针对目标动力学的非线性控制器的基于优化的调谐:方法论和一个示范风能案例

IF 4.6 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Demián García-Violini , Carolina A. Evangelista , Yerai Peña-Sanchez , Paul Puleston
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引用次数: 0

摘要

非线性系统的整定控制器由于其固有的复杂性和缺乏系统的设计方法,仍然是一个重大的挑战。本研究提出了一种实用的、通用的、鲁棒的基于优化的非线性控制器(包括线性控制器)调谐过程,为实践中常用的传统试错调谐策略提供了一种结构化的替代方案。所提出的方法的一个关键贡献是明确定义和实现非线性系统的目标闭环动态行为,这类似于线性控制中的经典动力学。通过利用全局优化技术,该程序系统地识别控制器参数,以最大限度地减少与预定义动态目标的偏差,同时确保在一系列操作条件下的鲁棒性和稳定性。该方法解决了被控系统的非线性响应,并为根据设计目标形成闭环动力学提供了直观和可定制的框架。通过对风力发电机控制问题的应用验证了该方法的有效性,证明了它能够有效地调节比例积分(PI)和超扭转滑模控制器(SMC)。结果强调了非线性控制器对参数选择的敏感性,并强调了系统调谐方法在实现一致性能,防止执行器饱和和确保系统寿命方面的好处。本研究为复杂非线性系统中的调谐控制器提供了一个强大而通用的解决方案,使从业者能够超越经验调谐实践。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimisation-based tuning of nonlinear controllers for targeted dynamics: Methodology and a demonstrative wind energy case
Tuning controllers for nonlinear systems remains a significant challenge due to their inherent complexity and the lack of systematic design methodologies. This study presents a practical, versatile, and robust optimisation-based procedure for tuning nonlinear controllers, including linear ones, offering a structured alternative to the traditional trial-and-error tuning strategies commonly used in practice. A key contribution of the proposed methodology is the explicit definition and achievement of target closed-loop dynamic behaviours in nonlinear systems, which is analogous to classical dynamics in linear control. By leveraging global optimisation techniques, the procedure systematically identifies controller parameters that minimise deviations from predefined dynamic targets while ensuring robustness and stability across a range of operating conditions. The approach addresses the nonlinear response of the controlled system and provides an intuitive and customisable framework for shaping closed-loop dynamics according to design objectives. The methodology is validated through its application to a wind turbine control problem, demonstrating its ability to tune both proportional–integral (PI) and super-twisting sliding mode controllers (SMC) effectively. The results highlight the sensitivity of nonlinear controllers to parameter selection and underscore the benefits of a systematic tuning approach in achieving consistent performance, preventing actuator saturation, and ensuring system longevity. This study offers a powerful and generalisable solution for tuning controllers in complex nonlinear systems, enabling practitioners to move beyond empirical tuning practice.
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来源期刊
Control Engineering Practice
Control Engineering Practice 工程技术-工程:电子与电气
CiteScore
9.20
自引率
12.20%
发文量
183
审稿时长
44 days
期刊介绍: Control Engineering Practice strives to meet the needs of industrial practitioners and industrially related academics and researchers. It publishes papers which illustrate the direct application of control theory and its supporting tools in all possible areas of automation. As a result, the journal only contains papers which can be considered to have made significant contributions to the application of advanced control techniques. It is normally expected that practical results should be included, but where simulation only studies are available, it is necessary to demonstrate that the simulation model is representative of a genuine application. Strictly theoretical papers will find a more appropriate home in Control Engineering Practice''s sister publication, Automatica. It is also expected that papers are innovative with respect to the state of the art and are sufficiently detailed for a reader to be able to duplicate the main results of the paper (supplementary material, including datasets, tables, code and any relevant interactive material can be made available and downloaded from the website). The benefits of the presented methods must be made very clear and the new techniques must be compared and contrasted with results obtained using existing methods. Moreover, a thorough analysis of failures that may happen in the design process and implementation can also be part of the paper. The scope of Control Engineering Practice matches the activities of IFAC. Papers demonstrating the contribution of automation and control in improving the performance, quality, productivity, sustainability, resource and energy efficiency, and the manageability of systems and processes for the benefit of mankind and are relevant to industrial practitioners are most welcome.
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