Research on turboprop engine control method based on linear parameter varying model

Author:

He Liqiang1,Li Siyuan2,Du Jiatong3,Zhang Haibo4

Affiliation:

1. Aero Engine Corporation of China , Beijing 100097 , China

2. AECC South Industry CO., LTD , Zhuzhou 412002 , China

3. Nanjing University of Aeronautics and Astronautics , Nanjing , China

4. Jiangsu Province Key Laboratory of Aerospace Power System , Nanjing , China

Abstract

Abstract Starting from a component-level nonlinear model of a turboprop engine, the high-pressure turbine speed and power turbine speed output data at six steady-state operating points are linearized and fitted, and a turboprop engine state variable model is established. Based on these state variable models, the Proportional Integral Derivative (PID) control method, the augmented Linear Quadratic Regulator (LQR) control method and the Linear Quadratic Gaussian/Loop Transfer Recover (LQG/LTR) control method are used to design the controllers respectively, and the relative converted speed of the high-pressure turbine is selected as the scheduling parameter of the Linear Parameter Varying (LPV) model, and the controller is called to control the turboprop engine’s non-linear speed. Linear model for large envelope control. Finally, the control effects of the above three control methods are compared and analyzed, and their advantages and disadvantages are compared. The simulation results show that the LPV controller designed based on the LQG/LTR method is more effective than the controllers designed by the other two control methods on the nonlinear turboprop model.

Publisher

Walter de Gruyter GmbH

Subject

Aerospace Engineering

Reference19 articles.

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2. Chen, M, Tang, H, Zhang, J. Real time performance simulation model of a twin shaft afterburner turbofan engine. J Aerodyn 2005;20:13–7.

3. Sun, J. Multivariable control system of modern aeroengine. Beijing: Beijing University of Aeronautics and Astronautics Press; 2005:123–165 pp.

4. Zhao, H, Niu, J, Jiang, Y, Yu, D. Aeroengine linear modeling method based on balanced manifold model. Propul Technol 2011;32:377–82.

5. Li, S, Zhang, S, Hu, W. Aeroengine LPV modeling method based on balanced manifold. Propul Technol 2011;32:21–5.

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