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Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations

[Image: see text] Scale mineral deposition is a critical problem that hinders the daily production of oil and gas fields. Chemical removal of these scales, based on the scale type, is common. In this paper, borax and diethylene tremaine penta acetic (DTPA) acid-based formulations are used for the re...

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Autores principales: Ahmed, Musa, Hussein, Ibnelwaleed A., Onawole, Abdulmujeeb T., Saad, Mohammed A., Mahmoud, Mohamed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7689925/
https://www.ncbi.nlm.nih.gov/pubmed/33251432
http://dx.doi.org/10.1021/acsomega.0c04357
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author Ahmed, Musa
Hussein, Ibnelwaleed A.
Onawole, Abdulmujeeb T.
Saad, Mohammed A.
Mahmoud, Mohamed
author_facet Ahmed, Musa
Hussein, Ibnelwaleed A.
Onawole, Abdulmujeeb T.
Saad, Mohammed A.
Mahmoud, Mohamed
author_sort Ahmed, Musa
collection PubMed
description [Image: see text] Scale mineral deposition is a critical problem that hinders the daily production of oil and gas fields. Chemical removal of these scales, based on the scale type, is common. In this paper, borax and diethylene tremaine penta acetic (DTPA) acid-based formulations are used for the removal of sulfides, carbonates, and sulfate scales. In particular, the dissolution rates of sulfide (pyrite, pyrrhotite, and galena), sulfate (celestite and barite), and carbonate (calcite) scales were investigated in a rotating disc apparatus at typical well conditions. Scanning electron microscopy–energy-dispersive X-ray and X-ray diffraction analyses were performed for characterizing scale composition and type. The effect of temperature, scale type, and formulation on the dissolution rate is studied. Even though borax formulation has been developed for the sulfide scale removal, it showed a high dissolution rate for the carbonate scale (7.23 × 10(–7) mol·L(–1)·s(–1)·cm(–2)). For the sulfide scale, the highest dissolution in borax formulation was obtained with galena (lead sulfide, PbS), followed by pyrrhotite, and the lowest dissolution was reported for pyrite (1.55 × 10(–8) mol·L(–1)·s(–1)·cm(–2)). Borax formulation was found to be inefficient in the removal of sulfate scales with a dissolution rate lower than carbonate and sulfide scales by 3 and 2 orders of magnitude, respectively. Similarly, DTPA-based formulation has yielded the highest dissolution for the carbonate scale (7.98 × 10(–6) mol·L(–1)·s(–1)·cm(–2)). However, for sulfate, DTPA-based formulation showed better performance than borax. The increase in temperature leads to an increase in the dissolution rate for almost all types of scales; however, DTPA-based formulation showed improved performance with temperature. Both formulations are efficient in removing sulfate- and sulfide-rich scales. The experimental results of DTPA have been validated by density functional theory calculations of binding energies between DTPA and metal ions present in the mixed scale.
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spelling pubmed-76899252020-11-27 Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations Ahmed, Musa Hussein, Ibnelwaleed A. Onawole, Abdulmujeeb T. Saad, Mohammed A. Mahmoud, Mohamed ACS Omega [Image: see text] Scale mineral deposition is a critical problem that hinders the daily production of oil and gas fields. Chemical removal of these scales, based on the scale type, is common. In this paper, borax and diethylene tremaine penta acetic (DTPA) acid-based formulations are used for the removal of sulfides, carbonates, and sulfate scales. In particular, the dissolution rates of sulfide (pyrite, pyrrhotite, and galena), sulfate (celestite and barite), and carbonate (calcite) scales were investigated in a rotating disc apparatus at typical well conditions. Scanning electron microscopy–energy-dispersive X-ray and X-ray diffraction analyses were performed for characterizing scale composition and type. The effect of temperature, scale type, and formulation on the dissolution rate is studied. Even though borax formulation has been developed for the sulfide scale removal, it showed a high dissolution rate for the carbonate scale (7.23 × 10(–7) mol·L(–1)·s(–1)·cm(–2)). For the sulfide scale, the highest dissolution in borax formulation was obtained with galena (lead sulfide, PbS), followed by pyrrhotite, and the lowest dissolution was reported for pyrite (1.55 × 10(–8) mol·L(–1)·s(–1)·cm(–2)). Borax formulation was found to be inefficient in the removal of sulfate scales with a dissolution rate lower than carbonate and sulfide scales by 3 and 2 orders of magnitude, respectively. Similarly, DTPA-based formulation has yielded the highest dissolution for the carbonate scale (7.98 × 10(–6) mol·L(–1)·s(–1)·cm(–2)). However, for sulfate, DTPA-based formulation showed better performance than borax. The increase in temperature leads to an increase in the dissolution rate for almost all types of scales; however, DTPA-based formulation showed improved performance with temperature. Both formulations are efficient in removing sulfate- and sulfide-rich scales. The experimental results of DTPA have been validated by density functional theory calculations of binding energies between DTPA and metal ions present in the mixed scale. American Chemical Society 2020-11-16 /pmc/articles/PMC7689925/ /pubmed/33251432 http://dx.doi.org/10.1021/acsomega.0c04357 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Ahmed, Musa
Hussein, Ibnelwaleed A.
Onawole, Abdulmujeeb T.
Saad, Mohammed A.
Mahmoud, Mohamed
Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations
title Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations
title_full Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations
title_fullStr Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations
title_full_unstemmed Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations
title_short Dissolution Kinetics of Different Inorganic Oilfield Scales in Green Formulations
title_sort dissolution kinetics of different inorganic oilfield scales in green formulations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7689925/
https://www.ncbi.nlm.nih.gov/pubmed/33251432
http://dx.doi.org/10.1021/acsomega.0c04357
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