Numerical modeling of rice husk gasification in fluidized bed gasifier for sustainable biofuel production
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Date
2022
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier Ltd
Abstract
Currently, there is a growing interest in various alternative energy sources due to the global energy scenario and rising crude oil prices. Renewable sources of energy like biomass can be exploited to produce energy-rich syngas. The biomass gasification process converts energy-rich solid fuel into syngas by partial combustion. In the present study, rice husk gasification using steam and, a mixture of steam and CO<inf>2</inf>at temperatures ranging from 650°C to 750 °C and steam to biomass ratio of 0.5-2 is studied. Steam gasification enhances hydrogen production, and mixing with CO<inf>2</inf>helps optimizing the H<inf>2</inf>/CO ratio. The study uses the Euler-Euler method in combination with kinetic theory granular of flow which is modeled using the computational fluid dynamics approach implementing user-defined functions for heterogeneous char reactions. The increased particle diameter harms the gasification performance due to the lower heating value of the syngas. As the steam to biomass ratio is increased, there is a positive effect on syngas quality, while temperature has a negative effect. The addition of CO<inf>2</inf>increases the CO conversion in the syngas. The heterogeneous reaction rate vanishes close to zero after a height of 0.4 m, where all solid carbon is consumed. © 2022 American Society of Civil Engineers (ASCE). All rights reserved.
Description
Keywords
Biofuels, Biomass, Computation theory, Computational fluid dynamics, Gasification, Hydrogen production, Steam, Synthesis gas, Alternative energy source, Biofuel production, Biomass Gasification, Biomass ratio, Energy, Fluidized bed gasifiers, Global energy, Renewable energies, Rice husk, Syn gas, Fluidized beds
Citation
Case Studies in Thermal Engineering, 2022, 39, , pp. -
