Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study

Hybrid Brayton concentrated solar power (CSP) plants have been gaining attention in the last decade upon many advantages regarding the use of traditional generation technologies combined with renewable energy sources. However, some technical and economic issues must be solved to allow its widespread...

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Autores:
Moreno Gamboa, Faustino
Nieto-Londoño, César
Tipo de recurso:
Article of journal
Fecha de publicación:
2021
Institución:
Universidad Francisco de Paula Santander
Repositorio:
Repositorio Digital UFPS
Idioma:
eng
OAI Identifier:
oai:repositorio.ufps.edu.co:ufps/304
Acceso en línea:
http://repositorio.ufps.edu.co/handle/ufps/304
https://doi.org/10.1115/1.4050486
Palabra clave:
alternative energy sources
energy systems analysis
renewable energy
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openAccess
License
© 2021 by ASME
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dc.title.eng.fl_str_mv Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
title Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
spellingShingle Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
alternative energy sources
energy systems analysis
renewable energy
title_short Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
title_full Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
title_fullStr Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
title_full_unstemmed Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
title_sort Hybrid brayton multi-stage concentrated solar power plant energy and exergy performance study
dc.creator.fl_str_mv Moreno Gamboa, Faustino
Nieto-Londoño, César
dc.contributor.author.none.fl_str_mv Moreno Gamboa, Faustino
Nieto-Londoño, César
dc.contributor.corporatename.spa.fl_str_mv Journal of Energy Resources Technology
dc.subject.proposal.eng.fl_str_mv alternative energy sources
energy systems analysis
renewable energy
topic alternative energy sources
energy systems analysis
renewable energy
description Hybrid Brayton concentrated solar power (CSP) plants have been gaining attention in the last decade upon many advantages regarding the use of traditional generation technologies combined with renewable energy sources. However, some technical and economic issues must be solved to allow its widespread use. Research and development efforts are deemed essential to the study of factors that constrain cycle performance looking to increase its efficiency, reducing fuel consumption, and decreasing emissions. This study presents the performance evaluation of a hybrid multi-stage CSP plant considering specific environmental conditions to attain the factor that constrains its optimal performance. Overall energy and exergy plant efficiencies are analyzed, considering an arbitrary number of stages. For instance, a double compression expansion hybrid CSP plant shows the overall energy efficiency of 32% larger, a 30% higher exergy efficiency, and a fuel conversion rate around 18% larger when compared with a single-stage CSP plant.
publishDate 2021
dc.date.accessioned.none.fl_str_mv 2021-10-14T00:24:25Z
dc.date.available.none.fl_str_mv 2021-10-14T00:24:25Z
dc.date.issued.none.fl_str_mv 2021-04-09
dc.type.spa.fl_str_mv Artículo de revista
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https://doi.org/10.1115/1.4050486
dc.language.iso.spa.fl_str_mv eng
language eng
dc.relation.ispartof.none.fl_str_mv Journal of Energy Resources Technology. Vol.143 No.6.(2021)
dc.relation.citationedition.spa.fl_str_mv Vol.143 No.6.(2021)
dc.relation.citationendpage.spa.fl_str_mv 8
dc.relation.citationissue.spa.fl_str_mv 6(2021)
dc.relation.citationstartpage.spa.fl_str_mv 1
dc.relation.citationvolume.spa.fl_str_mv 143
dc.relation.cites.none.fl_str_mv Moreno-Gamboa, F., and Nieto-Londoño, C. (April 9, 2021). "Hybrid Brayton Multi-Stage Concentrated Solar Power Plant Energy and Exergy Performance Study." ASME. J. Energy Resour. Technol. June 2021; 143(6): 062108. https://doi.org/10.1115/1.4050486
dc.relation.ispartofjournal.spa.fl_str_mv Journal of Energy Resources Technology,
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spelling Moreno Gamboa, Faustino9565842d8f97dd8158dde9ab95e6088f600Nieto-Londoño, Césardd2ed87da0c7208c147e5663343ee460600Journal of Energy Resources Technology2021-10-14T00:24:25Z2021-10-14T00:24:25Z2021-04-09http://repositorio.ufps.edu.co/handle/ufps/304https://doi.org/10.1115/1.4050486Hybrid Brayton concentrated solar power (CSP) plants have been gaining attention in the last decade upon many advantages regarding the use of traditional generation technologies combined with renewable energy sources. However, some technical and economic issues must be solved to allow its widespread use. Research and development efforts are deemed essential to the study of factors that constrain cycle performance looking to increase its efficiency, reducing fuel consumption, and decreasing emissions. This study presents the performance evaluation of a hybrid multi-stage CSP plant considering specific environmental conditions to attain the factor that constrains its optimal performance. Overall energy and exergy plant efficiencies are analyzed, considering an arbitrary number of stages. For instance, a double compression expansion hybrid CSP plant shows the overall energy efficiency of 32% larger, a 30% higher exergy efficiency, and a fuel conversion rate around 18% larger when compared with a single-stage CSP plant.08 páginasapplication/pdfengJournal of Energy Resources Technology. Vol.143 No.6.(2021)Vol.143 No.6.(2021)86(2021)1143Moreno-Gamboa, F., and Nieto-Londoño, C. (April 9, 2021). "Hybrid Brayton Multi-Stage Concentrated Solar Power Plant Energy and Exergy Performance Study." ASME. J. Energy Resour. Technol. June 2021; 143(6): 062108. https://doi.org/10.1115/1.4050486Journal of Energy Resources Technology,© 2021 by ASMEhttps://creativecommons.org/licenses/by/4.0/info:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2https://asmedigitalcollection.asme.org/energyresources/article-abstract/143/6/062108/1103608/Hybrid-Brayton-Multi-Stage-Concentrated-Solar?redirectedFrom=fulltextHybrid brayton multi-stage concentrated solar power plant energy and exergy performance studyArtículo de revistahttp://purl.org/coar/resource_type/c_6501http://purl.org/coar/resource_type/c_2df8fbb1Textinfo:eu-repo/semantics/articlehttp://purl.org/redcol/resource_type/ARTinfo:eu-repo/semantics/publishedVersionhttp://purl.org/coar/version/c_970fb48d4fbd8a85alternative energy sourcesenergy systems analysisrenewable energyIEA, 2019, “World Energy Outlook 2019,” International Energy Agency, Paris, France, Technical Report No. WEO-2019.Ding, L., Akbarzadeh, A., Singh, B., and Remeli, M., 2017, “Feasibility of Electrical Power Generation Using Thermoelectric Modules Via Solar Pond Heat Extraction,” Energy. Convers. Manage., 135, pp. 74–83.Elsayed, I., and Nishi, Y., 2018, “A Feasibility Study on Power Generation From Solar Thermal Wind Tower: Inclusive Impact Assessment Concerning Environmental and Economic Costs,” Energies, 11(11), p. 3181.Kirmani, S., Jamil, M., and Akhtar, I., 2018, “Economic Feasibility of Hybrid Energy Generation With Reduced Carbon Emission,” IET Ren. Power Gen., 12(8), pp. 934–942.Taylor, N., 2019, “Solar Thermal Electricity: Technology Development Report,” Technical Report, EUR 29913 EN, Publications Office of the European Union, Luxembourg.Bouhal, T., Agrouaz, Y., Kousksou, T., Allouhi, A., and Bakkas, M., 2018, “Technical Feasibility of a Sustainable Concentrated Solar Power in Morocco Through an Energy Analysis,” Renewable. Sustainable. Energy. Rev., 81, pp. 1087–1095.Rafique, M. M., and Bahaidarah, H. M. S., 2019, “Thermo-Economic and Environmental Feasibility of a Solar Power Plant as a Renewable and Green Source of Electrification,” Int. J. Green Energy, 16(15), pp. 1577–1590.Jacobson, M. Z., and Delucchi, M. A., 2011, “Providing All Global Energy With Wind, Water, and Solar Power, Part I: Technologies, Energy Resources, Quantities and Areas of Infrastructure, and Materials,” Energy Policy, 39(3), pp. 1154–1169.Santos, M., Miguel-Barbero, C., Merchán, R., Medina, A., and Hernández, A. C., 2018, “Roads to Improve the Performance of Hybrid Thermosolar Gas Turbine Power Plants: Working Fluids and Multi-Stage Configurations,” Energy Convers Manage, 165, pp. 578–592.Suresh, N., Thirumalai, N., and Dasappa, S., 2019, “Modeling and Analysis of Solar Thermal and Biomass Hybrid Power Plants,” Appl. Therm. Eng., 160, p. 114121.Costa, S.-C., Mahkamov, K., Kenisarin, M., Ismail, M., Lynn, K., Halimic, E., and Mullen, D., 2019, “Solar Salt Latent Heat Thermal Storage for a Small Solar Organic Rankine Cycle Plant,” ASME J. Energy. Res. Technol., 142(3), p. 031203.Korzynietz, R., Brioso, J., Gallas, M., Uhlig, R., Ebert, M., Buck, R., and Teraji, D., 2016, “Solugas—Comprehensive Analysis of the Solar Hybrid Brayton Plant,” Sol. Energy, 135, pp. 578–589.Elmohlawy, A. E., Ochkov, V. F., and Kazandzhan, B. I., 2019, “Thermal Performance Analysis of a Concentrated Solar Power System (CSP) Integrated With Natural Gas Combined Cycle (NGCC) Power Plant,” Case Studies Thermal Eng., 14, p. 100458.Jouhara, H., Ż abnień ska Gra, A., Khordehgah, N., Ahmad, D., and Lipinski, T., 2020, “Latent Thermal Energy Storage Technologies and Applications: A Review,” Int. J. Thermofluids, 4–5, p. 100039.Bernardos, E., López, I., Rodríguez, J., and Abánades, A., 2013, “Assessing the Potential of Hybrid Fossil–Solar Thermal Plants for Energy Policy Making: Brayton Cycles,” Energy Policy, 62, pp. 99–106.Fang, L., Li, Y., Yang, X., and Yang, Z., 2019, “Analyses of Thermal Performance of Solar Power Tower Station Based on a Supercritical CO2 Brayton Cycle,” ASME J. Energy. Res. Technol., 142(3), p. 031301.Ferraro, V., Imineo, F., and Marinelli, V., 2013, “An Improved Model to Evaluate Thermodynamic Solar Plants With Cylindrical Parabolic Collectors and Air Turbine Engines in Open Joule–brayton Cycle,” Energy, 53, pp. 323–331.Moreno-Gamboa, F., Escudero-Atehortua, A., and Nieto-Londoño, C., 2020, “Performance Evaluation of External Fired Hybrid Solar Gas-Turbine Power Plant in Colombia Using Energy and Exergy Methods,” Ther. Sci. Eng. Prog., 20, p. 100679.Olivenza-León, D., Medina, A., and Calvo Hernández, A., 2015, “Thermodynamic Modeling of a Hybrid Solar Gas-Turbine Power Plant,” Energy Convers. Manage., 93, pp. 435–447.Behar, O., 2018, “Solar Thermal Power Plants—A Review of Configurations and Performance Comparison,” Renewable. Sustainable. Energy. Rev., 92, pp. 608–627.Merchán, R., Santos, M., Heras, I., Gonzalez-Ayala, J., Medina, A., and Hernández, A. C., 2020, “On-Design Pre-optimization and Off-Design Analysis of Hybrid Brayton Thermosolar Tower Power Plants for Different Fluids and Plant Configurations,” Renewable Sustainable Energy Rev., 119, p. 109590.Gueymard, C., 2000, “Prediction and Performance Assessment of Mean Hourly Global Radiation,” Sol. Energy, 68(3), pp. 285–303.Liu, B. Y., and Jordan, R. C., 1960, “The Interrelationship and Characteristic Distribution of Direct, Diffuse and Total Solar Radiation,” Sol. Energy, 4(3), pp. 1–19.National Aeronautics and Space Administration, 2018, “Power Data Access Viewer,” https://power.larc.nasa.gov/data-access-viewer/, Accessed April 1, 2019.MeteoSevilla, 2017, “Estación Meteorológica de Santiponce,” Sevilla, Spain, http://www.meteosevilla.com/inicio.htm, Accessed June 25, 2017.Ramírez-Cerpa, E., Acosta-Coll, M., and Vélez-Zapata, J., 2017, “Análisis De Condiciones Climatológicas De Precipitaciones De Corto Plazo En Zonas Urbanas: Caso De Estudio Barranquilla, Colombia,” Idesia (Arica), 35, pp. 87–94.Sánchez-Orgaz, S., 2012, “Modelización, Análisis Y Optimización Termodinámica De Plantas De Potencia Multietapa Tipo Brayton. Aplicación a Centrales Termosolares,” Ph.D. thesis, Universidad de Salamanca, Spain.Santos, M., Merchán, R., Medina, A., and Calvo Hernández, A., 2016, “Seasonal Thermodynamic Prediction of the Performance of a Hybrid Solar Gas-Turbine Power Plant,” Energy Convers. Manage., 115, pp. 89–102.Aljundi, I. H., 2009, “Energy and Exergy Analysis of a Steam Power Plant in Jordan,” Appl. Therm. Eng., 29(2), pp. 324–328.Yue, T., and Lior, N., 2018, “Thermal Hybrid Power Systems Using Multiple Heat Sources of Different Temperature: Thermodynamic Analysis for Brayton Cycles,” Energy, 165, pp. 639–665.Petela, R., 2003, “Exergy of Undiluted Thermal Radiation,” Sol. Energy, 74(6), pp. 469–488.Atif, M., and Al-Sulaiman, F. A., 2017, “Energy and Exergy Analyses of Solar Tower Power Plant Driven Supercritical Carbon Dioxide Recompression Cycles for Six Different Locations.”Romier, A., 2004, “Small Gas Turbine Technology,” Appl. Therm. Eng., 24(11), pp. 1709–1723, Industrial Gas Turbine Technologies.Santos, M., Merchán, R., Medina, A., and Hernández, A. C., 2016, “Seasonal Thermodynamic Prediction of the Performance of a Hybrid Solar Gas-Turbine Power Plant,” Energy Convers. 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 incorporada en las Obras Colectivas.

b.	Distribuir copias o fonogramas de las Obras, exhibirlas públicamente, ejecutarlas públicamente y/o ponerlas a disposición pública, incluyéndolas como incorporadas en Obras Colectivas, según corresponda.

c.	Distribuir copias de las Obras Derivadas que se generen, exhibirlas públicamente, ejecutarlas públicamente y/o ponerlas a disposición pública.
Los derechos mencionados anteriormente pueden ser ejercidos en todos los medios y formatos, actualmente conocidos o que se inventen en el futuro. Los derechos antes mencionados incluyen el derecho a realizar dichas modificaciones en la medida que sean técnicamente necesarias para ejercer los derechos en otro medio o formatos, pero de otra manera usted no está autorizado para realizar obras derivadas. Todos los derechos no otorgados expresamente por el Licenciante quedan por este medio reservados, incluyendo pero sin limitarse a aquellos que se mencionan en las secciones 4(d) y 4(e).

4. Restricciones.
La licencia otorgada en la anterior Sección 3 está expresamente sujeta y limitada por las siguientes restricciones:

a.	Usted puede distribuir, exhibir públicamente, ejecutar públicamente, o poner a disposición pública la Obra sólo bajo las condiciones de esta Licencia, y Usted debe incluir una copia de esta licencia o del Identificador Universal de Recursos de la misma con cada copia de la Obra que distribuya, exhiba públicamente, ejecute públicamente o ponga a disposición pública. No es posible ofrecer o imponer ninguna condición sobre la Obra que altere o limite las condiciones de esta Licencia o el ejercicio de los derechos de los destinatarios otorgados en este documento. No es posible sublicenciar la Obra. Usted debe mantener intactos todos los avisos que hagan referencia a esta Licencia y a la cláusula de limitación de garantías. Usted no puede distribuir, exhibir públicamente, ejecutar públicamente, o poner a disposición pública la Obra con alguna medida tecnológica que controle el acceso o la utilización de ella de una forma que sea inconsistente con las condiciones de esta Licencia. Lo anterior se aplica a la Obra incorporada a una Obra Colectiva, pero esto no exige que la Obra Colectiva aparte de la obra misma quede sujeta a las condiciones de esta Licencia. Si Usted crea una Obra Colectiva, previo aviso de cualquier Licenciante debe, en la medida de lo posible, eliminar de la Obra Colectiva cualquier referencia a dicho Licenciante o al Autor Original, según lo solicitado por el Licenciante y conforme lo exige la cláusula 4(c).

b.	Usted no puede ejercer ninguno de los derechos que le han sido otorgados en la Sección 3 precedente de modo que estén principalmente destinados o directamente dirigidos a conseguir un provecho comercial o una compensación monetaria privada. El intercambio de la Obra por otras obras protegidas por derechos de autor, ya sea a través de un sistema para compartir archivos digitales (digital file-sharing) o de cualquier otra manera no será considerado como estar destinado principalmente o dirigido directamente a conseguir un provecho comercial o una compensación monetaria privada, siempre que no se realice un pago mediante una compensación monetaria en relación con el intercambio de obras protegidas por el derecho de autor.

c.	Si usted distribuye, exhibe públicamente, ejecuta públicamente o ejecuta públicamente en forma digital la Obra o cualquier Obra Derivada u Obra Colectiva, Usted debe mantener intacta toda la información de derecho de autor de la Obra y proporcionar, de forma razonable según el medio o manera que Usted esté utilizando: (i) el nombre del Autor Original si está provisto (o seudónimo, si fuere aplicable), y/o (ii) el nombre de la parte o las partes que el Autor Original y/o el Licenciante hubieren designado para la atribución (v.g., un instituto patrocinador, editorial, publicación) en la información de los derechos de autor del Licenciante, términos de servicios o de otras formas razonables; el título de la Obra si está provisto; en la medida de lo razonablemente factible y, si está provisto, el Identificador Uniforme de Recursos (Uniform Resource Identifier) que el Licenciante especifica para ser asociado con la Obra, salvo que tal URI no se refiera a la nota sobre los derechos de autor o a la información sobre el licenciamiento de la Obra; y en el caso de una Obra Derivada, atribuir el crédito identificando el uso de la Obra en la Obra Derivada (v.g., "Traducción Francesa de la Obra del Autor Original," o "Guión Cinematográfico basado en la Obra original del Autor Original"). Tal crédito puede ser implementado de cualquier forma razonable; en el caso, sin embargo, de Obras Derivadas u Obras Colectivas, tal crédito aparecerá, como mínimo, donde aparece el crédito de cualquier otro autor comparable y de una manera, al menos, tan destacada como el crédito de otro autor comparable.

d.	Para evitar toda confusión, el Licenciante aclara que, cuando la obra es una composición musical:

i.	Regalías por interpretación y ejecución bajo licencias generales. El Licenciante se reserva el derecho exclusivo de autorizar la ejecución pública o la ejecución pública digital de la obra y de recolectar, sea individualmente o a través de una sociedad de gestión colectiva de derechos de autor y derechos conexos (por ejemplo, SAYCO), las regalías por la ejecución pública o por la ejecución pública digital de la obra (por ejemplo Webcast) licenciada bajo licencias generales, si la interpretación o ejecución de la obra está primordialmente orientada por o dirigida a la obtención de una ventaja comercial o una compensación monetaria privada.

ii.	Regalías por Fonogramas. El Licenciante se reserva el derecho exclusivo de recolectar, individualmente o a través de una sociedad de gestión colectiva de derechos de autor y derechos conexos (por ejemplo, los consagrados por la SAYCO), una agencia de derechos musicales o algún agente designado, las regalías por cualquier fonograma que Usted cree a partir de la obra (“versión cover”) y distribuya, en los términos del régimen de derechos de autor, si la creación o distribución de esa versión cover está primordialmente destinada o dirigida a obtener una ventaja comercial o una compensación monetaria privada.

e.	Gestión de Derechos de Autor sobre Interpretaciones y Ejecuciones Digitales (WebCasting). Para evitar toda confusión, el Licenciante aclara que, cuando la obra sea un fonograma, el Licenciante se reserva el derecho exclusivo de autorizar la ejecución pública digital de la obra (por ejemplo, webcast) y de recolectar, individualmente o a través de una sociedad de gestión colectiva de derechos de autor y derechos conexos (por ejemplo, ACINPRO), las regalías por la ejecución pública digital de la obra (por ejemplo, webcast), sujeta a las disposiciones aplicables del régimen de Derecho de Autor, si esta ejecución pública digital está primordialmente dirigida a obtener una ventaja comercial o una compensación monetaria privada.

5. Representaciones, Garantías y Limitaciones de Responsabilidad.
A MENOS QUE LAS PARTES LO ACORDARAN DE OTRA FORMA POR ESCRITO, EL LICENCIANTE OFRECE LA OBRA (EN EL ESTADO EN EL QUE SE ENCUENTRA) “TAL CUAL”, SIN BRINDAR GARANTÍAS DE CLASE ALGUNA RESPECTO DE LA OBRA, YA SEA EXPRESA, IMPLÍCITA, LEGAL O CUALQUIERA OTRA, INCLUYENDO, SIN LIMITARSE A ELLAS, GARANTÍAS DE TITULARIDAD, COMERCIABILIDAD, ADAPTABILIDAD O ADECUACIÓN A PROPÓSITO DETERMINADO, AUSENCIA DE INFRACCIÓN, DE AUSENCIA DE DEFECTOS LATENTES O DE OTRO TIPO, O LA PRESENCIA O AUSENCIA DE ERRORES, SEAN O NO DESCUBRIBLES (PUEDAN O NO SER ESTOS DESCUBIERTOS). ALGUNAS JURISDICCIONES NO PERMITEN LA EXCLUSIÓN DE GARANTÍAS IMPLÍCITAS, EN CUYO CASO ESTA EXCLUSIÓN PUEDE NO APLICARSE A USTED.

6. Limitación de responsabilidad.
A MENOS QUE LO EXIJA EXPRESAMENTE LA LEY APLICABLE, EL LICENCIANTE NO SERÁ RESPONSABLE ANTE USTED POR DAÑO ALGUNO, SEA POR RESPONSABILIDAD EXTRACONTRACTUAL, PRECONTRACTUAL O CONTRACTUAL, OBJETIVA O SUBJETIVA, SE TRATE DE DAÑOS MORALES O PATRIMONIALES, DIRECTOS O INDIRECTOS, PREVISTOS O IMPREVISTOS PRODUCIDOS POR EL USO DE ESTA LICENCIA O DE LA OBRA, AUN CUANDO EL LICENCIANTE HAYA SIDO ADVERTIDO DE LA POSIBILIDAD DE DICHOS DAÑOS. ALGUNAS LEYES NO PERMITEN LA EXCLUSIÓN DE CIERTA RESPONSABILIDAD, EN CUYO CASO ESTA EXCLUSIÓN PUEDE NO APLICARSE A USTED.

7. Término.

a.	Esta Licencia y los derechos otorgados en virtud de ella terminarán automáticamente si Usted infringe alguna condición establecida en ella. Sin embargo, los individuos o entidades que han recibido Obras Derivadas o Colectivas de Usted de conformidad con esta Licencia, no verán terminadas sus licencias, siempre que estos individuos o entidades sigan cumpliendo íntegramente las condiciones de estas licencias. Las Secciones 1, 2, 5, 6, 7, y 8 subsistirán a cualquier terminación de esta Licencia.

b.	Sujeta a las condiciones y términos anteriores, la licencia otorgada aquí es perpetua (durante el período de vigencia de los derechos de autor de la obra). No obstante lo anterior, el Licenciante se reserva el derecho a publicar y/o estrenar la Obra bajo condiciones de licencia diferentes o a dejar de distribuirla en los términos de esta Licencia en cualquier momento; en el entendido, sin embargo, que esa elección no servirá para revocar esta licencia o que deba ser otorgada , bajo los términos de esta licencia), y esta licencia continuará en pleno vigor y efecto a menos que sea terminada como se expresa atrás. La Licencia revocada continuará siendo plenamente vigente y efectiva si no se le da término en las condiciones indicadas anteriormente.

8. Varios.

a.	Cada vez que Usted distribuya o ponga a disposición pública la Obra o una Obra Colectiva, el Licenciante ofrecerá al destinatario una licencia en los mismos términos y condiciones que la licencia otorgada a Usted bajo esta Licencia.

b.	Si alguna disposición de esta Licencia resulta invalidada o no exigible, según la legislación vigente, esto no afectará ni la validez ni la aplicabilidad del resto de condiciones de esta Licencia y, sin acción adicional por parte de los sujetos de este acuerdo, aquélla se entenderá reformada lo mínimo necesario para hacer que dicha disposición sea válida y exigible.

c.	Ningún término o disposición de esta Licencia se estimará renunciada y ninguna violación de ella será consentida a menos que esa renuncia o consentimiento sea otorgado por escrito y firmado por la parte que renuncie o consienta.

d.	Esta Licencia refleja el acuerdo pleno entre las partes respecto a la Obra aquí licenciada. No hay arreglos, acuerdos o declaraciones respecto a la Obra que no estén especificados en este documento. El Licenciante no se verá limitado por ninguna disposición adicional que pueda surgir en alguna comunicación emanada de Usted. Esta Licencia no puede ser modificada sin el consentimiento mutuo por escrito del Licenciante y Usted.
0000-0002-3586-43069565842d8f97dd8158dde9ab95e6088f6000000-0001-6516-9630dd2ed87da0c7208c147e5663343ee460600