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Robust stabilizer design for linear time-varying internal model based output regulation and its application to an electrohydraulic system

机译:基于线性时变内模的输出调节的鲁棒稳定器设计及其在电液系统中的应用

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This paper focuses on the design of a low order robust stabilizer for the tracking/disturbance rejection problem based on the internal model principle in the time-varying setting and its application to the hydraulic pressure tracking with varying frequency. The problem of this kind known as output regulation generally consists of two major parts: internal model unit construction and stabilizer design. While the construction of the time-varying internal model unit is non-trivial by itself and a very recent research outcome enables its synthesis for a class of linear time-varying systems, the effective stabilization of the augmented system (internal model unit and plant) for practical applications remains a challenge. This is due to the need to stabilize the high order time-varying augmented system using a low order stabilizer in a robust fashion and with desirable transient performance. While directly applying the stabilization approaches for a general LTV system will result in a high order stabilizer, a new method is proposed in this paper that overcomes this bottleneck by taking advantage of the unique structure of the internal model based control system. Instead of using a dynamic stabilizer with high order, this approach uses a sequence of time-varying gains that are directly injected into the internal model unit. A critical issue addressed is how to avoid the non-convex optimization associated with the time-varying gain synthesis and then convert the stabilizer design into a series of Linear Matrix Inequalities (LMIs). The proposed control approach is then demonstrated on an electrohydraulic system.
机译:本文基于时变环境中的内模原理,针对跟踪/扰动抑制问题设计了一种低阶鲁棒稳定器,并将其应用于变频液压跟踪中。这种称为输出调节的问题通常由两个主要部分组成:内部模型单元的构造和稳定器设计。虽然时变内部模型单元的构建本身并不容易,并且最近的研究成果使它能够综合用于一类线性时变系统,但增强系统(内部模型单元和工厂)的有效稳定实际应用仍然是一个挑战。这是由于需要使用低阶稳定器以鲁棒的方式并具有所需的瞬态性能来稳定高阶时变增强系统。虽然直接将稳定方法应用于一般LTV系统会产生高阶稳定器,但本文提出了一种新方法,该方法通过利用基于内部模型的控制系统的独特结构克服了这一瓶颈。该方法不是使用高阶动态稳定器,而是使用一系列随时间变化的增益,这些增益直接注入到内部模型单元中。解决的关键问题是如何避免与时变增益合成相关的非凸优化,然后将稳定器设计转换为一系列线性矩阵不等式(LMI)。然后在电动液压系统上演示了建议的控制方法。

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