IP Library Granted Patent US 12,398,532
Granted Patent B2
US 12,398,532 · App. 18/734,339 · Granted Aug 26, 2025

Marine vessels and methods of using same

Inventors: John Crowson (Lovelady, TX); Mel Friedman (Montgomery, TX); Douglas W. Thompson (Amarillo, TX); Peter C. Crossland (Houston, TX)
Assignee: WING MARINE LLC
E02F3/885
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Quick Facts
Patent No.
US 12,398,532
App. No.
18/734,339
Granted
Aug 26, 2025
Kind
B2
Abstract

Marine pump vessels and wing fluidizer support vessels, and methods of using same. Wing fluidizer support vessels are configured to deploy a wing fluidizer including thrusters capable of fluidizing sediments from a first seabed location and moving it to a second seabed location. Pump vessels include one or more pumps deployable from a separate vessel and stowable thereon.

Claims (24)

1. A subsea sediment fluidizer support vessel, comprising:

a) a modular, generally rectangular hull comprising a plurality of box-shaped float modules coupled together that is configured to be disassembled and transported on one or more trucks or shipping containers, the modular hull comprising a deck, a bow, a stern, a port side, and a starboard side;

b) port and starboard telescoping jib booms secured to the hull and configured to support and move a wing fluidizer between stowed and deployed positions, the wing fluidizer having one or more thrusters for moving sediment;

c) port and starboard electric motorized trolleys movably secured to the respective port and starboard telescoping jib booms to assist in moving the wing fluidizer;

d) port and starboard slave trolleys movably secured to the respective port and starboard telescoping jib booms to assist in moving the wing fluidizer; and

e) electric wire hoists connected to the port and starboard slave trolleys and configured to lift, lower, and adjust attitude of the wing fluidizer.

2. The subsea sediment fluidizer support vessel of claim 1 comprising one or more umbilicals for powering, controlling, or communicating with the wing fluidizer.

3. The subsea sediment fluidizer support vessel of claim 1 comprising a human-machine interface.

4. The subsea sediment fluidizer support vessel of claim 1 comprising one or more computers configured to provide computer-aided maneuvering of the wing fluidizer in seven dimensions: pitch, roll, yaw, height above a sediment surface, rotational speed of an impeller, direction and speed.

5. The subsea sediment fluidizer support vessel of claim 1 comprising fully automatic computerized operation of the wing fluidizer from a separate work vessel.

6. The subsea sediment fluidizer support vessel of claim 1 comprising one or more computer navigation systems.

7. The subsea sediment fluidizer support vessel of claim 6 wherein the one or more computer navigation systems includes a global positioning component.

8. A method comprising:

a) providing a modular, generally rectangular hull comprising a plurality of box-shaped float modules coupled together that is configured to be disassembled and transported on one or more trucks or shipping containers, the modular hull comprising a deck, a bow, a stern, a port side, and a starboard side;

b) providing a wing fluidizer, the wing fluidizer having one or more thrusters for moving subsea sediment;

c) supporting and moving the wing fluidizer between stowed and deployed positions on the modular, generally rectangular hull using port and starboard telescoping jib booms having electric wire hoists affixed thereto;

d) deploying the wing fluidizer at a first subsea location; and

e) retrieving and stowing the wing fluidizer on the modular, generally rectangular hull.

9. The method of claim 8 comprising powering, controlling, or communicating with the wing fluidizer with one or more umbilicals.

10. The method of claim 8 wherein the moving the wing fluidizer between stowed and deployed positions employs a human-machine interface.

11. The method of claim 8 comprising computer-aided maneuvering of the wing fluidizer in seven dimensions: pitch, roll, yaw, height above a sediment surface, rotational speed of an impeller, direction and speed.

12. The method of claim 8 comprising operating the wing fluidizer automatically from a separate work vessel.

13. The method of claim 8 comprising navigating the modular, generally rectangular hull using one or more computer navigation systems.

14. The method of claim 13 wherein the navigating the modular, generally rectangular hull using one or more computer navigation systems comprises positioning the modular, generally rectangular hull using a global positioning component.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 7, 2024
From: CROWSON, JOHN
To: WING MARINE LLC
Reel/Frame 069180/0219 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2024
From: CROSSLAND, PETER C.; FRIEDMAN, MEL; THOMPSON, DOUGLAS W.
To: WING MARINE LLC
Reel/Frame 067629/0440 →
Continuity (2)
Provisional Application 63622729 · Jan 19, 2024
Related Publication 20250237036A1 · Jul 24, 2025
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