Predicting the Effect of Hull Roughness on Ship Resistance Using a Fully Turbulent Flow Channel

Author:

Ravenna RobertoORCID,Ingham Ryan,Song SoonseokORCID,Johnston Clifton,Tezdogan TahsinORCID,Atlar Mehmet,Demirel Yigit Kemal

Abstract

The consequences of poor hull surface conditions on fuel consumption and emissions are well-known. However, their rationales are yet to be thoroughly understood. The present study investigates the hydrodynamics of fouling control coatings and mimicked biofouling. Novel experimental roughness function data were developed from the “young” fully turbulent flow channel facility of the University of Strathclyde. Different surfaces, including a novel hard foul-release coating, were tested. Finally, the performance of a benchmark full-scale containership was predicted using Granville’s similarity law scaling calculations. Interestingly, the numerical predictions showed that the novel hard foul-release coating tested had better hydrodynamic performance than the smooth case. A maximum 3.79% decrease in the effective power requirements was observed. Eventually, the results confirmed the practicality of flow channel experiments in combination with numerical-based methods to investigate hull roughness effects on ship resistance and powering. The present study can also serve as a valuable guide for future experimental campaigns using the fully turbulent flow channel facility of the University of Strathclyde.

Funder

EU H2020 project, VENTuRE

Inha University

Development of Autonomous Ship Technology

the Ministry of Oceans and Fisheries

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

Reference47 articles.

1. Effects of Coating Roughness and Biofouling on Ship Resistance and Powering;Schultz;Biofouling,2007

2. (2022, October 30). IMO Resolution MEPC.328(76)—Revised MARPOL Annex VI. Available online: https://www.ccs.org.cn/ccswzen//specialDetail?id=202206220255211398.

3. Song, S. (2020). Development of Computational and Experimental Techniques to Investigate the Effect of Biofouling on Ship Hydrodynamic Performance, University of Strathclyde.

4. Granville, P.S. (1978). Similarity-Law Characterization Methods for Arbitrary Hydrodynamic Roughnesses, Bethesda.

5. The Frictional Resistance and Turbulent Boundary Layer of Rough Surfaces;Granville;J. Sh. Res.,1958

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