Journal of Mathematics in Industry (Jun 2023)

Parallel-in-time optimization of induction motors

  • Jens Hahne,
  • Björn Polenz,
  • Iryna Kulchytska-Ruchka,
  • Stephanie Friedhoff,
  • Stefan Ulbrich,
  • Sebastian Schöps

DOI
https://doi.org/10.1186/s13362-023-00134-5
Journal volume & issue
Vol. 13, no. 1
pp. 1 – 16

Abstract

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Abstract Parallel-in-time (PinT) methods were developed to accelerate time-domain solution of evolutionary problems using modern parallel computer architectures. In this paper we incorporate one of the efficient PinT approaches, in particular, the asynchronous truncated multigrid-reduction-in-time algorithm, into a bound constrained optimization procedure applied to an induction machine. Calculation of an optimal motor geometry with respect to its efficiency in the steady state is thus parallelized at each iteration of the optimization algorithm. As a result, a more efficient motor model is obtained about 11 times faster compared to optimization using the standard sequential time stepping.

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