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基于自调整神经元的航空发动机多变量自适应解耦控制
引用本文:朱玉斌,樊思齐,张秀华,李华聪.基于自调整神经元的航空发动机多变量自适应解耦控制[J].航空动力学报,2007,22(3):490-494.
作者姓名:朱玉斌  樊思齐  张秀华  李华聪
作者单位:1. 西北工业大学,动力与能源学院,西安,710072
2. 西北工业大学,电子信息学院,西安,710072
摘    要:根据航空发动机性能控制要求,通过分析自调整神经元及最速下降学习方法,研究了基于自调整神经元的航空发动机多变量自适应解耦控制系统.利用自调整神经元的结构简单、各神经元之间没有权值连接及在线学习的优点,在线整定多变量PID控制器的参数.阐明了该方法的结构和原理.并进行了航空发动机多变量自适应解耦控制系统的设计.大量的仿真结果表明,系统具有良好的解耦特性和自适应能力.

关 键 词:航空、航天推进系统  航空发动机  自调整神经元  多变量控制  解耦控制  自适应控制
文章编号:1000-8055(2007)03-0490-05
收稿时间:3/9/2006 12:00:00 AM
修稿时间:2006年3月9日

Multivariable adaptive decoupling control based on auto-tuning neurons for aeroengine
ZHU Yu-bin,FAN Si-qi,ZHANG Xiu-hua and LI Hua-cong.Multivariable adaptive decoupling control based on auto-tuning neurons for aeroengine[J].Journal of Aerospace Power,2007,22(3):490-494.
Authors:ZHU Yu-bin  FAN Si-qi  ZHANG Xiu-hua and LI Hua-cong
Institution:School of Power and Engine, Northwestern Polytechnical University, Xi'an 710072, China;School of Power and Engine, Northwestern Polytechnical University, Xi'an 710072, China;School of Electronics and Information, Northwestern Polytechnical University, Xi'an 710072, China;School of Power and Engine, Northwestern Polytechnical University, Xi'an 710072, China
Abstract:According to the requirements of aeroengine performance control,a new neural network called auto-tuning neurons and gradient descent learning method are presented.A multivariable decoupling control algorithm based on the auto-tuning neurons is used for aeroengine multivariable control systems in this paper.The main difference between an auto-tuning neuron and a general neuron is that there are adjustable parameters of the activation function used in an auto-tuning neuron.Unlike traditional fully connected neural network,there are no synaptic connections among the independent neurons.The emphasis is focused on the research of the algorithm and the properties of the controller,as well as their application to the aeroengine control by means of computer simulation.Finally the aeroengine multivariable control system is designed.Simulation shows that the system has perfect performance of decoupling and adaptive capabilities.
Keywords:aerospace propulsion system  aroengine  auto-tuning neurons  multivariable control  decoupling control  adaptive control
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