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http://dx.doi.org/10.7473/EC.2019.54.1.70

Service Life Prediction of Marine Rubber Fender  

Woo, Chang-Su (Department of Nano Applied Mechanic, Korea Institute of Machinery & Materials)
Park, Hyun-Sung (Department of Nano Applied Mechanic, Korea Institute of Machinery & Materials)
Sung, Il-Kyung (Technical Research Center, Hwaseung EXwill)
Yun, Soon-Hwan (Technical Research Center, Hwaseung EXwill)
Lee, Jae-Moon (Technical Research Center, Hwaseung EXwill)
Publication Information
Elastomers and Composites / v.54, no.1, 2019 , pp. 70-76 More about this Journal
Abstract
The function and purpose of the marine rubber fender, to prevent the damage of the ship and the mooring while the ship is being attached to the pier. However, maintenance of the fender after installation is not enough, because it is generally handled as an attachment facility. Estimation the life of a marine rubber fender is important in the maintenance of a port. When manufacturers design and produce marine rubber fenders, they do so according to various conditions such as the reaction force acting on the hull and docking vessel and deformation after absorbing the kinetic energy of the ship. In this study, a method for predicting and evaluating service life from the product design and development stage was established, in order to evaluate the durability of the marine rubber fenders. The SSp-300H and HSP-300H models were used to predict the service life. The method developed in this study, is expected to predict the service life of the marine rubber fender accurately and in a comparatively shorter time, thereby contributing to the evaluation standard and quality stability of the product.
Keywords
marine rubber fender; finite element analysis; maximum strain; fatigue test; service life prediction;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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1 K. Terauchi, T. Koizumi, S. Yamamoto, and K. Hosokawa, "The Deterioration actual state and the function evaluation on the rubber fender", Tech. Notes of the Port and Harbor Research Institute, 878 (1997).
2 MarCom Working Group 33: Guidelines for the design of fenders system, International Navigation Congress, (2002).
3 K. Takeuchi, M. Nakagawa, H. Yamaguchi, and T. Okumoto, "Fatigue test technique for rubber materials of vibration insulator", International Polymer Science and Technology, 20 (1993).
4 T. Sueyasu, "Long term aging and life forecast of large rubber products", Proc. of 141th Rubber Technology Symposium, 27 (2008).
5 O. H. Yeoh, "On the ogedn strain energy function", Rubber Chemistry and Technology, 70 (1996).
6 S. Hur and C. S. Woo, "FEA Simulation and Tests of Rubber Insulator for Truck Suspension", Elastomer and Composites, 52, 4 (2017).
7 L. Mullins, "Effect of stretching on the properties of rubber", Journal of Rubber Research, 16 (1947).
8 R. W. Ogden, "Non-linear elastic deformations", Dover Publications, INC., Mineola, New York (1984).