Microfluidic studies of Salt Precipitation: Influence of Brine Composition, Interfacial Tension, Flow Conditions, and Chemical Additives

Fuente: arXiv
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Main Authors: Dąbrowski, Karol M., Nooraiepour, Mohammad, Masoudi, Mohammad, Soomro, Ahsan N., Smulski, Rafał, Barbacki, Jan, Hellevang, Helge, Nagy, Stanisław
Format: Preprint
Published: 2025
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author Dąbrowski, Karol M.
Nooraiepour, Mohammad
Masoudi, Mohammad
Soomro, Ahsan N.
Smulski, Rafał
Barbacki, Jan
Hellevang, Helge
Nagy, Stanisław
author_facet Dąbrowski, Karol M.
Nooraiepour, Mohammad
Masoudi, Mohammad
Soomro, Ahsan N.
Smulski, Rafał
Barbacki, Jan
Hellevang, Helge
Nagy, Stanisław
contents This study investigates the interfacial tension, fluid mobility, and crystallization behavior of various saline and additive-modified solutions in a microfluidic chip environment, simulating pore-scale processes during CO2 injection. The brine compositions included NaCl solutions at different concentrations, surfactant-modified fluids, alcohol-water mixtures, and ammonia solutions. Microfluidic experiments were performed on a range of flow rates and the dynamics of CO2 breakthrough, brine evaporation, and salt precipitation were analyzed. The results show that higher NaCl concentrations accelerate crystallization and increase the final fraction of the crystal, though they also introduce spatial variability and localized precipitation. Additives such as alkylbenzene sulfonate and propan-2-ol reduce interfacial tension, promote greater mobility, and suppress salt accumulation. Ammonia-based solutions demonstrate rapid ammonia bicarbonate crystallization immediately upon CO2 contact, leading to elevated water saturation and frequent chip clogging. Despite faster brine evaporation and earlier crystal nucleation at higher CO2 flow rates, no significant impact was observed on initial brine saturation or final crystal coverage. Crystal growth occurs within and outside brine pools, driven by capillary flow, with spatial distributions governed by stochastic breakthrough dynamics. The random nature of the residual brine geometry results in heterogeneous crystal patterns, which were found to be repeatable but not deterministic.
format Preprint
id arxiv_https___arxiv_org_abs_2507_20638
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microfluidic studies of Salt Precipitation: Influence of Brine Composition, Interfacial Tension, Flow Conditions, and Chemical Additives
Dąbrowski, Karol M.
Nooraiepour, Mohammad
Masoudi, Mohammad
Soomro, Ahsan N.
Smulski, Rafał
Barbacki, Jan
Hellevang, Helge
Nagy, Stanisław
Geophysics
Fluid Dynamics
This study investigates the interfacial tension, fluid mobility, and crystallization behavior of various saline and additive-modified solutions in a microfluidic chip environment, simulating pore-scale processes during CO2 injection. The brine compositions included NaCl solutions at different concentrations, surfactant-modified fluids, alcohol-water mixtures, and ammonia solutions. Microfluidic experiments were performed on a range of flow rates and the dynamics of CO2 breakthrough, brine evaporation, and salt precipitation were analyzed. The results show that higher NaCl concentrations accelerate crystallization and increase the final fraction of the crystal, though they also introduce spatial variability and localized precipitation. Additives such as alkylbenzene sulfonate and propan-2-ol reduce interfacial tension, promote greater mobility, and suppress salt accumulation. Ammonia-based solutions demonstrate rapid ammonia bicarbonate crystallization immediately upon CO2 contact, leading to elevated water saturation and frequent chip clogging. Despite faster brine evaporation and earlier crystal nucleation at higher CO2 flow rates, no significant impact was observed on initial brine saturation or final crystal coverage. Crystal growth occurs within and outside brine pools, driven by capillary flow, with spatial distributions governed by stochastic breakthrough dynamics. The random nature of the residual brine geometry results in heterogeneous crystal patterns, which were found to be repeatable but not deterministic.
title Microfluidic studies of Salt Precipitation: Influence of Brine Composition, Interfacial Tension, Flow Conditions, and Chemical Additives
topic Geophysics
Fluid Dynamics
url https://arxiv.org/abs/2507.20638