Department of Electrical and Electronics Engineering, Koneru Lakshmaiah Education Foundation, Guntur, India.
Department of Electrical and Electronics Engineering, Joginpally B R Engineering College, Hyderabad, India.
PLoS One. 2024 May 22;19(5):e0301522. doi: 10.1371/journal.pone.0301522. eCollection 2024.
The design of a power electronic interface for high voltage difference DC buses is a key aspect in DC microgrid applications. A multi-port non isolated interleaved high-voltage gain bidirectional converter, which facilitates bidirectional power transfer and islanded operation in a DC microgrid, is presented in this paper. The forward high-voltage transfer ratio is achieved using a voltage multiplier circuit, and the high-gain step-down power conversion is performed using a resonant power module. A novel power transfer selection algorithm is proposed to control power flow among the interfaces of the RES, ESS, and DC grid converters, which utilizes the net power difference as the basis for switching the converter. The proposed converter is simulated for a 24 V PV source, 12 V battery, and 400 V DC grid interface using MATLAB/SIMULINK. A 200 W hardware prototype is implemented. The simulation results for voltages, currents, and power flow among RES, ESS, and microgrid DC bus proved an excellent voltage regulation, efficient power conversion, and a feasible duty cycle range with high voltage gain. These observations are validated through equivalent experimental results. A comparison is made regarding achieved gain, component sizing, achievable power transfer modes, efficiency, and control complexity with existing converters for DC microgrid applications. The presented topology proved to be a better interface with multiple-mode support with high efficiency.
用于高压直流母线的电力电子接口设计是直流微电网应用中的一个关键方面。本文提出了一种多端口非隔离交错式高压增益双向转换器,可在直流微电网中实现双向功率传输和孤岛运行。正向高压传输比通过电压倍增器电路实现,而高增益降压功率转换则通过谐振功率模块实现。提出了一种新颖的功率传输选择算法,用于控制 RES、ESS 和直流电网转换器接口之间的功率流,该算法利用净功率差作为切换转换器的基础。使用 MATLAB/SIMULINK 对具有 24 V PV 源、12 V 电池和 400 V 直流电网接口的提议转换器进行了仿真。实现了一个 200 W 的硬件原型。RES、ESS 和微电网直流母线之间的电压、电流和功率流的仿真结果证明了出色的电压调节、高效的功率转换以及具有高电压增益的可行占空比范围。这些观察结果通过等效实验结果得到验证。对现有用于直流微电网应用的转换器的增益、组件尺寸、可实现的功率传输模式、效率和控制复杂性进行了比较。所提出的拓扑结构证明是一种具有多模式支持的更好接口,具有高效率。