His scientific interests lie mostly in Chemical engineering, Pyrolysis, Organic chemistry, Heat of combustion and Potassium hydroxide. His work in Chemical engineering covers topics such as Adsorption which are related to areas like Hydrothermal carbonization, Porosity and Carbon. His Pyrolysis research incorporates elements of Furfural, Furfuryl alcohol, Isothermal process, Thermal decomposition and Activated carbon.
The various areas that Juan Félix González González examines in his Activated carbon study include Inorganic chemistry and Carbon dioxide. His Heat of combustion research includes themes of Volumetric flow rate, Boiler, Mass flow, Mineralogy and Pulp and paper industry. His studies in Potassium hydroxide integrate themes in fields like Biodiesel, Biodiesel production, Transesterification, Cetane index and Sodium hydroxide.
His primary areas of study are Chemical engineering, Pyrolysis, Activated carbon, Biodiesel and Transesterification. His studies deal with areas such as Scientific method, Hydrogen, Hydrogen production, Organic chemistry and Thermal as well as Chemical engineering. Pyrolysis is a subfield of Waste management that Juan Félix González González investigates.
His Activated carbon research is multidisciplinary, incorporating perspectives in Inorganic chemistry, Carbon, Carbon dioxide and Nitrophenol. His Biodiesel study integrates concerns from other disciplines, such as Raw material, Biofuel and Diesel fuel. His research investigates the connection with Transesterification and areas like Cold filter plugging point which intersect with concerns in Reaction rate.
Juan Félix González González mainly focuses on Biodiesel, Catalysis, Transesterification, Rapeseed and Pulp and paper industry. His work carried out in the field of Biodiesel brings together such families of science as Raw material and Food science. Fossil fuel, Kerosene and Pyrolysis is closely connected to Biofuel in his research, which is encompassed under the umbrella topic of Raw material.
The Catalysis study combines topics in areas such as Environmental chemistry, Methanol, Biochar and Nuclear chemistry. His Transesterification research is multidisciplinary, incorporating elements of Reaction rate, Sunflower oil and Cold filter plugging point. Juan Félix González González combines subjects such as Castor oil and Organic chemistry with his study of Rapeseed.
Transesterification, Biodiesel, Fatty acid methyl ester, Food science and Catalysis are his primary areas of study. His work deals with themes such as Reaction rate, Cold filter plugging point and Nuclear chemistry, which intersect with Transesterification. Juan Félix González González has researched Fatty acid methyl ester in several fields, including Raw material, Viscosity, Fatty acid, Biofuel and Biodiesel production.
His Food science research spans across into subjects like tert-Butylhydroquinone and Butylated hydroxyanisole. His Catalysis study is associated with Organic chemistry.
This overview was generated by a machine learning system which analysed the scientist’s body of work. If you have any feedback, you can contact us here.
Biodiesel Fuels from Vegetable Oils: Transesterification of Cynara cardunculus L. Oils with Ethanol
J. M. Encinar;J. F. González;and J. J. Rodríguez;A. Tejedor.
Energy & Fuels (2002)
Biodiesel from Used Frying Oil. Variables Affecting the Yields and Characteristics of the Biodiesel
José M. Encinar;Juan F. Gonzalez;Antonio Rodriguez-Reinares.
Industrial & Engineering Chemistry Research (2005)
Ethanolysis of used frying oil. Biodiesel preparation and characterization
J.M. Encinar;J.F. González;A. Rodríguez-Reinares.
Fuel Processing Technology (2007)
Pyrolysis of various biomass residues and char utilization for the production of activated carbons.
J.F. González;S. Román;J.M. Encinar;G. Martínez.
Journal of Analytical and Applied Pyrolysis (2009)
Pyrolysis of automobile tyre waste. Influence of operating variables and kinetics study
Juan F González;José M Encinar;José L Canito;Juan J Rodrı́guez.
Journal of Analytical and Applied Pyrolysis (2001)
Thermal regeneration of activated carbon saturated with p-nitrophenol
E Sabio;E González;J.F González;C.M González-Garcı́a.
Carbon (2004)
Fixed-bed pyrolysis of Cynara cardunculus L. Product yields and compositions
J.M Encinar;J.F González;J González.
Fuel Processing Technology (2000)
Hydrothermal carbonization as an effective way of densifying the energy content of biomass
S. Román;J.M.V. Nabais;C. Laginhas;B. Ledesma.
Fuel Processing Technology (2012)
Production of low-cost adsorbents with tunable surface chemistry by conjunction of hydrothermal carbonization and activation processes
S. Román;J.M. Valente Nabais;B. Ledesma;J.F. González.
Microporous and Mesoporous Materials (2013)
Pyrolysis of two agricultural residues: Olive and grape bagasse. Influence of particle size and temperature
J.M. Encinar;F.J. Beltrán;A. Bernalte;A. Ramiro.
Biomass & Bioenergy (1996)
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