Active subspaces for the preliminary fluid dynamic design of unconventional turbomachinery

Conference Paper (2016)
Author(s)

J.S. Bahamonde (TU Delft - Flight Performance and Propulsion)

Matteo Pini (TU Delft - Flight Performance and Propulsion)

Piero Colonna di Paliano (TU Delft - Flight Performance and Propulsion)

Research Group
Flight Performance and Propulsion
Copyright
© 2016 Juan S. Bahamonde, M. Pini, Piero Colonna
More Info
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Publication Year
2016
Language
English
Copyright
© 2016 Juan S. Bahamonde, M. Pini, Piero Colonna
Research Group
Flight Performance and Propulsion
Volume number
4
Pages (from-to)
8572-8586
ISBN (electronic)
9786188284401
Reuse Rights

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Abstract

The fluid dynamic preliminary design of unconventional turbomachinery is customary done with meanline design procedures coupled with gradient-free optimizers. This method features various drawbacks, since it might become computationally expensive, and it does not provide design insights or guidelines to the designer. This work proposes a strategy to abate this disadvantages, namely, the construction of a reduced-order model by means of active sub-spaces, and the use of the surrogate combined with a gradient-based optimizer. The case study is the design optimization of a Organic Rankine Cycle radial inflow turbine. The results show that active subspaces exist for this application, and that it is possible to construct a surrogate with an approximate error of ±1% for the total-to-static efficiency. Additionally, the optimization using the surrogate leads to accurate results and a computational cost at least four times faster. Furthermore, the results reveal that the models for unconventional turbomachinery feature multiple regions containing constrained optima. Active subspace methods thus prove to be a promising alternative for optimization of unconventional turbomachinery.

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