SYSTEMS AND METHODS IN WHICH POLYACRYLAMIDE GEL IS USED TO RESIST CORROSION OF A WELLHEAD COMPONENT IN A WELL CELLAR
20230313628 · 2023-10-05
Inventors
- Faisal Mohammed Alissa (Dammam, SA)
- Sameer Abdulaziz Aleissa (Al Hofuf, SA)
- Khalid I. Alhamed (Dammam, SA)
Cpc classification
C08J2333/26
CHEMISTRY; METALLURGY
C09K8/54
CHEMISTRY; METALLURGY
International classification
Abstract
Systems and methods use polyacrylamide gel to resist corrosion of one or more wellhead components in a well cellar. Examples of such wellhead components include a surface casing and a landing base. The well cellar is part of a well, such as an oil well, a gas well or a water well.
Claims
1. A system, comprising: a well cellar comprising a bottom and sidewalls extending from the bottom; a wellhead comprising an aboveground region extending above the well cellar and a belowground region in the well cellar, the belowground region of the wellhead comprising a wellhead component having an exterior surface; a polyacrylamide gel occupying a volume extending from the bottom and sidewalls of the well cellar to the exterior surface of the wellhead component, wherein the polyacrylamide gel covers the exterior surface of the wellhead component; and sand covering an upper surface of the polyacrylamide gel.
2. The system of claim 1, wherein polyacrylamide in the polyacrylamide gel is uncrosslinked.
3. The system of claim 1, wherein polyacrylamide in the polyacrylamide gel has a number average molecular weight of from 1,000 to 10,000,000 g/mol.
4. The system of claim 1, wherein polyacrylamide in the polyacrylamide gel has a weight average molecular weight of from 1,000 to 10,000,000 g/mol.
5. The system of claim 1, wherein the polyacrylamide gel substantially prevents water from passing through the polyacrylamide gel to reach the exterior surface of the wellhead component.
6. (canceled)
7. (canceled)
8. The system of claim 1, wherein the polyacrylamide gel seals pores in the sand.
9. The system of claim 1, wherein the wellhead component comprises a landing base.
10. The system of claim 1, wherein the wellhead component comprises a surface casing.
11. The system of claim 10, wherein the polyacrylamide gel covers an exterior surface of an additional wellhead component.
12. The system of claim 11, wherein the additional wellhead component comprises a landing base.
13. The system of claim 1, wherein the system comprises a well selected from the group consisting of an oil well, a gas well and a water well.
14. The system of claim 1, wherein the volume occupied by the polyacrylamide gel is at least 1 ft.sup.3.
15. The system of claim 1, wherein the bottom of the well cellar has an opening, and the wellhead comprises a plurality of casings that pass through and extend beneath the bottom of the well cellar.
16. The system of claim 15, wherein the plurality of casings comprise a surface casing that houses the other casings.
17. A well, comprising: a well cellar comprising a bottom and sidewalls extending from the bottom; a wellhead comprising an aboveground region extending above the well cellar and a belowground region in the well cellar, the belowground region of the wellhead comprising a component having an exterior surface; a polyacrylamide gel occupying a volume extending from the exterior surface of the component to the bottom and sidewalls of the well cellar; and sand covering an upper surface of the polyacrylamide gel, wherein the well comprises a member selected from the group consisting of an oil well, a gas well and a water well.
18. A method of reducing corrosion of an exterior surface of a wellhead component in a well cellar, the method comprising: disposing a polyacrylamide gel within the well cellar so that the polyacrylamide gel covers the exterior surface of the wellhead component and extends to a bottom and sidewalls of the well cellar; and covering the polyacrylamide gel with sand.
19. The method of claim 18, wherein disposing the polyacrylamide gel within the well cellar comprises: disposing polyacrylamide within the well cellar; and adding water to the polyacrylamide to form the polyacrylamide gel.
20. (canceled)
21. The well of claim 17, wherein the polyacrylamide gel seals pores in the sand.
22. The well of claim 17, wherein polyacrylamide in the polyacrylamide gel is uncrosslinked.
23. The method of claim 18, wherein the polyacrylamide gel seals pores in the sand.p
Description
BRIEF DESCRIPTION OF THE FIGURES
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032]
[0033] The system 1000 includes a well cellar 1010 having a bottom 1020 and sidewalls 1030. The uppermost surface 1012 of the well cellar 1010 substantially corresponds to the surface 1040 of the earth such that the well cellar 1010 is generally located belowground.
[0034] The system 1000 also includes a wellhead 1050 having an aboveground wellhead region 1060 that extends above the surface 1040 and a belowground wellhead region 1070 that extends below the surface 1040, through the well cellar 1010, and through an opening 1025 in the bottom 1020 of the well cellar 1010. Generally, the wellhead regions 1060 and 1070 have a variety of different components. As an example, as shown in
[0035]
[0036]
[0037]
[0038] Referring again to
[0039] In general, the polyacrylamide gel 1080 contains a polyacrylamide and water. Generally, the polyacrylamide gel is formed by exposing polyacrylamide to water such that the polyacrylamide swells to form the gel, after which the gel 1080 can be disposed in the well cellar 1010 using any appropriate method. In some embodiments, the polyacrylamide is disposed in the well cellar 1010 in dry solid form, such as a powder. Water is then added to form the gel, after which the sand 1090 is disposed on top of the gel 1080. In certain embodiments, the water and polyacrylamide are first combined (with mixing if appropriate), and then disposed in the well cellar 1010 to form the gel 1080, after which the sand 1090 is disposed on top of the gel 1080.
[0040] In some embodiments, the gel 1080 contains at least 1 kg (e.g., at least 10 kg, at least 100 kg) polyacrylamide and at most 1000 kg (e.g., at most 500 kg, at most 300 kg) polyacrylamide.
[0041] In certain embodiments, the gel 1080 contains at least 0.1 bbl (e.g., at least 0.25 bbl, at least 0.5 bbl) water and at most 5 bbl (e.g., at most 2 bbl, at most 1 bbl) water.
[0042] In some embodiments, the gel 1080 contains at least 5 (e.g. 5.88, at least 10, at least 15, at least 20, at least 25, at least 30, at least 35, at least 40, at least 45, at least 50, at least 55, at least 55.71) weight percent (w.t. %) polyacrylamide and at most 56, (e.g. 55.7, at most 55, at most 50, at most 45, at most 40, at most 35, at most 30, at most 25, at most 20, at most 15, at most 10) wt. % polyacrylamide.
[0043] In some embodiments, the gel 1080 contains at least 44 (e.g. 44.29, at least 45, at least 50, at least 55, at least 60, at least 65, at least 70, at least 75, at least 80, at least 85, at least 90, at least 94, at least 94.12) w.t. % water and at most 95 (e.g. at most 94.12, at most, 94, at most 90, at most 85, at most 80, at most 75, at most 70, at most 65, at most 60, at most 55, at most 50, at most 45) wt. % water.
[0044] Optionally, the gel 1080 can contain one or more additional constituents, such as a corrosion inhibitor (e.g., O-3670R) and/or an oxygen scavenger (e.g., sodium sulfite (Na.sub.2SO.sub.3), OXYGON™ or FE-20). In some embodiments, the gel 1080 contains at least 0.04 wt. % (e.g., at least 0.07 wt. %, at least 0.1 wt. %) oxygen scavenger and at most 1 wt. % (e.g., at most 0.9 wt. %, at most 0.8 wt. %) oxygen scavenger. In certain embodiments, the gel 1080 contains at least 5 wt. % (e.g., at least 8 wt. %, at least 10 wt. %) corrosion inhibitor and at most 15 wt. % (e.g., at most 12 wt. %) corrosion inhibitor.
[0045] Generally, the polyacrylamide contains a repeat unit having the following chemical structure.
##STR00001##
[0046] In certain embodiments, the polyacrylamide can be a copolymer that contains the above repeat unit and one or more different repeat units. Examples of such repeated units (in addition to acrylamide) include but are not limited to N,N′-methylenebisacrylamide, N,N′-bisacrylylcystamine, N,N′- diallyltartardiamide, N,N′(1,2-dihydroxyethylene) bisacrylamide, ethylene diacrylate, and Piperazine diacrylate.
[0047] In some embodiments, the polyacrylamide is substantially uncrosslinked. For example, the polyacrylamide has a crosslinking density of less than 10.sup.−8 (e.g., less than 10.sup.−9, less than 10.sup.−10) mol/cm.sup.3. In certain embodiments, the polyacrylamide is a linear polyacrylamide, i.e., the polyacrylamide is completely uncrosslinked.
[0048] In certain embodiments, the polyacrylamide can have a number average molecular weight of at least 1,000 (e.g. at least 10,000, at least 40,000, at least 50,000, at least 100,000, at least 150,000, at least 200,000, at least 300,000 at least 400,000, at least 500,000, at least 520,000, at least 600,000, at least 700,000, at least 800,000, at least 900,000, at least 1,000,000, at least 2,000,000, at least 3,000,000, at least 4,000,000, at least 5,000,000, at least 6,000,000, at least 7,000,000, at least 8,000,000, at least 9,000,000) g/mol and at most 10,000,000 (e.g. at most 9,000,000, at most 8,000,000, at most 7,000,000, at most 6,000,000, at most 5,000,000, at most 4,000,000, at most 3,000,000, at most 2,000,000, at most 1,000,000, at most 900,000, at most 800,000, at most 700,000, at most 600,000, at most 520,000, at most 500,000, at most 400,000, at most 300,000, at most 200,000, at most 150,000, at most 100,000, at most 50,000, at most 40,000, at most 10,000) g/mol.
[0049] In certain embodiments, the polyacrylamide can have a weight average molecular weight of at least 1,000 (e.g. at least 10,000, at least 40,000, at least 50,000, at least 100,000, at least 150,000, at least 200,000, at least 300,000 at least 400,000, at least 500,000, at least 520,000, at least 600,000, at least 700,000, at least 800,000, at least 900,000, at least 1,000,000, at least 2,000,000, at least 3,000,000, at least 4,000,000, at least 5,000,000, at least 6,000,000, at least 7,000,000, at least 8,000,000, at least 9,000,000) g/mol and at most 10,000,000 (e.g. at most 9,000,000, at most 8,000,000, at most 7,000,000, at most 6,000,000, at most 5,000,000, at most 4,000,000, at most 3,000,000, at most 2,000,000, at most 1,000,000, at most 900,000, at most 800,000, at most 700,000, at most 600,000, at most 520,000, at most 500,000, at most 400,000, at most 300,000, at most 200,000, at most 150,000, at most 100,000, at most 50,000, at most 40,000, at most 10,000) g/mol.
[0050] In some embodiments, the volume occupied by the gel is at least 1 ft.sup.3 (e.g., at least 5 ft.sup.3, at least 10 ft.sup.3) and at most 30 ft.sup.3 (e.g., at most 25 ft.sup.3, at most 20 ft.sup.3).
EXAMPLE
[0051] A layer of dry sand was disposed in a test tube to mimic a well cellar. 1.25 g of polyacrylamide powder (OmniPur® Linear Polyacrylamide, MERCK) was disposed on the sand to form a polyacrylamide layer.
OTHER EMBODIMENTS
[0052] While certain embodiments have been disclosed, the disclosure is not limited to such embodiments.
[0053] As an example, while embodiments have been disclosed in which a layer of sand is disposed on top of the layer of polyacrylamide gel, in some embodiments, a layer of sand is not present above the polyacrylamide gel. As an example, in certain embodiments, the polyacrylamide gel may be covered with a different material, such as but not limited to silica, alumina, or small gravel rocks. As another example, in some embodiments, the polyacrylamide gel extends to the upper surface of the well cellar, i.e., the surface of the earth.