Temperature influence on the fast pyrolysis of manure samples

Char, bio-oil and gases production

Conference Paper (2017)
Author(s)

M. Fernandez-Lopez (Universidad de Castilla-La Mancha)

Kostas Anastasakis (TU Delft - Energy Technology)

W. Jong (TU Delft - Large Scale Energy Storage)

Jose Luis Valverde (Universidad de Castilla-La Mancha)

Luz Sanchez-Silva (Universidad de Castilla-La Mancha)

Research Group
Large Scale Energy Storage
Copyright
© 2017 M. Fernandez Lopez, K. Anastasakis, W. de Jong, Jose Luis Valverde, Luz Sanchez-Silva
DOI related publication
https://doi.org/10.1051/e3sconf/20172200043
More Info
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Publication Year
2017
Language
English
Copyright
© 2017 M. Fernandez Lopez, K. Anastasakis, W. de Jong, Jose Luis Valverde, Luz Sanchez-Silva
Research Group
Large Scale Energy Storage
Volume number
22
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Abstract

Fast pyrolysis characterization of three dry manure samples was studied using a pyrolyzer. A heating rate of 600°C/s and a holding time of 10 s were selected to reproduce industrial conditions. The effect of the peak pyrolysis temperature (600, 800 and 1000°C) on the pyrolysis product yield and composition was evaluated. Char and bio-oil were gravimetrically quantified. Scanning electron microscopy (SEM) was used to analyse the char structure. H2, CH4, CO and CO2 were measured by means of gas chromatography (GC). A decrease in the char yield and an increase of the gas yield were observed when temperature increased. From 800°C on, it was observed that the char yield of samples Dig R and SW were constant, which indicated that the primary devolatilization reactions stopped. This fact was also corroborated by GC analysis. The bio-oil yield slightly increased with temperature, showing a maximum of 20.7 and 27.8 wt.% for samples Pre and SW, respectively, whereas sample Dig R showed a maximum yield of 16.5 wt.% at 800°C. CO2 and CO were the main released gases whereas H2 and CH4 production increased with temperature. Finally, an increase of char porosity was observed with temperature.