A Study on Dynamic Motion and Wave Power in Multi-Connected Float-Counterweight Type of Wave Energy Converter

Author:

Hadano Kesayoshi1,Koirala Pallav2,Moon Byung Young3

Affiliation:

1. Yamaguch University

2. Saga University

3. Kunsan National University

Abstract

Recently, with respect to structural strength and relevant analysis of a float-counterweight wave energy converter, it has been more improved than existing oscillating body type. this study is mainly focusing on dynamic motion and wave power generation of ‘multi-connected’ float-counterweight device by calculating the acquired generation amount. This advanced research based on the original float-counterweight device was conducted through the wave’s up and down motion by setting up bulkhead which is called wave camber. Most of all, it was obtained that the ‘multi-connected’ float-counterweight device would be more efficient and practical than the original one in terms of float displacement, wire tension and amount of wave power. Through this study, a basic data for design of wave chamber was utilized on advantageous condition under actual circumstances of the sea and then estimation of generation amount for the ‘multi-connected’ float-counterweight device was realized, compared to the original one.

Publisher

Trans Tech Publications, Ltd.

Subject

General Engineering

Reference9 articles.

1. Hadano, K., Matsuoka, K., Koirala, P., Nakano, K. and Taneura, K., Study on the Dynamics of the Movable Body-type Wave Energy Converter with Power Storage Function, Journal of Japan Society of Civil Engineers, Ser. A1, Vol. 67, No. 1, pp.213-224, (2011).

2. Koirala, P., Hadano, K., Nakano, K. and Taneura K., Dynamics Model of Movable Body-type Wave Energy Converter Considering Two Dimensional Motions of the Float, Journals of the Japan Society of Civil Engineers B (JSCE), Vol. 65, No. 3, pp.189-197, (2009).

3. Hadano, K., Koirala, P., Taneura, K., Ohgi, K. and Ohnishi, T., On the Vertical Motion of Water in the Chambers for Wave Energy Converter, Proceedings of the Twenty-third International Offshore and Polar Engineering Conference, Alaska, USA, Vol. 1, pp.516-519, June, (2013).

4. Koirala, P., Taneura, K., Hadano, K., Ohgi, K. and Ohnishi, T., Study on the Motion of Water in the Water Chambers for Wave Energy Converter, Proceedings of the Tenth ISOPE Pacific/Asia Offshore Mechanics Symposium, Russia, pp.1-4, (2012).

5. Evans, D. V., Wave Power Absorption within a Resonant Harbor, Proc 2nd IntSymp On Wave Energy Utilization, Trendheim, pp.371-378, (1982).

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