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dc.contributor.authorBarrozo, Farid B.spa
dc.contributor.authorValencia Ochoa, Guillermo Eliecerspa
dc.contributor.authorCardenas Escorcia, Yulineth del Carmenspa
dc.date.accessioned2018-11-17T14:04:48Z
dc.date.available2018-11-17T14:04:48Z
dc.date.issued2018
dc.identifier.issn2283-9216spa
dc.identifier.urihttp://hdl.handle.net/11323/1215spa
dc.description.abstractTo reach the Sustainable Development Goals and delivering on the Paris Agreement on climate change mitigation, a Biomass on grid power system is proposed to supply 33,640 kWh/day, which is the average annual energy consumption from a group of office buildings. This study shows the behavior of the gas emission of a Biomass on Grid Energy System Using HOMER Pro Software, composed by two 500 kW biogas-powered electric generator, using different types of biomass resource from the Colombian Caribbean Region like manure obtained from the livestock sector and solid urban organic waste. The simulation results showed some emission decrease when operating on the grid the Biogas generator such as the carbon dioxide, the sulfur dioxide and the nitrogen oxides on 11.6% while the carbon monoxide increased on 8.7% concerning the power supply system through electrical grid coming from thermoelectric power plants and hydroelectric power plants.spa
dc.language.isoeng
dc.publisherChemical Engineering Transactionsspa
dc.rightsAtribución – No comercial – Compartir igualspa
dc.titleComputational simulation of the gas emission in a biomass on grid energy system using HOMER pro softwareeng
dc.typeArtículo de revistaspa
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.identifier.instnameCorporación Universidad de la Costaspa
dc.identifier.reponameREDICUC - Repositorio CUCspa
dc.identifier.repourlhttps://repositorio.cuc.edu.co/spa
dc.relation.referencesBarrozo Budes, F., Valencia Ochoa, G. & Cárdenas Escorcia, Y., 2017. Hybrid PV and wind grid-connected renewable energy system to reduce the gas emission and operation cost. Contemporary engineering sciences, 10(26), pp. 1269-1278. Barrozo Budes, F., Valencia Ochoa, G. & Cárdenas Escorcia, Y., 2017. An economic evaluation of Renewable and Conventional Electricity Generation Systems in a shopping centre using HOMER Pro. Contemporary engineering sciences, 10(26), pp. 1287-1295. Barrozo Budes, F., Valencia Ochoa, G. & Cárdenas Escorcia, Y., 2017. Biomass generator to reduce the gas emission and operation cost in a grid-connected renewable energy systems. International Journal of ChemTech Research, 10(13), pp. 311-316. Chandra, R. et al., 2012. Production of methane from anaerobic digestion of jatropha and pongamia oil cakes. Applied Energy, 93, pp.148–159. Available at: http://www.sciencedirect.com.ezproxy.unbosque.edu.co/science/article/pii/S0306261910005283 [Accessed November 20, 2017]. Commission, E.E., Biofuels. Available at: ec. europa.eu/energy/en/topics/renewable-energy/biofuels. EIA, U.S.E.I.A., Short-Term Energy Outlook. Available at: www.eia.gov/outlooks/steo/report/global_oil.cfm. Esteves, V.P. et al., 2017. Assessment of greenhouse gases (GHG) emissions from the tallow biodiesel production chain including land use change (LUC). Journal of Cleaner Production, 151, pp.578–591. Available at: http://www.sciencedirect.com.ezproxy.unbosque.edu.co/science/article/pii/S0959652617304985 [Accessed November 20, 2017]. Greene CH, Pershing AJ. Climate-driven sea change. Science 2007; 315:1084-5. Hoogwijk M, Faaij A, Eickhout B, de Vries B, Turkenburg W. Potential of biomass energy out to 2100, for four IPCC SRES land-use scenarios. Biomass Bioenergy 2005; 29:225–57 IPCC. Climate change 2007. Impacts, adaptation and vulnerability, Summary for policymakers and technical summary, WG II contribution to the AR4. UK: Cambridge University Press; 2007. p. 93. McCormic, R.L. et al., 2005. Regulated Emissions from Biodiesel Tested in Heavy Duty Engines Meeting 2004 Emission Standards Mondani, F. et al., 2017. Evaluation of greenhouse gases emission based on energy consumption in wheat Agro ecosystems. Energy Reports, 3, pp.37–45. Available at: http://www.sciencedirect.com.ezproxy.unbosque.edu.co/science/article/pii/S2352484717300082 [Accessed November 19, 2017]. O´Shea, R., Wall, D.M. & Murphy, J.D., 2017. An energy and greenhouse gas comparison of centralised biogas production with road haulage of pig slurry, and decentralised biogas production with biogas transportation in a low-pressure pipe network. Applied Energy, 208, pp.108–122. Available at: http://www.sciencedirect.com.ezproxy.unbosque.edu.co/science/article/pii/S0306261917314599 [Accessed November 20, 2017]. Prather M, Ehhalt D, Dentener F, Derwent R, Dlugokencky E, et al. Atmospheric chemistry and greenhouse gases. In: Houghton JT, Ding Y, Griggs DJ, Noguer M, Van der Linden PJ, et al., editors. Climate change 2001: the scientific basis. Cambridge University Press; 2001. p. 239-87. Panjicko, M. et al., 2017. Biogas production from brewery spent grain as a mono-substrate in a two-stage process composed of solid-state anaerobic digestion and granular biomass reactors. Journal of Cleaner Production, 166, pp.519–529. Available at: http://www.sciencedirect.com.ezproxy.unbosque.edu.co/science/article/pii/S0959652617316529 [Accessed November 20, 2017]. Rodríguez A., Ángel J., Rivero E., Acevedo, P., Santis A., Cabeza I., Acosta M. & Hernández M., 2017. Evaluation of the Biochemical Methane Potential of Pig Manure, Organic Fraction of Municipal Solid Waste and Cocoa Industry Residues in Colombia. Chemical Engineering Transactions, vol. 57, pp. 55 – 60. Valencia Ochoa, G. E., Vanegas Chamorro, M. C. & Martinez Gaspar, R. J., 2016. Study of the persistence of wind in the Colombian Caribbean region with emphasis on La Guajira. ISBN: 978-958-8742-69-4 ed. Colombia: Atlantic University. Valencia Ochoa, G. E., Vanegas Chamorro, M. C. & Polo Jimenez, J. P., 2016. Statistical analysis of wind speed and direction in the Colombian Caribbean coast with emphasis on La Guajira. ISBN: 978-958-8742- 73-1 ed. Colombia: Atlantic University. Valencia Ochoa, G. E., Vanegas Chamorro, M. C. & Villicana Ortiz, E., 2016. Solar Atlas of the Colombian Caribbean Coast. ISBN: 978-958-8742-70-0 ed. Colombia: Atlantic University. Vanegas Chamorro, M. C. & Valencia Ochoa, G. E., 2016. Wind Atlas of the Colombian Caribbean Coast. ISBN: 978-958-8742-71-7 ed. Colombia: Atlantic University. Vanegas Chamorro, M. C., Valencia Ochoa, G. E. & Villicana Ortiz, E., 2016. Geographic and temporal availability of solar energy in the Colombian Caribbean Coast. ISBN: 978-958-8742-72-4 ed. Colombia: Atlantic University.spa
dc.type.coarhttp://purl.org/coar/resource_type/c_6501spa
dc.type.contentTextspa
dc.type.driverinfo:eu-repo/semantics/articlespa
dc.type.redcolhttp://purl.org/redcol/resource_type/ARTspa
dc.type.versioninfo:eu-repo/semantics/acceptedVersionspa
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aaspa
dc.rights.coarhttp://purl.org/coar/access_right/c_abf2spa


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