Department of Mechanical Engineering, Lafayette College , Easton, PA, USA.
Department of Mechanical Engineering, University of Michigan , Ann Arbor, MI, USA.
J Sports Sci Med. 2014 Dec 1;13(4):859-73. eCollection 2014 Dec.
This study details an optimization of the golf swing, where the hand path and club angular trajectories are manipulated. The optimization goal was to maximize club head velocity at impact within the interaction kinetic limitations (force, torque, work, and power) of the golfer as determined through the analysis of a typical swing using a two-dimensional dynamic model. The study was applied to four subjects with diverse swing capabilities and styles. It was determined that it is possible for all subjects to increase their club head velocity at impact within their respective kinetic limitations through combined modifications to their respective hand path and club angular trajectories. The manner of the modifications, the degree of velocity improvement, the amount of kinetic reduction, and the associated kinetic limitation quantities were subject dependent. By artificially minimizing selected kinetic inputs within the optimization algorithm, it was possible to identify swing trajectory characteristics that indicated relative kinetic weaknesses of a subject. Practical implications are offered based upon the findings of the study. Key PointsThe hand path trajectory is an important characteristic of the golf swing and greatly affects club head velocity and golfer/club energy transfer.It is possible to increase the energy transfer from the golfer to the club by modifying the hand path and swing trajectories without increasing the kinetic output demands on the golfer.It is possible to identify relative kinetic output strengths and weakness of a golfer through assessment of the hand path and swing trajectories.Increasing any one of the kinetic outputs of the golfer can potentially increase the club head velocity at impact.The hand path trajectory has important influences over the club swing trajectory.
本研究详细介绍了高尔夫挥杆的优化,其中包括手路径和杆角轨迹的调整。优化目标是在高尔夫球手的相互作用动力学限制(力、扭矩、功和功率)内最大限度地提高击球时的杆头速度,这是通过使用二维动力学模型分析典型挥杆来确定的。该研究应用于具有不同挥杆能力和风格的四位受试者。结果表明,所有受试者都可以通过对手路径和杆角轨迹的组合修改,在各自的动力学限制内提高击球时的杆头速度。修改的方式、速度提高的程度、动力学减少的量以及相关的动力学限制量都取决于受试者。通过在优化算法中人为最小化选定的动力学输入,可以识别出表示受试者相对动力学弱点的挥杆轨迹特征。根据研究结果提供了实际应用的要点。要点手路径轨迹是高尔夫挥杆的一个重要特征,对手头速度和球手/杆能量传递有很大影响。通过修改手路径和挥杆轨迹,可以在不增加球手动力学输出要求的情况下增加球手向杆的能量传递。通过评估手路径和挥杆轨迹,可以识别球手相对的动力学输出强弱。增加球手的任何一个动力学输出都有可能提高击球时的杆头速度。手路径轨迹对杆的摆动轨迹有重要影响。