IP Library › Granted Patent US 12,612,846
Granted Patent B2
US 12,612,846 · App. 19/247,046 · Granted Apr 28, 2026

Catcher assembly for a plunger

Inventors: Garrett S. Boyd (Granbury, TX); Mitchell A. Boyd (Haslet, TX); Darrell Mitchum (Oakhurst, TX)
Assignee: Flowco MasterCo LLC
E21B43/121
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Quick Facts
Patent No.
US 12,612,846
App. No.
19/247,046
Granted
Apr 28, 2026
Kind
B2
Abstract

An electrically operated catcher mechanism that is part of a lubricator and catcher unit used in conjunction with a bypass plunger in an oil or gas well include an electrically operated mechanism to move between the catch and release positions. The electrically operated catcher mechanism includes a cam rotated by a motor which causes the device to move between catch and release positions.

Claims (31)

1 . A plunger catcher mechanism configured to catch and release a plunger in a lubricator mounted to an oil or gas well, comprising:

a piston housing configured to be coupled to a lubricator mounted to an oil or gas well;

a piston assembly that is slidably mounted in the piston housing, wherein the piston assembly is configured to move in a first direction to urge a catcher element towards an internal bore of a portion of the lubricator that receives a plunger and to move in a second direction opposite the first direction;

an actuator housing that is attached to or that is an integral part of the piston housing;

a pin plate that is rotatably mounted to the actuator housing, the pin plate including a pin that extends from a first surface of the plate and that moves in a circular path as the pin plate rotates; and

a yoke that is operatively coupled to the piston assembly, the yoke including an elongated yoke slot that extends in a second direction that is substantially perpendicular to the first direction, wherein the pin of the pin plate extends into the yoke slot such that rotation of the pin plate causes the yoke and the piston assembly to move in the first direction.

2 . The plunger catcher mechanism of claim 1 , wherein a first side of the yoke is coupled to a first end of an inner shaft that is slidably mounted in the actuator housing, wherein a second end of the inner shaft is coupled to the piston assembly such that the piston assembly and the inner shaft move together.

3 . The plunger catcher mechanism of claim 2 , wherein a central longitudinal axis of the inner shaft is substantially aligned with a central longitudinal axis of the piston assembly.

4 . The plunger catcher mechanism of claim 2 , wherein a receiving aperture is provided on the second end of the inner shaft and an end of the piston assembly is mounted in the receiving aperture.

5 . The plunger catcher mechanism of claim 2 , wherein a receiving aperture is provided on the second end of the inner shaft and an end of the piston assembly is removably mounted in the receiving aperture via a coupling pin.

6 . The plunger catcher mechanism of claim 2 , wherein a second side of the yoke is coupled to a first end of an outer shaft that is slidably mounted in the actuator housing such that the inner and outer shafts move together.

7 . The plunger catcher mechanism of claim 6 , wherein a central longitudinal axis of the inner shaft is substantially aligned with a central longitudinal axis of the outer shaft.

8 . The plunger catcher mechanism of claim 1 , wherein a plate nut extends from a second side of the pin plate, the plate nut being configured to be operatively coupled to a rotating shaft of an electric motor.

9 . The plunger catcher mechanism of claim 8 , further comprising an electric motor mounted to the actuator housing and operatively coupled to the plate nut of the pin plate such that rotation of a shaft of the electric motor causes the piston assembly to move in at least the first direction.

10 . The plunger catcher mechanism of claim 9 , further comprising a gearing mechanism that operatively couples the shaft of the electric motor to the plate nut of the pin plate.

11 . The plunger catcher mechanism of claim 1 , wherein the yoke and the pin plate are configured such that rotating the pin plate 180° in a first rotational direction causes the yoke and the piston assembly to move in the first direction, and such that rotating the pin plate an additional 180° in the first rotational direction causes the yoke and piston assembly to move in the second direction.

12 . The plunger catcher mechanism of claim 11 , wherein the yoke and the pin plate also are configured such that rotating the pin plate 180° in a second rotational direction opposite the first rotational direction causes the yoke and the piston assembly to move in the first direction, and such that rotating the pin plate an additional 180° in the second rotational direction causes the yoke and piston assembly to move in the second direction.

13 . The plunger catcher mechanism of claim 11 , wherein the yoke and pin plate also are configured such that rotation of the pin plate in a first rotational direction causes the piston assembly to move in the first direction, and rotation of the pin plate in a second rotational direction opposite the first rotational direction causes the piston assembly to move in the second direction.

14 . A plunger catcher, comprising:

a piston housing configured to be coupled to a lubricator mounted to an oil or gas well;

a piston that is slidably mounted in the piston housing, wherein the piston assembly is configured to move in a first direction to urge a catcher element towards an internal bore of a portion of the lubricator that receives a plunger and to move in a second direction opposite the first direction;

an actuator housing that is attached to or that is an integral part of the piston housing;

a pin plate that is rotatably mounted to the actuator housing, the pin plate including a pin that extends from a first surface of the plate at a location offset from the center of rotation of the pin plate such that the pin moves in a circular path as the pin plate rotates around the center of rotation; and

a yoke that is operatively coupled to the piston and the pin of the pin plate such that rotation of the pin plate causes the piston to move in the first and second directions.

15 . The plunger catcher of claim 14 , wherein the yoke includes an elongated slot, and wherein the pin of the pin plate is received in the slot such that rotation of the pin plate causes the piston to move in the first and second direction.

16 . The plunger catcher of claim 14 , further comprising an inner shaft that is slidably mounted on the actuator housing, wherein a first end of the inner shaft is coupled to a first side of the yoke and wherein a second end of the inner shaft is coupled to the piston such that the piston and the inner shaft move together.

17 . The plunger catcher of claim 16 , further comprising an outer shaft that is slidably mounted on the actuator housing, wherein a first end of the outer shaft is coupled to a second side of the yoke such that the inner and outer shafts move together with the yoke.

18 . The plunger catcher of claim 16 , wherein a central longitudinal axis of the inner shaft is substantially aligned with a central longitudinal axis of the piston.

19 . The plunger catcher of claim 14 , wherein the yoke and the pin plate are configured such that rotating the pin plate 180° in a first rotational direction causes the yoke and the piston to move in the first direction, and such that rotating the pin plate an additional 180° in the first rotational direction causes the yoke and piston to move in the second direction.

20 . The plunger catcher of claim 19 , wherein the yoke and the pin plate also are configured such that rotating the pin plate 180° in the first rotational direction causes the yoke and the piston assembly to move in the first direction, and such that rotating the pin plate 180° in a second rotational direction opposite the first rotational direction causes the yoke and piston assembly to move in the second direction.

21 . The plunger catcher of claim 14 , wherein the yoke and pin plate also are configured such that rotation of the pin plate in a first rotational direction causes the piston assembly to move in the first direction, and rotation of the pin plate in a second rotational direction opposite the first rotational direction causes the piston assembly to move in the second direction.

Continuity (4)
Continuation In Part 18815511 · Aug 26, 2024
Continuation 18508696 · Nov 14, 2023
Provisional Application 63425231 · Nov 14, 2022
Related Publication 20250314159A1 · Oct 9, 2025
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