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DOE OSTI · 1960123

Comparison of Shape Optimization Methods for Heat Exchanger Fins Using Computational Fluid Dynamics

Abstract

Inverse design techniques are one way to leverage advances in 3D printing, artificial intelligence, and computational resources to achieve increased performance of heat exchangers. Two optimization techniques (genetic algorithm and particle swarm) and three geometry representations (binary level set, composite Bézier, and free form deformation) are used to increase the heat transfer and reduce the pressure drop of a heat exchanger fin. After running 210,810 OpenFOAM simulations, results indicate that a significant performance increase of the fin can be realized in less than 48 hrs, allowing for such a process to be integrated in traditional design processes. The best design increased the performance of the objective function, compared to the baseline rectangular geometry by 75%. A custom distributed infrastructure was built, allowing for all methods to reach 95% of the final objective values in a little over 4 hrs, handling 1674 OpenFoam simulations per hour.

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BibTeXRIS

Weber, Justin, Huckaby, E. David, Straub, Douglas. 2023-03-06. Comparison of Shape Optimization Methods for Heat Exchanger Fins Using Computational Fluid Dynamics. https://doi.org/10.1016/j.ijheatmasstransfer.2023.124003

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