DocumentCode
3163527
Title
The modified model for predicting the products distribution in pyrolysis of biomass
Author
Shuguang Zhu ; Jianfeng Shen ; Xinzhi Liu ; Houlei Zhang ; Bin Li
Author_Institution
Sch. of Energy & Power Eng., Nanjing Univ. of Sci. & Technol., Nanjing, China
Volume
1
fYear
2014
fDate
19-21 Aug. 2014
Firstpage
331
Lastpage
334
Abstract
Pyrolysis is known as one of the promising thermochemical conversion routes in producing solid (charcoal), liquid (tar) and gaseous products. In the present study, deposition coefficient, defined as the fraction of volatile and gases deposited on the char due to the secondary reaction, is introduced to modify the kinetics model in literatures. The effects of heating rates, heating temperatures and deposition coefficients on pyrolysis products distribution under non-isothermal and isothermal conditions are discussed. The investigation based on the modified model shows that the deposition coefficient affects the secondary reaction products distribution significantly. When the deposition coefficient increases, the generation rate and the concentration of char increase and the volatile and gases in secondary reaction decrease. The results indicate that primary reaction plays a dominant role in volatile and gases generation and secondary reaction plays a dominant role in char generation. The work in this paper provides useful information for optimal design of biomass gasifiers and reactors.
Keywords
bioreactors; charcoal; design engineering; fuel gasification; heating; pyrolysis; biomass gasifiers; biomass pyrolysis; biomass reactors; char concentration; deposition coefficient; deposition coefficients; gas generation; gaseous products; generation rate; heating rates; heating temperatures; isothermal conditions; liquid tar; modified product distribution prediction model; nonisothermal conditions; optimal design; primary reaction; pyrolysis product distribution; secondary reaction; secondary reaction product distribution; solid charcoal; thermochemical conversion routes; volatile generation; Biological system modeling; Biomass; Gases; Heating; Isothermal processes; Kinetic theory; Mathematical model; biomass; deposition coefficient; kinetics model; products distribution;
fLanguage
English
Publisher
ieee
Conference_Titel
Materials for Renewable Energy and Environment (ICMREE), 2013 International Conference on
Conference_Location
Chengdu
Print_ISBN
978-1-4799-3335-8
Type
conf
DOI
10.1109/ICMREE.2013.6893677
Filename
6893677
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