Have a personal or library account? Click to login
Simulation and Experimental Study in the Process of Wave Energy Conversion Cover

Simulation and Experimental Study in the Process of Wave Energy Conversion

By: Wei Zhang and  Yanjun Liu  
Open Access
|Nov 2016

References

  1. 1. Shi, H.D., Cao, F,F., Ma, Z., Liu, Z., 2014. Physical Model Experimental Study on the Floating Buoy Wave Power Generator. Journal of Ocean Technology. 33 (4):98-104.
  2. 2. Gao, H.T., Li, B., 2015. Establishment of motion model for wave capture buoy and research on hydrodynamic performance of floating-type wave energy converter. Polish Maritime Research. 22 (S1):106-111.10.1515/pomr-2015-0041
  3. 3. Birgersson, K.E., Balaya, P., Yan, J., 2011. Energy Solutions for a Sustainable World. Applied Energy. 90 (1), 1-2.10.1016/j.apenergy.2011.08.006
  4. 4. Esteban,M., Leary, D., 2012. Current developments and future prospects of offshore wind and ocean energy. Applied Energy, 90(1):128-136.10.1016/j.apenergy.2011.06.011
  5. 5. Yang, L., Hals, J., Moan, T., 2010. Analysis of dynamic effects relevant for the wear damage in hydraulic machines for wave energy conversion. Ocean Engineering. 37(13):1089-1102.10.1016/j.oceaneng.2010.04.005
  6. 6. Evans, D.V., 1981. Maximum wave-power absorption under motion constraints. Applied Ocean Research 3 (4):200-203.10.1016/0141-1187(81)90063-8
  7. 7. Choi, K.S., Yang, D.S., Park, S.Y., Cho, B.H., 2012. Design and performance test of hydraulic PTO for wave energy converter. International Journal of Precision Engineering & Manufacturing. 13(5), 795-801.10.1007/s12541-012-0105-4
  8. 8. Pizer, D.J., 1993. Maximum wave-power absorption of point absorbers under motion constraints. Applied Ocean Research. 15 (4), 227-234.10.1016/0141-1187(93)90011-L
  9. 9. Vantorre, M., Banasiak, M., Verhoeven, R., 2004. Modelling of hydraulic performance and wave energy extraction by a point absorber in heave. Applied Ocean Research 26, 61-72.10.1016/j.apor.2004.08.002
  10. 10. Babarit, A., Duclos, G., Clement, A.H., 2004. Comparison of latching control strategies for a heaving wave energy device in random sea. Applied Ocean Research 26, 227-238.10.1016/j.apor.2005.05.003
  11. 11. Ma, Z., 2013. The Study on Hydrodynamic Performance of Oscillating Floater Buoy Wave Energy Converter [D]. Ocean University of China.
  12. 12. Zhang, D.H., Li, W., Lin, Y.G., 2009. Wave energy in China: Current status and perspectives. Renewable energy. 34(10), 2089-2092.10.1016/j.renene.2009.03.014
  13. 13. Bailey, H., Bryden, I.G., 2011. Influence of a quadratic power take-off on the behavior of a self-contained inertial referenced wave energy converter. Proc. Inst. Mech. Eng. Part M J. Eng. Marit. Environ., 226 (1), 15-22.10.1177/1475090211425143
  14. 14. Zhang, D.X., 2001, Analyzing primary parameters of twinfloater ocean wave generate electricity device and designing it with most optimal geometric shape. Yan shan University. 46-50.
  15. 15. Antonelli, M., Baccioli, A., Francesconi, M., Psaroudakis, P., Martorano, L., 2015. Small Scale ORC Plant Modeling with the AMESim Simulation Tool: Analysis of Working Fluid and Thermodynamic Cycle Parameters Influence. Energy Procedia. 81:440-449.10.1016/j.egypro.2015.12.118
  16. 16. Lisowski, J., 2014. Comparison of dynamic games in application to safe ship control. Polish Maritime Research. 21(3), 3-12.10.2478/pomr-2014-0024
  17. 17. Phan, L.K., Stive, M.J.F., 2015. Coastal Mangrove Squeeze in the Mekong Delta. Journal of Coastal Research. 31(2), 233-243.10.2112/JCOASTRES-D-14-00049.1
DOI: https://doi.org/10.1515/pomr-2016-0056 | Journal eISSN: 2083-7429 | Journal ISSN: 1233-2585
Language: English
Page range: 123 - 130
Published on: Nov 16, 2016
Published by: Gdansk University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2016 Wei Zhang, Yanjun Liu, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.