Catalytic Applications in the Production of Hydrotreated Vegetable Oil (HVO) as a Renewable Fuel: A Review

Author:

Mussa Nur-Sultan1ORCID,Toshtay Kainaubek2ORCID,Capron Mickael3ORCID

Affiliation:

1. Faculty of Chemical Engineering and Technology, Cracow University of Technology, ul. Warszawska 24, 31-866 Krakow, Poland

2. Faculty of Chemistry and Chemical Technology, Al-Farabi Kazakh National University, Al-Farabi Avenue 71, Almaty 050040, Kazakhstan

3. Université de Lille, CNRS, Centrale Lille, ENSCL, Université Artois, UMR 8181–UCCS–Unité de Catalyse et Chimie du Solide, F-59000 Lille, France

Abstract

The significance and challenges of hydrotreatment processes for vegetable oils have recently become apparent, encompassing various reactions like decarbonylation, decarboxylation, and hydrogenation. Heterogeneous noble or transition metal catalysts play a crucial role in these reactions, offering high selectivity in removing oxygen and yielding desired hydrocarbons. Notably, both sulphided and non-sulphided catalysts exhibit effectiveness, with the latter gaining attention due to health and toxicity concerns associated with sulphiding agents. Nickel-based catalysts, such as NiP and NiC, demonstrate specific properties and tendencies in deoxygenation reactions, while palladium supported on activated carbon catalysts shows superior activity in hydrodeoxygenation. Comparisons between the performances of different catalysts in various hydrotreatment processes underscore the need for tailored approaches. Transition metal phosphides (TMP) emerge as promising catalysts due to their cost-effectiveness and environmental friendliness. Ultimately, there is an ongoing pursuit of efficient catalysts and the importance of further advancements in catalysis for the future of vegetable oil hydrotreatment.

Funder

Erasmus Mundus program Research and Innovation in Higher Education

Publisher

MDPI AG

Reference134 articles.

1. United States Environmental Protection Agency (US EPA, OAR) (2015). Learn about Impacts Diesel Exhaust Diesel Emissions Reduction Act (DERA), United States Environmental Protection Agency.

2. Sonnichsen, N. (2021). Global Biofuel Production 2020, Statista.

3. Current Biodiesel Production Technologies: A Comparative Review;Abbaszaadeh;Energy Convers. Manag.,2012

4. Renewable Diesel Fuel from Processing of Vegetable Oil in Hydrotreatment Units: Theoretical Compliance with European Directive 2009/28/EC and Ongoing Projects in Spain;Herrera;Smart Grid Renew. Energy,2010

5. Biodiesel and Renewable Diesel: A Comparison;Knothe;Prog. Energy Combust. Sci.,2010

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