Performance investigation of modular multilevel inverter topologies for photovoltaic applications with minimal switches

E. Parimalasundar, N. Kumar, P. Geetha, K. Suresh
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引用次数: 14

Abstract

Introduction. In recent years, a growing variety of technical applications have necessitated the employment of more powerful equipment. Power electronics and megawatt power levels are required in far too many medium voltage motor drives and utility applications. It is challenging to incorporate a medium voltage grid with only one power semiconductor that has been extensively modified. As a result, in high power and medium voltage settings, multiple power converter structure has been offered as a solution. A multilevel converter has high power ratings while also allowing for the utilization of renewable energy sources. Renewable energy sources such as photovoltaic, wind, and fuel cells may be readily connected to a multilevel inverter topology for enhanced outcomes. The novelty of the proposed work consists of a novel modular inverter structure for solar applications that uses fewer switches. Purpose. The proposed architecture is to decrease the number of switches and Total Harmonic Distortions. There is no need for passive filters, and the proposed design enhances power quality by creating distortion-free sinusoidal output voltage as the level count grows while also lowering power losses. Methods. The proposed topology is implemented with MATLAB / Simulink, using gating pulses and various pulse width modulation methodologies. Moreover, the proposed model also has been validated and compared to the hardware system. Results. Total harmonic distortion, number of power switches, output voltage and number of DC sources are compared with conventional topologies. Practical value. The proposed topology has been very supportive for implementing photovoltaic based multilevel inverter, which is connected to large demand in grid.
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最小开关光伏应用的模块化多电平逆变器拓扑性能研究
介绍。近年来,越来越多的技术应用要求使用更强大的设备。在太多的中压电机驱动和公用事业应用中需要电力电子和兆瓦级功率。将一个中压电网与一个已被广泛改进的功率半导体相结合是具有挑战性的。因此,在大功率和中压环境下,多功率变换器结构已成为一种解决方案。多电平转换器具有高额定功率,同时也允许利用可再生能源。可再生能源,如光伏、风能和燃料电池,可以很容易地连接到多电平逆变器拓扑,以增强结果。提出的工作的新颖性包括一种用于太阳能应用的新型模块化逆变器结构,该结构使用更少的开关。目的。所提出的结构是为了减少开关的数量和总谐波畸变。不需要无源滤波器,并且随着电平计数的增加,所提出的设计通过创建无失真的正弦输出电压来提高电能质量,同时降低功率损耗。方法。所提出的拓扑是用MATLAB / Simulink实现的,使用门控脉冲和各种脉宽调制方法。此外,所提出的模型也经过了验证,并与硬件系统进行了对比。结果。将总谐波失真、电源开关数量、输出电压和直流电源数量与传统拓扑结构进行了比较。实用价值。所提出的拓扑结构对基于光伏的多电平逆变器的实现具有很大的支持作用。
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