Propeller CFD & FSI – Blade Loading & Structural Response in a Vessel Wake

Pressure distribution on hull-propeller-rudder configuration for FSI computations

A ship propeller operates in a spatially non-uniform inflow field generated by the vessel hull, skeg and appendages. As the propeller rotates through this wake, each blade experiences continuously varying hydrodynamic loading. This full-scale showcase combines transient propeller CFD with one-way Fluid–Structure Interaction (FSI) to investigate the relationship between the vessel wake, individual blade loading and the resulting structural response. A Moving Reference Frame (MRF) solution is compared with a fully transient Sliding Mesh simulation to investigate the interaction between the propeller and the non-uniform vessel wake, from position-dependent blade loading in MRF to the transient structural response of blades

Bow Thruster Grid Design – Reducing Vessel Resistance through Grid Orientation

Bow Thruster Grid Design

Protective grids at bow-thruster openings interact with the external hull flow and can therefore influence vessel resistance. Aligning the grid bars with the incoming flow appears to be the hydrodynamically favourable solution, as it minimises the direct resistance of the grid itself. The CFD analysis showed that the overall behaviour is governed by more than the grid resistance alone. The transverse grid orientation changed the flow through the bow-thruster tunnel and the surrounding pressure distribution, ultimately resulting in the lowest overall vessel resistance.

FloatModular – JRP by thyssenkrupp Carbon2Chem, INAM and ESOS Wind GmbH launched

FloatModular – JRP by  thyssenkrupp Carbon2Chem, INAM and ESOS Wind GmbH launched

On August 1st 2024, the BMWK-funded research project FloatStructure officially started. Andreas supports ESOS Wind GmbH in the conceptual implementation of the project. It forms part of the collaborative research initiative FloatModular, which aims to develop new floating offshore wind turbine (FOWT) concepts based on a modular and scalable support structure adaptable to different water depths and turbine sizes.

conmecs supports Siemens Energy in R&D project

conmecs supports Siemens Energy in R&D project

Siemens Energy Global GmbH & Co. KG is a leading global company that offers services for energy generation and transmission with a strong focus on renewable energies and solutions for the decarbonization of existing customer processes. Siemens Energy’s maritime division offers effective podded drives (PODs) for the shipping industry. Recently, Siemens Energy asked conmecs to support the CFD investigations in a R&D project.