Show simple item record

Technological, economic and environmental evaluation of rice husk gasification in a biorefinery context to produce indirect energy as jet fuel

dc.creatorJaramillo Obando, Juan Jacobo
dc.creatorArias Suns, Angie Vanessa
dc.date2017-06-05
dc.date.accessioned2019-11-08T21:21:34Z
dc.date.available2019-11-08T21:21:34Z
dc.identifierhttp://hemeroteca.unad.edu.co/index.php/riaa/article/view/2031
dc.identifier10.22490/21456453.2031
dc.identifier.urihttps://repository.unad.edu.co/handle/10596/29379
dc.descriptionHigher alcohol 1-octanol was evaluated as jet fuel potential. The synthesis of the 1-octanol was modeled and the technological, economic and environmental evaluation of the global production process of the rice husk gasification was performed. The best operating conditions to 1-octanol synthesis were obtained in packed bed reactor PBR using Matlab software. Mass and energy balances were calculated using Aspen Plus Software. Economic assessment was developed using Aspen Process Economic Analyzer Software. Environmental impact evaluation was carried out using the waste reduction algorithm WAR. Process yield was 0.83 kg of 1-Octanol by kg of rice husk. Total production cost obtained was USD 0.957 per kg of 1-octanol and the total PEI of product leave the system is 0.08142 PEI/kg with a PEI mitigated of 12.97 PEI/kg. Production process of high alcohols from rice husk shows a high potential technological, economical and environmental as a sustainable industry at take advantage of an agroindustrial residue and transformed in products with added value and energy. 1-octanol as jet fuel has a potential but need to be more studied for direct use in jet motors.en-US
dc.descriptionHigher alcohol 1-octanol was evaluated as jet fuel potential. The synthesis of the 1-octanol was modeled and the technological, economic and environmental evaluation of the global production process of the rice husk gasification was performed. The best operating conditions to 1-octanol synthesis were obtained in packed bed reactor PBR using Matlab software. Mass and energy balances were calculated using Aspen Plus Software. Economic assessment was developed using Aspen Process Economic Analyzer Software. Environmental impact evaluation was carried out using the waste reduction algorithm WAR. Process yield was 0.83 kg of 1-Octanol by kg of rice husk. Total production cost obtained was USD 0.957 per kg of 1-octanol and the total PEI of product leave the system is 0.08142 PEI/kg with a PEI mitigated of 12.97 PEI/kg. Production process of high alcohols from rice husk shows a high potential technological, economical and environmental as a sustainable industry at take advantage of an agroindustrial residue and transformed in products with added value and energy. 1-octanol as jet fuel has a potential but need to be more studied for direct use in jet motors.es-ES
dc.formatapplication/pdf
dc.formattext/html
dc.languageeng
dc.publisherUniversidad Nacional Abierta y a Distancia, UNADes-ES
dc.relationhttp://hemeroteca.unad.edu.co/index.php/riaa/article/view/2031/2286
dc.relationhttp://hemeroteca.unad.edu.co/index.php/riaa/article/view/2031/2243
dc.relation/*ref*/Agronet (2012). La cadena de arroz en Colombia. Retrieved from: http://www.agronet.gov.co/www/docs_agronet/2005112141728_caracterizacion_arroz.pdf
dc.relation/*ref*/Balster, L. M., Corporan, E., DeWitt, M. J., Edwards, J. T., Ervin, J. S., Graham, J. L. & Zabarnick, S. (2008). Development of an advanced, thermally stable, coal-based jet fuel. Fuel Processing Technology, 89(4), 364-378.
dc.relation/*ref*/Breman, B. B., Beenackers, A. C. C. M., & Oesterholt, E. (1994). A kinetic model for the methanol-higher alcohol synthesis from CO/CO2/H2 over Cu/ZnO-based catalysts including simultaneous formation of methyl esters and hydrocarbons. Chemical Engineering Science, 49(24, Part A), 4409-4428.
dc.relation/*ref*/Cabezas, H., Bare, J. C. & Mallick, S. K. (1999). Pollution prevention with chemical process simulators: the generalized waste reduction (WAR) algorithm-full version. Computers & Chemical Engineering, 23(4-5), 623-634.
dc.relation/*ref*/Calverley, E. M. (1989). A Study of the Mechanism and Kinetics of the Synthesis of Methanol and Higher Alcohols Over Alkali Promoted Copper/Zinc-Oxide/Chromia Catalysts. Open Access Dissertations and Theses, Paper 1913, 1-223.
dc.relation/*ref*/Cardona, C. A., Marulanda, V. F. & Young, D. (2004). Analysis of the environmental impact of butylacetate process through the WAR algorithm. Chemical Engineering Science, 59(24), 5839-5845.
dc.relation/*ref*/Epling, W. S., Hoflund, G. B., Hart, W. M. & Minahan, D. M. (1997). Reaction and Surface Characterization Study of Higher Alcohol Synthesis Catalysts. Journal of Catalysis, 172(1), 13-23.
dc.relation/*ref*/Herman, R. G. (2000). Advances in catalytic synthesis and utilization of higher alcohols. Catalysis Today, 55(3), 233-245.
dc.relation/*ref*/Hilmen, A.-M., Xu, M., Gines, M. J. L. & Iglesia, E. (1998). Synthesis of higher alcohols on copper catalysts supported on alkali-promoted basic oxides. Applied Catalysis A: General, 169(2), 355-372.
dc.relation/*ref*/Kulawska, M. & Skrzypek, J. (2001). Kinetics of the synthesis of higher aliphatic alcohols from syngas over a modified methanol synthesis catalyst. Chemical Engineering and Processing: Process Intensification, 40(1), 33-40.
dc.relation/*ref*/Kumar, K. & Sung, C.-J. (2010). A comparative experimental study of the autoignition characteristics of alternative and conventional jet fuel/oxidizer mixtures. Fuel, 89(10), 2853-2863.
dc.relation/*ref*/Liu, X.-w., Shi, Y., Wu, Y.-n., Zhao, X.-t., & Ren, N.-q. (2008). The investigation of high concentration organic alkalinous wastewater (HCOAW) from octanol production by biodegradation process. Journal of Biotechnology, 136, S707.
dc.relation/*ref*/Marrero, R. G. (2001). Group-contribution based estimation of pure component properties. Fluid Phase Equilibria, 183-184, 183-208.
dc.relation/*ref*/Nieskens, D. L. S., Ferrari, D., Liu, Y., & Kolonko Jr, R. (2011). The conversion of carbon dioxide and hydrogen into methanol and higher alcohols. Catalysis Communications, 14(1), 111-113.
dc.relation/*ref*/NIST – National Institute of Standards and Technology. (2005). Libro del Web de Quimica del NIST. Retrieved from: http://webbook.nist.gov/chemistry/
dc.relation/*ref*/Scavage, (2010). Base de datos. Retrieved from: http://www.scavage.com
dc.relation/*ref*/Surisetty, V. R., Dalai, A. K., & Kozinski, J. (2010). Effect of Rh promoter on MWCNT-supported alkali-modified MoS2 catalysts for higher alcohols synthesis from CO hydrogenation. Applied Catalysis A: General, 381(1-2), 282-288.
dc.relation/*ref*/Surisetty, V. R., Dalai, A. K., & Kozinski, J. (2010). Intrinsic Reaction Kinetics of Higher Alcohol Synthesis from Synthesis Gas over a Sulfided Alkali-Promoted Co-Rh-Mo Trimetallic Catalyst Supported on Multiwalled Carbon Nanotubes (MWCNTs). Energy & Fuels, 24(8), 4130-4137. https://doi.org/10.1021/ef1007227
dc.relation/*ref*/Surisetty, V. R., Dalai, A. K., & Kozinski, J. (2011). Alcohols as alternative fuels: An overview. Applied Catalysis A: General, 404(1-2), 1-11.
dc.relation/*ref*/Tien-Thao, N., Zahedi-Niaki, M. H., Alamdari, H., & Kaliaguine, S. (2007). Conversion of syngas to higher alcohols over nanosized LaCo0.7Cu0.3O3 perovskite precursors. Applied Catalysis A: General, 326(2), 152-163.
dc.rightsCopyright (c) 2017 Revista de Investigación Agraria y Ambientales-ES
dc.rightshttp://creativecommons.org/licenses/by-nc-sa/4.0es-ES
dc.sourceRevista de Investigación Agraria y Ambiental; Vol. 8, Núm. 2 (2017); 61 - 70en-US
dc.sourceRevista de Investigación Agraria y Ambiental; Vol. 8, Núm. 2 (2017); 61 - 70es-ES
dc.source2145-6453
dc.source2145-6097
dc.subjecthigher alcohols; 1-octanol; jet fuel; technological evaluation, economic evaluation; environmental evaluationen-US
dc.subjecthigher alcohols; 1-octanol; jet fuel; technological evaluation, economic evaluation; environmental evaluation.es-ES
dc.titleTechnological, economic and environmental evaluation of rice husk gasification in a biorefinery context to produce indirect energy as jet fuelen-US
dc.titleTechnological, economic and environmental evaluation of rice husk gasification in a biorefinery context to produce indirect energy as jet fueles-ES
dc.typeinfo:eu-repo/semantics/article
dc.typeinfo:eu-repo/semantics/publishedVersion


Files in this item

FilesSizeFormatView

There are no files associated with this item.

This item appears in the following Collection(s)

Show simple item record