Drag reduction of ship airflow using steady Coanda effect
Artikel i vetenskaplig tidskrift, 2022

This paper studies the steady Coanda effect for reducing the aerodynamic drag of the Chalmers ship model (CSM) using Large Eddy Simulation (LES) with Wall-Adapting Local-Eddy Viscosity (WALE) model. The flow control mechanism is explored, and the analysis of energy efficiency is conducted to evaluate the net benefit of the flow control. Validating the numerical methods, the predicted aerodynamic drag of the ship and pressure coefficients distribution on the baseline CSM agree well with the experimental measurements and the maximum discrepancy is 4.2%. In creating the flow control models, the hanger base of the baseline CSM is modified with a Coanda surface and two different sizes of jet-blowing slots, 1%h (hanger height) and 2%h, respectively. A drag reduction of 5.34% is achieved by the 1%h slot-size case. The 2%h slot-size case further increases the drag reduction to 6.22% but has doubled power consumption. It is found that vectoring vorticity towards the low-speed area on deck is effective for enhancing the energization. Finally, the analysis of energy efficiency indicates that the net benefit is achieved in both flow control cases, and the case with the 1%h slot size is 11.9% more efficient due to a stronger Coanda effect.

Energy efficiency

Large Eddy Simulation (LES)

Experiments

Drag reduction

Ship airflow control

Coanda effect

Författare

Kewei Xu

Chalmers, Mekanik och maritima vetenskaper, Marin teknik

Xinchao Su

Chalmers, Mekanik och maritima vetenskaper, Strömningslära

Rickard Bensow

Chalmers, Mekanik och maritima vetenskaper, Marin teknik

Sinisa Krajnovic

Transport

Ocean Engineering

0029-8018 (ISSN)

Vol. 266 113051

Aktiv strömningskontroll genom maskininlärning för minskad energiförbrukning hos fartyg

Chalmers styrkeområde Transport, 2021-11-01 -- 2023-10-31.

Ämneskategorier

Teknisk mekanik

Energiteknik

Farkostteknik

Strömningsmekanik och akustik

DOI

10.1016/j.oceaneng.2022.113051

Mer information

Senast uppdaterat

2023-10-02