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Decentralized Dynamic Optimization for Power Network Voltage Control

机译:电网电压控制的分散动态优化

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Voltage control in power distribution networks has been greatly challenged by the increasing penetration of volatile and intermittent devices. These devices can also provide limited reactive power resources that can be used to regulate the network-wide voltage. A decentralized voltage control strategy can be designed by minimizing a quadratic voltage mismatch error objective using gradient-projection (GP) updates. Coupled with the power network flow, the local voltage can provide the instantaneous gradient information. This paper aims to analyze the performance of this decentralized GP-based voltage control design under two dynamic scenarios: First, the nodes perform the decentralized update in an asynchronous fashion. Second, the network operating condition is time varying. For the asynchronous voltage control, we improve the existing convergence condition by recognizing that the voltage-based gradient is always up-to-date. By modeling the network dynamics using an autoregressive process and considering time-varying resource constraints, we provide an error bound in tracking the instantaneous optimal solution to the quadratic error objective. This result can be extended to more general constrained dynamic optimization problems with smooth strongly convex objective functions under stochastic processes that have bounded iterative changes. Extensive numerical tests have been performed to demonstrate and validate our analytical results for realistic power networks.
机译:易失性和间歇性设备的日益普及极大地挑战了配电网络中的电压控制。这些设备还可以提供有限的无功功率资源,可用于调节全网电压。可以通过使用梯度投影(GP)更新最小化二次电压失配误差目标来设计分散式电压控制策略。结合电网流量,本地电压可以提供瞬时梯度信息。本文旨在分析这种基于分散GP的电压控制设计在两种动态情况下的性能:首先,节点以异步方式执行分散更新。其次,网络运行条件是时变的。对于异步电压控制,我们认识到基于电压的梯度始终是最新的,从而改善了现有的收敛条件。通过使用自回归过程对网络动力学进行建模并考虑时变资源限制,我们在跟踪二次误差目标的瞬时最优解时提供了误差范围。该结果可以扩展到具有受限迭代变化的随机过程下具有平滑强凸目标函数的更一般的约束动态优化问题。已经进行了广泛的数值测试,以证明和验证我们对现实电力网络的分析结果。

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