IP Library Patent Application 19189606
Patent Application
App. No. 19/189,606

Systems and Methods for Generating Power From Martine Environment Thermal Gradients

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Quick Facts
Patent No.
US None
App. No.
19/189,606
Filed
Apr 25, 2025
Art Unit
OPAP
USPC
310/306
Abstract

Systems and methods for generating electrical power from marine environment thermal gradients. The systems and methods include a buoyancy-driven submersible designed to harness ocean thermal gradients to produce electrical power using thermoelectric generators and phase change materials. The buoyancy-driven submersible is configured to travel vertically in reciprocating motion across a temperature gradient between different depths of a body of water along a cable.

Claims (41)

1 . A system for generating electrical power from a marine environment thermal gradient, which comprises:

a cable extending vertically between a lesser depth and a greater depth of a body of water; and

a buoyancy-driven submersible configured to travel vertically in reciprocating motion between the lesser depth and greater depth of the body of water along the cable;

wherein the buoyancy-driven submersible comprises:

a hull comprising an exterior surface configured to contact the water and an interior surface defining an internal volume of the buoyancy-driven submersible;

a plurality of thermoelectric generators disposed on the interior surface of the hull;

a phase change material disposed within the internal volume of the buoyancy-driven submersible and in thermal communication with the plurality of thermoelectric generators;

a battery electrically connected to the plurality of thermoelectric generators; and

a buoyancy control mechanism.

2 . The system of claim 1 , which further comprises:

a top platform; and

a bottom platform positioned at a distance below the top platform and at a depth within a body of water;

wherein the cable extends vertically from the top platform to the bottom platform, and wherein the buoyancy-driven submersible is configured to travel vertically in reciprocating motion between the top platform and bottom platform along the cable.

3 . The system of claim 2 , wherein the top platform is positioned to float on the surface of the body of water.

4 . The system of claim 2 , wherein the bottom platform is positioned at a depth of from 300 m to 1000 m below the surface of the body of water.

5 . The system of claim 1 , wherein the hull of the buoyancy-driven submersible has an annular cross section defining a hole extending vertically through the buoyancy-driven submersible and in which the cable is disposed.

6 . The system of claim 1 , wherein one or more of the plurality of thermoelectric generators comprise Bi 2 Te 3 , Bi 0.4 Sb 1.6 Te 3 , PbSeTe and PbTe, PbTe and Pb 1-x Eu x Te, Ag 2 Se and p-Ag 2 Te, or a carbon nanotube/poly(dimethylsiloxane) composite.

7 . The system of claim 1 , wherein the phase change material has a transition temperature that is within the range of from about −4° C. to about 30° C.

8 . The system of claim 1 , wherein the phase change material is a paraffin wax, a fatty acid, formic acid, or a hydrocarbon.

9 . The system of claim 1 , wherein the phase change material occupies 20% or more of the internal volume of the buoyancy-driven submersible.

10 . The system of claim 1 , wherein the buoyancy control mechanism comprises an internal bladder, an external bladder, and a fluid reservoir comprising a fluid for transfer between the internal and external bladders.

11 . The system of claim 10 , wherein the fluid is hydraulic oil or compressed gas.

12 . The system of claim 10 , wherein the buoyancy control mechanism further comprises a piston configured to transfer fluid between the fluid reservoir and the internal bladder; wherein the piston is driven at least in part by volumetric expansion and contraction of the phase change material.

13 . The system of claim 10 , which further comprises a pump configured to transfer fluid from the external bladder to the internal bladder or from the internal bladder to the external bladder.

14 . The system of claim 2 , which further comprises a docking station configured to extract electrical power from the battery of the buoyancy-driven submersible to a central system battery.

15 . The system of claim 14 , which further comprises a transmission line configured to deliver electrical power from the central system battery to a power consumption application.

16 . The system of claim 15 , wherein the docking station and central system battery are disposed on the top platform and the transmission line extends from the central system battery to the power consumption application.

17 . The system of claim 15 , wherein the power consumption application is an aquaculture farm, an unmanned underwater vehicle, an offshore platform, an underwater energy storage device, a water desalination station, an energy carrier production station, or an environmental sensor.

18 . The system of claim 2 , which comprises two or more cables extending from the top platform to the bottom platform and two or more corresponding buoyancy-driven submersibles, wherein each buoyancy-driven submersible is configured to travel vertically in reciprocating motion, independently of each other, between the top platform and bottom platform along a corresponding cable.

19 . A method for generating electrical power from a marine environment thermal gradient, which comprises:

providing a cable extending vertically between a lesser depth and a greater depth of a body of water;

providing a buoyancy-driven submersible that comprises:

a hull comprising an exterior surface in contact with the water and an interior surface defining an internal volume of the buoyancy-driven submersible;

a plurality of thermoelectric generators disposed on the interior surface of the hull;

a phase change material disposed within the internal volume of the buoyancy-driven submersible and in thermal communication with the plurality of thermoelectric generators;

a battery electrically connected to the plurality of thermoelectric generators; and

a buoyancy control mechanism;

moving the buoyancy-driven submersible vertically in reciprocating motion between the lesser depth and greater depth of the body of water along the cable, wherein the body of water possesses a temperature gradient in the vertical direction of movement of the buoyancy-driven submersible;

generating electrical power from the plurality of thermoelectric generators of the buoyancy-driven submersible; and

storing electrical power generated by the plurality of thermoelectric generators in the battery of the buoyancy-driven submersible.

20 . The method of claim 19 , which comprises pausing movement of the buoyancy-driven submersible at a greater depth of the body of water to discharge the phase change material, and pausing movement of the buoyancy-driven submersible at a lesser depth of the body of water or at or above the water surface to charge the phase change material.

Assignments (3)
CHANGE OF NAME Recorded Dec 16, 2025
From: ALLIANCE FOR SUSTAINABLE ENERGY, LLC
To: ALLIANCE FOR ENERGY INNOVATION, LLC
Reel/Frame 073993/0276 →
CONFIRMATORY LICENSE Recorded Jun 12, 2025
From: ALLIANCE FOR SUSTAINABLE ENERGY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 071397/0184 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 9, 2025
From: DRISCOLL, FREDERICK RALPH; OSORIO RAMIREZ, JULIAN DAVID; SAINI, PRASHANT
To: ALLIANCE FOR SUSTAINABLE ENERGY, LLC
Reel/Frame 071075/0971 →