Pore-scale study of the effects of DTPA chelating agent flooding on oil recovery utilizing a clay-coated micromodel
Authors/Creators
Description
The use of diethylenetriaminepentaacetic acid (DTPA) chelating agent has shown promising results for enhanced oil recovery (EOR) in prior research. Several mechanisms, mainly resulting from rock-fluid interaction, have been proposed for chelating agent flooding; however, little attention has been paid to fluid-fluid interaction thus far. The assessment of these mechanisms has primarily relied on macroscopic techniques such as core flooding. This paper aims to investigate the injection of DTPA brine and its dominant mechanisms at the pore scale using a clay-coated micromodel. The micromodel tests were performed under oil-wet and water-wet states. For a more precise examination of fluid/fluid interactions, the dynamic interfacial tension (IFT) and Zeta potential were measured. It was observed that the injection of DTPA brine in water-wet state changed the saturation distribution and increased oil recovery. Based on visual inspections, this change in saturation distribution could potentially be linked to the formation of micro-dispersions and viscoelastic interfacial phenomena. Micro-dispersions facilitate flow to unswept areas, and viscoelastic interface formation reshapes the interface between oil and brine, causing disconnected oil droplets to coalesce and thus increase recovery. Under the oil-wet state, the micro-dispersion formation and wettability alteration can be the dominant mechanisms, and the amount of recovered oil was higher than that observed in the water-wet state. Furthermore, Zeta potential measurements at the interface between brine and oil showed a more negative value for DTPA brine, which is effective in wettability alteration and micro-dispersions stability. The results indicate that IFT reduction was not significant enough to be considered the dominant mechanism, although it assists in DTPA brine penetration into the crude oil and subsequent micro-dispersion formation.
Files
Pore-scale study of the effects of DTPA chelating agent flooding on oil recovery utilizing a clay-coated micromodel.pdf
Files
(3.5 MB)
| Name | Size | Download all |
|---|---|---|
|
md5:1a511dc18e237dda7c96024eaa9b287a
|
3.5 MB | Preview Download |
Additional details
References
- Factors Affecting the Stability of Crude Oil Emulsions in Crude Oil Emulsions-Composition Stability and Characterization Abdel-Raouf M.E.S.
- Interactions of DTPA chelating agent with sandstone rocks during EOR: rock surface charge study Alarifi S.A. , Mahmoud M.A.N.E.D. , Kamal M.S. FuelOpen source preview, 2018 DOI: 10.1016/j.fuel.2018.06.003
- Considerations of adjusted brine chemistry for waterflooding in offshore environments Alvarado V.A. , Garcia-Olvera G. , Manrique E.J. DOI: 10.4043/26293-MS
- Pore scale visualization of low salinity water flooding as an enhanced oil recovery method Amirian T. , Haghighi M.H. , Mostaghimi P. Energy and FuelsOpen source preview, 2017 DOI: 10.1021/acs.energyfuels.7b01702
- Shifting to a new EOR area for sandstone reservoirs with high recovery, no damage, and low cost Attia M. , Mahmoud M.A.N.E.D. , Al-Hashim H.S. , Sultan A.S. DOI: 10.2118/169670-MS
- Chemical mechanism of low salinity water flooding in sandstone reservoirs Austad T.A. , RezaeiDoust A.R. , Puntervold T.P. DOI: 10.2118/129767-MS
- Water ion interactions at crude-oil/water interface and their implications for smart waterflooding in carbonates Ayirala S.C. , Yousef A.A. , Li Z. , Xu Z. DOI: 10.2523/IPTC-19066-MS
- Interfacial viscoelasticity of crude oil/brine: an alternative enhanced-oil-recovery mechanism in smart waterflooding Bidhendi M.M. , Garcia-Olvera G. , Morin B. , Oakey J.S. , Alvarado V.A. SPE JournalOpen source preview, 2018 DOI: 10.2118/169127-PA
- Dynamic behaviors and mechanisms of fluid-fluid interaction in low salinity waterflooding of carbonate reservoirs Chai R. , Liu Y. , He Y. , Liu Q. , Xue L. Journal of Petroleum Science and EngineeringOpen source preview, 2022 DOI: 10.1016/j.petrol.2021.109256
- Visual investigation of oil recovery by low salinity water injection: formation of water micro-dispersions and wettability alteration Emadi A. , Sohrabi M.S. DOI: 10.2118/166435-MS
- Wettability alteration in carbonates: the effect of water-soluble carboxylic acids in crude oil Fathi S.J.F. , Austad T.A. , Strand S. , Puntervold T.P. Energy and FuelsOpen source preview, 2010 DOI: 10.1021/ef901527h
- Interfacial rheological insights of sulfate-enriched smart-water at low and high-salinity in carbonates Garcia-Olvera G. , Alvarado V.A. FuelOpen source preview, 2017 DOI: 10.1016/j.fuel.2017.06.094
- Influence of the wettability of particles on the morphology and stability of crude oil–particle aggregates in synthetic produced water Gaweł B.A. , Nourani M. , Tichelkamp T. , Öye G. Journal of Petroleum Science and EngineeringOpen source preview, 2016 DOI: 10.1016/j.petrol.2015.12.019
- Surface charge study of EDTA interaction with carbonate rock during chelating agent flooding Hassan A.M. , Al-Hashim H.S. Journal of Petroleum Science and EngineeringOpen source preview, 2020 DOI: 10.1016/j.petrol.2020.107163
- Impact of chelating agent salt type on the enhanced oil recovery from carbonate and sandstone reservoirs Hassan A.M. , Mahmoud M.A.N.E.D. , Patil S.L. Applied Sciences SwitzerlandOpen source preview, 2021 DOI: 10.3390/app11157109
- Manipulation of surface charges of oil droplets and carbonate rocks to improve oil recovery Hou J. , Han M. , Wang J. Scientific ReportsOpen source preview, 2021 DOI: 10.1038/s41598-021-93920-3
- Zeta potential in oil-water-carbonate systems and its impact on oil recovery during controlled salinity water-flooding Jackson M.D. , Al-Mahrouqi D.A. , Vinogradov J. Scientific ReportsOpen source preview, 2016 DOI: 10.1038/srep37363
- Characterization of size, surface charge, and agglomeration state of nanoparticle dispersions for toxicological studies Jiang J. , Oberdörster G. , Biswas P.M. Journal of Nanoparticle ResearchOpen source preview, 2009 DOI: 10.1007/s11051-008-9446-4
- Analysis of fundamentals of two-phase flow in porous media using dynamic pore-network models: a review Niasar V. , Hassanizadeh S.M. Critical Reviews in Environmental Science and TechnologyOpen source preview, 2012 DOI: 10.1080/10643389.2011.574101
- Review on surfactant flooding: phase behavior, retention, IFT, and field applications Kamal M.S. , Hussein I.A. , Sultan A.S. DOI: 10.1021/acs.energyfuels.7b00353
- A critical review of alkaline flooding: mechanism, hybrid flooding methods, laboratory work, pilot projects, and field applications Khlaifat A. , Dakhlallah D.A. , Sufyan F. EnergiesOpen source preview, 2022 DOI: 10.3390/en15103820
- LoSal™ enhanced oil recovery: evidence of enhanced oil recovery at the reservoir scale Lager A. , Webb K.J. , Collins I.R. , Richmond D.M. DOI: 10.2118/113976-MS
- Review on polymer flooding technology Li X. , Zhang F. , Liu G. DOI: 10.1088/1755-1315/675/1/012199
- Insights into the impact of temperature on the wettability alteration by low salinity in carbonate rocks Mahani H. , Menezes R. , Berg S.T. ,... Voskov D.V. , Niasar V. Energy and FuelsOpen source preview, 2017 DOI: 10.1021/acs.energyfuels.7b00776
- Insight into the mechanism for oil recovery using EDTA chelating agent solutions from clayey sandstone rocks Mahmoud A.A. , Al-Hashim H.S. Journal of Petroleum Science and EngineeringOpen source preview, 2018 DOI: 10.1016/j.petrol.2017.11.046
- Evaluating the integrity of clayey sandstone rocks flooded with high pH EDTA chelating agent solutions Mahmoud A.A. , Al-Hashim H.S. Journal of Petroleum Science and EngineeringOpen source preview, 2019 DOI: 10.1016/j.petrol.2019.02.074
- Effect of chlorite clay-mineral dissolution on the improved oil recovery from sandstone rocks during diethylenetriaminepentaacetic acid chelating-agent flooding Mahmoud M.A.N.E.D. SPE JournalOpen source preview, 2018 DOI: 10.2118/189988-PA
- Chelating-agent enhanced oil recovery for sandstone and carbonate reservoirs Mahmoud M.A.N.E.D. , Abdelgawad K.Z. SPE JournalOpen source preview, 2015 DOI: 10.2118/172183-PA
- Direct pore-scale visualization of interactions between different crude oils and low salinity brine Mahzari P. , Sohrabi M.S. , Cooke A.J. , Carnegie A.J.G. Journal of Petroleum Science and EngineeringOpen source preview, 2018 DOI: 10.1016/j.petrol.2018.02.051
- Single well alkaline-surfactant injectivity improvement test in the big sinking field Miller B.J. , Pitts M.J. , Dowling P.C. , Wilson D. DOI: 10.2118/89384-MS
- Effect of salinity on water-in-crude oil emulsion: evaluation through drop-size distribution proxy Moradi M.M. , Alvarado V.A. , Huzurbazar S.V. Energy and FuelsOpen source preview, 2011 DOI: 10.1021/ef101236h
- Impact of ionic strength on partitioning of naphthenic acids in water-crude oil systems: determination through high-field NMR spectroscopy Moradi M.M. , Topchiy E. , Lehmann T.E. , Alvarado V.A. FuelOpen source preview, 2013 DOI: 10.1016/j.fuel.2013.05.024
- Prospects of improved oil recovery related to wettability and brine composition Morrow N.R. , Tang G. , Valat M. , Xie X. Journal of Petroleum Science and EngineeringOpen source preview, 1998 DOI: 10.1016/S0920-4105(98)00030-8
- Polymer flooding review Needham R.B. , Doe P.H. Jpt Journal of Petroleum TechnologyOpen source preview, 1987 DOI: 10.2118/17140-PA
- Analysis of microscopic displacement mechanisms of alkaline flooding for enhanced heavy-oil recovery Pei H. , Zhang G. , Ge J. , Jin L. , Liu X. Energy and FuelsOpen source preview, 2011 DOI: 10.1021/ef200605a
- Comparative effectiveness of alkaline flooding and alkaline–surfactant flooding for improved heavy-oil recovery Pei H. , Zhang G. , Ge J. , Tang M. , Zheng Y. DOI: 10.1021/ef300206u
- Formation kinetics and viscoelastic properties of water/crude oil interfacial films Quintero C.G. , Noïk C. , Dalmazzone C. , Grossiord J.L. Oil and Gas Science and TechnologyOpen source preview, 2009 DOI: 10.2516/ogst/2009031
- Insights into the pore-scale mechanism of low salinity water injection using a clay-coated micromodel Shahmohammadi B. , Chahardowli M. , Simjoo M. Journal of Petroleum Science and EngineeringOpen source preview, 2022 DOI: 10.1016/j.petrol.2021.110065
- Pore scale visualization of fluid-fluid and rock-fluid interactions during low-salinity waterflooding in carbonate and sandstone representing micromodels Siadatifar S.E. , Fatemi S.M. , Masihi M. Journal of Petroleum Science and EngineeringOpen source preview, 2021 DOI: 10.1016/j.petrol.2020.108156
- Functionalization of micromodels with kaolinite for investigation of low salinity oil-recovery processes Song W. , Kovscek A.R. Lab on A ChipOpen source preview, 2015 DOI: 10.1039/C5LC00544B
- Crude-oil/brine interaction as a recovery mechanism for low-salinity waterflooding of carbonate reservoirs Tetteh J.T. , Barati R.G. DOI: 10.2118/194006-PA
- Investigation into fluid-fluid interaction phenomena during low salinity waterflooding using a reservoir-on-a-chip microfluidic model Tetteh J.T. , Cudjoe S.E. , Aryana S.A. , Barati R.G. Journal of Petroleum Science and EngineeringOpen source preview, 2021 DOI: 10.1016/j.petrol.2020.108074
- Effects of aqueous-phase salinity on water-in-crude oil emulsion stability Wang X. , Alvarado V.A. Journal of Dispersion Science and TechnologyOpen source preview, 2012 DOI: 10.1080/01932691.2010.548689
- Low-salinity water flooding: from novel to mature technology Wood D.A. , Yuan B. DOI: 10.1016/B978-0-12-813782-6.00002-6
- New recovery method for carbonate reservoirs through tuning the injection water salinity: smart waterflooding Yousef A.A. , al-Saleh S.H. , Al-Jawfi M.S. DOI: 10.2118/143550-MS
- Waterflood performance by injection of brine with different salinity for reservoir cores Zhang Y.,Xie X.,Morrow N.R. DOI: 10.2118/109849-MS