Methods, apparatus and systems for creating bismuth alloy plugs for abandoned wells

US11739609B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11739609-B2
Application numberUS-201915733723-A
CountryUS
Kind codeB2
Filing dateFeb 8, 2019
Priority dateApr 3, 2018
Publication dateAug 29, 2023
Grant dateAug 29, 2023

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A wellbore is plugged using a bismuth alloy. In one embodiment, the bismuth alloy comprises an alloy of bismuth and tin. In another embodiment, the bismuth alloy comprises an alloy of bismuth and silver. The wellbore can be arranged so that a liquid bismuth alloy sets with an excess pressure of the plug relative to the borehole fluid pressure along a desired seal height distance. Other aspects are described and claimed.

First claim

Opening claim text (preview).

What is claimed is: 1. A method for plugging a wellbore having a casing and cement surrounding the casing and traversing a formation, comprising: using at least one tool located in the wellbore, removing the casing and the cement of the wellbore along a selected portion of the wellbore to form a cavity with a shoulder, wherein part of the cavity forms an interface to the formation; using at least one tool located in the wellbore, forming at least one notch in the cement that extends upward from the cavity; using at least one bismuth alloy deployment tool located in the wellbore, deploying a bismuth alloy at the interface to the formation and liquifying the deployed bismuth alloy; and permitting the liquified bismuth alloy to solidify to form a plug in the wellbore at the interface to the formation; wherein the bismuth alloy comprises an alloy of bismuth and silver or an alloy of bismuth and tin. 2. The method according to claim 1 , further comprising: using at least one tool located in the wellbore, applying pressure to force the liquified bismuth alloy into the at least one notch such that the plug includes solid bismuth alloy parts that extend into the at least one notch. 3. The method according to claim 1 , wherein: the interface to the formation is located at a permeable layer of the formation. 4. The method according to claim 3 , further comprising: using at least one tool located in the wellbore, applying pressure to force the liquified bismuth alloy into the formation at the interface to the formation such that the plug includes solid bismuth alloy parts that extend into the permeable layer of the formation. 5. The method according to claim 3 , further comprising: prior to deploying the bismuth alloy at the interface to the formation, deploying a barrier in the wellbore below the cavity; and determining an amount of the bismuth alloy to deploy by determining a minimum volume of bismuth alloy V TA +V a , wherein V TA is a total bismuth alloy volume other than cylindrical portions of the plug and V a is a bismuth alloy volume of the cylindrical portions of the plug, and wherein V TA =V A +V C +V u , wherein V A is a volume of the bismuth alloy that penetrates into the permeable layer at the interface to the formation, V C is a volume of grooves, if any, formed in a non-permeable layer, if present, at the interface to the formation, and V u is a volume between the barrier and the cavity. 6. The method according to claim 1 , wherein: the interface to the formation is located at a non-permeable layer of the formation. 7. The method according to claim 6 , wherein: using at least one tool located in the wellbore, forming at least one groove in the non-permeable layer of the formation at the interface to the formation; and using at least one tool located in the wellbore, applying pressure to force the liquified bismuth alloy into the at least one groove such that the plug includes solid bismuth alloy parts that extend into the at least one groove. 8. The method according to claim 7 , further comprising: prior to deploying the bismuth alloy at the interface to the formation, deploying a barrier in the wellbore below the cavity; and determining an amount of the bismuth alloy to deploy by determining a minimum volume of bismuth alloy V TA +V a , wherein V TA is a total bismuth alloy volume other than cylindrical portions of the plug and V a is a bismuth alloy volume of the cylindrical portions of the plug, and wherein V TA =V A +V C +V u , wherein V A is a volume of the bismuth alloy that penetrates into a permeable layer, if present, at the interface to the formation, V C is a volume of the at least one groove formed in the non-permeable layer at the interface to the formation, and V u is a volume between the barrier and the cavity. 9. The method according to claim 6 , further comprising: prior to deploying the bismuth alloy at the interface to the formation, deploying a barrier in the wellbore below the cavity; and determining an amount of the bismuth alloy to deploy by determining a minimum volume of bismuth alloy V TA +V a , wherein V TA is a total bismuth alloy volume other than cylindrical portions of the plug and V a is a bismuth alloy volume of the cylindrical portions of the plug, and wherein V TA =V A +V C +V u , wherein V A is a volume of the bismuth alloy that penetrates into a permeable layer, if present, at the interface to the formation, V C is a volume of any grooves, if any, formed in the non-permeable layer at the interface to the formation, and V u is a volume between the barrier and the cavity. 10. A method according to claim 6 , further comprising using at least one tool located in the wellbore, forming at least one groove in the non-permeable layer of the formation at the interface to the formation, wherein forming the at least one groove comprises etching at least one continuous groove in the non-permeable layer at the interface to generate a pathway for borehole fluid to move upwards and above the interface. 11. The method of claim 10 , wherein the plug comprises the solidified bismuth alloy having a solid first cylindrical body portion, a solid second cylindrical body portion of smaller diameter than the first cylindrical body portion, a shoulder being defined at a transition from the first cylindrical body portion to the second cylindrical body portion, and at least one continuous thread extending around and running along the first cylindrical body portion to the top of the first cylindrical body portion. 12. The method of claim 11 , wherein the shoulder is tapered in diameter from the first cylindrical body portion to the second cylindrical body portion. 13. A method according to claim 6 , further comprising using at least one tool located in the wellbore, forming at least one groove in the non-permeable layer of the formation at the interface to the formation, wherein forming the at least one groove comprises etching a plurality of vertical grooves and a plurality of arced grooves that connect the vertical grooves in the non-permeable layer at the interface to generate a pathway for borehole fluid to move upwards and above the interface. 14. The method of claim 13 , wherein the plug comprises the solidified bismuth alloy having a solid first cylindrical body portion, a solid second cylindrical body portion of smaller diameter than the first cylindrical body portion, a shoulder being defined at a transition from the first cylindrical body portion to the second cylindrical body portion, a plurality of vertical ribs extending along the first cylindrical body portion to the top of the first cylindrical body portion, and a plurality of arced ribs connecting the vertical ribs. 15. A method according to claim 6 , further comprising using at least one tool located in the wellbore, forming at least one groove in the non-permeable layer of the formation at the interface to the formation, wherein forming the at least one groove comprises etching a plurality of vertical grooves and a plurality of horizontal grooves that connect the vertical grooves in the non-permeable layer at the interface to generate a pathway for borehole fluid to move upwards and above the interface. 16. The method of claim 15 , wherein the plug comprises the solidified bismuth alloy having a solid first cylindrical body portion, a solid second cylindrical body portion of smaller diameter than the first cylindrical body portion, a shoulder being defined at a transition from the first cylindrical body portion to the second cylindrical body portion, a plurality of vertical ribs extending

Assignees

Inventors

Classifications

  • including a metal-to-metal seal element · CPC title

  • E21B33/13Primary

    Methods or devices for cementing, for plugging holes, crevices or the like · CPC title

  • for plugging · CPC title

  • containing inorganic binders, e.g. Portland cement · CPC title

  • C22C12/00Primary

    Alloys based on antimony or bismuth · CPC title

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What does patent US11739609B2 cover?
A wellbore is plugged using a bismuth alloy. In one embodiment, the bismuth alloy comprises an alloy of bismuth and tin. In another embodiment, the bismuth alloy comprises an alloy of bismuth and silver. The wellbore can be arranged so that a liquid bismuth alloy sets with an excess pressure of the plug relative to the borehole fluid pressure along a desired seal height distance. Other aspects …
Who is the assignee on this patent?
Schlumberger Technology Corp
What technology area does this patent fall under?
Primary CPC classification E21B33/1212. Mapped technology areas include Fixed Constructions.
When was this patent published?
Publication date Tue Aug 29 2023 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 9 related publications on this page (citations in our corpus or others sharing the same primary CPC).