Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology, Daejeon 305-701, Republic of Korea.
J Biomech. 2012 Jan 10;45(2):326-33. doi: 10.1016/j.jbiomech.2011.10.009. Epub 2011 Oct 27.
Humans use equal push-off and heel strike work during the double support phase to minimize the mechanical work done on the center of mass (CoM) during the gait. Recently, a step-to-step transition was reported to occur over a period of time greater than that of the double support phase, which brings into question whether the energetic optimality is sensitive to the definition of the step-to-step transition. To answer this question, the ground reaction forces (GRFs) of seven normal human subjects walking at four different speeds (1.1-2.4 m/s) were measured, and the push-off and heel strike work for three differently defined step-to-step transitions were computed based on the force, work, and velocity. To examine the optimality of the work and the impulse data, a hybrid theoretical-empirical analysis is presented using a dynamic walking model that allows finite time for step-to-step transitions and incorporates the effects of gravity within this period. The changes in the work and impulse were examined parametrically across a range of speeds. The results showed that the push-off work on the CoM was well balanced by the heel strike work for all three definitions of the step-to-step transition. The impulse data were well matched by the optimal impulse predictions (R(2)>0.7) that minimized the mechanical work done on the CoM during the gait. The results suggest that the balance of push-off and heel strike energy is a consistent property arising from the overall gait dynamics, which implies an inherited oscillatory behavior of the CoM, possibly by spring-like leg mechanics.
人类在双支撑阶段使用相等的蹬离和脚跟撞击力,以最小化质心(CoM)在步态过程中所做的机械功。最近,据报道,在双支撑阶段之外的一段时间内发生了一步一步的过渡,这使得能量最优性是否对一步一步过渡的定义敏感成为一个问题。为了回答这个问题,测量了七个正常人在四种不同速度(1.1-2.4 m/s)下行走时的地面反作用力(GRFs),并基于力、功和速度计算了三种不同定义的一步一步过渡的蹬离和脚跟撞击功。为了检查功和冲量数据的最优性,提出了一种混合理论-经验分析方法,该方法使用允许步长过渡有限时间的动态步行模型,并在此期间考虑重力的影响。在一系列速度下,对功和冲量的变化进行了参数检查。结果表明,对于三种一步一步过渡的定义,CoM 的蹬离功都与脚跟撞击功很好地平衡。冲量数据与最佳冲量预测(R(2)>0.7)非常匹配,这最大限度地减少了步态过程中 CoM 所做的机械功。结果表明,蹬离和脚跟撞击能量的平衡是整体步态动力学的一个一致特性,这意味着 CoM 具有固有的振荡行为,可能是通过类似弹簧的腿部力学产生的。