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Research Article | Open Access

A High-Efficient Finite Difference Method for Flexible Manipulator with Boundary Feedback Control

Fushou Liu1Dongping Jin2( )
College of Civil Engineering, Nanjing Forestry University, 210037 Nanjing, China
State Key Laboratory of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, 210016 Nanjing, China
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Abstract

The paper presents a high-efficient finite difference method for solving the PDE model of the single-link flexible manipulator system with boundary feedback control. Firstly, an abstract state-space model of the manipulator is derived from the original PDE model and the associated boundary conditions of the manipulator by using the velocity and bending curvature of the flexible link as the state variables. Then, the second-order implicit Crank-Nicolson scheme is adopted to discretize the state-space equation, and the second-order one-sided approximation is used to discretize the boundary conditions with excitations and feedback control. At last, the state-space equation combined with the boundary conditions of the flexible manipulator is transformed to a system of linear algebraic equations, from which the response of the flexible manipulator can be easily solved. Numerical simulations are carried out to simulate the manipulator under various excitations and boundary feedback control. The results are compared with ANSYS to demonstrate the accuracy and high efficiency of the presented method.

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Space: Science & Technology
Article number: 9874563

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Cite this article:
Liu F, Jin D. A High-Efficient Finite Difference Method for Flexible Manipulator with Boundary Feedback Control. Space: Science & Technology, 2021, 2021: 9874563. https://doi.org/10.34133/2021/9874563

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Received: 01 April 2021
Accepted: 27 July 2021
Published: 18 August 2021
© 2021 Fushou Liu and Dongping Jin. Exclusive Licensee Beijing Institute of Technology Press.

Distributed under a Creative Commons Attribution License (CC BY 4.0).