...
首页> 外文期刊>Journal of Biomechanics >Computational model of maximal-height single-joint jumping predicts bouncing as an optimal strategy
【24h】

Computational model of maximal-height single-joint jumping predicts bouncing as an optimal strategy

机译:最大高度单关节跳跃的计算模型预测弹跳是一种最佳策略

获取原文
获取原文并翻译 | 示例
           

摘要

Maximal-height single-joint jumping, in which only the ankle muscles are used for propulsion, is a useful paradigm for joint-specific investigation of the mechanisms underlying optimal performance. In this study, we used a combination of computational modeling and experiments to determine the optimal strategy for this task. We hypothesized that our computer simulation and subjects would use a countermovement in order to maximize jump height. Our model was actuated by only a lumped plantarflexor and a lumped dorsiflexor, and we simulated maximal-height jumping using parameter optimization to determine the control excitations driving these muscles. Experimental data were collected from eight subjects who wore braces to limit knee motion during jumps. The model did not jump as high as the subjects did, but its jump height (12.8. cm) was similar to that found for subjects, 16.3±4.6. cm. The model jumped highest when it "bounced" by executing several countermovements in succession. Four of the subjects jumped highest when they also bounced; these subjects were also the highest jumpers and they bounced at 2.53±0.47. Hz, a value similar to that employed by the computational model, 2.78. Hz. The other four subjects, who failed to jump highest when bouncing, bounced at only 1.46±0.45. Hz when they attempted to do so. Simulation results indicated that subjects who used a bouncing strategy to record their highest jump made use of mechanical resonance to facilitate elastic energy storage in the Achilles tendon. Simulation results also showed that multiple bounces allowed the model to reach an optimal state in which potential energy was maximized prior to the final pushoff.
机译:最大高度的单关节跳动(其中仅将脚踝肌肉用于推进)是针对特定关节研究最佳性能机制的有用范例。在这项研究中,我们结合使用了计算模型和实验来确定此任务的最佳策略。我们假设我们的计算机模拟和对象将使用反向运动来最大化跳跃高度。我们的模型仅由集总的plant屈肌和集总的背屈肌致动,我们使用参数优化来模拟最大身高跳跃,以确定驱动这些肌肉的控制激励。实验数据来自八名戴着牙套以限制跳跃过程中膝盖运动的受试者。该模型的跳动不如受试者高,但其跳高(12.8。cm)类似于受试者的跳高(16.3±4.6)。厘米。当模型通过连续执行几次反冲运动而“反弹”时,模型跳得最高。当他们弹跳时,有四个受试者跳得最高。这些受试者也是跳高最高的人,他们的弹跳为2.53±0.47。 Hz,类似于计算模型采用的值2.78。赫兹。弹跳时未能跳最高的其他四名受试者的弹跳仅为1.46±0.45。尝试时以Hz为单位。模拟结果表明,使用弹跳策略记录其最高跳动的受试者利用机械共振来促进跟腱中的弹性能量存储。仿真结果还显示,多次弹跳使模型达到了最佳状态,在该状态下,在最终下推之前势能已最大化。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号