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Bibliographic Details
Main Authors: Flight, Joshua, Gosselin, Clément
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2603.11431
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author Flight, Joshua
Gosselin, Clément
author_facet Flight, Joshua
Gosselin, Clément
contents This paper presents a generalized theory which describes how applied loads are distributed within rigid bodies handled by redundantly-actuated robotic systems composed of multiple independent closed-loop kinematic chains. The theory fully characterizes the feasible set of manipulating wrench distributions for a given resultant wrench applied to the rigid body and has important implications for the force-control of multifingered grippers, legged robots, cooperating robots, and other overconstrained mechanisms. We also derive explicit solutions to the wrench synthesis and wrench analysis problems. These solutions are computationally efficient and scale linearly with the number of applied wrenches, requiring neither numerical methods nor the inversion of large matrices. Finally, we identify significant shortcomings in current state-of-the-art approaches and propose corrections. These are supported by illustrative examples that demonstrate the advantages of the improved methods.
format Preprint
id arxiv_https___arxiv_org_abs_2603_11431
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A Generalized Theory of Load Distribution in Redundantly-actuated Robotic Systems
Flight, Joshua
Gosselin, Clément
Robotics
This paper presents a generalized theory which describes how applied loads are distributed within rigid bodies handled by redundantly-actuated robotic systems composed of multiple independent closed-loop kinematic chains. The theory fully characterizes the feasible set of manipulating wrench distributions for a given resultant wrench applied to the rigid body and has important implications for the force-control of multifingered grippers, legged robots, cooperating robots, and other overconstrained mechanisms. We also derive explicit solutions to the wrench synthesis and wrench analysis problems. These solutions are computationally efficient and scale linearly with the number of applied wrenches, requiring neither numerical methods nor the inversion of large matrices. Finally, we identify significant shortcomings in current state-of-the-art approaches and propose corrections. These are supported by illustrative examples that demonstrate the advantages of the improved methods.
title A Generalized Theory of Load Distribution in Redundantly-actuated Robotic Systems
topic Robotics
url https://arxiv.org/abs/2603.11431