The limit cycle oscillation of divergent instability control based on classical flutter of blade section

Numerical simulation of a novel fuzzy control and back propagation neural network (BPNN) control for divergent instability based on classical flutter of 5-DOF wind turbine blade section driven by pitch adjustment has been investigated. The work is dedicated to solving destructive flap/lag/twist dive...

Full description

Bibliographic Details
Main Author: Tingrui Liu
Format: Article
Language:English
Published: JVE International 2017-11-01
Series:Journal of Vibroengineering
Subjects:
Online Access:https://www.jvejournals.com/article/18240
id doaj-ee24cf01c945478fa37c18c5591881dd
record_format Article
spelling doaj-ee24cf01c945478fa37c18c5591881dd2020-11-24T21:38:06ZengJVE InternationalJournal of Vibroengineering1392-87162538-84602017-11-011975114513610.21595/jve.2017.1824018240The limit cycle oscillation of divergent instability control based on classical flutter of blade sectionTingrui Liu0College of Mechanical and Electronic Engineering, Shandong University of Science and Technology, Qingdao, ChinaNumerical simulation of a novel fuzzy control and back propagation neural network (BPNN) control for divergent instability based on classical flutter of 5-DOF wind turbine blade section driven by pitch adjustment has been investigated. The work is dedicated to solving destructive flap/lag/twist divergent instability from classical flutter, which might occur during the gust wind action, and might cause fracture failure of the blade itself and tower body. In order to investigate the optimal control method, the parameters of blade section are specially designed so as to simulate the actual situation, which lead to absolutely divergent motions (ADM) under gust wind load. The control of ADM often leads to limit cycle oscillation (LCO), the larger amplitude of which is likely to cause fracture failure of tower body. A novel fuzzy control method with adjustable quantization gain and BPNN control strategy are investigated in order to effectively eliminate LCO (leading to direct convergence of the system) or reduce the amplitude of LCO. The obvious effects of fuzzy control and BPNN control are illustrated by numerical comparisons of vibration suppression from nonlinear time response, amplitude of LCO and frequency spectrum analysis. An experimental platform is built based on hardware-in-the-loop simulation by way of PLC-OPC technology in order to test the real-time performance of the control algorithm. The feasibility of the control algorithm is demonstrated by the experimental results displayed by touch-screen hardware.https://www.jvejournals.com/article/18240fuzzy controlBPNN controlpitch adjustmentclassical flutterdivergent instabilitylimit cycle oscillationhardware-in-the-loop simulationreal-time effect
collection DOAJ
language English
format Article
sources DOAJ
author Tingrui Liu
spellingShingle Tingrui Liu
The limit cycle oscillation of divergent instability control based on classical flutter of blade section
Journal of Vibroengineering
fuzzy control
BPNN control
pitch adjustment
classical flutter
divergent instability
limit cycle oscillation
hardware-in-the-loop simulation
real-time effect
author_facet Tingrui Liu
author_sort Tingrui Liu
title The limit cycle oscillation of divergent instability control based on classical flutter of blade section
title_short The limit cycle oscillation of divergent instability control based on classical flutter of blade section
title_full The limit cycle oscillation of divergent instability control based on classical flutter of blade section
title_fullStr The limit cycle oscillation of divergent instability control based on classical flutter of blade section
title_full_unstemmed The limit cycle oscillation of divergent instability control based on classical flutter of blade section
title_sort limit cycle oscillation of divergent instability control based on classical flutter of blade section
publisher JVE International
series Journal of Vibroengineering
issn 1392-8716
2538-8460
publishDate 2017-11-01
description Numerical simulation of a novel fuzzy control and back propagation neural network (BPNN) control for divergent instability based on classical flutter of 5-DOF wind turbine blade section driven by pitch adjustment has been investigated. The work is dedicated to solving destructive flap/lag/twist divergent instability from classical flutter, which might occur during the gust wind action, and might cause fracture failure of the blade itself and tower body. In order to investigate the optimal control method, the parameters of blade section are specially designed so as to simulate the actual situation, which lead to absolutely divergent motions (ADM) under gust wind load. The control of ADM often leads to limit cycle oscillation (LCO), the larger amplitude of which is likely to cause fracture failure of tower body. A novel fuzzy control method with adjustable quantization gain and BPNN control strategy are investigated in order to effectively eliminate LCO (leading to direct convergence of the system) or reduce the amplitude of LCO. The obvious effects of fuzzy control and BPNN control are illustrated by numerical comparisons of vibration suppression from nonlinear time response, amplitude of LCO and frequency spectrum analysis. An experimental platform is built based on hardware-in-the-loop simulation by way of PLC-OPC technology in order to test the real-time performance of the control algorithm. The feasibility of the control algorithm is demonstrated by the experimental results displayed by touch-screen hardware.
topic fuzzy control
BPNN control
pitch adjustment
classical flutter
divergent instability
limit cycle oscillation
hardware-in-the-loop simulation
real-time effect
url https://www.jvejournals.com/article/18240
work_keys_str_mv AT tingruiliu thelimitcycleoscillationofdivergentinstabilitycontrolbasedonclassicalflutterofbladesection
AT tingruiliu limitcycleoscillationofdivergentinstabilitycontrolbasedonclassicalflutterofbladesection
_version_ 1725935558568443904