Analysis Effect of Duct Length– Nozzle Diameter Ratio and Tip Clearance Variation on the Performance of K-Series Propeller

Irfan Syarif Arief, Tony Bambang Musriyadi, Ahmad Dwi Arta Je Mafera

Abstract


One type of ship propeller is a ducted propeller. Ducted propellers are propellers with sheath or duct that can increase thrust on the propeller and  useful for directing the flow of water that will pass through the Propeller. In addition to improving thrust, ducted propellers can also increase torque compared with no duct. The basic theory of momentum for this ducted propeller operation has been used by Horn (1940). In order for the efficiency of the thrust to be of good value, the volume of water passing through the propeller should be as large as possible, with the smallest possible flow velocity. The most important components of ducted propeller are Ld / D and tip clearance. Ld / D is a coefficient comparison between the length of the casing / duct and the diameter of the duct, while the tip clearance is the distance between the tip of the propeller with an inner diameter of the duct. Both components are discussed in this study. The purpose of this research is to know the performance of propeller after given variation on Ld / D and tip clearance. The method used for propeller analysis is Computational Fluid Dynamic (CFD). Based on simulation result, the most optimal propeller performance is ducted propeller with Ld / D = 0.5 and tip clearance 40 mm

Keywords


CFD ; Ducted Propeller; Ld/D; Tip Clearance; Kaplan

Full Text:

PDF

References


Bontempo, R., Cardone, M. 2013. Ducted propeller flow analysis by means of a generalized actuator disk model. Energy Procedia. Volume 45 : 1107-1115

Bontempo, R., Cardone, M. 2015. Performance analysis of ducter marine propeller :Part I – Decelerating duct. Applied Ocean Research. Volume 58 : 332-330

Carlton, J. , “Marine Propeller and Propulsion Second Edition.” Selsevier Ltd. USA, 2010.

de Barros, E.A. ,Dantas, J.L.D. 2011. Effect of a propeller duct on AUV maneuverability. Ocean Engineering Journal. Volume 42 : 61-70

Kuiper, G. “The Wageningen Propeller Series.” MARIN Publication. Netherland, 1992.

Popov, E.P. “Mechanic of Materials.” San Francisco. Berkeley. 1984.

Schneekluth, H., Bertram, V. 1998. Ship Design for Efficiency and Economy Second Edition. Butterworth Heinermann. Germany

W. Adji, Suryo. “Engine Propeller Matching. Surabaya.” Marine Engineering-ITS. 2005.

Yongle, D., Baowei, D. “Numerical investigation of tip clearance effects on the performance of ducted propeller”. International Journal Naval Architecture Ocean Engineering. Volume 7 : 795-804, 2015.

Santoso, Agoes et.al, “Flat Top Barge 300 feet Design using Portable Dynamics Positionning System”. International Journal of Marine Engineering and Innovation Research, vol. 1 no. 2, pp. 106-113, March 2017.




DOI: http://dx.doi.org/10.12962/j25481479.v2i1.2527

Refbacks

  • There are currently no refbacks.


Abstracted / Indexed by:
      
  

 

 

 

 

 

P-ISSN: 2541-5972   

E-ISSN: 2548-1479

 

Lisensi Creative Commons

IJMEIR journal published by  Department of Marine Engineering, Faculty of Marine Technology, Institut Teknologi Sepuluh Nopember Surabaya Indonesia under licenced Creative Commons Attribution-ShareAlike 4.0 International Licence. Based on https://iptek.its.ac.id/index.php/ijmeir/