An asynchronous distributed voltage controller is derived from a partial primal-dual gradient algorithm, with convergence proven via operator splitting and tested on two distribution feeders.
Reverse and Forward Engineering of Local Voltage Control in Distribution Networks
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
The increasing penetration of renewable and distributed energy resources in distribution networks calls for real-time and distributed voltage control. In this paper we investigate local Volt/VAR control with a general class of control functions, and show that the power system dynamics with non-incremental local voltage control can be seen as distributed algorithm for solving a well-defined optimization problem (reverse engineering). The reverse engineering further reveals a fundamental limitation of the non-incremental voltage control: the convergence condition is restrictive and prevents better voltage regulation at equilibrium. This motivates us to design two incremental local voltage control schemes based on the subgradient and pseudo-gradient algorithms respectively for solving the same optimization problem (forward engineering). The new control schemes decouple the dynamical property from the equilibrium property, and have much less restrictive convergence conditions. This work presents another step towards developing a new foundation -- network dynamics as optimization algorithms -- for distributed realtime control and optimization of future power networks.
fields
eess.SY 1years
2019 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
-
Asynchronous Distributed Voltage Control in Active Distribution Networks
An asynchronous distributed voltage controller is derived from a partial primal-dual gradient algorithm, with convergence proven via operator splitting and tested on two distribution feeders.