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Effects of realistic sheep elbow kinematics in inverse dynamic simulation

机译:逼真的绵羊肘部运动学在逆动力学仿真中的作用

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摘要

Looking for new opportunities in mechanical design, we are interested in studying the kinematic behaviour of biological joints. The real kinematic behaviour of the elbow of quadruped animals (which is submitted to high mechanical stresses in comparison with bipeds) remains unexplored. The sheep elbow joint was chosen because of its similarity with a revolute joint. The main objective of this study is to estimate the effects of elbow simplifications on the prediction of joint reaction forces in inverse dynamic simulations. Rigid motions between humerus and radius-ulna were registered during full flexion-extension gestures on five cadaveric specimens. The experiments were initially conducted with fresh specimens with ligaments and repeated after removal of all soft tissue, including cartilage. A digital image correlation system was used for tracking optical markers fixed on the bones. The geometry of the specimens was digitized using a 3D optical scanner. Then, the instantaneous helical axis of the joint was computed for each acquisition time. Finally, an OpenSim musculoskeletal model of the sheep forelimb was used to quantify effects of elbow joint approximations on the prediction of joint reaction forces. The motion analysis showed that only the medial-lateral translation is sufficiently large regarding the measuring uncertainty of the experiments. This translation assimilates the sheep elbow to a screw joint instead of a revolute joint. In comparison with fresh specimens, the experiments conducted with dry bone specimens (bones without soft tissue) provided different kinematic behaviour. From the results of our inverse dynamic simulations, it was noticed that the inclusion of the medial-lateral translation to the model made up with the mean flexion axis does not affect the predicted joint reaction forces. A geometrical difference between the axis of the best fitting cylinder and the mean flexion axis (derived from the motion analysis) of fresh specimens was highlighted. This geometrical difference impacts slightly the prediction of joint reactions.
机译:在机械设计中寻找新的机会,我们对研究生物关节的运动学特性感兴趣。四足动物肘部的真实运动学行为(与两足动物相比承受较高的机械应力)尚待探索。选择羊肘关节是因为它与旋转关节相似。这项研究的主要目的是在逆动态模拟中估计简化肘部对关节反作用力预测的影响。在五个尸体标本的完全屈伸姿势中记录了肱骨和尺骨尺骨之间的刚性运动。实验最初是用新鲜的韧带标本进行的,并在去除所有软组织(包括软骨)后重复进行。数字图像关联系统用于跟踪固定在骨骼上的光学标记。使用3D光学扫描仪将样品的几何形状数字化。然后,针对每个采集时间计算关节的瞬时螺旋轴。最后,使用绵羊前肢的OpenSim肌肉骨骼模型来量化肘关节近似对关节反作用力预测的影响。运动分析表明,就实验的测量不确定性而言,只有内侧-外侧平移足够大。这种平移将羊肘同化为螺旋关节,而不是旋转关节。与新鲜标本相比,用干骨标本(无软组织的骨头)进行的实验提供了不同的运动学行为。从我们的逆向动力学仿真结果中,我们注意到,将内侧-外侧平移包含在由平均屈伸轴组成的模型中不会影响预计的关节反作用力。突出显示了最佳拟合圆柱体的轴与新鲜标本的平均弯曲轴(从运动分析得出)之间的几何差异。这种几何差异会稍微影响关节反应的预测。

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