IP Library Patent Application 14322688
Patent Application
App. No. 14/322,688

VISCOELASTIC SURFACTANTS CROSSLINKED WITH DIVALENT IONS AND METHODS FOR MAKING AND USING SAME

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Quick Facts
Patent No.
US None
App. No.
14/322,688
Abstract

Viscoselastic surfactant systems including at least one viscoelastic surfactant and at least one divalent metal compound, where the systems are useable for enhancing oil production in oil wells that coproduce high volumes of gas and/or water and for enhancing gas injection uniformity into injection formations and methods including treating producing or injecting formations with the systems to enhance oil production in treated producing zones or enhance injection efficiency in injection zones.

Claims (53)

1 . A method comprising:

placing a fluid including at least one viscoelastic surfactant and at least one divalent metal compound in a well bore adjacent a subterranean formation; and

allowing the fluid to penetrate the formation for a time and at a pressure sufficient for the fluid to penetrate into the formation to a desired penetration depth,

where the metal compounds gel the viscoelastic surfactants to form a crosslinked gelled fluid, where the gelled fluid has desired shear thinning characteristics and desired oil breaking or oil dissolving properties, and where the gelled fluid reduces gas production and water production, while maintaining oil production in producing formation and wherein the gel improves an injection profile of injection formation.

2 . The method of claim 1 , wherein:

the viscoelastic surfactants are selected from the group consisting of amphoteric/cationic surfactants, viscosifying amphoteric/cationic surfactants, or mixtures and combinations thereof; and

the divalent metal compounds are selected from the group consisting of calcium salts, magnesium salts, strontium salts, barium salts, copper salts, zinc salts, manganese salts, or mixtures and combinations thereof, where the counter ions are selected from the group consisting of halides; carbonate; hydroxide; carboylates; nitrate; sulfate; phosphate; or mixtures and combinations thereof.

3 . The method of claim 2 , wherein the amphoteric/cationic surfactants and the viscosifying amphoteric/cationic surfactants are selected from the group consisting of high-molecular weight, cationic polyacrylamide copolymers, high-molecular weight, partially hydrolyzed polyacrylamides (PHPAs), amines, amine salts, quaternary ammonium salts, amidoamine oxides, betaines, amine oxides, or mixtures and combinations thereof.

4 . The method of claim 1 wherein the fluid further includes an aqueous base fluid.

5 . The method of claim 1 , wherein the fluid further includes at least one additional component selected from the group consisting of: a diverting agent; a particulate solid diverting agent; a degradable particulate diverting material; a self-degradable particulate diverting material; a mechanical diverting agent; a secondary surfactant; a bactericide; a nonemulsifier; a mutual solvent;

a fluid loss control agent; a proppant particulate; a pH-adjusting agent; a pH-buffer; an oxidizing agent; an enzyme; a lost circulation material; a scale inhibitor; a clay stabilizer; a corrosion inhibitor;

a paraffin inhibitor; an asphaltene inhibitor; a penetrating agent; a clay control additive; an iron control additive; a chelator; a reducer; an oxygen scavenger; a sulfide scavenger; an emulsifier; a foamer; a gas; a breaker; an iron control additive; a derivative thereof; and mixtures or combinations thereof.

6 . The method of claim 1 , further comprising:

placing the treated formation on production,

where the treated formation enhances oil production, while reducing or equalizing gas production and reducing water production.

7 . The method of claim 1 , further comprising:

pressurizing the gelled fluid for a time and at a pressure sufficient for the fluid to penetrate into the formation to a desired penetration depth enhancing oil production or enhancing gas flooding efficiency, while reducing or equalizing gas production and reducing water production.

8 . The method of claim 1 , further comprising:

injecting gas into the treated formation,

where the gelled fluid enhancing gas flooding efficiency.

9 . A method comprising:

placing a fluid including at least one viscoelastic surfactant and at least one divalent metal compound adjacent a producing formation penetrated by a well bore;

pressurizing the gelled fluid for a time and at a pressure sufficient for the fluid to penetrate into the formation to a desired penetration depth to form a treated formation; and

placing the treated formation on production,

where the metal compounds gel the viscoelastic surfactants to form a crosslinked gelled fluid, where the gelled fluid has desired shear thinning characteristics and desired oil breaking or oil dissolving properties, and where the gelled fluid reduces gas production and water production, while maintaining oil production in the producing formation.

10 . The method of claim 9 , wherein:

the viscoelastic surfactants selected from the group consisting of amphoteric/cationic surfactants, viscosifying amphoteric/cationic surfactant, or mixtures and combinations thereof; and

the divalent metal selected from the group consisting of calcium salts, magnesium salts, strontium salts, barium salts, copper salts, zinc salts, manganese salts, or mixtures and combinations thereof, where the counter ions are selected from the group consisting of halides; carbonate; hydroxide; carboylates; nitrate; sulfate; phosphate; or mixtures and combinations thereof.

11 . The method of claim 10 , wherein the amphoteric/cationic surfactants and viscosifying amphoteric/cationic surfactants are selected from the group consisting of viscoelastic surfactant high-molecular weight, cationic polyacrylamide copolymers, high-molecular weight, partially hydrolyzed polyacrylamide (PHPA), amines, amine salts, quaternary ammonium salts, amidoamine oxides, betaines, amine oxides, or mixtures and combinations thereof.

12 . The method of claim 9 , wherein the base fluid is an aqueous-based fluid.

13 . The method of claim 9 , wherein the fluid further includes at least one additional component selected from the group consisting of: a diverting agent; a particulate solid diverting agent; a degradable particulate diverting material; a self-degradable particulate diverting material; a mechanical diverting agent; a secondary surfactant; a bactericide; a nonemulsifier; a mutual solvent; a fluid loss control agent; a proppant particulate; a pH-adjusting agent; a pH-buffer; an oxidizing agent; an enzyme; a lost circulation material; a scale inhibitor; a clay stabilizer; a corrosion inhibitor; a paraffin inhibitor; an asphaltene inhibitor; a penetrating agent; a clay control additive; an iron control additive; a chelator; a reducer; an oxygen scavenger; a sulfide scavenger; an emulsifier; a foamer; a gas; a breaker; an iron control additive; a derivative thereof; and mixtures or combinations thereof.

14 . A method comprising:

placing a fluid including at least one viscoelastic surfactant and at least one divalent metal compound and a base fluid adjacent an injection formation penetrated by a well bore;

allowing the fluid to penetrate the formation to form a treated formation; and

injecting gas into the treated formation,

where the metal compounds gel the viscoelastic surfactants to form a crosslinked gelled fluid, where the gelled fluid has desired shear thinning characteristics and where the gelled fluid improves an injection profile of injection formation.

15 . The method of claim 14 , wherein:

the viscoelastic surfactant selected from the group consisting of amphoteric/cationic surfactants, a viscosifying amphoteric/cationic surfactants, or mixtures and combinations thereof; and

the divalent metal selected from the group consisting of calcium salts, magnesium salts, strontium salts, barium salts, copper salts, zinc salts, manganese salts, or mixtures and combinations thereof, where the counter ions are selected from the group consisting of halides; carbonate; hydroxide; carboylates; nitrate; sulfate; phosphate; or mixtures and combinations thereof.

16 . The method of claim 15 , wherein the amphoteric/cationic surfactants and viscosifying amphoteric/cationic surfactants are selected from the group consisting of viscoelastic surfactant high-molecular weight, cationic polyacrylamide copolymers, high-molecular weight, partially hydrolyzed polyacrylamide (PHPA), amines, amine salts, quaternary ammonium salts, amidoamine oxides, betaines, amine oxides, or mixtures and combinations thereof.

17 . The method of claim 14 , wherein the base fluid is an aqueous-based fluid.

18 . The method of claim 14 , wherein the fluid further includes at least one additional component selected from the group consisting of: a diverting agent; a particulate solid diverting agent; a degradable particulate diverting material; a self-degradable particulate diverting material; a mechanical diverting agent; a secondary surfactant; a bactericide; a nonemulsifier; a mutual solvent; a fluid loss control agent; a proppant particulate; a pH-adjusting agent; a pH-buffer; an oxidizing agent; an enzyme; a lost circulation material; a scale inhibitor; a clay stabilizer; a corrosion inhibitor; a paraffin inhibitor; an asphaltene inhibitor; a penetrating agent; a clay control additive; an iron control additive; a chelator; a reducer; an oxygen scavenger; a sulfide scavenger; an emulsifier; a foamer; a gas; a breaker; an iron control additive; a derivative thereof; and mixtures or combinations thereof.

19 . A fluid composition comprising:

at least one viscoelastic surfactant, and

at least one divalent metal compound,

where the metal compounds gel the viscoelastic surfactants to form a crosslinked gelled fluid, where the gelled fluid has desired shear thinning characteristics and desired oil breaking or oil dissolving properties, and where the gelled fluid reduces gas production and water production, while maintaining oil production in the producing formations and improves an injection profile of injection formation in injection formations.

20 . The composition of claim 19 , wherein:

the viscoelastic surfactants selected from the group consisting of amphoteric/cationic surfactants, viscosifying amphoteric/cationic surfactant, or mixtures and combinations thereof; and

the divalent metal selected from the group consisting of calcium salts, magnesium salts, strontium salts, barium salts, copper salts, zinc salts, manganese salts, or mixtures and combinations thereof, where the counter ions are selected from the group consisting of halides; carbonate;

hydroxide; carboylates; nitrate; sulfate; phosphate; or mixtures and combinations thereof.

21 . The composition of claim 20 , wherein the amphoteric/cationic surfactants and viscosifying amphoteric/cationic surfactants are selected from the group consisting of viscoelastic surfactant high-molecular weight, cationic polyacrylamide copolymers, high-molecular weight, partially hydrolyzed polyacrylamide (PHPA), amines, amine salts, quaternary ammonium salts, amidoamine oxides, betaines, amine oxides, or mixtures and combinations thereof.

22 . The composition of claim 19 , further comprising base fluid is an aqueous-based fluid.

23 . The composition of claim 19 , further comprising at least one additional component selected from the group consisting of: a diverting agent; a particulate solid diverting agent; a degradable particulate diverting material; a self-degradable particulate diverting material; a mechanical diverting agent; a secondary surfactant; a bactericide; a nonemulsifier; a mutual solvent; a fluid loss control agent; a proppant particulate; a pH-adjusting agent; a pH-buffer; an oxidizing agent; an enzyme; a lost circulation material; a scale inhibitor; a clay stabilizer; a corrosion inhibitor; a paraffin inhibitor; an asphaltene inhibitor; a penetrating agent; a clay control additive; an iron control additive; a chelator; a reducer; an oxygen scavenger; a sulfide scavenger; an emulsifier; a foamer; a gas; a breaker; an iron control additive; a derivative thereof; and mixtures or combinations thereof.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 9, 2015
From: CLEARWATER INTERNATIONAL, L.L.C.
To: LUBRIZOL OILFIELD SOLUTIONS, INC.
Reel/Frame 036822/0379 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2015
From: TAN, HYOK CHONG; GRAY, BILLY J.
To: CLEARWATER INTERNATIONAL LLC
Reel/Frame 034790/0737 →