van Ingen Schenau G J, Bobbert M F, Huijing P A, Woittiez R D
Med Sci Sports Exerc. 1985 Aug;17(4):422-6. doi: 10.1249/00005768-198508000-00003.
Torques, angular velocities, and power of the ankle joint during plantar flexion were measured in jumping experiments in order to achieve insight into shape and magnitude of the instantaneous torque-angular velocity relation in a complex movement. Twelve trained subjects performed maximal vertical jumps from a semi-squatting position with 100 degrees of flexion in the knee joint. Ground reaction force measurements and film analyses were used to calculate instantaneous torques, angular velocities, and power outputs during plantar flexion. The shape of the instantaneous torque-angular velocity was different from the well-known hyperbolic force-velocity relation for isolated muscles. Maximal power output (2499 +/- 751 [SD] W) occurred at 60% of the mean maximal torque (301 +/- 62 N X m) and 80% of the mean maximal angular velocity (970 degrees/s). The maximal power output was six times larger than the power output reported in the literature for maximal isokinetic (monoarticular) plantar flexions. Influences like storage of energy in the series elastic component of Hill's muscle model and the role of polyarticular muscles in transporting energy from knee to ankle are discussed. It is concluded that many more selective studies will be necessary before it is possible to relate intrinsic muscle properties to the performance of muscles in poly-articular complex movements.
为了深入了解复杂运动中瞬时扭矩 - 角速度关系的形状和大小,在跳跃实验中测量了跖屈过程中踝关节的扭矩、角速度和功率。12名受过训练的受试者从膝关节屈曲100度的半蹲姿势进行最大垂直跳跃。利用地面反作用力测量和影片分析来计算跖屈过程中的瞬时扭矩、角速度和功率输出。瞬时扭矩 - 角速度的形状与孤立肌肉中众所周知的双曲线型力 - 速度关系不同。最大功率输出(2499±751[标准差]W)出现在平均最大扭矩(301±62N·m)的60%和平均最大角速度(970度/秒)的80%时。最大功率输出比文献中报道的最大等速(单关节)跖屈的功率输出大六倍。讨论了诸如能量在希尔肌肉模型的串联弹性成分中的储存以及多关节肌肉在将能量从膝关节传递到踝关节中的作用等影响因素。得出的结论是,在将内在肌肉特性与多关节复杂运动中肌肉的表现联系起来之前,还需要进行更多的选择性研究。