Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture

This paper presents an adaptive caging configuration design algorithm of the hyper-redundant manipulator for dysfunctional satellite pre-capture. Taking advantages of the extreme flexibility and hyper-redundancy, the hyper-redundant manipulator wraps its whole body around the dysfunctional satellite...

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Main Authors: Wenya Wan, Chong Sun, Jianping Yuan
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8970610/
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spelling doaj-847f94e4abec4409bcc7698daa052a2f2021-03-30T01:10:02ZengIEEEIEEE Access2169-35362020-01-018225462255910.1109/ACCESS.2020.29694978970610Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-CaptureWenya Wan0https://orcid.org/0000-0002-0012-4586Chong Sun1https://orcid.org/0000-0001-9807-2077Jianping Yuan2https://orcid.org/0000-0001-9561-8310National Key Laboratory of Aerospace Flight Dynamics, Northwestern Polytechnical University, Xi’an, ChinaNational Key Laboratory of Aerospace Flight Dynamics, Northwestern Polytechnical University, Xi’an, ChinaNational Key Laboratory of Aerospace Flight Dynamics, Northwestern Polytechnical University, Xi’an, ChinaThis paper presents an adaptive caging configuration design algorithm of the hyper-redundant manipulator for dysfunctional satellite pre-capture. Taking advantages of the extreme flexibility and hyper-redundancy, the hyper-redundant manipulator wraps its whole body around the dysfunctional satellite to restrain its motion without requiring grappling points and accurate information. However, the hyper-redundancy also makes the caging configuration design more complicated and challenging. In this paper, the dynamic sequential caging following algorithm based on rapidly-exploring random tree algorithm is proposed to search the caging configuration in real-time. First, according to the discretized caging trace, which is twining around the grasped object and selected based on the caging conditions, the joints of the hyper-redundant manipulator are divided into several groups in advance. Then, the joint angles are searched group by group to realize the match of the discretized caging trace by the hyper-redundant manipulator. As a result, the configuration between the grasped object and the hyper-redundant manipulator satisfies the caging conditions. The main advantages of the proposed caging motion planning algorithm lie in the avoidance of the inversion and the efficiency of computation. Finally, the pre-capture of two dysfunctional satellites with different shapes using a twenty universal joint manipulator is implemented, and the simulation results verify the efficiency of the proposed method.https://ieeexplore.ieee.org/document/8970610/Caging configuration designhyper-redundant manipulatorcaging tracedynamic sequential caging following algorithmrapidly-exploring random tree
collection DOAJ
language English
format Article
sources DOAJ
author Wenya Wan
Chong Sun
Jianping Yuan
spellingShingle Wenya Wan
Chong Sun
Jianping Yuan
Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture
IEEE Access
Caging configuration design
hyper-redundant manipulator
caging trace
dynamic sequential caging following algorithm
rapidly-exploring random tree
author_facet Wenya Wan
Chong Sun
Jianping Yuan
author_sort Wenya Wan
title Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture
title_short Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture
title_full Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture
title_fullStr Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture
title_full_unstemmed Adaptive Caging Configuration Design Algorithm of Hyper-Redundant Manipulator for Dysfunctional Satellite Pre-Capture
title_sort adaptive caging configuration design algorithm of hyper-redundant manipulator for dysfunctional satellite pre-capture
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description This paper presents an adaptive caging configuration design algorithm of the hyper-redundant manipulator for dysfunctional satellite pre-capture. Taking advantages of the extreme flexibility and hyper-redundancy, the hyper-redundant manipulator wraps its whole body around the dysfunctional satellite to restrain its motion without requiring grappling points and accurate information. However, the hyper-redundancy also makes the caging configuration design more complicated and challenging. In this paper, the dynamic sequential caging following algorithm based on rapidly-exploring random tree algorithm is proposed to search the caging configuration in real-time. First, according to the discretized caging trace, which is twining around the grasped object and selected based on the caging conditions, the joints of the hyper-redundant manipulator are divided into several groups in advance. Then, the joint angles are searched group by group to realize the match of the discretized caging trace by the hyper-redundant manipulator. As a result, the configuration between the grasped object and the hyper-redundant manipulator satisfies the caging conditions. The main advantages of the proposed caging motion planning algorithm lie in the avoidance of the inversion and the efficiency of computation. Finally, the pre-capture of two dysfunctional satellites with different shapes using a twenty universal joint manipulator is implemented, and the simulation results verify the efficiency of the proposed method.
topic Caging configuration design
hyper-redundant manipulator
caging trace
dynamic sequential caging following algorithm
rapidly-exploring random tree
url https://ieeexplore.ieee.org/document/8970610/
work_keys_str_mv AT wenyawan adaptivecagingconfigurationdesignalgorithmofhyperredundantmanipulatorfordysfunctionalsatelliteprecapture
AT chongsun adaptivecagingconfigurationdesignalgorithmofhyperredundantmanipulatorfordysfunctionalsatelliteprecapture
AT jianpingyuan adaptivecagingconfigurationdesignalgorithmofhyperredundantmanipulatorfordysfunctionalsatelliteprecapture
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