Harmonics suppression in high-speed railway via single-phase traction converter with an LCL filter using fuzzy logic control strategy

M. Aissaoui, H. Bouzeria, M. Benidir, M. A. Labed
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Abstract

Introduction. The railway Traction Power Supply System (TPSS) encounters a common challenge related to high-frequency harmonic resonance, especially when employing AC-DC-AC traction drive systems in high-speed trains. This resonance issue arises when the harmonic elements introduced by the traction AC-DC converter on the grid side of trains align with the innate resonance frequency of the TPSS. The novelty the proposed work focuses on the challenges associated with resonance elevation and high-frequency harmonics in high-speed trains, while simultaneously enhancing energy quality. This is achieved by integrating a pulse-width-modulated converter on the grid side with a single-phase configuration and incorporating an LCL filter. Methodology. In order to optimize the system’s efficiency, a robust control system is employed, taking advantage of the capabilities of a fuzzy logic controller (FLC). The choice of the FLC is justified by its straightforward design and reliability, emphasizing the dedication to precise control, as fuzzy logic excels in handling complex, nonlinear systems. Through the use of linguistic variables and heuristic reasoning, the FLC adjusts to dynamic changes in the system, demonstrating its efficacy in enhancing both transient and steady-state responses. Practical value. A grid-side LCL filter-based converter was meticulously designed and rigorously simulated using the MATLAB/Simulink platform. The inclusion of an advanced FLC in the system introduced a novel approach to control strategies, surpassing the traditional PI controller. Through a comprehensive comparative analysis, the simulation results showcased the remarkable efficacy of the proposed solution in an effectively mitigating high-frequency resonance within the TPSS. This outcome underscores the potential of FLC as a sophisticated control mechanism for enhancing the performance systems in railway applications, showcasing its superiority over conventional control methods. The study contributes in shedding light on innovative approaches for optimizing the control and efficiency of grid-side LCL filter-based converters in high-speed train systems.
利用模糊逻辑控制策略,通过带 LCL 滤波器的单相牵引变流器抑制高速铁路谐波
引言铁路牵引供电系统(TPSS)会遇到一个与高频谐波共振有关的共同挑战,尤其是在高速列车中采用交流-直流-交流牵引驱动系统时。当列车电网侧牵引交流-直流转换器引入的谐波元素与 TPSS 的固有谐振频率一致时,就会产生谐振问题。所提工作的新颖之处在于,在提高能源质量的同时,重点解决了与高速列车谐振提升和高频谐波相关的挑战。这是通过在电网侧集成一个单相配置的脉宽调制转换器和一个 LCL 滤波器来实现的。方法。为了优化系统效率,利用模糊逻辑控制器 (FLC) 的功能,采用了稳健控制系统。选择 FLC 的理由是其简单的设计和可靠性,强调精确控制,因为模糊逻辑擅长处理复杂的非线性系统。通过使用语言变量和启发式推理,FLC 可根据系统的动态变化进行调整,从而证明其在增强瞬态和稳态响应方面的功效。实用价值。我们使用 MATLAB/Simulink 平台对基于 LCL 滤波器的电网侧变流器进行了精心设计和严格模拟。在系统中加入先进的 FLC,为控制策略引入了一种新方法,超越了传统的 PI 控制器。通过全面的比较分析,仿真结果表明所提出的解决方案在有效缓解 TPSS 内的高频共振方面具有显著功效。这一结果凸显了 FLC 作为一种先进的控制机制在提高铁路应用系统性能方面的潜力,显示出其优于传统控制方法的优势。这项研究有助于阐明在高速列车系统中优化基于电网侧 LCL 滤波器的转换器的控制和效率的创新方法。
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