Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed

The application of fluidized bed has emerged since the past decade as one of the most potential and promising solution to a relatively wide spectrum of engineering field, particularly on the biochemical processing industry. Fast pyrolysis has gained its huge popularity in the biofuel and bio-oil ind...

Full description

Bibliographic Details
Main Author: Tan, Zhong Jian
Format: Thesis
Language:English
Published: 2015
Subjects:
Online Access:http://eprints.intimal.edu.my/103/
http://eprints.intimal.edu.my/103/1/BMEGI%20-%2044.pdf
_version_ 1848766371030106112
author Tan, Zhong Jian
author_facet Tan, Zhong Jian
author_sort Tan, Zhong Jian
building INTI Institutional Repository
collection Online Access
description The application of fluidized bed has emerged since the past decade as one of the most potential and promising solution to a relatively wide spectrum of engineering field, particularly on the biochemical processing industry. Fast pyrolysis has gained its huge popularity in the biofuel and bio-oil industry due to its high production rate using the technology of fluidized bed. Even though au enormous number of academic studies have been performed experimentally to improve and understand more on the fluidization process; however, the complex hydrodynamics and interaction of the fluidized particles are still not largely understood. Therefore, computational fluid dynamics (CFI)) has turned out to be a useful tool to predict and solve for the particles interaction and flow behavior in the fluidized bed. Among the CFD techniques and module available on the market, Euler-Eulerian Two-Fluid Model (EE-TFM) have been chosen as to study and obtain the operational parameters required for the fluidization of different materials and different particle diameters. ¡n the present work, the effect of the material, namely stainless steel and sand and the respective diameters of 0.5 and 1 millimeter have been investigated with the aid of Ansys FLUENT 15. From the simulation, it has found that the minimum fluidization velocities of steel beads are 0.7 m/s and 1.4 m/s respectively for diameter of 0.5 millimeters and 1.0 millimeter. On the other hand, the minimum required velocities to fluidize the less dense sand beads are 0.3 m/s and 0.7 m/s for particle diameter of 0.5 millimeters and 1.0 millimeter respectively. It has also discovered that the minimum fluidization velocity will increase as the density of the particle material increases; while it will also increase when the particle diameter increases. Therefore, it can be concluded that the drag force required to fluidize the specific solid bed material is proportional to both the density and the diameter of the particle chosen.
first_indexed 2025-11-14T11:50:04Z
format Thesis
id intimal-103
institution INTI International University
institution_category Local University
language English
last_indexed 2025-11-14T11:50:04Z
publishDate 2015
recordtype eprints
repository_type Digital Repository
spelling intimal-1032016-04-06T09:50:05Z http://eprints.intimal.edu.my/103/ Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed Tan, Zhong Jian TJ Mechanical engineering and machinery The application of fluidized bed has emerged since the past decade as one of the most potential and promising solution to a relatively wide spectrum of engineering field, particularly on the biochemical processing industry. Fast pyrolysis has gained its huge popularity in the biofuel and bio-oil industry due to its high production rate using the technology of fluidized bed. Even though au enormous number of academic studies have been performed experimentally to improve and understand more on the fluidization process; however, the complex hydrodynamics and interaction of the fluidized particles are still not largely understood. Therefore, computational fluid dynamics (CFI)) has turned out to be a useful tool to predict and solve for the particles interaction and flow behavior in the fluidized bed. Among the CFD techniques and module available on the market, Euler-Eulerian Two-Fluid Model (EE-TFM) have been chosen as to study and obtain the operational parameters required for the fluidization of different materials and different particle diameters. ¡n the present work, the effect of the material, namely stainless steel and sand and the respective diameters of 0.5 and 1 millimeter have been investigated with the aid of Ansys FLUENT 15. From the simulation, it has found that the minimum fluidization velocities of steel beads are 0.7 m/s and 1.4 m/s respectively for diameter of 0.5 millimeters and 1.0 millimeter. On the other hand, the minimum required velocities to fluidize the less dense sand beads are 0.3 m/s and 0.7 m/s for particle diameter of 0.5 millimeters and 1.0 millimeter respectively. It has also discovered that the minimum fluidization velocity will increase as the density of the particle material increases; while it will also increase when the particle diameter increases. Therefore, it can be concluded that the drag force required to fluidize the specific solid bed material is proportional to both the density and the diameter of the particle chosen. 2015 Thesis NonPeerReviewed text en http://eprints.intimal.edu.my/103/1/BMEGI%20-%2044.pdf Tan, Zhong Jian (2015) Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed. Other thesis, INTI International University.
spellingShingle TJ Mechanical engineering and machinery
Tan, Zhong Jian
Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed
title Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed
title_full Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed
title_fullStr Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed
title_full_unstemmed Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed
title_short Computational Fluid Dynamics Simulation of Laboratory Scale Reactor of Fast Pyrolysis Fluidized Bed
title_sort computational fluid dynamics simulation of laboratory scale reactor of fast pyrolysis fluidized bed
topic TJ Mechanical engineering and machinery
url http://eprints.intimal.edu.my/103/
http://eprints.intimal.edu.my/103/1/BMEGI%20-%2044.pdf