IP Library Granted Patent US 11,739,621
Granted Patent B2
US 11,739,621 · App. 17/491,763 · Granted Aug 29, 2023

Acid fracturing treatments in hydrocarbon-bearing formations in close proximity to wet zones

Inventor: Moataz Mohammad Alharbi (Udhailiyah, SA)
Assignee: Saudi Arabian Oil Company
E21B43/26E21B33/138E21B43/14E21B49/00
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Quick Facts
Patent No.
US 11,739,621
App. No.
17/491,763
Granted
Aug 29, 2023
Kind
B2
Abstract

System, methods, and devices for simultaneously fracturing a target formation and an adjacent secondary formation are disclosed. The simultaneous fracturing operations interfere with each other to form in-situ dynamic barriers. The in-situ barriers prevent acid from the fracturing treatment in the target formation from invading the secondary formation and, in some instances, sealing formation rock at the location of the in-situ barrier to prevent or reduce water movement from the secondary formation into the primary formation.

Claims (71)

1. An apparatus for performing simultaneous and competing fracturing operations in adjacent formations to form in-situ dynamic barriers between the competing fracturing treatments, the apparatus comprising:

one or more processors; and

a non-transitory computer-readable storage medium coupled to the one or more processors and storing programming instructions for execution by the one or more processors, the programming instructions instruct the one or more processors to:

perforate an interval of a target formation;

determine a mid-perforation separation distance extending from a center of the target formation perforated interval to a center of a perforation interval to be formed in a secondary formation, the secondary formation comprising a first wet zone;

perforate an interval of the secondary formation, a center of the perforated interval formed in the secondary formation being separated from the center of the perforated interval of the target formation by the mid-perforation separation distance such that a fracture to be formed in the target formation overlaps a fracture to be formed in the secondary formation;

apply, simultaneously, a first fracturing treatment to the perforated interval of the target formation, the first fracturing treatment comprising an acid fracturing treatment, and a second fracturing treatment to the perforated interval of the secondary formation, the second fracturing treatment comprising a neutralizing additive and a sealing agent additive, wherein the neutralizing additive is selected from a group consisting of calcium carbonate, sodium hydroxide, and sodium carbonate; and

grow a first fracture formed by the first fracturing treatment and a second fracture formed by the second fracturing treatment to cause the first fracture and the second fracture to interfere with each other thereby forming in-situ dynamic barriers, the neutralizing additive neutralizing acid of the acid fracturing treatment to prevent intrusion of the acid into the secondary formation and the sealing agent additive sealing formation rock at a location of the in-situ dynamic barrier to alter water conductivity in the sealed formation rock.

2. The apparatus of claim 1 , wherein the perforated interval of the target formation and perforated interval of the secondary formation are formed at respective locations along a vertical well.

3. The apparatus of claim 1 , wherein the target formation is a carbonate formation.

4. The apparatus of claim 1 , wherein the acid is selected from a group consisting of hydrochloric acid (HCl), emulsified HCl, retarded acid systems, acetic acid, formic acid, and chelating agents.

5. The apparatus of claim 4 , wherein the sealing agent additive is selected from the group consisting of Portland cement, aluminate cement, epoxy resin, phenolic resin, natural rubber, latex, and silicone.

6. The apparatus of claim 4 , wherein the secondary formation is a first secondary formation and further comprising determining a mid-separation distance extending from the center of the perforated interval of the target formation to a center of a perforated interval to be formed in a second secondary formation, the second secondary formation comprising a second wet zone.

7. The apparatus of claim 6 , wherein the programming instructions are operable to instruct the one or more processors to perforate an interval of the second secondary formation disposed on a side of the target formation opposite the first secondary formation, the center of the perforated interval of the second secondary formation offset from the perforated interval of the target formation by the mid-perforation separation distance.

8. The apparatus of claim 6 , wherein the programming instructions are operable to instruct the one or more processors to perform a third fracturing treatment to the perforated interval of the second secondary formation, the third fracturing treatment being performed simultaneously with the first fracturing treatment and the second fracturing treatment,

wherein the first fracturing treatment comprises an acid fracturing treatment,

wherein the second fracturing treatment comprises a second neutralizing additive and a second sealing agent additive, and

wherein the third fracturing treatment comprises a third neutralizing additive and a third sealing agent additive.

9. A computer-implemented method performed by one or more processors for performing simultaneous and competing fracturing operations in adjacent formations to form in-situ dynamic barriers between the competing fracturing treatments, the method comprising the following operations:

perforating an interval of a target formation;

determining a mid-perforation separation distance extending from a center of the target formation perforated interval to a center of a perforation interval to be formed in a secondary formation, the secondary formation comprising a first wet zone;

perforating an interval of the secondary formation, a center of the perforated interval formed in the secondary formation being separated from the center of the perforated interval of the target formation by the mid-perforation separation distance such that a fracture to be formed in the target formation overlaps a fracture to be formed in the secondary formation;

applying, simultaneously, a first fracturing treatment to the perforated interval of the target formation, the first fracturing treatment comprising an acid fracturing treatment, and a second fracturing treatment to the perforated interval of the secondary formation, the second fracturing treatment comprising a neutralizing additive and a sealing agent additive, wherein the neutralizing additive is selected from a group consisting of calcium carbonate, sodium hydroxide, and sodium carbonate; and

growing a first fracture formed by the first fracturing treatment and a second fracture formed by the second fracturing treatment to cause the first fracture and the second fracture to interfere with each other thereby forming in-situ dynamic barriers, the neutralizing additive neutralizing acid of the acid fracturing treatment to prevent intrusion of the acid into the secondary formation and the sealing agent additive sealing formation rock at a location of the in-situ dynamic barrier to alter water conductivity in the sealed formation rock.

10. The computer-implemented method of claim 9 , wherein the perforated interval of the target formation and perforated interval of the secondary formation are formed at respective locations along a vertical well.

11. The computer-implemented method of claim 9 , wherein the target formation is a carbonate formation.

12. The computer-implemented method of claim 9 , wherein the acid is selected from a group consisting of hydrochloric acid (HCl), emulsified HCl, retarded acid systems, acetic acid, formic acid, and chelating agents.

13. The computer-implemented method of claim 9 , wherein the sealing agent additive is selected from the group consisting of Portland cement, aluminate cement, epoxy resin, phenolic resin, natural rubber, latex, and silicone.

14. The computer-implemented method of claim 9 , wherein the secondary formation is a first secondary formation; wherein the method further comprises:

determining a mid-separation distance extending from the center of the perforated interval of the target formation to a center of a perforated interval to be formed in a second secondary formation, the second secondary formation comprising a second wet zone.

15. The computer-implemented method of claim 14 , further comprising:

perforating an interval of the second secondary formation disposed on a side of the target formation opposite the first secondary formation, the center of the perforated interval of the second secondary formation offset from the perforated interval of the target formation by a mid-perforation separation distance.

16. The computer-implemented method of claim 14 , further comprising:

performing, simultaneously with the first and second fracturing treatments, a third fracturing treatment to the perforated interval of the second secondary formation,

wherein the first fracturing treatment comprises an acid fracturing treatment,

wherein the second fracturing treatment comprises a second neutralizing additive and a second sealing agent additive, and

wherein the third fracturing treatment comprises a third neutralizing additive and a third sealing agent additive.

17. An apparatus for performing simultaneous and competing fracturing operations in adjacent formations to form in-situ dynamic barriers between the competing fracturing treatments, the apparatus comprising:

one or more processors; and

a non-transitory computer-readable storage medium coupled to the one or more processors and storing programming instructions for execution by the one or more processors, the programming instructions instruct the one or more processors to:

perforate an interval of a target formation;

determine a mid-perforation separation distance extending from a center of the target formation perforated interval to a center of a perforation interval to be formed in a secondary formation, the secondary formation comprising a first wet zone;

perforate an interval of the secondary formation, a center of the perforated interval formed in the secondary formation being separated from the center of the perforated interval of the target formation by the mid-perforation separation distance such that a fracture to be formed in the target formation overlaps a fracture to be formed in the secondary formation;

apply, simultaneously, a first fracturing treatment to the perforated interval of the target formation, the first fracturing treatment comprising an acid fracturing treatment, and a second fracturing treatment to the perforated interval of the secondary formation, the second fracturing treatment comprising a neutralizing additive and a sealing agent additive, wherein the sealing agent additive is selected from the group consisting of Portland cement, aluminate cement, epoxy resin, phenolic resin, natural rubber, latex, and silicone; and

grow a first fracture formed by the first fracturing treatment and a second fracture formed by the second fracturing treatment to cause the first fracture and the second fracture to interfere with each other thereby forming in-situ dynamic barriers, the neutralizing additive neutralizing acid of the acid fracturing treatment to prevent intrusion of the acid into the secondary formation and the sealing agent additive sealing formation rock at a location of the in-situ dynamic barrier to alter water conductivity in the sealed formation rock.

18. The apparatus of claim 17 , wherein the perforated interval of the target formation and perforated interval of the secondary formation are formed at respective locations along a vertical well.

19. The apparatus of claim 17 , wherein the target formation is a carbonate formation.

20. The apparatus of claim 17 , wherein the acid is selected from a group consisting of hydrochloric acid (HCl), emulsified HCl, retarded acid systems, acetic acid, formic acid, and chelating agents.

21. The apparatus of claim 17 , wherein the secondary formation is a first secondary formation and further comprising determining a mid-separation distance extending from the center of the perforated interval of the target formation to a center of a perforated interval to be formed in a second secondary formation, the second secondary formation comprising a second wet zone.

22. The apparatus of claim 21 , wherein the programming instructions are operable to instruct the one or more processors to perforate an interval of the second secondary formation disposed on a side of the target formation opposite the first secondary formation, the center of the perforated interval of the second secondary formation offset from the perforated interval of the target formation by a mid-perforation separation distance.

23. The apparatus of claim 21 , wherein the programming instructions are operable to instruct the one or more processors to perform a third fracturing treatment to the perforated interval of the second secondary formation, the third fracturing treatment being performed simultaneously with the first fracturing treatment and the second fracturing treatment,

wherein the first fracturing treatment comprises an acid fracturing treatment,

wherein the second fracturing treatment comprises a second neutralizing additive and a second sealing agent additive, and

wherein the third fracturing treatment comprises a third neutralizing additive and a third sealing agent additive.

24. An apparatus for performing simultaneous and competing fracturing operations in adjacent formations to form in-situ dynamic barriers between the competing fracturing treatments, the apparatus comprising:

one or more processors; and

a non-transitory computer-readable storage medium coupled to the one or more processors and storing programming instructions for execution by the one or more processors, the programming instructions instruct the one or more processors to:

perforate an interval of a target formation;

determine a mid-perforation separation distance extending from a center of the target formation perforated interval to a center of a perforation interval to be formed in a first secondary formation, the first secondary formation comprising a first wet zone;

determining a mid-separation distance extending from the center of the target formation perforated interval to a center of a perforated interval to be formed in a second secondary formation, the second secondary formation comprising a second wet zone;

perforate an interval of the first secondary formation, a center of the perforated interval formed in the first secondary formation being separated from the center of the perforated interval of the target formation by the mid-perforation separation distance such that a fracture to be formed in the target formation overlaps a fracture to be formed in the first secondary formation;

apply, simultaneously, a first fracturing treatment to the perforated interval of the target formation, the first fracturing treatment comprising an acid fracturing treatment, and a second fracturing treatment to the perforated interval of the first secondary formation, the second fracturing treatment comprising a neutralizing additive and a sealing agent additive; and

grow a first fracture formed by the first fracturing treatment and a second fracture formed by the second fracturing treatment to cause the first fracture and the second fracture to interfere with each other thereby forming in-situ dynamic barriers, the neutralizing additive neutralizing acid of the acid fracturing treatment to prevent intrusion of the acid into the first secondary formation and the sealing agent additive sealing formation rock at a location of the in-situ dynamic barrier to alter water conductivity in the sealed formation rock.

25. The apparatus of claim 24 , wherein the perforated interval of the target formation and perforated interval of the first secondary formation are formed at respective locations along a vertical well.

26. The apparatus of claim 24 , wherein the target formation is a carbonate formation.

27. The apparatus of claim 24 , wherein the acid is selected from a group consisting of hydrochloric acid (HCl), emulsified HCl, retarded acid systems, acetic acid, formic acid, and chelating agents.

28. The apparatus of claim 27 , wherein the programming instructions are operable to instruct the one or more processors to perforate an interval of the second secondary formation disposed on a side of the target formation opposite the first secondary formation, the center of the perforated interval of the second secondary formation offset from the perforated interval of the target formation by a mid-perforation separation distance.

29. The apparatus of claim 27 , wherein the programming instructions are operable to instruct the one or more processors to perform a third fracturing treatment to the perforated interval of the second secondary formation, the third fracturing treatment being performed simultaneously with the first fracturing treatment and the second fracturing treatment,

wherein the first fracturing treatment comprises an acid fracturing treatment,

wherein the second fracturing treatment comprises a second neutralizing additive and a second sealing agent additive, and

wherein the third fracturing treatment comprises a third neutralizing additive and a third sealing agent additive.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 5, 2021
From: ALHARBI, MOATAZ MOHAMMAD
To: SAUDI ARABIAN OIL COMPANY
Reel/Frame 057704/0325 →
Continuity (2)
Division 16459490 · Jul 1, 2019
Related Publication 20220025749A1 · Jan 27, 2022