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Distributed Control to Ensure Proportional Load Sharing and Improve Voltage Regulation in Low-Voltage DC Microgrids

机译:分布式控制可确保按比例分配负载并改善低压直流微电网的电压调节

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摘要

DC microgrids are gaining popularity due to high efficiency, high reliability, and easy interconnection of renewable sources as compared to the ac system. Control objectives of dc microgrid are: 1) to ensure equal load sharing (in per unit) among sources; and 2) to maintain low-voltage regulation of the system. Conventional droop controllers are not effective in achieving both the aforementioned objectives simultaneously. Reasons for this are identified to be the error in nominal voltages and load distribution. Though centralized controller achieves these objectives, it requires high-speed communication and offers less reliability due to single point of failure. To address these limitations, this paper proposes a new decentralized controller for dc microgrid. Key advantages are high reliability, low-voltage regulation, and equal load sharing, utilizing low-bandwidth communication. To evaluate the dynamic performance, mathematical model of the scheme is derived. Stability of the system is evaluated by eigenvalue analysis. The effectiveness of the scheme is verified through a detailed simulation study. To confirm the viability of the scheme, experimental studies are carried out on a laboratory prototype developed for this purpose. Controller area network protocol is utilized to achieve communication between the sources.
机译:与交流系统相比,直流微电网因其高效率,高可靠性以及可再生资源的易于互连而越来越受欢迎。直流微电网的控制目标是:1)确保源之间均等的负载分配(单位); 2)维持系统的低压调节。传统的下垂控制器不能有效地同时实现上述两个目标。造成这种情况的原因是标称电压和负载分配中的误差。尽管集中式控制器可以实现这些目标,但是由于单点故障,它需要高速通信并且可靠性较低。为了解决这些限制,本文提出了一种用于直流微电网的新型分散控制器。主要优势是利用低带宽通信的高可靠性,低电压调节和相等的负载分担。为了评估动态性能,推导了该方案的数学模型。通过特征值分析来评估系统的稳定性。通过详细的仿真研究验证了该方案的有效性。为了确认该方案的可行性,在为此目的开发的实验室原型上进行了实验研究。控制器局域网协议用于实现源之间的通信。

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