Multi-model structured H-infinity design of a robust and aggressive turbofan jet engine controller

Patrick Authié
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Abstract

Jet engine control comprises tracking either the fan speed or engine pressure ratio setpoints. Further, safe operation entails maintaining several additional parameters, such as high-pressure turbine temperature, combustor pressure, core shaft acceleration and other ones within prescribed limits. A Min-Max selector that features PI controllers is frequently used to handle these requirements. However, this arrangement is overly conservative in the limits management, which unnecessarily slows down the engine response. To overcome this shortcoming, a new controller that adopts the traditional Min-Max structure in combination with the Ndot control, the Conditionally Active and the Conditioning Technique approaches is developed. PI regulators are replaced by dynamic output feedback controllers, which are designed according to a multi-model structured H-infinity methodology. This approach makes it possible to marry robustness with performance, which are two conflicting objectives. Singular value analysis tools demonstrate the robustness of the resulting design. Linear and nonlinear simulations indicate that the proposed controller optimizes the engine response time under the constraint of keeping a set of parameters within prescribed bounds. The features of the proposed design are lucrative for actual implementation in the industry.
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多模型结构h -∞鲁棒和侵略性涡扇喷气发动机控制器设计
喷气发动机控制包括跟踪风扇转速或发动机压力比设定值。此外,安全运行还需要将一些附加参数保持在规定的范围内,例如高压涡轮温度、燃烧室压力、核心轴加速度和其他参数。具有PI控制器的Min-Max选择器经常用于处理这些要求。然而,这种安排在限制管理方面过于保守,这不必要地降低了发动机的响应速度。为了克服这一缺点,提出了一种新的控制器,该控制器采用传统的最小-最大结构,并结合Ndot控制、条件主动和调节技术等方法。PI调节器被动态输出反馈控制器所取代,该控制器是根据多模型结构化h∞方法设计的。这种方法可以将鲁棒性和性能结合起来,这是两个相互冲突的目标。奇异值分析工具证明了结果设计的稳健性。线性和非线性仿真结果表明,该控制器在保持一组参数在规定范围内的约束下优化了发动机响应时间。所提出的设计的特性对于在工业中实际实现是有益的。
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