IP Library › Granted Patent US 12,049,899
Granted Patent B2
US 12,049,899 · App. 17/845,964 · Granted Jul 30, 2024

Systems and methods for improving the performance of air-driven generators using solar thermal heating

Inventor: Mark J. Maynard (Easthampton, MA)
F04D17/12F03B17/06F04B25/00F04B41/06F04D25/16F04D29/002F04D29/5833F04D29/5866F25B30/06F04D13/12F04D29/5826F25B1/00F25B2400/061
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Quick Facts
Patent No.
US 12,049,899
App. No.
17/845,964
Granted
Jul 30, 2024
Kind
B2
Abstract

An air-driven generator system for generating electric power from movement of a working liquid. The system includes an air-driven generator that includes a liquid turbine system fluidically interposed between the lower end of an elongate gravitational distribution conduit and the lower ends of plural elongate buoyancy conduits. A heavy working liquid flows from the upper ends of the buoyancy conduits and is fed into the upper end of the elongate gravitational distribution conduit. Working liquid flows down the elongate gravitational distribution conduit to actuate the liquid turbine system. An injection of air into the working liquid in the plural elongate buoyancy conduits induces upward flow of the working liquid. The system includes a solar thermal heating system fluidically coupled to heat exchangers that transfer heat collected by the solar thermal heating system to the working fluid through a thermal transfer fluid circuit.

Claims (24)

1. An air-driven generator system for generating electric power from movement of a working liquid, the air-driven generator system comprising: an elongate gravitational distribution conduit with an upper end and a lower end; plural elongate buoyancy conduits, each elongate buoyancy conduit with an upper end and a lower end; wherein: the upper ends of the plural elongate buoyancy conduits are in fluidic communication with the upper end of the elongate gravitational distribution conduit and an upper chamber; and the lower end of the elongate gravitational distribution conduit is in fluidic communication with the lower ends of the plural elongate buoyancy conduits such that a closed fluid loop is formed between the plural elongate buoyancy conduits, the elongate gravitational distribution conduit, and the upper chamber, with working liquid flowing from the upper ends of the plural elongate buoyancy conduits fed into the upper end of the elongate gravitational distribution conduit and working liquid flowing downwardly through the elongate gravitational distribution conduit being fed from the lower end of the elongate gravitational distribution conduit into the lower ends of the plural elongate buoyancy conduits; a liquid turbine system fluidically interposed between the lower end of the elongate gravitational distribution conduit and the lower ends of the plural elongate buoyancy conduits; an air injection system operative to inject air into the lower ends each of the plural elongate buoyancy conduits; a first heat exchanger in fluidic communication with the lower end of each of the plural elongate buoyancy conduits, the first heat exchanger comprises a first heat exchange fluid; a second heat exchanger in fluidic communication with the first heat exchanger and in fluidic communication with each of the plural elongate buoyancy conduits, the second heat exchanger comprises a second heat exchange fluid; and a thermal heating system configured to capture thermal energy from an external source, the thermal heating system being thermally coupled with the second heat exchanger to move the captured thermal energy into the working liquid; wherein the injection of air into the working liquid disposed in the plural elongate buoyancy conduits will tend to induce upward flow of the working liquid in the plural elongate buoyancy conduits such that working liquid fed to the upper end of the elongate gravitational distribution conduit will have a downward flow within the elongate gravitational distribution conduit to actuate the liquid turbine system, and further comprising a third heat exchanger configured to move heat from air exiting the upper chamber to the first heat exchanger.

2. The system of claim 1 ,

wherein the thermal heating system comprises solar thermal panels configured to capture thermal energy from solar radiation.

3. The system of claim 2 ,

wherein the thermal heating system comprises a fluid loop containing a fluid for moving thermal energy from the solar thermal panels to the second heat exchanger.

4. The system of claim 1 ,

wherein the air injection system comprises a cascading series of heat pump intercoolers.

5. The system of claim 1 , wherein the first heat exchange fluid and the second heat exchange fluid comprise the same material.

6. The system of claim 1 , wherein the first heat exchange fluid and the second heat exchange fluid comprise different materials.

7. The system of claim 1 , wherein one or more of the first heat exchange fluid or the second heat exchange fluid are in thermal communication with a phase change material for the purpose of heat storage.

8. An air-driven generator system for generating electric power from movement of a working fluid, the air-driven generator system comprising: an air-driven generator, comprising: an elongate gravitational distribution conduit with an upper end and a lower end; plural elongate buoyancy conduits, each elongate buoyancy conduit with an upper end and a lower end; wherein the upper ends of the plural elongate buoyancy conduits are in fluidic communication with the upper end of the elongate gravitational distribution conduit and an upper chamber; and the lower end of the elongate gravitational distribution conduit is in fluidic communication with the lower ends of the plural elongate buoyancy conduits such that a closed fluid loop is formed between the plural elongate buoyancy conduits, the elongate gravitational distribution conduit, and the upper chamber, with working fluid flowing from the upper ends of the plural elongate buoyancy conduits fed into the upper end of the elongate gravitational distribution conduit and working fluid flowing downwardly through the elongate gravitational distribution conduit being fed from the lower end of the elongate gravitational distribution conduit into the lower ends of the plural elongate buoyancy conduits; a fluid turbine system fluidically interposed between the lower end of the elongate gravitational distribution conduit and the lower ends of the plural elongate buoyancy conduits; a thermal transfer fluid circuit comprising: a first heat exchanger in fluidic communication with each of the plural elongate buoyancy conduits, the first heat exchanger comprises a first heat exchange fluid; a second heat exchanger in fluidic communication with the first heat exchanger and in fluidic communication with each of the plural elongate buoyancy conduits, the second heat exchanger comprises a second heat exchange fluid; wherein: a portion of working fluid in the plural elongate buoyancy conduits is removed from the lower end of each of the plural elongate buoyancy conduits; the portion of working fluid circulates through the thermal transfer fluid circuit; and the portion of working fluid is returned to the plural elongate buoyancy conduits; a compressor system in fluidic communication with each of the plural elongate buoyancy conduits and in fluidic communication with the first heat exchanger; wherein; the compressor system is operative to inject air into each of the plural elongate buoyancy conduits; and the compressor system is configured to: receive a portion of the first heat exchange fluid from the first heat exchanger; transfer heat to the portion of the first heat exchange fluid; and return the heated portion of the first heat exchange fluid to the first heat exchanger; a solar thermal heating system fluidically coupled to the second heat exchanger configured to transfer heat collected by the solar thermal heating system to the second heat exchanger; wherein: the injection of air into the working fluid disposed in the plural elongate buoyancy conduits will tend to induce upward flow of the working fluid in the plural elongate buoyancy conduits such that working fluid fed to the upper end of the elongate gravitational distribution conduit will have a downward flow within the elongate gravitational distribution conduit to actuate the fluid turbine system; and the circulation of the portion of working fluid through the thermal transfer circuit will tend to increase the temperature of the working fluid in the plural elongate buoyancy conduits.

9. The system of claim 8 , further comprising:

a third heat exchanger in fluidic communication with the upper chamber and in fluidic communication with the first heat exchanger, the third heat exchanger configured to:

receive air from the upper chamber;

transfer heat present in the air to the first heat exchange fluid; and

transfer the heat present in the first heat exchange fluid to the first heat exchanger.

10. The system of claim 8 , wherein:

the first heat exchanger comprises a first radiator; and

the second heat exchanger comprises a second radiator.

11. The system of claim 8 , wherein:

the first heat exchange fluid comprises a first refrigerant; and

the second heat exchange fluid comprises a second refrigerant.

12. The system of claim 11 , wherein the first refrigerant and the second refrigerants are the same material.

13. The system of claim 11 , wherein the first refrigerant and the second refrigerants are different materials.

Continuity (8)
Continuation In Part 17229477 · Apr 13, 2021
Continuation In Part 16861987 · Apr 29, 2020
Continuation 16250736 · Jan 17, 2019
Continuation 16115531 · Aug 28, 2018
Provisional Application 63212870 · Jun 21, 2021
Provisional Application 62618720 · Jan 18, 2018
Provisional Application 62550836 · Aug 28, 2017
Related Publication 20220316483A1 · Oct 6, 2022