A recent study from Harvard John A. Paulson School of Engineering and Applied Sciences uses wearable sensor technology and machine learning to estimate ground-reaction forces in runners. This data can provide insights into performance and injury, enabling the development of devices that deliver real-time feedback to users.
Northern Arizona University researchers have developed an open-source robotic exoskeleton framework, OpenExo, which provides comprehensive instructions for building single- or multi-joint exoskeletons. The system helps overcome challenges in developing biomechanically beneficial and technologically advanced exoskeletons.
A team of researchers has discovered a connection between resonance and nonlinearity in swimming performance, revealing potential new bio-inspired propulsion strategies. By understanding the passive dynamics at play when vehicles move through air or water, they aim to enhance performance while reducing energy consumption.
A study on a desert snake reveals that passive mechanics play a crucial role in its movement, allowing it to navigate complex terrain without altering its self-deformation pattern. This finding has implications for the design of limbless robots, which could improve their mobility in challenging environments.