Table of Contents
Fetching ...

Iterative McCormick Relaxation for Joint Impedance Control and Network Topology Optimization

Junseon Park, Hyeongon Park, Rahul K. Gupta

TL;DR

This work proposes an iterative correction of the McCormick relaxation scheme, which converts the bilinear constraints into a linear set of constraints along with the DC power flow equations, and presents a performance comparison of the iterative McCormick method against the non-linear, SOS2 piecewise linear approximation, and original McCormick relaxation.

Abstract

Power system operators are increasingly deploying Variable Impedance Devices (VIDs), e.g., Smart Wires, and Network Topology Optimization (NTO) schemes for mitigating operational challenges such as line and transformer congestion, and voltage violations. This work aims to optimize and coordinate the operation of distributed VIDs considering fixed and optimized topologies. This problem is inherently non-linear due to power flow equations as well as bilinear terms introduced due to variable line impedance of VIDs. Furthermore, the topology optimization scheme makes it a mixed integer nonlinear problem. To tackle this, we introduce using McCormick relaxation scheme, which converts the bilinear constraints into a linear set of constraints along with the DC power flow equations. We propose an iterative correction of the McCormick relaxation to enhance its accuracy. The proposed framework is validated on standard IEEE benchmark test systems, and we present a performance comparison of the iterative McCormick method against the non-linear, SOS2 piecewise linear approximation, and original McCormick relaxation.

Iterative McCormick Relaxation for Joint Impedance Control and Network Topology Optimization

TL;DR

This work proposes an iterative correction of the McCormick relaxation scheme, which converts the bilinear constraints into a linear set of constraints along with the DC power flow equations, and presents a performance comparison of the iterative McCormick method against the non-linear, SOS2 piecewise linear approximation, and original McCormick relaxation.

Abstract

Power system operators are increasingly deploying Variable Impedance Devices (VIDs), e.g., Smart Wires, and Network Topology Optimization (NTO) schemes for mitigating operational challenges such as line and transformer congestion, and voltage violations. This work aims to optimize and coordinate the operation of distributed VIDs considering fixed and optimized topologies. This problem is inherently non-linear due to power flow equations as well as bilinear terms introduced due to variable line impedance of VIDs. Furthermore, the topology optimization scheme makes it a mixed integer nonlinear problem. To tackle this, we introduce using McCormick relaxation scheme, which converts the bilinear constraints into a linear set of constraints along with the DC power flow equations. We propose an iterative correction of the McCormick relaxation to enhance its accuracy. The proposed framework is validated on standard IEEE benchmark test systems, and we present a performance comparison of the iterative McCormick method against the non-linear, SOS2 piecewise linear approximation, and original McCormick relaxation.
Paper Structure (21 sections, 16 equations, 3 figures, 3 tables, 1 algorithm)

This paper contains 21 sections, 16 equations, 3 figures, 3 tables, 1 algorithm.

Figures (3)

  • Figure 1: Generalized breaker-and-half model.
  • Figure 2: Performance comparison of objective function costs under different methods for Case300 using the nominal topology.
  • Figure 3: Performance comparison of objective function costs under different methods for Case300 using the optimal topology via NTO.