Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings

Abstract Inner coatings have emerged as a novel technique to prevent the deposition of paraffin, wax, scale, and corrosion of pipelines during oil production and transport. Few studies addressed this technique for preventing asphaltene deposition. In this study, two superhydrophobic inner coatings,...

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Main Authors: Mohammad Haji-Savameri, Saeid Norouzi-Apourvari, Ahmad Irannejad, Abdolhossein Hemmati-Sarapardeh, Mahin Schaffie, Amir Mosavi
Format: Article
Language:English
Published: Nature Publishing Group 2021-08-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-95657-5
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spelling doaj-0f969c61662948f98a10e9539a64f6e42021-08-22T11:23:23ZengNature Publishing GroupScientific Reports2045-23222021-08-0111112210.1038/s41598-021-95657-5Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatingsMohammad Haji-Savameri0Saeid Norouzi-Apourvari1Ahmad Irannejad2Abdolhossein Hemmati-Sarapardeh3Mahin Schaffie4Amir Mosavi5Department of Petroleum Engineering, Shahid Bahonar University of KermanDepartment of Petroleum Engineering, Shahid Bahonar University of KermanDepartment of Materials Engineering and Metallurgy, Shahid Bahonar University of KermanDepartment of Petroleum Engineering, Shahid Bahonar University of KermanDepartment of Petroleum Engineering, Shahid Bahonar University of KermanJohn Von Neumann Faculty of Informatics, Obuda UniversityAbstract Inner coatings have emerged as a novel technique to prevent the deposition of paraffin, wax, scale, and corrosion of pipelines during oil production and transport. Few studies addressed this technique for preventing asphaltene deposition. In this study, two superhydrophobic inner coatings, including polytetrafluoroethylene (PTFE) coating and nanosilica coating, were fabricated on metal surfaces and the asphaltene deposition on these coated surfaces was examined. A model oil solution was prepared using asphaltene and heptol and the effect of static and dynamic flow states on the amount of asphaltene deposition on uncoated electrodes, PTFE coated electrodes, and nanosilica coated electrodes were investigated. The results showed that the PTFE coating is more effective in reducing asphaltene deposition than nanosilica coating. The PTFE coating could reduce 56% of the deposition in a static state and more than 70% in a dynamic state at an asphaltene concentration of 2000 ppm. For PTFE coating in a dynamic state, the deposition rate is negligible in long times. In addition, it was found that the type of flow state affects the asphaltene deposition kinetics. The results demonstrate that, in the static state, the nth-order kinetics model, and in the dynamic state, the double exponential models are in best agreement with the experimental data.https://doi.org/10.1038/s41598-021-95657-5
collection DOAJ
language English
format Article
sources DOAJ
author Mohammad Haji-Savameri
Saeid Norouzi-Apourvari
Ahmad Irannejad
Abdolhossein Hemmati-Sarapardeh
Mahin Schaffie
Amir Mosavi
spellingShingle Mohammad Haji-Savameri
Saeid Norouzi-Apourvari
Ahmad Irannejad
Abdolhossein Hemmati-Sarapardeh
Mahin Schaffie
Amir Mosavi
Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
Scientific Reports
author_facet Mohammad Haji-Savameri
Saeid Norouzi-Apourvari
Ahmad Irannejad
Abdolhossein Hemmati-Sarapardeh
Mahin Schaffie
Amir Mosavi
author_sort Mohammad Haji-Savameri
title Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
title_short Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
title_full Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
title_fullStr Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
title_full_unstemmed Experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
title_sort experimental study and modelling of asphaltene deposition on metal surfaces with superhydrophobic and low sliding angle inner coatings
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-08-01
description Abstract Inner coatings have emerged as a novel technique to prevent the deposition of paraffin, wax, scale, and corrosion of pipelines during oil production and transport. Few studies addressed this technique for preventing asphaltene deposition. In this study, two superhydrophobic inner coatings, including polytetrafluoroethylene (PTFE) coating and nanosilica coating, were fabricated on metal surfaces and the asphaltene deposition on these coated surfaces was examined. A model oil solution was prepared using asphaltene and heptol and the effect of static and dynamic flow states on the amount of asphaltene deposition on uncoated electrodes, PTFE coated electrodes, and nanosilica coated electrodes were investigated. The results showed that the PTFE coating is more effective in reducing asphaltene deposition than nanosilica coating. The PTFE coating could reduce 56% of the deposition in a static state and more than 70% in a dynamic state at an asphaltene concentration of 2000 ppm. For PTFE coating in a dynamic state, the deposition rate is negligible in long times. In addition, it was found that the type of flow state affects the asphaltene deposition kinetics. The results demonstrate that, in the static state, the nth-order kinetics model, and in the dynamic state, the double exponential models are in best agreement with the experimental data.
url https://doi.org/10.1038/s41598-021-95657-5
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