Improving Stability and Economic Operation in Transmission Systems through Volt/VAR Optimization
Shuaicheng Tong, Pascal Van Hentenryck
Abstract
Transmission system operators often reconcile market-cleared DC dispatches with AC physics through power-flow solves (ACPF), yet the resulting setpoints can still violate voltage (Volt) and reactive-power (VAR) limits. Maintaining secure voltage profiles and adequate VAR support therefore requires fast corrective decisions that are implementable in operation. This paper presents a novel homotopy-based continuation method for discrete-control Volt/VAR Optimization (VVO) that coordinates switchable devices, such as on-load tap-changing transformers (OLTCs) and capacitor banks (CBs). Experiments on IEEE, PEGASE, and RTE systems show that the proposed VVO produces AC-feasible setpoints within practical runtime, while reducing voltage deviation, VAR dispatch, and generation cost. VVO also achieves comparable performance using ACPF-adjusted DC dispatches as inputs relative to AC-feasible dispatches, indicating that it can be integrated naturally into existing transmission dispatch practices to strengthen grid operation.
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