EP3132001A1

Chemically-induced pulsed fracturing method

Abstract

This record has no abstract on file.

Term

8.6 yearsto projected expiry

Projected expiry 17 April 2035, counted from filing; an application has no term until it is granted.

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  2. Filed
  3. Published
  4. Today
  5. Projected expiry

24 claims: 18 independent, 6 dependent

  1. 1
    Claims of equivalent WO 2015161213 A1 CLAIMS What is claimed is:1. A method of increasing a stimulated reservoir volume in a wellbore in a gas-containing formation, the method comprising the steps of: mixing an exothermic reaction component in an aqueous solution to achieve a preselected solution pH, wherein the exothermic reaction component is operable to react at a pre-selected wellbore temperature to generate a pressure pulse;mixing the aqueous solution with a viscous fluid component to form a fracturing fluid, the viscous fluid component operable to fracture the gas-containing formation to create fractures, and the fracturing fluid further comprising a proppant component, the proppant component carried to the fractures by the viscous fluid component, the proppant component comprises a proppant, the proppant operable to hold open the fractures;injecting the fracturing fluid into the wellbore in the gas-containing formation to create fractures;and generating the pressure pulse when the exothermic reaction component reaches the preselected wellbore temperature, such that the pressure pulse is operable to create auxiliary fractures, wherein the auxiliary fractures create a fracture network, wherein the fracture network increases the stimulated reservoir volume.
  2. 4
    The method of any one of claims 1-3, wherein the pre-selected solution pH is between 5.7 and 9.
  3. 5
    The method of any one of claims 1-3, wherein the wellbore temperature is in a range between 48.8°C (120°F) and 121.1°C (250°F).
  4. 6
    The method of any one of claims 1-3, wherein the pressure pulse is between 500 psi and 50,000 psi.
  5. 7
    The method of any one of claims 1 -3, wherein the pressure pulse creates the auxiliary fractures in less than 10 seconds.
  6. 8
    The method of any one of claims 1-3, wherein the pressure pulse creates the auxiliary fractures in less than 5 seconds.
  7. 9
    A method of increasing a stimulated reservoir volume in a wellbore in a gas-containing formation that has fractures, the method comprising the steps of:mixing an exothermic reaction component in an aqueous solution to achieve a preselected solution pH, wherein the exothermic reaction component is operable to react at a pre-selected wellbore temperature to generate a pressure pulse;injecting the solution into the gas-containing formation;and generating the pressure pulse when the exothermic reaction component reaches the preselected wellbore temperature, such that the pressure pulse is operable to create auxiliary fractures, wherein the auxiliary fractures create a fracture network, wherein the fracture network increases the stimulated reservoir volume.
  8. 12
    The method of any one of claims 9-1 1, wherein the pre-selected solution pH is between 5.7 and 9.
  9. 13
    The method of any one of claims 9-11, wherein the wellbore temperature is in a range between 48.8°C (120°F) and 121.1°C (250°F).
  10. 14
    The method of any one of claims 9-1 1 , wherein the pressure pulse is between 500 psi and 50,000 psi.
  11. 15
    The method of any one of claims 9-11, wherein the pressure pulse creates the auxiliary fractures in less than 10 seconds.
  12. 16
    The method of any one of claims 9-1 1, wherein the pressure pulse creates the auxiliary fractures in less than 5 seconds.
  13. 17
    A method for hydraulic fracturing of a hydrocarbon-bearing formation, the method comprising the steps of:determining a wellbore temperature at a depth within the hydrocarbon-bearing formation;determining a length of time for which a hydraulic fracturing fluid needs to reach the depth within the hydrocarbon-bearing formation and reach the wellbore temperature at the depth;mixing an exothermic reaction component in an aqueous solution to achieve a preselected solution pH, wherein the exothermic reaction component is operable to react at the wellbore temperature at the depth within the hydrocarbon-bearing formation to generate a pressure pulse;mixing the aqueous solution with a viscous fluid component to form the hydraulic fracturing fluid, the viscous fluid component operable to fracture the gas-containing formation to create fractures, and the fracturing fluid further comprising a proppant component, the proppant component carried to the fractures by the viscous fluid component, the proppant component comprises a proppant, the proppant operable to hold open the fractures;injecting the fracturing fluid into the wellbore in the gas-containing formation to create fractures;and generating the pressure pulse when the exothermic reaction component reaches the wellbore temperature, such that the pressure pulse is operable to create auxiliary fractures, wherein the auxiliary fractures create a fracture network, wherein the fracture network increases the stimulated reservoir volume.
  14. 20
    The method of any one of claims 17-19, wherein the pre-selected solution pH is between 5.7 and 9.
  15. 21
    The method of any one of claims 17-19, wherein the wellbore temperature is in a range between 48.8°C (120°F) and 121.1°C (250°F).
  16. 22
    The method of any one of claims 17-19, wherein the pressure pulse is between 500 psi and 50,000 psi.
  17. 23
    The method of any one of claims 17-19, wherein the pressure pulse creates the auxiliary fractures in less than 10 seconds.
  18. 24
    The method of any one of claims 17- 19, wherein the pressure pulse creates the auxiliary fractures in less than 5 seconds.
Independent claims18