基于精确反馈线性化的直流-直流升压转换器自适应二阶滑模控制设计

IF 7.2 1区 工程技术 Q1 AUTOMATION & CONTROL SYSTEMS IEEE Transactions on Industrial Electronics Pub Date : 2024-10-31 DOI:10.1109/TIE.2024.3476994
Jinlin Sun;Jun Xia;Shihong Ding;Xinghuo Yu
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引用次数: 0

摘要

工作在连续导通模式下的升压变换器稳压系统是一个典型的非最小相位系统,对相应的控制器设计提出了很大的挑战。在本文中,我们采用精确反馈线性化技术来有效地减轻非最小相位特性带来的复杂性。为了解决具有各种干扰的升压变换器固有的电压调节挑战,我们提出了一种在Lyapunov框架内制定的自适应二阶滑模(SOSM)控制器。通过动态调制控制增益,所提出的控制器规避了其他SOSM方法中典型的高估问题,从而减少了增益过大引起的抖振。此外,与传统的自适应SOSM方法不同,所提出的控制器只要求扰动有界,而不需要这些扰动的导数有界。在此基础上,该控制器保证了闭环系统的有限时间稳定性,同时增强了系统的暂态响应和鲁棒性。最后进行了硬件对比实验,验证了所提控制器的有效性和优越性。
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Exact-Feedback-Linearization-Based Adaptive Second-Order Sliding Mode Control Design for DC–DC Boost Converters
The voltage regulation system of a boost converter operating in continuous conduction mode is a typical nonminimum phase system, posing significant challenges for the corresponding controller design. In this article, we employ the exact feedback linearization technique to effectively mitigate the complexities arising from the nonminimum phase characteristic. To address the voltage regulation challenge inherent to the boost converter with various disturbances, we propose an adaptive second-order sliding mode (SOSM) controller formulated within the Lyapunov framework. By dynamically modulating the control gain, the proposed controller circumvents the overestimation issue typical in other SOSM approaches, thereby diminishing chattering induced by excessive gain. In addition, unlike conventional adaptive SOSM methods, the proposed controller requires merely the disturbances to be bounded, without the need for the derivatives of these disturbances to be bounded. On this basis, the proposed controller ensures finite-time stability of the closed-loop system and concurrently enhances its transient response and robustness. Finally, comparative hardware experiments are conducted to demonstrate the effectiveness and superiority of the proposed controller.
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来源期刊
IEEE Transactions on Industrial Electronics
IEEE Transactions on Industrial Electronics 工程技术-工程:电子与电气
CiteScore
16.80
自引率
9.10%
发文量
1396
审稿时长
6.3 months
期刊介绍: Journal Name: IEEE Transactions on Industrial Electronics Publication Frequency: Monthly Scope: The scope of IEEE Transactions on Industrial Electronics encompasses the following areas: Applications of electronics, controls, and communications in industrial and manufacturing systems and processes. Power electronics and drive control techniques. System control and signal processing. Fault detection and diagnosis. Power systems. Instrumentation, measurement, and testing. Modeling and simulation. Motion control. Robotics. Sensors and actuators. Implementation of neural networks, fuzzy logic, and artificial intelligence in industrial systems. Factory automation. Communication and computer networks.
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