Energy Space Modeling of Power Electronics in Local Area Power Networks

G. Vosters, W. Weaver
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Abstract

Power electronics are a core enabling technology for local area power networks and microgrids for renewable energy, telecom, data centers, and many other applications. Unfortunately, the modeling, simulation, and control of power electronics in these systems are complicated when using traditional converter models in conjunction with the network nodal equations. This work proposes a change of variables for the power electronic converter models from traditional voltage and currents to input conductance and stored energy. From this change of state, a universal point of load converter model can be utilized in the network nodal equations irrespective of the topology of the converter. The only impact the original converter topology has on the new model is the bounds on the control and state variables, and the mapping back to the switching or duty cycle controls. The proposed approach greatly simplifies the modeling of local area power networks and microgrids. This simpler model can be used to study stability and energy utilization and develop high-level control strategies that were not previously feasible.
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局域电网中电力电子的能量空间建模
电力电子是可再生能源、电信、数据中心和许多其他应用的局部电网和微电网的核心使能技术。不幸的是,当使用传统的变换器模型结合网络节点方程时,这些系统中的电力电子元件的建模、仿真和控制是复杂的。本文提出了将电力电子变换器模型的变量从传统的电压和电流转换为输入电导和存储能量。从这种状态变化出发,可以在网络节点方程中建立一个通用的负荷变流器点模型,而不考虑变流器的拓扑结构。原始转换器拓扑对新模型的唯一影响是控制和状态变量的边界,以及映射回开关或占空比控制。该方法大大简化了局部电网和微电网的建模。这个简单的模型可以用来研究稳定性和能量利用,并制定以前不可行的高级控制策略。
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