ArticlePLoS computational biology2021
Elastic energy savings and active energy cost in a simple model of running.
Article in PLoS computational biology, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers, 1 of them a synthesis that pooled it.
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Who cites it
6 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Running economy and lower extremity stiffness in endurance runners: A systematic review and meta-analysis.Frontiers in physiology · 2022Pooled it
- Mind to Move: A Narrative Review of Individualized Running Biomechanics Beyond the Spring-Mass Model.Sports medicine (Auckland, N.Z.) · 2026Review
- Muscle or Fascial System Lesion (Part II): The Medial Gastrocnemius and the "Tennis Leg" Paradigm.Cureus · 2025Review
- Review
- Profile of 50 m Sprinting: The Influence of Carbon-Plated Spikes on Maximum-Velocity Performance.Sensors (Basel, Switzerland) · 2025Article
- How do differences in Achilles' tendon moment arm lengths affect muscle-tendon dynamics and energy cost during running?Frontiers in sports and active living · 2023Article
Corrections and comments
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Authors and funding
2 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
The energetic economy of running benefits from tendon and other tissues that store and return elastic energy, thus saving muscles from costly mechanical work. The classic "Spring-mass" computational model successfully explains the forces, displacements and mechanical power of running, as the outcome of dynamical interactions between the body center of mass and a purely elastic spring for the leg. However, the Spring-mass model does not include active muscles and cannot explain the metabolic energy cost of running, whether on level ground or on a slope. Here we add explicit actuation and dissipation to the Spring-mass model, and show how they explain substantial active (and thus costly) work during human running, and much of the associated energetic cost. Dissipation is modeled as modest energy losses (5% of total mechanical energy for running at 3 m s-1) from hysteresis and foot-ground collisions, that must be restored by active work each step. Even with substantial elastic energy return (59% of positive work, comparable to empirical observations), the active work could account for most of the metabolic cost of human running (about 68%, assuming human-like muscle efficiency). We also introduce a previously unappreciated energetic cost for rapid production of force, that helps explain the relatively smooth ground reaction forces of running, and why muscles might also actively perform negative work. With both work and rapid force costs, the model reproduces the energetics of human running at a range of speeds on level ground and on slopes. Although elastic return is key to energy savings, there are still losses that require restorative muscle work, which can cost substantial energy during running.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.