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Voltage-Based Distributed Optimal Control for Generation Cost Minimization and Bounded Bus Voltage Regulation in DC Microgrids

机译:基于电压的分布式最佳控制,用于DC微电网中的产生成本最小化和有界母线电压调节

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摘要

In conventional DC microgrid control schemes, optimization and real-time control are usually performed at different time scales. It is hard for such control schemes to achieve real-time optimization. Even a small disturbance can result in deviations of bus voltages and output currents from their optimal operating points. In addition, most real-time controllers cannot guarantee the satisfaction of pre-defined constraints on individual bus voltages due to the disconnection between steady-state optimization and real-time control. In this paper, a distributed optimal control scheme is presented for DC microgrid. The objectives are to simultaneously realize generation cost minimization and individual bus voltage regulation. First, the optimal control problem is formulated, based on which a necessary and sufficient optimality condition is derived that characterizes the optimal operating points. The distributed optimal controller is then proposed to dynamically drive the system to operate at the optimality condition. Convergence to the optimal operating points that minimizes generation cost under constraints is guaranteed through rigorous Lyapunov synthesis. Each individual bus voltage can also be maintained within bounds in both transient- and steady-state. The performance of the proposed controller is validated through simulations based on a switch-level microgrid model.
机译:在传统的DC微电网中,优化和实时控制通常在不同的时间尺度上执行。这种控制方案很难实现实时优化。即使是小的干扰也可能导致总线电压和输出电流的偏差从它们的最佳操作点导致偏差。此外,由于稳态优化和实时控制之间断开连接,大多数实时控制器无法保证对单个总线电压上的预定限制的满意度。本文提出了一种分布式最优控制方案,用于DC MicroGrid。目的是同时实现生成成本最小化和单独的总线电压调节。首先,基于该表征最佳操作点的必要和足够的最优性条件,制定了最佳控制问题。然后提出分布式最优控制器以动态驱动系统以在最优条件下操作。通过严格的Lyapunov合成保证了对限制下产生成本最小化的最佳操作点的收敛性。每个单独的总线电压也可以在瞬态和稳态的界限内保持。通过基于交换机级微电网模型的仿真验证了所提出的控制器的性能。

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