Blanco R Ernesto, Gambini Rodolfo
Instituto de Física, Facultad de Ingeniería, Julio Herrera y Reissig 565, 11300 Montevideo, Uruguay.
J Theor Biol. 2006 Jul 7;241(1):49-61. doi: 10.1016/j.jtbi.2005.11.003. Epub 2005 Dec 13.
Here we propose a model of energetic costs and the muscle-tendon unit function on running mammals. The main goal is to set a simple theoretical framework which gives an understanding of the biomechanical principles behind the size, speed and anatomical variations of the energetic costs of running mammals. The model is a point-like mass withstood by a two-segment leg with an extensor muscle serially attached to a tendon. We considered withstanding body weight during the stance phase as the main role of the muscle-tendon unit during fast locomotion. The ground reaction force dependence on speed and the time of stance phase as well as other biomechanical characteristics were taken from previous empirical studies of running. At the same time, the morphological variations with body mass were taken from empirically well-established allometric equations for mammals. The metabolic cost was estimated from an empirical equation relating metabolic power with muscular force and speed in shortening and stretching. Our model predicts the pattern of mass specific metabolic rate variations with both speed and body mass. It also gives an explanation of the experimentally reported linear inverse relationship between the rate of energy used for running and the time of application of force by the foot to the ground during each stride. It also suggests an explanation of the unusual energy saving adaptations of large macropodids. It provides some predictions on the relationship, between energy costs and muscle-tendon unit characteristics, testable on further experiments.
在此,我们提出了一个关于奔跑哺乳动物的能量消耗及肌肉 - 肌腱单元功能的模型。主要目标是建立一个简单的理论框架,以理解奔跑哺乳动物能量消耗在大小、速度和解剖结构变化背后的生物力学原理。该模型是一个点状质量块,由一条双节段腿支撑,腿上有一块伸肌串联附着在肌腱上。我们认为在快速运动过程中,肌肉 - 肌腱单元在站立阶段承受体重是其主要作用。地面反作用力对速度和站立阶段时间的依赖性以及其他生物力学特征取自先前关于奔跑的实证研究。同时,体重的形态变化取自针对哺乳动物已通过实证确立的异速生长方程。代谢成本是根据一个将代谢功率与肌肉力以及缩短和伸展时的速度相关联的实证方程估算得出的。我们的模型预测了质量比代谢率随速度和体重变化的模式。它还解释了实验报告中关于奔跑所消耗能量的速率与每一步中脚对地面施加力的时间之间的线性反比关系。它还对大型袋鼠类动物不同寻常的节能适应性提出了一种解释。它提供了一些关于能量成本与肌肉 - 肌腱单元特征之间关系的预测,可在进一步实验中进行检验。