Upgrading of Pyrolysis Bio-Oil by Catalytic Hydrodeoxygenation, a Review Focused on Catalysts, Model Molecules, Deactivation, and Reaction Routes

Author:

Carrasco Díaz Alejandra1,Abdelouahed Lokmane1ORCID,Brodu Nicolas1ORCID,Montes-Jiménez Vicente2ORCID,Taouk Bechara1ORCID

Affiliation:

1. LSPC—Laboratoire de Securité des Procédes Chimiques, INSA Rouen Normandie, UNIROUEN, Normandie Univiversity, 76000 Rouen, France

2. Department of Organic and Inorganic Chemistry, University of Extremadura, 06006 Badajoz, Spain

Abstract

Biomass can be converted into energy/fuel by different techniques, such as pyrolysis, gasification, and others. In the case of pyrolysis, biomass can be converted into a crude bio-oil around 50–75% yield. However, the direct use of this crude bio-oil is impractical due to its high content of oxygenated compounds, which provide inferior properties compared to those of fossil-derived bio-oil, such as petroleum. Consequently, bio-oil needs to be upgraded by physical processes (filtration, emulsification, among others) and/or chemical processes (esterification, cracking, hydrodeoxygenation, among others). In contrast, hydrodeoxygenation (HDO) can effectively increase the calorific value and improve the acidity and viscosity of bio-oils through reaction pathways such as cracking, decarbonylation, decarboxylation, hydrocracking, hydrodeoxygenation, and hydrogenation, where catalysts play a crucial role. This article first focuses on the general aspects of biomass, subsequent bio-oil production, its properties, and the various methods of upgrading pyrolytic bio-oil to improve its calorific value, pH, viscosity, degree of deoxygenation (DOD), and other attributes. Secondly, particular emphasis is placed on the process of converting model molecules and bio-oil via HDO using catalysts based on nickel and nickel combined with other active elements. Through these phases, readers can gain a deeper understanding of the HDO process and the reaction mechanisms involved. Finally, the different equipment used to obtain an improved HDO product from bio-oil is discussed, providing valuable insights for the practical application of this reaction in pyrolysis bio-oil production.

Publisher

MDPI AG

Reference162 articles.

1. Tshikovhi, A., and Motaung, T.E. (2023). Technologies and Innovations for Biomass Energy Production. Sustainability, 15.

2. (2024, April 19). World Energy Transitions Outlook 2023. Available online: https://www.irena.org/Digital-Report/World-Energy-Transitions-Outlook-2023.

3. (2022, February 17). The Times ‘Future of Energy’: We Can Humanise Energy, and We Must Do So Urgently. Available online: https://www.worldenergy.org/news-views/entry/the-times-future-of-energy-we-can-humanise-energy-and-we-must-do-so-urgently.

4. (2024, April 19). The Oil and Gas Industry in Energy Transitions—Analysis. Available online: https://www.iea.org/reports/the-oil-and-gas-industry-in-energy-transitions.

5. Dale, S. (2021). BP Statistical Review of World Energy 2021, BP Plc.

同舟云学术

1.学者识别学者识别

2.学术分析学术分析

3.人才评估人才评估

"同舟云学术"是以全球学者为主线,采集、加工和组织学术论文而形成的新型学术文献查询和分析系统,可以对全球学者进行文献检索和人才价值评估。用户可以通过关注某些学科领域的顶尖人物而持续追踪该领域的学科进展和研究前沿。经过近期的数据扩容,当前同舟云学术共收录了国内外主流学术期刊6万余种,收集的期刊论文及会议论文总量共计约1.5亿篇,并以每天添加12000余篇中外论文的速度递增。我们也可以为用户提供个性化、定制化的学者数据。欢迎来电咨询!咨询电话:010-8811{复制后删除}0370

www.globalauthorid.com

TOP

Copyright © 2019-2024 北京同舟云网络信息技术有限公司
京公网安备11010802033243号  京ICP备18003416号-3