English

Evaluating Power Flow Manifold from Local Data around a Single Operating Point via Geodesics

Systems and Control 2026-03-24 v1 Systems and Control

Abstract

The widespread adoption of renewable energy poses a challenge in maintaining a feasible operating point in highly variable scenarios. This paper demonstrates that, within a feasible region of a power system that meets practical stability requirements, the power flow equations define a smooth bijection between nodal voltage phasors (angle and magnitude) and nodal active/reactive power injections. Based on this theoretical foundation, this paper proposes a data-based power flow evaluation method that can imply the associated power flow manifold from a limited number of data points around a single operating point. Using techniques from differential geometry and analytic functions, we represent geodesic curves in the associated power flow manifold as analytic functions at the initial point. Then, a special algebraic structure of the power flow problem is revealed and applied to reduce the computation of all higher-order partial derivatives to that of the first-order ones. Integrating these techniques yields the proposed data-based evaluation method, suggesting that a small number of local measurements around a single operating point is sufficient to imply the entire associated power flow manifold. Numerical cases with arbitrary directional variations are tested, certifying the efficacy of the proposed method.

Keywords

Cite

@article{arxiv.2603.21514,
  title  = {Evaluating Power Flow Manifold from Local Data around a Single Operating Point via Geodesics},
  author = {Qirui Zheng and Dan Wu and Franz-Erich Wolter and Sijia Geng},
  journal= {arXiv preprint arXiv:2603.21514},
  year   = {2026}
}

Comments

10 pages,11 figures, submitted to IEEE Transactions on Power Systems

R2 v1 2026-07-01T11:32:38.332Z