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Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil

In this study, Nickel oxide-based catalysts (Ni(x)O(x)) were synthesized and used for the in-situ upgrading process of heavy crude oil (viscosity 2157 mPa·s, and API gravity of 14.1° at 25 °C) in aquathermolysis conditions for viscosity reduction and heavy oil recovery. All characterizations of the...

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Autores principales: Alonso, Jiménez Padilla Pedro, Djimasbe, Richard, Zairov, Rustem, Yuan, Chengdong, Al-Muntaser, Ameen A., Stepanov, Alexey, Nizameeva, Guliya, Dovzhenko, Alexey, Suwaid, Muneer A., Varfolomeev, Mikhail A., Zinnatullin, Almaz L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10143493/
https://www.ncbi.nlm.nih.gov/pubmed/37110936
http://dx.doi.org/10.3390/nano13081351
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author Alonso, Jiménez Padilla Pedro
Djimasbe, Richard
Zairov, Rustem
Yuan, Chengdong
Al-Muntaser, Ameen A.
Stepanov, Alexey
Nizameeva, Guliya
Dovzhenko, Alexey
Suwaid, Muneer A.
Varfolomeev, Mikhail A.
Zinnatullin, Almaz L.
author_facet Alonso, Jiménez Padilla Pedro
Djimasbe, Richard
Zairov, Rustem
Yuan, Chengdong
Al-Muntaser, Ameen A.
Stepanov, Alexey
Nizameeva, Guliya
Dovzhenko, Alexey
Suwaid, Muneer A.
Varfolomeev, Mikhail A.
Zinnatullin, Almaz L.
author_sort Alonso, Jiménez Padilla Pedro
collection PubMed
description In this study, Nickel oxide-based catalysts (Ni(x)O(x)) were synthesized and used for the in-situ upgrading process of heavy crude oil (viscosity 2157 mPa·s, and API gravity of 14.1° at 25 °C) in aquathermolysis conditions for viscosity reduction and heavy oil recovery. All characterizations of the obtained nanoparticles catalysts (Ni(x)O(x)) were performed through Scanning Electron Microscopy (SEM), Transmission Electron Microscopy (TEM), Atomic Force Microscopy (AFM), X-Ray and Diffraction (XRD), and ASAP 2400 analyzer from Micromeritics (USA), methods. Experiments of catalytic and non-catalytic upgrading processes were carried out in a discontinuous reactor at a temperature of 300 °C and 72 bars for 24 h and 2% of catalyst ratio to the total weight of heavy crude oil. XRD analysis revealed that the use of nanoparticles of NiO significantly participated in the upgrading processes (by desulfurization) where different activated form catalysts were observed, such as α-NiS, β-NiS, Ni(3)S(4), Ni(9)S(8), and NiO. The results of viscosity analysis, elemental analysis, and (13)C NMR analysis revealed that the viscosity of heavy crude oil decreased from 2157 to 800 mPa·s, heteroatoms removal from heavy oil ranged from S—4.28% to 3.32% and N—0.40% to 0.37%, and total content of fractions (ΣC(8)–C(25)) increased from 59.56% to a maximum of 72.21%, with catalyst-3 thank to isomerization of normal and cyclo-alkanes and dealkylation of lateral chains of aromatics structures, respectively. Moreover, the obtained nanoparticles showed good selectivity, promoting in-situ hydrogenation-dehydrogenation reactions, and hydrogen redistribution over carbons (H/C) is improved, ranging from 1.48 to a maximum of 1.77 in sample catalyst-3. On the other hand, the use of nanoparticle catalysts have also impacted the hydrogen production, where the H(2)/CO provided from the water gas shift reaction has increased. Nickel oxide catalysts have the potential for in-situ hydrothermal upgrading of heavy crude oil because of their great potential to catalyze the aquathermolysis reactions in the presence of steam.
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spelling pubmed-101434932023-04-29 Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil Alonso, Jiménez Padilla Pedro Djimasbe, Richard Zairov, Rustem Yuan, Chengdong Al-Muntaser, Ameen A. Stepanov, Alexey Nizameeva, Guliya Dovzhenko, Alexey Suwaid, Muneer A. Varfolomeev, Mikhail A. Zinnatullin, Almaz L. Nanomaterials (Basel) Article In this study, Nickel oxide-based catalysts (Ni(x)O(x)) were synthesized and used for the in-situ upgrading process of heavy crude oil (viscosity 2157 mPa·s, and API gravity of 14.1° at 25 °C) in aquathermolysis conditions for viscosity reduction and heavy oil recovery. All characterizations of the obtained nanoparticles catalysts (Ni(x)O(x)) were performed through Scanning Electron Microscopy (SEM), Transmission Electron Microscopy (TEM), Atomic Force Microscopy (AFM), X-Ray and Diffraction (XRD), and ASAP 2400 analyzer from Micromeritics (USA), methods. Experiments of catalytic and non-catalytic upgrading processes were carried out in a discontinuous reactor at a temperature of 300 °C and 72 bars for 24 h and 2% of catalyst ratio to the total weight of heavy crude oil. XRD analysis revealed that the use of nanoparticles of NiO significantly participated in the upgrading processes (by desulfurization) where different activated form catalysts were observed, such as α-NiS, β-NiS, Ni(3)S(4), Ni(9)S(8), and NiO. The results of viscosity analysis, elemental analysis, and (13)C NMR analysis revealed that the viscosity of heavy crude oil decreased from 2157 to 800 mPa·s, heteroatoms removal from heavy oil ranged from S—4.28% to 3.32% and N—0.40% to 0.37%, and total content of fractions (ΣC(8)–C(25)) increased from 59.56% to a maximum of 72.21%, with catalyst-3 thank to isomerization of normal and cyclo-alkanes and dealkylation of lateral chains of aromatics structures, respectively. Moreover, the obtained nanoparticles showed good selectivity, promoting in-situ hydrogenation-dehydrogenation reactions, and hydrogen redistribution over carbons (H/C) is improved, ranging from 1.48 to a maximum of 1.77 in sample catalyst-3. On the other hand, the use of nanoparticle catalysts have also impacted the hydrogen production, where the H(2)/CO provided from the water gas shift reaction has increased. Nickel oxide catalysts have the potential for in-situ hydrothermal upgrading of heavy crude oil because of their great potential to catalyze the aquathermolysis reactions in the presence of steam. MDPI 2023-04-12 /pmc/articles/PMC10143493/ /pubmed/37110936 http://dx.doi.org/10.3390/nano13081351 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Alonso, Jiménez Padilla Pedro
Djimasbe, Richard
Zairov, Rustem
Yuan, Chengdong
Al-Muntaser, Ameen A.
Stepanov, Alexey
Nizameeva, Guliya
Dovzhenko, Alexey
Suwaid, Muneer A.
Varfolomeev, Mikhail A.
Zinnatullin, Almaz L.
Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil
title Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil
title_full Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil
title_fullStr Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil
title_full_unstemmed Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil
title_short Use of Nickel Oxide Catalysts (Bunsenites) for In-Situ Hydrothermal Upgrading Process of Heavy Oil
title_sort use of nickel oxide catalysts (bunsenites) for in-situ hydrothermal upgrading process of heavy oil
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10143493/
https://www.ncbi.nlm.nih.gov/pubmed/37110936
http://dx.doi.org/10.3390/nano13081351
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