A Refined In-Flight Icing Model and its Numerical Implementation
A refined in-flight icing model is proposed whose primary focus lies on an improved prediction of the runback dynamics. The most significant capabilities/properties of the model are: An essential part of the paper is devoted to the treatment of surface tension and wetting effects: These effects result from disjoining pressure contributions to the pressure terms in the runback continuity equation, i.e., these effects are inherent properties of the simulated runback dynamics. In particular, phenomena such as film rupture, bead formation and bead coalescence naturally appear in the computed runback flow, and also contact angle hysteresis effects can be simulated with the current wetting model. Besides the treatment of wetting effects the numerical methods utilized for the time-integration of the coupled system consisting of the runback continuity equation and the energy equations of the runback layer, the ice layer and the underlying substrate are described in the paper. Finally, two test cases which were simulated with the aid of a 2D-implementation of the current model are discussed.
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Availability:
- Find a library where document is available. Order URL: http://worldcat.org/issn/01487191
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Supplemental Notes:
- Abstract reprinted with permission of SAE International.
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Authors:
- Hassler, Wolfgang
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Conference:
- International Conference on Icing of Aircraft, Engines, and Structures
- Location: Minneapolis Minnesota, United States
- Date: 2019-6-17 to 2019-6-21
- Publication Date: 2019-6-10
Language
- English
Media Info
- Media Type: Web
- Features: Figures; References;
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Serial:
- SAE Technical Paper
- Publisher: Society of Automotive Engineers (SAE)
- ISSN: 0148-7191
- EISSN: 2688-3627
- Serial URL: http://papers.sae.org/
Subject/Index Terms
- TRT Terms: Aircraft; Icing; Mathematical models
- Subject Areas: Aviation; Maintenance and Preservation; Vehicles and Equipment;
Filing Info
- Accession Number: 01709019
- Record Type: Publication
- Source Agency: SAE International
- Report/Paper Numbers: 2019-01-1937
- Files: TRIS, SAE
- Created Date: Jun 27 2019 2:41PM