IP Library › Granted Patent US 9,932,801
Granted Patent B2
US 9,932,801 · App. 14/761,869 · Granted Apr 3, 2018

Method for stabilizing a cavity in a well

Inventor: Anne Gerd Raffn (Sandnes, NO)
Assignee: NORWAY WELL SOLUTIONS AS
E21B43/04E21B33/138
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Quick Facts
Patent No.
US 9,932,801
App. No.
14/761,869
Granted
Apr 3, 2018
Kind
B2
Abstract

A method for stabilizing a cavity at a production or injection zone in an underground well includes providing a filtering element in the well at the cavity that is to be stabilized. The filtering element is formed with openings. The method further includes injecting a first fluid including expandable particles through the filtering element into the cavity. The expandable particles have a non-expanded state with a diameter smaller than the diameter of the openings of the filtering element. The method further includes injecting a second fluid through the filtering element. The second fluid is configured to react with the expandable particles such that the expandable particles expand to a diameter larger than the diameter of the openings in the filtering element, whereby the expanded particles and the filtering element form a filter at the production or injection zone in the well.

Claims (24)

1. A method for stabilizing an annulus at a production or injection zone in an underground well, the method comprising:

providing a filtering element in the well at the annulus to be stabilized, the filtering element being formed with openings, wherein each opening has a diameter;

injecting a first fluid including expandable particles through the filtering element into the annulus, the expandable particles, when in their non-expanded state, having a diameter smaller than the diameter of the openings of the filtering element; and

injecting a second fluid through the filtering element, the second fluid being configured to react with the expandable particles in such a way that the expandable particles are expanded to a diameter larger than the diameter of the openings in the filtering element, whereby the expanded expandable particles and the filtering element form a filter at the production or injection zone in the well.

2. The method in accordance with claim 1 , further comprising injecting the first and second fluids through a fluid-carrying string.

3. The method in accordance with claim 2 , further comprising setting one or more packer elements sealingly around the fluid-carrying string.

4. The method in accordance with claim 3 , wherein the second fluid includes hydrocarbons.

5. The method in accordance with claim 4 , wherein the second fluid comprises water.

6. The method in accordance with claim 5 , further comprising injecting a fluid including a mixture of expandable particles and porous particles.

7. The method in accordance with claim 6 , wherein the porous particles are selected from the group consisting of at least one of macroporous silica, macroporous carbon, macroporous polymers, volcanic rocks, pumice, diatomite, zeolites, sintered ceramic materials and sintered metallic materials.

8. The method in accordance with claim 7 , further comprising injecting a mixture of expandable and non-porous particles.

9. The method in accordance with claim 8 , wherein the non-porous particles are selected from the group consisting of at least one of glass spheres, polymer spheres, and mineral particles.

10. The method in accordance with claim 1 , further comprising injecting the first and second fluids to the filter element through a wellbore.

11. The method in accordance with claim 1 , wherein the filtering element is a casing and the openings are perforations, slots, or a combination thereof.

12. The method in accordance with claim 11 , further comprising setting one or more packer elements sealingly around the casing.

13. The method in accordance with claim 12 , wherein the filtering element includes another filtering element disposed outside the casing.

14. A method for stabilizing an annulus at a production or injection zone in an underground well, the method comprising:

providing in an annulus of the well to be stabilized a filtering element with openings, wherein each opening of the filter element has a size, and wherein the filtering element comprises a casing with perforations therein;

injecting through the openings of the filtering element a first fluid that is supplied via a fluid carrying string disposed within the casing, the first fluid including expandable particles that, when in a non-expanded state, have a size smaller than the size of the openings of the filtering element;

injecting through the openings of the filtering element via the fluid carrying string a second fluid, the second fluid being configured to react with the expandable particles in such a way that the expandable particles are expanded to a size larger than the size of the openings in the filtering element, whereby the expanded expandable particles and the filtering element form a filter at the production or injection zone in the well.

15. The method in accordance with claim 14 , further comprising providing a sand screen outside the casing.

16. The method in accordance with claim 15 , further comprising setting a pair of packer elements around the casing wherein the sand screen is positioned between the pair of packers.

17. The method in accordance with claim 15 wherein the first fluid further includes porous particles selected from the group consisting of at least one of macroporous silica, macroporous carbon, macroporous polymers, volcanic rocks, pumice, diatomite, zeolites, sintered ceramic materials, and sintered metallic materials.

18. The method in accordance with claim 15 wherein the first fluid further includes non-porous particles selected from group consisting of at least one of glass spheres, polymer spheres, and mineral particles.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 24, 2015
From: RAFFN, ANNE GERD
To: NORWAY WELL SOLUTIONS AS
Reel/Frame 036177/0943 →
Priority Claims (1)
NO 20130116 · Jan 18, 2013 · national
Continuity (1)
Related Publication 20150369019A1 · Dec 24, 2015