Progress in Redundant Electromechanical Actuators for Aerospace Applications
The power to move aircraft control surfaces has advanced from being manually generated (by the pilot and transmitted via rods and links) to electrically transmitted (via wires) to operate control surface actuators. Various hydraulic, electromagnetic, and electromechanical architectures have been dev...
Main Authors: | , |
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Format: | Article |
Language: | English |
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MDPI AG
2023-09-01
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Series: | Aerospace |
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Online Access: | https://www.mdpi.com/2226-4310/10/9/787 |
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author | Fawaz Yahya Annaz Malaka Miyuranga Kaluarachchi |
author_facet | Fawaz Yahya Annaz Malaka Miyuranga Kaluarachchi |
author_sort | Fawaz Yahya Annaz |
collection | DOAJ |
description | The power to move aircraft control surfaces has advanced from being manually generated (by the pilot and transmitted via rods and links) to electrically transmitted (via wires) to operate control surface actuators. Various hydraulic, electromagnetic, and electromechanical architectures have been developed to provide the necessary power and to maintain the expected redundancy. Numerous aircraft actuator system designs have been proposed in the past decades, but a comprehensive review has yet to be undertaken. This review paper aims to fill this gap by providing a critical review of the actuation system designs developed for a variety of aircraft. The review focuses on aircraft actuator system designs, namely: electrohydraulic actuator systems, electromechanical actuator systems, and the force-fighting effect in redundant actuation systems. The significance and operational principle of each actuator system are critically analysed and discussed in the review. The paper also evaluates the solution proposed to address force-fight equalization (or force-fight cancelation) in force or torqued-summed architectures. Future trends in redundant actuation system development with reduced force-fighting effect in aircraft actuator systems are also addressed. |
first_indexed | 2024-03-10T23:09:58Z |
format | Article |
id | doaj.art-e55150d56bfb44e09a806410c23195cc |
institution | Directory Open Access Journal |
issn | 2226-4310 |
language | English |
last_indexed | 2024-03-10T23:09:58Z |
publishDate | 2023-09-01 |
publisher | MDPI AG |
record_format | Article |
series | Aerospace |
spelling | doaj.art-e55150d56bfb44e09a806410c23195cc2023-11-19T09:04:51ZengMDPI AGAerospace2226-43102023-09-0110978710.3390/aerospace10090787Progress in Redundant Electromechanical Actuators for Aerospace ApplicationsFawaz Yahya Annaz0Malaka Miyuranga Kaluarachchi1Department of Engineering, Birmingham City University, Curzon Street, Birmingham B4 7XG, UKDepartment of Engineering, AgriTech and Environment, Anglia Ruskin University Peterborough Campus, Bishop’s Road, Peterborough PE1 5BW, UKThe power to move aircraft control surfaces has advanced from being manually generated (by the pilot and transmitted via rods and links) to electrically transmitted (via wires) to operate control surface actuators. Various hydraulic, electromagnetic, and electromechanical architectures have been developed to provide the necessary power and to maintain the expected redundancy. Numerous aircraft actuator system designs have been proposed in the past decades, but a comprehensive review has yet to be undertaken. This review paper aims to fill this gap by providing a critical review of the actuation system designs developed for a variety of aircraft. The review focuses on aircraft actuator system designs, namely: electrohydraulic actuator systems, electromechanical actuator systems, and the force-fighting effect in redundant actuation systems. The significance and operational principle of each actuator system are critically analysed and discussed in the review. The paper also evaluates the solution proposed to address force-fight equalization (or force-fight cancelation) in force or torqued-summed architectures. Future trends in redundant actuation system development with reduced force-fighting effect in aircraft actuator systems are also addressed.https://www.mdpi.com/2226-4310/10/9/787electromechanical actuatorsforce equalizationtorque disparitiesforce fight |
spellingShingle | Fawaz Yahya Annaz Malaka Miyuranga Kaluarachchi Progress in Redundant Electromechanical Actuators for Aerospace Applications Aerospace electromechanical actuators force equalization torque disparities force fight |
title | Progress in Redundant Electromechanical Actuators for Aerospace Applications |
title_full | Progress in Redundant Electromechanical Actuators for Aerospace Applications |
title_fullStr | Progress in Redundant Electromechanical Actuators for Aerospace Applications |
title_full_unstemmed | Progress in Redundant Electromechanical Actuators for Aerospace Applications |
title_short | Progress in Redundant Electromechanical Actuators for Aerospace Applications |
title_sort | progress in redundant electromechanical actuators for aerospace applications |
topic | electromechanical actuators force equalization torque disparities force fight |
url | https://www.mdpi.com/2226-4310/10/9/787 |
work_keys_str_mv | AT fawazyahyaannaz progressinredundantelectromechanicalactuatorsforaerospaceapplications AT malakamiyurangakaluarachchi progressinredundantelectromechanicalactuatorsforaerospaceapplications |