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Reduced-Order Model and Stability Analysis of Low-Voltage DC Microgrid

机译:低压直流微电网的降阶模型和稳定性分析

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Depleting fossil fuels, increasing energy demand, and need for high-reliability power supply motivate the use of dc microgrids. This paper analyzes the stability of low-voltage dc microgrid systems. Sources are controlled using a droop-based decentralized controller. Various components of the system have been modeled. A linearized system model is derived using small-signal approximation. The stability of the system is analyzed by identifying the eigenvalues of the system matrix. The sufficiency condition for stable operation of the system is derived. It provides upper bound on droop constants and is useful during planning and designing of dc microgrids. Furthermore, the sensitivity of system poles to variation in cable resistance and inductance is identified. It is proved that the poles move further inside the negative real plane with a decrease in inductance or an increase in resistance. The method proposed in this paper is applicable to any interconnecting structure of sources and loads. The results obtained by analysis are verified by detailed simulation study. Root locus plots are included to confirm the movement of system poles. The viability of the model is confirmed by experimental results from a scaled-down laboratory prototype of a dc microgrid developed for the purpose.
机译:化石燃料的枯竭,能源需求的增加以及对高可靠性电源的需求促使直流微电网的使用。本文分析了低压直流微电网系统的稳定性。使用基于下垂的分散控制器控制源。系统的各个组件均已建模。使用小信号逼近推导出线性系统模型。通过识别系统矩阵的特征值来分析系统的稳定性。得出了系统稳定运行的充分条件。它提供了下垂常数的上限,在规划和设计直流微电网时很有用。此外,确定了系统极对电缆电阻和电感变化的敏感性。事实证明,随着电感的减小或电阻的增大,磁极在负实平面内进一步移动。本文提出的方法适用于源和负载的任何互连结构。分析获得的结果通过详细的仿真研究得到验证。包括根轨迹图以确认系统极点的运动。该模型的可行性通过为此目的而开发的直流微电网按比例缩小的实验室原型的实验结果得到了证实。

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