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肩肱下韧带复合体有限元建模的方法学与敏感性研究

Methodology and sensitivity studies for finite element modeling of the inferior glenohumeral ligament complex.

作者信息

Ellis Benjamin J, Debski Richard E, Moore Susan M, McMahon Patrick J, Weiss Jeffrey A

机构信息

Department of Bioengineering and Orthopedics, and Scientific Computing and Imaging Institute, University of Utah, Central Campus Drive, Rm. 2480, Salt Lake City, UT, USA.

出版信息

J Biomech. 2007;40(3):603-12. doi: 10.1016/j.jbiomech.2006.01.024. Epub 2006 Mar 31.

Abstract

The objectives of this research were to develop a methodology for three-dimensional finite element (FE) modeling of the inferior glenohumeral ligament complex (IGHL complex) as a continuous structure, to determine optimal mesh density for FE simulations, to examine strains and forces in the IGHL complex in clinically relevant joint positions, and to perform sensitivity studies to assess the effects of assumed material properties. A simple translation test in the anterior direction was performed on a cadaveric shoulder, with the humerus oriented at 60 degrees of glenohumeral abduction and 0 degrees of flexion/extension, at 0 degrees , 30 degrees and 60 degrees of humeral external rotation. The geometries of the relevant structures were extracted from volumetric CT data to create a FE model. Experimentally measured kinematics were applied to the FE model to simulate the simple translation test. First principal strains, insertion site forces and contact forces were analyzed. At maximum anterior humeral translation, strains in the IGHL complex were highly inhomogeneous for all external rotation angles. The motion of the humerus with respect to the glenoid during the simple translation test produced a tangential load at the proximal and distal edges of the IGHL complex. This loading was primarily in the plane of the inferior glenohumeral ligament complex, producing an in-plane shear-loading pattern. There was a significant increase in strain with increasing angle of external rotation. The largest insertion site forces occurred at the axillary pouch insertion to the humerus (36.7N at 60 degrees of external rotation) and the highest contact forces were between the anterior band of the IGHL complex and the humeral cartilage (7.3N at 60 degrees of external rotation). Strain predictions were highly sensitive to changes in the ratio of bulk to shear modulus of the IGHL complex, while predictions were moderately sensitive to changes in elastic modulus of the IGHL complex. Changes to the material properties of the humeral cartilage had little effect on predicted strains. The methodologies developed in this research and the results of the mesh convergence and sensitivity studies provide a basis for the subject-specific modeling of the mechanics of the IGHL complex.

摘要

本研究的目的是开发一种方法,将下盂肱韧带复合体(IGHL复合体)作为一个连续结构进行三维有限元(FE)建模,确定FE模拟的最佳网格密度,检查在临床相关关节位置时IGHL复合体中的应变和力,并进行敏感性研究以评估假定材料特性的影响。在一具尸体肩部上进行了向前方向的简单平移测试,肱骨处于盂肱外展60度、屈伸0度,肱骨外旋0度、30度和60度的位置。从容积CT数据中提取相关结构的几何形状以创建FE模型。将实验测量的运动学应用于FE模型以模拟简单平移测试。分析了第一主应变、插入部位力和接触力。在肱骨最大向前平移时,对于所有外旋角度,IGHL复合体中的应变都是高度不均匀的。简单平移测试期间肱骨相对于关节盂的运动会在IGHL复合体的近端和远端边缘产生切向载荷。这种载荷主要作用在下盂肱韧带复合体平面内,产生平面内剪切载荷模式。随着外旋角度增加应变显著增加。最大的插入部位力出现在腋袋插入肱骨处(外旋60度时为36.7N),最高接触力出现在IGHL复合体前束与肱骨软骨之间(外旋60度时为7.3N)。应变预测对IGHL复合体体积模量与剪切模量之比的变化高度敏感,而预测对IGHL复合体弹性模量的变化中度敏感。肱骨软骨材料特性的变化对预测应变影响很小。本研究中开发的方法以及网格收敛和敏感性研究的结果为IGHL复合体力学特性的个体化建模提供了基础。

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