Breniere Y, Ribreau C
Laboratoire de Physiologie du Mouvement, Université Paris-sud, Orsay, France.
Biol Cybern. 1998 Oct;79(4):337-45. doi: 10.1007/s004220050483.
In order to analyze the influence of gravity and body characteristics on the control of center of mass (CM) oscillations in stepping in place, equations of motion in oscillating systems were developed using a double-inverted pendulum model which accounts for both the head-arms-trunk (HAT) segment and the two-legged system. The principal goal of this work is to propose an equivalent model which makes use of the usual anthropometric data for the human body, in order to study the ability of postural control to adapt to the step frequency in this particular paradigm of human gait. This model allows the computation of CM-to-CP amplitude ratios, when the center of foot pressure (CP) oscillates, as a parametric function of the stepping in place frequency, whose parameters are gravity and major body characteristics. Motion analysis from a force plate was used to test the model by comparing experimental and simulated values of variations of the CM-to-CP amplitude ratio in the frontal plane versus the frequency. With data from the literature, the model is used to calculate the intersegmental torque which stabilizes the HAT when the Leg segment is subjected to a harmonic torque with an imposed frequency.
为了分析重力和身体特征对原地踏步时质心(CM)振荡控制的影响,利用双倒立摆模型建立了振荡系统的运动方程,该模型同时考虑了头-臂-躯干(HAT)部分和双腿系统。这项工作的主要目标是提出一个等效模型,该模型利用人体常见的人体测量数据,以便研究在这种特定的人类步态范式中姿势控制适应步频的能力。当足底压力中心(CP)振荡时,该模型允许计算CM与CP的振幅比,作为原地踏步频率的参数函数,其参数为重力和主要身体特征。通过比较额平面上CM与CP振幅比变化的实验值和模拟值与频率,利用测力台进行运动分析来测试该模型。根据文献数据,该模型用于计算当腿部受到具有给定频率的谐波扭矩时稳定HAT的节段间扭矩。