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使用准静态模型研究肩锁关节韧带中的应力和应变模式。

The stress and strain pattern in the ligaments of the acromioclavicular joint using a quasi-static model.

作者信息

Velasquez Garcia Ausberto, Salamé Farid, Mura Joaquín

机构信息

Department of Orthopedic Surgery, Clinica Universidad de los Andes, Santiago, Chile; Department of Orthopedic Surgery, Mayo Clinic, Rochester, MN, USA; Department of Orthopedic Surgery, Hospital Militar de Santiago, Santiago, Chile..

Department of Mechanical Engineering, Universidad Tecnica Federico Santa Maria, Santiago, Chile.

出版信息

Clin Biomech (Bristol). 2023 Jan;101:105859. doi: 10.1016/j.clinbiomech.2022.105859. Epub 2022 Dec 16.

Abstract

BACKGROUND

The precise role of the acromioclavicular and coracoclavicular ligaments during shoulder motion is unclear. We evaluate changes in the stress-strain distribution of the acromioclavicular joint's ligaments during different shoulder passive motion positions.

METHODS

A 3D acromioclavicular joint model was reconstructed. A constitutive hyperelastic model was used for the ligaments. The kinematics of the shoulder girdle was taken to simulate shoulder abduction (Motion 1) and horizontal adduction (Motion 2). A computer-generated quasi-static and non-linear finite element model was used to predict the 3D stress-strain distribution pattern of the acromioclavicular ligament and the coracoclavicular ligament complex.

FINDINGS

In motion 1, from 20 to 90° the peak von Mises stress was found in the conoid (4.14 MPa) and the anteroinferior bundle (2.46 MPa), while from 90 to 120° it was found in the conoid and the trapezoid. However, there were no significant differences between the mean stress values between anteroinferior bundle and trapezoid throughout the motion (p = 0.98). In Motion 2, from 20 to 80° the maximum equivalent elastic strain was found in the anteroinferior bundle (0.68 mm/mm) and the conoid (0.57 mm/mm), while from 80 to 100° it was higher in the conoid (0.88 mm/mm) than in the anteroinferior bundle (0.77 mm/mm).

INTERPRETATION

The coracoclavicular ligament complex demonstrated a high stress-strain concentration during simulated passive shoulder abduction. Additionally, it was shown that the acromioclavicular ligament plays an important role in joint restraint during passive horizontal adduction, changing the primary role with the trapezoid and conoid at different motion intervals.

摘要

背景

肩锁韧带和喙锁韧带在肩部运动过程中的精确作用尚不清楚。我们评估了在不同肩部被动运动位置时肩锁关节韧带的应力-应变分布变化。

方法

重建了一个三维肩锁关节模型。韧带采用本构超弹性模型。采用肩带运动学来模拟肩部外展(运动1)和水平内收(运动2)。使用计算机生成的准静态非线性有限元模型来预测肩锁韧带和喙锁韧带复合体的三维应力-应变分布模式。

结果

在运动1中,从20°到90°,冯·米塞斯应力峰值出现在圆锥韧带(4.14兆帕)和前下束(2.46兆帕),而从90°到120°,出现在圆锥韧带和梯形韧带。然而,在整个运动过程中,前下束和梯形韧带的平均应力值之间没有显著差异(p = 0.98)。在运动2中,从20°到80°,最大等效弹性应变出现在前下束(0.68毫米/毫米)和圆锥韧带(0.57毫米/毫米),而从80°到100°,圆锥韧带(0.88毫米/毫米)的应变高于前下束(0.77毫米/毫米)。

解读

在模拟的被动肩部外展过程中,喙锁韧带复合体表现出高应力-应变集中。此外,研究表明,肩锁韧带在被动水平内收过程中对关节约束起重要作用,在不同运动区间与梯形韧带和圆锥韧带的主要作用发生变化。

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