dc.relation | Ahuja, D., Tatsutani, M., 2009. Sustainable energy for developing countries. SAPIENS Surv. Perspect.
Integrating Environ. Soc.
Álvarez Castañeda, W.F., Martínez Tejada, L.A., Alvarado Fajardo, A.C., 2013. Aplicación de la
ecuación de Weibull para determinar potencial eólico en Tunja-Colombia, in: XX Simposio
Peruano de energía solar - XXSPES. Presented at the XX Simposio Peruano de energía solar,
APES, Asociación Peruana de Energía Solar y del Ambiente, Tacna, Perú, p. 8.
Alvarez-Silva, O., Osorio, A.F., 2015. Salinity gradient energy potential in Colombia considering site
specific constraints. Renew. Energy 74, 737–748.
https://doi.org/10.1016/j.renene.2014.08.074
Andrade, C.A., Barton, E.D., 2000. Eddy development and motion in the Caribbean Sea. J. Geophys.
Res. Oceans 105, 26191–26201. https://doi.org/10.1029/2000JC000300
Ávila, J.D., 2017. Realidades y necesidades del licenciamiento en los proyectos de generación por
fuentes no convencionales, in: 1er encuentro internacional de energías renovables,
viabilizando la diversificación de la matriz energética. Presented at the 1er encuentro
internacional de energías renovables, viabilizando la diversificación de la matriz energética,
Riohacha, La Guajira, Colombia.
Baker, R., Safarzade, E., 2009. Azerbaijan Alternative Energy Sector Analysis and Roadmap (No. RCDTA 7274). ADB, Asian Development Bank.
Botero B, S., Isaza C, F., Valencia, A., 2010. Evaluation of methodologies for remunerating wind
power’s reliability in Colombia. Renew. Sustain. Energy Rev. 14, 2049–2058.
https://doi.org/10.1016/j.rser.2010.02.005
Breton, S.-P., Moe, G., 2009. Status, plans and technologies for offshore wind turbines in Europe and
North America. Renew. Energy 34, 646–654. https://doi.org/10.1016/j.renene.2008.05.040
British Standard, 2006. Wind Turbines: Part 1 Design requirements BS EN 61400-1:2005.
Burch, S., 2010. In pursuit of resilient, low carbon communities: An examination of barriers to action
in three Canadian cities. Energy Policy 38, 7575–7585.
https://doi.org/10.1016/j.enpol.2009.06.070
Castillo-Ramírez, A., Mejía-Giraldo, D., Molina-Castro, J.D., 2017. Fiscal incentives impact for RETs
investments in Colombia. Energy Sources Part B Econ. Plan. Policy 12, 759–764.
https://doi.org/10.1080/15567249.2016.1276648
Castro Ferreira, G., 2017. Esquema regulatorio, in: 1er encuentro internacional de energías
renovables, viabilizando la diversificación de la matriz energética. Riohacha, La Guajira,
Colombia.
Cheng, P.W., 2002. A reliability based design methodology for extreme responses of offshore wind
turbines. DUWIND Delft University Wind Energy Research Institute, Delft, The Netherlands.
CIOH, 2010. Climatología de los principales puertos del caribe colombiano - Riohacha [WWW
Document]. URL
https://www.cioh.org.co/meteorologia/Climatologia/ResumenRiohacha1.php (accessed
1.20.19).
Colmenar-Santos, A., Perera-Perez, J., Borge-Diez, D., de Palacio-Rodríguez, C., 2016. Offshore wind
energy: A review of the current status, challenges and future development in Spain. Renew.
Sustain. Energy Rev. 64, 1–18. https://doi.org/10.1016/j.rser.2016.05.087
Contreras, J., Rodríguez, Y.E., 2016. Incentives for wind power investment in Colombia. Renew.
Energy 87, 279–288. https://doi.org/10.1016/j.renene.2015.10.018
CREG, 2018a. Comisión de Regulación de Energía y Gas - CREG - Mission and Vision [WWW
Document]. URL http://www.creg.gov.co/index.php/en/2016-12-19-19-29-04/who-arewe/mission-and-vision (accessed 3.11.18).
CREG, 2018b. Resolución 015 de 2018 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/1c09d18d2d5ffb5b05256eee00709c02/65f1aaf1d57726
a90525822900064dac/$FILE/Creg015-2018.pdf (accessed 3.10.18).
CREG, 2017. Circular N°013 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/52188526a7290f8505256eee0072eba7/0f15fddec93f80
ef052580eb005239dc?OpenDocument (accessed 3.11.18).
CREG, 2016a. Resolución 243 de 2016 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/1c09d18d2d5ffb5b05256eee00709c02/82606579833fa
7d3052580c0004f7b6a/$FILE/Creg243-2016.pdf (accessed 3.11.18).
CREG, 2016b. Resolución 026 de 2016 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/1c09d18d2d5ffb5b05256eee00709c02/fbb3d37107dac
62d05257f70004c5277?OpenDocument (accessed 3.11.18).
CREG, 2016c. Alternativas para la integración de fuentes no convencionales de energía renovable
(FNCER) al parque generador.
CREG, 2015a. Resolución 024 de 2015 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/1c09d18d2d5ffb5b05256eee00709c02/67513914c35d6
b8c05257e2d007cf0b0/$FILE/Creg024-2015.pdf (accessed 3.11.18).
CREG, 2015b. Resolución 061 de 2015 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/1c09d18d2d5ffb5b05256eee00709c02/a4170681d70b3
2f905257e4a006d8d5a/$FILE/Creg061-2015.pdf (accessed 3.11.18).
CREG, 2014a. Resolución 132 de 2014 [WWW Document]. URL http://www.suinjuriscol.gov.co/viewDocument.asp?id=4019874 (accessed 3.11.18).
CREG, 2014b. Decreto 2469 de 2014 [WWW Document]. URL http://www.suinjuriscol.gov.co/viewDocument.asp?id=1454003 (accessed 3.11.18).
CREG, 2013. Resolución 153 de 2013 [WWW Document]. URL http://www.suinjuriscol.gov.co/clp/contenidos.dll/Resolucion/4020552?fn=documentframe.htm$f=templates$3.0 (accessed 3.11.18).
CREG, 2010. Resolución 005 de 2010 [WWW Document]. URL
http://apolo.creg.gov.co/Publicac.nsf/Indice01/Resolucion-2010-Creg005-2010 (accessed
3.15.18).
CREG, 1996. Resolución 085 de 1996 [WWW Document]. URL http://www.suinjuriscol.gov.co/viewDocument.asp?id=4016388
Devis-Morales, A., Montoya-Sánchez, R.A., Bernal, G., Osorio, A.F., 2017. Assessment of extreme wind
and waves in the Colombian Caribbean Sea for offshore applications. Appl. Ocean Res. 69, 10–
26. https://doi.org/10.1016/j.apor.2017.09.012
Devis-Morales, A., Montoya-Sánchez, R.A., Osorio, A.F., Otero-Díaz, L.J., 2014. Ocean thermal energy
resources in Colombia. Renew. Energy 66, 759–769.
https://doi.org/10.1016/j.renene.2014.01.010
Dinero, 2015. El fenómeno de El Niño revive la posibilidad de un apagón en Colombia. Dinero -Carátula.
Dudhia, J., Gill, D., Manning, K., Wang, W., Bruyere, C., Kelly, S., Lackey, K., 2004. PSU/NCAR
Mesoscale Modeling System Tutorial Class Notes and User’s Guide: MM5 Modeling System
Version 3.
Edsand, H.-E., 2017. Identifying barriers to wind energy diffusion in Colombia: A function analysis of
the technological innovation system and the wider context. Technol. Soc. 49, 1–15.
https://doi.org/10.1016/j.techsoc.2017.01.002
Elliott, D., Aspliden, C., Gower, G., Holladay, C., Schwartz, M., 1987. Wind Energy Resource
Assessment of the Caribbean and Central America (No. PNL-6234, 971424). U.S. Department
of Energy, Richland, Washington. https://doi.org/10.2172/971424
ESMAP, 2010. Review of policy framework for increased reliance on wind energy in Colombia. Energy
Unit, Sustainable Development Department, The World Bank.
Flavin, C., Gonzalez, M., Majano, A.M., Ochs, A., da Rocha, M., Tagwerker, P., 2014. Study on the
Development of the Renewable Energy Market in Latin America and the Caribbean (Working
paper No. OVE/WP-02/14, IDB RPF #14-002). Inter-American Development Bank.
Franco-Cardona, C.J., Castañeda-Riascos, M., Valencia-Arias, A., Bermúdez-Hernández, J., 2015. The
energy trilemma in the policy design of the electricity market. DYNA 82, 160–169.
https://doi.org/10.15446/dyna.v82n194.48595
Froese, M., 2018. Offshore wind market expected to exceed $60 billion by 2024 [WWW Document].
Wind. Eng. Dev. URL https://www.windpowerengineering.com/business-newsprojects/uncategorized/offshore-wind-energy-market-expected-to-exceed-usd-60-billion-by2024/ (accessed 12.5.18).
Gaona, E.E., Trujillo, C.L., Guacaneme, J.A., 2015. Rural microgrids and its potential application in
Colombia. Renew. Sustain. Energy Rev. 51, 125–137.
https://doi.org/10.1016/j.rser.2015.04.176
Gatzert, N., Kosub, T., 2016. Risks and risk management of renewable energy projects: The case of
onshore and offshore wind parks. Renew. Sustain. Energy Rev. 60, 982–998.
https://doi.org/10.1016/j.rser.2016.01.103
GE Renewable Energy, 2018. World’s Largest Offshore Wind Turbine [WWW Document]. Haliade-X
Offshore Wind Turbine Platf. URL https://www.ge.com/renewableenergy/windenergy/turbines/haliade-x-offshore-turbine (accessed 12.5.18).
Green, R., Vasilakos, N., 2011. The economics of offshore wind. Energy Policy, Special Section on
Offshore wind power planning, economics and environment 39, 496–502.
https://doi.org/10.1016/j.enpol.2010.10.011
GWEC, 2016. Global Wind Report - Annual Market Update 2016. GWEC, Global Wind Energy Council.
Ho, A., Mbistrova, A., Corbetta, G., 2016. The European offshore wind industry - key trends and
statistics 2015. EWEA, The European Wind Energy Association.
Hoogwijk, M., Graus, W., 2008. Global potential of renewable energy sources: a literature assessment
(Background report No. PECSNL072975). ECOFIS.
IDEAM, 2018. Atlas Interactivo - Vientos - IDEAM [WWW Document]. URL
http://atlas.ideam.gov.co/visorAtlasVientos.html (accessed 3.12.18).
IPSE, 2018. IPSE - Instituto de Planificación y Promoción de Soluciones Energéticas para las Zonas No
Interconectadas [WWW Document]. IPSE. URL http://www.ipse.gov.co/ (accessed 3.15.18).
IRENA, 2014. Pan-Arab Renewable Energy Strategy 2030, Roadmap of Actions for Implementation.
IRENA, International Renewable Energy Agency.
Jimenez, M., Franco, C.J., Dyner, I., 2016. Diffusion of renewable energy technologies: The need for
policy in Colombia. Energy 111, 818–829. https://doi.org/10.1016/j.energy.2016.06.051
Kaplan, Y.A., 2015. Overview of wind energy in the world and assessment of current wind energy
policies in Turkey. Renew. Sustain. Energy Rev. 43, 562–568.
https://doi.org/10.1016/j.rser.2014.11.027
Kota, S., Bayne, S.B., Nimmagadda, S., 2015. Offshore wind energy: A comparative analysis of UK, USA
and India. Renew. Sustain. Energy Rev. 41, 685–694.
https://doi.org/10.1016/j.rser.2014.08.080
Lee, M.E., Kim, G., Jeong, S.-T., Ko, D.H., Kang, K.S., 2013. Assessment of offshore wind energy at
Younggwang in Korea. Renew. Sustain. Energy Rev. 21, 131–141.
https://doi.org/10.1016/j.rser.2012.12.059
Mejía, J.M., Chejne, F., Smith, R., Rodríguez, L.F., Fernández, O., Dyner, I., 2006. Simulation of wind
energy output at Guajira, Colombia. Renew. Energy 31, 383–399.
https://doi.org/10.1016/j.renene.2005.03.014
MEM, 2011. Moroccan project of wind energy 2.000 MW [WWW Document]. URL
http://www.mem.gov.ma/SitePages/GrandChantiersEn/DEREEWindEnergy.aspx (accessed
3.15.18).
Meyer, L., Pachauri, R.K., 2015. Climate Change 2014: Synthesis Report. IPCC - Intergovernmental
Panel on Climate Change, Geneva, Switzerland.
MINMINAS, 2018. Misión y visión- Ministerio de Minas y Energía [WWW Document]. URL
https://www.minminas.gov.co/mision-y-vision (accessed 3.15.18).
MINMINAS, 2017. Decreto 348 de 2017 [WWW Document]. URL
http://es.presidencia.gov.co/normativa/normativa/DECRETO%20348%20DEL%2001%20DE%2
0MARZO%20DE%202017.pdf (accessed 3.11.18).
Murillo, L.G., 2017. La paz está en nuestra naturaleza, in: 1er encuentro internacional de energías
renovables, viabilizando la diversificación de la matriz energética. Riohacha, La Guajira,
Colombia.
Nesamalar, J.J.D., Venkatesh, P., Raja, S.C., 2017. The drive of renewable energy in Tamilnadu: Status,
barriers and future prospect. Renew. Sustain. Energy Rev. 73, 115–124.
https://doi.org/10.1016/j.rser.2017.01.123
Netherlands Enterprise Agency, 2015. Offshore wind energy in the Netherlands. Netherlands
Enterprise Agency, Utrecht, Netherlands.
NOAA, 2016. NCEP North American Regional Reanalysis: NARR [WWW Document]. URL
https://www.esrl.noaa.gov/psd/data/gridded/data.narr.html
NRF, 2012. Renewable energy in Morocco [WWW Document]. URL
http://www.nortonrosefulbright.com/knowledge/publications/66419/renewable-energy-inmorocco (accessed 3.15.18).
Olaya, Y., Arango-Aramburo, S., Larsen, E.R., 2016. How capacity mechanisms drive technology choice
in power generation: The case of Colombia. Renew. Sustain. Energy Rev. 56, 563–571.
https://doi.org/10.1016/j.rser.2015.11.065
Ordóñez, G., Osma, G., Vergara, P., Rey, J., 2014. Wind and Solar Energy Potential Assessment for
Development of Renewables Energies Applications in Bucaramanga, Colombia. IOP Conf. Ser.
Mater. Sci. Eng. 59, 012004. https://doi.org/10.1088/1757-899X/59/1/012004
Ortega-Arango, S., 2010. Estudio de aprovechamiento de la energía del oleaje en Isla Fuerte (Caribe
colombiano) (Master Thesis). Universidad Nacional de Colombia, Medellín, Colombia.
Ortiz, R.P., 2017. Las energías renovables en la matriz energética de Colombia, in: 1er encuentro
internacional de energías renovables, viabilizando la diversificación de la matriz energética.
Presented at the 1er encuentro internacional de energías renovables, viabilizando la
diversificación de la matriz energética, Riohacha, La Guajira, Colombia.
Osorio, A.F., Ortega, S., Arango-Aramburo, S., 2016. Assessment of the marine power potential in
Colombia. Renew. Sustain. Energy Rev. 53, 966–977.
https://doi.org/10.1016/j.rser.2015.09.057
Pabón Hernández, S.M., 2018. Geospatial assessment of the wind energy for an onshore project in
the Caribbean region of Colombia, in: 7th Academic International Workshop Advances in
Cleaner Production “Cleaner Production for Achieving Sustainable Develpment Goals.”
Presented at the 7th International workshop advances in cleaner production, Barranquilla,
Colombia, p. 197.
Perdomo Delgado, D.A., Jaimes Herrera, M.T., Almeira, J.E., 2014. La energía eólica como energía
alternativa para el futuro de Colombia. Centauro 6, 111–120.
Pereira Blanco, M.J., 2015. Relación entre energía, medio ambiente y desarrollo económico a partir
del análisis jurídico de las energías renovables en Colombia. Saber Cienc. Lib. 10, 35–60.
https://doi.org/10.18041/2382-3240/saber.2015v10n1.868
Pérez Bedoya, E., Osorio Osorio, J.A., 2002. Energía, pobreza y deterioro ecológico en Colombia:
introducción a las energías alternativas. Estrategias y Desarrollo.
Pérez-Denicia, E., Fernández-Luqueño, F., Vilariño-Ayala, D., Manuel Montaño-Zetina, L., Alfonso
Maldonado-López, L., 2017. Renewable energy sources for electricity generation in Mexico: A
review. Renew. Sustain. Energy Rev. 78, 597–613. https://doi.org/10.1016/j.rser.2017.05.009
Perveen, R., Kishor, N., Mohanty, S.R., 2014. Off-shore wind farm development: Present status and
challenges. Renew. Sustain. Energy Rev. 29, 780–792.
https://doi.org/10.1016/j.rser.2013.08.108
Prias Caicedo, O.F., 2010a. Programa de uso racional y eficiente de energía y fuentes no
convencionales - PROURE, Plan de acción 2010-2015. MINMINAS - Ministerio de Minas y
Energía, Bogotá, Colombia.
Prias Caicedo, O.F., 2010b. Programa de uso racional y eficiente de energía y fuentes no
convencionales - PROURE, Plan de acción 2010-2015. MINMINAS - Ministerio de Minas y
Energía, Bogotá, Colombia.
Realpe Jimenez, A., Diazgranados, J.A., Acevedo Morantes, M.T., 2012. Electricity generation and
wind potential assessment in regions of Colombia. DYNA 79, 116–122.
Renewables First, 2018. What is the wind class of a wind turbine? Renew. First - Hydro Wind Co. URL
https://www.renewablesfirst.co.uk/windpower/windpower-learning-centre/what-is-thewind-class-of-a-wind-turbine/ (accessed 12.5.18).
Resch, G., Panzer, C., Ortner, A., 2014. 2030 RES targets for Europe - a brief pre-assessment of
feasibility and impacts. Vienna University of Technology, Institute of Energy systems and
Electric Drives, Energy Economics Group (EEG), Vienna, Austria.
Ricaurte-Villota, C., Bastidas Salamanca, M.L. (Eds.), 2017. Regionalización oceanográfica: una visión
dinámica del caribe, Publicaciones Especiales de INVEMAR. INVEMAR, Santa Marta, D.T.C.H.,
Colombia.
Richard, C., 2018. UK and China to open offshore wind research centre [WWW Document]. URL
https://www.windpoweroffshore.com/article/1491968 (accessed 12.6.18).
Richard, C., 2017. Offshore capacity grows by 10% in H1 2017 [WWW Document]. URL
https://www.windpoweroffshore.com/article/1443566 (accessed 12.5.18).
Rodrigues, S., Restrepo, C., Kontos, E., Teixeira Pinto, R., Bauer, P., 2015. Trends of offshore wind
projects. Renew. Sustain. Energy Rev. 49, 1114–1135.
https://doi.org/10.1016/j.rser.2015.04.092
Román, R., Cansino, J.M., Rodas, J.A., 2018. Analysis of the main drivers of CO2 emissions changes in
Colombia (1990–2012) and its political implications. Renew. Energy 116, 402–411.
https://doi.org/10.1016/j.renene.2017.09.016
Rueda Bayona, J.G., 2017. Identificación de la influencia de las variaciones convectivas en la
generación de cargas transitorias y su efecto hidromecánico en las estructuras Offshore (PhD
Thesis). Universidad del Norte, Barranquilla, Colombia.
Rueda Bayona, J.G., 2015. Caracterización hidromecánica de plataformas marinas en aguas
intermedias sometidas a cargas de oleaje y corriente mediante modelación numérica.
Rueda-Bayona, J., Elles, C., Sánchez, E., González, Á., Rivillas, D.G., 2016. Identificación de patrones de
variabilidad climática a partir de análisis de componentes principales, Fourier y clúster kmedias. Rev. Tecnura 20, 55–68. https://doi.org/10.14483/udistrital.jour.tecnura.2016.4.a04
Rueda-Bayona, J.G., Osorio-Arias, A.F., Guzmán, A., Rivillas-Ospina, G., 2019. Alternative method to
determine extreme hydrodynamic forces with data limitations for offshore engineering. J.
Waterw. Port Coast. Ocean Eng. 145, 05018010(1–16).
https://doi.org/10.1061/(ASCE)WW.1943-5460.0000499
Ruiz, B.J., Rodríguez-Padilla, V., 2006. Renewable energy sources in the Colombian energy policy,
analysis and perspectives. Energy Policy 34, 3684–3690.
https://doi.org/10.1016/j.enpol.2005.08.007
SEI, 2002. Cost Benefit Analysis of Government support options for offshore wind energy. SEI,
Sustainable Energy Ireland, Ireland.
Senado de la República de Colombia, 2015. Ley 1753 de 2015 [WWW Document]. URL
http://www.secretariasenado.gov.co/senado/basedoc/ley_1753_2015.html (accessed
3.16.18).
Senado de la República de Colombia, 2014. Ley 1715 de 2014 [WWW Document]. URL
http://www.secretariasenado.gov.co/senado/basedoc/ley_1715_2014.html (accessed
3.16.18).
Senado de la República de Colombia, 2001. Ley 697 de 2001 [WWW Document]. URL
http://www2.igac.gov.co/igac_web/normograma_files/LEY6972001.pdf (accessed 12.5.18).
Statista, 2018. Cumulative offshore wind capacity by country 2017 | Statistic [WWW Document].
Statista. URL https://www.statista.com/statistics/258946/cumulative-offshore-wind-powercapacity-by-country/ (accessed 12.5.18).
Superintendencia de Industria y Comercio, 2018. Superintendencia de Industria y Comercio -
República de Colombia [WWW Document]. URL http://www.sic.gov.co/mision-y-vision
(accessed 3.15.18).
Superservicios, 2018. Superservicios - Superintendencia de Servicios Públicos Domiciliarios -
República de Colombia [WWW Document]. URL
http://www.superservicios.gov.co/Institucional (accessed 3.15.18).
Syndicat des énergies renouvables, 2013. Une feuille de route pour l’éolien en mer: 15000 MW en
2030. Syndicat des énergies renouvables, Paris.
United Nations Climate Change, 2017. The Paris Agreement [WWW Document]. URL
https://unfccc.int/process-and-meetings/the-paris-agreement/the-paris-agreement (accessed
12.2.18).
UPME, 2018. UPME - Unidad de Planeación Minero Energética [WWW Document]. URL
http://www1.upme.gov.co/Entornoinstitucional/NuestraEntidad/Paginas/QuienesSomos.aspx (accessed 3.15.18).
UPME, 2016a. Comunicado de Prensa No 002-2016 [WWW Document]. URL
http://www.upme.gov.co/Comunicados/2016/Comunicado_UPME_No02-2016.pdf (accessed
3.15.18).
UPME, 2016b. Plan indicativo de expansión de cobertura de energía eléctrica, PIEC 2016-2020 [WWW
Document]. URL http://www.upme.gov.co/Siel/Siel/Portals/0/Piec/PIEC_2016-
2020_PublicarDic202016.pdf
UPME, 2015a. Integración de las energías renovables no convencionales en Colombia. UPME, Unidad
de Planeación Minero Energética, Bogotá, Colombia.
UPME, 2015b. Plan de expansión de referencia generación - transmisión 2015 - 2029 [WWW
Document]. URL http://www1.upme.gov.co/Documents/Plan-Expansion-2015-
2029/Plan_GT_2015-2029_VF_22-12-2015.pdf
UPME, 2015c. Resolución 281 de 2015 [WWW Document]. URL
https://www.minminas.gov.co/documents/10180/18995913/res_281.pdf/6077cb6c-dabc43fc-8403-cb1c5e832b37 (accessed 3.15.18).
U.S. Department of Energy, 2008. 20% wind energy by 2030: Increasing wind energy’s contribution to
U.S. electricity supply (No. DOE/GO--102008-2567, 1216732). U.S. Department of Energy,
United States of America. https://doi.org/10.2172/1216732
Valencia, J., 2017. Hoja de ruta para la incorporación de energías renovables en Colombia, in: 1er
encuentro internacional de energías renovables, viabilizando la diversificación de la matriz
energética. Presented at the 1er encuentro internacional de energías renovables, viabilizando
la diversificación de la matriz energética, Riohacha, La Guajira, Colombia.
Vargas, J.A., 2017. Perspectiva mundial de las energías renovables. Encuentro Int. Energ. Renov. 29–
30.
Vergara, W., Deeb, A., Toba, N., Cramton, P., Leino, I., Benoit, P., 2013. Wind Energy in Colombia: A
Framework for Market Entry. World Bank Publications.
Verhees, B., Raven, R., Kern, F., Smith, A., 2015. The role of policy in shielding, nurturing and enabling
offshore wind in The Netherlands (1973-2013). Renew. Sustain. Energy Rev. 47, 816–829.
https://doi.org/10.1016/j.rser.2015.02.036
Vidadili, N., Suleymanov, E., Bulut, C., Mahmudlu, C., 2017. Transition to renewable energy and
sustainable energy development in Azerbaijan. Renew. Sustain. Energy Rev. 80, 1153–1161.
https://doi.org/10.1016/j.rser.2017.05.168
VLIZ, 2015. Mermaid project [WWW Document]. Innov. Multi-Purp. Offshore Platf. Planing Des. Oper.
URL http://www.vliz.be/projects/mermaidproject/ (accessed 3.15.18).
Weaver, T., 2012. Financial appraisal of operational offshore wind energy projects. Renew. Sustain.
Energy Rev. 16, 5110–5120. https://doi.org/10.1016/j.rser.2012.05.003
White, F.M., 2002. Fluid Mechanics-5th. McGraw-HillNew York. https://doi.org/10.1111/j.1549-
8719.2009.00016.x.Mechanobiology
Wind Europe, 2018. Wind in power 2017, Annual combined onshore and offshore wind energy
statistics. Wind Europe.
WISE, 2012. Action plan for comprehensive renewable energy development in Tamil Nadu. WISE,
World Institute of Sustainable Energy, Pune, India.
World Energy Council, 2016. World Energy Trilemma Index 2016, World Energy Council. ed. World
Energy Council, London, United Kingdom.
World Energy Council, 2014. Colombia avanza 8 puestos en el ranking global del Consejo Mundial de
Energía [WWW Document]. URL https://www.worldenergy.org/news-and-media/pressreleases/colombia-avanza-8-puestos-en-el-ranking-global-del-consejo-mundial-de-energia/
(accessed 3.15.18).
Yuan, X., Zuo, J., Huisingh, D., 2015. Social acceptance of wind power : a case study of Shandong
Province ,. J. Clean. Prod. 92, 168–178. https://doi.org/10.1016/j.jclepro.2014.12.097
Zhang, D., Wang, J., Lin, Y., Si, Y., Huang, C., Yang, J., Huang, B., Li, W., 2017. Present situation and
future prospect of renewable energy in China. Renew. Sustain. Energy Rev. 76, 865–871.
https://doi.org/10.1016/j.rser.2017.03.023
Zhang, J., Zhang, Jiwei, Cai, L., Ma, L., 2017. Energy performance of wind power in China: A
comparison among inland, coastal and offshore wind farms. J. Clean. Prod. 143, 836–842.
https://doi.org/10.1016/j.jclepro.2016.12.040
Zuluaga, M.M., Dyner, I., 2007. Incentives for renewable energy in reformed Latin-American
electricity markets: the Colombian case. J. Clean. Prod. 15, 153–162.
https://doi.org/10.1016/j.jclepro.2005.12.014 | |