Surfactants for Oil and Gas Production

Amino acid-derived surfactants address the inefficiencies of current oil extraction and hydrocarbon recovery methods by reducing surface tension and improving extraction efficiency, providing a cost-effective and environmentally friendly solution.

JP7785864B2Active Publication Date: 2025-12-15ADVANSIX RESINS & CHEMICALS LLC
View PDF 10 Cites 0 Cited by

Patent Information

Application Number
JP2024111711
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-11
Filing Date
2024-07-11
Publication Date
2025-12-15
Estimated Expiration
2041-03-09

AI Technical Summary

Technical Problem

Current methods for extracting corn oil from bio-based processes are energy-intensive and can adversely affect the nutritional and organoleptic properties of the final product, while existing surfactants for hydrocarbon recovery face inefficiencies in reducing interfacial tension and require extensive laboratory testing to find suitable components.

Method used

Formulations using derivatives of amino acids as surfactants with surface-active properties, characterized by low critical micelle concentration and ability to reduce surface tension, are employed for oil extraction and hydrocarbon recovery, including fracturing fluids and enhanced oil recovery processes.

Benefits of technology

The amino acid-derived surfactants effectively reduce surface tension, enhance oil extraction efficiency, and improve hydrocarbon recovery with minimal environmental impact, offering a cost-effective and efficient alternative to existing methods.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007785864000063
    Figure 0007785864000063
  • Figure 0007785864000064
    Figure 0007785864000064
  • Figure 0007785864000065
    Figure 0007785864000065
Patent Text Reader

Abstract

To provide surfactants for use in formulations and processes suitable for hydrocarbon recovery, and methods of recovering hydrocarbon.SOLUTION: Surfactants are for use in the production of oil and gas in the form of derivatives of amino acids that have surface-active properties. The amino acids may be natural or synthetic amino acids, or may be obtained via ring-opening reactions of molecules such as lactams, e.g., caprolactam. The amino acids may be functionalized to form compounds with surface-active properties. Characteristically, these compounds may have low critical micelle concentrations (CMCs) and / or the ability to reduce the surface tension of liquid.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 988,194, filed March 11, 2020, the entire contents of which are incorporated herein by reference.

[0002] The present disclosure relates to surfactants for use in the production and recovery of hydrocarbons, including oil and gas from wells and oil from bio-based processes. Such surfactants may include derivatives of amino acids that have surface active properties. [Background technology]

[0003] Surfactants (molecules with surface-active properties) are widely used in the commercial production of oil and natural gas. These formulations include a variety of liquids, emulsions, and foams used to recover hydrocarbons from the earth and from bio-based sources. Both oil and natural gas may be found in contact with water, or correspondingly, with water-soluble substrates, and surfactants may be included in the formulation to improve oil and / or gas recovery. Ideally, formulations for such production and recovery processes are easy to manufacture, utilize, and, where practical, reuse.

[0004] The surfactants can be nonionic, zwitterionic, cationic, or anionic. In principle, any surfactant class (e.g., cationic, anionic, nonionic, amphoteric) is suitable, but it is also possible that a formulation can include a combination of two or more surfactants from two or more surfactant classes.

[0005] Surfactants are often amphiphilic molecules with a relatively water-insoluble hydrophobic "tail" group and a relatively water-soluble hydrophilic "head" group. These compounds can adsorb at interfaces, such as those between two liquids, between gas and liquid, or between solid and liquid. In systems containing a relatively polar component and a relatively non-polar component, the hydrophobic tail preferentially interacts with the relatively non-polar component, while the hydrophilic head preferentially interacts with the relatively polar component. In the case of an interface between water and oil, the hydrophilic head preferentially extends into the water, while the hydrophobic tail preferentially extends into the oil. When added to an air-water interface, the hydrophilic head preferentially extends into the water, while the hydrophobic tail preferentially extends into the air. The presence of a surfactant disrupts at least some of the intermolecular interactions between water molecules, replacing at least some of the interactions with the surfactant, which is generally weaker. This results in a reduction in surface tension and may also act to stabilize the interface.

[0006] At sufficiently high concentrations, surfactants can form aggregates that act to limit the exposure of their hydrophobic tails to polar solvents. One such aggregate is a micelle. In a typical micelle, the molecules are arranged in a spherical fashion, with the surfactant's hydrophobic tail preferentially located inside the sphere and the surfactant's hydrophilic head preferentially located on the outside of the micelle, where the head preferentially interacts with more polar solvents. The effect a given compound has on surface tension and the concentration at which it forms micelles can be useful characteristics for defining a surfactant.

[0007] The development and production of crude oil from petroleum-bearing formations can involve up to three phases: primary recovery, secondary recovery, and tertiary (or enhanced) recovery. During primary recovery, natural energy (e.g., water, gas) and / or gravity present in the formation drives the oil into the production well. As oil is produced from the petroleum-bearing formation, the pressure and / or temperature in the formation may decrease. The process of extracting oil from the surface Artificial lift (such as pumps) may be used to raise the oil to the surface. Primary recovery typically produces only about 10 percent of a reservoir's original oil in place (OOIP). Secondary recovery is used to extend the productive life of an oil field and generally involves injecting a displacement fluid, such as water (waterflooding), to displace the oil and pump it into a production well. Secondary recovery methods typically recover an additional 20 to 40 percent of a reservoir's OOIP. However, even if waterflooding were continued indefinitely, more than half of the OOIP typically remains unrecovered. Factors contributing to this inefficiency include poor mixing of water and oil (due to the high interfacial tension between water and oil), capillary forces in the formation, formation temperature, salinity of water in the formation, composition of the oil in the formation, and poor flow of injected water through the formation. Primary and secondary recovery methods therefore leave significant amounts of oil in the reservoir.

[0008] Once much of the readily produced oil from an oil field has already been recovered, producers have used tertiary recovery or enhanced oil recovery (EOR) techniques to potentially recover 30 to 60 percent or more of the reservoir's OOIP. Three major categories of EOR have been commercially successful: thermal flooding, gas injection, and chemical flooding. Thermal flooding involves introducing heat (e.g., steam injection) to reduce the viscosity of crude oil and improve its fluidity in the reservoir. Gas injection involves using nitrogen, carbon dioxide, or other gases that diffuse into the reservoir to force additional oil into the production wellbore. Other gases dissolve in the oil, reducing its viscosity and improving its fluidity. Chemical flooding involves injecting surfactants (surfactant flooding) to reduce interfacial tensions that prevent or inhibit the movement of oil droplets through the reservoir, or polymers that allow existing oil in the formation to move more easily through the formation.

[0009] Chemical flooding can be used before, during, or after primary and / or secondary recovery methods. Chemical flooding can also complement other EOR methods. Surfactant flooding can include surfactant polymer (SP) flooding and alkaline surfactant polymer (ASP) flooding. In an SP flood, water and / or brine containing about 1 wt. % surfactant and about 0.1 wt. % polymer is injected into the reservoir. In an ASP flood, alkali is included in addition to the components used in the SP flood. ASP systems typically contain about 0.5-1 wt. % alkali, about 0.1-1 wt. % surfactant, and about 0.1-1 wt. % polymer. Typically, an SP or ASP flood is followed by a water flood and / or the injection of a displacement fluid, e.g., a polymer "push fluid." The choice between SP or ASP depends on factors such as the acid number of the oil to be recovered, the concentration of divalent cations in the reservoir brine, the economics of the project, and the ability to soften or desalt the water. The alkali scavenges divalent cations in the formation brine, thereby reducing surfactant adsorption during bulk formation displacement. The alkali also reacts with naphthenic acids naturally present in crude oil to produce anionic surfactants (sodium naphthenate soap) in situ in the formation. The use of relatively inexpensive alkali reduces surfactant residues and therefore reduces the amount of surfactant required, thereby lowering overall costs. The alkali may also assist in changing the wettability of the formation, making it more water-wet and improving swelling rates.

[0010] Another EOR method, "wettability alteration," involves introducing surfactants into the reservoir, sometimes in combination with altered electrolyte concentrations, to induce spontaneous swelling of water into the reservoir rock, thereby displacing adsorbed oil. This method does not necessarily require low interfacial tension between the oil and water phases or the formation of a microemulsion phase. It also does not require good flow efficiency of the displacement fluid, which may make it useful in carbonate reservoirs where fractures may be present and which typically have low conformance. The surfactants used in the SP and ASP flooding methods are also useful for wettability modification.

[0011] After being injected into an oil-bearing formation, a surfactant system captures crude oil and brine from the formation and forms a multiphase microemulsion in situ. Upon completion, the microemulsion is immiscible with the reservoir crude oil and exhibits a low interfacial tension (IFT) with the crude oil and brine. Commercial surfactant EOR processes achieve an ultra-low IFT (i.e., less than 10 mN / m) to mobilize detached crude oil droplets in the formation and create an oil bank where both oil and water flow as continuous phases. The IFT varies with variables such as salinity, surfactant composition, crude oil composition, and formation temperature. For anionic surfactants, the optimal salinity is the concentration at which the microemulsion solubilizes equal volumes of oil and water and exhibits approximately equal IFTs with the oil and brine. Ultra-low IFTs generally exist only within a narrow salinity range that partially overlaps with the optimal salinity for any given microemulsion.

[0012] As explained by P. Zhao et al. (“Development of High-Performance Surfactants for Difficult Oils.” SPE / DOE Improved Oil Recovery Symposium, Tulsa, Okla., April 2008, SPE 113432), “selecting surfactants for enhanced recovery applications requires laboratory testing with crude oil from the target reservoir and can involve significant efforts to find suitable surfactants and other components such as polymers, electrolytes, cosurfactants, and cosolvents.”

[0013] In the dry mill ethanol process, yellow dent corn is milled, liquefied, and sent to a fermenter. Enzymes and yeast are added to convert the starch to ethanol, which is then distilled, leaving a slurry called whole stillage. The whole stillage, including concentrated oil, is then separated via centrifugation into liquid and solid fractions called thin stillage and wetcake, respectively. A portion of the light stillage is recycled to aid in the liquefaction of milled corn, while the remainder is concentrated via evaporation to thick stillage (or syrup), which is dried and mixed with wet cake to form distillers dried grains with solubles (DDGS), which is sold as cattle feed and is a good source of protein.

[0014] Because of the thickening effect of dry milling on the oil, corn oil extracted from thick stillage has become a profitable by-product for the ethanol industry. Although removing the corn oil reduces the energy density of DDGS, some studies suggest that the high oil content of DDGS can interfere with milk production in dairy cows and lead to undesirable flank meat in pigs. Therefore, removing some of the oil could not only result in a valuable by-product, but also improve the quality of DDGS.

[0015] Current methods for extracting corn oil from strong stillage include solvent extraction (often with hexane) and decantation. Hexane extraction, while effective, is energy intensive and requires significant capital investment. Decantation requires little capital investment and can potentially be as effective as hexane extraction.

[0016] Decantation using centrifugation utilizes the density difference between the oil and aqueous phase to exert a buoyant force on the oil suspended in the solution. To ensure that the buoyancy is strong enough to overcome the interfacial interactions and surface friction acting on the oil, the individual oil droplets must be large enough to generate sufficient force. Current separation equipment used in the industry can separate particles as small as 20 micrometers in diameter. The success of current corn oil decantation is highly dependent on upstream processing conditions. Processes using high temperatures, high or low pH, smaller grinds, and long retention times tend to result in higher oil yields. Such harsh conditions would not be a preferred method for extracting oil for human or animal consumption, as such conditions can adversely affect the nutritional and organoleptic properties of the final product. Summary of the Invention

[0017] The present disclosure provides formulations useful for the extraction of oil and natural gas from wells and, in some applications, for the extraction of oil from mixtures of oil-based fuels and aqueous media used in bio-based processes for producing hydrocarbon fuels, such as biodiesel. These products can be formulated to include one or more surfactants from one or more surfactant classes disclosed herein. Surfactants can be used as emulsifiers, wetting agents, dispersants, and / or agents to enhance hydrocarbon recovery and / or separation from aqueous environments.

[0018] The present disclosure provides surfactants for use in oil and gas production that are in the form of derivatives of amino acids that have surface-active properties. The amino acids may be natural or synthetic amino acids, or may be obtained via ring-opening reactions of molecules such as lactams, e.g., caprolactam. The amino acids may be functionalized to form compounds with surface-active properties. Characteristically, these compounds may have a low critical micelle concentration (CMC) and / or the ability to reduce the surface tension of liquids.

[0019] The present disclosure provides a fracturing fluid formulation, which comprises at least one surfactant of formula I,

[0020] [ka]

[0021] In the formula, R 1 and R 2 may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3 is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; an optional counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide; and a polymeric or viscoelastic surfactant.

[0022] The present disclosure further provides a fluid for enhanced oil recovery processes, comprising at least one surfactant of formula I,

[0023] [ka]

[0024] In the formula, R 1 and R 2may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3 is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl; optionally present counterions associated with this compound, when present, selected from the group consisting of chloride, bromide, iodide, and hydroxide; linear, crosslinked, and / or block copolymers; and / or optionally viscoelastic surfactants; and optionally co-surfactants.

[0025] The present disclosure further provides a formulation for recovering biologically produced oil, comprising at least one surfactant of formula I,

[0026] [ka]

[0027] In the formula, R 1 and R 2 may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; an optional counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide; and water.

[0028] The present disclosure further provides a formulation for use in a mixture of fracturing fluid and oil or natural gas, comprising at least one surfactant of formula I:

[0029] [ka]

[0030] In the formula, R 1 and R 2 may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3 is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; an optional counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide; and water, and optionally a gas.

[0031] The above and other features of the present disclosure, as well as the manner in which they are achieved, will become more apparent and will be better understood by referring to the following description of the embodiments taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0032] [Figure 1] FIG. 1 shows a plot of surface tension versus concentration measured for Surfactant 1 at pH=7, as described in Example 1b, where the Y-axis represents surface tension (γ) in milliNewtons per meter (mN / m) and the X-axis represents concentration (c) in millimoles (mM). [Figure 2] FIG. 2 shows a plot of dynamic surface tension as a change in surface tension versus time for Surfactant 1, as described in Example 1c, where the Y-axis represents surface tension in milliNewtons per meter (mN / m) and the X-axis represents surface elapsed time in milliseconds (ms). [Figure 3] FIG. 3 shows a plot of surface tension versus concentration measured at pH=7 for surfactant 2, as described in Example 2b, where the Y-axis represents surface tension (γ) in millinewtons per meter (mN / m) and the X-axis represents concentration (c) in millimoles (mM). [Figure 4] FIG. 4 shows a plot of dynamic surface tension as a change in surface tension versus time for Surfactant 2, as described in Example 2c, where the Y-axis represents surface tension in milliNewtons per meter (mN / m) and the X-axis represents surface elapsed time in milliseconds (ms). [Figure 5] FIG. 5 shows a plot of surface tension versus concentration measured for surfactant 3 at pH=7, as described in Example 3b, where the Y-axis represents surface tension (γ) in milliNewtons per meter (mN / m) and the X-axis represents concentration (c) in millimoles (mM). [Figure 6]FIG. 6 shows a plot of dynamic surface tension as a change in surface tension versus time for Surfactant 3, as described in Example 3c, where the Y-axis represents surface tension in milliNewtons per meter (mN / m) and the X-axis represents surface elapsed time in milliseconds (ms). [Figure 7] FIG. 7 shows a plot of surface tension versus concentration measured for surfactant 4 at pH=7, as described in Example 4b, where the Y-axis represents surface tension (γ) in milliNewtons per meter (mN / m) and the X-axis represents concentration (c) in millimolar (mM). [Figure 8] FIG. 8 shows a plot of dynamic surface tension as a change in surface tension versus time for Surfactant 4, as described in Example 4c, where the Y-axis represents surface tension in milliNewtons per meter (mN / m) and the X-axis represents surface elapsed time in milliseconds (ms). [Figure 9] FIG. 9 shows a plot of surface tension versus concentration measured for surfactant 5 at pH=7, as described in Example 5b, where the Y-axis represents surface tension (γ) in milliNewtons per meter (mN / m) and the X-axis represents concentration (c) in millimoles (mM). [Figure 10] FIG. 10 shows a plot of dynamic surface tension as a change in surface tension versus time for Surfactant 5, as described in Example 5c, where the Y-axis represents surface tension in milliNewtons per meter (mN / m) and the X-axis represents surface elapsed time in milliseconds (ms). DETAILED DESCRIPTION OF THE INVENTION

[0033] As used herein, the phrase "within any range using these endpoints" literally means that any range may be selected from any two of the values ​​listed before the phrase, regardless of whether the values ​​are toward the low end of the list or toward the high end of the list. For example, a pair of values ​​may be selected from the two lower values, the two higher values, or a lower value and an upper value.

[0034] As used herein, the term "alkyl" means any saturated carbon chain, which may be straight or branched.

[0035] As used herein, the phrase "surface active" means that the associated compound is capable of lowering the surface tension of the medium in which it is at least partially dissolved and / or the interfacial tension with other phases, and thus may be at least partially adsorbed to air-liquid interfaces and / or other interfaces. The term "surfactant" may be applied to such compounds.

[0036] With respect to imprecision, the terms "about" and "approximately" may be used interchangeably and refer to a measurement that includes the stated measurement and any measurement that is reasonably close to the stated measurement. A measurement that is reasonably close to the stated measurement deviates from the stated measurement by a reasonably small amount that is understood and readily ascertained by one of ordinary skill in the relevant art. Such deviations may be attributed, for example, to measurement error or small adjustments made to optimize performance. If it is determined that a value for such a reasonably small difference would not be readily ascertained by one of ordinary skill in the relevant art, the terms "about" and "approximately" may be understood to mean plus or minus 10% of the stated value.

[0037] The present disclosure provides formulations for use in hydrocarbon production and / or recovery, including: fracturing fluids; enhanced oil recovery (IOR) injection fluids; formulations for increasing natural gas production; and formulations for bio-oil recovery from sources such as distillation residues, and plants, fruits, and nuts.

[0038] I. Fracturing Fluids To recover hydrocarbons from underground geological formations containing hydrocarbons, wells are drilled into the formation to provide a pathway for the hydrocarbons to travel from reservoirs in the formation to the surface. However, often a stimulation process called hydraulic fracturing is required to improve the pathway and recovery of hydrocarbons from oil or gas wells.

[0039] In hydraulic fracturing, specialized fluids are injected into a target formation at velocities exceeding those that can be diffused by the natural permeability of the formation rock. The specialized fluids used in this process are called fracturing fluids. This fluid causes pressure to build up until such pressure exceeds the strength of the formation rock. When this happens, the formation rock breaks, initiating what is called a "fracture." As the injection continues, the fracture grows in length, width, and height. The fractures created by the application of this stimulation method create a pathway for hydrocarbons to the wellbore.

[0040] Ideally, the fracturing fluid should minimize pressure drop in the piping in the wellbore during displacement and should have a suitable viscosity to carry the proppant material that prevents the fractures from closing in. Additionally, the fracturing fluid should have a minimal leak-off rate to avoid fluid leakage into the formation rock, thereby allowing fractures to develop and propagate and to degrade, particularly without leaving residue that could prevent the correct flow of hydrocarbons into the wellbore.

[0041] Some fracturing fluids include: (a) an aqueous medium; and (b) a thickening amount of a thickener composition comprising: (i) a water-soluble or water-dispersible copolymer having chemically attached hydrophobic pendant groups; (ii) a nonionic surfactant having a hydrophobic group capable of associating with the hydrophobic groups on the organic polymer; and (iii) a water-soluble electrolyte. In addition, the fluid preferably contains a stabilizing amount of thiosulfate. For example, a copolymer of acrylamide and dodecyl acrylate, in combination with a nonionic surfactant (10-14 HLB), was used to thicken a dilute aqueous solution of KCl and sodium thiosulfate, which had excellent properties for use as a high-temperature hydraulic fracturing fluid. See, for example, PCT Application WO 87 / 01758, entitled "Hydraulic Fracturing Process and Compositions."

[0042] Some fracturing fluids include an aqueous liquid medium with increased low-shear viscosity, which is achieved by dispersing in the aqueous medium (1) a water-soluble polymer with hydrophobic pendant groups, e.g., acrylamide dodecyl acrylate copolymer, and (2) a water-dispersible surfactant, e.g., sodium oleate or dodecyl polyethyleneoxyglycol monoether. See, for example, U.S. Patent No. 4,432,881, entitled "Water-Dispersible Hydrophobic Thickening Agent." At least some of the surfactants of the present invention listed herein may be included in these formulations.

[0043] Many fracturing fluids include water, a thickener, a polymer gel, and a surfactant. Alternatively, the fracturing fluid may include a viscoelastic surfactant instead of the polymer gel.

[0044] 1. Polymer gel The polymer gel may include one or more of a linear polymer, a cross-linked polymer, and / or a co-block polymer.

[0045] Useful linear polymers include, but are not limited to, guar, derivatives of guar, hydroxyethyl cellulose, derivatives of hydroxyethyl cellulose, and mixtures thereof.

[0046] Useful crosslinked polymers include, but are not limited to, polymers crosslinked with borate ions, zirconate ions, and / or titanate ions.

[0047] Useful coblock polymers include, but are not limited to, polyethylene oxide condensates of alkylphenols, such as the condensation products of alkylphenols having an alkyl group containing from about 6 to about 20 carbon atoms in a linear or branched configuration, with ethylene oxide, wherein the ethylene oxide is present in an amount of from about 1 to about 10 moles per mole of alkylphenol. The alkyl substituents in such compounds may be derived from polymerized propylene, diisobutylene, octane, or nonane.

[0048] 2. Surfactants The insecticide formulations of the present disclosure include one or more surfactants, also referred to as a surfactant system. The surfactant system is included to emulsify the composition and / or act as an adjuvant. The surfactant system includes at least one surfactant, which may be an amphoteric surfactant, zwitterionic surfactant, cationic surfactant, or nonionic surfactant, and, optionally, at least one other surfactant, which may be an amphoteric surfactant, zwitterionic surfactant, cationic surfactant, nonionic surfactant, or a combination thereof. Such surfactants should be physically and chemically compatible with the essential ingredients described herein or should not otherwise unduly impair product stability, aesthetics, or performance.

[0049] Surfactants suitable for use in the fracturing fluids of the present disclosure are one or more surfactants and / or co-surfactants of Formula I:

[0050] [ka]

[0051] In the formula, R 1 and R 2 may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; and optionally a counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide.

[0052] Suitable surfactants or co-surfactants may include any one or more of Surfactants 1-5 described herein.

[0053] The concentration of the surfactant system in the fracturing fluid formulation can be in the range of about 20% by weight or more, about 30% by weight or more, about 40% by weight or more, or about 50% by weight or less, about 60% by weight or less, about 70% by weight or less, or about 80% by weight or less, based on the weight of the composition, or any range using any of these endpoints.

[0054] 3. Thickener The fracturing fluid formulation may include a water-soluble polymer with hydrophobic pendant groups, for example, an acrylamide dodecyl acrylate copolymer.

[0055] 4. Viscoelastic surfactants Viscoelastic surfactants are generally defined as agents that are substantially free of polymers.Various viscoelastic surfactant fluids are disclosed in, for example, US Patent Nos. 4,615,825, 4,725,372, 4,735,731, Canadian Patent No. 1298697, US Patent Nos. 5,551,516, 5,964,295, 5,979,555 and 6,232,274.One known polymer-free aqueous fracturing fluid that contains viscoelastic surfactants is commercially available from the Schlumberger group of companies under the trademark ClearFRAC, which is a mixture of the quaternary ammonium salt N-erucyl-N,N-bis(2-hydroxyethyl)-N-methylammonium chloride with isopropanol and brine, and the brine preferably contains 3% by weight of ammonium chloride and 4% by weight of potassium chloride.

[0056] 5. Other additives Optional additives include compounds that can reduce or mitigate the effects of solids, such as sand, that may become entrained in recovered petroleum. These compounds include clay or sand stabilizers. Suitable clay or sand stabilizers include epoxy resins, multifunctional cationic polymers, poly(N-acrylamidomethyltriethylammonium chloride), or poly(vinylbenzyltrimethylammonium chloride).

[0057] Still other optional ingredients that may be added to the fluids of the present invention include, but are not limited to, corrosion inhibitors, oxygen scavengers, and biocides.

[0058] 6. Preparation method The method includes combining a surfactant or surfactant system, a polymer, and / or a viscoelastic surfactant with water. This step may also include adding any of the additives described above. The components and compounds described above may be added in any order and in any amount relative to one or more of each other, and in one or more individual steps, for example, all at once or in small increments. In some methods using fracturing fluids, large amounts of water are combined with the fluid as it is injected into the wellbore.

[0059] 7.How to use The fracturing fluid formulations of the present disclosure may be liquid at room temperature and atmospheric pressure, with the essential ingredients dissolved therein.

[0060] When a concentrated fracturing fluid is produced, it is intended to be mixed with an aqueous medium, which may occur before and / or during use of the fluid. The concentrated formulation may be added to the tank before, simultaneously with, or after the aqueous medium (water) is added to the tank. The concentrated fluid may be significantly diluted upon injection into the well if the well itself already contains water. In some cases, the fluid may be injected into the well, followed by the introduction of water, or in some cases, additional water.

[0061] The water content in the diluted crushed formulation of the present invention can be about 75% by weight or more, about 90% by weight or more, about 99% by weight or more, or about 99.9% by weight or more, based on the total weight of the diluted composition, and ultimately depends on the amount of water required to dilute the crushed raw ingredients in the concentrated pesticide formulation of the present disclosure to the desired concentration of the ready-to-use composition.

[0062] When mixed and diluted with an aqueous medium, the components of the fluid are intended to be uniformly distributed throughout the aqueous medium.

[0063] II. Formulations for Enhanced Oil Recovery (IOR) Crude oil and / or natural gas reside in the pores of certain underground rocks. Typically, initial or primary recovery of crude oil and / or natural gas utilizes pressure within the oil reservoir to pump the crude oil through a well. In most oil reservoirs, primary recovery processes extract only a small percentage of the crude oil present, typically about 10% to 30%.

[0064] Additional quantities of oil can be produced using water flooding or gas injection, known as secondary recovery. Secondary recovery is relatively inexpensive and effective at producing up to an additional 5% to 20% of the crude oil originally present in a reservoir. Secondary recovery involves applying pressure to the oil reservoir to pump the crude oil up through the well. However, primary and secondary recovery methods extract less than half of the oil originally present in the reservoir. Much of the remaining oil is discontinuous and held in the rock by very strong capillary forces. Due to the cost, many wells are left unused after the primary and secondary recovery processes are completed.

[0065] Further processes that increase the amount of oil extracted are sometimes referred to as enhanced oil recovery (EOR) or improved oil recovery (IOR) or tertiary recovery. EOR acts to improve oil displacement by reducing the interfacial tension (IFT) between oil and water and by restoring formation pressure for crude oil extraction. The three main types of EOR include chemical or alkaline flooding, displacement by miscible flooding using carbon dioxide (CO2) injection or hydrocarbon injection, and thermal recovery using steam flooding or combustion flooding.

[0066] Another method for improving oil recovery from wells is miscible gas flooding. Miscible gas flooding can be carried out using carbon dioxide to reduce the viscosity of crude oil present in underground formations in order to increase the flow of hydrocarbons to producing wells. Carbon dioxide, which acts as a solvent to reduce the viscosity of crude oil, is an effective and relatively inexpensive miscible gas. During the miscible carbon dioxide flooding procedure, the carbon dioxide is typically in the liquid and / or supercritical phase. A method used to increase the effectiveness of miscible gas flooding is to add a foaming surfactant to the process.

[0067] Miscible displacement involves introducing miscible gas into the oil reservoir, with carbon dioxide being the most commonly used gas because it reduces the viscosity of the oil and is cheaper than liquefied petroleum gas.

[0068] Thermal recovery involves introducing heat into an oil reservoir to reduce the viscosity of crude oil so that it flows toward the wellbore. During the thermal recovery process, crude oil undergoes physical and chemical changes due to the effect of the supplied heat. Physical properties such as viscosity, specific gravity, and IFT are changed. Chemical changes include different reactions such as pyrolysis and dehydrogenation. However, building large facilities and piping systems to produce and transport large amounts of CO2 is costly, and many oil fields are located in areas where building such facilities is not feasible. Furthermore, CO2 is primarily suitable for lighter oil fields. Thermal recovery is suitable only for certain oil fields, especially shallow, heavy oil flood fields, but injection can be followed by cheaper fluids such as viscous water, and then water alone. Injection of surfactants, viscous water, and water is involved in moving crude oil toward the production wellbore.

[0069] Yet another tertiary recovery process involves chemical or alkaline flooding. This type of EOR involves the use of an aqueous flood containing surfactants, polymers, and / or caustic compounds. ) is used. The aqueous flood reduces the IFT and forces the crude oil out of the rock. This crude oil, in the form of droplets trapped and immobilized by capillary forces, can be mobilized by injecting aqueous flood containing surfactants. The surfactants interact with the crude oil to form microemulsions that reduce the trapping capillary forces to very low levels. Once activated, the crude oil forms a growing bank that leaves little or no oil in the flooded portion of the reservoir. After the aqueous flood, injection can be followed by a cheaper fluid such as viscous water, and then water alone. The surfactant, viscous water, and water injection are involved in moving the crude oil to the producing well. Several patents and publications discuss surfactant-based enhanced oil recovery.

[0070] The present invention involves the use of various amphoteric surfactants, including but not limited to alkylamidopropyl betaine sulfonates, alkyldimethyl betaine sulfonates, alkylhydroxysultaine sulfonates, alkylsulfobetaine sulfonates, and alkylamine oxide sulfonates, as low-adsorption surfactants for applications including, but not limited to, IOR, drilling, viscoelastic surfactants, acidizing, fracturing, foaming, and production. The present invention involves the use of a sulfonating agent to react with the double bonds of certain amphoteric surfactants, including but not limited to, alkyleneamidopropyl betaines, alkylenedimethyl betaines, alkylenehydroxysultaines, alkylenesulfobetaines, and alkyleneamine oxides, to produce the corresponding sulfonated amphoteric surfactants. The sulfonated amphoteric surfactants have been found to impart extremely low interfacial tension (IFT), viscoelastic properties, compatibility with brines containing high salinity and divalent ions, and low adsorption to reservoir rocks. Some embodiments of the present invention involve the use of various amphoteric surfactants, including but not limited to alkylamidopropyl betaine sulfonates, alkyl dimethyl betaine sulfonates, alkyl hydroxysultaine sulfonates, alkyl sulfobetaine sulfonates, and alkylamine oxide sulfonates, as low-adsorption surfactants for applications including but not limited to IOR, drilling, viscoelastic surfactants, acidifying, fracturing, foaming, and production.

[0071] 1. Water-based injection fluid / carrier Aqueous carriers that may be used in various formulations include, but are not limited to, water, saltwater, river water, synthetic saltwater, and seawater. Saltwater often contains one or more salts, such as monovalent and / or divalent inorganic salts.

[0072] In many of the formulations of the present invention, about 40% by weight of the disclosed aqueous hydraulic fracturing compositions comprise a carrier (e.g., the carrier is present in the composition in an amount ranging from at least about 40% by weight to about 99.88% by weight, such as 40%, 50%, 60%, 70%, 80%, 90%, 95%, or more by weight). The carrier can be any suitable substance capable of dissolving the active feed ingredients and co-feed ingredients and capable of delivering the hydraulic fracturing composition to the hydraulic fracturing site. Water is a conventional carrier in liquid embodiments of the disclosed compositions. The hydraulic fracturing compositions can also be used in the form of gels, dips, foams, or other liquids. It may also be produced as a spray.

[0073] 2. Alkaline Alkalis, as known in the art, are in some cases used to form surfactants "in situ" that act synergistically with the injected surfactant. Examples of alkalis that may be used to practice the present invention include, but are not limited to, sodium hydroxide, sodium carbonate, sodium borate, and sodium silicate. Typically, alkalis are used at concentrations of 0 to about 5% by weight of the injection fluid, although more may be added if desired.

[0074] 3. Thickener Examples of thickening agents that may be used in the practice of the present invention include, but are not limited to, polyacrylamide, AMPS copolymers, xanthan gum, and other thickening agents commonly known in the art to increase the viscosity of injection fluids when necessary to control migration and flow efficiency. and other natural and synthetic gums and polymers used in the injection of fluids. Generally, thickeners are used at a concentration of 0 to about 1% by weight of the injection fluid, but may be used as needed.

[0075] 4. Co-solvent Cosolvents, as known in the art, may be used to reduce the viscosity of the injection fluid, improve compatibility during freeze-thaw cycles, or at high concentrations. Exemplary cosolvents include, but are not limited to, C1-C8 alcohols, C1-C8 alcohol alkoxylates, and glycerin. Cosolvents are used at concentrations of 0 to about 50% by weight of the injection fluid.

[0076] 5. Surfactants and co-surfactants Examples of surfactants and co-surfactants that can be used include one or more compounds selected from the group consisting of anionic surfactants, cationic surfactants, amphoteric surfactants, and nonionic surfactants. These have been used by those skilled in the art. Generally, co-surfactants are used at a concentration of 0 to about 5% by weight of the total injection liquid formulation, but more may be added as needed.

[0077] The IOR fluid formulations of the present invention include one or more surfactants, also referred to as a surfactant system. The surfactant system may be used as a dispersing agent or wetting agent. The surfactant system may also be used as an emulsifier component to form a stable emulsion of the liquid fungicide formulation when manufactured for agricultural use. The emulsifier component may also be used to form a stable emulsifiable concentrate. The surfactant system includes at least one surfactant, which may be an amphoteric surfactant, zwitterionic surfactant, cationic surfactant, or nonionic surfactant, and, optionally, at least one other surfactant, which may be an amphoteric surfactant, zwitterionic surfactant, cationic surfactant, nonionic surfactant, or a combination thereof.

[0078] Surfactants suitable for use in the fungicide formulations of the present disclosure are one or more surfactants and / or co-surfactants of Formula I:

[0079] [ka]

[0080] In the formula, R1 and R 2 may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3 is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; and optionally a counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide.

[0081] Suitable surfactants or co-surfactants may include any one or more of Surfactants 1-5 described herein.

[0082] The total amount of one or more surfactants in the fungicide formulation can be about 1% by weight or more, about 5% by weight or more, about 10% by weight or more, or about 15% by weight or less, about 20% by weight or less, about 25% by weight or less, about 30% by weight or less, about 35% by weight or less, or within any range using these endpoints.

[0083] 6. Co-emulsifiers or co-surfactants Some embodiments of the present invention involve the use of foaming surfactant compositions comprising surfactant mixtures of at least one surfactant according to the present disclosure, and at least one additional surfactant, such as a sulfosuccinamate surfactant, with at least one sulfosuccinate surfactant selected from monoester sulfosuccinate surfactants, diester sulfosuccinate surfactants, and blends thereof, as well as blends of these surfactant mixtures with additional surfactants, particularly alkanolamides, alkyl sulfates, alpha-olefin sulfonates, betaines, fatty acid soaps, fatty alcohol alkoxylates, ethoxylated sorbitan esters, and sulfobetaines, to increase the amount of stable foam that exhibits extended foam half-life in seawater, seawater / diesel mixtures, and saltwater. These surfactant mixtures may optionally contain a solvent, preferably water or an aqueous solution that also contains salt, a foam booster such as xanthan gum, an oil, which may be a hydrocarbon oil or a vegetable oil, and a thickener or preservative. Compared to prior art foaming compositions, these formulations provide improvements in terms of foam volume, foam stability, and foam longevity.

[0084] Some commercially desirable foaming surfactant compositions described herein provide improved foaming performance in a variety of aqueous media, including seawater (typically containing an average mass fraction of dissolved salts of about 3.5%, the largest portion of which is sodium chloride) and brine (i.e., aqueous salt solutions containing mass fractions of dissolved salts of monovalent and divalent cations, typically up to 12%, such as 0.1% to 11%). The improved surfactant compositions are functional at both ambient temperature (typically 23°C) and at lower temperatures, such as from 1°C to 23°C, or at higher temperatures, such as above 23°C to 95°C. This includes creating formulations that provide increased overall foam volume, improved foam stability, and maximum foam longevity (i.e., the foam half-life, the time required for 50% of the volume of the liquid medium to separate from the original foam). Additionally, the foaming surfactant compositions, as fully described herein, advantageously provide improved performance at lower concentrations, thereby reducing environmental and worker exposure, while also exhibiting a lower tendency to form oil-in-water emulsions, which also advantageously simplifies oil recovery during production.

[0085] III. Emulsions and / or Foams Aqueous foaming surfactant compositions can be prepared from this by adding water or a salt solution such as seawater or brine, optionally in a mixture with a hydrocarbon or hydrocarbon mixture, and an effective foaming amount of one or more foaming surfactant compositions described herein. A supercritical gas can also be used as the liquid medium, to which an effective foaming amount of the foaming surfactant composition described herein is added. The surfactant types detailed in the present invention include anionic surfactants, mixtures of two or more anionic surfactants, and combinations of any of these with cationic, amphoteric, zwitterionic, and nonionic surfactants, and the gases can include, for example, one or more of air, carbon dioxide, nitrogen, methane, or other natural and produced gases.

[0086] One method for improving oil recovery from a well is miscible gas flooding. Miscible gas flooding can be carried out using carbon dioxide to reduce the viscosity of crude oil present in underground formations in order to increase the flow of hydrocarbons to producing wells. Carbon dioxide, which acts as a solvent to reduce the viscosity of crude oil, is an effective and relatively inexpensive miscible gas. During the miscible carbon dioxide flooding procedure, the carbon dioxide is typically in a liquid and / or supercritical phase. A method used to increase the effectiveness of miscible gas flooding is to add a foaming surfactant to the process.

[0087] One aspect of the present invention includes a method for recovering oil or natural gas from a reservoir or underground oil- or gas-bearing geological formation during gas injection using a foaming surfactant composition according to the present invention. The method contemplated by the present invention includes contacting the oil or gas in the formation with one or more foaming surfactant compositions and an injection gas to aid in the recovery of the oil. The method contemplated herein for recovering oil or natural gas using the foaming surfactant compositions described herein can be carried out as part of any one or more industry-standard primary, secondary, or tertiary recovery processes. The foaming surfactant composition of the present invention may be used as a solution in a solvent or liquid vehicle, the solvent being selected from water, aqueous salt solutions, liquefied gases, supercritical gases, and mixtures thereof. Typically, the surfactant is incorporated into an aqueous medium to generate foam. When a salt solution is used as the solvent, an aqueous foaming surfactant composition is obtained, the combination of the foaming surfactant composition and water or salt solution preferably containing at least 0.2%, preferably up to 10%, mass fraction of dissolved inorganic salts, and foam can then be generated by intimately mixing with gas in a foam generator. Alternating slugs of gas and foaming surfactant composition are also pumped under pressure into underground petroleum wells, which often also contain water or salt solutions. Alternatively, bubbles can be generated in situ by introduction into a gas-containing geological formation, which typically results in a mass fraction of at least 0.2%, and preferably up to 10%, of dissolved inorganic salts.

[0088] The role that emulsions play in the recovery of hydrocarbons, such as oil and natural gas, includes, for example, foam, which can be used to enhance the recovery of gas or oil from a wellhead. In some embodiments, the emulsion can be formed with oil or gas to be recovered, for example, from a wellhead or from the product of a bioprocess. In some embodiments, the present invention clarifies that the disclosure herein can be used to generate emulsions, for example, foam. In still other embodiments, surfactants can be used to break up emulsions containing oil or gas to be recovered.

[0089] Foam can be formed by adding an effective amount of at least one anionic surfactant, such that the surfactant is present in an amount effective to generate an IFT as low as 10-mN / m in the high salinity foamed fluid composition. The anionic surfactant can be a surfactant of the present invention, or a sulfonate surfactant and / or sulfate surfactant. The foamed fluid composition can be used to perform operations including, but not limited to, gas lift operations, drilling operations, completion operations, stimulation operations, fracturing operations, injection operations, enhanced oil recovery operations, and combinations thereof.

[0090] Foamed fluids are used in a variety of applications in recovering hydrocarbons from underground reservoirs. Foamed fluids include fluids containing a base fluid, a foaming agent, and a gas, such as, but not limited to, nitrogen, carbon dioxide, air, methane, and the like. The base fluid may be foamed to reduce the amount of base fluid required, to reduce the amount of water drawn into the formation, and / or to improve the suspension of proppant in the fracturing fluid. A "foaming agent" is defined herein as an agent for promoting foaming of the base fluid when mixed with gas.

[0091] The foamed fluid may also be used to displace any fluids / formation fluids already present in the wellbore. It can also be used during stimulation operations (e.g. unloading gas wells). "Pre-existing fluid" is defined herein as a fluid present in a subterranean reservoir wellbore prior to the introduction of the foaming additive and / or foamable fluid composition into the subterranean reservoir wellbore. "Formation fluid" is defined herein as any fluid, including but not limited to, oil, natural gas, water, etc., produced from a subterranean formation containing oil. Although formation fluids may be considered pre-existing fluids, pre-existing fluids may not necessarily be formation fluids. For example, other downhole fluids may be injected into a subterranean reservoir wellbore, but are already present in the wellbore when the foaming additive is introduced into the wellbore. Thus, downhole fluids (e.g., drilling fluids, completion fluids, fracturing fluids, injection fluids, etc.) may be the "base fluid" when introducing the foaming additive and gas into a subterranean reservoir wellbore.

[0092] The base fluid for the foam fluid may be a drilling fluid, a completion fluid, a stimulation fluid, a fracturing fluid, an injection fluid, and combinations thereof. Non-limiting examples of uses of such fluids may include unloading an oil or gas well, enhanced oil recovery operations, heavy oil recovery, drilling operations, fracturing operations, pressure pumping, cementing, acidizing or other stimulation operations, etc.

[0093] A non-limiting example of a foam drilling fluid may be a fluid where the drilling operation requires a drilling fluid having a low density, for example, the density of the foam drilling fluid is about 2.0 ppg (about 0.24 g / cm 3 ) is approximately 8.0 ppg (approximately 0.96 g / cm 3 )

[0094] Drilling fluids are typically classified according to their base fluid. In water-based fluids, solid particles are suspended in a continuous phase consisting of water or brine. Oil may be emulsified in the water continuous phase. "Water-based fluid" is used herein to include fluids having an aqueous continuous phase, which may be all water or brine, an oil-in-water emulsion, or an oil-in-brine-water emulsion. A brine-based fluid is, of course, a water-based fluid, in which case the aqueous component is water-based. An oil-based fluid is the opposite or reverse of a water-based fluid.

[0095] The term "oil-based fluid" is used herein to include fluids having a non-aqueous continuous phase, where the non-aqueous continuous phase is oil, a non-aqueous fluid, a water-in-oil emulsion, a water-in-non-aqueous emulsion, a brine-in-oil emulsion, or a brine-in-non-aqueous emulsion. In the case of an oil-based fluid, solid particles are suspended in a continuous phase consisting of oil or another non-aqueous fluid. Water or brine can be emulsified in oil, so the oil is the continuous phase. In an oil-based fluid, the oil can consist of any oil or water-immiscible fluid, which may include, but is not limited to, diesel, mineral oil, esters, refinery cuts and blends, or alpha-olefins. As defined herein, oil-based fluids can also include synthetic-based fluids or muds (SBMs) produced synthetically rather than by refining from natural materials. Synthetic-based fluids often include, but are not necessarily limited to, olefin oligomers of ethylene, esters made from vegetable fatty acids and alcohols, ethers and polyethers made from alcohols and polyhydric alcohols, paraffins or aromatic hydrocarbons, alkyl benzenes, terpenes and other natural products, and brine-type mixtures thereof.

[0096] One type of drilling operation involves cementing, where cement is pumped into the correct location in the well. Cementing operations can be used to seal the annulus after the casing string has been placed, to seal lost circulation zones, or to install plugs into an existing wellbore that can be pushed off with directional tools or abandoned. Before cementing operations begin, the volume of cement to be placed in the wellbore is determined, as well as the physical properties, including density and viscosity, of the required slurry and hardened cement. Drilling fluid is displaced and the cement is placed in the wellbore. When primary cementing and even repair cementing operations are performed in wells, the cement slurries used must often be lightweight to prevent excessive hydrostatic pressures on the subsurface formations penetrated by the well. As a result, a variety of lightweight cement slurries, including foamed cement slurries, have been developed and used.

[0097] In addition to being lightweight, the foamed cement slurry also contains compressed gas, which improves the slurry's ability to maintain pressure and prevent formation fluids from entering the slurry during its transition time, i.e., the time it takes for the cement slurry to change from a true fluid to a hard, solidified mass. Surfactants other than those used as foaming agents can be used as foam stabilizers to prevent the foamed slurry from prematurely separating into slurry and gas components and can also be added to the slurry. The foamed cement slurry can have low dewatering characteristics.

[0098] Completion fluids have a variety of expected functions and properties. Completion fluids may be placed in a wellbore to facilitate final operations before production begins. Completion fluids are typically brines containing chlorides, bromides, and formates, but may be any non-damaging fluid with appropriate density and flow characteristics. Suitable salts for forming brines include, but are not limited to, sodium chloride, calcium chloride, zinc chloride, potassium chloride, potassium bromide, sodium bromide, calcium bromide, zinc bromide, sodium formate, potassium formate, ammonium formate, cesium formate, and mixtures thereof. Chemical compatibility of the completion fluid with the reservoir formation and fluids can be very important. Chemical additives, such as polymers and surfactants, introduced into brines used in well servicing fluids for various reasons, including, but not limited to, increasing the viscosity and density of the brine, are known in the art.

[0099] Service fluids, such as remediation fluids, stimulation fluids, and workover fluids, have several functions and properties necessary to repair a damaged wellbore. Such fluids may be used to break up emulsions that have already formed and to remove formation damage that may have occurred during the course of drilling, completion, and / or production operations. The terms "remediation operations" and "remediating" are used herein to refer to the lowering of the viscosity of gel damage and / or the partial or complete removal of any type of damage from a subterranean formation. Similarly, the term "remediation fluid" is defined herein to include any fluid that may be useful in a remediation operation. A stimulation fluid may be a treatment fluid prepared to stimulate, restore, or enhance the productivity of a well, such as, but not limited to, a fracturing fluid and / or a matrix stimulation fluid.

[0100] Hydraulic fracturing is a type of stimulation operation 30 that uses pumping speed and hydraulic pressure to fracture or crack underground formations in a process to enhance hydrocarbon recovery from the formation. Once a fracture is formed, a proppant with a high permeability relative to the permeability of the formation is pumped into the fracture to support the fracture's expansion. Even if the applied pumping speed and pressure are reduced or the formation is removed, the fracture or fracture cannot be completely closed or restored because the high-permeability proppant keeps the fracture open. The supported fracture or fracture provides a highly permeable pathway 40 connecting the production well to larger areas of the formation, enhancing hydrocarbon production.

[0101] Another type of stimulation operation is one in which an oil or gas well is "unloaded." In most gas wells, water and / or condensate are produced along with the gas. In mature gas wells, a decline in formation pressure and gas velocity65 causes the well to become "loaded" with liquid. Due to the difficulty of treating a liquid-loaded well with a higher condensate cut, operators use various techniques to prevent liquid loading in marginal gas wells. Such a method can be used.

[0102] Unloading an oil or gas well may be necessary when only a small percentage of the original reserves in place in the formation are recovered by primary production methods (i.e., using only initial formation energy to recover the crude oil), followed by secondary production methods such as waterflooding. After secondary recovery operations, average recovery rates are approximately 25-35% for oil fields and approximately 70% for gas fields. Gas and oil well production systems are generally limited in production due to oil and water loading in the flowlines.

[0103] Gas lift and / or deliquification of wells can be used to address liquid loading issues. This may allow for returning a depleted well to a continuous flow state, increasing the flow rate of an existing production well, restarting a well, and combinations thereof. Typically, as oil and / or gas is produced from a reservoir, the reservoir formation pressure decreases and production rates decline. Additionally, well production rates may decline over time due to completion issues. In some cases, the well can be difficult to restart. A commonly used method to deliquify or "unload" these wells is through the application of chemical foaming agents.

[0104] The use of foam generated in situ by alternating gas-surfactant (SAG) injection is an alternative to polymer drive in alkali / surfactant / polymer (ASP) enhanced oil recovery (EOR) processes. RF Li, et al., "Foam Mobility Control for Surfactant Enhanced Oil Recovery," SPE 113910, SPE / DOE Symposium on 20 Improved Oil Recovery, Tulsa, Okla., SPE Journal, March 2010.

[0105] Micellar, alkaline, soapy, and other materials can be used to reduce the interfacial tension between the oil and water in the reservoir and mobilize the oil present in the reservoir, while polymers such as polyacrylamide or polysaccharides can be used to improve the migration rate and flow efficiency, which are measures of the effectiveness of the EOR operation that depend on the volume of reservoir in contact with the injected fluid.

[0106] In another non-limiting embodiment of the method, the method may include unloading an oil or gas well in a subterranean oil-bearing formation by introducing a foamed fluid composition into the subterranean reservoir wellbore where fluid is already present. The foamed fluid composition may have or include a base fluid, a gas, at least one anionic surfactant, and at least one second surfactant selected from the group consisting of cationic surfactants, nonionic surfactants, zwitterionic surfactants, and combinations thereof. The at least one anionic surfactant is selected from the group consisting of sulfonate surfactants and / or sulfate surfactants, and the anionic surfactant comprises a C20-C24 carbon chain and an internal olefin. The foamed fluid composition has a salinity of 30,000 TDS or greater. The surfactant is present in an amount effective to foam the composition. The method further includes at least partially replacing fluid already present in the subterranean reservoir wellbore.

[0107] Also provided in another aspect is a foamable fluid composition having a base fluid, a gas, at least one anionic surfactant, and at least one second surfactant. The base fluid can be or can include an oil-based fluid, a water-based fluid, or a combination thereof. The anionic surfactant has a hydrophobic chain of at least 20 carbon atoms, and the anionic surfactant is a sulfonate surfactant, a sulfate surfactant, or a combination thereof. The anionic surfactant is present in the foamable fluid composition in an amount effective to obtain an IFT of about 10 mN / m to about 10 mN / m. The at least one second surfactant includes, but is not limited to, cationic surfactants, nonionic surfactants, zwitterionic surfactants, and combinations thereof. The foamable fluid composition The composition has a salinity of greater than 30,000 total dissolved solids (TDS).

[0108] In another non-limiting embodiment of the foamed fluid composition, the anionic sulfonate surfactant is C 20 ~C 24The amount of the at least one anionic surfactant, which may have or include a carbon chain and an internal olefin therein, is in the range of about 1% to about 50% by volume based on the total foamed fluid composition.

[0109] In one form, a method is provided that can include performing an operation with a foamed fluid composition, which can have or include a base fluid, a gas, and at least one anionic surfactant having a hydrophobic chain of at least 20 carbon atoms, the anionic surfactant being selected from the group consisting of sulfonates.

[0110] 1. Surfactants Surfactants suitable for use in the herbicide formulations of the present disclosure are one or more surfactants and / or co-surfactants of Formula I:

[0111] [ka]

[0112] In the formula, R 1 and R 2 may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; and optionally a counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide.

[0113] In particular, suitable surfactants or co-surfactants may include any one or more of Surfactants 1-5 described herein.

[0114] 2. Second surfactant at least one anionic surfactant having a hydrophobic chain of 12 to 24 carbon atoms, the anionic surfactant being selected from the group consisting of sulfonate surfactants, sulfate surfactants, and combinations thereof; and at least one second surfactant being selected from the group consisting of cationic surfactants, nonionic surfactants, zwitterionic surfactants, and combinations thereof.

[0115] 3. Base fluid Base fluids include drilling fluids, completion fluids, stimulation fluids, fracturing fluids, gas well deliquescence fluids, coiled tubing working fluids, recycled drilling fluids, service fluids, well cleaning fluids, an oil-based or water-based fluid selected from the group consisting of well intervention fluids, capillary coiled tubing fluids, and combinations thereof; good.

[0116] 4. Gas Any suitable gas known in the art may be mixed with any suitable liquid portion of the liquid formulation, including, but not limited to, air, nitrogen, carbon dioxide, natural gas, and any combination thereof.

[0117] IV. Fluids for Bio-oil Recovery Biobased oils include edible oils derived from natural sources, which are a major component of human nutrition and, until relatively recently, even a source of light and energy. Natural sources of oil include seeds and fruits, some of which are cultivated primarily for their oil production. Biobased oil sources that can be used for fuels, including biodiesel, include soybeans, natural and bioengineered algae. Any formulations and / or processes that can be used to increase the recovery rate and / or quality of the recovered oil would be beneficial.

[0118] Other sources of bio-based oils include distillation residues from the fermentation of feedstocks such as corn, and from the processing of oil-rich plants such as soybeans and algae. Some embodiments of the present invention include a formulation to aid in the extraction of emulsified oil from an oil-water emulsion. The composition may include a nonionic surfactant selected from alkoxylated vegetable oils, alkoxylated vegetable fats, alkoxylated animal oils, alkoxylated animal fats, alkyl polyglucosides, alkoxylated glycerols, and mixtures thereof. The composition may include silicon-containing particles. Several methods for recovering oil from corn-to-ethanol processes are also provided. These methods may include adding the composition to a process stream of the corn-to-ethanol process and extracting oil from the process stream.

[0119] Formulations for recovering edible oils contain only agents that are characterized as generally recognized as safe (GRAS) by regulatory agencies such as the US Department of Agriculture and the US Food and Drug Administration.

[0120] Bio-based oil sources that can be used for fuels, including biodiesel, include soybeans, natural and bio-engineered algae.

[0121] (New paragraph or part of the previous paragraph?) Most commercial corn oil is produced from the front-end fraction of corn germ during the wet-milling corn process. Recently, a new source of corn oil has emerged as a by-product of the dry-milling process used in the ethanol industry. Dry-milling is a process that requires less energy and capital investment than wet-milling. Corn oil captured at the tail-end of the dry-milling process is not suitable for food use but can be used as a feedstock for biodiesel.

[0122] 1.Aqueous component The aqueous component can include, for example, fresh water, seawater, and most commonly, the aqueous phase comprises water containing one or more inorganic salts.

[0123] 2. Supercritical gas Some of the bubbles of the present invention include a supercritical gas, such as carbon dioxide. Supercritical carbon dioxide (CO2) is a fluid state of gas in which the gas is held above its critical temperature and pressure. In this state, the gas exhibits some properties intermediate between those of a gas and that of a liquid. Supercritical carbon dioxide exists at temperatures above about 31.1°C and pressures above about 7.39 MPa.

[0124] 3. Surfactants Surfactants suitable for use in the herbicide formulations of the present disclosure are one or more surfactants and / or co-surfactants of Formula I:

[0125] [ka]

[0126] In the formula, R 1 and R 2may be the same or different and may be selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl may be optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3 is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; and optionally a counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide.

[0127] In particular, suitable surfactants or co-surfactants may include any one or more of Surfactants 1-5 described herein.

[0128] The surfactants described above may be combined with other surfactants, including, for example, surfaces of the sulfosuccinamate type, of the following formula: R-NX-CO-CHY 1 -CHY 2 -CO-OM 4+ In the formula, Y 1 is H and Y 2 (SO3M 3+ or Y 1 (SO3M 3+ ) and Y 2 is H. M 3+ and M 4+ are cations, which may be the same or different, from groups 1 and 2 of the Periodic Table of the Elements, consisting of alkali metals and alkaline earth metals, preferably Li + , Na+ , K. + from, and also ammonium NH 4+ wherein R is a linear, branched or cyclic aliphatic group having 8 to 24 carbon atoms, optionally containing one or more carbon-carbon double bonds, or a mixture of two or more such groups. X may be a hydrogen atom or an alkyl carboxylate group, -(CRR)-COOM. 2+ wherein R′ and R can both be H, or R is H and R is —CHCOOM 3+ where M 3+ and M + are cations, which may be the same or different, from groups 1 and 2 of the periodic table of the elements, consisting of alkali metals and alkaline earth metals, preferably Li, Na + , K. + and further ammonium NH. 3+ , M + , M 2+ , and M 4+ Particularly preferred alkali metal ions for are, independently of one another, sodium cations, Na + , and potassium cation, K + is.

[0129] Additional surfactants that may optionally be included in the separation aid compositions described herein include, for example, non- The surfactant may be an ionic surfactant, a cationic surfactant, or an anionic surfactant. The surfactant(s) may be a nonionic surfactant, such as ethoxylated castor oil, ethoxylated sorbitan ester, PEG, poloxamer, acetylenic glycol, or sulfonate, or a combination thereof. The nonionic surfactant may be, for example, a nonionic polyethylene glycol such as an ethoxylate of a carboxylic acid, an ethoxylate of a mono-, di-, or triglyceride, an ethoxylate of a mono-, di-, or triester of sorbitan, or an ethoxylate of a fatty alcohol. Ethoxylated sorbitan esters are commercially available as TWEEN® or Polysorbate series surfactants. Other suitable nonionic surfactants are mono-, di-, or triglycerides based on fatty acids having 12 to 22 carbon atoms, or mono-, di-, or triesters of sorbitan based on fatty acids having 12 to 22 carbon atoms. Commercial sources of nonionic surfactants that may be used in the separation aids of the present invention include, for example, Lumisorb from Lambent Technologies Corporation (Gurnee, Ill., USA). Polysorbates are included. The nonionic surfactant may be at least one poloxamer. Poloxamers may be nonionic triblock copolymers containing a hydrophobic polyalkylene oxide block central block flanked on both sides by hydrophilic polyalkylene oxide blocks. Food-grade poloxamers are commercially available. Commercially available sources of poloxamers include, for example, PLURONIC® copolymers from BASF Corporation (Florham Park, NJ, USA).

[0130] The water solubility of a surfactant, such as a nonionic surfactant, can be related to its hydrophilic-lipophilic balance (HLB) value or number. A nonionic surfactant can have an HLB value of at least about 6, or at least about 9, or at least about 12, or about 6 to 20, or about 7 to about 19, or about 8 to about 18, or about 9 to about 17, or about 10 to about 16, or other values. The water solubility of a nonionic surfactant can be related to its hydrophilic-lipophilic balance (HLB) value or number. HLB values ​​can be calculated by conventional methods. For example, the HLB value of a nonionic surfactant can be calculated by dividing the molecular weight percent of the hydrophilic portion of the nonionic surfactant by 5. For example, a nonionic surfactant having 80 moles of hydrophilic moieties (total) would have an HLB value calculated as 16 (i.e., 80 / 5=16). HLB values ​​greater than 20 are relative or comparative values.

[0131] Some formulations of the present invention may include one or more surfactants in an amount by weight of about 0% or more, about 2% or more, about 4% or more, about 6% or more, about 8% or more, or about 10% or less, about 12% or less, about 14% or less, about 16% or less, or within any range using these endpoints.

[0132] 4.Oil Oils that can be used in the practice of the present invention include alkoxylated vegetable oils selected from the group consisting of ethoxylated castor oil, ethoxylated soybean oil, ethoxylated palm kernel oil, ethoxylated almond oil, ethoxylated corn oil, ethoxylated canola oil, ethoxylated rapeseed oil, and ethoxylated coconut oil.

[0133] The oil contained in the separation aid shown may be, for example, a mineral oil, a triglyceride vegetable oil, a hydrocarbon oil, or any combination thereof. The mineral oil may be, for example, a white mineral oil or a mineral seal oil. Examples of mineral oils may be atmospheric residue obtained by distillation of crude oil, vacuum gas oil and vacuum residue obtained by vacuum distillation of atmospheric residue, hydrotreated oils thereof, thermal cracking oils, and / or mixtures thereof. Among these mineral oils, atmospheric residue, vacuum residue, and hydrotreated or thermal cracking products thereof are referred to as residues in the present invention. The glyceride vegetable oil can be, for example, triglyceride corn oil. The hydrocarbon oil can be, for example, white mineral oil, or any combination thereof. Commercial sources of oils that can be used in the separation aid of the present invention include, for example, Clarion White Mineral Oil 70, CITGO Petroleum (Houston, USA).

[0134] 5. Lecithin The lecithin used in the separation aid may be natural, modified, or synthetic. The lecithin that can be used in the present invention may be lecithin obtained from any plant, animal, or microbial source. Suitable lecithin starting materials are commercially available, including commercially available soybean lecithin products and egg yolk lecithin products. Lecithin can be obtained from natural sources such as egg yolk and plants such as soybeans, maize, and rapeseed, which are by-products of vegetable oil refining. Soybean oil is the largest commercially available source of lecithin. The composition of commercially available lecithin varies depending on the source, production method, and degree of purification, but in its purest form, it contains primarily phosphatides. Commercially available lecithin is a by-product of oil processing, obtained, for example, during degumming. For example, soybean lecithin is a complex mixture, containing phospholipids and triglycerides, along with small amounts of other components such as plant glycolipids, plant sterols, tocopherols, and fatty acids. The primary phospholipids present in plant lecithins are phosphatidylcholine, phosphatidylethanolamine, and phosphatidylinositol. Egg yolk lecithin contains phosphatidylcholine and phosphatidylethanolamine as the primary phospholipids. Lecithin can be extracted chemically (using hexane) or mechanically from readily available sources such as soybeans. Lecithin has low solubility in water. In aqueous solutions, the phospholipids can form either liposomes, bilayer sheets, micelles, or lamellar structures, depending on hydration and temperature. This results in a class of substances typically classified as amphiphilic. As used herein, "modified lecithin" refers to, but is not limited to, acetylated, hydroxylated, hydrogenated, hydrolyzed lecithin, chlorinated, brominated, iodinated, halogenated, phosphorylated, and sulfonated lecithin, as well as any other modification known to those skilled in the art. Acetylated lecithin can be produced using a carboxylic acid anhydride, such as acetic anhydride, for the acetylation of phospholipids from vegetable lecithin, as shown, for example, in U.S. Pat. No. 3,301,881, the entire contents of which are incorporated herein by reference.Enzymatic processes can be used to produce acetylated phospholipids from plant lecithins such as soybean lecithin, rapeseed lecithin, and animal lecithins such as egg yolk lecithin, or pure phosphatidylethanolamine isolated from the above lecithins. Commercially available lecithins can be acetylated using vinyl acetate as an acetylating agent in the presence of Mucor miehei lipase with 1,3-position specificity as a catalyst, as shown in U.S. Patent No. 6,403,344, the entire contents of which are incorporated herein by reference. In acetylated lecithins, for example, acetylation occurs primarily on the amino group of phosphatidylethanolamine. The degree of acetylation on modified lecithins, if used, can be partial or complete. The degree of acetylation on modified lecithin can be, for example, about 5% to 100%, or about 10% to about 99%, or about 15% to about 95%, or about 20% to about 90%, or about 25% to about 75%, etc. Lecithin also possesses numerous chemical functional groups that facilitate various chemical reactions. These groups include carbon-carbon double bonds, esters, phosphate esters, amines, and hydroxyl groups. Modifications can also result in transesterified lecithin. In addition, lecithin can be enzymatically modified. As used herein, "phosphatide" (phospholipid) refers to a mixture of, but is not limited to, phosphatidylcholine, phosphatidylethanolamine, phosphatidylserine, phosphatidylinositol, phosphatidic acid, N-acylphosphatidylethanolamine, and other related minor components. Commercially available sources of lecithin or modified lecithin that can be used in the separation aid of the present invention include, for example, Solec HR2B from Solae LLC (Memphis, Tenn., USA). can be.

[0135] 6. Silica For example, the separation aid may contain silica, such as fumed silica. The fumed silica may be hydrophobic or hydrophilic. Fumed silica is food grade and may be more desirable for this reason. Fumed silica may be included in the separation aid in an amount of, for example, about 1% to 10% by weight.

[0136] 7. Water-insoluble solvents and oils Suitable water-insoluble, immiscible organic solvents include those derived or made from natural non-petroleum sources, such as plants and animals, including vegetable oils, seed oils, and animal oils, such as N,N-dimethylcaprylamide (N,N-dimethyloctanamide), N,N-dimethylcapramide (N,N-dimethyldecanamide), and mixtures thereof, which are commercially available from BASF Corp. (Florham Park, NJ) as Agnique® AMD 810 and Agnique® AMD 10, from Clariant (Charlotte, NC) as Genegen® 4166, Genegen® 4231, and Genegen® 4296, from Stepan (Northfield, Ill.) as Hallcomid M-8-10 and Hallcomid M-10, and from AkzoNobel (Chicago, Ill.) as Amid DM10 and DM810. Further examples of naturally occurring organic solvents include morpholine amides of caprylic / capric fatty acids (C8 / C10), commercially available as JEFFSOL® AG-1730 Solvent from Huntsman International LLC (The Woodlands, Tex.).

[0137] Other suitable water-insoluble solvents may include aromatic hydrocarbons, mixed naphthalene and alkyl naphthalene fractions, aromatic solvents, especially alkyl-substituted benzenes such as xylene or propyl benzene fractions; C1-C6 esters of fatty acids derived from vegetable, seed, or animal oils, such as methyl caproate, methyl caprylate, methyl caprate, methyl laurate, methyl myristate, methyl palmitate, methyl stearate, methyl oleate, methyl linoleate, methyl linolenate; ketones such as isophorone and trimethylcyclohexanone (dihydroisophorone); acetates such as methyl, ethyl, propyl, butyl, pentyl, hexyl, or heptyl acetate; and cyclic alkyl carbonates, such as propylene carbonate and butylene carbonate available as JEFFSOL® alkylene carbonates from Huntsman (The Woodlands, Tex.), and dibutyl carbonate, also from Huntsman, as well as mixtures of any of the water-immiscible organic solvents described herein.

[0138] The water-insoluble solvent may be present in the herbicide formulation in an amount of about 0% by weight or more, about 10% by weight or more, about 20% by weight or more, or about 30% by weight or less, about 40% by weight or less, about 50% by weight or less, or within any range using these endpoints.

[0139] 8.Water Water may be present in formulations of the present disclosure to act both as an aqueous solvent and as a carrier for the ingredients in the described compositions. Some formulations of the present disclosure may contain water in an amount of about 200 g / L or more, about 300 g / L or more, about 400 g / L or more, or about 500 g / L or less, about 600 g / L or less, about 700 g / L or less, about 800 g / L or less, or within any range using these endpoints.

[0140] 9. Other additives Herbicide formulations may contain one or more additional compatible raw materials. These additional raw materials may include, for example, one or more insecticides or other raw materials that may be dissolved or dispersed in the composition and may be selected from acaricides, algicides, feeding deterrents, bird killers, fungicides, bird repellents, and chemosterilants. These compositions may also contain any other additional raw materials that provide functional benefits, such as, for example, antifoaming agents, antimicrobial agents, buffers, corrosion inhibitors, dispersants, dyes, fragrances, freezing point depressants, neutralizing agents, odorants, penetration aids, sequestering agents, stabilizers, adhesives, viscosity-adjusting additives, and water-soluble solvents.

[0141] When the formulation is used in combination with additional active ingredients, such as, the compositions described herein may be formulated as a premix concentrate with one or more other active ingredients and tank-mixed with the other active ingredients in water.

[0142] 10. Preparation method The formulations of the present disclosure may be prepared by the steps of: 1) preparing a solution of an organic solvent and a surfactant; 2) adding the solution prepared in step 1) to a concentrated aqueous solution of a water-soluble salt and mixing thoroughly to form a clear solution; and 3) adding any additional compatible active or inactive ingredients, as desired.

[0143] Alternatively, the formulations of the present disclosure may be prepared by the steps of: 1) providing an oil and optionally mixing it with an organic solvent and a surfactant; 2) adding the composition prepared in step 1) to a concentrated solution of a water-soluble salt and mixing thoroughly to form a clear solution; and 3) optionally adding any additional compatible active or inactive ingredients.

[0144] Suitable water-miscible ingredients that can be added to the formulation include, but are not limited to, water-soluble or water-insoluble dispersible surfactants, such as the surfactants of the present disclosure, water-insoluble active ingredients, and other inactive ingredients such as pH buffers, wetting agents, antifreeze agents, antifoaming agents, and biocides, as desired.

[0145] 11.How to use The solution can be added to a natural oil source, such as soybean mash or algal biomass, or to a synthetic oil source, such as distillation residue from a corn ethanol production process. Once mixed with the bio-oil source, it can be separated from the oil source by any means known in the art, including, for example, settling, heating, cooling, freezing, etc.

[0146] IV. Surfactants The present disclosure provides surfactants for use in agricultural products that are in the form of derivatives of amino acids. The amino acids may be natural or synthetic, or may be obtained from the ring-opening reaction of lactams such as caprolactam. The compounds of the present disclosure have been shown to have surface-active properties and can be used, for example, as surfactants and wetting agents. In particular, the present disclosure provides compounds of formula I:

[0147] [ka]

[0148] In the formula, R 1 and R 2 may be the same or different, and are selected from hydrogen and C1-C6 alkyl. alkyl, wherein C1-C6 alkyl is optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; and the terminal nitrogen is R 3 may be further substituted with, in which case R 3is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, wherein C1-C6 alkyl is optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; and an optional counterion associated with the compound, which, when present, is selected from the group consisting of chloride, bromide, iodide, and hydroxide.

[0149] One specific compound provided by the present disclosure is 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexan-1-aminium iodide (Surfactant 1), which has the formula:

[0150] [ka]

[0151] A second specific compound provided by the present disclosure is dodecyl 6-(dimethylamino)hexanoate N-oxide (Surfactant 2), which has the following formula:

[0152] [ka]

[0153] In the above structures, the "N→O" notation is intended to mean a non-ionic bonding interaction between the nitrogen and oxygen.

[0154] A third specific compound provided by the present disclosure is 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride (Surfactant 3), which has the formula:

[0155] [ka]

[0156] A fourth specific compound provided by the present disclosure is 4-((6-(dodecyloxy)-6-oxohexyl)dimethylammonio)butane-1-sulfonate (Surfactant 4), which has the following formula:

[0157] [ka]

[0158] A fifth specific compound provided by the present disclosure is 6-(dodecyloxy)-6-oxohexane-1-aminium chloride (Surfactant 5), which has the formula:

[0159] [ka]

[0160] These surfactants can be synthesized by various methods. One such method involves ring-opening a lactam to obtain an amino acid having an N-terminus and a C-terminus. The N-terminus can be reacted with one or more alkylating agents and / or acids to obtain a quaternary ammonium salt. Alternatively, the N-terminus can be reacted with an oxidizing agent to obtain an amine N-oxide. The C-terminus can be reacted with an alcohol in the presence of an acid to obtain an ester.

[0161] The amino acids may be natural or synthetic, or may be derived from the ring-opening reaction of a lactam such as caprolactam. The ring-opening reaction may be acid or alkali catalyzed, an example of an acid catalyzed reaction is shown in Scheme 1 below.

[0162] [ka]

[0163] The amino acid may have as few as one or as many as 12 carbons between the N-terminus and C-terminus. The alkyl chain may be branched or straight. The alkyl chain may be interrupted by nitrogen, oxygen, or sulfur. The alkyl chain may be further substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carboxyl, and carboxylate. The N-terminal nitrogen may be acylated or alkylated with one or more alkyl groups. For example, the amino acid may be 6-(dimethylamino)hexanoic acid.

[0164] Surfactant 1 can be synthesized as shown in Scheme 2 below. As shown, 6-aminohexanoic acid is treated with formaldehyde in formic acid under reflux to give 6-(dimethylamino)hexanoic acid. The free carboxylic acid is then treated with an alcohol such as dodecanol in the presence of p-toluenesulfonic acid (PTSA) in toluene to give the corresponding The ester, dodecyl 6-(dimethylamino)hexanoate, is obtained. The N-terminus is then alkylated with methyl iodide in the presence of sodium carbonate.

[0165] [ka]

[0166] Surfactant 2 can be synthesized as shown in Scheme 3 below. As shown, 6-aminohexanoic acid is treated with formaldehyde in formic acid under reflux to give 6-(dimethylamino)hexanoic acid. The free carboxylic acid is then treated with an alcohol such as dodecanol in the presence of p-toluenesulfonic acid (PTSA) in toluene to give the corresponding ester, dodecyl 6-(dimethylamino)hexanoate. The N-terminus is then oxidized with hydrogen peroxide to give the amine oxide.

[0167] [ka]

[0168] Surfactant 3 can be synthesized as shown in Scheme 4 below. As shown, 6-aminohexanoic acid is treated with formaldehyde in formic acid under reflux to give 6-(dimethylamino)hexanoic acid. The free carboxylic acid is then treated with an alcohol such as dodecanol in the presence of p-toluenesulfonic acid (PTSA) in toluene to give the corresponding The ester, dodecyl 6-(dimethylamino)hexanoate, is obtained. The N-terminus is then alkylated with methyl iodide in the presence of sodium carbonate.

[0169] [ka]

[0170] Surfactant 4 can be synthesized as shown in Scheme 5 below. As shown, 6-aminohexanoic acid is treated with formaldehyde in formic acid at reflux to give 6-(dimethylamino)hexanoic acid. The free carboxylic acid is then treated with an alcohol such as dodecanol in the presence of p-toluenesulfonic acid (PTSA) in toluene to give the corresponding ester, dodecyl 6-(dimethylamino)hexanoate. The N-terminus is then treated with 1,4-butanesultone in ethyl acetate at reflux to give the desired sulfonate.

[0171] [ka]

[0172] Surfactant 5 can be synthesized as shown in Scheme 6 below. Aminohexanoic acid is treated with an alcohol in the presence of p-toluenesulfonic acid (PTSA) in toluene to give the corresponding ester, dodecyl 6-aminohexanoate. The N-terminus is protonated with hydrochloric acid to give the desired hydrochloride salt.

[0173] [ka]

[0174] The compounds of the present disclosure exhibit surface active properties. These properties can be measured and expressed by various methods. One way to express surfactants is by the critical micelle concentration (CMC) of the molecule. CMC can be defined as the concentration of surfactant that forms micelles, and at a higher concentration, all additional surfactants are incorporated into the micelles.

[0175] As surfactant concentration increases, surface tension decreases. When the surface is completely covered with surfactant molecules, micelles begin to form. This point represents the CMC, or minimum surface tension. Adding more surfactant does not further affect the surface tension. The CMC can therefore be measured by observing the change in surface tension as a function of surfactant concentration. One such method for measuring this value is the Wilhelmy plate method. A Wilhelmy plate is typically a thin iridium-platinum plate attached to a balance by wires and positioned perpendicular to the air-liquid interface. The balance is used to measure the force exerted on the plate by wetting. This value is then used to calculate the surface tension (γ) according to Equation 1: Equation 1: γ = F / l cosθ where l is equal to the wetted perimeter (2w+2d, where w and d are the thickness and width of the plate, respectively), and for cosθ, the contact angle between the liquid and the plate is assumed to be 0 in the absence of an existing literature value.

[0176] Another parameter used to evaluate the performance of surfactants is dynamic surface tension. Dynamic surface tension is the value of the surface tension of a particular surface or interface over time. For liquids to which surfactants have been added, this may differ from the equilibrium value. Immediately after the surface is created, the surface tension is equal to that of the pure liquid. As mentioned above, surfactants reduce surface tension, so the surface tension decreases until it reaches an equilibrium value. The time required to reach equilibrium depends on the diffusion and adsorption rates of the surfactant.

[0177] One method for measuring dynamic surface tension is with a maximum bubble pressure tensiometer. This device measures the maximum internal pressure of a bubble formed in a liquid by a capillary. The measured value corresponds to the surface tension at a specific surface elapsed time, which is the time from the start of bubble formation to the maximum pressure. The dependence of surface tension on surface elapsed time can be measured by varying the rate at which the bubbles are generated.

[0178] Surface-active compounds can also be evaluated by their wetting ability on solid substrates, as measured by contact angle. When a droplet of liquid contacts a solid surface in a third medium, such as air, the liquid, gas, and A three-phase line forms between the surface and the solid. The angle between the surface and the unit vector of surface tension, which plays a role in the three-phase line and is tangent to the droplet, is expressed as the contact angle. The contact angle (also known as the wetting angle) is a measure of the wettability of a solid by a liquid. In complete wetting, the liquid spreads completely on the solid, and the contact angle is 0°. Wetting properties are typically measured at concentrations between 1 and 100 x CMC for any compound, but since it is not a concentration-dependent property, measurements of wetting properties may be measured at higher or lower concentrations.

[0179] In one method, an optical contact angle goniometer can be used to measure contact angles. This instrument uses a digital camera and software to determine the contact angle by analyzing the contour shape of a sedentary drop of liquid on a surface.

[0180] Potential applications for the surface-active compounds of the present disclosure include formulations for use as shampoos, hair conditioners, detergents, spot-free rinse solutions, floor and carpet cleaners, cleaners for graffiti removal, wetting agents for crop protection, adjuvants for crop protection, and wetting agents for aerosol spray coatings.

[0181] Those skilled in the art will appreciate that small differences between compounds can lead to significantly different surfactant properties, and therefore different compounds may be used with different substrates in different applications.

[0182] The following non-limiting examples are provided to illustrate the different properties of different surfactants. Table 1 below associates surfactant abbreviations with their corresponding chemical structures.

[0183] [Table 1]

[0184] Each of the five compounds is effective as a surfactant and is useful as a wetting or foaming agent, dispersing agent, emulsifier, and detergent, among other uses.

[0185] Surfactant 1, Surfactant 3, and Surfactant 5 are cationic. These surfactants are useful in both the applications mentioned above and in some further specialty applications, such as surface treatments, personal hair care products, and can also be used to create water-repellent surfaces.

[0186] Surfactant 4 is non-ionic and can be used in shampoos, detergents, hard surface cleaners, and a variety of other surface cleaning formulations.

[0187] Surfactant 5 is zwitterionic. These surfactants are useful as co-surfactants in all of the applications mentioned above.

[0188] The amount of a compound disclosed herein used in the formulation can be as low as about 0.001%, about 0.05%, about 0.1%, about 0.5%, about 1%, about 2%, or about 5% by weight, or as high as about 8%, about 10%, about 15%, about 20%, or about 25% by weight, or any range using any two of the above values.

[0189] Example Nuclear magnetic resonance (NMR) spectroscopy was performed on a Bruker 500 MHz spectrometer. The critical micelle concentration (CMC) was determined at 23 °C using a tensiometer (DCAT 11, DataPhysics Instruments GmbH) equipped with a Pt-Ir plate by the Wilhelmy plate method. The dynamic surface tension was determined at 23 °C using a maximum bubble pressure tensiometer (Kruss BP100, Kruss GmbH). The contact angle was determined using an optical contact angle goniometer (OCA 15 Pro, DataPhysics GmbH) equipped with a digital camera.

[0190] Example 1a: Synthesis of 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexane-1-aminium iodide (surfactant 1) 6-(Dimethylamino)hexanoic acid (11.99 g, 75.36 mmol) was dissolved in toluene (50 mL) in a round-bottom flask equipped with a Dean-Stark trap. Next, dodecanol (12.68 g, 75.36 mmol) and p-toluenesulfonic acid monohydrate (PTSA) (14.33 g, 75.36 mmol) were added. The reaction was heated to reflux for 24 hours until no water was observed in the Dean-Stark trap. The solvent was removed under vacuum, and the resulting solid was washed with hexane. The solid was dissolved in dichloromethane (200 mL) and washed with saturated sodium carbonate to give dodecyl 6-(dimethylamino)hexanoate in 51% yield. 1H NMR(DMSO)δ 4.00(t,J=6.5Hz,2H),2.27(t,J=7.3Hz,2H),2.13-2.16(m,2H),2.01(s,6H),1.54-1.53(m,6H),1.27-1.18(m,20H),0.86(t,3H).

[0191] Dodecyl 6-(dimethylamino)hexanoate (1.0 g, 3.05 mmol) was dissolved in acetonitrile (10 mL). Sodium carbonate (0.388 g, 3.66 mmol) was then added, and the reaction was stirred at room temperature for 10 minutes. Methyl iodide (0.57 mL, 9.16 mmol) was added, and the reaction mixture was heated to 40° C. for 24 hours and then cooled to room temperature. The mixture was filtered and concentrated to give 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexan-1-aminium iodide as a yellow solid in 92% yield. 1 H NMR (DMSO)δ 4.00 (t,J=6.7Hz,2H),3.30-3.22(m,2H),3.04(s,9H),2.34(t,J=7.4Hz,2H),1.7 0-1.63(m,2H),1.62-1.46(m,4H),1.31-1.20(m,20H),0.86(t,J=6.9Hz,3H).

[0192] Example 1b: Identification of the critical micelle concentration (CMC) of surfactant 1 The critical micelle concentration (CMC) was determined. From the change in surface tension with concentration in water, the CMC was determined to be approximately 1 mmol. The plateau value of the minimum surface tension achievable with this surfactant is approximately 33 mN / m, i.e., 33 mN / m ± 3.3 mN / m. Figure 1 is a plot of these results, showing surface tension versus concentration. The plot shows that the surface tension is approximately 34 mN / m at the CMC and approximately 33.8 mN / m at concentrations above 1.0 mmol.

[0193] Example 1c: Determining the dynamic surface tension of surfactant 1 Dynamic surface tension was determined with a maximum bubble pressure tensiometer, which measures the change in surface tension of a newly created air-water interface over time. Figure 2 shows a plot of the results as surface tension versus time, showing that the surface tension changed from approximately 55.5 mN / m to approximately 39.9 mN / m over the time interval from 1 ms to 75 ms. In the time interval from 75 ms to 50,410 ms, the surface tension decreases slowly from about 39.9 mN / m to about 34 mN / m, asymptotically approaching the saturated value of the surface tension at the CMC.

[0194] Example 1d: Identification of the wetting properties of surfactant 1 In addition to surface tension and surface kinetics, the wetting properties of the compounds were tested on various surfaces. For example, hydrophobic substrates such as polyethylene-HD exhibit surface wetting with a contact angle of 32°. On oleophobic and hydrophobic substrates such as Teflon®, the measured contact angle was 67.1°, much lower than that of water (Table 2).

[0195] [Table 2]

[0196] Example 2a: Synthesis of dodecyl 6-(dimethylamino)hexanoate N-oxide (surfactant 2) 6-(Dimethylamino)hexanoic acid (11.99 g, 75.36 mmol) was dissolved in toluene (50 mL) in a round-bottom flask equipped with a Dean-Stark trap. Next, dodecanol (12.68 g, 75.36 mmol) and p-toluenesulfonic acid monohydrate (PTSA) (14.33 g, 75.36 mmol) were added. The reaction was heated to reflux for 24 hours until no water was observed in the Dean-Stark trap. The solvent was removed under vacuum, and the resulting solid was washed with hexane. The solid was dissolved in dichloromethane (200 mL) and washed with saturated sodium carbonate to give dodecyl 6-(dimethylamino)hexanoate in 51% yield. 1 H NMR(DMSO)δ 4.00(t,J=6.5Hz,2H),2.27(t,J=7.3Hz,2H),2.13-2.16(m,2H),2.01(s,6H),1.54-1.53(m,6H),1.27-1.18(m,20H),0.86(t,3H).

[0197] Dodecyl 6-(dimethylamino)hexanoate (1.0 g, 3.05 mmol) was dissolved in distilled water (80 mL). Hydrogen peroxide (50% solution, 1.04 g, 30.5 mmol) was added. The reaction was heated to reflux for 12 hours, and then the solvent was removed in vacuo. The resulting solid was washed with acetone to give the desired N-oxide in 90% yield. 1 H NMR(500MHz,DMSO)δ 4.00(t,J=6.6Hz,2H),3.30-3.26(m,2H),3.18(s,6H),2.31(t,J=7.4Hz,2H),1 .76-1.73(m,2H),1.54-1.57(m,4H),1.30-1.24(m,22H),0.86(t,J=6.9Hz,3H) Example 2b: Identification of the critical micelle concentration (CMC) of surfactant 2 The critical micelle concentration (CMC) was determined. From the change in surface tension with concentration in water, the CMC was determined to be approximately 0.08 mmol. The plateau value of the minimum surface tension achievable with this surfactant is approximately 28 mN / m, i.e., 28 mN / m ± 2.8 mN / m. Figure 3 is a plot of these results, showing surface tension versus concentration. Plot of Results Therefore, the surface tension at the CMC is approximately 30 mN / m or less. The plot also shows that at concentrations of 0.08 mmol or greater, the surface tension is 30 mN / m or less.

[0198] Example 2c: Determining the dynamic surface tension of surfactant 2 Dynamic surface tension was determined using a maximum bubble pressure tensiometer, which measures the change in surface tension of a newly created air-water interface over time. Figure 4 shows a plot of surface tension versus time, showing that the compound fully saturated the surface in approximately 7.6 seconds. As can be seen from the plot, the dynamic surface tension is below 40 mN / m for surface dwell times of over 4900 ms.

[0199] Example 2d: Identification of the wetting properties of surfactant 2 In addition to surface tension and surface kinetics, the wetting properties of the compounds were tested on various surfaces. For example, hydrophobic substrates such as polyethylene-HD exhibit surface wetting with a contact angle of 39.3°, which is significantly lower than that of water. On oleophobic and hydrophobic substrates such as Teflon, the measured contact angle was 57.4°, significantly lower than that of water (Table 3).

[0200] [Table 3]

[0201] Example 3a: Synthesis of 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride (surfactant 3) 6-(Dimethylamino)hexanoic acid (11.99 g, 75.36 mmol) was dissolved in toluene (50 mL) in a round-bottom flask equipped with a Dean-Stark trap. Next, dodecanol (12.68 g, 75.36 mmol) and p-toluenesulfonic acid monohydrate (PTSA) (14.33 g, 75.36 mmol) were added. The reaction was heated to reflux for 24 hours until no water was observed in the Dean-Stark trap. The solvent was removed under vacuum, and the resulting solid was washed with hexane. The solid was dissolved in dichloromethane (200 mL) and washed with saturated sodium carbonate to give dodecyl 6-(dimethylamino)hexanoate in 51% yield. 1 H NMR(DMSO)δ 4.00(t,J=6.5Hz,2H),2.27(t,J=7.3Hz,2H),2.13-2.16(m,2H),2.01(s,6H),1.54-1.53(m,6H),1.27-1.18(m,20H),0.86(t,3H).

[0202] Dodecyl 6-(dimethylamino)hexanoate (100 mg, 0.305 mmol) was dissolved in water (10 mL). Concentrated hydrochloric acid (11.14 mg, 0.305 mmol) was added.

[0203] Example 3b: Identification of the critical micelle concentration (CMC) of surfactant 3 The critical micelle concentration (CMC) was investigated. The CMC was calculated from the surface tension that changes with the concentration in water. The CMC was determined to be approximately 1.4 mmol. The minimum surface tension plateau achievable with this surfactant is approximately 30 mN / m, i.e., 30 mN / m ± 3 mN / m. Figure 5 is a plot of these results, showing surface tension versus concentration. The resulting plot shows that the surface tension at the CMC is approximately 30 mN / m or less. The plot also shows that at concentrations of 2.7 mmol or greater, the surface tension is 33 mN / m or less.

[0204] Example 3c: Determining the dynamic surface tension of surfactant 3 Dynamic surface tension was determined using a maximum bubble pressure tensiometer, which measures the change in surface tension over time at a newly created air-water interface. Figure 6 shows a plot of surface tension versus time, showing that over the time interval of 1 to 100 ms, the surface tension rapidly decreases from approximately 50 mN / m to approximately 40 mN / m. Over the time interval of 100 to 50,000 ms, the surface tension decreases more slowly from 40 mN / m to approximately 34 mN / m, asymptotically approaching the saturated value of surface tension at the CMC.

[0205] Example 3d: Identification of the wetting properties of surfactant 3 In addition to surface tension and surface kinetics, the wetting properties of the compounds were tested on various surfaces. For example, hydrophobic substrates such as polyethylene-HD exhibit a surface wetting contact angle of 42.5°. On oleophobic and hydrophobic substrates such as Teflon®, the measured contact angle was 66.6°, much lower than that of water (Table 4).

[0206] [Table 4]

[0207] Example 4a: Synthesis of 4-((6-(dodecyloxy)-6-oxohexyl)dimethylammonio)butane-1-sulfonate (surfactant 4) 6-(Dimethylamino)hexanoic acid (11.99 g, 75.36 mmol) was dissolved in toluene (50 mL) in a round-bottom flask equipped with a Dean-Stark trap. Next, dodecanol (12.68 g, 75.36 mmol) and p-toluenesulfonic acid monohydrate (PTSA) (14.33 g, 75.36 mmol) were added. The reaction was heated to reflux for 24 hours until no water was observed in the Dean-Stark trap. The solvent was removed under vacuum, and the resulting solid was washed with hexane. The solid was dissolved in dichloromethane (200 mL) and washed with saturated sodium carbonate to give dodecyl 6-(dimethylamino)hexanoate in 51% yield. 1H NMR(DMSO)δ 4.00(t,J=6.5Hz,2H),2.27(t,J=7.3Hz,2H),2.13-2.16(m,2H),2.01(s,6H),1.54-1.53(m,6H),1.27-1.18(m,20H),0.86(t,3H) Dodecyl 6-(dimethylamino)hexanoate (1.0 g, 3.05 mmol) was dissolved in ethyl acetate (30 mL). 1,4-butanesultone (0.62 g, 4.57 mmol) was then added and the mixture was heated to reflux for 12 hours. The reaction was allowed to cool to room temperature. Cooled and solvent removed in vacuo. 1H NMR(DMSO)δ 4.00(t,J=6.7Hz,2H),3.29-3.15(m,4H),2.97(s,6H),2.47(t,J=7.4Hz,2H),2.33(t,J=7. 4Hz, 2H), 1.81-1.70 (m, 2H), 1.66-1.55 (m, 6H), 1.32-1.23 (m, 20H), 0.86 (t, J=6.9Hz, 3H).

[0208] Example 4b: Identification of the critical micelle concentration (CMC) of surfactant 4 The critical micelle concentration (CMC) was determined. From the change in surface tension with concentration in water, the CMC was determined to be approximately 0.1 mmol. The plateau value of the minimum surface tension achievable with this surfactant is approximately 38 mN / m, i.e., 38 mN / m ± 3.8 mN / m. Figure 7 is a plot of these results, showing surface tension versus concentration. The resulting plot shows that the surface tension is approximately 38 mN / m at the CMC, and at concentrations of 1 mmol or greater, the surface tension is 37 mN / m or less.

[0209] Example 4c: Determining the dynamic surface tension of surfactant 4 Dynamic surface tension was determined using a maximum bubble pressure tensiometer, which measures the change in surface tension of a newly created air-water interface over time. Figure 8 shows a plot of surface tension versus time, indicating that the compound fully saturated the surface in approximately 1 second. From the plot, the dynamic surface tension is below 40.5 mN / m for surface dwell times of 4000 ms or more.

[0210] Example 4d: Identification of the wetting properties of surfactant 4 In addition to surface tension and surface kinetics, the wetting properties of the compounds were tested on various surfaces. For example, hydrophobic substrates such as polyethylene-HD exhibit a surface wetting contact angle of 46.5°. On oleophobic and hydrophobic substrates such as Teflon®, the measured contact angle was 62.7°, much lower than that of water (Table 5).

[0211] [Table 5]

[0212] Example 5a: Synthesis of 6-(dodecyloxy)-6-oxohexane-1-aminium chloride (surfactant 5) 6-Aminohexanoic acid (5.0 g, 38.11 mmol) was dissolved in toluene (50 mL) in a round-bottom flask equipped with a Dean-Stark trap. Dodecanol (6.41 g, 38.11 mmol) and p-toluenesulfonic acid monohydrate (PTSA) (7.24 g, 38.11 mmol) were then added. The reaction was heated to reflux for 24 hours until no water was observed in the Dean-Stark trap. The solvent was removed in vacuo, and the resulting solid was washed with hexane. The solid was dissolved in dichloromethane (200 mL) and washed with saturated sodium carbonate to give dodecyl 6-aminohexanoate in 40% yield. obtained at a rate.

[0213] Dodecyl 6-aminohexanoate (100 mg, 0.363 mmol) was dissolved in water (10 mL), and then concentrated hydrochloric acid (13.23 mg, 0.363 mmol) was added.

[0214] Example 5b: Identification of the critical micelle concentration (CMC) of surfactant 5 The critical micelle concentration (CMC) was determined. From the change in surface tension with concentration in water, the CMC was determined to be approximately 0.75 mmol. The plateau value of the minimum surface tension achievable with this surfactant is approximately 23 mN / m, i.e., 23 mN / m ± 2.3 mN / m. Figure 9 is a plot of these results, showing surface tension versus concentration. The resulting plot shows that the surface tension is approximately 23 mN / m at the CMC, and at concentrations of 0.7 mmol or greater, the surface tension is 23.2 mN / m or less.

[0215] Example 5c: Determination of the dynamic surface tension of surfactant 5 Dynamic surface tension was determined using a maximum bubble pressure tensiometer, which measures the change in surface tension over time at a newly created air-water interface. Figure 10 shows a plot of surface tension versus time, indicating that the compound fully saturated the surface in approximately 1.5 seconds. From the plot, the dynamic surface tension is below 28.5 mN / m for a surface dwell time of 3185 ms or more.

[0216] Example 5d: Identification of the wetting properties of surfactant 5 In addition to surface tension and surface kinetics, the wetting properties of the compounds were tested on various surfaces. For example, hydrophobic substrates such as polyethylene-HD exhibit very low surface wetting with a contact angle of 16.6°. On oleophobic and hydrophobic substrates such as Teflon, the measured contact angle was 39.3°, much lower than that of water (Table 6).

[0217] [Table 6]

[0218] Example 6 Fracturing fluid One composition of the present invention comprises a mixture of water, a water-soluble block copolymer, a nonionic surfactant, and an inorganic salt containing monovalent, divalent, and / or trivalent ions. A preferred composition of the present invention contains a mixture of water and a water-soluble block copolymer. The relative amounts of the above-listed components in the composition can vary. Typically, the composition has, on a wet basis, 0.05 to 20% by weight of the water-soluble block copolymer, 0.01 to 10% by weight of the nonionic surfactant, and 0.1 to 20% by weight of the inorganic salt containing monovalent, divalent, and / or trivalent ions. The water-soluble monovalent and / or divalent electrolytes are typically present in an amount of about 1 to about 15% by weight based on the weight of the aqueous composition (wet basis). or about 1 to 10 weight percent.

[0219] Some compositions of the present invention comprise a mixture of water, a water-soluble block copolymer, and a preferred composition of the present invention comprises water, a water-soluble block copolymer, an inorganic salt, and a nonionic surfactant, and is essentially free of anionic surfactants.

[0220] The relative amounts of the above-listed components in the composition can vary. Typically, the composition will have, on a wet basis, 0.05 to 20 weight percent of the water-soluble block copolymer, 0.01 to 10 weight percent of the nonionic surfactant, and 0.1 to 20 weight percent of the inorganic salt containing monovalent and / or divalent and / or trivalent ions. The water-soluble monovalent and / or divalent electrolytes are typically used in an amount of about 1 weight percent to about 15 weight percent or about 1 to 10 weight percent, based on the weight of the aqueous composition (wet basis).

[0221] The relative amounts of the above-listed components in the composition can vary, but typical ranges for the water-soluble block copolymer and nonionic surfactant for the overall composition of some embodiments of the present invention, on a wet basis, are listed in Table 7.

[0222] [Table 7]

[0223] The water-soluble inorganic salt contains monovalent and / or divalent and / or trivalent ions. Typically, an inorganic salt concentration of about 0.01 weight percent to about 20 weight percent, or about 1 weight percent to about 15 weight percent, based on the weight of the aqueous medium, is used, for example, about 1 to 10 weight percent.

[0224] Example 7: Fracturing fluid Non-limiting examples of formulations of the present invention include the compositions listed in Table 8.

[0225] [Table 8]

[0226] Example 9: Corn Oil Demulsification Non-limiting examples of formulations of the present invention for use in corn oil demulsification include the compositions listed in Table 9.

[0227] [Table 9]

[0228] Example 10: Fluids for enhanced oil recovery An exemplary composition of an injection fluid suitable for improving oil and gas recovery from a well is as follows: (a) 0.01-5 wt. % of one or more surfactants of the present invention, (b) an aqueous injection fluid, (c) 0-5 wt. % of one or more alkalis, (d) 0-1% of one or more thickeners, (e) 0-50 wt. % of one or more co-solvents, (f) 0-50 wt. % of one or more co-surfactants, and (g) 0-5 wt. % of one or more co-surfactants. Aqueous carriers include, but are not limited to, water, produced brine, river water, synthetic brine, and seawater.

[0229] Example 11: Formulations for the recovery of corn oil from distillers' residues Some exemplary corn oil extract formulations are summarized in Table 10. Each formulation can be used for corn oil demulsification.

[0230] The polyglycerol ester is available from Lambent Technologies under the product name Lumulse POE(26)Glyc. It contains polymerized glycerol and has an average of 26 moles of ethoxylation per mole of polymerized glycol. The alkyl polyglucoside used was BASF Glucopon® 225 DK. This is an alkyl polyglucoside containing a C8-C10 alkyl group and an average of 1.7 glucose units per mole of alkyl polyglucoside.

[0231] The Peg 400 used is polyethylene glycol with an average molecular weight of 400 daltons. The Peg 400 MO used is polyethylene glycol monooleate with an average molecular weight of 400 daltons. The Peg 400 DO used is polyethylene glycol dioleate with an average molecular weight of 400 daltons.

[0232] The PEG 400 Mono Soyate used is an ester of polyethylene glycol (average molecular weight 400 daltons) and fatty acids derived from soybean oil, which is a triglyceride typically containing the following fatty acids: myristic acid 0.1%, palmitic acid 11.0%, palmitoleic acid 0.1%, stearic acid 4.0%, oleic acid 23.4%, linoleic acid 53.2%, linolenic acid 7.8%, arachidic acid 0.3%, and behenic acid 0.1%.

[0233] The hydrophobic silica is available as PP-35-FGK.

[0234] The hydrophilic silica is available as Sipernat 35.

[0235] [Table 10]

[0236] Aspects Aspect 1 is a formulation for hydrocarbon recovery, which comprises at least one surfactant of formula I,

[0237] [ka]

[0238] In the formula, R 1 and R 2 may be the same or different and are selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl is optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; Terminal nitrogen is R 3 may be further substituted with, in which case R 3is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, where C1-C6 alkyl may optionally be substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; an optional counterion associated with this compound, if present, selected from the group consisting of chloride, bromide, iodide, and hydroxide; and an aqueous phase.

[0239] Aspect 2 is the formulation of Aspect 1, further comprising at least one additional surfactant selected from the group consisting of anionic surfactants having a hydrophobic chain of 12 to 24 carbon atoms selected from the group consisting of sulfonate surfactants, sulfate surfactants, cationic surfactants, nonionic surfactants, and zwitterionic surfactants.

[0240] Aspect 3 is the formulation of Aspect 1 or Aspect 2, wherein the aqueous phase comprises at least one inorganic salt selected from the group consisting of sodium chloride, sodium sulfate, potassium chloride, magnesium sulfate, and magnesium chloride.

[0241] Aspect 4 is the formulation of any one of Aspects 1-3, further comprising at least one polymer.

[0242] Aspect 5 is the formulation of Aspect 4, wherein at least one polymer is selected from the group consisting of a quaternary ammonium compound, such as a cationic polymer comprising a quaternary diallyldialkylammonium monomer, and / or an anionic surfactant, preferably an anionic polymer comprising an anionic monomer selected from the group consisting of acrylic acid, methacrylic acid, and combinations thereof, and wherein the anionic polymer has an average molecular weight in the range of about 50,000 to about 10,000,000.

[0243] Aspect 6 is the formulation of any one of Aspects 1 to 3, further comprising lecithin or modified lecithin.

[0244] Aspect 7 is a formulation according to any one of aspects 1 to 6, further comprising at least one water-immiscible solvent.

[0245] Aspect 8 is a formulation according to any one of aspects 1 to 7, further comprising at least one water-miscible solvent.

[0246] Aspect 9 is the formulation of any one of Aspects 1 to 8, further comprising at least one gas selected from the group consisting of air, nitrogen, carbon dioxide, and natural gas.

[0247] Aspect 10 is the formulation of any one of Aspects 1-9, further comprising at least one additive selected from the group consisting of hydrogen chloride, ammonium salts, ammonium bicarbonate, ammonium carbonate, or ammonium hydroxide, alcohol, crosslinking agents, fracture retarders, particles, proppants, gas components, fracture aids, oxygen scavengers, alcohols, scale inhibitors, corrosion inhibitors, dehydration additives, biocides / fungicides, friction reducers, and latex.

[0248] Aspect 11 is an aspect wherein the surfactant has the following formula:

[0249] [ka]

[0250] 11. The formulation according to any one of Aspects 1 to 10, wherein the compound is 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexane-1-aminium iodide having the formula:

[0251] Aspect 12 is directed to a surfactant having the following formula:

[0252] [ka]

[0253] 11. The formulation of any one of Aspects 1-10, wherein the compound is dodecyl 6-(dimethylamino)hexanoate N-oxide having the formula:

[0254] Aspect 13 is directed to a surfactant having the following formula:

[0255] [ka]

[0256] 11. The formulation of any one of Aspects 1 to 10, wherein the compound is 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride having the formula:

[0257] Aspect 14 is directed to a surfactant having the following formula:

[0258] [ka]

[0259] 11. The formulation of any one of Aspects 1 to 10, wherein the compound is 4-((6-(dodecyloxy)-6-oxohexyl)dimethylammonio)butane-1-sulfonate having the formula:

[0260] Aspect 15 is directed to an embodiment wherein the surfactant has the following formula:

[0261] [ka]

[0262] 11. The formulation according to any one of Aspects 1 to 10, wherein the compound is 6-(dodecyloxy)-6-oxohexane-1-aminium chloride having the formula:

[0263] Example 16 is a method of recovering hydrocarbons, comprising providing at least one formulation of any one of Examples 1-15; injecting the at least one formulation into a well; and recovering material from the well after injecting the formulation into the well.

[0264] Example 17 is a method of recovering hydrocarbons, comprising providing at least one formulation of any one of Examples 1-15; mixing the formulation with a substance comprising a bio-oil; and recovering the bio-oil from the mixture.

[0265] Example 18 is the method of example 16, wherein the bio-oil-containing material is a distillation residue.

[0266] Aspect 19 is a method of recovering hydrocarbons comprising introducing a foamed fluid composition into an oil or gas well and operating with the foamed fluid composition, the foamed composition comprising a base fluid comprising an oil-based or water-based fluid; a gas; and at least one surfactant of Formula I,

[0267] [ka]

[0268] In the formula, R 1 and R 2 may be the same or different and are selected from the group consisting of hydrogen and C1-C6 alkyl, where C1-C6 alkyl is optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; n is an integer from 2 to 5, inclusive; m is an integer from 9 to 20, inclusive; Terminal nitrogen is R 3 may be further substituted with, in which case R 3is selected from the group consisting of hydrogen, oxygen, hydroxyl, and C1-C6 alkyl, wherein C1-C6 alkyl is optionally substituted with one or more substituents selected from the group consisting of hydroxyl, amino, amido, sulfonyl, sulfonate, carbonyl, carboxyl, and carboxylate; and an optional counterion associated with this compound, when present, selected from the group consisting of chloride, bromide, iodide, and hydroxide.

[0269] Example 20 is the method of example 19, wherein the operation is selected from the group consisting of a gas lift operation, a drilling operation, a completion operation, a stimulation operation, a fracturing operation, an injection operation, an enhanced oil recovery operation, and combinations thereof.

[0270] Aspect 21 is directed to a surfactant having the following formula:

[0271] [ka]

[0272] 21. The formulation of claim 19 or 20, wherein the compound is 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexan-1-aminium iodide having the formula:

[0273] Aspect 22 is directed to an embodiment wherein the surfactant has the following formula:

[0274] [ka]

[0275] 21. The formulation of claim 19 or 20, wherein the compound is dodecyl 6-(dimethylamino)hexanoate N-oxide having the formula:

[0276] Aspect 23 is directed to an embodiment wherein the surfactant has the following formula:

[0277] [ka]

[0278] 21. The formulation of embodiment 19 or embodiment 20, wherein the compound is 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride having the formula:

[0279] Aspect 24 is directed to an embodiment wherein the surfactant has the following formula:

[0280] [ka]

[0281] 21. The formulation of claim 19 or 20, wherein the compound is 4-((6-(dodecyloxy)-6-oxohexyl)dimethylammonio)butane-1-sulfonate having the formula:

[0282] Aspect 25 is directed to an embodiment wherein the surfactant has the following formula:

[0283] [ka]

[0284] 21. The formulation of embodiment 19 or embodiment 20, wherein the compound is 6-(dodecyloxy)-6-oxohexane-1-aminium chloride having the formula:

[0285] Aspect 26 is directed to an embodiment wherein the surfactant has the following formula:

[0286] [ka]

[0287] 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexan-1-aminium iodide having the formula The following formula:

[0288] [ka]

[0289] Dodecyl 6-(dimethylamino)hexanoate N-oxide; The following formula:

[0290] [ka]

[0291] 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride; The following formula:

[0292] [ka]

[0293] 4-((6-(dodecyloxy)-6-oxohexyl)dimethylammonio)butane-1-sulfonate; The following formula:

[0294] [ka]

[0295] and 6-(dodecyloxy)-6-oxohexane-1-aminium chloride having the formula:

[0296] Aspect 27 is directed to an embodiment wherein the surfactant has the following formula:

[0297] [ka]

[0298] 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexan-1-aminium iodide having the formula The following formula:

[0299] [ka]

[0300] Dodecyl 6-(dimethylamino)hexanoate N-oxide; The following formula:

[0301] [ka]

[0302] 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride; The following formula:

[0303] [ka]

[0304] 4-((6-(dodecyloxy)-6-oxohexyl)dimethylammonio)butane-1-sulfonate; The following formula:

[0305] [ka]

[0306] and 6-(dodecyloxy)-6-oxohexane-1-aminium chloride having the formula:

Claims

1. 1. A formulation for hydrocarbon recovery comprising: At least one surfactant of formula I, 【Chemistry 1】 In the formula, R 1 and R 2 may be the same or different, and are hydrogen and C 1 ~C 6 selected from the group consisting of alkyl; n is an integer from 2 to 5, inclusive; m is an integer from 11 to 18, where m represents the number of carbon atoms in the linear alkyl group; The terminal nitrogen of formula I is R 3 may be further substituted with, in which case R 3 is hydrogen, oxygen, hydroxyl, and C 1 ~C 6 a surfactant selected from the group consisting of alkyl; an optional counterion associated with the compound of formula I, when present, selected from the group consisting of chloride, bromide, iodide, and hydroxide; and water phase, 1. A formulation comprising:

2. 10. The formulation of claim 1, further comprising at least one additional surfactant selected from the group consisting of anionic surfactants having a hydrophobic chain of 12 to 24 carbon atoms selected from the group consisting of sulfonate surfactants, sulfate surfactants, cationic surfactants, nonionic surfactants, and zwitterionic surfactants.

3. 3. The formulation of claim 1 or claim 2, wherein the aqueous phase comprises at least one inorganic salt selected from the group consisting of sodium chloride, sodium sulfate, potassium chloride, magnesium sulfate, and magnesium chloride.

4. The formulation of any one of claims 1 to 3, further comprising at least one polymer.

5. 5. The formulation of claim 4, wherein the at least one polymer is selected from the group consisting of a cationic polymer comprising a quaternary diallyldialkylammonium monomer and an anionic polymer comprising an anionic monomer selected from the group consisting of acrylic acid, methacrylic acid, and combinations thereof, and the average molecular weight of the anionic polymer is in the range of 50,000 to 10,000,000.

6. The formulation of any one of claims 1 to 3, further comprising lecithin or modified lecithin.

7. The formulation of any one of claims 1 to 6, further comprising at least one water-immiscible solvent.

8. The formulation of any one of claims 1 to 7, further comprising at least one water-miscible solvent.

9. The formulation of any one of claims 1 to 8, further comprising at least one gas selected from the group consisting of air, nitrogen, carbon dioxide, and natural gas.

10. 10. The formulation of any one of claims 1 to 9, further comprising at least one additive selected from the group consisting of hydrogen chloride, ammonium salts, ammonium bicarbonate, ammonium carbonate, or ammonium hydroxide, alcohol, crosslinking agents, fracture retarders, particles, proppants, gas components, fracture aids, oxygen scavengers, alcohols, scale inhibitors, corrosion inhibitors, dehydration additives, biocides / fungicides, friction reducers, and latex.

11. The surfactant has the following formula: 【Chemistry 2】 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexane-1-aminium iodide having the formula: The following formula: 【Transformation 3】 dodecyl 6-(dimethylamino)hexanoate N-oxide having the formula: The following formula: 【Chemistry 4】 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride having the formula: The following formula: 【Transformation 5】 6-(dodecyloxy)-6-oxohexane-1-aminium chloride having the formula The formulation according to any one of claims 1 to 10, comprising at least one of:

12. Providing a formulation according to any one of claims 1 to 11; injecting the at least one formulation into a well; and recovering material from the well after the step of injecting the formulation into the well; 1. A method for recovering hydrocarbons, comprising:

13. Providing a formulation according to any one of claims 1 to 11; mixing the formulation with a substance comprising a bio-oil; and recovering the bio-oil from the mixture of the formulation and the bio-oil-containing material; 1. A method for recovering hydrocarbons, comprising:

14. 14. The method of claim 13, wherein the material comprising the bio-oil is a distillation residue.

15. introducing a foamed fluid composition into an oil or gas well to perform an operation with said foamed fluid composition, said foamed fluid composition comprising: base fluids, including oil-based or water-based fluids; gas; At least one surfactant of formula I, 【Transformation 6】 In the formula, R 1 and R 2 may be the same or different, and are hydrogen and C 1 ~C 6 selected from the group consisting of alkyl; n is an integer from 2 to 5, inclusive; m is an integer from 11 to 18, where m represents the number of carbon atoms in the linear alkyl group; The terminal nitrogen of formula I is R 3 may be further substituted with, in which case R 3 is hydrogen, oxygen, hydroxyl, and C 1 ~C 6 a surfactant selected from the group consisting of alkyl; 1. A method for recovering hydrocarbons, comprising the optional counterion associated with the compound of formula I, which, if present, is selected from the group consisting of chloride ions, bromide ions, iodide ions, and hydroxide ions.

16. 16. The method of claim 15, wherein the operation is selected from the group consisting of a gas lift operation, a drilling operation, a completion operation, a stimulation operation, a fracturing operation, an injection operation, an enhanced oil recovery operation, and combinations thereof.

17. The surfactant has the following formula: 【Transformation 7】 6-(dodecyloxy)-N,N,N-trimethyl-6-oxohexane-1-aminium iodide having the formula: The following formula: 【Transformation 8】 dodecyl 6-(dimethylamino)hexanoate N-oxide having the formula: The following formula: 【Chemistry 9】 6-(dodecyloxy)-N,N-dimethyl-6-oxohexane-1-aminium chloride having the formula: The following formula: 【Chemistry 10】 6-(dodecyloxy)-6-oxohexane-1-aminium chloride having the formula 17. The method of claim 15 or claim 16, comprising at least one of:

Citation Information

Patent Citations

  • Depressurization enhancement agent for water injection well and preparing method thereof

    CN105802600A

  • JP1974076818A

  • Method for producing betaine ester-containing mixture

    JP2009108057A

  • Lecithin composition and method for producing and using such lecithin composition

    JP2018516588A

  • COMPOSITIONS COMPRISING ZWITTERIONIC ALKYL-ALKANOYLAMIDES and / or ALKYL ALKANOATES

    US20170079898A1