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February 28, 2026Energies0 citationsOpen Access

Optimal Distribution Network Reconfiguration with Renewable Generation Using a Hybrid Quantum–Classical QAOA for Power Loss Minimization

JBJosé Luis BosmedianoATAlexander Águila TéllezRMRogelio Alfredo Orizondo Martínez

Key Points

  • The research aims to optimize distribution network reconfiguration by reducing power losses through a hybrid quantum-classical framework.
  • Developed a hybrid quantum-classical approach combining QAOA with AC power-flow validation.
  • Evaluated all switching configurations of the IEEE 33-bus system with high distributed generation.
  • Compressed loss landscape into a QUBO representation for optimization via Ising Hamiltonian.
  • Validated configurations through AC feasibility analysis.
  • Achieved a reduction in active power losses from 282.938 kW to 95.773 kW, a decrease of 66.15%.
  • Improved performance beyond DG-only operation by 20.62%.
  • Increased minimum bus voltage from 0.8828 p.u. to 0.9531 p.u., complying with IEEE 1547 limits.
  • Only required two switching operations for optimal configuration.

Abstract

This paper proposes a hybrid quantum–classical framework for distribution network reconfiguration (DNR) under high distributed generation (DG) penetration, integrating nonlinear AC power-flow validation with the Quantum Approximate Optimization Algorithm (QAOA). Unlike prior quantum-assisted studies that rely on simplified DC or surrogate models, the proposed approach embeds AC-feasible loss evaluation directly within the combinatorial optimization loop. The methodology first evaluates all admissible switching configurations of the IEEE 33-bus system under DG integration using full AC power flow. The resulting loss landscape is compressed into a Quadratic Unconstrained Binary Optimization (QUBO) representation and mapped to an Ising Hamiltonian, enabling variational optimization via QAOA. The dominant configuration suggested by the quantum layer is subsequently validated through AC feasibility analysis. Simulation results show that the coordinated DG + QAOA strategy reduces active power losses from 282.938 kW (baseline) to 95.773 kW, corresponding to a 66.15% reduction relative to the original topology and an additional 20.62% improvement beyond DG-only operation. The minimum bus voltage increases from 0.8828 p.u. to 0.9531 p.u., satisfying IEEE 1547 limits, while requiring only two switching operations. These results demonstrate that embedding AC-consistent validation within a hybrid QAOA framework enhances physical realism, scalability, and solution quality for combinatorial optimization in active distribution networks.

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Cite This Study

Bosmediano et al. (2026) studied this question.

synapsesocial.com/papers/69a2877b0a974eb0d3c033a0https://doi.org/10.3390/en19051148
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