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Running Springs: Speed and Animal Size

Journal of Experimental Biology · 1993 · Vol. 185(1) · pp. 71–86
Claire T. FarleyJ. W. GlasheenThomas A. McMahon

Abstract

Trotting and hopping animals use muscles, tendons and ligaments to store and return elastic energy as they bounce along the ground. We examine how the musculoskeletal spring system operates at different speeds and in animals of different sizes. We model trotting and hopping as a simple spring-mass system which consists of a leg spring and a mass. We find that the stiffness of the leg spring (k(leg)) is nearly independent of speed in dogs, goats, horses and red kangaroos. As these animals trot or hop faster, the leg spring sweeps a greater angle during the stance phase, and the vertical excursion of the center of mass during the ground contact phase decreases. The combination of these changes to the spring system causes animals to bounce off the ground more quickly at higher speeds. Analysis of a wide size range of animals (0.1-140 kg) at equivalent speeds reveals that larger animals have stiffer leg springs (k(leg) [symbol: see text] M0.67, where M is body mass), but that the angle swept by the leg spring is nearly independent of body mass. As a result, the resonant period of vertical vibration of the spring-mass system is longer in larger animals. The length of time that the feet are in contact with the ground increases with body mass in nearly the same way as the resonant period of vertical vibration.

Robotic Locomotion and ControlSoil Mechanics and Vehicle DynamicsVeterinary Orthopedics and NeurologySpring (device)Center of mass (relativistic)StiffnessExcursionVibrationSpring systemGround reaction forcePhysicsMechanicsStructural engineering

MeSH terms

AnimalsBiomechanical PhenomenaBody ConstitutionBone and BonesDipodomysDogsGoatsHorsesMacropodidaeMusclesRunningRats
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References
Mechanical work in terrestrial locomotion: two basic mechanisms for minimizing energy expenditure
American Journal of Physiology-Regulatory, Integrative and Comparative Physiology · 1977 · 1,425 citations
The spring-mass model for running and hopping
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Journal of Biomechanics · 1990 · 1,099 citations
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