Experimental investigation of the sequence injection effect of sea water and smart water into an offshore carbonate reservoir for enhanced oil recovery

被引:0
作者
Amir Hossein Saeedi Dehaghani
Reza Daneshfar
机构
[1] Tarbiat Modares University,Department of Petroleum Engineering, Faculty of Chemical Engineering
[2] Petroleum University of Technology (PUT),Department of Petroleum Engineering, Ahwaz Faculty of Petroleum Engineering
来源
Scientific Reports | / 14卷
关键词
Enhanced oil recovery; Smart water; Wettability; Micromodel; Sequence effect;
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学科分类号
摘要
This study explores enhanced oil recovery (EOR) strategies, with a focus on carbonate reservoirs constituting over 60% of global oil discoveries. While “smart water” injection proves effective in EOR for carbonate reservoirs, offshore application challenges arise due to impractical volumes for injection. To address this, we propose a novel continuous injection approach, systematically investigating it on a laboratory scale using the Iranian offshore reservoir, Sivand. Thirty-six contact angle tests and twelve flooding experiments are meticulously conducted, with key ions, potassium, and sulfate, playing pivotal roles. Optimal wettability alteration is observed at 4 times potassium ion concentration in 0–2 times sulfate concentrations, driven by ionic strength and charge interactions. Conversely, at 3–5 times sulfate concentrations, the optimal contact angle shifts to 2 times potassium ion concentration, suggesting a mechanism change linked to increasing sulfate ion ionicity. A significant wettability alteration, evidenced by a 132.8° decrease, occurs in seawater with a twofold concentration of potassium ions and a fivefold concentration of sulfate ions. Micromodel experiments introduce an innovative alternation of smart water and seawater injections. The first scenario, smart water followed by seawater injection, reveals negligible post-seawater injection oil recovery changes. In contrast, the second scenario yields a maximum recovery of 7.9%. The first scenario, however, boasts superior overall sweep efficacy, reaching approximately 43%. This research expands understanding of smart water and seawater injection in EOR, presenting a viable solution for optimizing offshore carbonate reservoir recovery. The insights contribute to evolving EOR methodologies, emphasizing tailored strategies for varying reservoir conditions.
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共 109 条
[1]  
Fathi SJ(2011)Water-based enhanced oil recovery (EOR) by “smart water”: Optimal ionic composition for EOR in carbonates Energy Fuels 25 5173-5179
[2]  
Austad T(2014)Solubility and solution thermodynamics of 2, 3, 4, 5-tetrabromothiophene in (ethanol+ trichloromethane) binary solvent mixtures Fluid Phase Equilib. 363 276-281
[3]  
Strand S(2019)Novel smart water-based titania nanofluid for enhanced oil recovery J. Mol. Liq. 296 112064-155
[4]  
Yang W(2016)Effect of asphaltene and resin on interfacial tension of acidic crude oil/sulfate aqueous solution: experimental study Fluid Phase Equilib. 414 149-197
[5]  
Shirazi M(2019)Fundamental investigation of an environmentally-friendly surfactant agent for chemical enhanced oil recovery Fuel 238 186-10
[6]  
Kord S(2019)Combination of a new natural surfactant and smart water injection for enhanced oil recovery in carbonate rock: Synergic impacts of active ions and natural surfactant concentration J. Pet. Sci. Eng. 176 1-4995
[7]  
Tamsilian Y(2018)Membrane performance analysis for smart water production for enhanced oil recovery in carbonate and sandstone reservoirs Energy Fuels 32 4988-105
[8]  
Lashkarbolooki M(2021)Smart technologies for sustainable water management: An urban analysis Sustainability 13 13940-30746
[9]  
Ayatollahi S(2021)Comparative study of different enhanced oil recovery scenarios by silica nanoparticles: An approach to time-dependent wettability alteration in carbonates J. Mol. Liq. 324 115093-302
[10]  
Madani M(2021)TiO J. Pet. Sci. Eng. 204 108756-2311