openHSU logo
  • English
  • Deutsch
  • Log In
  • Communities & Collections
  1. Home
  2. Helmut-Schmidt-University / University of the Federal Armed Forces Hamburg
  3. Publications
  4. 3 - Publication references (without full text)
  5. Flow past a cylinder with a flexible splitter plate: A complementary experimental-numerical investigation and a new FSI test case (FSI-PfS-1a)
 
Options
Show all metadata fields

Flow past a cylinder with a flexible splitter plate: A complementary experimental-numerical investigation and a new FSI test case (FSI-PfS-1a)

Publication date
2014
Document type
Research article
Author
De Nayer, Guillaume 
Kalmbach, Andreas
Breuer, Michael 
Sicklinger, Stefan
Wüchner, Roland
Organisational unit
Strömungsmechanik 
DOI
10.1016/j.compfluid.2014.04.020
URI
https://openhsu.ub.hsu-hh.de/handle/10.24405/8910
Scopus ID
2-s2.0-84900799471
ISSN
0045-7930
Series or journal
Computers & fluids : an international journal
Periodical volume
99
First page
18
Last page
43
Part of the university bibliography
✅
  • Additional Information
Abstract
Objectives: The objective of the present paper is to provide a challenging and well-defined validation test case for fluid-structure interaction (FSI) in turbulent flow to close a gap in the literature. The following list of requirements are taken into account during the definition and setup phase. First, the test case should be geometrically simple which is realized by a classical cylinder flow configuration extended by a flexible structure attached to the backside of the cylinder. Second, clearly defined operating and boundary conditions are a must and put into practice by a constant inflow velocity and channel walls. The latter are also evaluated against a periodic setup relying on a subset of the computational domain. Third, the material model should be widely used. Although a rubber plate is chosen as the flexible structure, it is demonstrated by additional structural tests that a classical St. Venant-Kirchhoff material model is sufficient to describe the material behavior appropriately. Fourth, the flow should be in the turbulent regime. Choosing water as the working fluid and a medium-size water channel, the resulting Reynolds number of Re = 30, 470 guarantees a sub-critical cylinder flow with transition taking place in the separated shear layers. Fifth, the test case results should be underpinned by a detailed validation process.Methods: For this purpose complementary numerical and experimental investigations were carried out. Based on optical contactless measuring techniques (particle-image velocimetry and laser distance sensor) the phase-averaged flow field and the structural deformations were determined. These data were compared with corresponding numerical predictions relying on large-eddy simulations and a recently developed semi-implicit predictor-corrector FSI coupling scheme.Outcome: Both results were found to be in close agreement showing a quasi-periodic oscillating flexible structure in the first swiveling FSI mode with a corresponding Strouhal number of about StFSI = 0.11. © 2014 Elsevier Ltd.
Cite as
In: Computers & fluids. - Amsterdam [u.a.] : Elsevier, 1973- ; ZDB-ID: 184296-1 . - Bd. 99.2014, Seite 18-43
Version
Not applicable (or unknown)
Access right on openHSU
Metadata only access

  • Cookie settings
  • Privacy policy
  • Send Feedback
  • Imprint