IP Library Patent Application 17824343
Patent Application
App. No. 17/824,343

SYSTEMS AND METHODS FOR HARVESTING WATER FROM AIR

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Quick Facts
Patent No.
US None
App. No.
17/824,343
Abstract

An integrated system for harvesting water from air includes an air propelling unit, a water condensation unit, and a fog harvester. The water condensation unit receives propelled air from the air propelling unit, and includes an airfoil designed to locally reduce pressure and temperature, thereby promoting water vapor condensation within the received propelled air. The fog harvester receives the propelled air with condensed water from the water condensation unit and collects the condensed water.

Claims (40)

1 . An integrated system for harvesting water from air, the system comprising:

an air propelling unit;

a water condensation unit receiving propelled air from the air propelling unit, and comprising an airfoil designed to locally reduce pressure and temperature, thereby promoting water vapor condensation within the received propelled air; and

a fog harvester receiving propelled air with condensed water from the water condensation unit.

2 . The integrated system of claim 1 , wherein the air propelling unit comprises one or more fans.

3 . The integrated system of claim 1 , wherein the air propelling unit comprises compressed air releasable via a nozzle.

4 . The integrated system of claim 1 , wherein the air propelling unit comprises one or more fans or air compressors powered by electricity or fossil fuel combustion.

5 . The integrated system of claim 1 , wherein the water condensation unit comprises a cambered airfoil having an airfoil chord to airstream angle of between 0° and 25°.

6 . The integrated system of claim 1 , wherein the airfoil is constructed of a material selected from the group consisting of plastic, ceramic, polylactic acid, epoxy-resin, wood, metal, and combinations thereof.

7 . The integrated system of claim 1 , wherein the water condensation unit comprises multiple airfoils.

8 . The integrated system of claim 1 , wherein the propelled air from the air propelling unit is directed onto the airfoil with a structure constructed at least in part of a material selected from the group consisting of plastic, ceramic, polylactic acid, epoxy-resin, wood, metal, and combinations thereof.

9 . The integrated system of claim 1 , wherein the propelled air with condensed water from the water condensation unit is directed to the fog harvester with a structure constructed at least in part of a material selected from the group consisting of plastic, ceramic, wood, metal, and combinations thereof.

10 . The integrated system of claim 1 , wherein the fog harvester is selected from the group consisting of fog harps, fog nets, fog tarps, and combinations thereof.

11 . The system of claim 1 , wherein the fog harvester is positioned adjacent to or within 12 m of an exit end of the water condensation unit.

12 . The integrated system of claim 1 , further comprising a water storage unit receiving water from the fog harvester.

13 . The integrated system of claim 1 , wherein the airfoil comprises a Magnus rotor selected from the group consisting of a Magnus rotor airfoil, a spinning sphere, a spinning cylinder, and combinations thereof.

14 . The integrated system of claim 13 , further comprising fans, air compressors, or both, sized to provide an air velocity to the Magnus rotor of at least 35 mph, the fans or air compressors powered using electricity, fossil fuel combustion, air pressure, water pressure, or combinations thereof.

15 . The integrated system of claim 14 , wherein the fans have one or more vanes.

16 . The integrated system of claim 13 , wherein the Magnus rotor comprises a smooth surface or a textured surface topology comprising waves, scoops, ridges, rods, wires, canals, or combinations thereof.

17 . The integrated system of claim 13 , wherein water condensation unit comprises multiple Magnus rotors oriented in either parallel or sequentially.

18 . The integrated system of claim 1 , wherein the air propelling unit comprises a compressor, and the water condensation unit further comprises a Ranque Hilsch vortex tube capable of separating the compressed air into hot and cold exit streams, with the cold exit stream being directed over the airfoil.

19 . The integrated system of claim 18 , wherein the air foil is selected from the group consisting of a cambered airfoil, a spinning sphere, a spinning cylinder, and combinations thereof.

20 . A method for harvesting water vapor from air, the method comprising:

passing air containing water vapor over an airfoil designed to locally reduce pressure and temperature, at a velocity sufficient to promote water vapor condensation; and

directing the resulting air with water droplets to a fog harvester and collecting the water.

21 . The method of claim 20 , wherein the fog harvester is selected from the group consisting of fog nets, fog harps, fog tarps, and combinations thereof.

22 . The method of claim 20 , wherein the fog harvester is positioned within 12 m of a rear of the airfoil.

23 . The method of claim 20 , wherein the air containing water vapor is passed over the airfoil at an air velocity equal to or greater than 35 mph.

24 . The method of claim 20 , further comprising the step of imparting an operating air velocity to the air containing water vapor through use of one or more fans, or by release of compressed air through a nozzle.

25 . The method of claim 20 , wherein the air containing water vapor is directed over a cambered airfoil having an airfoil chord, and designed with an angle of the airfoil chord and air stream between 0° and 25°.

26 . The method of claim 20 , further comprising the step of temporarily storing the collected water.

27 . The method of claim 20 , wherein the airfoil comprises a Magnus rotor selected from the group consisting of a Magnus rotor airfoil, a spinning sphere, and a spinning cylinder.

28 . The method of claim 27 , wherein air flow and spin velocities are selected to promote water vapor condensation.

29 . The method of claim 27 , wherein the Magnus rotor has a rotational velocity equal to or greater than 50 revolutions/minute.

30 . The method of claim 27 , wherein electricity, a combustion engine, or compressed air is used to spin the Magnus rotor.

31 . The method of claim 27 , wherein a fan or and air compressor is used to impart a velocity of at least 35 mph to the air containing water vapor upon reaching the Magnus rotor, and wherein the fan or the air compressor are powered by electricity, fossil fuel combustion, air pressure, or water pressure.

32 . The method of claim 27 , wherein the surface of the Magnus rotor is either smooth, or textured with surface features comprising waves, scoops, ridges, rods, wires, canals, or combination thereof.

33 . The method of claim 20 , further comprising the step of passing compressed air to a Ranque Hilsch vortex tube to produce a hot exit stream and a cold exit stream, wherein the cold exit stream becomes the air containing water vapor directed over the airfoil.

34 . The method of claim 33 , wherein the air foil comprises a cambered airfoil.

35 . The method of claim 33 , wherein the airfoil comprises a spinning sphere or a spinning cylinder.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2025
From: COMSTOCK IP HOLDINGS LLC
To: BIOLEUM CORPORATION
Reel/Frame 072203/0088 →