A Switched Z-Source and Switched Capacitor Multi-Level Inverter Integrated Low Voltage Renewable Source for Grid Connected Application

S. Sreenu, Dr. J. Upendar
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Abstract

Most of the renewable sources generate power at lower voltage levels in the range of 20-50V which cannot be utilized by the loads. Therefore, stacking multiple modules in series increases the voltage level or using conventional boost converter or QZSis helpful. However, due to series stacking and boost converter or QZS there is a great power loss and also have reliability issues.The QZS inverter has very less boosting gain in the range of 2times. Theconventional boost converter or QZSis replaced with SZSC for voltage boosting and inverter operation. The SZSC boosts the voltage 4-5 times to the input voltage level. For further mitigation of harmonics, the conventional 6-switch inverter is replaced with switched capacitor MLI. Multiple renewable sources are at the input which include PV array, battery unit and PMSG wind module. The battery unit is a support to the renewable sources PV array and wind module. The DC link voltage stability is achieved by the battery unit placed in parallel to the renewable sources. The renewable sources share power to the grid through the SZSC and switched capacitor MLI. For DC voltage stability a CV control is integrated to SZSC. And for synchronized power sharing to the grid, a grid voltage feedback synchronization control is included for the control of MLI. A low rating renewable system is modelled and integrated to grid using Simulink MATLAB software. A comparative analysis is carried out operating the system with QZS and SZSC. The performances of the SZSC and MLI are evaluated by the graphs generated by the simulation of the modelled system.
一种用于并网应用的集成低压可再生能源的开关式 Z 源和开关式电容器多电平逆变器
大多数可再生能源发电的电压较低,在 20-50V 之间,负载无法利用。因此,将多个模块串联堆叠可提高电压水平,或使用传统的升压转换器或 QZS 很有帮助。但是,由于串联堆叠和升压转换器或 QZS 会造成很大的功率损耗,而且还存在可靠性问题。传统的升压转换器或 QZS 被 SZSC 取代,用于升压和逆变操作。SZSC 可将电压提升至输入电压水平的 4-5 倍。为了进一步减少谐波,传统的 6 开关逆变器被开关电容器 MLI 所取代。输入端有多个可再生能源,包括光伏阵列、电池单元和 PMSG 风力模块。电池单元是可再生能源光伏阵列和风力模块的支撑。直流链路电压的稳定性通过与可再生能源并联的电池单元来实现。可再生能源通过 SZSC 和开关电容器 MLI 向电网供电。为实现直流电压稳定,在 SZSC 中集成了 CV 控制。为了实现与电网的同步功率共享,还在 MLI 控制中加入了电网电压反馈同步控制。使用 Simulink MATLAB 软件对低额定功率的可再生能源系统进行建模,并将其并入电网。通过 QZS 和 SZSC 对系统运行进行了比较分析。SZSC 和 MLI 的性能通过模拟系统生成的图表进行评估。
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CiteScore
1.70
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