Nonlinear sliding mode control design for an air-breathing engine with state estimation

Arnab Maity, R. Padhi
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引用次数: 2

Abstract

A modern system theory based nonlinear control design is discussed in this paper for successful operation of an air-breathing engine operating at supersonic speed. The primary objective of the control design of such an air-breathing engine is to ensure that the engine dynamically produces the thrust that tracks a commanded value of thrust as closely as possible by regulating the fuel flow to the combustion system. However, since the engine operates in the supersonic range, an important secondary objective is to manage the shock wave configuration in the intake section of the engine which is manipulated by varying the throat area of the nozzle. A nonlinear sliding mode control technique has been successfully used to achieve both of the above objectives. In this problem, since the process is faster than the actuators, independent control designs are also carried out for the actuators as well to assure the satisfactory performance of the system. Moreover, to filter out the sensor and process noises and to estimate the states for making the control design operate based on output feedback, an Extended Kalman Filter based state estimation design is also carried out. The promising simulation results suggest that the proposed control design approach is quite successful in obtaining robust performance of the air-breathing engine.
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带状态估计的吸气式发动机非线性滑模控制设计
本文讨论了一种基于现代系统理论的非线性控制设计方法,以使吸气式发动机在超音速下成功运行。这种吸气式发动机控制设计的主要目标是通过调节进入燃烧系统的燃油流量,确保发动机动态产生的推力尽可能接近所要求的推力值。然而,由于发动机在超音速范围内工作,一个重要的次要目标是通过改变喷嘴的喉部面积来控制发动机进气部分的冲击波配置。一种非线性滑模控制技术已成功地实现了上述两个目标。在此问题中,由于过程比执行机构快,因此对执行机构也进行了独立的控制设计,以保证系统的良好性能。此外,为了滤除传感器和过程噪声,并根据输出反馈估计控制设计的状态,还进行了基于扩展卡尔曼滤波的状态估计设计。仿真结果表明,所提出的控制设计方法在获得吸气式发动机的鲁棒性能方面是相当成功的。
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