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本文引用的文献

1
The interaction of muscle moment arm, knee laxity, and torque in a multi-scale musculoskeletal model of the lower limb.下肢多尺度肌肉骨骼模型中肌肉力臂、膝关节松弛度和扭矩之间的相互作用。
J Biomech. 2018 Jul 25;76:173-180. doi: 10.1016/j.jbiomech.2018.05.030. Epub 2018 Jun 15.
2
Assessment of Knee Kinematics in Older Adults Using High-Speed Stereo Radiography.使用高速立体射线摄影术评估老年人的膝关节运动学
Med Sci Sports Exerc. 2017 Nov;49(11):2260-2267. doi: 10.1249/MSS.0000000000001350.
3
Combined measurement and modeling of specimen-specific knee mechanics for healthy and ACL-deficient conditions.针对健康和前交叉韧带损伤状态下特定样本的膝关节力学进行联合测量与建模。
J Biomech. 2017 May 24;57:117-124. doi: 10.1016/j.jbiomech.2017.04.008. Epub 2017 Apr 20.
4
Dependence of Muscle Moment Arms on In Vivo Three-Dimensional Kinematics of the Knee.肌肉力臂对膝关节活体三维运动学的依赖性。
Ann Biomed Eng. 2017 Mar;45(3):789-798. doi: 10.1007/s10439-016-1728-x. Epub 2016 Sep 12.
5
A Combined Experimental and Computational Approach to Subject-Specific Analysis of Knee Joint Laxity.一种用于膝关节松弛度个体特异性分析的实验与计算相结合的方法。
J Biomech Eng. 2016 Aug 1;138(8):0810041-8. doi: 10.1115/1.4033882.
6
Subject-specific modeling of muscle force and knee contact in total knee arthroplasty.全膝关节置换术中肌肉力量和膝关节接触的个体化建模
J Orthop Res. 2016 Sep;34(9):1576-87. doi: 10.1002/jor.23171. Epub 2016 Feb 4.
7
Validation of predicted patellofemoral mechanics in a finite element model of the healthy and cruciate-deficient knee.在健康和交叉韧带损伤膝关节有限元模型中预测髌股力学的验证
J Biomech. 2016 Jan 25;49(2):302-9. doi: 10.1016/j.jbiomech.2015.12.020. Epub 2015 Dec 21.
8
Prediction of In Vivo Knee Joint Loads Using a Global Probabilistic Analysis.使用全局概率分析预测体内膝关节负荷
J Biomech Eng. 2016 Mar;138(3):4032379. doi: 10.1115/1.4032379.
9
Influence of Ligament Properties on Tibiofemoral Mechanics in Walking.韧带特性对步行时胫股关节力学的影响。
J Knee Surg. 2016 Feb;29(2):99-106. doi: 10.1055/s-0035-1558858. Epub 2015 Sep 26.
10
Statistical modeling to characterize relationships between knee anatomy and kinematics.用于描述膝关节解剖结构与运动学之间关系的统计建模。
J Orthop Res. 2015 Nov;33(11):1620-30. doi: 10.1002/jor.22948. Epub 2015 Jun 23.

采用显式有限元建模的基于肌肉驱动的活动模拟的下肢模型。

A lower extremity model for muscle-driven simulation of activity using explicit finite element modeling.

机构信息

University of Denver, Center for Orthopaedic Biomechanics, Denver, CO, United States.

University of Denver, Center for Orthopaedic Biomechanics, Denver, CO, United States.

出版信息

J Biomech. 2019 Feb 14;84:153-160. doi: 10.1016/j.jbiomech.2018.12.040. Epub 2019 Jan 3.

DOI:10.1016/j.jbiomech.2018.12.040
PMID:30630624
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6361714/
Abstract

A key strength of computational modeling is that it can provide estimates of muscle, ligament, and joint loads, stresses, and strains through non-invasive means. However, simulations that can predict the forces in the muscles during activity while maintaining sufficient complexity to realistically represent the muscles and joint structures can be computationally challenging. For this reason, the current state of the art is to apply separate rigid-body dynamic and finite-element (FE) analyses in series. However, the use of two or more disconnected models often fails to capture key interactions between the joint-level and whole-body scales. Single framework MSFE models have the potential to overcome the limitations associated with disconnected models in series. The objectives of the current study were to create a multi-scale FE model of the human lower extremity that combines optimization, dynamic muscle modeling, and structural FE analysis in a single framework and to apply this framework to evaluate the mechanics of healthy knee specimens during two activities. Two subject-specific FE models (Model 1, Model 2) of the lower extremity were developed in ABAQUS/Explicit including detailed representations of the muscles. Muscle forces, knee joint loading, and articular contact were calculated for two activities using an inverse dynamics approach and static optimization. Quadriceps muscle forces peaked at the onset of chair rise (2174 N, 1962 N) and in early stance phase (510 N, 525 N), while gait saw peak forces in the hamstrings (851 N, 868 N) in midstance. Joint forces were similar in magnitude to available telemetric patient data. This study demonstrates the feasibility of detailed quasi-static, muscle-driven simulations in an FE framework.

摘要

计算建模的一个主要优势在于,它可以通过非侵入性手段提供肌肉、韧带和关节的受力、应力和应变的估计值。然而,能够预测活动中肌肉受力的模拟,同时又要保持足够的复杂性来真实地表示肌肉和关节结构,这在计算上可能具有挑战性。出于这个原因,目前的技术水平是将单独的刚体动力学和有限元(FE)分析串联应用。然而,使用两个或更多不相关的模型通常无法捕捉关节级和整个身体级之间的关键相互作用。单一框架多尺度 FE 模型有可能克服串联不相关模型的局限性。本研究的目的是创建一个人类下肢的多尺度 FE 模型,该模型将优化、动态肌肉建模和结构 FE 分析结合在一个单一框架中,并应用该框架来评估两个活动中健康膝关节标本的力学性能。在 ABAQUS/Explicit 中开发了两个特定于受试者的下肢 FE 模型(模型 1、模型 2),包括肌肉的详细表示。使用逆动力学方法和静态优化,为两种活动计算了肌肉力、膝关节载荷和关节接触。在椅子上升的起始阶段(2174N,1962N)和早期站立阶段(510N,525N),股四头肌力达到峰值,而在步态中,腘绳肌在中足阶段(851N,868N)达到峰值。关节力与可获得的遥测患者数据相似。本研究证明了在 FE 框架中进行详细的准静态、肌肉驱动模拟的可行性。