大钢板和螺钉应力的最强预测因子,各种二次项和交互项影响所得的生物力学。本研究中提出的框架可应用于其他类型的骨折,为临床医生和植入物设计者提供临床见解、手术优化以及生物力学的全面数学描述。

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