Unidirectional Radial-Air-Turbine OWC Wave Energy Converters

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Unidirectional Radial-Air-Turbine OWC Wave Energy Converters ( unidirectional-radial-air-turbine-owc-wave-energy-converters )

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Energies 2019, 12, 2791 22 of 22 35. Setoguchi, T.; Santhakumar, S.; Takao, M.; Kim, T.H.; Kaneko, K. A performance study of a radial turbine for wave energy conversion. Proc. Inst. Mech. Eng. Part A J. Power Energy 2002, 216, 15–22. [CrossRef] 36. CAESES User Guide. Available online: https://www.caeses.com/ (accessed on 11 February 2019). 37. Anton, N.; Wiberg, W. Aerodynamic Design of a Gas Turbine Rotor Blade for the KTH Test Turbine. ISRN LUTMDN/TMHP–13/5284–SE. 2013. Available online: http://lup.lub.lu.se/luur/download?func= downloadFile&recordOId=3857854&fileOId=3857860 (accessed on 10 March 2019). 38. Pritchard, L. An eleven parameter axial turbine airfoil geometry model. In Proceedings of the ASME 1985 International Gas Turbine Conference and Exhibit, Houston, TX, USA, 18–21 March 1985; p. V001T003A058. 39. Cui, Y.; Hyun, B.-S. Numerical study on Wells turbine with penetrating blade tip treatments for wave energy conversion. Int. J Nav. Archit. Ocean Eng. 2016, 8, 456–465. [CrossRef] 40. El Marjani, A.; Ruiz, F.C.; Rodriguez, M.; Santos, M.P. Numerical modelling in wave energy conversion systems. Energy 2008, 33, 1246–1253. [CrossRef] 41. Pereiras, B.; Castro, F.; Marjani, A.E.; Rodríguez, M.A. An improved radial impulse turbine for OWC. Renew. Energy 2011, 36, 1477–1484. [CrossRef] 42. Kianejad, S.S.; Enshaei, H.; Duffy, J.; Ansarifard, N.; Ranmuthugala, D. Ship roll damping coefficient prediction using CFD. J. Ship Res. 2019, 63, 108–122. [CrossRef] 43. ANSYS-User ’s-Manual. 12.0, ANSYS, User ’s-Manual. Inc. Available online: https://www.afs.enea.it/project/ neptunius/docs/fluent/html/ug/main_pre.htm (accessed on 14 March 2019). 44. Jung, U.-H.; Kim, J.-H.; Kim, J.-H.; Park, C.-H.; Jun, S.-O.; Choi, Y.-S. Optimum design of diffuser in a small high-speed centrifugal fan using CFD & DOE. J. Mech. Sci. Technol. 2016, 30, 1171–1184. 45. Hatami, M.; Cuijpers, M.; Boot, M. Experimental optimization of the vanes geometry for a variable geometry turbocharger (VGT) using a Design of Experiment (DoE) approach. Energy Convers. Manag. 2015, 106, 1057–1070. [CrossRef] 46. ANSYS-User’s-Manual. Release 17.0. Available online: https://www.ansys.com/about-ansys/news-center/01- 27-16-ansys-unveils-release-17-0 (accessed on 25 March 2019). 47. Ghotli, R.A.; Aziz, A.A.; Ibrahim, S.; Baroutian, S.; Arami-Niya, A. Study of various curved-blade impeller geometries on power consumption in stirred vessel using response surface methodology. J. Taiwan Inst. Chem. Eng. 2013, 44, 192–201. [CrossRef] 48. Amouzgar, K.C.M.; Salomonsson, K. Multi-objective optimization of material model parameters of an adhesive layer by using SPEA2. In Proceedings of the 11 th World Congress of Structural and Multidisciplinary Optimization (WCSMO-11), Sydney, Australia, 7–12 June 2015; pp. 249–254. 49. Hans, E. Energy Transfer Machine. Google Patents US3292899A, 20 December 1966. 50. Nancarrow, J.; Egli, H.; Burdette, F. Energy Transfer Machine. Google Patents US3782850A, 1 January 1974. 51. Kianejad, S.; Enshaei, H.; Duffy, J.; Ansarifard, N. Investigation of a ship resonance through numerical simulation. J. Hydrodyn. 2019, 32, 1–15. [CrossRef] 52. Kianejad, S.; Enshaei, H.; Duffy, J.; Ansarifard, N. Prediction of a ship roll added mass moment of inertia using numerical simulation. Ocean Eng. 2019, 173, 77–89. [CrossRef] © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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