Design, Control and Motion Planning for a Novel Modular Extendable Robotic Manipulator

Design, Control and Motion Planning for a Novel Modular Extendable Robotic Manipulator
Author: Hak Yi
Publisher:
Total Pages: 104
Release: 2013
Genre:
ISBN:

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This dissertation discusses an implementation of a design, control and motion planning for a novel extendable modular redundant robotic manipulator in space constraints, which robots may encounter for completing required tasks in small and constrained environment. The design intent is to facilitate the movement of the proposed robotic manipulator in constrained environments, such as rubble piles. The proposed robotic manipulator with multi Degree of Freedom (m-DOF) links is capable of elongating by 25% of its nominal length. In this context, a design optimization problem with multiple objectives is also considered. In order to identify the benefits of the proposed design strategy, the reachable workspace of the proposed manipulator is compared with that of the Jet Propulsion Laboratory (JPL) serpentine robot. The simulation results show that the proposed manipulator has a relatively efficient reachable workspace, needed in constrained environments. The singularity and manipulability of the designed manipulator are investigated. In this study, we investigate the number of links that produces the optimal design architecture of the proposed robotic manipulator. The total number of links decided by a design optimization can be useful distinction in practice. Also, we have considered a novel robust bio-inspired Sliding Mode Control (SMC) to achieve favorable tracking performance for a class of robotic manipulators with uncertainties. To eliminate the chattering problem of the conventional sliding mode control, we apply the Brain Emotional Learning Based Intelligent Control (BELBIC) to adaptively adjust the control input law in sliding mode control. The on-line computed parameters achieve favorable system robustness in process of parameter uncertainties and external disturbances. The simulation results demonstrate that our control strategy is effective in tracking high speed trajectories with less chattering, as compared to the conventional sliding mode control. The learning process of BLS is shown to enhance the performance of a new robust controller. Lastly, we consider the potential field methodology to generate a desired trajectory in small and constrained environments. Also, Obstacle Collision Avoidance (OCA) is applied to obtain an inverse kinematic solution of a redundant robotic manipulator. The electronic version of this dissertation is accessible from http://hdl.handle.net/1969.1/148298


Design, Control and Motion Planning for a Novel Modular Extendable Robotic Manipulator
Language: en
Pages: 104
Authors: Hak Yi
Categories:
Type: BOOK - Published: 2013 - Publisher:

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This dissertation discusses an implementation of a design, control and motion planning for a novel extendable modular redundant robotic manipulator in space con
Repetitive Motion Planning and Control of Redundant Robot Manipulators
Language: en
Pages: 201
Authors: Yunong Zhang
Categories: Technology & Engineering
Type: BOOK - Published: 2014-07-08 - Publisher: Springer Science & Business Media

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Repetitive Motion Planning and Control of Redundant Robot Manipulators presents four typical motion planning schemes based on optimization techniques, including
Advanced Studies of Flexible Robotic Manipulators
Language: en
Pages: 464
Authors: Fei-Yue Wang
Categories: Technology & Engineering
Type: BOOK - Published: 2003 - Publisher: World Scientific

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Flexible robotic manipulators pose various challenges in research as compared to rigid robotic manipulators, ranging from system design, structural optimization
Motion Design, Control and Implementation in Robot Manipulators
Language: en
Pages: 458
Authors: Geoffrey William Vernon
Categories: Motion
Type: BOOK - Published: 1988 - Publisher:

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Design, Control, and Reconfiguration Planning for Octagonal Modular Robot
Language: en
Pages:
Authors: 許銘全
Categories:
Type: BOOK - Published: 2011 - Publisher:

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