Effect of temperature on particle behavior and heat transfer during fast pyrolysis of biomass in a fluidized bed reactor
The purpose of this study is to investigate the behavior of biomass particles and the characteristic of heat transfer during rapid pyrolysis in a fluidized bed reactor. A multifluid model (MFM) framework integrated with the heterogeneous stiff reaction was used to perform a two-dimensional fluidized...
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creator | Thoharudin Nadjib, Muhammad Santosa, Tito Hadji Agung Caroko, Novi Nugroho, Arif Setyo |
description | The purpose of this study is to investigate the behavior of biomass particles and the characteristic of heat transfer during rapid pyrolysis in a fluidized bed reactor. A multifluid model (MFM) framework integrated with the heterogeneous stiff reaction was used to perform a two-dimensional fluidized bed pyrolysis simulation. The pyrolysis process was modelled using a simplified comprehensive kinetic framework enhanced with homogeneous and secondary reactions. 600 µm-sized particles of biomass were introduced into the reactor at 27 °C, and 400–800 °C was the temperature at which the pyrolysis was carried out. The simulation resulted that the velocities of gas phase and biomass particles were influenced by the temperature and did not for sand particles. The heat transfer dominantly occurred from the gas phase to the sand particles and followed by the gas phase to the biomass particle. However, the sand-to-biomass heat transfer only occurred in the dense region of the fluidized bed reactor; thus, the average heat transfer coefficient was the lowest. The heat emitted from the reactor wall was mainly absorbed by the sand particles and moderately by the gas phase. |
doi_str_mv | 10.1063/5.0207238 |
format | Conference Proceeding |
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A multifluid model (MFM) framework integrated with the heterogeneous stiff reaction was used to perform a two-dimensional fluidized bed pyrolysis simulation. The pyrolysis process was modelled using a simplified comprehensive kinetic framework enhanced with homogeneous and secondary reactions. 600 µm-sized particles of biomass were introduced into the reactor at 27 °C, and 400–800 °C was the temperature at which the pyrolysis was carried out. The simulation resulted that the velocities of gas phase and biomass particles were influenced by the temperature and did not for sand particles. The heat transfer dominantly occurred from the gas phase to the sand particles and followed by the gas phase to the biomass particle. However, the sand-to-biomass heat transfer only occurred in the dense region of the fluidized bed reactor; thus, the average heat transfer coefficient was the lowest. The heat emitted from the reactor wall was mainly absorbed by the sand particles and moderately by the gas phase.</description><identifier>ISSN: 0094-243X</identifier><identifier>EISSN: 1551-7616</identifier><identifier>DOI: 10.1063/5.0207238</identifier><identifier>CODEN: APCPCS</identifier><language>eng</language><publisher>Melville: American Institute of Physics</publisher><subject>Beds (process engineering) ; Biomass ; Fluidized bed reactors ; Fluidized beds ; Heat transfer ; Heat transfer coefficients ; Pyrolysis ; Sand ; Sand & gravel ; Temperature effects ; Vapor phases</subject><ispartof>AIP Conference Proceedings, 2024, Vol.3115 (1)</ispartof><rights>Author(s)</rights><rights>2024 Author(s). 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A multifluid model (MFM) framework integrated with the heterogeneous stiff reaction was used to perform a two-dimensional fluidized bed pyrolysis simulation. The pyrolysis process was modelled using a simplified comprehensive kinetic framework enhanced with homogeneous and secondary reactions. 600 µm-sized particles of biomass were introduced into the reactor at 27 °C, and 400–800 °C was the temperature at which the pyrolysis was carried out. The simulation resulted that the velocities of gas phase and biomass particles were influenced by the temperature and did not for sand particles. The heat transfer dominantly occurred from the gas phase to the sand particles and followed by the gas phase to the biomass particle. However, the sand-to-biomass heat transfer only occurred in the dense region of the fluidized bed reactor; thus, the average heat transfer coefficient was the lowest. The heat emitted from the reactor wall was mainly absorbed by the sand particles and moderately by the gas phase.</description><subject>Beds (process engineering)</subject><subject>Biomass</subject><subject>Fluidized bed reactors</subject><subject>Fluidized beds</subject><subject>Heat transfer</subject><subject>Heat transfer coefficients</subject><subject>Pyrolysis</subject><subject>Sand</subject><subject>Sand & gravel</subject><subject>Temperature effects</subject><subject>Vapor phases</subject><issn>0094-243X</issn><issn>1551-7616</issn><fulltext>true</fulltext><rsrctype>conference_proceeding</rsrctype><creationdate>2024</creationdate><recordtype>conference_proceeding</recordtype><recordid>eNotkE9LwzAYh4MoOKcHv0HAm9D5vk2btkcZ8w8MvOzgrbxrEpfRJTVJxfnp3dhOv8vD84OHsXuEGYIUT-UMcqhyUV-wCZYlZpVEeckmAE2R5YX4vGY3MW4B8qaq6gn7XRiju8S94UnvBh0ojUFz7_hAIdmu13ytN_RjfeDkFN9oSjwFctHowNUYrPvihmLiwz74fh9tPLrW1u8oRm4dJ2760Sr7p9VBpXjQ1CUfbtmVoT7qu_NO2eplsZq_ZcuP1_f58zIbpKgzoWUHHUoFhUZUCkSzBpC5LJQypAEV5EY0EoiaAmtZgikLUFiZSgrEXEzZw0k7BP896pjarR-DOzy2AqEuQGLVHKjHExU7myhZ79oh2B2FfYvQHsO2ZXsOK_4BE9Vq4g</recordid><startdate>20240923</startdate><enddate>20240923</enddate><creator>Thoharudin</creator><creator>Nadjib, Muhammad</creator><creator>Santosa, Tito Hadji Agung</creator><creator>Caroko, Novi</creator><creator>Nugroho, Arif Setyo</creator><general>American Institute of Physics</general><scope>8FD</scope><scope>H8D</scope><scope>L7M</scope></search><sort><creationdate>20240923</creationdate><title>Effect of temperature on particle behavior and heat transfer during fast pyrolysis of biomass in a fluidized bed reactor</title><author>Thoharudin ; Nadjib, Muhammad ; Santosa, Tito Hadji Agung ; Caroko, Novi ; Nugroho, Arif Setyo</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-p638-3e6c0c16d04e11dd039b006264ddfae01d02f3960aa9418650f540d17f7631123</frbrgroupid><rsrctype>conference_proceedings</rsrctype><prefilter>conference_proceedings</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Beds (process engineering)</topic><topic>Biomass</topic><topic>Fluidized bed reactors</topic><topic>Fluidized beds</topic><topic>Heat transfer</topic><topic>Heat transfer coefficients</topic><topic>Pyrolysis</topic><topic>Sand</topic><topic>Sand & gravel</topic><topic>Temperature effects</topic><topic>Vapor phases</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Thoharudin</creatorcontrib><creatorcontrib>Nadjib, Muhammad</creatorcontrib><creatorcontrib>Santosa, Tito Hadji Agung</creatorcontrib><creatorcontrib>Caroko, Novi</creatorcontrib><creatorcontrib>Nugroho, Arif Setyo</creatorcontrib><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Advanced Technologies Database with Aerospace</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Thoharudin</au><au>Nadjib, Muhammad</au><au>Santosa, Tito Hadji Agung</au><au>Caroko, Novi</au><au>Nugroho, Arif Setyo</au><au>Blum, Christian</au><au>Jusman, Yessi</au><au>Nurcahyadi, Teddy</au><format>book</format><genre>proceeding</genre><ristype>CONF</ristype><atitle>Effect of temperature on particle behavior and heat transfer during fast pyrolysis of biomass in a fluidized bed reactor</atitle><btitle>AIP Conference Proceedings</btitle><date>2024-09-23</date><risdate>2024</risdate><volume>3115</volume><issue>1</issue><issn>0094-243X</issn><eissn>1551-7616</eissn><coden>APCPCS</coden><abstract>The purpose of this study is to investigate the behavior of biomass particles and the characteristic of heat transfer during rapid pyrolysis in a fluidized bed reactor. A multifluid model (MFM) framework integrated with the heterogeneous stiff reaction was used to perform a two-dimensional fluidized bed pyrolysis simulation. The pyrolysis process was modelled using a simplified comprehensive kinetic framework enhanced with homogeneous and secondary reactions. 600 µm-sized particles of biomass were introduced into the reactor at 27 °C, and 400–800 °C was the temperature at which the pyrolysis was carried out. The simulation resulted that the velocities of gas phase and biomass particles were influenced by the temperature and did not for sand particles. The heat transfer dominantly occurred from the gas phase to the sand particles and followed by the gas phase to the biomass particle. However, the sand-to-biomass heat transfer only occurred in the dense region of the fluidized bed reactor; thus, the average heat transfer coefficient was the lowest. The heat emitted from the reactor wall was mainly absorbed by the sand particles and moderately by the gas phase.</abstract><cop>Melville</cop><pub>American Institute of Physics</pub><doi>10.1063/5.0207238</doi><tpages>12</tpages></addata></record> |
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identifier | ISSN: 0094-243X |
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language | eng |
recordid | cdi_scitation_primary_10_1063_5_0207238 |
source | AIP Journals Complete |
subjects | Beds (process engineering) Biomass Fluidized bed reactors Fluidized beds Heat transfer Heat transfer coefficients Pyrolysis Sand Sand & gravel Temperature effects Vapor phases |
title | Effect of temperature on particle behavior and heat transfer during fast pyrolysis of biomass in a fluidized bed reactor |
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