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Resistance Prediction for Hard Chine Hulls in the Pre-Planing Regime

Abstract

A mathematical representation of calm-water resistance for contemporary planing hull forms based on the USCG and TUNS Series is presented. Regression analysis and artificial neural network (ANN) techniques are used to establish, respectively, Simple and Complex mathematical models. For the Simple model, resistance is the dependent variable (actually R/Δ for standard displacement of Δ=100000lb), while the Froude number based on volume (FnV) and slenderness ration (L/V1/3) are the independent variables. In addition to these, Complex model’s independent variables are the length beam ratio (L/B), the position of longitudinal centre of gravity (LCG/L) and the deadrise angle (β). The speed range corresponding to FnV values between 0.6 and 3.5 is analyzed. The Simple model can be used in the concept design phases, while the Complex one might be used for various numerical towing tank performance predictions during all design phases, as appropriate.

Keywords:

planing craft, hard chine hulls, resistance evaluation, Artificial-Neural-Network (ANN), TUNS Series, USCG Series, pre-planing regime

Details

Issue
Vol. 21 No. 2(82) (2014)
Section
Latest Articles
Published
16-07-2014
DOI:
https://doi.org/10.2478/pomr-2014-0014
Licencja:
Creative Commons License

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Open Access License

This journal provides immediate open access to its content under the Creative Commons BY 4.0 license. Authors who publish with this journal retain all copyrights and agree to the terms of the CC BY 4.0 license.

 

Authors

  • Dejan Radojcic

    University of Belgrade, Faculty of Mechanical Engineering, Dept. of Naval Architecture
  • Antonio Zgradic

    NAVAR, Herceg Novi
  • Milan Kalajdzic

    University of Belgrade, Faculty of Mechanical Engineering, Dept. of Naval Architecture
  • Aleksandar Simic

    University of Belgrade, Faculty of Mechanical Engineering, Dept. of Naval Architecture

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