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Design Method of Dual Active Bridge Converters for Photovoltaic Systems with High Voltage Gain

机译:具有高压增益的光伏系统双极电桥转换器的设计方法

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摘要

In this paper, a design method for a photovoltaic system based on a dual active bridge converter and a photovoltaic module is proposed. The method is supported by analytical results and theoretical predictions, which are confirmed with circuital simulations. The analytical development, the theoretical predictions, and the validation through circuital simulations, are the main contributions of the paper. The dual active bridge converter is selected due to its high efficiency, high input and output voltages range, and high voltage-conversion ratio, which enables the interface of low-voltage photovoltaic modules with a high-voltage dc bus, such as the input of a micro-inverter. To propose the design method, the circuital analysis of the dual active bridge converter is performed to describe the general waveforms derived from the circuit behavior. Then, the analysis of the dual active bridge converter, interacting with a photovoltaic module driven by a maximum power point tracking algorithm, is used to establish the mathematical expressions for the leakage inductor current, the photovoltaic current, and the range of operation for the phase shift. The design method also provides analytical equations for both the high-frequency transformer equivalent leakage inductor and the photovoltaic side capacitor. The design method is validated through detailed circuital simulations of the whole photovoltaic system, which confirm that the maximum power of the photovoltaic module can be extracted with a correct design of the dual active bridge converter. Also, the theoretical restrictions of the photovoltaic system, such as the photovoltaic voltage and power ripples, are fulfilled with errors lower than 2% with respect to the circuital simulations. Finally, the simulation results also demonstrate that the maximum power point for different environmental conditions is reached, optimizing the phase shift factor with a maximum power point tracking algorithm.
机译:在本文中,用于基于双有源桥转换器和光伏模块的光伏系统的设计方法提出。该方法由分析结果和理论预测,这被确认与circuital仿真支持。该分析的发展,理论预测,并通过模拟circuital验证,是本文的主要贡献。双有源桥转换器,由于选择其高效率,高输入和输出电压范围内,并且高电压转换比,这使得低压光伏模块的接口与高压DC总线,诸如输入微逆变器。提出的设计方法中,执行以描述从电路行为导出的大致波形的双重活性桥转换器的circuital分析。然后,将双有源桥转换器的分析中,与由最大功率点跟踪算法驱动的光伏模块进行交互,用于建立用于泄漏电感器电流,所述光伏电流,并操作的该阶段的范围的数学表达式转移。的设计方法还提供了一种用于高频变压器等效泄漏电感器和所述光伏侧电容器两者的分析方程。该设计方法是通过整个光伏系统,这证实,所述光伏模块的最大功率可以与双有源电桥转换器的正确设计中提取的详细circuital模拟验证。此外,所述光伏系统的理论的限制,诸如光伏电压和功率波动,都满足具有误差低于2%相对于所述circuital模拟。最后,模拟结果还表明,在达到对不同环境条件下的最大功率点,最大功率点跟踪算法优化相移的因素。

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