The 2<SUP>nd</SUP> generation ice accretion analysis program has been developed and validated for various icing conditions. The essential feature of the 2<SUP>nd</SUP> generation code lies in its capability of handling general ...
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https://www.riss.kr/link?id=A103297357
2015
Korean
559
KCI등재
학술저널
23-36(14쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
The 2<SUP>nd</SUP> generation ice accretion analysis program has been developed and validated for various icing conditions. The essential feature of the 2<SUP>nd</SUP> generation code lies in its capability of handling general ...
The 2<SUP>nd</SUP> generation ice accretion analysis program has been developed and validated for various icing conditions. The essential feature of the 2<SUP>nd</SUP> generation code lies in its capability of handling general 3-D geometry and improved accuracy. The entire velocity fields are obtained based on Navier-Stokes equations in order to take the massively separated flow field into account. Unlike 1<SUP>st</SUP> generation code, the droplet trajectories are calculated using Eulerian approach, which is adopted to yield appropriate collection efficiency even in the shadow region. For improved thermodynamic analysis on the surfaces, water film model and modified Messinger model are newly included in the present analysis. The ice shape for a given time step is obtained by considering the exact amount of ice accreted on the surface. Each module of the icing analysis code has been seamlessly integrated on the OpenFOAM platform. The developed code was validated against available experimental data for 2D airfoils and 3D DLR-F4. Due to the lack of experimental data, the computed results of DLR-F4 were compared with those obtained from FENSAP-ICE, which is state-of-the-art 3D icing analysis code. It was clearly shown that the present code produces comparable results to those of FENSAP-ICE, in terms of prediction accuracy and the capability of handling general 3-D geometries.
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