PROPELLER INDUCED HYDRODYNAMIC HULL FORCES ON A GREAT LAKES BULK CARRIER. RESULTS OF MODEL TESTS AND FULL SCALE MEASUREMENTS
Jeroen van der Kooij, A Jonk
Abstract
Jeroen van der Kooij, A Jonk
Abstract
Model tests have been performed in the deep water towing tank and large cavitation tunnel of the NSMB to study the propeller generated hydrodynamic hull forces of a Great Lakes bulk carrier, which suffered from severe vibrations. The investigation also comprised propulsion, wake, flow and cavitation tests. High speed movies were made to study in detail propeller-hull vortex cavitation and to investigate the correlation between this cavitation phenomenon and the pressure fluctuations on the hull. Further, pressure measurements on full scale were performed and a good agreement with the results from model tests was found. It is shown that a stern tunnel fitted to the hull above the propeller reduced the excitation forces more than a modified propeller design. Application of vertical fins, to avoid propeller-hull vortex cavitation, showed an increase of average excitation level.
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Model tests have been performed in the deep water towing tank and large cavitation tunnel of the NSMB to study the propeller generated hydrodynamic hull forces of a Great Lakes bulk carrier, which suffered from severe vibrations. The investigation also comprised propulsion, wake, flow and cavitation tests. High speed movies were made to study in detail propeller-hull vortex cavitation and to investigate the correlation between this cavitation phenomenon and the pressure fluctuations on the hull. Further, pressure measurements on full scale were performed and a good agreement with the results from model tests was found. It is shown that a stern tunnel fitted to the hull above the propeller reduced the excitation forces more than a modified propeller design. Application of vertical fins, to avoid propeller-hull vortex cavitation, showed an increase of average excitation level.
Key concepts: Hull, Propeller, Towing, Cavitation, Wake, Marine engineering, Vortex, Full scale