Water ingestion in gas turbines is used in industrial applications to improve the thermal efficiency by cooling the air before and throughout compression. However, this also leads to interactions between the liquid droplets and the compressor parts, which cause a faster degradation of the structure. The current work addresses the numerical investigation of the atomization process at the trailing edge of a compressor blade as there have only been experimental investigations in literature considering the ambient conditions in a gas turbine compressor. Direct numerical simulations (DNS) are carried out using the multiphase flow solver Free Surface 3D (FS3D). Therefore, a numerical setup has been developed to model the trailing edge as a thin plate corresponding to experiments performed at ITLR 22. Four different cases have been performed to take the experimentally observed atomization processes into account. Additionally, the dependence of the simulation results on the grid resolution and with it the limits to reproduce the experimental findings has been investigated in a grid study. The results show that the developed numerical setup works well and the different atomization processes are reproduced qualitatively, with best results for very high grid resolutions.
%0 Conference Paper
%1 schlottke2021direct
%A Schlottke, Adrian
%A Ibach, Matthias
%A Steigerwald, Jonas
%A Weigand, Bernhard
%B High Performance Computing in Science and Engineering '21
%C Cham
%D 2023
%E Nagel, Wolfgang E.
%E Kröner, Dietmar H.
%E Resch, Michael M.
%I Springer International Publishing
%K myown pn1-2b exc2075 on1 pn1 peerReviewed weigand from:matthiasibach
%P 239--257
%R 10.1007/978-3-031-17937-2_14
%T Direct numerical simulation of a disintegrating liquid rivulet at a trailing edge
%X Water ingestion in gas turbines is used in industrial applications to improve the thermal efficiency by cooling the air before and throughout compression. However, this also leads to interactions between the liquid droplets and the compressor parts, which cause a faster degradation of the structure. The current work addresses the numerical investigation of the atomization process at the trailing edge of a compressor blade as there have only been experimental investigations in literature considering the ambient conditions in a gas turbine compressor. Direct numerical simulations (DNS) are carried out using the multiphase flow solver Free Surface 3D (FS3D). Therefore, a numerical setup has been developed to model the trailing edge as a thin plate corresponding to experiments performed at ITLR 22. Four different cases have been performed to take the experimentally observed atomization processes into account. Additionally, the dependence of the simulation results on the grid resolution and with it the limits to reproduce the experimental findings has been investigated in a grid study. The results show that the developed numerical setup works well and the different atomization processes are reproduced qualitatively, with best results for very high grid resolutions.
%@ 978-3-031-17937-2
@inproceedings{schlottke2021direct,
abstract = {Water ingestion in gas turbines is used in industrial applications to improve the thermal efficiency by cooling the air before and throughout compression. However, this also leads to interactions between the liquid droplets and the compressor parts, which cause a faster degradation of the structure. The current work addresses the numerical investigation of the atomization process at the trailing edge of a compressor blade as there have only been experimental investigations in literature considering the ambient conditions in a gas turbine compressor. Direct numerical simulations (DNS) are carried out using the multiphase flow solver Free Surface 3D (FS3D). Therefore, a numerical setup has been developed to model the trailing edge as a thin plate corresponding to experiments performed at ITLR [22]. Four different cases have been performed to take the experimentally observed atomization processes into account. Additionally, the dependence of the simulation results on the grid resolution and with it the limits to reproduce the experimental findings has been investigated in a grid study. The results show that the developed numerical setup works well and the different atomization processes are reproduced qualitatively, with best results for very high grid resolutions.},
added-at = {2023-02-06T15:27:43.000+0100},
address = {Cham},
author = {Schlottke, Adrian and Ibach, Matthias and Steigerwald, Jonas and Weigand, Bernhard},
biburl = {https://puma.ub.uni-stuttgart.de/bibtex/2215a1c531ea4cf7dbbf20ee137aefcb9/itlr},
booktitle = {High Performance Computing in Science and Engineering '21},
doi = {10.1007/978-3-031-17937-2_14},
editor = {Nagel, Wolfgang E. and Kr{\"o}ner, Dietmar H. and Resch, Michael M.},
interhash = {55d808573e3f76c087c39b3e19d7d905},
intrahash = {215a1c531ea4cf7dbbf20ee137aefcb9},
isbn = {978-3-031-17937-2},
keywords = {myown pn1-2b exc2075 on1 pn1 peerReviewed weigand from:matthiasibach},
orcid = {0000-0001-7863-6410},
pages = {239--257},
publisher = {Springer International Publishing},
timestamp = {2023-10-04T11:21:26.000+0200},
title = {Direct numerical simulation of a disintegrating liquid rivulet at a trailing edge},
year = 2023
}