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Muscle mechanical work and elastic energy utilization during walking and running near the preferred gait transition speed.

机译:在步行和跑步过程中接近理想步态过渡速度时的肌肉机械功和弹性能量利用。

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摘要

Mechanical and metabolic energy conservation is considered to be a defining characteristic in many common motor tasks. During human gait, the storage and return of elastic energy in compliant structures is an important energy saving mechanism that may reduce the necessary muscle fiber work and be an important determinant of the preferred gait mode (i.e., walk or run) at a given speed. In the present study, the mechanical work done by individual muscle fibers and series-elastic elements (SEE) was quantified using a musculoskeletal model and forward dynamical simulations that emulated a group of young healthy adults walking and running above and below the preferred walk-run transition speed (PTS), and potential advantages associated with the muscle fiber-SEE interactions during these gait modes at each speed were assessed. The simulations revealed that: (1) running below the PTS required more muscle fiber work than walking, and inversely, walking above the PTS required more muscle fiber work than running, and (2) SEE utilization in running was greater above than below the PTS. These results support previous suggestions that muscle mechanical energy expenditure is an important determinant for the preferred gait mode at a given speed.
机译:在许多常见的运动任务中,机械和代谢能量守恒被认为是定义特征。在人类步态中,弹性能量在顺应性结构中的存储和返回是一种重要的节能机制,可以减少必要的肌纤维功,并且是在给定速度下首选步态模式(即步行或奔跑)的重要决定因素。在本研究中,使用肌肉骨骼模型和正向动力学模拟对单个肌肉纤维和系列弹性元素(SEE)所做的机械功进行了量化,该模拟模拟了一群年轻的健康成年人在首选的跑步时上下行走和跑步。评估了这些步态模式在每种速度下的过渡速度(PTS)和与肌纤维-SEE相互作用相关的潜在优势。仿真显示:(1)在PTS下方跑步比步行需要更多的肌纤维工作,反之,在PTS上方跑步比跑步需要更多的肌纤维工作;(2)高于SPT下方跑步时的SEE利用率更高。 。这些结果支持了先前的建议,即在给定速度下,肌肉机械能消耗是首选步态模式的重要决定因素。

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