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2026 Morsy Network Topology Transition Planning

Basel Morsy, Jochen Stiasny

2026enpower systemsnetwork topologycongestion managementoptimal controlmodel predictive controlAC power flow

Abstract

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Network topology reconfiguration (NTR) can reduce power system operating costs by co-optimizing generation dispatch and substation switching, but the reported savings describe a target operating point rather than a way to reach it. Reaching this operating point requires a sequence of intermediate operating points, each satisfying the AC power flow equations and thermal limits; because each topology admits its own feasible dispatch region, a naive transition that switches or redispatches first can drive intermediate flows past their thermal limits. Existing methods leave this gap open: snapshot NTR identifies a target but not a route. We formulate the Optimal Transition Planning (OTP) problem, co-optimizing the switching sequence and dispatch trajectory subject to AC feasibility at every intermediate point. We solve this problem with a receding-horizon framework: a DC planner proposes a trajectory that is certified against an AC feasibility filter, and infeasible topologies are excluded using reusable combinatorial cuts. Case studies on congested PGLib-OPF systems up to 1354-bus show that the method produces AC-feasible transitions that reduce operating cost by up to 18.4% compared to the no-switching ACOPF solution on commodity hardware.

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Cite This Work

@article{a245e391-17c2-42c9-b124-6eccae69540e,
  title={2026 Morsy Network Topology Transition Planning},
  author={Basel Morsy and Jochen Stiasny},
  year={2026},
  language={en}
}
TY  - JOUR
TI  - 2026 Morsy Network Topology Transition Planning
AU  - Basel Morsy
AU  - Jochen Stiasny
PY  - 2026
LA  - en
ER  -

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