IP Library › Granted Patent US 12,607,096
Granted Patent B2
US 12,607,096 · App. 18/897,179 · Granted Apr 21, 2026

Multilateral whipstock assembly employing degradable material

Inventors: Brian Williams Cho (Spring, TX); Jamie Revelle Weber (Carrollton, TX)
Assignee: Halliburton Energy Services, Inc.
E21B41/0035E21B41/0042E21B2200/05E21B2200/08
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Quick Facts
Patent No.
US 12,607,096
App. No.
18/897,179
Filed
Sep 26, 2024
Granted
Apr 21, 2026
Kind
B2
Art Unit
3672
USPC
166/117.5
Abstract

Provided is a multilateral whipstock assembly, a well system, and a method. The multilateral whipstock assembly, in one aspect, includes a whipstock body, the whipstock body having a whipface and an opening extending therethrough, and degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly.

Claims (44)

1 . A multilateral whipstock assembly, comprising:

a whipstock body, the whipstock body having a whipface and an opening extending therethrough; and

degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly, wherein the opening includes a first smaller width opening and a second larger width opening, and further wherein the degradable material is located in the second larger width opening, and further including a lock ring retaining the degradable material within the second larger width opening.

2 . The multilateral whipstock assembly as recited in claim 1 , wherein the degradable material includes one or more degradable material outer diameter clutch ring portions, the one or more degradable material outer diameter clutch ring portions configured to engage with one or more slots in the second larger opening to rotationally couple the degradable material to the whipstock body.

3 . The multilateral whipstock assembly as recited in claim 1 , wherein the degradable material includes one or more degradable material inner diameter slots, the one or more degradable material inner diameter slots configured to engage with one or more smaller assembly clutch ring portions of the smaller assembly to rotationally fix the smaller assembly relative to the degradable material.

4 . The multilateral whipstock assembly as recited in claim 1 , wherein the degradable material has one or more circulation flutes extending along a length thereof, the one or more circulation flutes configured to permit reactive fluid to circulate past the degradable material to permit the degradable material to degrade over time and allow the smaller assembly to release from the whipstock body.

5 . The multilateral whipstock assembly as recited in claim 1 , wherein the degradable material is a metal based degradable material.

6 . The multilateral whipstock assembly as recited in claim 5 , wherein the metal based degradable material is an expandable metal configured to expand in response to hydrolysis and then degrade to allow the smaller assembly to release from the whipstock body.

7 . The multilateral whipstock assembly as recited in claim 6 , wherein the expandable metal is configured to expand in response to hydrolysis and after the hydrolysis has completed then degrade to allow the smaller assembly to release from the whipstock body.

8 . The multilateral whipstock assembly as recited in claim 1 , wherein the degradable material is a polymer based degradable material.

9 . A well system, comprising:

a main wellbore located within a subterranean formation; and

a multilateral whipstock assembly located in the main wellbore proximate a junction between the main wellbore and where a lateral wellbore is to be formed, the multilateral whipstock assembly including:

a whipstock body, the whipstock body having a whipface and an opening extending therethrough; and

degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly, wherein the opening includes a first smaller width opening and a second larger width opening, and further wherein the degradable material is located in the second larger width opening, and further including a lock ring retaining the degradable material within the second larger width opening.

10 . The well system as recited in claim 9 , wherein the degradable material includes one or more degradable material outer diameter clutch ring portions, the one or more degradable material outer diameter clutch ring portions configured to engage with one or more slots in the second larger opening to rotationally couple the degradable material to the whipstock body.

11 . The well system as recited in claim 9 , wherein the degradable material includes one or more degradable material inner diameter slots, the one or more degradable material inner diameter slots configured to engage with one or more smaller assembly clutch ring portions of the smaller assembly to rotationally fix the smaller assembly relative to the degradable material.

12 . The well system as recited in claim 9 , wherein the degradable material has one or more circulation flutes extending along a length thereof, the one or more circulation flutes configured to permit reactive fluid to circulate past the degradable material to permit the degradable material to degrade over time and allow the smaller assembly to release from the whipstock body.

13 . The well system as recited in claim 9 , wherein the degradable material is a metal based degradable material.

14 . The well system as recited in claim 13 , wherein the metal based degradable material is an expandable metal configured to expand in response to hydrolysis and then degrade to allow the smaller assembly to release from the whipstock body.

15 . The well system as recited in claim 14 , wherein the expandable metal is configured to expand in response to hydrolysis and after the hydrolysis has completed then degrade to allow the smaller assembly to release from the whipstock body.

16 . The well system as recited in claim 9 , wherein the degradable material is a polymer based degradable material.

17 . A method for forming a well system, comprising:

forming a main wellbore within a subterranean formation; and

positioning a multilateral whipstock assembly in the main wellbore proximate a junction between the main wellbore and where a lateral wellbore is to be formed, the multilateral whipstock assembly including:

a whipstock body, the whipstock body having a whipface and an opening extending therethrough; and

degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly, wherein the opening includes a first smaller width opening and a second larger width opening, and further wherein the degradable material is located in the second larger width opening, and further including a lock ring retaining the degradable material within the second larger width opening.

18 . The method as recited in claim 17 , further including circulating reactive fluid about the degradable material to permit the degradable material to degrade.

19 . The method as recited in claim 18 , wherein the two part milling and running tool is coupled to the multilateral whipstock assembly, the two part milling and running tool including:

a conveyance;

the smaller assembly coupled to an end of the conveyance; and

the larger bit assembly slidably coupled to the conveyance, the smaller assembly and larger bit assembly configured to slidingly engage one another downhole to form the combined bit assembly and allow the smaller assembly to release from the whipstock body, the degradable material axially fixing the smaller assembly relative to the whipstock body, wherein the circulating permits the degradable material to degrade and allow the smaller assembly to release from the whipstock body.

20 . The method as recited in claim 19 , wherein a coupling mechanism removably couples the larger bit assembly to the whipface of the whipstock body, and further including sliding the smaller assembly relative to the larger bit assembly to form the combined bit assembly after the smaller assembly has released from the whipstock body, and then applying force to the combined bit assembly to shear the coupling mechanism and release the two part milling and running tool from the multilateral whipstock assembly.

21 . The method as recited in claim 20 , further including milling casing located within the main wellbore using the combined bit assembly after shearing the coupling mechanism.

22 . The method as recited in claim 20 , further including drilling a lateral wellbore off of the main wellbore using the combined bit assembly after shearing the coupling mechanism.

23 . A multilateral whipstock assembly, comprising:

a whipstock body, the whipstock body having a whipface and an opening extending therethrough; and

degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly, wherein the degradable material includes one or more degradable material inner diameter slots, the one or more degradable material inner diameter slots configured to engage with one or more smaller assembly clutch ring portions of the smaller assembly to rotationally fix the smaller assembly relative to the degradable material.

24 . A multilateral whipstock assembly, comprising:

a whipstock body, the whipstock body having a whipface and an opening extending therethrough; and

degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly, wherein the degradable material has one or more circulation flutes extending along a length thereof, the one or more circulation flutes configured to permit reactive fluid to circulate past the degradable material to permit the degradable material to degrade over time and allow the smaller assembly to release from the whipstock body.

25 . A multilateral whipstock assembly, comprising:

a whipstock body, the whipstock body having a whipface and an opening extending therethrough; and

degradable material located in the opening, the degradable material configured to axially fix a smaller assembly of a two part milling and running tool relative to the whipstock body, the degradable material configured to degrade over time and allow the smaller assembly to release from the whipstock body and axially slide relative to a larger bit assembly of the two part milling and running tool to form a combined bit assembly, the degradable material is an expandable metal configured to expand in response to hydrolysis and then degrade to allow the smaller assembly to release from the whipstock body.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2024
From: CHO, BRIAN WILLIAMS; WEBER, JAMIE REVELLE
To: HALLIBURTON ENERGY SERVICES, INC.
Reel/Frame 068705/0262 →
Continuity (5)
Provisional Application 63586002 · Dec 5, 2023
Provisional Application 63586018 · Dec 5, 2023
Provisional Application 63586022 · Sep 28, 2023
Provisional Application 63586012 · Sep 28, 2023
Related Publication 20250109647A1 · Apr 3, 2025
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