Implementation of the Fuzzy Logic Controlled 31-Level Diode Switched Multilevel Inverter with Optimal Components for Solar PV-Fed System

IF 1.9 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Paneti Anjaneya Vara Prasad, C. Dhanamjayulu
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Abstract

This work presents a novel architecture for the 31-level asymmetrical DC voltage source configured diode switched multilevel inverter, which has a single phase and fewer components. Using asymmetric DC sources and an H-bridge, the proposed topology generates a maximum output voltage of 31 levels. This 31-level topology is suitable for both renewable energy source conversion (RES) and electric vehicle (EV) applications. This topology requires fewer total components, lower cost, and smaller size. Along with the numerous benefits of MLIs, reliability issues are critical due to the larger number of devices required to minimize THD. Several characteristics, such as total standing voltage (TSV), reliability, cost function (CF), efficiency, and overall power losses, are investigated for the developed 31-level MLIs. The TSV and CF of the proposed MLI are critical factors in demonstrating that the proposed topology is cost-effective when compared to other recent topologies. Many parameters are thoroughly compared and tabulated, as well as represented graphically. The suggested MLI has lower TSV and component demand. Total harmonic distortion complies with IEEE specifications. The reliability aspects were also calculated and validated. The proposed MLI is controlled by a fuzzy logis controller (FLC) to achieve efficient results. The topology is simulated in MATLAB/Simulink software under a variety of conditions and dynamic load changes, and a prototype with a dSPACE controller is also implemented.

Abstract Image

为太阳能光伏发电系统实现具有最佳组件的模糊逻辑控制 31 级二极管开关多电平逆变器
本研究提出了一种新颖的 31 电平非对称直流电压源配置二极管开关多电平逆变器结构,它只有一个相位,元件数量较少。利用非对称直流电压源和 H 桥,所提出的拓扑结构可产生 31 电平的最大输出电压。这种 31 电平拓扑适用于可再生能源转换 (RES) 和电动汽车 (EV) 应用。这种拓扑结构所需的元件更少、成本更低、体积更小。除了 MLI 的众多优点外,可靠性问题也至关重要,因为需要更多的器件来最大限度地降低总谐波失真(THD)。我们对所开发的 31 级多级互联器的总驻留电压 (TSV)、可靠性、成本函数 (CF)、效率和总功率损耗等多项特性进行了研究。与其他最新拓扑结构相比,拟议 MLI 的 TSV 和 CF 是证明拟议拓扑结构具有成本效益的关键因素。对许多参数进行了全面比较,并制成表格和图表。建议的 MLI 具有较低的 TSV 和元件需求。总谐波失真符合 IEEE 规范。可靠性方面也进行了计算和验证。建议的 MLI 由模糊逻辑控制器 (FLC) 控制,以实现高效的结果。拓扑结构在 MATLAB/Simulink 软件中对各种条件和动态负载变化进行了仿真,并使用 dSPACE 控制器实现了原型。
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来源期刊
International Transactions on Electrical Energy Systems
International Transactions on Electrical Energy Systems ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
6.70
自引率
8.70%
发文量
342
期刊介绍: International Transactions on Electrical Energy Systems publishes original research results on key advances in the generation, transmission, and distribution of electrical energy systems. Of particular interest are submissions concerning the modeling, analysis, optimization and control of advanced electric power systems. Manuscripts on topics of economics, finance, policies, insulation materials, low-voltage power electronics, plasmas, and magnetics will generally not be considered for review.
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