WO2011031920A2 - Process of using hard brine at high alkalinity for enhanced oil recovery (eor) applications - Google Patents
Process of using hard brine at high alkalinity for enhanced oil recovery (eor) applications Download PDFInfo
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- the present invention relates in general to the field of enhanced oil recovery, and more particularly, the use of alkaline-surfactant-polymer (ASP) chemicals in hard brine.
- ASP alkaline-surfactant-polymer
- United States Patent Application No. 20080312108 discloses compositions and process for recovering of oil from subterranean oil-bearing reservoirs consisting of green non-toxic biodegradable strong alkali metal salt of polymerized weak acids, one or more surfactants, an aqueous fluid, and optionally one or more mobility control agents and optionally one or more co-solvents. Such compositions are injected into the reservoir through one or more injection wells and assist in recovering trapped oil through one or more producing wells.
- the compositions and the process described in the invention offer the advantage of improved compatibility with unsoftened waters, surfactants, and various mobility control agents.
- the green non-toxic, biodegradable properties of the alkali makes it particularly suitable for environmentally sensitive applications such as offshore and inland lakes
- United States Patent No. 4,004,638 issued to Burdyn et al. (1977) teaches recovery of oil from subterranean oil reservoirs by water flooding employing an alkaline agent and a sulfonate surfactant.
- An aqueous initiation slug containing an alkaline agent selected from the group consisting of alkali metal and ammonium hydroxides is injected into the reservoir via a suitable injection system. Thereafter an aqueous surfactant slug is injected into the reservoir behind the initiation slug.
- the surfactant slug contains a sulfonate surfactant and an alkaline agent.
- an aqueous flooding medium is injected in order to displace the oil within the reservoir to a production system from which it is recovered.
- a portion of the flooding medium may contain a thickening agent for mobility control purposes.
- a large number of petroleum reservoirs have some hardness (divalent cations) in the water, and thus pose a great threat to the aqueous stability of the chemicals injected.
- Divalent cations precipitate with alkali, surfactant and polymer and result in plugging during injection.
- hardness has a dominant impact on phase behavior especially at low concentration of surfactant (Nelson, 1984) and this can cause high surfactant retention by ion exchange between the surfactant, brine, and clay (Hill, et al., 1977; Hirasaki, 1981). Therefore, extra measures are taken to test the compatibility of the injection chemicals with brine.
- One measure is softening of injection water, which is an expensive process that in some cases is not feasible.
- the present invention describes the use of EDTA Na 4 (Ethylenediamine tetracetic acid, tetra sodium salt) and similar agents as both a chelating agent to prevent precipitation of divalent cations such as Ca ++ and Mg ++ at high pH and as an alkali to increase the pH to values needed for enhanced oil recovery by ASP flooding and similar EOR methods that reduce the interfacial tension, alter the wettability of the formation, increase the viscosity of the injected brine, lower surfactant adsorption to the rock, and otherwise cause more of the oil to be mobilized and flow to the producers by a variety of well known and well established mechanisms.
- EDTA Na 4 Ethylenediamine tetracetic acid, tetra sodium salt
- Oilfield brines must first be softened before conventional alkalis such as sodium carbonate can be used in ASP flooding processes whereas EDTA can be used in hard brines. Also, the EDTA increases the pH to sufficiently high values that Ether Sulfates (ES) are stable at high temperature and thus can be used for EOR applications, which is another novel benefit of its use.
- ES Ether Sulfates
- the invention features a composition for treating a hydrocarbon-bearing formation.
- the composition includes an alkaline-surfactant-polymer (ASP) solution in water and an agent that is a chelating agent and an alkali.
- ASP alkaline-surfactant-polymer
- the water is hard water or hard brine.
- Implementations of the invention can include one or more of the following features:
- the water can be hard brine.
- the composition can be made by the process of mixing in the hard brine an alkaline agent, a surfactant, a polymer and the agent.
- the agent can be mixed with the hard brine before adding the surfactant and the polymer.
- the agent can be ethylenediaminetetraacetic acid (EDTA), ethylenediamine tetracetic acid tetra sodium salt (EDTA Na 4 ), EDTA salts, acrylic polymers, ascorbic acid, tetrasodium iminodisuccinate, citric acid, dicarboxymethylglutamic acid, ethylenediaminedisuccinic acid (EDDS), malic acid, nitrilotriacetic acid (NTA), nonpolar amino acids, methionine, oxalic acid, phosphoric acid, polar amino acids, arginine, asparagine, aspartic acid, glutamic acid, glutamine, lysine, ornithine, siderophores, desferoxamine B, hydrolysed wool, or succinic acid.
- EDTA ethylenediaminetetraacetic acid
- EDTA Na 4 ethylenediamine tetracetic acid tetra sodium salt
- EDTA salts acrylic polymers
- the agent can be EDTA Na 4 .
- the ASP solution can include an anionic surfactant.
- the anionic surfactant can be ether sulfates or a salt thereof.
- the surfactant can be ether sulfate.
- the ASP solution can include a high molecular weight water-soluble polymer selected from the group consisting of polyacrylamides, co-polymers of polyacrylamides, partially hydrolyzed polyacrylamide (HP AM) polymers, and combinations thereof.
- a high molecular weight water-soluble polymer selected from the group consisting of polyacrylamides, co-polymers of polyacrylamides, partially hydrolyzed polyacrylamide (HP AM) polymers, and combinations thereof.
- the ASP solution can (i) include a surfactant that is an ether sulfate and (ii) a polymer that is a high molecular weight water-soluble polymer.
- the EDTA Na 4 can have a concentration between about 0.1 wt% to about 10 wt% of the EDTA Na 4 in the water.
- the water can include 3.5 wt% of the EDTA Na 4 .
- the water can include divalent cations and the weight ratio of EDTA to the divalent cations is at least about 9: 1.
- the pH of the composition can range from 9 to 13.
- the pH of the composition can be from 10.5 to 11.
- the composition can be at a temperature from 25 to 120° C.
- the composition can be a non-chelating amine or an inorganic alkaline agent providing alkalinity.
- the non-chelating amine can be dimethylaminopropylamine.
- the dimethylaminopropylamine can be operable to provide (a) a pH of around 10.2 at a 1% level in deionized water and (b) a pH of around 10.4 at a 2% level in deionized water.
- the water can include divalent cations that are Ca ++ and/or Mg ++ .
- the non-chelating amine can be operated to produce an alkalinity in the water in the absence of Ca and Mg precipitation.
- the non-chelating amine can include an ethanol amine, a di-and tri ethanol amine, a polyalkylene polyamine, a diethylene triamine (DETA), a triethylenetetramine (TETA), an alkoxylated derivative thereof, or a combination thereof.
- DETA diethylene triamine
- TETA triethylenetetramine
- the invention features a method for making a composition for use in treating a hydrocarbon-bearing formation.
- the method includes combining an alkaline agent, a surfactant, and a polymer in water to form an alkaline-surfactant-polymer (ASP) solution in the water.
- the water is hard water or hard brine.
- the method further includes adding an agent to the water.
- the agent is a chelating agent and an alkali.
- the method further includes forming the composition from the combination of the alkaline agent, the surfactant, the polymer, and the agent.
- Implementations of the invention can include one or more of the following features:
- the water can be a hard brine.
- the agent can be added to the hard brine before combining the surfactant and the polymer.
- the agent can be EDTA NA 4 .
- the surfactant can be an anionic surfactant and the polymer can have a high molecular weight water-soluble polymer.
- the invention features a method of treating a hydrocarbon- bearing formation to recover oil.
- the method includes selecting a composition that includes an alkaline-surfactant-polymer (ASP) solution in water.
- the water is hard water or hard brine.
- the composition further includes that the agent is a chelating agent and an alkali.
- the method further includes injecting the composition into the hydrocarbon bearing formation at a temperature from 25 to 120° C.
- ASP alkaline-surfactant-polymer
- Implementations of the invention can include one or more of the following features:
- the water can be hard brine.
- the agent can be ethylenediaminetetraacetic acid (EDTA), ethylenediamine tetracetic acid tetra sodium salt (EDTA Na4), EDTA salts, acrylic polymers, ascorbic acid, tetrasodium iminodisuccinate, citric acid, dicarboxymethylglutamic acid, ethylenediaminedisuccinic acid (EDDS), malic acid, nitrilotriacetic acid (NTA), nonpolar amino acids, methionine, oxalic acid, phosphoric acid, polar amino acids, arginine, asparagine, aspartic acid, glutamic acid, glutamine, lysine, ornithine, siderophores, desferoxamine B, hydrolysed wool, or succinic acid.
- EDTA ethylenediaminetetraacetic acid
- EDTA Na4 ethylenediamine tetracetic acid tetra sodium salt
- EDTA salts acrylic polymers,
- the ASP solution can include a high molecular weight water-soluble polymer selected from the group consisting of polyacrylamides, co-polymers of polyacrylamides, or partially hydrolyzed polyacrylamide (HP AM) polymers.
- a high molecular weight water-soluble polymer selected from the group consisting of polyacrylamides, co-polymers of polyacrylamides, or partially hydrolyzed polyacrylamide (HP AM) polymers.
- the ASP solution can include an anionic surfactant.
- the surfactant can be an ether sulfate.
- the water can include at least 3.5 wt% of the chelating agent EDTA Na4.
- the water can include divalent cations and the weight ratio of EDTA to the divalent cations is at least about 9: 1.
- the agent is at a concentration between about 0.1 wt% to about 10 wt% of the agent in the water.
- the pH of the composition ranges can be from 9 to 13. [0043] The pH of the composition can be 10.5.
- the composition can further include a non-chelating amine added in a quantity such that the composition has a pH in the range of 9 to 13.
- the non-chelating amine can include dimethylaminopropylamine or a dimethylaminopropylamine.
- the non-chelating amine can also be operable to provide (a) a pH of around 10.2 at a 1% level in deionized water and (b) a pH of around 10.4 at a 2% level in deionized water.
- the non-chelating amine can be operable to increase the alkalinity of the water without any Ca and Mg precipitation.
- the non-chelating amine can be an ethanol amine, a di-and tri ethanol amine, a polyalkylene polyamine, a diethylene triamine (DETA), a triethylenetetramine (TETA), or a alkoxylate thereof.
- DETA diethylene triamine
- TETA triethylenetetramine
- the invention features a composition for treating a hydrocarbon-bearing formation.
- the composition includes an alkaline-surfactant-polymer (ASP) solution in water and a non-chelating amine.
- ASP alkaline-surfactant-polymer
- the water is hard water or hard brine.
- the non-chelating amine can be added in a quantity such that the composition has a pH in the range from 9 to 13.
- Implementations of the invention can include one or more of the following features:
- the non-chelating amine can include dimethylaminopropylamine.
- the dimethylaminopropylamine can be used to provide (a) a pH of around 10.2 at a 1% level in deionized water and (b) a pH of around 10.4 at a 2% level in deionized water.
- the non-chelating amine can be used to increase the alkalinity of the water without any Ca and Mg precipitation.
- the non-chelating amine can be an ethanol amine, a di-and tri ethanol amine, a polyalkylene polyamine, a diethylene triamine (DETA), a triethylenetetramine (TETA), or an alkoxylates thereof.
- DETA diethylene triamine
- TETA triethylenetetramine
- the invention features a method of treating a hydrocarbon- bearing formation to recover oil that includes selecting a composition.
- the composition includes an alkaline-surfactant-polymer (ASP) solution in water.
- the water is s hard water or brine.
- the composition selected further includes a non-chelating amine added in a quantity such that the composition has a pH in the range from 9 to 13.
- the method further includes injecting the composition into the hydrocarbon bearing formation at a temperature from 25 to 120° C.
- Implementations of the invention can include one or more of the following features: [0055]
- the dimethylaminopropylamine can be used to provide (a) a pH of around 10.2 at a 1% level in deionized water and (b) a pH of around 10.4 at a 2% level in deionized water.
- the non-chelating amine can be used to increase the alkalinity of the water without any Ca and Mg precipitation.
- the non-chelating amine can be selected from an ethanol amine, a di-and tri ethanol amine, a polyalkylene polyamine, a diethylene triamine (DETA), a triethylenetetramine (TETA), and an alkoxylate thereof.
- DETA diethylene triamine
- TETA triethylenetetramine
- FIG. 1 is a schematic illustration of an offshore oil platform with facilities for injecting chemical solutions into the reservoir for the purpose of flooding the reservoir to enhance the oil recovery according to some embodiments of the present invention
- FIG. 2 is a graph of the Phase Behavior result of formulation having sulfate surfactants with EDTA Na 4 .
- FIG. 3 is a graph showing the use of EDTA for calcium tolerance of the polymer
- FIG 4 is a graph showing the use of EDTA for chemical stability of the polymer against Fe in the presence and absence of oxygen.
- the present invention describes the use of EDTA Na 4 (Ethylenediamine tetracetic acid, tetra sodium salt) and similar agents as both a chelating agent to prevent precipitation of divalent cations such as Ca + + and Mg++ at high pH and as an alkali to increase the pH to values needed for enhanced oil recovery by ASP flooding and similar EOR methods.
- Oilfield brines must first be softened before conventional alkalis such as sodium carbonate can be used in ASP flooding processes whereas EDTA can be used in hard brines.
- the EDTA increases the pH to sufficiently high values that Ether Sulfates (ES) are stable at high temperature and thus can be used for EOR applications, which is another novel benefit of its use.
- ES Ether Sulfates
- the water available for making ASP solutions and similar EOR solutions such as alkaline surfactant solutions and alkali-polymer solutions is hard brine in most oil fields. This is typically the cheapest water available in sufficient volumes for oilfield use and to remove the hardness ions such as calcium (Ca) and magnesium (Mg) from this water in a softening process adds significant cost to the field operation and can also present barriers to its use because of logistical constraints on offshore platforms and in remote areas and so forth..
- a chelating agent such as EDTA Na 4 (Ethylenediamine tetracetic acid, tetra sodium salt) can be used to overcome the problems of precipitations at high pH.
- EDTA-Na4 has shown excellent performance, however, others sequestering agents such as tetrasodium pyrophosphate (TSPP) and nitrilo triacetic acid (NT A) etc. can be employed.
- TSPP tetrasodium pyrophosphate
- NT A nitrilo triacetic acid
- a weight ratio of at least about 9: 1 EDTA per divalent cations present in the hard brine is typically utilized. However, it has been determined that this ratio increases as the temperature increases since the elevated temperature accelerates the reaction between hydroxyl ions in the water to precipitate with divalent cations.
- calculated requirement of EDTA-Na 4 to sequester 650 ppm Ca ++ and 2110 ppm Mg ++ is 24,350 ppm.
- the calculated value at 100°C is determined to be 35,000 ppm at an adjusted pH of 10.5-11. Since most reservoir brines contain more than one type of divalent cation (Ca ++ /Mg ++ ), the typical EDTA-Na 4 requirement can be determined at each temperature.
- the impact on the phase behavior of the additional Na + ions from the EDTA-Na 4 was determined to be equivalent to Na 2 C0 3 .
- the process of the present invention allows the use of high alkalinity with hard water, thereby making it feasible to use ether sulfates (ES) at high temperatures. Also, if the oil is active, under high alkalinity, in situ generation of soaps takes place. Consequently, lower levels of surfactants are needed to recover the oil.
- ES ether sulfates
- EDTA-Na 4 Because of its high pH, EDTA-Na 4 it functions as an alkaline agent. It raises the pH of the injection fluid to sufficiently high levels where natural soaps can be generated from naphthelenic acids in reactive crude oils (Johnson, 1976). Also, by increasing pH, surfactant adsorption is greatly reduced, and the sulfate surfactants can be stabilized at high temperature reservoir conditions. In addition, EDTA-Na 4 can be used in the presence of carbonate ions without precipitating them as carbonate with divalent ions. Since EDTA-Na4 is relatively expensive, the lowest amount of EDTA-Na4 for complex divalent ions and the remaining alkalinity can be provided by Na 2 C0 3 .
- EDTA-Na 4 (and other chelating agents that are also an alkali) is beneficial in EOR/ASP flooding , and such multi-functional character is attractive for a large percentage of reservoir conditions.
- Such benefits include enhanced stability for polymer and surfactants in hard brines.
- the term "treating” includes placing a chemical (e.g., an anionic surfactant or water-soluble polymer) within a hydrocarbon-bearing formation using any suitable manner known in the art (e.g., pumping, injecting, pouring, releasing, displacing, spotting, or circulating the chemical into a well, well bore, or hydrocarbon-bearing formation).
- a chemical e.g., an anionic surfactant or water-soluble polymer
- polymer refers to a molecule having a structure that essentially includes the multiple repetition of units derived, actually or conceptually, from molecules of low relative molecular mass.
- polymer includes "oligomer”.
- bonded refers to having at least one of covalent bonding, hydrogen bonding, ionic bonding, Van Der Waals interactions, pi interactions, London forces, or electrostatic interactions.
- productivity refers to the capacity of a well to produce hydrocarbons; that is, the ratio of the hydrocarbon flow rate to the pressure drop, where the pressure drop is the difference between the average reservoir pressure and the flowing bottom hole well pressure (i.e., flow per unit of driving force).
- This term is not pertinent to enhanced oil recovery. It applies to near wellbore treatments such as the 3M treatment, but here the idea is to flood the entire reservoir with chemical solutions to mobilize and displace the oil to the production wells.
- Alkyl group and the prefix “alk-” are inclusive of both straight chain and branched chain groups and of cyclic groups having up to 30 carbons (in some embodiments, up to 20, 15, 12, 10, 8, 7, 6, or 5 carbons) unless otherwise specified. Cyclic groups can be monocyclic or polycyclic and, in some embodiments, have from 3 to 10 ring carbon atoms.
- Alkylene is the divalent form of the "alkyl” groups defined above.
- Arylalkylene refers to an “alkylene” moiety to which an aryl group is attached.
- aryl as used herein includes carbocyclic aromatic rings or ring systems, for example, having 1, 2, or 3 rings and optionally containing at least one heteroatom (e.g., O, S, or N) in the ring.
- heteroatom e.g., O, S, or N
- aryl groups include phenyl, naphthyl, biphenyl, fluorenyl as well as furyl, thienyl, pyridyl, quinolinyl, isoquinolinyl, indolyl, isoindolyl, triazolyl, pyrrolyl, tetrazolyl, imidazolyl, pyrazolyl, oxazolyl, and thiazolyl.
- Arylene is the divalent form of the "aryl” groups defined above.
- an exemplary offshore oil platform is schematically illustrated and generally designated 10.
- Semi-submersible platform 12 is centered over submerged hydrocarbon-bearing formation 14 located below sea floor 16.
- Subsea conduit 18 extends from deck 20 of platform 12 to wellhead installation 22 including blowout preventers 24.
- Platform 12 is shown with hoisting apparatus 26 and derrick 28 for raising and lowering pipe strings such as work string 30.
- Wellbore 32 extends through the various earth strata including hydrocarbon-bearing formation 14. Casing 34 is cemented within wellbore 32 by cement 36. Work string 30 may include various tools including, for example, sand control screen assembly 38 which is positioned within wellbore 32 adjacent to hydrocarbon-bearing formation 14. Also extending from platform 12 through wellbore 32 is fluid delivery tube 40 having fluid or gas discharge section 42 positioned adjacent to hydrocarbon-bearing formation 14, shown with production zone 48 between packers 44, 46.
- Phase Behavior Screening Phase behavior experiments have been used to characterize chemicals for EO . There are many benefits in using phase behavior as a screening method. Phase Behavior studies are used to determine: (1) the effect of electrolytes; (2) oil solubilization, IFT reduction, (3) microemulsion densities; (4) surfactant and microemulsion viscosities; (5) coalescence times; (6) identify optimal surfactant-cosolvent formulations; and/or (7) identify optimal formulation for coreflood studies.
- Thermodynamically stable phase can form with oil, water and surfactant mixtures.
- Surfactants form micellar structures at concentrations above the critical micelle concentration (CMC).
- CMC critical micelle concentration
- the emulsion coalesces into a separate phase at the oil-water interface and is referred to as a microemulsion.
- a microemulsion is a surfactant-rich distinct phase consisting of surfactant, oil and water and possibly co-solvents and other components.
- This phase is thermodynamically stable in the sense that it will return to the same phase volume at a given temperature.
- the phase transition is examined by keeping all variables fixed except for the scanning variable.
- the scan variable is changed over a series of pipettes and may include, but is not limited to, salinity, temperature, chemical (surfactant, alcohol, electrolyte), oil, which is sometimes characterized by its equivalent alkane carbon number (EACN), and surfactant structure, which is sometimes characterized by its hydrophilic-lipophilic balance (HLB).
- the phase transition was first characterized by Winsor (1954) into three regions: Type I - excess oleic phase, Type III - aqueous, microemulsion and oleic phases, and the Type II - excess aqueous phase.
- phase transition boundaries and some common terminology are described as follows: Type I to III - lower critical salinity, Type III to II - upper critical salinity, oil solubilization ratio (Vo/V s), water solubilization ratio (Vw/V s), the solubilization value where the oil and water solubilization ratios are equal is called the Optimum Solubilization Ratio ( ⁇ *), and the electrolyte concentration where the optimum solubilization ratio occurs is referred to as the Optimal Salinity (S*).
- Mass Balance Mass balances were used to measure chemicals for mixtures and determine initial saturation values of cores.
- Water Deionizer Deionized (DI) water is prepared for use with all the experimental solutions using a NanopureTM filter system. This filter uses a recirculation pump and monitors the water resistivity to indicate when the ions have been removed. Water is passed through a 0.45 micron filter to eliminate undesired particles and microorganisms prior to use.
- DI Deionized
- Borosilicate Pipettes Standard 5 mL borosilicate pipettes with 0.1 mL markings are used to create phase behavior scans as well as run dilution experiments with aqueous solutions. Ends are sealed using a propane and oxygen flame.
- Pipette Repeater An Eppendorf Repeater Plus® instrument is used for most of the pipetting. This is a handheld dispenser calibrated to deliver between 25 microliter and 1 ml increments. Disposable tips are used to avoid contamination between stocks and allow for ease of operation and consistency.
- Propane-oxygen Torch A mixture of propane and oxygen gas is directed through a Bernz-O-Matic flame nozzle to create a hot flame about 1 ⁇ 2 inch long. This torch is used to flame-seal the glass pipettes used in phase behavior experiments.
- Convection Ovens Several convection ovens are used to incubate the phase behaviors and core flood experiments at the reservoir temperatures.
- the phase behavior pipettes are primarily kept in Blue M and Memmert ovens that are monitored with mercury thermometers and oven temperature gauges to ensure temperature fluctuations are kept at a minimal between recordings.
- a large custom built flow oven was used to house most of the core flood experiments and enabled fluid injection and collection to be done at reservoir temperature.
- pH Meter An ORION research model 701/digital ion analyzer with a pH electrode is used to measure the pH of most aqueous samples to obtain more accurate readings. This is calibrated with 4.0, 7.0 and 10.0 pH solutions. For rough measurements of pH, indicator papers are used with several drops of the sampled fluid.
- Phase Behavior Calculations The oil and water solubilization ratios are calculated from interface measurements taken from phase behavior pipettes. These interfaces are recorded over time as the mixtures approached equilibrium and the volume of any macroemulsions that initially formed decreased or disappeared. The procedure for creating phase behavior experiments will be discussed later.
- Oil Solubilization Ratio The oil solubilization ratio is defined as the volume of oil solubilized divided by the volume of surfactant in microemulsion. All the surfactant is presumed to be in the emulsion phase. The oil solubilization ratio is applied for Winsor type I and type III behavior. The volume of oil solubilized is found by reading the change between initial aqueous level and excess oil (top) interface level. The oil solubilization parameter is calculated as follows:
- V s volume of surfactant
- Water Solubilization Ratio The water solubilization ratio is defined as the volume of water solubilized divided by the volume of surfactant in microemulsion. All the surfactant is presumed to be in the emulsion phase. The water solubilization ratio is applied for Winsor type III and type II behavior. The volume of water solubilized is found by reading the change between initial aqueous level and excess water (bottom) interface level. The water solubilization parameter is calculated as follows: v 0 (3) water solubilization ratio
- Optimum Solubilization Ratio The optimum solubilization ratio occurs where the oil and water solubilization is equal. The coarse nature of phase behavior screening often does not include a data point at optimum, so the solubilization curves are drawn for the oil and water solubilization and the intersection of these two curves is defined as the optimum. The following is true for the optimum solubilization ratio:
- Phase Behavior Methodology The methods for creating, measuring and recording observations are described in this section. Scans are made using a variety of electrolyte mixtures described below. Oil is added to most aqueous surfactant solutions to see if a microemulsion formed, how long it took to form and equilibrate if it formed, what type of microemulsion formed and some of its properties such as viscosity. However, the behavior of aqueous mixtures without oil added is also important and is also done in some cases to determine if the aqueous solution is clear and stable over time, becomes cloudy or separated into more than one phase.
- Phase behavior samples are made by first preparing surfactant stock solutions and combining them with brine stock solutions in order to observe the behavior of the mixtures over a range of salinities. All the experiments are created at or above 0.1 wt% active surfactant concentration, which is above the typical CMC of the surfactant.
- Solution Preparation Surfactant stocks are based on active weight-percent surfactant (and co-surfactant when incorporated). The masses of surfactant, co-surfactant, co- solvent and de-ionized water (DI) are measured out on a balance and mixed in glass jars using magnetic stir bars. The order of addition is recorded on a mixing sheet along with actual masses added and the pH of the final solution. Brine solutions are created at the necessary weight percent concentrations for making the scans.
- DI de-ionized water
- Surfactant Stock The chemicals being tested are first mixed in a concentrated stock solution that usually consisted of a primary surfactant, co-solvent and/or co-surfactant along with de-ionized water. The quantity of chemical added is calculated based on activity and measured by weight percent of total solution. Initial experiments are at about 1-3% active surfactant so that the volume of the middle microemulsion phase would be large enough for accurate measurements assuming a solubilization ratio of at least 10 at optimum salinity.
- Fluid Interfaces are the most crucial element of phase behavior experiments. From them, the phase volumes are determined and the solubilization ratios are calculated. The top and bottom interfaces are recorded as the scan transitioned from an oil-in-water microemulsion to a water-in-oil microemulsion. Initial readings are taken one day after initial agitation and sometimes within hours of agitation if coalescence appeared to happen rapidly. Measurements are taken thereafter at increasing time intervals (for example, one day, four days, one week, two weeks, one month and so on) until equilibrium is reached or the experiment is deemed unessential or uninteresting for continued observation.
- a 365nm black light is used to illuminate the microemulsion phase and to improve the contrast between the microemulsion and the excess oleic phase.
- Ether Sulfate surfactants with high salinity, hard brine at 100°C The composition of brine used in the studies of the present invention is listed in Table 1.
- Table 1 Composition of the Brine used.
- the present inventors employed EDTA Na 4 in the surfactant formulations. As the brine was hard, Sodium Carbonate (or NaOH) cannot be used to raise the pH for stabilizing Sulfate surfactants. Thus, the inventors employed EDTA Na 4 as a Chelating agent to negate the effect of divalent ions and also to stabilize the sulfate surfactants.
- Study I An EDTA Na 4 scan was done from 2wt% to 6wt% EDTA Na 4 . A clear solution was seen from 3 wt% EDTA Na 4 at room temperature, but all the samples turned cloudy at 100° C within 12 hr.
- Study III Again an EDTA Na 4 scan was done from 2 wt% to 4 wt% with 100% brine with the same filtered brine but this time the pH was lowered from 12 to around 10.5 after the addition of EDTA Na 4 (because the excess hydroxyl ions at high pH was precipitating with Ca ++ and Mg ++ before EDTA Na 4 can chelate with the divalent ions).
- Table 2 Phase behavior data recording sheet.
- Oil Solubilization ratio Volume of the oil solubilized / Volume of the surfactant
- Water Solubilization ratio Volume of water solubilized / Volume of surfactant
- FIGS. 3 and 4 further show the advantages of adding a sequestering agent/complexing agent (such as EDTA) for polymer stabilization when the solution includes Ca ++ , Fe ++ , and Fe ++ in the presence of air.
- a sequestering agent/complexing agent such as EDTA
- FIG. 3 shows stabilization of hydrolyzed poly acrylamide polymer where the harmful effect of Ca ++ was mitigated by the use of a sequestering agent (EDTA Na 4 ).
- EDTA Na 4 a sequestering agent
- the viscosities reflected for both solutions are relative.
- FIG. 4 shows the stabilization of poly acrylamide polymer (FP3630) in the presence of Fe ++ in argon as well as in the presence of oxygen.
- a complexing agent EDTA Na 4
- the concentration was a weight ratio of iron: EDTA equal to 1 :20.
- the words “comprising” (and any form of comprising, such as “comprise” and “comprises”), “having” (and any form of having, such as “have” and “has”), "including” (and any form of including, such as “includes” and “include”) or “containing” (and any form of containing, such as “contains” and “contain”) are inclusive or open-ended and do not exclude additional, unrecited elements or method steps.
- A, B, C, or combinations thereof refers to all permutations and combinations of the listed items preceding the term.
- A, B, C, or combinations thereof is intended to include at least one of: A, B, C, AB, AC, BC, or ABC, and if order is important in a particular context, also BA, CA, CB, CBA, BCA, ACB, BAC, or CAB.
- expressly included are combinations that contain repeats of one or more item or term, such as BB, AAA, MB, BBC, AAABCCCC, CBBAAA, CABABB, and so forth.
- the skilled artisan will understand that typically there is no limit on the number of items or terms in any combination, unless otherwise apparent from the context.
- compositions and/or methods disclosed and claimed herein can be made and executed without undue experimentation in light of the present disclosure. While the compositions and methods of this invention have been described in terms of preferred embodiments, it will be apparent to those of skill in the art that variations may be applied to the compositions and/or methods and in the steps or in the sequence of steps of the method described herein without departing from the concept, spirit and scope of the invention. All such similar substitutes and modifications apparent to those skilled in the art are deemed to be within the spirit, scope and concept of the invention as defined by the appended claims.
- United States Patent Application No. 20080312108 Compositions and process for recovering subterranean oil using green non-toxic biodegradable strong alkali metal salts of polymerized weak acids.
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- General Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (AREA)
- Materials Engineering (AREA)
- Oil, Petroleum & Natural Gas (AREA)
- Detergent Compositions (AREA)
- Lubricants (AREA)
- Production Of Liquid Hydrocarbon Mixture For Refining Petroleum (AREA)
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Abstract
Description
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2773065A CA2773065C (en) | 2009-09-10 | 2010-09-10 | Process of using hard brine at high alkalinity for enhanced oil recovery (eor) applications |
| CN201080040064.4A CN102762688B (en) | 2009-09-10 | 2010-09-10 | Use high alkalinity kieserohalosylvite water for the method improving recovery ratio application |
| BR112012005440A BR112012005440A2 (en) | 2009-09-10 | 2010-09-10 | composition for treating a formation having hydrocarbon, and methods for preparing a composition, and for treating a formation having hydrocarbon for recovering petroleum |
| AU2010292142A AU2010292142B2 (en) | 2009-09-10 | 2010-09-10 | Process of using hard brine at high alkalinity for enhanced oil recovery (EOR) applications |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US24119109P | 2009-09-10 | 2009-09-10 | |
| US61/241,191 | 2009-09-10 | ||
| US24302509P | 2009-09-16 | 2009-09-16 | |
| US61/243,025 | 2009-09-16 |
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| WO2011031920A2 true WO2011031920A2 (en) | 2011-03-17 |
| WO2011031920A3 WO2011031920A3 (en) | 2011-07-28 |
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| PCT/US2010/048353 Ceased WO2011031920A2 (en) | 2009-09-10 | 2010-09-10 | Process of using hard brine at high alkalinity for enhanced oil recovery (eor) applications |
| PCT/US2010/048393 Ceased WO2011031946A2 (en) | 2009-09-10 | 2010-09-10 | Compositions and methods for controlling the stability of ethersulfate surfactants at elevated temperatures |
Family Applications After (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2010/048393 Ceased WO2011031946A2 (en) | 2009-09-10 | 2010-09-10 | Compositions and methods for controlling the stability of ethersulfate surfactants at elevated temperatures |
Country Status (7)
| Country | Link |
|---|---|
| US (2) | US8188012B2 (en) |
| CN (2) | CN102695773B (en) |
| AR (1) | AR078418A1 (en) |
| AU (2) | AU2010292168B2 (en) |
| BR (2) | BR112012005440A2 (en) |
| CA (2) | CA2773065C (en) |
| WO (2) | WO2011031920A2 (en) |
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- 2010-09-10 WO PCT/US2010/048393 patent/WO2011031946A2/en not_active Ceased
- 2010-09-10 CA CA2773069A patent/CA2773069C/en active Active
- 2010-09-10 US US12/879,352 patent/US9109152B2/en active Active
- 2010-09-10 CN CN201080040088.XA patent/CN102695773B/en not_active Expired - Fee Related
- 2010-09-10 CN CN201080040064.4A patent/CN102762688B/en not_active Expired - Fee Related
- 2010-09-10 AU AU2010292142A patent/AU2010292142B2/en not_active Ceased
- 2010-09-10 BR BR112012005440A patent/BR112012005440A2/en not_active IP Right Cessation
- 2010-09-10 BR BR112012005431A patent/BR112012005431A2/en not_active IP Right Cessation
Cited By (12)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9803134B2 (en) | 2008-01-09 | 2017-10-31 | Akzo Nobel Chemicals International B.V. | Acidic aqueous solution containing a chelating agent and the use thereof |
| US9109152B2 (en) | 2009-09-10 | 2015-08-18 | Board Of Regents, The University Of Texas System | Compositions and methods for controlling the stability of ethersulfate surfactants at elevated temperatures |
| EP2576721A2 (en) | 2010-05-25 | 2013-04-10 | Board Of Regents, The University Of Texas System | Surfactant-less alkaline-polymer formulations for recovering reactive crude oil |
| EP2576721A4 (en) * | 2010-05-25 | 2013-11-20 | Univ Texas | SURFACE-FREE BASIC POLYMER FORMULATIONS FOR REACTIVE RAW PETROLEUM RECOVERY |
| AU2011258300B2 (en) * | 2010-05-25 | 2015-06-18 | Board Of Regents, The University Of Texas System | Surfactant-less alkaline-polymer formulations for recovering reactive crude oil |
| US9175207B2 (en) | 2010-05-25 | 2015-11-03 | Board Of Regents, The University Of Texas System | Surfactant-less alkaline-polymer formulations for recovering reactive crude oil |
| CN104508078A (en) * | 2012-08-03 | 2015-04-08 | 国际壳牌研究有限公司 | Enhanced oil recovery method using fluid containing sacrificial agent |
| CN104540921A (en) * | 2012-08-03 | 2015-04-22 | 国际壳牌研究有限公司 | Enhanced oil recovery methods using a fluid containing a sacrificial agent |
| WO2018013134A1 (en) * | 2016-07-15 | 2018-01-18 | Halliburton Energy Services, Inc. | Buffered friction reduced for subterranean operations |
| GB2564829A (en) * | 2016-07-15 | 2019-01-23 | Multi Chem Group Llc | Buffered friction reducer for subterranean operations |
| US11066596B2 (en) | 2016-07-15 | 2021-07-20 | Multi-Chem Group, Llc | Buffered friction reducer for subterranean operations |
| GB2564829B (en) * | 2016-07-15 | 2022-10-12 | Halliburton Energy Services Inc | Buffered friction reducer for subterranean operations |
Also Published As
| Publication number | Publication date |
|---|---|
| AU2010292168A1 (en) | 2012-03-15 |
| US9109152B2 (en) | 2015-08-18 |
| AR078418A1 (en) | 2011-11-09 |
| US20110059873A1 (en) | 2011-03-10 |
| WO2011031920A3 (en) | 2011-07-28 |
| CN102762688A (en) | 2012-10-31 |
| US20110059872A1 (en) | 2011-03-10 |
| CA2773069C (en) | 2018-04-17 |
| US8188012B2 (en) | 2012-05-29 |
| AU2010292142B2 (en) | 2014-11-06 |
| CN102695773B (en) | 2016-02-17 |
| CA2773065C (en) | 2018-04-10 |
| AU2010292142A1 (en) | 2012-03-15 |
| BR112012005440A2 (en) | 2016-04-12 |
| CN102695773A (en) | 2012-09-26 |
| CA2773069A1 (en) | 2011-03-17 |
| WO2011031946A3 (en) | 2011-07-28 |
| CN102762688B (en) | 2016-09-28 |
| AU2010292168B2 (en) | 2015-04-09 |
| WO2011031946A2 (en) | 2011-03-17 |
| BR112012005431A2 (en) | 2016-04-12 |
| CA2773065A1 (en) | 2011-03-17 |
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