IP Library › Granted Patent US 11,591,869
Granted Patent B2
US 11,591,869 · App. 17/185,390 · Granted Feb 28, 2023

Variable flow diverter downhole tool

Inventor: Kevin Dewayne Jones (Clinton, OK)
Assignee: Tenax Energy Solutions, LLC
E21B21/103E21B34/06E21B37/00
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Quick Facts
Patent No.
US 11,591,869
App. No.
17/185,390
Granted
Feb 28, 2023
Kind
B2
Abstract

A downhole tool configured to vary the amount of pressurized fluid delivered to other tools incorporated into a bottom hole assembly, such as a mud motor. The tool comprises an inner element installed within an outer sleeve. The inner element is configured to move between three different positions relative to the outer sleeve. In a first position, pressurized fluid is diverted away from downstream tools within the bottom hole assembly. In a second and third position, pressurized fluid is directed towards downstream tools. Movement of the tool between the different positions is caused by varying external forces applied to the tool.

Claims (74)

1. A downhole tool, comprising:

an elongate outer sleeve, comprising:

an upper internal chamber having a base;

a lower internal chamber longitudinally spaced from the upper internal chamber and having one or more outer ports interconnecting the lower chamber with an exterior surface of the outer sleeve; and

a constricted passageway joining the upper and lower internal chambers;

an elongate inner element having opposed ends and a longitudinal bore extending therethrough, and comprising:

an enlarged upper body formed at one of the ends, the upper body having a base and being situated within the upper chamber;

an enlarged lower body formed at the opposite end, in which a portion of the lower body is situated within the lower chamber and has one or more laterally-extending inner ports that join the bore to an exterior surface of the lower body; and

a constricted connector that rigidly joins the upper and lower bodies and extends within the passageway; and

a spring installed within the upper chamber and situated between the base of the upper body and the base of the upper chamber;

in which at least one outer port aligns with a corresponding one of the inner ports when the spring is relaxed; and

in which the lower chamber is sized such that the corresponding one of the inner ports may be positioned on either longitudinal side of the associated outer port, in a non-aligning relationship thereto.

2. The downhole tool of claim 1 , in which the lower body and the lower chamber are constrained against relative rotation.

3. The downhole tool of claim 1 , in which the outer sleeve is of multi-piece construction.

4. The downhole tool of claim 1 , in which the inner element is of multi-piece construction.

5. The downhole tool of claim 1 , in which the inner element is configured to move relative to the outer sleeve such that the inner element is movable between:

a first position, in which the inner ports are at least partially aligned with the outer ports;

a second position, in which the inner ports are positioned upstream from the outer ports; and

a third position, in which the inner ports are positioned downstream from the outer ports.

6. A system, comprising:

a cased wellbore;

an elongate drill string installed within the wellbore; and

the downhole tool of claim 1 installed within the wellbore and incorporated into the drill string.

7. A downhole tool, comprising:

an elongate outer sleeve having opposed first and second surfaces interconnected by an internal chamber, and having one or more outer ports interconnecting the internal chamber with an exterior surface of the outer sleeve;

an elongate inner element, in which a portion of the inner element is installed within the internal chamber, the inner element having opposed ends and a longitudinal bore extending therethrough, and comprising:

an enlarged upper body formed at one of the ends, the upper body situated within the internal chamber;

an enlarged lower body formed at the opposite end, the lower body having one or more laterally-extending inner ports formed therein and extending therethrough, and comprising a stop element positioned outside of the internal chamber; and

a constricted connector that rigidly joins the upper and lower bodies;

in which the inner element is configured to move relative to the outer sleeve such that the inner element is movable between:

a first position, in which at least one of the inner ports is at least partially aligned with a corresponding one of the outer ports;

a second position, in which at least one of the inner ports is not aligned with a corresponding one of the outer ports and the stop element is engaging the second surface of the outer sleeve; and

a third position, in which at least one of the inner ports is not aligned with a corresponding one of the outer ports and the stop element is spaced from the second surface of the outer sleeve.

8. The downhole tool of claim 7 , in which the outer sleeve is of multi-piece construction.

9. The downhole tool of claim 7 , in which the internal chamber of the outer sleeve comprises:

an upper internal chamber having a base;

a lower internal chamber longitudinally spaced from the upper internal chamber and having the one or more outer ports; and

a constricted passageway joining the upper and lower internal chambers.

10. The downhole tool of claim 7 , further comprising a spring disposed within the internal chamber and positioned between the upper body and the lower body of the inner element.

11. The downhole tool of claim 7 , in which the outer sleeve and the inner element are constrained against relative rotation.

12. A system, comprising:

a cased wellbore;

an elongate drill string installed within the wellbore; and

the downhole tool of claim 7 installed within the wellbore and incorporated into a bottom hole assembly attached to the drill string.

13. The system of claim 12 , further comprising:

a hardened object disposed within the cased wellbore;

a milling tool incorporated into the bottom hole assembly;

in which the milling tool engages the hardened object and the downhole tool is in the second position.

14. A method, comprising:

incorporating the downhole tool of claim 7 into a bottom hole assembly attached to a drill string;

lowering the bottom hole assembly into a cased wellbore while the downhole tool is in the first position.

15. The method of claim 14 , further comprising:

pulling on an upstream end of the drill string and thereby moving the downhole tool into the third position.

16. A system comprising:

the downhole tool of claim 7 ; and

a flow of pressurized fluid within the inner element.

17. The system of claim 16 , in which the downhole tool is in the first position and the flow of pressurized fluid passes through the inner and outer ports.

18. The system of claim 16 , in which the downhole tool is in the second position and the flow of pressurized fluid does not pass through the inner and outer ports.

19. The system of claim 16 , in which the downhole tool is in the third position and the flow of pressurized fluid does not pass through the inner and outer ports.

20. A downhole tool, comprising:

an elongate outer sleeve, comprising:

an upper internal chamber having a base;

a lower internal chamber longitudinally spaced from the upper internal chamber and having one or more outer ports interconnecting the lower chamber with an exterior surface of the outer sleeve; and

a constricted passageway joining the upper and lower internal chambers;

an elongate inner element having opposed ends and a longitudinal bore extending therethrough, and comprising:

an enlarged upper body formed at one of the ends, the upper body having a base and being situated within the upper chamber;

an enlarged lower body formed at the opposite end, in which a portion of the lower body is situated within the lower chamber and has one or more laterally-extending inner ports that join the bore to an exterior surface of the lower body; and

a constricted connector that rigidly joins the upper and lower bodies and extends within the passageway; and

a spring installed within the upper chamber and situated between the base of the upper body and the base of the upper chamber;

in which at least one outer port aligns with a corresponding one of the inner ports when the spring is relaxed; and

in which the inner element is configured to move relative to the outer sleeve such that the inner element is movable between:

a first position, in which the inner ports are at least partially aligned with the outer ports;

a second position, in which the inner ports are positioned upstream from the outer ports; and

a third position, in which the inner ports are positioned downstream from the outer ports.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2025
From: TENAX ENERGY SOLUTIONS, LLC
To: TENAX ENERGY SYSTEMS, LLC
Reel/Frame 072283/0875 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2021
From: JONES, KEVIN DEWAYNE
To: TENAX ENERGY SOLUTIONS, LLC
Reel/Frame 055926/0507 →
Continuity (2)
Provisional Application 62983599 · Feb 29, 2020
Related Publication 20210270100A1 · Sep 2, 2021