The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression

In order to realize the rapid response control for turboshaft engine during the process of variable rotor speed, the linear quadratic Gaussian with loop transfer recovery (LQG/LTR) control method for turboshaft engine based on torsional vibration suppression is proposed. Firstly, the two-speed dual...

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Main Authors: Yong Wang, Qiangang Zheng, Haibo Zhang, Mingyang Chen
Format: Article
Language:English
Published: SAGE Publishing 2020-12-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348419847010
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spelling doaj-c4814748d23a4e1d9cf157ab4307a80f2020-12-10T04:05:02ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462020-12-013910.1177/1461348419847010The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppressionYong WangQiangang ZhengHaibo ZhangMingyang ChenIn order to realize the rapid response control for turboshaft engine during the process of variable rotor speed, the linear quadratic Gaussian with loop transfer recovery (LQG/LTR) control method for turboshaft engine based on torsional vibration suppression is proposed. Firstly, the two-speed dual clutch transmission model is applied to realize the variable rotor speed of helicopter. Then, based on the state variable model of turboshaft engine, the proper LQG/LTR controller is available. In order to eliminate the limitation of low-order torsional vibration on the bandwidth of LQG/LTR controller, a frequency-domain analysis method for the effect of torsional vibration suppression on LQG/LTR controller performance is developed. Finally, the numerical simulation is conducted to verify the LQG/LTR control for turboshaft engine with variable rotor speed based on torsional vibration suppression. The results show that the bandwidth of the LQG/LTR control loop can increase by 2–3 times under torsional vibration suppression. Meanwhile, when the rotor speed varies continuously by 40%, the overshoot and sag of the power turbine speed can decrease to less than 2% through LQG/LTR controller based on torsional vibration suppression, which achieves the rapid response control of the turboshaft engine.https://doi.org/10.1177/1461348419847010
collection DOAJ
language English
format Article
sources DOAJ
author Yong Wang
Qiangang Zheng
Haibo Zhang
Mingyang Chen
spellingShingle Yong Wang
Qiangang Zheng
Haibo Zhang
Mingyang Chen
The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Yong Wang
Qiangang Zheng
Haibo Zhang
Mingyang Chen
author_sort Yong Wang
title The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
title_short The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
title_full The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
title_fullStr The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
title_full_unstemmed The LQG/LTR control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
title_sort lqg/ltr control method for turboshaft engine with variable rotor speed based on torsional vibration suppression
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2020-12-01
description In order to realize the rapid response control for turboshaft engine during the process of variable rotor speed, the linear quadratic Gaussian with loop transfer recovery (LQG/LTR) control method for turboshaft engine based on torsional vibration suppression is proposed. Firstly, the two-speed dual clutch transmission model is applied to realize the variable rotor speed of helicopter. Then, based on the state variable model of turboshaft engine, the proper LQG/LTR controller is available. In order to eliminate the limitation of low-order torsional vibration on the bandwidth of LQG/LTR controller, a frequency-domain analysis method for the effect of torsional vibration suppression on LQG/LTR controller performance is developed. Finally, the numerical simulation is conducted to verify the LQG/LTR control for turboshaft engine with variable rotor speed based on torsional vibration suppression. The results show that the bandwidth of the LQG/LTR control loop can increase by 2–3 times under torsional vibration suppression. Meanwhile, when the rotor speed varies continuously by 40%, the overshoot and sag of the power turbine speed can decrease to less than 2% through LQG/LTR controller based on torsional vibration suppression, which achieves the rapid response control of the turboshaft engine.
url https://doi.org/10.1177/1461348419847010
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