Cargando…

The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study

Anti-agglomerants (AAs), both natural and commercial, are currently being considered for gas hydrate risk management of petroleum pipelines in offshore operations. However, the molecular mechanisms of the interaction between the AAs and gas hydrate surfaces and the prevention of hydrate agglomeratio...

Descripción completa

Detalles Bibliográficos
Autores principales: Fang, Bin, Ning, Fulong, Hu, Sijia, Guo, Dongdong, Ou, Wenjia, Wang, Cunfang, Wen, Jiang, Sun, Jiaxin, Liu, Zhichao, Koh, Carolyn A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056346/
https://www.ncbi.nlm.nih.gov/pubmed/35520650
http://dx.doi.org/10.1039/d0ra04088f
_version_ 1784697617618305024
author Fang, Bin
Ning, Fulong
Hu, Sijia
Guo, Dongdong
Ou, Wenjia
Wang, Cunfang
Wen, Jiang
Sun, Jiaxin
Liu, Zhichao
Koh, Carolyn A.
author_facet Fang, Bin
Ning, Fulong
Hu, Sijia
Guo, Dongdong
Ou, Wenjia
Wang, Cunfang
Wen, Jiang
Sun, Jiaxin
Liu, Zhichao
Koh, Carolyn A.
author_sort Fang, Bin
collection PubMed
description Anti-agglomerants (AAs), both natural and commercial, are currently being considered for gas hydrate risk management of petroleum pipelines in offshore operations. However, the molecular mechanisms of the interaction between the AAs and gas hydrate surfaces and the prevention of hydrate agglomeration remain critical and complex questions that need to be addressed to advance this technology. Here, we use molecular dynamics (MD) simulations to investigate the effect of model surfactant molecules (polynuclear aromatic carboxylic acids) on the agglomeration behaviour of gas hydrate particles and disruption of the capillary liquid bridge between hydrate particles. The results show that the anti-agglomeration pathway can be divided into two processes: the spontaneous adsorption effect of surfactant molecules onto the hydrate surface and the weakening effect of the intensity of the liquid bridge between attracted hydrate particles. The MD simulation results also indicate that the anti-agglomeration effectiveness of surfactants is determined by the intrinsic nature of their molecular functional groups. Additionally, we find that surfactant molecules can affect hydrate growth, which decreases hydrate particle size and correspondingly lower the risk of hydrate agglomeration. This study provides molecular-level insights into the anti-agglomeration mechanism of surfactant molecules, which can aid in the ultimate application of natural or commercial AAs with optimal anti-agglomeration properties.
format Online
Article
Text
id pubmed-9056346
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90563462022-05-04 The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study Fang, Bin Ning, Fulong Hu, Sijia Guo, Dongdong Ou, Wenjia Wang, Cunfang Wen, Jiang Sun, Jiaxin Liu, Zhichao Koh, Carolyn A. RSC Adv Chemistry Anti-agglomerants (AAs), both natural and commercial, are currently being considered for gas hydrate risk management of petroleum pipelines in offshore operations. However, the molecular mechanisms of the interaction between the AAs and gas hydrate surfaces and the prevention of hydrate agglomeration remain critical and complex questions that need to be addressed to advance this technology. Here, we use molecular dynamics (MD) simulations to investigate the effect of model surfactant molecules (polynuclear aromatic carboxylic acids) on the agglomeration behaviour of gas hydrate particles and disruption of the capillary liquid bridge between hydrate particles. The results show that the anti-agglomeration pathway can be divided into two processes: the spontaneous adsorption effect of surfactant molecules onto the hydrate surface and the weakening effect of the intensity of the liquid bridge between attracted hydrate particles. The MD simulation results also indicate that the anti-agglomeration effectiveness of surfactants is determined by the intrinsic nature of their molecular functional groups. Additionally, we find that surfactant molecules can affect hydrate growth, which decreases hydrate particle size and correspondingly lower the risk of hydrate agglomeration. This study provides molecular-level insights into the anti-agglomeration mechanism of surfactant molecules, which can aid in the ultimate application of natural or commercial AAs with optimal anti-agglomeration properties. The Royal Society of Chemistry 2020-08-24 /pmc/articles/PMC9056346/ /pubmed/35520650 http://dx.doi.org/10.1039/d0ra04088f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Fang, Bin
Ning, Fulong
Hu, Sijia
Guo, Dongdong
Ou, Wenjia
Wang, Cunfang
Wen, Jiang
Sun, Jiaxin
Liu, Zhichao
Koh, Carolyn A.
The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
title The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
title_full The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
title_fullStr The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
title_full_unstemmed The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
title_short The effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
title_sort effect of surfactants on hydrate particle agglomeration in liquid hydrocarbon continuous systems: a molecular dynamics simulation study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056346/
https://www.ncbi.nlm.nih.gov/pubmed/35520650
http://dx.doi.org/10.1039/d0ra04088f
work_keys_str_mv AT fangbin theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT ningfulong theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT husijia theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT guodongdong theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT ouwenjia theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT wangcunfang theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT wenjiang theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT sunjiaxin theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT liuzhichao theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT kohcarolyna theeffectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT fangbin effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT ningfulong effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT husijia effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT guodongdong effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT ouwenjia effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT wangcunfang effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT wenjiang effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT sunjiaxin effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT liuzhichao effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy
AT kohcarolyna effectofsurfactantsonhydrateparticleagglomerationinliquidhydrocarboncontinuoussystemsamoleculardynamicssimulationstudy