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BAJECE_Vol1_No2

Year 2013, Volume: 1 Issue: 2, 47 - 102, 01.06.2013

Abstract

ed and indexed in Copernicus, Index Google Scholarship, the PSCR, DOAJ, Research Bible, Indian Open Access Journals (OAJ), Institutional Repositories (IR), Journal TOCs, J-Gate (Informatics India), Ulrich’s, ResearchGate, International Society of Universal Research in Sciences, DRJI, EyeSource

References

  • R.W. Erickson and D. Maksimovic, "Fundamentals of Power Electronics", Springer Press, 1997.
  • G. YANIK was born in Istanbul, Turkey,
  • in 19 He received his B.S. and M.S.
  • degrees in Electrical Engineering at Yildiz
  • Technical University, Istanbul, in 2008
  • and 2011, respectively.
  • He is a Research Assistant in the
  • Department of Electrical Engineering,
  • Yildiz Technical University since 2008.
  • His research interests include DC-DC converters, soft
  • switching techniques, power factor correction and inductor design.
  • E. ISEN was born in Bandırma, Turkey,
  • in 19 He received his B.S., M.S. and
  • Ph.D. degrees in electrical engineering at
  • Yildiz Technical University, Istanbul, in
  • 2003, 2005 and 2012, respectively.
  • He was a Research Assistant in the
  • Department of Electrical Engineering,
  • Yildiz Technical University between 2005 and 2012. He is an
  • Assistant Professor in the Department of Electrical and
  • Electronics Engineering, Kirklareli University. His current
  • research interests include grid connected inverters, renewable
  • energy conversion systems and power electronics.
  • E.V. Larsen, D.A. Swann, Applying power system stabilizers, Part I, II, III, IEEE Trans. on Power App. and Syst., PAS-100(1981), 3017-3041.
  • F.P. deMello, C.A. Concordia, Concept of synchronous machine stability as affected by excitation control, IEEE Trans.PAS-103 (1969) 316–329.
  • P.M. Anderson, A.A. Fouad, Power system control and stability, lowa State University Press, Ames, 1977.
  • A. Ghosh, G. Ledwich, O.P. Malik, G.S. Hope, Power system stabilizer based on adaptive control techniques,
  • IEEE Trans. PAS 103 (1984), 1983–1989.
  • S.J. Chang, Y.S. Chow, O.P. Malik, G.S. Hope, An adaptive synchronous machine stabilizer, IEEE Trans. PWRS 1, (1986), 101–109.
  • A. Pierre, A perspective on adaptive control of power systems, IEEE Trans. PWRS 2 (1987), 387–396.
  • A. Y. Sivaramakrishnan, M. V. Hariharan, M. C. Srisailam, Design of a variable-structure load controller using pole assignment technique, Int. J. Contr.,40(1984), 487-498.
  • Kothari M.L., Nanda J., K. Bhattacharya, Design of variable structure power system stabilizers with desired eigenvalues in the sliding mode, IEE Proc. Gen., Trans. and Distr., 140(1993), 263-268.
  • Bhattacharya K., Kothari M.L and Nanda J., Design of Discrete-Mode Variable Structure Power System Stabilisers, Electrical power & Energy System, Vol.17, n 6,pp.399-106,1995.
  • Y.M. Park, W. Kim, Discrete time adaptive sliding mode power system stabilizer with only input/output measurements, Electrical power & Energy systems, 18(1996),509-517.
  • S.S. Lee and J.K. Park, Design of power system stabilizer using observer / sliding mode, observer/sliding mode model following and H∞ / sliding mode controllers for small signal stability study, Electrical Power & Energy Systems, Vol.20, 8(1998),pp.543-553.
  • A.L. Elshafei, K. El-Metwally, Power system stabilization via adaptive fuzzy logic, IEEE Proc. of International Symposium on Intelligent Control,(1997),89-95, Istanbul, Turkey.
  • N.H. Zadeh, A. Kalam, A direct adaptive fuzzy power system stabilizer, IEEE Trans. on Energy Conversion, 14(1999).
  • H.M. SoIiman, A.L. Eshafei, A.A. Shaltout, M.F. Mors, Robust power system stabiliser, IEE Proc-Elec. Power Appl., 147(2000),285-291.
  • N.H. Zadeh, A. Kalam, An indirect adaptive fuzzy-logic power system stabiliser, Electrical power & Energy systems, 24(2002), 837-842.
  • A.L. Elshafei, K. El-Metwally, A.A. Shaltout, A variable structure adaptive fuzzy logic stabilizer for single and multi-machine power systems, Control Engineering Practice,13,(2005),413-423.
  • H. M. Soliman, A.L. Elshafei, F. Bendary, W. Mansour, LMI static output-feedback design of fuzzy power system stabilizers, Expert Systems with Applications,36(2009),6817-6825.
  • X. Yu, Z. Man and, B. Wu,” Design of fuzzy sliding mode control systems”, Fuzzy sets and systems. 9165(1998), 295-306.
  • J. J. Slotine, S. S. Sastry, Tracking control of non-linear systems using sliding surfaces, with application to robot manipulators, Int. J. Contr., 38(1983), 465-492.
  • I. R. Petersen, A procedure for simultaneously stabilizing a collection of single input linear systems using non-linear state feedback control, Automatica, 23(1987), 33-40.
  • K. D. Young, Controller design for a manipulator using the theory of variable structure systems, IEEE Trans. Man Cyber., 8(197, 101-109.
  • Y.M. Park, W. Kim, Discrete time adaptive sliding mode power system stabilizer with only input/output measurements, Elect. Power & Energy Systems, 18, (1996), 509-517.
  • J. Ackerman, V. Utkin, Sliding mode control design based on Ackerman’s formula, IEEE Trans. on Aut. Control, 43, (1998), 234-237.
  • V. I. Utkin, Variable structure systems with sliding modes, IEEE Trans. Aut. Cont., AC22 (1977), 212-222.
  • K. D. Young, V. I. Utkin, U. Ozguner, A control Engineer’s guide to sliding mode control, IEEE Trans on Control Syst. Technology, 7 (1999), 328-342.
  • P. Kundur, Power System Control and Stability, Ed. McGrawHill Inc., 1994.
  • http://epp.eurostat.ec.europa.eu/statistics_explained/index.php/Elect
  • ricity_production_and_supply_statistics
  • J. D. Isaacs, W. R. Schmitt, “Ocean Energy: Forms and prospects”, Nature, Vol. 207, Number 4428, pp. 265-273, 18 Jan. 1980.
  • S. Alatsathianos, P. Fafali, “Wave and current energy: A viable scheme to exploit the energy potential of Greek seas”, [Online], Available: http://www.researchgate.net/publication
  • Tidal Resources, [Online], Available: http://www.see.murdoch.edu.au/resources/info/Res/tidal/index.html
  • L B Bernshtein (1996) Tidal Power Plants. Seoul: Korea Ocean Research and Development Institute (KORDI). [Online], Available: http://repository.tudelft.nl/assets/uuid:46a59861-0817-4bf7-a252- b3a9562fdcd6/L.B._Bernshtein_-_Tidal_power_plants.pdf
  • J. Twidell, T. Weir, Renewable Energy Resources, (2nd ed.), Taylor & Francis, 2006
  • S. S. Khalid, Z. Liang, N. Shah, “Harnessing Tidal Energy Using Vertical Axis Tidal Turbine” Research Journal of Applied Sciences, Engineering and Technology 5(1) 2012, pp. 239-252, [Online], Available: http://maxwellsci.com/print/rjaset/v5-239-252.pdf
  • J. Byrne, K. Baldwin, B. Celikkol, R. Swift, M. Wosnik, (2010, Feb. 11) Development of a tidal energy test platform, Univ. of New Hampshire, CORE, [Online], Available: http://www.mrec.umassd.edu/media/supportingfiles/mrec/agendasan dpresentations/2ndconference/jeff_byrne_development_of_a_tidal_ energy_test_platform.pdf
  • Technology: Oscillating Hydrofoil, Marine Current Resource and Technology Methodology' Website: http://www.esru.strath.ac.uk/EandE/Web_sites/05- 06/marine_renewables/technology/oschydro.htm] [12] Sea Generation Ltd, [Online], Available: http://www.seageneration.co.uk/index.php.
  • L.A. Vega, (1999) “Ocean Thermal Energy Conversion (OTEC)”, [Online], articles/ocean-thermal-energy-conversion-otec-by-l-a-vega-ph- d/#economic
  • H. Kobayashi, S. Jitsuhara, H. Uehara, (2001) “The Present Status and Features of OTEC and Recent Aspects of Thermal Energy Conversion Technologies”, National Maritime Research Institute, Japan, [Online], Available: http://www.nmri.go.jp/main/cooperation/ujnr/24ujnr_paper_jpn/Ko bayashi.pdf
  • Nam Jin Kim , Kim Choon Ng , Wongee Chun, Using the condenser effluent from a nuclear power plant for Ocean Thermal Energy Conversion (OTEC), International Communications in Heat and Mass Transfer, 36, pp. 1008–1013, 2009.
  • A. T. Jones, W. Finley, “Recent Developments in Salinity Gradient Power”, OCEANS 2003 Proceedings, Vol. 4, 22-26 Sept. 2003, pp. 2284 – 2287.
  • Tofte prototype plant, [Online], Available: http://www.statkraft.com/energy-sources/osmotic-power/prototype/
  • V. Galabov, (2013) “On the Wave Energy Potential of the Western Black Sea Shelf”, [Online], Available: http://arxiv.org/ftp/arxiv/papers/1304/1304.7806.pdf
  • Feasibility of Developing Wave Power as a Renewable Energy Resource for Hawaii, (2002), Department of Business, Economic Development, http://energy.hawaii.gov/wp-content/uploads/2011/10/Feasibility- of-Developing-Wave-Power-as-a-Renewable-Energy-Resource-for- Hawaii.pdf [Online], Available:
  • G. Hagerman, "Wave Energy Resource and Economic Assessment for the State of Hawaii," Prepared by SEASUN Power Systems for the Department of Business, Economic Development, and Tourism, Final Report, 1992
  • Isley LIMPED Wave Power Plant, The Queen’s University of Belfast Contract JOR3-CT98-0312 Publishable Rep., 1 November 1998 to 30 April 2002, [Online], Available: http://mhk.pnnl.gov/wiki/images/2/25/Islay_LIMPET_Report.pdf
  • Technology: Oscillating water column (OWC) [Online], Available: http://www.wavegen.com
  • Wave Energy in Europe Current Status and Perspectives, (2002) Centre for Renewable Energy Sources (CRES), [Online], Available: http://www.cres.gr/kape/pdf/download/Wave%20Energy%20Broch ure.pdf
  • R. Yemm, (1999) "The history and status of the Pelamis Wave Energy Converter", "Wave power – Moving towards commercial viability", IMECHE Seminar, London, UK
  • Pelamis Technology, Pelamis Wave Power, [Online], Available: http://www.pelamiswave.com/pelamis-technology
  • L. Hamilton (2006, Oct. 25), “AWS MK II. Deployment, monitoring and evaluation of a prototype advanced wave energy device”, AWS http://ec.europa.eu/research/energy/pdf/gp/gp_events/ocean_energy/ 1200_aws-mkii_en.pdf
  • A. F. de O. Falcao, “Wave energy utilization: A review of the technologies, Renewable and Sustainable Energy Reviews 14, 2010, pp.899–918=
  • J. P. Kofoed, P. Frigaard, E. Friis-Madsen, H. C. Sİrensen, “Prototype testing of the wave energy converter Wave Dragon”, Renewable Energy, Vol. 31, Issue 2, Feb. 2006, pp 181–189.
  • Wave Dragon, [Online], Available: http://www.wavedragon.net
  • M. Saglam, “Wave Energy and Technical Potential of Turkey”, Journal of Naval Science and Engineering, Vol. 6, No.2, 2010, pp. 34-50
  • S. Alatsathianos, P. Fafali, (2008) “Wave and current energy: A viable scheme to exploit the energy potential of Greek seas”, [Online], Available: http://www.docin.com/p-385061618.html
  • Innovation technologies for wind and wave energy in the coastal zone, INWECO (2009-2011), funded by the Bulgarian Science Fund , [Online], Available: http://waveconverter.alle.bg
  • G. Stainov, ”Device for converting the energy of the sea waves”, Bulgarian Patent BG 66042 B1 (Priority Doc. 10.06.2008)(in Bulg.).
  • B. Vassilev, G. Stainov, “Adaptive control of linear electro generator for experimental sea waves energy extracting device”, 20th Int. Conference “ROBOTICS & MECHATRONICS '10", 6-9 Oct. 2010, http://waveconverter.alle.bg [Online], Available:
  • H. Bernhoff, E. Sjöstedt, M. Leijon, “Wave energy resources in sheltered sea areas: A case study of the Baltic Sea” Fifth European Wave Energy Conference, 17-20 September 2003, Cork, Ireland, [Online], Available: http://www.el.angstrom.uu.se/meny/artiklar/Wave%20energy%20re sources%20in%20sheltered%20sea%20areas.pdf
  • J. Falnes, Ocean Waves and Oscillating Systems: Linear Interactions Including Wave-Energy Extraction, Cambridge Univ. Pr. 2013.
  • S. Bozzi, A. M. Mique, A. Antonini, G. Passoni, R. Archetti, “Modeling of a Point Absorber for Energy Conversion in Italian Seas”, Energies, 6, 2013, pp. 3033-3051, [Online], Available: www.mdpi.com/journal/energies
  • L. Szabo, C. Oprea, “Linear Generators for Wave Power Plants to Be Set up Near the Romanian Coasts of the Black Sea”, [Online], Available: http://www.researchgate.net/publication/228680531
  • M. A. Mueller, et al., "Low Speed Linear Electrical Generators for Renewable Energy Applications," Proceedings of the Conference on Linear Drives in Industrial Applications, LDIA '2003, Birmingham (UK), pp. 121-124.
  • S. Z. Baykara, E. H. Figen, A. Kale, T. N. Veziroglu, Hydrogen from hydrogen sulphide in Black Sea, International Journal of Hydrogen Energy 32, 2007, pp. 1246 – 1250
  • K. Petrov, S. Z. Baykara, D. Ebrasu, M. Gulin, A. Veziroglu, “An assessment of electrolytic hydrogen production from H2S in Black Sea waters” International Journal of Hydrogen Energy,36, 2011, pp. 8936-8942
  • E. N. Razkazova-Velkova, M. S. Martinov, L. A. Ljutzkanov, N. Dr. Dermendzhieva, V. N. Beschkov, (2013),Catalytic Oxidation of Sulfide Ions in Black Sea Water, Journal of International Scientific Publications: Materials, Methods &Technologies, Vol. 7, Part 1, pp. 456-463, publications.net/download/materials-methods-and-technologies- 2013-1.pdf.
  • http://www.scientific
  • Daniela Dzhonova-Atanasova was born in Vidin,
  • Bulgaria in 1963. She graduated from the Technical
  • University of Sofia, Bulgaria. There she received her
  • MSc degree in Mechanical Engineering in 1988 and
  • her PhD degree in 1992.
  • Her research interests are in the area of Heat and
  • Mass Transfer Processes, Fluid Dynamics, Energy
  • Efficiency in Chemical Engineering and Renewable
  • Energy Resources. Since 1994 she has been working
  • at the Institute of Chemical Engineering at the
  • Bulgarian Academy of Sciences, Sofia, Bulgaria, as
  • a researcher and Assistant Professor. Since 2011 she has been an Associate
  • Professor at the Institute of Chemical Engineering. She was a lecturer in Fluid
  • Mechanics at the Technical University of Sofia, and in Ocean Energy
  • Conversion (in English) at the European Polytecnical University, Pernik.
  • Dr. Dzhonova is a member of the Union of Chemists in Bulgaria.
  • Rumen Popov was born in Plovdiv, Bulgaria, in
  • M. Adjoudj et al, "Sliding mode control of a doubly fed induction
  • generator for wind turbines", conversion systems. Rev. Roum. Sci. Techn.
  • – Électrotechn. et Énerg., Vol.56, No.1, 2011, pp.15-24.
  • R. Manavalan, C.S. Kumar, "Analysis of Hybrid Renewable Energy
  • System using NPC Inverter", Research Inventy: International Journal of
  • Engineering and Science, Vol.2, No.7, March 2013, pp. 26-30.
  • G. Abad J. Lopez, M.A. Rodrıguez, L. Marroyo, G. Iwanski, "Doubly fed
  • induction machine: modeling and control for wind energy generation",
  • IEEE press Series on Power Engineering, Aug 2011.
  • F. Poitiers, M. Machmoum, R.L. Doeuff and M.E. Zaim, “Control of a
  • doubly-fed induction generator for wind energy conversion system”,
  • Australasian Universities Power Engineering Conference AUPEC 2009, Australia.
  • M. Hilal, Y. Errami, M. Benchagra and M. Maaroufi "Fuzzy Power
  • Control For Doubly Fed Induction Generator Based Wind Farm," Journal
  • of Theoretical and Applied Information Technology, 30th September
  • 2012, Vol. 43 No.2, pp.321-330.
  • F. Valenciaga, C.A. Evangelista "Sliding active and reactive power
  • control of a wind energy conversion system", IET Control Theory and
  • Applications, Vol.4, No.11, 2010, pp.2479-2490.
  • R. Palm, "Sliding mode fuzzy control," Fuzzy Systems, IEEE conference
  • proceeding, Vol.2, 2002, pp. 1393-1398.
  • S. Arezki, M. Boudour, “Contribution to the improvement of the
  • performances of a chain of conversion of energy fed by a double source”,
  • 2nd International Conference on Advances in Energy Engineering
  • (ICAEE 2011), December 2011, Bangkok , Thailand.
  • F. Piltan, N. Sulaiman, S. Roosta, A. Gavahian, S. Soltani, “Artificial
  • Chattering Free on-line Fuzzy Sliding Mode Algorithm for Uncertain
  • System: Applied in Robot Manipulator, International Journal of
  • Engineering, Vol.5, No.5, 2011, pp.360-379.
  • L. Xu and P. Cartwright, "Direct Active and Reactive Power Control of
  • DFIG for Wind Energy Generator", IEEE Transactions on Energy
  • Conversion, Vol.21, No.3, September 2006, pp. 750–758.

Year 2013, Volume: 1 Issue: 2, 47 - 102, 01.06.2013

Abstract

References

  • R.W. Erickson and D. Maksimovic, "Fundamentals of Power Electronics", Springer Press, 1997.
  • G. YANIK was born in Istanbul, Turkey,
  • in 19 He received his B.S. and M.S.
  • degrees in Electrical Engineering at Yildiz
  • Technical University, Istanbul, in 2008
  • and 2011, respectively.
  • He is a Research Assistant in the
  • Department of Electrical Engineering,
  • Yildiz Technical University since 2008.
  • His research interests include DC-DC converters, soft
  • switching techniques, power factor correction and inductor design.
  • E. ISEN was born in Bandırma, Turkey,
  • in 19 He received his B.S., M.S. and
  • Ph.D. degrees in electrical engineering at
  • Yildiz Technical University, Istanbul, in
  • 2003, 2005 and 2012, respectively.
  • He was a Research Assistant in the
  • Department of Electrical Engineering,
  • Yildiz Technical University between 2005 and 2012. He is an
  • Assistant Professor in the Department of Electrical and
  • Electronics Engineering, Kirklareli University. His current
  • research interests include grid connected inverters, renewable
  • energy conversion systems and power electronics.
  • E.V. Larsen, D.A. Swann, Applying power system stabilizers, Part I, II, III, IEEE Trans. on Power App. and Syst., PAS-100(1981), 3017-3041.
  • F.P. deMello, C.A. Concordia, Concept of synchronous machine stability as affected by excitation control, IEEE Trans.PAS-103 (1969) 316–329.
  • P.M. Anderson, A.A. Fouad, Power system control and stability, lowa State University Press, Ames, 1977.
  • A. Ghosh, G. Ledwich, O.P. Malik, G.S. Hope, Power system stabilizer based on adaptive control techniques,
  • IEEE Trans. PAS 103 (1984), 1983–1989.
  • S.J. Chang, Y.S. Chow, O.P. Malik, G.S. Hope, An adaptive synchronous machine stabilizer, IEEE Trans. PWRS 1, (1986), 101–109.
  • A. Pierre, A perspective on adaptive control of power systems, IEEE Trans. PWRS 2 (1987), 387–396.
  • A. Y. Sivaramakrishnan, M. V. Hariharan, M. C. Srisailam, Design of a variable-structure load controller using pole assignment technique, Int. J. Contr.,40(1984), 487-498.
  • Kothari M.L., Nanda J., K. Bhattacharya, Design of variable structure power system stabilizers with desired eigenvalues in the sliding mode, IEE Proc. Gen., Trans. and Distr., 140(1993), 263-268.
  • Bhattacharya K., Kothari M.L and Nanda J., Design of Discrete-Mode Variable Structure Power System Stabilisers, Electrical power & Energy System, Vol.17, n 6,pp.399-106,1995.
  • Y.M. Park, W. Kim, Discrete time adaptive sliding mode power system stabilizer with only input/output measurements, Electrical power & Energy systems, 18(1996),509-517.
  • S.S. Lee and J.K. Park, Design of power system stabilizer using observer / sliding mode, observer/sliding mode model following and H∞ / sliding mode controllers for small signal stability study, Electrical Power & Energy Systems, Vol.20, 8(1998),pp.543-553.
  • A.L. Elshafei, K. El-Metwally, Power system stabilization via adaptive fuzzy logic, IEEE Proc. of International Symposium on Intelligent Control,(1997),89-95, Istanbul, Turkey.
  • N.H. Zadeh, A. Kalam, A direct adaptive fuzzy power system stabilizer, IEEE Trans. on Energy Conversion, 14(1999).
  • H.M. SoIiman, A.L. Eshafei, A.A. Shaltout, M.F. Mors, Robust power system stabiliser, IEE Proc-Elec. Power Appl., 147(2000),285-291.
  • N.H. Zadeh, A. Kalam, An indirect adaptive fuzzy-logic power system stabiliser, Electrical power & Energy systems, 24(2002), 837-842.
  • A.L. Elshafei, K. El-Metwally, A.A. Shaltout, A variable structure adaptive fuzzy logic stabilizer for single and multi-machine power systems, Control Engineering Practice,13,(2005),413-423.
  • H. M. Soliman, A.L. Elshafei, F. Bendary, W. Mansour, LMI static output-feedback design of fuzzy power system stabilizers, Expert Systems with Applications,36(2009),6817-6825.
  • X. Yu, Z. Man and, B. Wu,” Design of fuzzy sliding mode control systems”, Fuzzy sets and systems. 9165(1998), 295-306.
  • J. J. Slotine, S. S. Sastry, Tracking control of non-linear systems using sliding surfaces, with application to robot manipulators, Int. J. Contr., 38(1983), 465-492.
  • I. R. Petersen, A procedure for simultaneously stabilizing a collection of single input linear systems using non-linear state feedback control, Automatica, 23(1987), 33-40.
  • K. D. Young, Controller design for a manipulator using the theory of variable structure systems, IEEE Trans. Man Cyber., 8(197, 101-109.
  • Y.M. Park, W. Kim, Discrete time adaptive sliding mode power system stabilizer with only input/output measurements, Elect. Power & Energy Systems, 18, (1996), 509-517.
  • J. Ackerman, V. Utkin, Sliding mode control design based on Ackerman’s formula, IEEE Trans. on Aut. Control, 43, (1998), 234-237.
  • V. I. Utkin, Variable structure systems with sliding modes, IEEE Trans. Aut. Cont., AC22 (1977), 212-222.
  • K. D. Young, V. I. Utkin, U. Ozguner, A control Engineer’s guide to sliding mode control, IEEE Trans on Control Syst. Technology, 7 (1999), 328-342.
  • P. Kundur, Power System Control and Stability, Ed. McGrawHill Inc., 1994.
  • http://epp.eurostat.ec.europa.eu/statistics_explained/index.php/Elect
  • ricity_production_and_supply_statistics
  • J. D. Isaacs, W. R. Schmitt, “Ocean Energy: Forms and prospects”, Nature, Vol. 207, Number 4428, pp. 265-273, 18 Jan. 1980.
  • S. Alatsathianos, P. Fafali, “Wave and current energy: A viable scheme to exploit the energy potential of Greek seas”, [Online], Available: http://www.researchgate.net/publication
  • Tidal Resources, [Online], Available: http://www.see.murdoch.edu.au/resources/info/Res/tidal/index.html
  • L B Bernshtein (1996) Tidal Power Plants. Seoul: Korea Ocean Research and Development Institute (KORDI). [Online], Available: http://repository.tudelft.nl/assets/uuid:46a59861-0817-4bf7-a252- b3a9562fdcd6/L.B._Bernshtein_-_Tidal_power_plants.pdf
  • J. Twidell, T. Weir, Renewable Energy Resources, (2nd ed.), Taylor & Francis, 2006
  • S. S. Khalid, Z. Liang, N. Shah, “Harnessing Tidal Energy Using Vertical Axis Tidal Turbine” Research Journal of Applied Sciences, Engineering and Technology 5(1) 2012, pp. 239-252, [Online], Available: http://maxwellsci.com/print/rjaset/v5-239-252.pdf
  • J. Byrne, K. Baldwin, B. Celikkol, R. Swift, M. Wosnik, (2010, Feb. 11) Development of a tidal energy test platform, Univ. of New Hampshire, CORE, [Online], Available: http://www.mrec.umassd.edu/media/supportingfiles/mrec/agendasan dpresentations/2ndconference/jeff_byrne_development_of_a_tidal_ energy_test_platform.pdf
  • Technology: Oscillating Hydrofoil, Marine Current Resource and Technology Methodology' Website: http://www.esru.strath.ac.uk/EandE/Web_sites/05- 06/marine_renewables/technology/oschydro.htm] [12] Sea Generation Ltd, [Online], Available: http://www.seageneration.co.uk/index.php.
  • L.A. Vega, (1999) “Ocean Thermal Energy Conversion (OTEC)”, [Online], articles/ocean-thermal-energy-conversion-otec-by-l-a-vega-ph- d/#economic
  • H. Kobayashi, S. Jitsuhara, H. Uehara, (2001) “The Present Status and Features of OTEC and Recent Aspects of Thermal Energy Conversion Technologies”, National Maritime Research Institute, Japan, [Online], Available: http://www.nmri.go.jp/main/cooperation/ujnr/24ujnr_paper_jpn/Ko bayashi.pdf
  • Nam Jin Kim , Kim Choon Ng , Wongee Chun, Using the condenser effluent from a nuclear power plant for Ocean Thermal Energy Conversion (OTEC), International Communications in Heat and Mass Transfer, 36, pp. 1008–1013, 2009.
  • A. T. Jones, W. Finley, “Recent Developments in Salinity Gradient Power”, OCEANS 2003 Proceedings, Vol. 4, 22-26 Sept. 2003, pp. 2284 – 2287.
  • Tofte prototype plant, [Online], Available: http://www.statkraft.com/energy-sources/osmotic-power/prototype/
  • V. Galabov, (2013) “On the Wave Energy Potential of the Western Black Sea Shelf”, [Online], Available: http://arxiv.org/ftp/arxiv/papers/1304/1304.7806.pdf
  • Feasibility of Developing Wave Power as a Renewable Energy Resource for Hawaii, (2002), Department of Business, Economic Development, http://energy.hawaii.gov/wp-content/uploads/2011/10/Feasibility- of-Developing-Wave-Power-as-a-Renewable-Energy-Resource-for- Hawaii.pdf [Online], Available:
  • G. Hagerman, "Wave Energy Resource and Economic Assessment for the State of Hawaii," Prepared by SEASUN Power Systems for the Department of Business, Economic Development, and Tourism, Final Report, 1992
  • Isley LIMPED Wave Power Plant, The Queen’s University of Belfast Contract JOR3-CT98-0312 Publishable Rep., 1 November 1998 to 30 April 2002, [Online], Available: http://mhk.pnnl.gov/wiki/images/2/25/Islay_LIMPET_Report.pdf
  • Technology: Oscillating water column (OWC) [Online], Available: http://www.wavegen.com
  • Wave Energy in Europe Current Status and Perspectives, (2002) Centre for Renewable Energy Sources (CRES), [Online], Available: http://www.cres.gr/kape/pdf/download/Wave%20Energy%20Broch ure.pdf
  • R. Yemm, (1999) "The history and status of the Pelamis Wave Energy Converter", "Wave power – Moving towards commercial viability", IMECHE Seminar, London, UK
  • Pelamis Technology, Pelamis Wave Power, [Online], Available: http://www.pelamiswave.com/pelamis-technology
  • L. Hamilton (2006, Oct. 25), “AWS MK II. Deployment, monitoring and evaluation of a prototype advanced wave energy device”, AWS http://ec.europa.eu/research/energy/pdf/gp/gp_events/ocean_energy/ 1200_aws-mkii_en.pdf
  • A. F. de O. Falcao, “Wave energy utilization: A review of the technologies, Renewable and Sustainable Energy Reviews 14, 2010, pp.899–918=
  • J. P. Kofoed, P. Frigaard, E. Friis-Madsen, H. C. Sİrensen, “Prototype testing of the wave energy converter Wave Dragon”, Renewable Energy, Vol. 31, Issue 2, Feb. 2006, pp 181–189.
  • Wave Dragon, [Online], Available: http://www.wavedragon.net
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  • http://www.scientific
  • Daniela Dzhonova-Atanasova was born in Vidin,
  • Bulgaria in 1963. She graduated from the Technical
  • University of Sofia, Bulgaria. There she received her
  • MSc degree in Mechanical Engineering in 1988 and
  • her PhD degree in 1992.
  • Her research interests are in the area of Heat and
  • Mass Transfer Processes, Fluid Dynamics, Energy
  • Efficiency in Chemical Engineering and Renewable
  • Energy Resources. Since 1994 she has been working
  • at the Institute of Chemical Engineering at the
  • Bulgarian Academy of Sciences, Sofia, Bulgaria, as
  • a researcher and Assistant Professor. Since 2011 she has been an Associate
  • Professor at the Institute of Chemical Engineering. She was a lecturer in Fluid
  • Mechanics at the Technical University of Sofia, and in Ocean Energy
  • Conversion (in English) at the European Polytecnical University, Pernik.
  • Dr. Dzhonova is a member of the Union of Chemists in Bulgaria.
  • Rumen Popov was born in Plovdiv, Bulgaria, in
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Publication Date June 1, 2013
Published in Issue Year 2013 Volume: 1 Issue: 2

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