Publication: Variación de las propiedades térmicas de polvos de carbón en función de la humedad y la distribución del tamaño de grano
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KIM, A. Coal Formation and the Origin of Coal Fires. En: Coal and Peat Fires: A Global Perspective.ed. Elsevier: New York, 2011, pp 1-28
BARGHOORN, E. Degradation of plant materials and its relation to the origin of coal. 2nd Conf. on the Origin and Constitution of Coal. Nova Scotia, 1952, pp. 181–203.
SCHOPF, J. Definitions of peat and coal and of graphite that terminates the coal series. J. Geol. 1966, vol. 74, pp. 584– 592
HENDRICKS, T. The origin of coal.En: Chemistry of Coal Utilization.ed. New York: John Wiley and Sons Inc.,1945, pp. 1–24
CASSIDY, S. History of coal mining, Elements of Practical Coal Mining.Coal. 1973, vol. 2, pp. 1–10
US Energy Information Administration. International Energy Outlook – Coal, [web en línea]. <http://www.eia.doe. gov/oiaf/ieo/coal.htm>. [Consulta: 3-1-2011]
US Energy Information Administration USA. Annualenergyoutlook [docu mento en línea]. 2006. [Washington, DC]: 10/12/2002. <http://www.eia. doe.gov/oiaf/ieo/pdf/ieoreftab_6.pdf> [consulta: 10-8-2011]
US EnergyInformationAdministration USA [web en línea]. <http://www. eia.doe.gov/emeu/international/ coalconsumption.html>. [Consulta: 15-11-2008]
SEHLKE, G. U. S. Department of Energy’s Role in the Energy-Water Nexus. Journal of Contemporary Water Research and Education.2009, vol. 143,núm. 2, pp. 56-62
HIROAKI, Y. Coal Firing Power Generation Technology. Journal of the Japan Institute of Energy. 2003, vol. 82, pp. 822-829.
VIEIRA, C. Incorporation of solids wastes in red ceramics – an update review. RevistaMateria. 2009, vol. 14, pp. 881-905.
UNSWORTH, J. Coal Quality and Combustion Performance. An international perspective.Coal Science and Technology.1991, vol. 19, núm. 2, pp. 638-642
LEE, H.; KLIMA, M.; SAYLOR, P. Evaluation of a laboratory rod mill when grinding bituminous coal. Fuel. 2012, vol. 92, pp. 116–121.
US Energy Information Administration USA, Energy in the United States: 1635–2000 [documento en línea]. 2001. [Washington, DC]: 12/06/2002 <http://www.eia.doe.gov/emeu/aer/ eh>[consulta: 10-8-2011]
CIMAC, C. Selección de carbones para la aplicación del combustible CCTA en hornos de cerámica dentro de los esquemas de producción limpia y uso racional de energía- departamentos de Boyacá, Santander y Norte de Santander. Centro de Investigación de Materiales Cerámicos, Univ. Francisco de Paula Santander, 2004. 85 p
VALBUENA, O. Efecto de la distribución de tamaño de partícula en la conductividad térmica de polvos de carbón usados en la elaboración del combustible tipo CCTA. San José de Cúcuta: Universidad
TRIVIÑO, M.; MOLINA, C. Diagnóstico técnico de carbones térmicos para la obtención del combustible CCTA en Boyacá. Revista Energética. 2007, vol. 37, pp. 13-22
AMERICAN Section of the International Association for Testing Materials,ASTM (US). ASTM Standard D3174, 2011. Method for Ash in the Analysis Sample of Coal and Coke from Coal.ASTM, 2011.16 p
AMERICAN Section of the International Association for Testing Materials,ASTM (US). ASTM Standard D3177 – 02, 2007. Test Methods for Total Sulfur in the Analysis Sample of Coal and Coke. ASTM, 2007. 12p.
AMERICAN Section of the International Association for Testing Materials,ASTM (US). ASTM Standard D3175, 2011. Test Method for Volatile Matter in the Analysis Sample of Coal and Coke. ASTM, 2011. 15 p.
DecagonDevices [web en línea]. <http://www.ictinternational.com.au/ kd2.htm>. [Consulta: 5-1-2012]
DRAGAN, A. The existence of optimal parameters of the generalized logistic function.Applied Mathematics and Computation. 1996, vol. 77, pp. 281- 294
DANIEL J. MALONEY, D.A.; SAMPATH, R. AND ZONDLO, J. Heat capacity and thermal conductivity considerations for coal particles during the early stages of rapid heating. Combustion and Flame. 1999, vol. 116(1–2), pp. 94–104