Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery

Nanoenhanced oil recovery has emerged as a promising method for improving and enhancing oil recovery. However, nanoparticles face the challenge of clumping together under reservoir conditions, hindering their movement through the porous medium and interaction with the oil/water interface. To fully u...

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Published in:JOURNAL OF MATERIALS SCIENCE
Main Authors: Sikiru, Surajudeen; Soleimani, Hassan; Rahmanian, Nejat; Rostami, Amir; Khodapanah, Leila; Ghotbi, Mohammad Yeganeh; Hamza, Mohammed Falalu; Soleimani, Hojjatollah; Khodapanah, Nasrin; Sabet, Maziyar; Demiral, Birol M. R.; Bonnia, N. N.; Ibrahim, Norazila; Muhammad, Nurmalessa
Format: Article
Language:English
Published: SPRINGER 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001263322000001
author Sikiru
Surajudeen; Soleimani
Hassan; Rahmanian
Nejat; Rostami
Amir; Khodapanah
Leila; Ghotbi
Mohammad Yeganeh; Hamza
Mohammed Falalu; Soleimani
Hojjatollah; Khodapanah
Nasrin; Sabet
Maziyar; Demiral
Birol M. R.; Bonnia
N. N.; Ibrahim
Norazila; Muhammad
Nurmalessa
spellingShingle Sikiru
Surajudeen; Soleimani
Hassan; Rahmanian
Nejat; Rostami
Amir; Khodapanah
Leila; Ghotbi
Mohammad Yeganeh; Hamza
Mohammed Falalu; Soleimani
Hojjatollah; Khodapanah
Nasrin; Sabet
Maziyar; Demiral
Birol M. R.; Bonnia
N. N.; Ibrahim
Norazila; Muhammad
Nurmalessa
Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
Materials Science
author_facet Sikiru
Surajudeen; Soleimani
Hassan; Rahmanian
Nejat; Rostami
Amir; Khodapanah
Leila; Ghotbi
Mohammad Yeganeh; Hamza
Mohammed Falalu; Soleimani
Hojjatollah; Khodapanah
Nasrin; Sabet
Maziyar; Demiral
Birol M. R.; Bonnia
N. N.; Ibrahim
Norazila; Muhammad
Nurmalessa
author_sort Sikiru
spelling Sikiru, Surajudeen; Soleimani, Hassan; Rahmanian, Nejat; Rostami, Amir; Khodapanah, Leila; Ghotbi, Mohammad Yeganeh; Hamza, Mohammed Falalu; Soleimani, Hojjatollah; Khodapanah, Nasrin; Sabet, Maziyar; Demiral, Birol M. R.; Bonnia, N. N.; Ibrahim, Norazila; Muhammad, Nurmalessa
Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
JOURNAL OF MATERIALS SCIENCE
English
Article
Nanoenhanced oil recovery has emerged as a promising method for improving and enhancing oil recovery. However, nanoparticles face the challenge of clumping together under reservoir conditions, hindering their movement through the porous medium and interaction with the oil/water interface. To fully understand the impact of different nanoparticles and electromagnetic fields on phase transitions and oil recovery, it is crucial to consider the complex interactions involved. These interactions can be influenced by factors such as nanoparticle concentration, size distribution, surface chemistry, and base fluid properties. In this study, a core-flooding experiment was conducted to evaluate the effectiveness of synthesized nanoparticles (BaTiO3, MnO2, CoO, BaTiO3/MnO2, and BaTiO3/CoO) for enhanced oil recovery using electromagnetic-assisted nanofluids. The synthesized nanoparticles were analyzed for morphology and elemental composition using FE-SEM with EDX. FTIR analysis confirmed the presence of functional groups and mineral composition. XRD analysis examined the crystal structure of the materials, while XPS, capacitance, and resistance measurements determined the elemental composition, chemical state, and electronic state of the materials. These analyses aimed to investigate the influence of an electromagnet on fluid mobility. Electromagnetic fields improve the dispersion and stability of nanoparticles in the reservoir, preventing aggregation and maintaining the effectiveness of nanofluids. Enhance the viscosity and mobility of the injected fluids, leading to better sweep efficiency and displacement of oil. The core-flooding experiment allowed us to determine the recovery factor. The results demonstrated that BaTiO3/MnO2 nanofluids exhibited the highest recovery factor, reaching approximately 58%, compared to BaTiO3/CoO nanofluids, which achieved a recovery factor of 48%. It is important to note that all single nanofluids also had a positive effect on the recovery factor. [GRAPHICS] .
SPRINGER
0022-2461
1573-4803
2024
59
27
10.1007/s10853-024-09964-z
Materials Science

WOS:001263322000001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001263322000001
title Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
title_short Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
title_full Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
title_fullStr Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
title_full_unstemmed Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
title_sort Phase transitions of the synergistic effects of Ba2+O2TiO2/Mn4+O6 nanofluid with integration of electromagnetic field for improved oil recovery
container_title JOURNAL OF MATERIALS SCIENCE
language English
format Article
description Nanoenhanced oil recovery has emerged as a promising method for improving and enhancing oil recovery. However, nanoparticles face the challenge of clumping together under reservoir conditions, hindering their movement through the porous medium and interaction with the oil/water interface. To fully understand the impact of different nanoparticles and electromagnetic fields on phase transitions and oil recovery, it is crucial to consider the complex interactions involved. These interactions can be influenced by factors such as nanoparticle concentration, size distribution, surface chemistry, and base fluid properties. In this study, a core-flooding experiment was conducted to evaluate the effectiveness of synthesized nanoparticles (BaTiO3, MnO2, CoO, BaTiO3/MnO2, and BaTiO3/CoO) for enhanced oil recovery using electromagnetic-assisted nanofluids. The synthesized nanoparticles were analyzed for morphology and elemental composition using FE-SEM with EDX. FTIR analysis confirmed the presence of functional groups and mineral composition. XRD analysis examined the crystal structure of the materials, while XPS, capacitance, and resistance measurements determined the elemental composition, chemical state, and electronic state of the materials. These analyses aimed to investigate the influence of an electromagnet on fluid mobility. Electromagnetic fields improve the dispersion and stability of nanoparticles in the reservoir, preventing aggregation and maintaining the effectiveness of nanofluids. Enhance the viscosity and mobility of the injected fluids, leading to better sweep efficiency and displacement of oil. The core-flooding experiment allowed us to determine the recovery factor. The results demonstrated that BaTiO3/MnO2 nanofluids exhibited the highest recovery factor, reaching approximately 58%, compared to BaTiO3/CoO nanofluids, which achieved a recovery factor of 48%. It is important to note that all single nanofluids also had a positive effect on the recovery factor. [GRAPHICS] .
publisher SPRINGER
issn 0022-2461
1573-4803
publishDate 2024
container_volume 59
container_issue 27
doi_str_mv 10.1007/s10853-024-09964-z
topic Materials Science
topic_facet Materials Science
accesstype
id WOS:001263322000001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001263322000001
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