Depending on the type of support, vessels are classified as displacement, semi-displacement and planing. But all types of vessels are in the displacement mode when they operate at low speed. In planing, due to the supportive hydrodynamic pressure, the hull wetted surface area reduces leading to low frictional resistance and consequent increase in speed for the same power input. Planing vessels are used for different purposes such as for fast patrol, sport activities, service, ambulance, rescue and recreation. The use of stern flaps, both fixed or controllable, interceptors and integrated interceptor-flap in high speed boats has become an acceptable option to control the running trim of the vessel to enhance its speed and powering performance. The interceptor-flap changes the pressure distribution underneath the hull which in turn causes reduced resistance acting on ships aftbody. The integrated stern interceptor-flap effect on planing craft performance depends on its parameters and also on those of the craft. So, an in depth study on the hydrodynamic behaviour of integrated interceptor-flap is essential, before it is adapted to a vessel, to get the best performance during the craft operation. In recent years, the computational fluid dynamics (CFD) technique has proved to be accurate and robust for hydrodynamic calculation of high-speed planing hulls. The aim of this paper is to study numerically on the performance of planing hull fitted with integrated stern interceptor-flap configuration. These studies help in understanding the flow field and other parameters on resistance of planing hulls with different flap angles. The study shows that the interceptor-flap performs well compared to bare hull. The guidelines that could be derived from these studies help in improving the interceptor-flap design for a high speed planing craft.
Skip Nav Destination
ASME 2018 37th International Conference on Ocean, Offshore and Arctic Engineering
June 17–22, 2018
Madrid, Spain
Conference Sponsors:
- Ocean, Offshore and Arctic Engineering Division
ISBN:
978-0-7918-5126-5
PROCEEDINGS PAPER
Numerical Study on the Hydrodynamic Performance of Integrated Interceptor-Flap Fitted to the Transom of a Planing Vessel
Suneela Jangam,
Suneela Jangam
Indian Institute of Technology Madras, Chennai, India
Search for other works by this author on:
Parameswaran Krishnankutty,
Parameswaran Krishnankutty
Indian Institute of Technology Madras, Chennai, India
Search for other works by this author on:
Anantha Subramanian V.
Anantha Subramanian V.
Indian Institute of Technology Madras, Chennai, India
Search for other works by this author on:
Suneela Jangam
Indian Institute of Technology Madras, Chennai, India
Parameswaran Krishnankutty
Indian Institute of Technology Madras, Chennai, India
Anantha Subramanian V.
Indian Institute of Technology Madras, Chennai, India
Paper No:
OMAE2018-78038, V07AT06A033; 8 pages
Published Online:
September 25, 2018
Citation
Jangam, S, Krishnankutty, P, & Subramanian V., A. "Numerical Study on the Hydrodynamic Performance of Integrated Interceptor-Flap Fitted to the Transom of a Planing Vessel." Proceedings of the ASME 2018 37th International Conference on Ocean, Offshore and Arctic Engineering. Volume 7A: Ocean Engineering. Madrid, Spain. June 17–22, 2018. V07AT06A033. ASME. https://doi.org/10.1115/OMAE2018-78038
Download citation file:
30
Views
Related Proceedings Papers
Related Articles
Hydrodynamics of the Interceptor Analysis Via Both Ultrareduced Model Test and Dynamic Computational Fluid Dynamics Simulation
J. Offshore Mech. Arct. Eng (April,2017)
Real-Time Dynamics Simulation of Unmanned Sea Surface Vehicle for Virtual Environments
J. Comput. Inf. Sci. Eng (September,2011)
Synergy of Resistance Reduction Effects for a Ship With Bottom Air Cavity
J. Fluids Eng (February,2011)
Related Chapters
A Computational Framework for Antibiofouling System Design
Advances in Computers and Information in Engineering Research, Volume 2
Hydraulic Resistance
Heat Transfer & Hydraulic Resistance at Supercritical Pressures in Power Engineering Applications
Introduction
Axial-Flow Compressors