Cascade Sliding Mode-Based Robust Tracking Control of a Magnetic Levitation System

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Date

2016

Journal Title

Journal ISSN

Volume Title

Publisher

Sage Publications Ltd

Open Access Color

Green Open Access

Yes

OpenAIRE Downloads

1

OpenAIRE Views

3

Publicly Funded

No
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Average
Influence
Top 10%
Popularity
Top 10%

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Journal Issue

Abstract

Magnetic levitation systems are able to provide frictionless, reliable, fast and economical operations in wide-range applications. The effectiveness and applicability of these systems require precise feedback control designs because the magnetic levitation is an unstable process and have highly nonlinear dynamics. In this article, a robust sliding mode-based cascade control approach is proposed for effectively tracking the reference position of a magnetic levitation system. The magnetic levitation plant is described with electrical and mechanical models, and the control problems of these parts are treated with cascade controllers. An integral sliding mode and an output feedback sliding mode controllers are designed for use in the cascade loops. The performance of the sliding mode controllers is compared with a proportional-integral-velocity plus proportional-integral control structure. It is shown that the proposed control structure is able to provide a highly satisfactory tracking performance and can eliminate the effects of the inductance-related uncertainties and operating point originated disturbances. The experimental results are provided to validate the efficacy and feasibility of the approach.

Description

Ablay, Gunyaz/0000-0003-2862-6761;

Keywords

Magnetic Levitation, Maglev, Sliding Mode Control, Cascade Control, Robust Tracking

Fields of Science

0209 industrial biotechnology, 02 engineering and technology

Citation

WoS Q

Q3

Scopus Q

Q2
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OpenCitations Citation Count
13

Source

Proceedings of the Institution of Mechanical Engineers Part I-Journal of Systems and Control Engineering

Volume

230

Issue

8

Start Page

851

End Page

860
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Citations

CrossRef : 11

Scopus : 32

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Mendeley Readers : 14

SCOPUS™ Citations

32

checked on Mar 06, 2026

Web of Science™ Citations

27

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Page Views

1

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Downloads

4

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1.339

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