English

Numerical optimal control for delay differential equations: A simultaneous approach based on linearization of the delayed state

Optimization and Control 2024-10-22 v2 Computational Engineering, Finance, and Science Systems and Control Systems and Control

Abstract

Time delays are ubiquitous in industry, and they must be accounted for when designing control strategies. However, numerical optimal control (NOC) of delay differential equations (DDEs) is challenging because it requires specialized discretization methods and the time delays may depend on the manipulated inputs or state variables. Therefore, in this work, we propose to linearize the delayed states around the current time. This results in a set of implicit differential equations, and we compare the steady states and the corresponding stability criteria of the DDEs and the approximate system. Furthermore, we propose a simultaneous approach for NOC of DDEs based on the linearization, and we discretize the approximate system using Euler's implicit method. Finally, we present a numerical example involving a molten salt nuclear fission reactor.

Keywords

Cite

@article{arxiv.2410.02687,
  title  = {Numerical optimal control for delay differential equations: A simultaneous approach based on linearization of the delayed state},
  author = {Tobias K. S. Ritschel and Søren Stange},
  journal= {arXiv preprint arXiv:2410.02687},
  year   = {2024}
}

Comments

6 pages, 4 figures, submitted to a conference

R2 v1 2026-06-28T19:07:21.274Z