Chemical characterisation of sugarcane bagasse bio-oils from hydrothermal liquefaction: Effect of reaction conditions on products distribution and composition

Author(s):  
Vanessa O. Nunes ◽  
Adriano C. Fraga ◽  
Raquel V.S. Silva ◽  
Nathália S. Pontes ◽  
Andrea R. Pinho ◽  
...  
2020 ◽  
Vol 317 ◽  
pp. 124033
Author(s):  
Guanyi Chen ◽  
Yingying Yu ◽  
Wanqing Li ◽  
Beibei Yan ◽  
Kaige Zhao ◽  
...  

Fuel ◽  
2022 ◽  
Vol 312 ◽  
pp. 122793
Author(s):  
Javier A. Jimenez Forero ◽  
Tuyen H.T. Tran ◽  
Tana Tana ◽  
Adrian Baker ◽  
Jorge Beltramini ◽  
...  

2011 ◽  
Vol 347-353 ◽  
pp. 2419-2422 ◽  
Author(s):  
Hui Wang ◽  
Xiao Juan Liu ◽  
Yan Xing Liu ◽  
Peng Chen ◽  
Jian Sun

The liquefaction of wheat straws in sub-critical water to obtain bio-oil was investigated in this paper. We observed that the reaction temperature (300-374 °C) and reaction time (1-15 min) played important roles in the yield of bio-oil and found the optimal reaction conditions (340 °C, 5 min). The bio-oil was analyzed by elemental analysis, the Fourier transform infrared spectroscopy (FTIR) and gas chromatography-mass spectrometry (GC-MS). Results indicated that the heating value of bio-oil product was 32-38 MJ/kg, higher than that of the bio-oil obtained from microalgae, and the product was composed of ketones, phenol and its derivatives, aromatics and small amount of aldehydes and ethers.


2019 ◽  
Vol 15 (1) ◽  
pp. 186-198
Author(s):  
Gopalakrishnan Govindasamy ◽  
Rohit Sharma ◽  
Sunu Subramanian

Development of catalyst with high deoxygenation activity and optimum process parameters are the key for getting the highest biooil yield with the least oxygen content by hydrothermal liquefaction. With this view, iron-cobalt oxides of Co/Fe ratio 0.33, 1.09, 2.35, and 3.52 were prepared by co-precipitation method, and characterized by XRD, BET surface area, chemical composition by EDX method, and evaluated for hydrothermal liquefaction of sugarcane bagasse in a high-pressure batch reactor under subcritical conditions using CO as process gas to find the optimum Co/Fe ratio and process parameters. Optimum Co/Fe ratio was found to be 1.09 as it gave the highest bio-oil yield of 57.6% with the least oxygen content of 10.8%, attributed to the cobalt ferrite, the major phase present in it. The optimum temperature, initial CO pressure, water/biomass ratio, catalyst/biomass ratio and reaction time for the highest oil yield with the least oxygen content were found to be 250 °C, 45 bar, 28, 0.4, and 120 min,  respectively. From the effect of reaction time, it was found that much of the hydrolysis of lignocellulose to water soluble oxygenates, its deoxygenation to bio-oil and its deoxygenation to low oxygen containing bio-oil took place in initial 15 min, 15 to 60 min, and from 30 to 120 min, respectively. Total oil yield (%) was lower by 21% and % oxygen in total oil was higher by 9.9% for spent catalyst compared to fresh catalyst indicating the erosion in the deoxygenation activity of catalyst and thus need for improving its hydrothermal stability. Copyright © 2020 BCREC Group. All rights reserved


2004 ◽  
Vol 92 (1) ◽  
pp. 53-61 ◽  
Author(s):  
Xaio-Feng Sun ◽  
Run-Cang Sun ◽  
Li Zhao ◽  
Jing-Xia Sun

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