Day-ahead Coordination of Virtual Power Plants within Active Distribution Networks using Deterministic Bi-Level Optimization

📅 2026-09-15
📈 Citations: 0
Influential: 0
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🤖 AI Summary
本文提出一种确定性双层优化框架,通过保留完整的AC-OPF方程来协调虚拟电厂的运行,减少电力损失和电压偏差。
📝 Abstract
This paper proposes a deterministic bilevel optimization framework for the coordinated operation of Virtual Power Plants (VPPs) embedded in an active distribution network. The Distribution System Operator (DSO) acts as the upper-level leader, minimizing a weighted combination of expenditure, active losses and voltage deviation subject to nonlinear AC power flow constraints, while each VPP operates as a lower-level follower that maximizes its profit under the uniform price signal issued by the DSO. Unlike most existing formulations, which linearize the lower-level subproblem to obtain a Mixed-Integer Linear Program (MILP), the proposed model retains the full AC Optimal Power Flow (AC-OPF) equations, producing a bilevel Mixed-Integer Nonlinear Program (MINLP). The lower-level problem is replaced by its Karush-Kuhn-Tucker (KKT) optimality conditions and the Strong Duality Theorem, yielding a single-level Mathematical Program with Equilibrium Constraints (MPEC). Complementarity conditions are then linearized via the Fortuny-Amat big-M transformation. The framework is validated on the IEEE 33-bus feeder over a 24-hour horizon, with four distributed resources aggregated into a single VPP. Compared with individual dispatch against a regulated time-of-use tariff, aggregation reduces active losses by 10.5 %, the accumulated voltage deviation by 18.3 %, and the bus-hours below 0.95 p.u. from 132 to 29. These gains cost 0.31 % in social cost and 0.26 % in DSO expenditure, while the rent of the aggregator is preserved.
Problem

Research questions and friction points this paper is trying to address.

Virtual Power Plants
Active Distribution Networks
Bilevel Optimization
AC-OPF
MPEC
Innovation

Methods, ideas, or system contributions that make the work stand out.

bilevel optimization
AC-OPF
MPEC
KKT conditions
Fortuny-Amat big-M transformation
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Laura M. Barajas-Arguello
Graduate program in electrical engineering, Universidade Federal do Paraná, Curitiba, PR, Brazil
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Rafael A. Núñez-Rodríguez
Department of Mechatronic Engineering, Universidad Santo Tomás, Bucaramanga, SAN, Colombia
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Daniel Gebbran
Graduate program in electrical engineering, Universidade Federal do Paraná, Curitiba, PR, Brazil
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Clodomiro Unsihuay-Vila
Graduate program in electrical engineering, Universidade Federal do Paraná, Curitiba, PR, Brazil