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Journal ArticleDOI

Reaction pathways for the deoxygenation of vegetable oils and related model compounds.

TLDR
It is shown that the type of catalyst has a significant effect on the deoxygenation pathway, that is, group 10 metal catalysts are active in decarbonylation/decarboxylation whereas metal sulfide catalyststs are more selective to hydrode oxygengenation.
Abstract
Vegetable oil-based feeds are regarded as an alternative source for the production of fuels and chemicals. Paraffins and olefins can be produced from these feeds through catalytic deoxygenation. The fundamentals of this process are mostly studied by using model compounds such as fatty acids, fatty acid esters, and specific triglycerides because of their structural similarity to vegetable oils. In this Review we discuss the impact of feedstock, reaction conditions, and nature of the catalyst on the reaction pathways of the deoxygenation of vegetable oils and its derivatives. As such, we conclude on the suitability of model compounds for this reaction. It is shown that the type of catalyst has a significant effect on the deoxygenation pathway, that is, group 10 metal catalysts are active in decarbonylation/decarboxylation whereas metal sulfide catalysts are more selective to hydrodeoxygenation. Deoxygenation studies performed under H2 showed similar pathways for fatty acids, fatty acid esters, triglycerides, and vegetable oils, as mostly deoxygenation occurs indirectly via the formation of fatty acids. Deoxygenation in the absence of H2 results in significant differences in reaction pathways and selectivities depending on the feedstock. Additionally, using unsaturated feedstocks under inert gas results in a high selectivity to undesired reactions such as cracking and the formation of heavies. Therefore, addition of H2 is proposed to be essential for the catalytic deoxygenation of vegetable oil feeds.

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Citations
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Journal ArticleDOI

Catalytic hydroprocessing of camelina oil/AGO mixtures over NiMoP/γ-Al2O3 catalysts

TL;DR: In this paper , the presence of CC double bonds in the CSO molecule affected the progress of the side reactions and caused rapid deactivation and coking of the catalyst, especially at low hydrogen partial pressure.
Journal ArticleDOI

Understanding the different deoxygenation reaction pathways of lauric acid over alumina-supported Ni and Co catalysts

TL;DR: In this article , different reaction pathways are preferred determining thus deoxygenation efficiency and efficiency and, depending on the catalyst, different reaction pathway is preferred determining the deoxygination efficiency.
Journal ArticleDOI

Synthesis and Characterization of Supported Mixed MoW Carbide Catalysts

TL;DR: In this paper , a series of carbon nanofiber-supported mixed Mo/W-carbide catalysts with varying Mo and W compositions using either temperature-programmed reduction (TPR) or carbothermal reduction (CR).
Journal ArticleDOI

Solid acid catalyst WO3-ZrO2 for the catalytic deoxygenation of jatropha oil for the preparation of aviation paraffin

TL;DR: In this paper , WO3-ZrO2 solid acid catalysts were used for catalytic deoxygenation of Jatropha curcas oil, and the optimal conditions for the generated oil were obtained by response surface methodology based on Box-Behnken four-factor experiments.
Journal ArticleDOI

Understanding the fate of nitrogen during catalytic hydrothermal liquefaction of sewage sludge

TL;DR: In this paper , the fate of nitrogen during catalytic hydrothermal liquefaction (HTL) of sewage sludge was investigated using three different catalysts (CuNi/SiO2, HCOOH, CuSO4) with 5 wt% loading.
References
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Journal ArticleDOI

Jatropha bio-diesel production and use

TL;DR: In this paper, the authors present an overview of the currently available information on the different process steps of the production process of bio-diesel from JCL, being cultivation and production of seeds, extraction of the oil, conversion to and the use of the biodiesel and the by-products.
Journal ArticleDOI

Biodiesel fuels from vegetable oils via catalytic and non-catalytic supercritical alcohol transesterifications and other methods: a survey

TL;DR: The main factors affecting transesterification are the molar ratio of glycerides to alcohol, catalyst, reaction temperature and pressure, reaction time and the contents of free fatty acids and water in oils as mentioned in this paper.
Journal ArticleDOI

Importance of algae oil as a source of biodiesel

TL;DR: Most current research on oil extraction is focused on microalgae to produce biodiesel from algal oil, where algal-oil processes into biodiesel as easily as oil derived from land-based crops.
Journal ArticleDOI

Biodiesel and renewable diesel: A comparison

TL;DR: In this paper, the authors discuss in a general and comparative fashion aspects such as fuel production and energy balance, fuel properties, environmental effects including exhaust emissions and co-products, and what the effect of production scale may be.
Journal ArticleDOI

Heterogeneous Catalytic Deoxygenation of Stearic Acid for Production of Biodiesel

TL;DR: In this article, a novel method for production of diesel-like hydrocarbons via catalytic deoxygenation of fatty acid is discussed, where the model compound stearic acid is deoxgenated to heptadecane.
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