Contact Tooling Manipulation Control for Robotic Repair Platform

Fuente: arXiv
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Auteurs principaux: Lee, Joong-Ku, Park, Young Soo
Format: Preprint
Publié: 2024
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author Lee, Joong-Ku
Park, Young Soo
author_facet Lee, Joong-Ku
Park, Young Soo
contents This paper delves into various robotic manipulation control methods designed for dynamic contact tooling operations on a robotic repair platform. The explored control strategies include hybrid position-force control, admittance control, bilateral telerobotic control, virtual fixture, and shared control. Each approach is elucidated and assessed in terms of its applicability and effectiveness for handling contact tooling tasks in real-world repair scenarios. The hybrid position-force controller is highlighted for its proficiency in executing precise force-required tasks, but it demands contingent on an accurate model of the environment and structured, static environment. In contrast, for unstructured environments, bilateral teleoperation control is investigated, revealing that the compliance with the remote robot controller is crucial for stable contact, albeit at the expense of reduced motion tracking performance. Moreover, advanced controllers for tooling manipulation tasks, such as virtual fixture and shared control approaches, are investigated for their potential applications.
format Preprint
id arxiv_https___arxiv_org_abs_2411_13996
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Contact Tooling Manipulation Control for Robotic Repair Platform
Lee, Joong-Ku
Park, Young Soo
Robotics
This paper delves into various robotic manipulation control methods designed for dynamic contact tooling operations on a robotic repair platform. The explored control strategies include hybrid position-force control, admittance control, bilateral telerobotic control, virtual fixture, and shared control. Each approach is elucidated and assessed in terms of its applicability and effectiveness for handling contact tooling tasks in real-world repair scenarios. The hybrid position-force controller is highlighted for its proficiency in executing precise force-required tasks, but it demands contingent on an accurate model of the environment and structured, static environment. In contrast, for unstructured environments, bilateral teleoperation control is investigated, revealing that the compliance with the remote robot controller is crucial for stable contact, albeit at the expense of reduced motion tracking performance. Moreover, advanced controllers for tooling manipulation tasks, such as virtual fixture and shared control approaches, are investigated for their potential applications.
title Contact Tooling Manipulation Control for Robotic Repair Platform
topic Robotics
url https://arxiv.org/abs/2411.13996