Uploaded July 2024 | Updated September 2026, 1 week ago
Humans possess a remarkable ability to react to unpredictable perturbations through immediate mechanical responses, which harness the visco-elastic properties of muscles to maintain balance. Inspired by this behaviour, we propose a novel design of a robotic leg utilising fibre jammed structures as passive compliant mechanisms to achieve variable joint stiffness and damping. We developed multi-material fibre jammed tendons with tunable mechanical properties, which can be 3D printed in one-go without need for assembly. Through extensive numerical simulations and experimentation, we demonstrate the usefulness of these tendons for shock absorbance and maintaining joint stability. We investigate how they could be used effectively in a multi-joint robotic leg by evaluating the relative contribution of each tendon to the overall stiffness of the leg. Further, we showcase the potential of these jammed structures for legged locomotion, highlighting how morphological properties of the tendons can be used to enhance stability in robotic legs.
Full paper: arxiv.org/pdf/2308.01758
Humans possess a remarkable ability to react to unpredictable perturbations through immediate mechanical responses, which harness the visco-elastic properties of muscles to maintain balance. Inspired by this behaviour, we propose a novel design of a robotic leg utilising fibre jammed structures as passive compliant mechanisms to achieve variable joint stiffness and damping. We developed multi-material fibre jammed tendons with tunable mechanical properties, which can be 3D printed in one-go without need for assembly. Through extensive numerical simulations and experimentation, we demonstrate the usefulness of these tendons for shock absorbance and maintaining joint stability. We investigate how they could be used effectively in a multi-joint robotic leg by evaluating the relative contribution of each tendon to the overall stiffness of the leg. Further, we showcase the potential of these jammed structures for legged locomotion, highlighting how morphological properties of the tendons can be used to enhance stability in robotic legs.
Full paper: arxiv.org/pdf/2308.01758


![Zebedee Handheld 3D Mapping System
Handheld laser mapping system developed at CSIRO that is able to generate 3D maps in GPS denied areas (indoors, underground, etc). The system consists of a Hokuyo 2D lidar (30m maximum range), with a battery and a laptop in a backpack. Specialized software computes the 6DoF position and orientation of the sensor and generates a 3D point cloud model of the environment in real-time. In addition to indoor spaces, the system also functions outdoors, including in natural environments.
A new video featuring Zebedee: http://youtu.be/DUEAz_naHHg
Publications describing the Zebedee system:
[1] https://db.tt/lUIKVWXD or http://dx.doi.org/10.1109/TRO.2012.2200990
M. Bosse, R. Zlot, and P. Flick, Zebedee: Design of a Spring-Mounted 3-D Range Sensor with Application to Mobile Mapping, IEEE Transactions on Robotics, 28(5), October 2012.
[2] https://db.tt/V31Qepgj or http://dx.doi.org/10.1109/ICRA.2013.6630945
M. Bosse and R. Zlot, Place Recognition Using Keypoint Voting in Large 3D Lidar Datasets, IEEE International Conference on Robotics and Automation (ICRA), May 2013.
Further information can be found at http://wiki.csiro.au/display/ASL/Zebedee Zebedee Handheld 3D Mapping System](https://i.ytimg.com/vi/Uj9BKcnXOyo/mqdefault.jpg)







