Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model

Wax deposition in pipelines leads to pressure drop, reduced effective cross-sectional area, and blockages. Although mathematical models and experimental loops were used to model wax precipitation on pipeline surfaces, its prediction at molecular levels is not fully recognized. Molecular dynamics is...

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Main Authors: Ballo Mwendapole Lonje, Gang Liu
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2022-09-01
Series:Petroleum Research
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2096249521000946
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author Ballo Mwendapole Lonje
Gang Liu
author_facet Ballo Mwendapole Lonje
Gang Liu
author_sort Ballo Mwendapole Lonje
collection DOAJ
description Wax deposition in pipelines leads to pressure drop, reduced effective cross-sectional area, and blockages. Although mathematical models and experimental loops were used to model wax precipitation on pipeline surfaces, its prediction at molecular levels is not fully recognized. Molecular dynamics is another powerful approach that can predict wax precipitation at the molecular level. This paper uses molecular dynamics simulations with the adsorption locator model found in Material Studio Software to investigate the adsorption behaviors of Icosane-C20H42, Docosane-C22H46, and Tetracosane-C24H50 paraffin waxes on the Fe, FeO, and Fe2O3 pipeline internal surfaces. Modeling is performed by varying temperature values and validated with experimental data. It was found that as the temperature altered, the adsorption energies, probability energy distribution and adsorption density field on the surfaces also changed; on the other hand, the energetic analysis results showed adsorption energies increase with carbon numbers increase due to its larger surface contacting areas and lower aspect ratio, which resulted in stronger interaction with the surfaces. Further, paraffin waxes showed to adsorb easily on Fe surfaces than oxide surfaces. At temperatures below Wax Appearance Temperature (WAT) on both simulations and experiments showed wax deposition. The lower adsorption energy capacity observed on the Fe2O3 pipeline surface confirms it's vitality and suitability for crude oil transportation pipelines surface lining material.
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spelling doaj.art-a4a0ac3b65174c02821271eef247e3dd2022-12-22T04:13:13ZengKeAi Communications Co., Ltd.Petroleum Research2096-24952022-09-0173384393Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator modelBallo Mwendapole Lonje0Gang Liu1College of Pipelines and Civil Engineering, China University of Petroleum (East China), Qingdao, 266580, ChinaCorresponding author.; College of Pipelines and Civil Engineering, China University of Petroleum (East China), Qingdao, 266580, ChinaWax deposition in pipelines leads to pressure drop, reduced effective cross-sectional area, and blockages. Although mathematical models and experimental loops were used to model wax precipitation on pipeline surfaces, its prediction at molecular levels is not fully recognized. Molecular dynamics is another powerful approach that can predict wax precipitation at the molecular level. This paper uses molecular dynamics simulations with the adsorption locator model found in Material Studio Software to investigate the adsorption behaviors of Icosane-C20H42, Docosane-C22H46, and Tetracosane-C24H50 paraffin waxes on the Fe, FeO, and Fe2O3 pipeline internal surfaces. Modeling is performed by varying temperature values and validated with experimental data. It was found that as the temperature altered, the adsorption energies, probability energy distribution and adsorption density field on the surfaces also changed; on the other hand, the energetic analysis results showed adsorption energies increase with carbon numbers increase due to its larger surface contacting areas and lower aspect ratio, which resulted in stronger interaction with the surfaces. Further, paraffin waxes showed to adsorb easily on Fe surfaces than oxide surfaces. At temperatures below Wax Appearance Temperature (WAT) on both simulations and experiments showed wax deposition. The lower adsorption energy capacity observed on the Fe2O3 pipeline surface confirms it's vitality and suitability for crude oil transportation pipelines surface lining material.http://www.sciencedirect.com/science/article/pii/S2096249521000946Molecular dynamicsAdsorption energyAdsorption locator modelEnergy distributionAdsorption density fieldParaffin wax
spellingShingle Ballo Mwendapole Lonje
Gang Liu
Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model
Petroleum Research
Molecular dynamics
Adsorption energy
Adsorption locator model
Energy distribution
Adsorption density field
Paraffin wax
title Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model
title_full Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model
title_fullStr Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model
title_full_unstemmed Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model
title_short Investigation of adsorption behaviors of paraffin waxes on iron, iron oxide, and iron III oxide pipeline's internal surfaces using adsorption locator model
title_sort investigation of adsorption behaviors of paraffin waxes on iron iron oxide and iron iii oxide pipeline s internal surfaces using adsorption locator model
topic Molecular dynamics
Adsorption energy
Adsorption locator model
Energy distribution
Adsorption density field
Paraffin wax
url http://www.sciencedirect.com/science/article/pii/S2096249521000946
work_keys_str_mv AT ballomwendapolelonje investigationofadsorptionbehaviorsofparaffinwaxesonironironoxideandironiiioxidepipelinesinternalsurfacesusingadsorptionlocatormodel
AT gangliu investigationofadsorptionbehaviorsofparaffinwaxesonironironoxideandironiiioxidepipelinesinternalsurfacesusingadsorptionlocatormodel