一种用于太阳能光伏发电的开关数减少的单相多电平逆变器

Ali Bughneda, Mohamed Salem, D. Ishak, Salah Alatai, M. Kamarol, Khlid Ben Hamad
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引用次数: 1

摘要

发展中国家面临的持续能源问题可以通过投资可再生能源和技术来解决,因为这些可再生能源,如燃料电池、光伏能源、风能和生物质能,可以提供克服这些国家能源短缺所需的能源。mli通常用于大功率高/中压应用,因为它们被认为是功率转换的高级拓扑结构。目前的研究重点是设计“简化开关MLI (RS MLI)拓扑”,以便在不使用大量开关的情况下产生高质量的输出。由于各种原因,例如降低成本、优化尺寸、减小体积、最小化损失和高效率,这些RS MLI目前是新兴的技术。本研究提出一种具有较少开关数的多电平逆变器(MLI)结构,用于光伏应用。所提出的逆变器架构包括一个作为极性发生器的h桥单元和一个由开关和二极管组成的独立电压源的电平产生单元。它通过DC-DC转换器将所提出的逆变器与光伏阵列相结合。升压变换器将利用MPPT (P&O)技术将太阳能光伏系统的输出电压提高到最大值。利用MATLAB/Simulink对五电平、七电平和九电平结构的逆变器进行了设计和测试。给出了选定的结果来验证5、7和9级mli的有效性。结果表明,该系统的效率达到了96%。
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A Single-Phase Multilevel Inverter with Reduced Switch Count for Solar PV Application
The persistent energy problems facing developing nations can be addressed by investing in renewable energy sources and technologies as these RES, such as fuel cell, PV energy, wind energy, and biomass energy can provide the needed energy to overcome energy shortages in such nations. MLIs are commonly used for high power high/medium voltage applications as they are considered an advanced topology for power conversion. Studies are currently focusing on the design of “reduced switch MLI (RS MLI) topologies” to facilitate the production of high-quality output without using numerous numbers of switches. These RS MLI are currently emerging techniques for various reasons, such as cost reduction, optimal sizing, reduced volume, minimized losses, and high efficiency. This study presents the design and development of a Multilevel Inverter (MLI) structure with fewer switch count for PV application. The proposed inverter architecture comprises of an H-bridge unit that acts as the polarity generator and the level generating unit comprising independent voltage sources with switches and diodes. It combines the proposed inverter with a PV array through a DC-DC converter. The boost converter will improve the output voltage of the solar photovoltaic system to its maximum value using MPPT (P&O). The proposed inverter is designed and tested for structures of five, seven, and nine levels by using MATLAB/Simulink. Selected results are presented to verify the validation of the 5, 7, and 9 levels MLIs. As a result, the proposed system successfully managed to achieve 96 % efficiency.
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