Design and Operational Diagnostics of Marine Propellers Made of Polymer Materials

Author:

Kluczyk Marcin1,Grządziela Andrzej1,Batur Tomislav2

Affiliation:

1. Polish Naval Academy, Mechanical-Electrical Faculty , Gdynia , Poland

2. University of Split , Faculty of Marine Studies , Split , Croatia

Abstract

Abstract There has been a rapidly growing interest in the use of composite and polymer materials for the construction of marine propellers for over 20 years. The main advantages of these materials are a reduction in the weight of the propeller, increased efficiency due to the hydroelasticity effect, a reduction of the hydroacoustic signature, and a cost reduction for serial production. This paper presents an overview of diagnostic methods that can be applied at the design level and during the operation of marine propellers made of polymeric materials. Non-invasive contact and non-contact-based diagnostic techniques for evaluating the technical state of the propeller are reviewed, and the advantages and disadvantages of qualitative and quantitative methods are identified. Operational diagnostic procedures for propellers are areessential for the safety of vessels at sea. Finally, the structure of a diagnostic system is proposed. It combined diagnosis process with the genesis of damage and the prognosis of the technical condition, i.e. production and in-service diagnostics.

Publisher

Walter de Gruyter GmbH

Subject

Mechanical Engineering,Ocean Engineering

Reference27 articles.

1. 1. T. Searle, J. Chudley, D. Short, and C. Hodge, “The composite advantage,” in SNAME 7th Propeller and Shafting Symposium, PSS 1994. [Online]. Available: https://core.ac.uk/download/pdf/29818813.pdf. [Accessed: Aug. 10, 2022].

2. 2. Król P. “Hydrodynamic state of art review: Rotor - stator marine propulsor systems design” Polish Maritime Research, vol. 28, no. 1. 2021, doi: 10.2478/pomr-2021-0007.”.

3. 3. A. Grządziela, A. Załęska-Fornal, and M. Kluczyk, “The single degree of freedom simulation model of underwater explosion impact,” Archives of Acoustics, vol. 45, no. 2, pp. 341-348, 2020, doi: 10.24425/aoa.2020.133154.

4. 4. D. S. de Vasconcellos, F. Touchard, and L. Chocinski-Arnault, “Tension–tension fatigue behaviour of woven hemp fibre reinforced epoxy composite: A multi-instrumented damage analysis,” International Journal of Fatigue, vol. 59, pp. 159-169, Feb. 2014, doi: 10.1016/j.ijfatigue.2013.08.029.

5. 5. V. Ryabov, B. Yartsev, and L. Parshina, “Heterogeneous dissipative composite structures,” AIP Conference Proceedings, vol. 1959, no. 1, p. 070031, May 2018, doi: 10.1063/1.5034706.

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