Loudi Vocational and Technical College, Loudi, China; Faculty of Sports Sciences and Coaching, Sultan Idris Education University, Tanjong Malim, Malaysia; Faculty of Sports Science, Ningbo University, Ningbo, China.
Faculty of Sports Science, Ningbo University, Ningbo, China; Auckland Bioengineering Institute, University of Auckland, Auckland, New Zealand.
Comput Biol Med. 2021 May;132:104302. doi: 10.1016/j.compbiomed.2021.104302. Epub 2021 Mar 2.
Anterior knee pain is a commonly documented musculoskeletal disorder among badminton players. However, current biomechanical studies of badminton lunges mainly report kinetic profiles in the lower extremity with few investigations of in-vivo loadings. The objective of this study was to evaluate tissue loadings in the patellofemoral joint via musculoskeletal modelling and Finite Element simulation. The collected marker trajectories, ground reaction force and muscle activation data were used for musculoskeletal modelling to compute knee joint angles and quadricep muscle forces. These parameters were then set as boundary conditions and loads for a quasistatic simulation using the Abaqus Explicit solver. Simulations revealed that the left-forward (LF) and backward lunges showed greater contact pressure (14.98-29.61%) and von Mises stress (14.17-32.02%) than the right-forward and backward lunges; while, loadings in the left-backward lunge were greater than the left-forward lunge by 13-14%. Specifically, the stress in the chondral layer was greater than the contact interface, particularly in the patellar cartilage. These findings suggest that right-side dominant badminton players load higher in the right patellofemoral joint during left-side (backhand) lunges. Knowledge of these tissue loadings may provide implications for the training of badminton footwork, such as musculature development, to reduce cartilage loading accumulation, and prevent anterior knee pain.
膝关节前痛是羽毛球运动员常见的骨骼肌肉疾病。然而,目前有关羽毛球弓步的生物力学研究主要报告了下肢的动力学特征,很少有研究涉及体内负荷。本研究的目的是通过肌肉骨骼建模和有限元模拟来评估髌股关节的组织负荷。收集的标记轨迹、地面反作用力和肌肉激活数据用于肌肉骨骼建模,以计算膝关节角度和股四头肌力。然后,将这些参数设置为使用 Abaqus 显式求解器进行准静态模拟的边界条件和载荷。模拟结果表明,与右前向和后向弓步相比,左前向和后向弓步的接触压力(14.98-29.61%)和 von Mises 应力(14.17-32.02%)更大;而左后向弓步的负荷比左前向弓步大 13-14%。具体来说,软骨层的应力大于接触界面的应力,尤其是髌骨软骨。这些发现表明,右侧主导的羽毛球运动员在进行左侧(反手)弓步时,右侧髌股关节的负荷更高。了解这些组织负荷可能对羽毛球步法训练具有重要意义,例如肌肉发育,可以减少软骨负荷积累,预防膝关节前痛。