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Design and Validation of Aeroengine Control System with Non-fully Recovering LQG/LTR Method

机译:非完全恢复LQG / LTR方法的航空发动机控制系统设计与验证

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A method of Non-fully recovering LQG/LTR(Linear Quadratic Gaussian synthesis with Loop Transfer Recovery) was introduced in the paper for solving the problem of over large values of the parameters in the conventional LQG/LTR controller. After the theory and the approach of Non-fully recovering LQG/LTR were introduced, this method was applied to design the aeroengine control system. The research result showed that the values of Non-fully recovering LQG/LTR controller parameters can be reduced effectively and without any capability loss of the control system compared with the controller designed by conventional LQG/LTR methodology. In order to validate the performance of the designed control system, the hardware-in-the-loop simulation system was designed from hardware and software, and then the hardwarein- the-loop simulation of the control system in the flight envelope has been performed. Excellent robustness and anti-disturbance properties of the controller are obtained, and the demands of multivariable control of aeroengine are reached from the simulation result. So, it is verified that the Non-fully recovering LQG/LTR methodology is suitable for the design of areoengine multivariable controller, the designed hardware-in-the-loop simulation system can simulate the aeroengine and the engine controller_s work process effectively.
机译:为了解决传统LQG / LTR控制器中参数过大的问题,提出了一种非完全恢复LQG / LTR的方法。在介绍了非完全恢复LQG / LTR的理论和方法之后,将该方法应用于航空发动机控制系统的设计。研究结果表明,与传统的LQG / LTR方法设计的控制器相比,可以有效降低非完全恢复的LQG / LTR控制器参数的值,并且不会对控制系统造成任何性能损失。为了验证所设计的控制系统的性能,从硬件和软件设计了硬件在环仿真系统,然后对飞行包络线中的控制系统进行了硬件在环仿真。仿真结果表明,该控制器具有优良的鲁棒性和抗干扰性,并满足了航空发动机多变量控制的要求。因此,证明了非完全恢复的LQG / LTR方法适用于飞机发动机多变量控制器的设计,所设计的硬件在环仿真系统可以有效地模拟航空发动机和发动机控制器的工作过程。

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