Whole-Body Control for Multi-Contact Balancing of Humanoid Robots : Design and Experiments / by Bernd Henze
By: Henze, Bernd, autor
Material type:
E-bookSeries: (Springer Tracts in Advanced Robotics, 1610-742X ; 143).Publisher: Cham : Springer International Publishing, 2022Edition: 1st edition 2022.Description: 1 recurso en línea (XVI, 199 páginas) : 72 ilustraciones, 67 ilustraciones a color.ISBN: 9783030872120.Subject: Robots -- Sistemas de control
| Item type | Current library | Collection | Call number | Status | Date due | Barcode | Item holds | |
|---|---|---|---|---|---|---|---|---|
LIBRO-E NO PRÉSTAMO
|
Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | TJ211.35 2022 EB (Browse shelf(Opens below)) | Acceso electrónico | eBook.09012617 |
Browsing Madrid Digital shelves, Shelving location: Acceso Electrónico (UEM) Close shelf browser (Hides shelf browser)
| TJ211.35 2020 EB New Trends in Robot Control | TJ211.35 2021 EB Robot Operating System (ROS) : The Complete Reference (Volume 6) | TJ211.35 2022 EB Distributed Coordination Theory for Robot Teams | TJ211.35 2022 EB Whole-Body Control for Multi-Contact Balancing of Humanoid Robots : Design and Experiments | TJ211.35 2022 EB Local Stability and Ultimate Boundedness in the Control of Robot Manipulators | TJ211.35 2023 EB Intelligent Robot : Implementation and Applications | TJ211.35 A383 2017 EB Advances in robot design and intelligent control : proceedings of the 25th Conference on Robotics in Alpe-Adria-Danube Region (RAAD16) |
Introduction -- Notation -- Modeling -- Cartesian Compliance -- Torque-Controlled Humanoid Robot TORO -- Whole-Body Control for Multi-Contact Balancing -- Combining Multi-Contact Balancing with Hierarchical Whole-Body Control -- Balance Control based on Reduced Dynamic Models -- Applications -- Discussion and Conclusion.
This book aims at providing algorithms for balance control of legged, torque-controlled humanoid robots. A humanoid robot normally uses the feet for locomotion. This paradigm is extended by addressing the challenge of multi-contact balancing, which allows a humanoid robot to exploit an arbitrary number of contacts for support. Using multiple contacts increases the size of the support polygon, which in turn leads to an increased robustness of the stance and to an increased kinematic workspace of the robot. Both are important features for facilitating a transition of humanoid robots from research laboratories to real-world applications, where they are confronted with multiple challenging scenarios, such as climbing stairs and ladders, traversing debris, handling heavy loads, or working in confined spaces. The distribution of forces and torques among the multiple contacts is a challenging aspect of the problem, which arises from the closed kinematic chain given by the robot and its environment.
There are no comments on this title.