Publication Date:
2020
abstract:
OpenFOAM (OF) represents an attractive and widely used
open-source environment for simulating complex
hydrodynamic scenarios with several implemented numerical
methods and wide variety of problems it can be applied to. For
commercial and open-source solvers, though, expertise and
experience are required to get physical and reliable results.
Here, without pretending to be exhaustive, we aim to contribute
in highlighting advantages and challenges of some key
computational fluid dynamics (CFD)-simulation tools, with
focus on the OF platform. We examine the effect of grid type,
grid size and time-evolution scheme. Dynamic-mesh techniques
and their influence on local and global numerical results are
discussed, as well as the use of an overset grid versus a
deforming mesh. Lastly, possible error sources in CFD
simulations are discussed. These numerical studies are
performed investigating two complex hydrodynamic problems:
1. a fully-immersed flapping hydrofoil aimed to generate thrust,
2. a damaged and an intact ship section fixed in beam-sea
waves, in forced heave and roll motion in calm water. In the
first case, vortex-shedding and wake features are crucial; in the
second case, free-surface flow effects play the key role while the
importance of vortex-shedding and viscous-flow effects depends
on the scenario. The first problem is solved with OF and
validated with results from benchmark experiments. The second
problem is solved using (A) OF, (B) an in-house CFD solver
and (C) a fully-nonlinear potential-flow code. A and B assume
laminar-flow conditions and use, respectively, a volume-of-
fluid and a level-set technique to handle the free-surface
evolution. C is considered to examine importance of nonlinear
versus viscous effects for the examined problems. The results
are compared against in-house experiments.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
CFD; Numerical features; Flapping foil; Damaged ship hydrodynamics; Vortex shedding; NWT
List of contributors:
Greco, Marilena; Colicchio, Giuseppina
Book title:
Proceedings of the ASME 2020 39th International Conference on Ocean, Offshore and Arctic Engineering OMAE2020