IP Library Granted Patent US 11,635,057
Granted Patent B2
US 11,635,057 · App. 17/674,316 · Granted Apr 25, 2023

Inertial hydrodynamic pump and wave engine

Inventors: Garth Alexander Sheldon-Coulson (Portland, OR); Brian Lee Moffat (Portland, OR); Daniel William Place (Portland, OR)
Assignee: LONE GULL HOLDINGS, LTD.
F03B17/06B63B22/18H02K7/1823H02K44/085B63B2209/14
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Quick Facts
Patent No.
US 11,635,057
App. No.
17/674,316
Granted
Apr 25, 2023
Kind
B2
Abstract

A buoyant hydrodynamic pump is disclosed that can float on a surface of a body of water over which waves tend to pass. The pump incorporates an open-bottomed tube with a constriction. The tube partially encloses a substantial volume of water with which the tube's constriction interacts, creating and/or amplifying oscillations therein in response to wave action. Wave-driven oscillations result in periodic upward ejections of portions of the water inside the tube that can be collected in a reservoir that is at least partially positioned above the mean water level of the body of water, or pressurized by compressed air or gas, or both. Water within such a reservoir may return to the body of water via a turbine, thereby generating electrical power (making the device a wave engine), or else the device's pumping action can be used for other purposes such as water circulation, propulsion, or cloud seeding.

Claims (33)

1. A self-propelled oceanic energy storage apparatus, comprising:

a hydroelectric reservoir enclosure adapted to float at a surface of a body of water and confine a water reservoir;

an upwardly converging tubular conduit extending downwardly from the hydroelectric reservoir enclosure and adapted to discharge water into the hydroelectric reservoir enclosure in response to the self-propelled oceanic energy storage apparatus being moved up and down by ocean waves;

a hydroelectric turbine configured to rotate in response to water flowing from the hydroelectric reservoir enclosure;

an electrical generator operatively coupled to the hydroelectric turbine;

an electrolyzer operatively connected to the electrical generator; and

a propulsion system.

2. The self-propelled oceanic energy storage apparatus of claim 1 , further comprising a gas enclosure in fluid communication with the electrolyzer for storing gas evolved by the electrolyzer.

3. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the propulsion system includes a water jet.

4. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the propulsion system includes a rigid sail.

5. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the electrolyzer is adapted to evolve hydrogen gas.

6. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the upwardly converging tubular conduit includes an upward-pointing frustoconical tube section adapted to accelerate water upwardly to the hydroelectric reservoir enclosure when the apparatus moves up and down in response to the self-propelled oceanic energy storage apparatus being moved up and down by ocean waves.

7. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the hydroelectric reservoir enclosure is adapted to confine an air pocket to pressurize water in the hydroelectric reservoir enclosure.

8. The self-propelled oceanic energy storage apparatus of claim 1 , further comprising a permanent buoyancy compartment adapted to elevate water in the hydroelectric reservoir enclosure above a surface of the body of water.

9. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the upwardly converging tubular conduit includes an upwardly diverging section.

10. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the propulsion system includes a steering control system adapted to adjust the electrical load on the electrical generator.

11. The self-propelled oceanic energy storage apparatus of claim 1 , wherein the propulsion system includes a steering control system adapted to adjust rates of water flowing from the hydroelectric reservoir.

12. A self-propelled oceanic energy storage apparatus, comprising:

a hydroelectric reservoir enclosure adapted to float at a surface of a body of water and confine a water reservoir;

an upwardly converging tubular conduit extending downwardly from the hydroelectric reservoir enclosure and adapted to discharge water into the hydroelectric reservoir enclosure when the apparatus moves up and down in response to the self-propelled oceanic energy storage apparatus being moved up and down by ocean waves;

a magnetohydrodynamic generator adapted to generate electricity in response to water flowing from the hydroelectric reservoir enclosure;

an electrolyzer operatively connected to the magnetohydrodynamic generator; and

a propulsion system.

13. The self-propelled oceanic energy storage apparatus of claim 12 , further comprising a gas enclosure in fluid communication with the electrolyzer for storing gas evolved by the electrolyzer.

14. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the propulsion system includes a water jet.

15. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the propulsion system includes a rigid sail.

16. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the electrolyzer is adapted to evolve hydrogen gas.

17. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the upwardly converging tubular conduit includes an upward-pointing frustoconical tube section adapted to accelerate water upwardly to the hydroelectric reservoir enclosure when the apparatus moves up and down in waves.

18. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the hydroelectric reservoir enclosure is adapted to confine an air pocket to pressurize water in the hydroelectric reservoir enclosure.

19. The self-propelled oceanic energy storage apparatus of claim 12 , further comprising a permanent buoyancy compartment adapted to elevate water in the hydroelectric reservoir enclosure above a surface of the body of water.

20. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the upwardly converging tubular conduit includes an upwardly diverging section.

21. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the propulsion system includes a steering control system adapted to adjust the electrical load on the magnetohydrodynamic generator.

22. The self-propelled oceanic energy storage apparatus of claim 12 , wherein the propulsion system includes a steering control system adapted to adjust rates of water flowing from the hydroelectric reservoir.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 24, 2022
From: SHELDON-COULSON, GARTH ALEXANDER; MOFFAT, BRIAN LEE; PLACE, DANIEL WILLIAM
To: LONE GULL HOLDINGS, LTD.
Reel/Frame 059095/0087 →
Continuity (11)
Division 17398890 · Aug 10, 2021
Continuation 16789205 · Feb 12, 2020
Division 16538472 · Aug 12, 2019
Provisional Application 62831202 · Apr 9, 2019
Provisional Application 62768968 · Nov 18, 2018
Provisional Application 62755427 · Nov 3, 2018
Provisional Application 62739190 · Sep 29, 2018
Provisional Application 62724629 · Aug 30, 2018
Provisional Application 62719648 · Aug 18, 2018
Provisional Application 62718383 · Aug 14, 2018
Related Publication 20220170440A1 · Jun 2, 2022
Cited By (4)
US 12,366,223 US 12,435,693 US 12,492,673 US 12,655,821