scholarly journals Effect of Operating Parameters on Hydrothermal Liquefaction of Sugarcane Bagasse

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

2019 ◽  
Vol 27 (6) ◽  
pp. 6362-6374 ◽  
Author(s):  
Shiqiu Zhang ◽  
Shengnan Zhou ◽  
Xue Yang ◽  
Wen Xi ◽  
Kui Zheng ◽  
...  

2015 ◽  
Vol 191 ◽  
pp. 426-432 ◽  
Author(s):  
Keerati Prapaiwatcharapan ◽  
Sasithorn Sunphorka ◽  
Prapan Kuchonthara ◽  
Kunn Kangvansaichol ◽  
Napida Hinchiranan

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


2019 ◽  
Vol 122 ◽  
pp. 433-445 ◽  
Author(s):  
Ingrid Lopes Motta ◽  
Nahieh Toscano Miranda ◽  
Rubens Maciel Filho ◽  
Maria Regina Wolf Maciel

2021 ◽  
Author(s):  
Botian Hao ◽  
Donghai Xu ◽  
Guanyu Jiang ◽  
Tanveer Ahmed Sabri ◽  
Zefeng Jing ◽  
...  

This article systematically describes chemical reactions in biomass HTL and the catalytic hydrogenation upgrading of the obtained biocrude and analyze the effects of operating parameters on these two processes, such as reaction temperature, residence time and catalyst type.


2021 ◽  
Vol 27 (1) ◽  
pp. 200555-0
Author(s):  
Chitra Devi Venkatachalam ◽  
Sathish Raam Ravichandran ◽  
Mothil Sengottian

Thermochemical conversion is an effective process in production of biocrude. It mainly includes techniques such as torrefaction, liquefaction, gasification and pyrolysis in which Hydrothermal Liquefaction (HTL) has the potential to produce significant energy resource. Algae, one of the third-generation feedstocks is placed in the top order for production of bio-oil compared to the first and second-generation feedstock, as the algae can get multiplied in shorter time with the uptake of greenhouse gases. In HTL, the subcritical water helps the biomass to undergo thermal depolymerisation and produce various chemicals such as nitrogenates, alkanes, phenolics, esters, etc. The produced “biocrude” or “bio-oil” may be further upgraded into value-added chemicals and fuels. In addition, the bio-gas and bio-char are also synthesized as by-products. This review provides an overview of different routes available for thermochemical conversion of biomass. It also provides an insight on the operating parameters such as temperature, pressure, dosage of catalyst and solvent for lignocellulosic and algal biomass under HTL environment. In extent, the article covers the conversion mechanism for these two feedstocks and also the effects of the operating parameters on the yield of biocrude are studied in detail.


RSC Advances ◽  
2019 ◽  
Vol 9 (5) ◽  
pp. 2539-2550 ◽  
Author(s):  
Guiqin Cai ◽  
Lalehvash Moghaddam ◽  
Ian M. O'Hara ◽  
Zhanying Zhang

A microbial oil production process consisting of acidified glycerol pretreatment of sugarcane bagasse, enzymatic hydrolysis, microbial oil production by M. isabellina NRRL 1757 and oil recovery by hydrothermal liquefaction of fungal biomass in fermentation broth was assessed.


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