利用平衡优化器增强可再生能源系统中多电平逆变器的性能

IF 4.2 3区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Chang-Hua Lin , Shoeb Azam Farooqui , Hwa-Dong Liu , Adil Sarwar , Mohammad Zaid , Javed Ahmad
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引用次数: 0

摘要

本文介绍了平衡优化器(EO),以提高可再生能源系统(RES)中单相(1- φ)五电平(5L) t型多电平逆变器(T-MLI)的性能。主要目标是优化开关角度以最小化总谐波失真(THD),从而提高输出电压质量。EO是一种受控制体积质量平衡模型启发的基于物理的优化算法。该算法具有鲁棒的探索和开发机制,具有较快的收敛速度和有效的开发与探索平衡等优点。本文提出了1- φ T-MLI,它使用较少的开关来产生五电平输出,并使用EO算法来提高输出电压。该系统在MATLAB/Simulink环境下进行了仿真,并通过DSP-TMS320F28379D硬件实现进一步验证了仿真结果,验证了EO对THD优化的有效性。从与各种逆变器拓扑和控制方法的比较中可以明显看出,所提出的系统很容易,并且利用最少的组件计数来产生五电平输出。产生的输出电压的THD为14.77%,优于差分进化(DE)和遗传算法(GA)等许多传统优化算法,以及最近引入的阿基米德优化算法(AOA)和晶体结构算法(crystal)等几种算法。结果表明,该系统在提高逆变器系统性能方面具有潜力,为RES集成提供了一种经济高效的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance enhancement of a multilevel inverter in renewable energy systems using equilibrium optimizer
This paper introduces the Equilibrium Optimizer (EO) to enhance the performance of a single phase (1-ϕ) five-level (5L) T-type multilevel inverter (T-MLI) in renewable energy systems (RES). The primary objective is to optimize the switching angles to minimize the total harmonic distortion (THD), thereby improving the output voltage quality. EO is a physics-based optimization algorithm inspired by control volume mass balance models. The algorithm has robust exploration and exploitation mechanisms leading to high performance with fast convergence speed and effective balancing of exploitation and exploration. A 1-ϕ T-MLI has been presented in this paper, which uses fewer switches to generate a five-level output, and the EO algorithm has been used to improve the output voltage. This system is simulated in a MATLAB/Simulink environment, the results of which are further validated through hardware implementation using DSP-TMS320F28379D and confirm the effectiveness of EO for optimizing the THD. It is evident from the comparison with various inverter topologies and control methods that the presented system is easy and utilizes the least component count to generate a five-level output. The generated output voltage has a THD of 14.77 % and outperformed many conventional optimization algorithms like differential evolution (DE) and genetic algorithm (GA), as well as several recently introduced algorithms like Archimedes optimization algorithm (AOA) and crystal structure algorithm (CryStAl). The result highlights the potential of the proposed system in advancing inverter system performance, offering a cost-effective and efficient solution for RES integration.
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来源期刊
Electric Power Systems Research
Electric Power Systems Research 工程技术-工程:电子与电气
CiteScore
7.50
自引率
17.90%
发文量
963
审稿时长
3.8 months
期刊介绍: Electric Power Systems Research is an international medium for the publication of original papers concerned with the generation, transmission, distribution and utilization of electrical energy. The journal aims at presenting important results of work in this field, whether in the form of applied research, development of new procedures or components, orginal application of existing knowledge or new designapproaches. The scope of Electric Power Systems Research is broad, encompassing all aspects of electric power systems. The following list of topics is not intended to be exhaustive, but rather to indicate topics that fall within the journal purview. • Generation techniques ranging from advances in conventional electromechanical methods, through nuclear power generation, to renewable energy generation. • Transmission, spanning the broad area from UHV (ac and dc) to network operation and protection, line routing and design. • Substation work: equipment design, protection and control systems. • Distribution techniques, equipment development, and smart grids. • The utilization area from energy efficiency to distributed load levelling techniques. • Systems studies including control techniques, planning, optimization methods, stability, security assessment and insulation coordination.
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