COMPUTATIONAL PREDICTION OF A PROPELLER PERFORMANCE IN OPEN WATER CONDITION
Author(s) -
Ahmad Fitriadhy,
Nur Amira Adam,
C. J. Quah
Publication year - 2020
Publication title -
sinergi
Language(s) - English
Resource type - Journals
eISSN - 2460-1217
pISSN - 1410-2331
DOI - 10.22441/sinergi.2020.2.010
Subject(s) - propeller , advance ratio , computational fluid dynamics , thrust , blade pitch , torque , mechanics , range (aeronautics) , blade (archaeology) , open water , marine engineering , physics , structural engineering , engineering , mechanical engineering , turbine , aerospace engineering , thermodynamics
In presence of hydrodynamics phenomena occur surrounding propeller evidently affects on accuracy’s prediction of thrust, torque and its efficiency. To achieve the objective, a Computational Fluid Dynamics (CFD) simulations approach is then proposed to obtain a reliable prediction of the thrust (K T ), torque (K Q ) and efficiency (η) coefficients in open water condition. The effect of various blade numbers associated with constant propeller revolution (RPM=1320) and pitch ratio (P/D=1.0); are performed within the range of advance ratio from 0.1 J 1.0. The results revealed that the increase of blade number from Z=3 to 5 was proportional with the increase of thrust (K T ) and torque (K Q ) coefficients; meanwhile, it was reduced the maximum efficiency (η) that possibly lead to downgrade the propeller performance. It should be noted here, the propeller with three blade numbers (Z=3) provide the highest efficiency (η) up to 78.8% at J=0.9. These CFD simulation results are very useful as a preliminary study of propeller characteristics.
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