Active force control with iterative learning control algorithm applied to vehicle suspension system

The paper introduces a new control method to a passenger vehicle active suspension system using Active Force Control (AFC) integrated with Iterative Learning Control (ILC) algorithm and the classic proportional-integral-derivative (PID) control known as the AFCIL control scheme. The overall control...

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Main Authors: R., Rosli, M., Mailah
Format: Conference or Workshop Item
Published: 2013
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Online Access:http://eprints.utm.my/id/eprint/37198/
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spelling my.utm.371982017-10-16T00:50:31Z http://eprints.utm.my/id/eprint/37198/ Active force control with iterative learning control algorithm applied to vehicle suspension system R., Rosli M., Mailah TJ Mechanical engineering and machinery The paper introduces a new control method to a passenger vehicle active suspension system using Active Force Control (AFC) integrated with Iterative Learning Control (ILC) algorithm and the classic proportional-integral-derivative (PID) control known as the AFCIL control scheme. The overall control system consists of three feedback control loops, namely, the innermost loop for the force tracking of the pneumatic actuator using proportional-integral (PI) controller, the intermediate loops applying AFC with iterative learning algorithm for the compensation of the disturbances, and the outermost loop using PID controller for the computation of the desired force. A study is carried out both via simulation and experimental approaches. The simulation was done using MATLAB/Simulink software with Control System Toolbox (CST) and the experiment was carried out on a physical quarter car test rig with hardware-in-the-loop simulation (HILS) feature that fully incorporates the underlying theoretical elements. The performance of the AFCIL scheme was evaluated and compared with the pure PID controller and passive counterpart to examine the effectiveness of the system in suppressing the vibration effect of the suspension system that may improve the riding comfort performance. Both simulation and experimental results show that the AFCIL scheme is much superior compared to the PID and passive counterparts. 2013 Conference or Workshop Item PeerReviewed R., Rosli and M., Mailah (2013) Active force control with iterative learning control algorithm applied to vehicle suspension system. In: 13th International Conference on Robotics, Control and Manufacturing Technology (ROCOM '13) April 2-4, 2013,Kuala Lumpur, 2013.
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
R., Rosli
M., Mailah
Active force control with iterative learning control algorithm applied to vehicle suspension system
description The paper introduces a new control method to a passenger vehicle active suspension system using Active Force Control (AFC) integrated with Iterative Learning Control (ILC) algorithm and the classic proportional-integral-derivative (PID) control known as the AFCIL control scheme. The overall control system consists of three feedback control loops, namely, the innermost loop for the force tracking of the pneumatic actuator using proportional-integral (PI) controller, the intermediate loops applying AFC with iterative learning algorithm for the compensation of the disturbances, and the outermost loop using PID controller for the computation of the desired force. A study is carried out both via simulation and experimental approaches. The simulation was done using MATLAB/Simulink software with Control System Toolbox (CST) and the experiment was carried out on a physical quarter car test rig with hardware-in-the-loop simulation (HILS) feature that fully incorporates the underlying theoretical elements. The performance of the AFCIL scheme was evaluated and compared with the pure PID controller and passive counterpart to examine the effectiveness of the system in suppressing the vibration effect of the suspension system that may improve the riding comfort performance. Both simulation and experimental results show that the AFCIL scheme is much superior compared to the PID and passive counterparts.
format Conference or Workshop Item
author R., Rosli
M., Mailah
author_facet R., Rosli
M., Mailah
author_sort R., Rosli
title Active force control with iterative learning control algorithm applied to vehicle suspension system
title_short Active force control with iterative learning control algorithm applied to vehicle suspension system
title_full Active force control with iterative learning control algorithm applied to vehicle suspension system
title_fullStr Active force control with iterative learning control algorithm applied to vehicle suspension system
title_full_unstemmed Active force control with iterative learning control algorithm applied to vehicle suspension system
title_sort active force control with iterative learning control algorithm applied to vehicle suspension system
publishDate 2013
url http://eprints.utm.my/id/eprint/37198/
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score 13.159267