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Discrete Element Analysis for Characterizing the Patellofemoral Pressure Distribution: Model Evaluation

机译:the骨股骨压力分布特征的离散元分析:模型评估

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摘要

The current study was performed to evaluate the accuracy of computational assessment of the influence of the orientation of the patellar tendon on the patellofemoral pressure distribution. Computational models were created to represent eight knees previously tested at 40 deg, 60 deg, and 80 deg of flexion to evaluate the influence of hamstrings loading on the patellofemoral pressure distribution. Hamstrings loading increased the lateral and posterior orientation of the patellar tendon, with the change for each test determined from experimentally measured variations in tibiofemoral alignment. The patellar tendon and the cartilage on the femur and patella were represented with springs. After loading the quadriceps, the total potential energy was minimized to determine the force within the patellar tendon. The forces applied by the quadriceps and patellar tendon produced patellar translation and rotation. The deformation of each cartilage spring was determined from overlap of the cartilage surfaces on the femur and patella and related to force using linear elastic theory. The patella was iteratively adjusted until the extension moment, tilt moment, compression, and lateral force acting on the patella were in equilibrium. For the maximum pressure applied to lateral cartilage and the ratio of the lateral compression to the total compression, paired t-tests were performed at each flexion angle to determine if the output varied significantly (p < 0.05) between the two loading conditions. For both the computational and experimental data, loading the hamstrings significantly increased the lateral force ratio and the maximum lateral pressure at multiple flexion angles. For the computational data, loading the hamstrings increased the average lateral force ratio and maximum lateral pressure by approximately 0.04 and 0.3 MPa, respectively, compared to experimental increases of 0.06 and 0.4 MPa, respectively. The computational modeling technique accurately characterized variations in the patellofemoral pressure distribution caused by altering the orientation of the patellar tendon.
机译:当前的研究是为了评估of骨肌腱方向对em股压力分布影响的计算评估的准确性。创建计算模型以表示先前在40度,60度和80度屈曲下测试过的八个膝盖,以评估ham绳肌负荷对em股压力分布的影响。绳肌负荷增加了tell腱的横向和后向方向,每种测试的变化均由实验测量的胫股对齐方式的变化确定。 spring骨腱和股骨和and骨上的软骨以弹簧表示。加载股四头肌后,将总势能最小化,以确定determine肌腱内的力。股四头肌和pa腱施加的力产生pa平移和旋转。每个软骨弹簧的变形由股骨和骨上的软骨表面的重叠确定,并使用线性弹性理论与力有关。迭代地调整adjusted骨,直到作用在tilt骨上的伸展力矩,倾斜力矩,压缩力和侧向力达到平衡为止。对于施加在侧向软骨上的最大压力以及侧向压缩与总压缩的比率,在每个屈曲角度进行成对的t检验,以确定两种负荷条件之间的输出是否发生显着变化(p <0.05)。对于计算和实验数据,加载腿筋都会显着增加侧向力比和多个屈曲角度下的最大侧向压力。对于计算数据,加载绳肌使平均侧向力比和最大侧向压力分别增加了约0.04和0.3 MPa,而实验上分别增加了0.06和0.4 MPa。计算建模技术准确地描述了由于改变tell骨腱的方向而引起的tell股压力分布的变化。

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