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Forward dynamics simulation using a natural knee with menisci in the multibody framework

机译:在多体框架中使用具有半月形的自然膝盖进行前向动力学模拟

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Information on knee loading and the relationship between muscle force and tissue response would benefit orthopaedic medicine, the development of engineered tissues, and our understanding of degenerative joint disease. As a step toward developing subject specific musculoskeletal simulations that predict loading on knee structures, this study combines a cadaver-based validated natural multibody knee model with a muscle driven forward dynamics simulation from a subject of similar height and weight for prediction of joint contact mechanics. Geometries for the multibody model were obtained from magnetic resonance images of a cadaver knee. The ligaments were represented with non-linear spring-damper elements with insertions and zero-load lengths derived from experimental measurements. The menisci were represented as discrete elements connected by 6×6 stiffness matrices and to allow prediction of contact pressure, the medial tibia plateau cartilage was divided into discrete elements. The force-displacement relationships of the knee model were validated by placing it in a model of a dynamic knee simulator and comparing predicted kinematics to experimental kinematics of the identically loaded cadaver knee. Motion, ground reaction forces, and surface electromyography were measured during a dual-limb squat on a female subject with similar height and weight as that of the cadaver donor. The gait data were used in a forward dynamics simulation of the dual-limb squat that included the cadaver knee model. The resulting tibio-femoral contact forces and pressures were compared for versions of the model with and without representation of the menisci. Inclusion of the menisci decreased the peak contact pressure on the medial tibia plateau by 20% and the cartilage-to-cartilage contact force on the lateral side was reduced by 40% through the squat cycle.
机译:有关膝关节负重以及肌肉力量与组织反应之间关系的信息将有益于骨科医学,工程组织的发展以及我们对退行性关节疾病的理解。作为开发特定对象的预测骨骼结构负荷的肌肉骨骼仿真的一步,本研究将基于尸体的经过验证的自然多体膝盖模型与来自具有类似身高和体重的对象的肌肉驱动的前向动力学仿真相结合,以预测关节接触力学。多体模型的几何结构是从尸体膝盖的磁共振图像中获得的。韧带用非线性弹簧阻尼器元件表示,该元件具有从实验测量中得出的插入量和零载荷长度。半月板表示为由6×6刚度矩阵连接的离散元素,为了预测接触压力,胫骨平台软骨内侧被分为离散元素。膝盖模型的力-位移关系通过将其放置在动态膝盖模拟器的模型中,并将预测的运动学与相同负载的尸体膝盖的实验运动学进行比较来验证。在双下肢深蹲期间,对身高和体重与尸体供体相似的女性受试者进行运动,地面反作用力和表面肌电图测量。步态数据用于包括尸体膝盖模型在内的双肢深蹲的前向动力学模拟中。比较了有和没有半月板表示的模型版本的胫股接触力和压力。通过深蹲,半月板的夹入使胫骨内侧平台上的峰值接触压力降低了20%,外侧的软骨间接触力降低了40%。

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