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A new switching strategy for single stage boost inverter fed by solar PV system

机译:太阳能光伏系统单级升压逆变器的新型开关策略

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摘要

Solar photovoltaic (PV) system are attaining world wide popularity due to their clean generation mechanism and energy security. The dc voltage obtained from PV system is usually lower than the peak value of the required output voltage of inverter and varies in a wide range. A power transformer is required to step-up the output voltage or a dc-dc converter is required to boost the input dc voltage, in addition to the dc-ac inverter, which increase cost and circuit complexity. Z-source single stage inverters with bulk inductors and capacitors are used in some topologies, but the harmonic content in the output is relatively high. In this paper, a solar photovoltaic (PV) fed single stage boost inverter feeding a three phase induction motor is explained with mathematical expressions and computer simulations. A time independent pulse width modulation technique is adopted in this system, which generates symmetrical gate pulse pattern resulting in smooth output waveforms. The dc link inductor can be kept very low as the inductor current is maintained constant by this discrete switching control strategy. This system is simple, cost effective and can be used for stand-alone solar applications. Results obtained from this system confirm the effectiveness of new discrete switching strategy and prove its capability to perform real time.
机译:太阳能光伏(PV)系统由于其清洁的发电机制和能源安全性而在世界范围内得到普及。从光伏系统获得的直流电压通常低于逆变器所需输出电压的峰值,并且变化范围很大。除DC-AC逆变器外,还需要一个电源变压器来提高输出电压,或者需要一个DC-DC转换器来提高输入DC电压,这会增加成本和电路复杂性。在某些拓扑结构中使用具有大容量电感器和电容器的Z源单级逆变器,但输出中的谐波含量相对较高。在本文中,通过数学表达式和计算机仿真说明了为三相感应电动机供电的太阳能光伏(PV)供电的单级升压逆变器。该系统采用了与时间无关的脉冲宽度调制技术,该技术可生成对称的门脉冲图形,从而产生平滑的输出波形。通过这种分立的开关控制策略,由于电感器电流保持恒定,因此直流链路电感器可以保持非常低的状态。该系统简单,经济高效,可用于独立的太阳能应用。从该系统获得的结果证实了新的离散开关策略的有效性,并证明了其实时执行的能力。

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