Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production

Due to the intensive demand for alternative clean energy from renewable sources, the potential of converting biomass into hydrogen is currently under serious consideration. This potential is even more attractive with the abundant availability of agricultural wastes in Malaysia, a major palm oil prod...

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Main Authors: Ahmad, Murni M, Inayat, Abrar, Yusup, Suzana, Uemura, Yoshimitsu
Format: Conference or Workshop Item
Published: 2011
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Online Access:http://eprints.utp.edu.my/5520/1/Paper_in_Proceedings.pdf
http://www.bitlifesciences.com/wcbe2011/
http://eprints.utp.edu.my/5520/
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Institution: Universiti Teknologi Petronas
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spelling my.utp.eprints.55202017-03-20T01:59:41Z Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production Ahmad, Murni M Inayat, Abrar Yusup, Suzana Uemura, Yoshimitsu TP Chemical technology Due to the intensive demand for alternative clean energy from renewable sources, the potential of converting biomass into hydrogen is currently under serious consideration. This potential is even more attractive with the abundant availability of agricultural wastes in Malaysia, a major palm oil producer. This work reports the mathematical modelling of thermodynamic efficiency for hydrogen production from biomass via steam gasification with in-situ carbon dioxide capture using CaO as sorbent. The model that includes the mass and energy balances for a specified flowsheet design incorporates the thermodynamic analysis approach based on the first law to identify potential improvement in the process via increasing its energy efficiency and sustainability. The influence of temperature, steam/biomass and sorbent/biomass ratios are profiled against the thermodynamic efficiency. The results show that the thermodynamic efficiency depends on feed stock quality and vary with the operating conditions. The model predicts an increment in the thermodynamic efficiency from 66.5 to 83.3% within the temperature range of 900 to 1100 K. Increasing either steam/biomass ratio or sorbent/biomass ratio also increases the thermodynamic efficiency. Furthermore, the maximum hydrogen purity of 81 mole% is predicted to occur at 950 K in the gasifier and can be enhanced to 99.9 mole% using a scrubber and a pressure swing adsorption unit after the gasifier. The results are compared with selected literatures and show good agreement. 2011-04-25 Conference or Workshop Item PeerReviewed application/pdf http://eprints.utp.edu.my/5520/1/Paper_in_Proceedings.pdf http://www.bitlifesciences.com/wcbe2011/ Ahmad, Murni M and Inayat, Abrar and Yusup, Suzana and Uemura, Yoshimitsu (2011) Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production. In: BIT’s 1st Annual World Congress of Bioenergy (WCBE 2011), 25-30 April 2011, Dalian, China. http://eprints.utp.edu.my/5520/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Ahmad, Murni M
Inayat, Abrar
Yusup, Suzana
Uemura, Yoshimitsu
Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production
description Due to the intensive demand for alternative clean energy from renewable sources, the potential of converting biomass into hydrogen is currently under serious consideration. This potential is even more attractive with the abundant availability of agricultural wastes in Malaysia, a major palm oil producer. This work reports the mathematical modelling of thermodynamic efficiency for hydrogen production from biomass via steam gasification with in-situ carbon dioxide capture using CaO as sorbent. The model that includes the mass and energy balances for a specified flowsheet design incorporates the thermodynamic analysis approach based on the first law to identify potential improvement in the process via increasing its energy efficiency and sustainability. The influence of temperature, steam/biomass and sorbent/biomass ratios are profiled against the thermodynamic efficiency. The results show that the thermodynamic efficiency depends on feed stock quality and vary with the operating conditions. The model predicts an increment in the thermodynamic efficiency from 66.5 to 83.3% within the temperature range of 900 to 1100 K. Increasing either steam/biomass ratio or sorbent/biomass ratio also increases the thermodynamic efficiency. Furthermore, the maximum hydrogen purity of 81 mole% is predicted to occur at 950 K in the gasifier and can be enhanced to 99.9 mole% using a scrubber and a pressure swing adsorption unit after the gasifier. The results are compared with selected literatures and show good agreement.
format Conference or Workshop Item
author Ahmad, Murni M
Inayat, Abrar
Yusup, Suzana
Uemura, Yoshimitsu
author_facet Ahmad, Murni M
Inayat, Abrar
Yusup, Suzana
Uemura, Yoshimitsu
author_sort Ahmad, Murni M
title Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production
title_short Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production
title_full Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production
title_fullStr Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production
title_full_unstemmed Modelling of Thermodynamic Efficiency for Biomass Steam Gasification with In-Situ CO2 capture for Hydrogen Production
title_sort modelling of thermodynamic efficiency for biomass steam gasification with in-situ co2 capture for hydrogen production
publishDate 2011
url http://eprints.utp.edu.my/5520/1/Paper_in_Proceedings.pdf
http://www.bitlifesciences.com/wcbe2011/
http://eprints.utp.edu.my/5520/
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