Saved in:
Bibliographic Details
Main Authors: Tsai, Lucien, Navarro, Paco, Wu, Siqi, Levinson, Talyor, Mendoza, Elizabeth, Schwaner, M. Janneke, Daley, Monica A., Azizi, Emanuel, Ilton, Mark
Format: Preprint
Published: 2023
Subjects:
Online Access:https://arxiv.org/abs/2308.14955
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909129168125952
author Tsai, Lucien
Navarro, Paco
Wu, Siqi
Levinson, Talyor
Mendoza, Elizabeth
Schwaner, M. Janneke
Daley, Monica A.
Azizi, Emanuel
Ilton, Mark
author_facet Tsai, Lucien
Navarro, Paco
Wu, Siqi
Levinson, Talyor
Mendoza, Elizabeth
Schwaner, M. Janneke
Daley, Monica A.
Azizi, Emanuel
Ilton, Mark
contents Biological springs can be used in nature for energy conservation and ultra-fast motion. The loading and unloading rates of elastic materials can play an important role in determining how the properties of these springs affect movements. We investigate the mechanical energy efficiency of biological springs (American bullfrog plantaris tendons and guinea fowl lateral gastrocnemius tendons) and synthetic elastomers. We measure these materials under symmetric rates (equal loading and unloading durations) and asymmetric rates (unequal loading and unloading durations) using novel dynamic mechanical analysis measurements. We find that mechanical efficiency is highest at symmetric rates and significantly decreases with a larger degree of asymmetry. A generalized 1D Maxwell model with no fitting parameters captures the experimental results based on the independently-characterized linear viscoelastic properties of the materials. The model further shows that a broader viscoelastic relaxation spectrum enhances the effect of rate-asymmetry on efficiency. Overall, our study provides valuable insights into the interplay between material properties and unloading dynamics in both biological and synthetic elastic systems.
format Preprint
id arxiv_https___arxiv_org_abs_2308_14955
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Viscoelastic materials are most energy efficient when loaded and unloaded at equal rates
Tsai, Lucien
Navarro, Paco
Wu, Siqi
Levinson, Talyor
Mendoza, Elizabeth
Schwaner, M. Janneke
Daley, Monica A.
Azizi, Emanuel
Ilton, Mark
Soft Condensed Matter
Biological springs can be used in nature for energy conservation and ultra-fast motion. The loading and unloading rates of elastic materials can play an important role in determining how the properties of these springs affect movements. We investigate the mechanical energy efficiency of biological springs (American bullfrog plantaris tendons and guinea fowl lateral gastrocnemius tendons) and synthetic elastomers. We measure these materials under symmetric rates (equal loading and unloading durations) and asymmetric rates (unequal loading and unloading durations) using novel dynamic mechanical analysis measurements. We find that mechanical efficiency is highest at symmetric rates and significantly decreases with a larger degree of asymmetry. A generalized 1D Maxwell model with no fitting parameters captures the experimental results based on the independently-characterized linear viscoelastic properties of the materials. The model further shows that a broader viscoelastic relaxation spectrum enhances the effect of rate-asymmetry on efficiency. Overall, our study provides valuable insights into the interplay between material properties and unloading dynamics in both biological and synthetic elastic systems.
title Viscoelastic materials are most energy efficient when loaded and unloaded at equal rates
topic Soft Condensed Matter
url https://arxiv.org/abs/2308.14955