ESTUDIO NUMÉRICO DEL EFECTO DE LAS VARIABLES DE CONTROL EN LA AUTOIGNICIÓN DEL GAS DE SÍNTESIS EN UN MOTOR HCCI ESTACIONARIO PARA MICROGENERACIÓN
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Agency, I. E. (2018). Key world energy statistics. International Energy Agency Paris.
AB Niño., (2018), Micro turbina Peltón, una solución real de energía para zonas no interconectadas (ZNI). RCTA.
Bhaduri, S., Contino, F., Jeanmart, H., y Breuer, E. (2015). The effects of biomass syngas composition, moisture, tar loading and operating conditions on the combustion of a tar-tolerant HCCI (Homogeneous Charge Compression Ignition) engine. Energy, 87, 289–302. https://doi.org/10.1016/j.energy.2015.04.076
Ciferno, J. P., y Marano, J. J. (2002). Benchmarking biomass gasification technologies for fuels, chemicals and hydrogen production. In US Department of Energy. National Energy. Retrieved from http://seca.doe.gov/technologies/coalpower/gasification/pubs/pdf/BMassGasFinal.pdf
Dec, J. E. (2009). Advanced compression-ignition engines - understanding the in-cylinder processes. Proceedings of the Combustion Institute, 32, 2727–2742. https://doi.org/10.1016/j.proci.2008.08.008
Escalante, H., Orduz, J., Zapata, H., Cardona, M. C., y Duarte, M. (2011). Atlas del potencial energético de la biomasa residual en Colombia. Anexo B: Muestreo y Caracterización de La Biomasa Residual En Colombia (Págs. 131-136). Colombia.
Esteve Gómez, N. (2011). Energización de las zonas no interconectadas a partir de las energías renovables solar y eólica. Facultad de Estudios Ambientales y Rurales.
Haggith, D. E. (2011). Combustion Phasing and Engine Performance of an HCCI Engine Utilizing Simulated Biomass Gas. University of Windsor.
Hagos, F. Y., Aziz, A. R. A., y Sulaiman, S. A. (2014). Trends of syngas as a fuel in internal combustion engines. Advances in Mechanical Engineering, 6, 401587.
Hasan, M. M., y Rahman, M. M. (2016). Homogeneous charge compression ignition combustion : Advantages over compression ignition combustion, challenges and solutions. Renewable and Sustainable Energy Reviews, 57, 282–291. https://doi.org/10.1016/j.rser.2015.12.157
Heywood, J. B. (1988). Internal Combustion Engine Fundementals. In McGrawHill series in mechanical engineering (Vol. 21). https://doi.org/10987654.
JEG Plaza, MAR Nuñez., (2017), Formación en competencias específicas para la industria del software colombiano. Experiencias del uso del aprendizaje basado en proyectos. RCTA.
L Tangarife, M Sánchez, M Rojas., (2017), Modelo de interventoría de tecnologías de información en el área de conocimiento de la gestión del alcance de PMBOK® y alineado con ISO 21500 y COBIT®. RCTA.
McAllister, S., Chen, J.-Y., y Fernandez-Pello, A. C. (2011). Fundamentals of combustion processes (Vol. 302). Springer.
McKendry, P. (2002a). Energy production from biomass (part 1): overview of biomass. Bioresource Technol, 83(1), 37–46. https://doi.org/10.1016/S0960-8524(01)00118-3
McKendry, P. (2002b). Energy production from biomass (part 2): Conversion technologies. Bioresource Technology, 83(1), 47–54. https://doi.org/10.1016/S0960-8524(01)00119-5
McKendry, P. (2002c). Energy production from biomass (part 3): Gasification technologies. Bioresource Technology, 83(1), 55–63. https://doi.org/10.1016/S0960-8524(01)00120-1
Quaak, P., Harrie, K., y Stassen, H. (1999). Energy from biomass: a review of combustion and gasification technologies (Vol. 23). World Bank Publications.
O Suarez, C Vega, E Sánchez, A Pardo., (2018), Degradación anormal de p53 e inducción de apoptosis en la red P53-mdm2 usando la estrategia de control tipo pin. RCTA.
Rey Luengas, O. L., Vélez, O. F., Serrano, S., Zabaleta, O. A., y Sáenz, G. (2018). Zonas no interconectadas –ZNI Diagnóstico de la prestación del servicio de energía eléctrica. Bogotá D.C.
Richards, G. A., Casleton, K. H., y Weiland, N. T. (2009). Syngas utilization. Synthesis Gas Combustion Fundamentals and Application, 197–222.
Saxena, S., y Bedoya, I. D. (2013). Fundamental phenomena affecting low temperature combustion and HCCI engines, high load limits and strategies for extending these limits. Progress in Energy and Combustion Science, 39, 457–488. https://doi.org/10.1016/j.pecs.2013.05.002 Review
Sung, C.-J., y Law, C. K. (2008). Fundamental Combustion Properties of H2/CO Mixtures: Ignition and Flame Propagation at Elevated Pressures. Combustion Science and Technology, 180(6), 1097–1116. https://doi.org/10.1080/00102200801963169
Warnatz, J., Maas, U., Dibble, R. W., y Warnatz, J. (1996). Combustion (Vol. 3). Springer.
Westbrook, C. K. (2000). Chemical kinetics of hydrocarbon ignition in practical combustion systems. Proceedings of the Combustion Institute, 28(2), 1563–1577.
Yamasaki, Y., Kanno, M., Taura, Y., y Kaneko, S. (2009). Study on Biomass Gas HCCI Engine. SAE Technical Paper, 32(0066), 7.
Yao, M., Zheng, Z., y Liu, H. (2009). Progress and recent trends in homogeneous charge compression ignition (HCCI) engines. Progress in Energy and Combustion Science, 35, 398–437. https://doi.org/10.1016/j.pecs.2009.05.001
SITIOS WEB
Emission Standards. (n.d.). Retrieved from https://www.dieselnet.com/standards/
"Chemical-Kinetic Mechanisms for Combustion Applications", San Diego Mechanism web page,
Mechanical and Aerospace Engineering (Combustion Research), University of California at San Diego (http://combustion.ucsd.edu).ion institute, 28(2), 1563-1577.
DOI: https://doi.org/10.24054/16927257.v35.n35.2020.3921
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