Design Optimization of Three-Dimensional Wire Arrangement Considering Wire Crossings for Tendon-driven Robots

Fuente: arXiv
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Main Authors: Kawaharazuka, Kento, Inoue, Shintaro, Sahara, Yuta, Yoneda, Keita, Suzuki, Temma, Okada, Kei
Format: Preprint
Published: 2025
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author Kawaharazuka, Kento
Inoue, Shintaro
Sahara, Yuta
Yoneda, Keita
Suzuki, Temma
Okada, Kei
author_facet Kawaharazuka, Kento
Inoue, Shintaro
Sahara, Yuta
Yoneda, Keita
Suzuki, Temma
Okada, Kei
contents Tendon-driven mechanisms are useful from the perspectives of variable stiffness, redundant actuation, and lightweight design, and they are widely used, particularly in hands, wrists, and waists of robots. The design of these wire arrangements has traditionally been done empirically, but it becomes extremely challenging when dealing with complex structures. Various studies have attempted to optimize wire arrangement, but many of them have oversimplified the problem by imposing conditions such as restricting movements to a 2D plane, keeping the moment arm constant, or neglecting wire crossings. Therefore, this study proposes a three-dimensional wire arrangement optimization that takes wire crossings into account. We explore wire arrangements through a multi-objective black-box optimization method that ensures wires do not cross while providing sufficient joint torque along a defined target trajectory. For a 3D link structure, we optimize the wire arrangement under various conditions, demonstrate its effectiveness, and discuss the obtained design solutions.
format Preprint
id arxiv_https___arxiv_org_abs_2507_04235
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Design Optimization of Three-Dimensional Wire Arrangement Considering Wire Crossings for Tendon-driven Robots
Kawaharazuka, Kento
Inoue, Shintaro
Sahara, Yuta
Yoneda, Keita
Suzuki, Temma
Okada, Kei
Robotics
Artificial Intelligence
Tendon-driven mechanisms are useful from the perspectives of variable stiffness, redundant actuation, and lightweight design, and they are widely used, particularly in hands, wrists, and waists of robots. The design of these wire arrangements has traditionally been done empirically, but it becomes extremely challenging when dealing with complex structures. Various studies have attempted to optimize wire arrangement, but many of them have oversimplified the problem by imposing conditions such as restricting movements to a 2D plane, keeping the moment arm constant, or neglecting wire crossings. Therefore, this study proposes a three-dimensional wire arrangement optimization that takes wire crossings into account. We explore wire arrangements through a multi-objective black-box optimization method that ensures wires do not cross while providing sufficient joint torque along a defined target trajectory. For a 3D link structure, we optimize the wire arrangement under various conditions, demonstrate its effectiveness, and discuss the obtained design solutions.
title Design Optimization of Three-Dimensional Wire Arrangement Considering Wire Crossings for Tendon-driven Robots
topic Robotics
Artificial Intelligence
url https://arxiv.org/abs/2507.04235