Comparative Production of Bio-Oil from In Situ Catalytic Upgrading of Fast Pyrolysis of Lignocellulosic Biomass

Author:

Abdulkhani Ali1ORCID,Zadeh Zahra Echresh2,Bawa Solomon Gajere2ORCID,Sun Fubao3,Madadi Meysam3,Zhang Xueming4ORCID,Saha Basudeb5ORCID

Affiliation:

1. Department of Wood and Paper Sciences and Technology, Faculty of Natural Resources, University of Tehran, Karaj 1417466191, Iran

2. Department of Chemical Engineering, University College London, Torrington Place, London WC1E 7JE, UK

3. Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi 214122, China

4. Beijing Key Laboratory of Lignocellulosic Chemistry, College of Materials Science and Technology, Beijing Forestry University, Beijing 100083, China

5. School of Engineering, Lancaster University, Lancaster LA1 4YW, UK

Abstract

Catalytic upgrading of fast pyrolysis bio-oil from two different types of lignocellulosic biomass was conducted using an H-ZSM-5 catalyst at different temperatures. A fixed-bed pyrolysis reactor has been used to perform in situ catalytic pyrolysis experiments at temperatures of 673, 773, and 873 K, where the catalyst (H-ZSM-5) has been mixed with wood chips or lignin, and the pyrolysis and upgrading processes have been performed simultaneously. The fractionation method has been employed to determine the chemical composition of bio-oil samples after catalytic pyrolysis experiments by gas chromatography with mass spectroscopy (GCMS). Other characterization techniques, e.g., water content, viscosity, elemental analysis, pH, and bomb calorimetry have been used, and the obtained results have been compared with the non-catalytic pyrolysis method. The highest bio-oil yield has been reported for bio-oil obtained from softwood at 873 K for both non-catalytic and catalytic bio-oil samples. The results indicate that the main effect of H-ZSM-5 has been observed on the amount of water and oxygen for all bio-oil samples at three different temperatures, where a significant reduction has been achieved compared to non-catalytic bio-oil samples. In addition, a significant viscosity reduction has been reported compared to non-catalytic bio-oil samples, and less viscous bio-oil samples have been produced by catalytic pyrolysis. Furthermore, the obtained results show that the heating values have been increased for upgraded bio-oil samples compared to non-catalytic bio-oil samples. The GCMS analysis of the catalytic bio-oil samples (H-ZSM-5) indicates that toluene and methanol have shown very similar behavior in extracting bio-oil samples in contrast to non-catalytic experiments. However, methanol performed better for extracting chemicals at a higher temperature.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference54 articles.

1. Echresh, Z., Abdulkhani, A., and Saha, B. (2019, January 23–28). A comparative structural characterisation of different lignin biomass. Proceedings of the ECOS 2019—32nd International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems, Wrocław, Poland.

2. Production of biocrude-oil from swine manure by fast pyrolysis and analysis of its characteristics;Jeong;Renew. Energy,2015

3. Zadeh, Z.E., Abdulkhani, A., and Saha, B. (2020). Characterization of fast pyrolysis bio-oil from hardwood and softwood lignin. Energies, 13.

4. Biochar properties and eco-friendly applications for climate change mitigation, waste management, and wastewater treatment: A review;Qambrani;Renew. Sustain. Energy Rev.,2017

5. Influence of phenols and furans released during thermal pretreatment of olive mill solid waste on its anaerobic digestion;Caroca;Waste Manag.,2021

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