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2023 | OriginalPaper | Chapter

Computational and Experimental Investigation of Flow and Convective Heat Transfer Along Rough Surfaces

Authors : C. Özman, T. Saner, F. Gül, M. Diederich, A. C. Benim, U. Janoske

Published in: Frontiers in Industrial and Applied Mathematics

Publisher: Springer Nature Singapore

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Abstract

The chapter delves into the intricacies of forced convection along rough surfaces, a topic of increasing importance in various engineering fields. It begins by discussing the significance of additive manufacturing in producing compact and lightweight heat exchangers, crucial in industries like aviation. The authors then explore the two main categories of roughness: regular and irregular, and the challenges they pose in modeling turbulent flows. The chapter highlights the use of various computational methods, including RANS, DES, and LES, to simulate these complex flows. Additionally, it presents a detailed experimental setup for studying convective heat transfer over arbitrarily rough surfaces generated by selective laser sintering (SLS) printing. The chapter also includes a thorough analysis of surface reconstruction and mathematical modeling, employing tools like ANSYS Fluent and considering future work with Lattice Boltzmann Methods. The unique aspect of this chapter lies in its balanced approach, combining both theoretical and practical insights to advance the understanding of heat transfer in rough surfaces, which is essential for improving the efficiency and design of heat exchangers in various applications.

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Metadata
Title
Computational and Experimental Investigation of Flow and Convective Heat Transfer Along Rough Surfaces
Authors
C. Özman
T. Saner
F. Gül
M. Diederich
A. C. Benim
U. Janoske
Copyright Year
2023
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-19-7272-0_1

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