Skip to main content

Research Repository

Advanced Search

Modelling and Simulation of Effusion Cooling—A Review of Recent Progress

Xia, Hao; Chen, Xiaosheng; Ellis, Christopher D.

Modelling and Simulation of Effusion Cooling—A Review of Recent Progress Thumbnail


Authors

Hao Xia

Xiaosheng Chen

Dr CHRIS ELLIS Chris.Ellis1@nottingham.ac.uk
Assistant Professor in Aerospacepropulsion



Abstract

Effusion cooling is often regarded as one of the critical techniques to protect solid surfaces from exposure to extremely hot environments, such as inside a combustion chamber where temperature can well exceed the metal melting point. Designing such efficient cooling features relies on thorough understanding of the underlying flow physics for the given engineering scenarios, where physical testing may not be feasible or even possible. Inevitably, under these circumstances, modelling and numerical simulation become the primary predictive tools. This review aims to give a broad coverage of the numerical methods for effusion cooling, ranging from the empirical models (often based on first principles and conservation laws) for solving the Reynolds-Averaged Navier-Stokes (RANS) equations to higher-fidelity methods such as Large-Eddy Simulation (LES) and hybrid RANS-LES, including Detached-Eddy Simulation (DES). We also highlight the latest progress in machine learning-aided and data-driven RANS approaches, which have gained a lot of momentum recently. They, in turn, take advantage of the higher-fidelity eddy-resolving datasets performed by, for example, LES or DES. The main examples of this review are focused on the applications primarily related to internal flows of gas turbine engines.

Citation

Xia, H., Chen, X., & Ellis, C. D. (2024). Modelling and Simulation of Effusion Cooling—A Review of Recent Progress. Energies, 17(17), Article 4480. https://doi.org/10.3390/en17174480

Journal Article Type Article
Acceptance Date Sep 2, 2024
Online Publication Date Sep 6, 2024
Publication Date Sep 6, 2024
Deposit Date Sep 16, 2024
Publicly Available Date Sep 16, 2024
Journal Energies
Electronic ISSN 1996-1073
Publisher MDPI
Peer Reviewed Peer Reviewed
Volume 17
Issue 17
Article Number 4480
DOI https://doi.org/10.3390/en17174480
Public URL https://nottingham-repository.worktribe.com/output/39176178
Publisher URL https://www.mdpi.com/1996-1073/17/17/4480

Files





You might also like



Downloadable Citations