Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process

In this project, the main physical and chemical phenomena associated with the pyrolysis of sugarcane bagasse were studied develop a new particle-level model that predicts the evolution of major compounds during the pyrolysis process. The model incorporates dynamics of bubbling within the liquid inte...

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Autores:
Montoya Arbeláez, Jorge Iván
Tipo de recurso:
Doctoral thesis
Fecha de publicación:
2016
Institución:
Universidad Nacional de Colombia
Repositorio:
Universidad Nacional de Colombia
Idioma:
spa
OAI Identifier:
oai:repositorio.unal.edu.co:unal/59122
Acceso en línea:
https://repositorio.unal.edu.co/handle/unal/59122
http://bdigital.unal.edu.co/56371/
Palabra clave:
62 Ingeniería y operaciones afines / Engineering
66 Ingeniería química y Tecnologías relacionadas/ Chemical engineering
Fast pyrolysis
Hot plate reactor
Aerosols
Rights
openAccess
License
Atribución-NoComercial 4.0 Internacional
id UNACIONAL2_05f6a519bc47cc03f7e75f2db05495f7
oai_identifier_str oai:repositorio.unal.edu.co:unal/59122
network_acronym_str UNACIONAL2
network_name_str Universidad Nacional de Colombia
repository_id_str
dc.title.spa.fl_str_mv Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
title Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
spellingShingle Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
62 Ingeniería y operaciones afines / Engineering
66 Ingeniería química y Tecnologías relacionadas/ Chemical engineering
Fast pyrolysis
Hot plate reactor
Aerosols
title_short Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
title_full Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
title_fullStr Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
title_full_unstemmed Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
title_sort Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process
dc.creator.fl_str_mv Montoya Arbeláez, Jorge Iván
dc.contributor.advisor.spa.fl_str_mv Chejne Janna, Farid (Thesis advisor)
Garcia-Perez, Manuel (Thesis advisor)
dc.contributor.author.spa.fl_str_mv Montoya Arbeláez, Jorge Iván
dc.subject.ddc.spa.fl_str_mv 62 Ingeniería y operaciones afines / Engineering
66 Ingeniería química y Tecnologías relacionadas/ Chemical engineering
topic 62 Ingeniería y operaciones afines / Engineering
66 Ingeniería química y Tecnologías relacionadas/ Chemical engineering
Fast pyrolysis
Hot plate reactor
Aerosols
dc.subject.proposal.spa.fl_str_mv Fast pyrolysis
Hot plate reactor
Aerosols
description In this project, the main physical and chemical phenomena associated with the pyrolysis of sugarcane bagasse were studied develop a new particle-level model that predicts the evolution of major compounds during the pyrolysis process. The model incorporates dynamics of bubbling within the liquid intermediate phase and their bubbles contributions to the ejection of aerosols. The main physical phenomena occurring during pyrolysis of sugarcane bagasse, pseudo-components, and model compounds (chapters 2-4) were explored. Fof this, new types of reactors (light bulb reactor and hot plate reactor) and visualization methodologies were employed. Notably, a fast camera was used to visualize the growth, nucleation, and size of the bubbles within the intermediate liquid phase for two surrogates of lignocellulose (organosolv lignin, sucrose). In the hot plate reactor, a new methodology was proposed to identify and classify by size the aerosols ejected during pyrolysis of sugarcane bagasse and its pseudo-components. The aerosol studies were performed at high and low heating rates (10 ° C / s and 1200 ° C / s) and under both vacuum (150mbar) and atmospheric pressure (900mbar). The ejected aerosols were captured on glass and plastic surfaces and visualized by scanning electron microscopy (SEM). The SEM micrographs were used to estimate the ejection intensity under different conditions. These results were then used to identify relationships between bubble size and aerosol size as well as the number of bubbles vs. number of bubbles / number of aerosols used in the mathematical model. The experimental results showed that gas bubbles sizes and ejected aerosols sizes follow a lognormal distribution for all materials studied (sucrose, lignin, xylan, cellulose, and bagasse). Under vacuum conditions (150mbar) and high heating rate (1200 ° C / s) conditions, aerosol formation is promoted by enhancement of oligomer evaporation, bubble bursting, and micro-explosions within the intermediate liquid phase. The distribution of primary products and the study of kinetic parameters by using a distribution of activation energy model were performed using a hot plate reactor with a thin and uniform biomass film (thickness≈60μm). These studies were carried out under vacuum (150mbar) to minimize secondary reactions. The main compounds released during devolatilization of sugar cane bagasse were analyzed by mass spectroscopy (GC-MS), UV-fluorescence (UV-Fluorescence), gas chromatography (GC), and liquid chromatography (HPLC). The results showed that 100 °C/s, no significant changes are observed in the yields of the products due to the low thermal conductivity of the biomass and these conditions exhibited the highest yields of sugar and lignin oligomers with the least char. The bio-oil obtained at low heating rates, however, was high in water content, organic acids, aldehydes, and ketones with a lower concentration of oligomers compared with bio-oil obtained at high heating rates. The temperature profile of the external surface of the biomass was determined via experimentation and model simulation (Chapter 7). The model and experiments were compared for at different particle thicknesses, temperature, and heating rates. The reaction rate for each species was obtained by fitting experimental data to a distribution of activation energy model that describes the evolution of primary products, the main secondary reactions, bubble formation within the intermediate liquid phase, and aerosol ejection. The model predictions for aerosols char, light oxygenated compounds, and permanent gases yield were close to experimental results. The most sensitive variable for aerosols yield was particle size, showing a yield close to 0 with a 2mm particle. Temperature has a positive effect on the aerosol yield by intensifying chemical reactions and bubble dynamics (nucleation). Heating rate enhances bubble bursting and aerosol ejection but to a lesser degree than particle size.
publishDate 2016
dc.date.issued.spa.fl_str_mv 2016-04-05
dc.date.accessioned.spa.fl_str_mv 2019-07-02T15:25:04Z
dc.date.available.spa.fl_str_mv 2019-07-02T15:25:04Z
dc.type.spa.fl_str_mv Trabajo de grado - Doctorado
dc.type.driver.spa.fl_str_mv info:eu-repo/semantics/doctoralThesis
dc.type.version.spa.fl_str_mv info:eu-repo/semantics/acceptedVersion
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url https://repositorio.unal.edu.co/handle/unal/59122
http://bdigital.unal.edu.co/56371/
dc.language.iso.spa.fl_str_mv spa
language spa
dc.relation.ispartof.spa.fl_str_mv Universidad Nacional de Colombia Sede Medellín Facultad de Minas Escuela de Química y Petróleos Ingeniería Química
Ingeniería Química
dc.relation.references.spa.fl_str_mv Montoya Arbeláez, Jorge Iván (2016) Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process. Doctorado thesis, Universidad Nacional de Colombia - Sede Medellìn.
dc.rights.spa.fl_str_mv Derechos reservados - Universidad Nacional de Colombia
dc.rights.coar.fl_str_mv http://purl.org/coar/access_right/c_abf2
dc.rights.license.spa.fl_str_mv Atribución-NoComercial 4.0 Internacional
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dc.rights.accessrights.spa.fl_str_mv info:eu-repo/semantics/openAccess
rights_invalid_str_mv Atribución-NoComercial 4.0 Internacional
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spelling Atribución-NoComercial 4.0 InternacionalDerechos reservados - Universidad Nacional de Colombiahttp://creativecommons.org/licenses/by-nc/4.0/info:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Chejne Janna, Farid (Thesis advisor)56830a5f-448f-4ea7-8571-65bbc953464e-1Garcia-Perez, Manuel (Thesis advisor)f2779aee-ed33-4ac4-abf0-eadab047a739-1Montoya Arbeláez, Jorge Iván993c91e7-39bb-410e-9876-6980f361e38b3002019-07-02T15:25:04Z2019-07-02T15:25:04Z2016-04-05https://repositorio.unal.edu.co/handle/unal/59122http://bdigital.unal.edu.co/56371/In this project, the main physical and chemical phenomena associated with the pyrolysis of sugarcane bagasse were studied develop a new particle-level model that predicts the evolution of major compounds during the pyrolysis process. The model incorporates dynamics of bubbling within the liquid intermediate phase and their bubbles contributions to the ejection of aerosols. The main physical phenomena occurring during pyrolysis of sugarcane bagasse, pseudo-components, and model compounds (chapters 2-4) were explored. Fof this, new types of reactors (light bulb reactor and hot plate reactor) and visualization methodologies were employed. Notably, a fast camera was used to visualize the growth, nucleation, and size of the bubbles within the intermediate liquid phase for two surrogates of lignocellulose (organosolv lignin, sucrose). In the hot plate reactor, a new methodology was proposed to identify and classify by size the aerosols ejected during pyrolysis of sugarcane bagasse and its pseudo-components. The aerosol studies were performed at high and low heating rates (10 ° C / s and 1200 ° C / s) and under both vacuum (150mbar) and atmospheric pressure (900mbar). The ejected aerosols were captured on glass and plastic surfaces and visualized by scanning electron microscopy (SEM). The SEM micrographs were used to estimate the ejection intensity under different conditions. These results were then used to identify relationships between bubble size and aerosol size as well as the number of bubbles vs. number of bubbles / number of aerosols used in the mathematical model. The experimental results showed that gas bubbles sizes and ejected aerosols sizes follow a lognormal distribution for all materials studied (sucrose, lignin, xylan, cellulose, and bagasse). Under vacuum conditions (150mbar) and high heating rate (1200 ° C / s) conditions, aerosol formation is promoted by enhancement of oligomer evaporation, bubble bursting, and micro-explosions within the intermediate liquid phase. The distribution of primary products and the study of kinetic parameters by using a distribution of activation energy model were performed using a hot plate reactor with a thin and uniform biomass film (thickness≈60μm). These studies were carried out under vacuum (150mbar) to minimize secondary reactions. The main compounds released during devolatilization of sugar cane bagasse were analyzed by mass spectroscopy (GC-MS), UV-fluorescence (UV-Fluorescence), gas chromatography (GC), and liquid chromatography (HPLC). The results showed that 100 °C/s, no significant changes are observed in the yields of the products due to the low thermal conductivity of the biomass and these conditions exhibited the highest yields of sugar and lignin oligomers with the least char. The bio-oil obtained at low heating rates, however, was high in water content, organic acids, aldehydes, and ketones with a lower concentration of oligomers compared with bio-oil obtained at high heating rates. The temperature profile of the external surface of the biomass was determined via experimentation and model simulation (Chapter 7). The model and experiments were compared for at different particle thicknesses, temperature, and heating rates. The reaction rate for each species was obtained by fitting experimental data to a distribution of activation energy model that describes the evolution of primary products, the main secondary reactions, bubble formation within the intermediate liquid phase, and aerosol ejection. The model predictions for aerosols char, light oxygenated compounds, and permanent gases yield were close to experimental results. The most sensitive variable for aerosols yield was particle size, showing a yield close to 0 with a 2mm particle. Temperature has a positive effect on the aerosol yield by intensifying chemical reactions and bubble dynamics (nucleation). Heating rate enhances bubble bursting and aerosol ejection but to a lesser degree than particle size.Doctoradoapplication/pdfspaUniversidad Nacional de Colombia Sede Medellín Facultad de Minas Escuela de Química y Petróleos Ingeniería QuímicaIngeniería QuímicaMontoya Arbeláez, Jorge Iván (2016) Kinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis Process. Doctorado thesis, Universidad Nacional de Colombia - Sede Medellìn.62 Ingeniería y operaciones afines / Engineering66 Ingeniería química y Tecnologías relacionadas/ Chemical engineeringFast pyrolysisHot plate reactorAerosolsKinetic Study and Phenomenological Modeling of a Biomass Particle during Fast Pyrolysis ProcessTrabajo de grado - Doctoradoinfo:eu-repo/semantics/doctoralThesisinfo:eu-repo/semantics/acceptedVersionhttp://purl.org/coar/resource_type/c_db06Texthttp://purl.org/redcol/resource_type/TDORIGINAL1152202970.2016.pdfTesis de Doctorado en Ingeniería - Sistemas Energéticosapplication/pdf12423437https://repositorio.unal.edu.co/bitstream/unal/59122/1/1152202970.2016.pdf55ceae97ffd79289eecc88a7da1ff71eMD51THUMBNAIL1152202970.2016.pdf.jpg1152202970.2016.pdf.jpgGenerated Thumbnailimage/jpeg4353https://repositorio.unal.edu.co/bitstream/unal/59122/2/1152202970.2016.pdf.jpg4f2257b02f85eacb94f92581b6d9fa06MD52unal/59122oai:repositorio.unal.edu.co:unal/591222024-04-05 23:43:55.299Repositorio Institucional Universidad Nacional de Colombiarepositorio_nal@unal.edu.co