Mechanism of leg stiffness adjustment for hopping on surfaces of different stiffnesses

被引:344
作者
Farley, CT
Houdijk, HHP
Van Strien, C
Louie, M
机构
[1] Univ Calif Berkeley, Dept Integrat Biol, Locomot Lab, Berkeley, CA 94720 USA
[2] Free Univ Amsterdam, Dept Human Movement Sci, NL-1081 BT Amsterdam, Netherlands
关键词
biomechanics; motor control; running; locomotion;
D O I
10.1152/jappl.1998.85.3.1044
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
When humans hop in place or run forward, leg stiffness is increased to offset reductions in surface stiffness, allowing the global kinematics and mechanics to remain the same on all surfaces. The purpose of the present study was to determine the mechanism for adjusting leg stiffness. Seven subjects hopped in place on surfaces of different stiffnesses (23-35,000 kN/m) while force platform, kinematic, and electromyographic data were collected. Leg stiffness approximately doubled between the most stiff surface and the least stiff surface. Over the same range of surfaces, ankle torsional stiffness increased 1.75-fold, and the knee became more extended at the time of touchdown (2.81 vs. 2.65 rad). We used a computer simulation to examine the sensitivity of leg stiffness to the observed changes in ankle stiffness and touchdown knee angle. Our model consisted of four segments (foot, shank, thigh, head-arms-trunk) interconnected by three torsional springs (ankle, knee, hip). In the model, an increase in ankle stiffness 1.75-fold caused leg stiffness to increase 1.7-fold. A change in touchdown knee angle as observed in the subjects caused leg stiffness to increase 1.3-fold. Thus both joint stiffness and limb geometry adjustments are important in adjusting leg stiffness to allow similar hopping on different surfaces.
引用
收藏
页码:1044 / 1055
页数:12
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