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Accelerated Coupled Mode Model for Fiber Laser Amplifiers as an Averaged Dynamical System

Optics 2025-11-27 v1 Mathematical Physics math.MP

Abstract

We apply a known theorem for simplifying dynamical systems with bounded error to a specific optical fiber waveguide problem, supplementing the physical intuition and heuristics used in the optics community with proper mathematical justification. Using techniques from averaging theory of dynamical systems, a reliable accelerated model based on the coupled mode theory (CMT) approach for a common fiber laser amplifier application is derived. Computational testing reveals that this accelerated model achieves an 4000{\sim}4000x increase in computational speed compared to the CMT model while preserving a high accuracy in key figures-of-merit such as output power and amplification efficiency. Further, we argue that by adopting our recommended approximations within the reduced model framework enables the model to be applied a wider set of amplifier types and configurations than can the current (comparable) reduced models found in the literature.

Keywords

Cite

@article{arxiv.2511.20981,
  title  = {Accelerated Coupled Mode Model for Fiber Laser Amplifiers as an Averaged Dynamical System},
  author = {Rebecca Bryant and Jacob Grosek and Jay Gopalakrishnan},
  journal= {arXiv preprint arXiv:2511.20981},
  year   = {2025}
}

Comments

43 pages, 17 figures

R2 v1 2026-07-01T07:55:25.020Z