bioRxiv · 10.1101/2020.01.20.909259
Ultrasound imaging links soleus muscle neuromechanics and energetics during human walking with elastic ankle exoskeletons
Abstract
Unpowered exoskeletons with springs in parallel to human plantar flexor muscle-tendons can reduce the metabolic cost of walking. We used ultrasound imaging to look under the skin and measure how exoskeleton stiffness alters soleus muscle contractile dynamics and shapes the users metabolic rate during walking. Eleven participants (4F, 7M; age: 27.7 {+/-} 3.3 years) walked on a treadmill at 1.25 m s-1 and 0% grade with elastic ankle exoskeletons (rotational stiffness: 0-250 Nm rad-1) in one training and two testing days. Metabolic savings were maximized (4.2%) at a stiffness of 50 Nm rad-1. As exoskeleton stiffness increased, the soleus muscle operated at longer lengths and improved economy (force/activation) during early stance, but this benefit was offset by faster shortening velocity and poorer economy in late stance. Changes in soleus activation rate correlated with changes in users metabolic rate (p = 0.038, R2 = 0.44), highlighting a crucial link between muscle neuromechanics and exoskeleton performance; perhaps informing future muscle-in-the loop exoskeleton controllers designed to steer contractile dynamics toward more economical force production.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Nuckols, R. W., Dick, T. J. M., Beck, O. N., Sawicki, G. S.. 2020-01-20. Ultrasound imaging links soleus muscle neuromechanics and energetics during human walking with elastic ankle exoskeletons. https://doi.org/10.1101/2020.01.20.909259
Cite the original work for its findings. Save a collection to share your selection of sources.