IP Library › Granted Patent US 12,221,210
Granted Patent B2
US 12,221,210 · App. 18/049,588 · Granted Feb 11, 2025

Wing-in-ground effect vehicles and uses thereof

Inventors: Kelly A. Echols (Monett, MO); Randall Petersen (Salt Lake City, UT)
Assignee: LeVanta Tech Inc.
B64C35/006B60F5/02B63B79/10B64C1/26B64C3/14B64C3/38B64C9/24
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Quick Facts
Patent No.
US 12,221,210
App. No.
18/049,588
Granted
Feb 11, 2025
Kind
B2
Abstract

Wing-in-ground effect (WIG) vehicles are disclosed herein. Hovercraft takeoff and landing modes are disclosed herein. Uses of WIG vehicles, including for maritime monitoring, are disclosed herein.

Claims (26)

1. A flying vehicle comprising:

an airframe operatively connected to one or more blowers;

an airfoil comprising;

an upper surface and a lower surface extending laterally along a leading edge to first and second arcuate wingtips defining a concave region bounded by the lower surface of the airfoil;

a channel extending from the upper surface to the lower surface of the airfoil;

a front flap pivotably attached to the leading edge, wherein the front flap is configured to seal against the leading edge when the front flap is extended downward and operating to trap fluid in the concave region when the airfoil is operating in a hovercraft mode, and wherein the front flap is configured to tuck up against the upper side of the lower surface of the airfoil when the airfoil is operating as a wing in a flight mode; wherein the airfoil is operatively connected to the airframe via the upper surface of the airfoil, and wherein the channel is in fluidic communication with at least one of the one or more blowers.

2. The vehicle of claim 1 , wherein the vehicle comprises multiple airfoils operatively connected to the airframe via the u ex surface of each of the airfoils.

3. The vehicle of claim 2 , wherein fluid provided by the one or more blowers into the channel of each airfoil generates lift for the vehicle.

4. The vehicle of claim 2 , wherein each airfoil further comprising a nozzle extending downward from the lower surface of the airfoil in fluidic communication with the channel of the airfoil.

5. The vehicle of claim 4 , wherein the nozzle for each airfoil is extendable and retractable.

6. The vehicle of claim 2 , wherein each airfoil is articulatable.

7. The vehicle of claim 2 , wherein each airfoil is rigidly secured to the airframe via an aerotube in fluidic communication with the one or more blowers and with the channel of the airfoil.

8. The vehicle of claim 1 , wherein the front flap seals against the lower surface of the airfoil when the front flap is fully tucked up against the lower surface.

9. A flying vehicle comprising:

an airframe; and

an airfoil comprising:

an upper surface and a lower surface extending laterally along a leading edge to first and second arcuate wingtips defining a concave region bounded by the lower surface of the airfoil;

a channel extending from the upper surface to the lower surface of the airfoil;

a front flap pivotably attached to the leading edge, wherein the front flap is configured to seal against the leading edge when the front flap is extended downward and operating to trap fluid in the concave region when the airfoil is operating in a hovercraft mode, and wherein the front flap is configured to tuck up against the upper side of the lower surface of the airfoil when the airfoil is operating as a wing in a flight mode; wherein the airfoil is operatively connected to the airframe via the upper surface of the airfoil.

10. The vehicle of claim 9 , further comprising one or more blowers operably connected to the at least one channel of the airfoil and configured to selectively introduce fluid underneath the lower surface of the airfoil.

11. The vehicle of claim 9 , wherein the front flap is configured to seal against the lower surface of the airfoil when the front flap is tucked up against the lower surface.

12. The vehicle of claim 9 , further comprising a rigid tube securing the airfoil to the airframe and providing fluidic communication between one or more blowers and the at least one channel of the airfoil, whereby the rigid tube provides a conduit for fluid flow from the one or more blowers to the concave region defined by the airfoil.

13. The vehicle of claim 9 , wherein the front flap is configured to at least partially block openings of the one or more channels in the lower surface of the airfoil when the front flap is tucked up against the lower surface.

14. The vehicle of claim 9 , wherein the front flap comprises a flexible material, a rigid material, or a combination of both.

15. The vehicle of claim 9 , wherein the front flap is configured to passively pivot and movement of the front flap is at least partially controlled by a pressure differential on opposing front and back surfaces of the front flap, wherein speed of the vehicle governs pressure on the front surface of the front flap and fluid flow through the at least one channel into the concave region governs pressure on the back surface of the front flap.

16. The vehicle of claim 9 , wherein movement of the front flap is at least partially controlled by an actuator.

Assignments (3)
SECURITY INTEREST Recorded Jun 19, 2025
From: LEVANTA TECH INC.
To: LCIF PORTFOLIO HOLDINGS, LLC
Reel/Frame 071455/0643 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2024
From: LEVANTA TECH LLC
To: LEVANTA TECH INC.
Reel/Frame 068101/0013 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2024
From: ECHOLS, KELLY A., MR.; PETERSEN, RANDALL, MR.
To: LEVANTA TECH LLC
Reel/Frame 068101/0001 →
Continuity (4)
Provisional Application 63368335 · Jul 13, 2022
Provisional Application 63335221 · Apr 27, 2022
Provisional Application 63271589 · Oct 25, 2021
Related Publication 20230127417A1 · Apr 27, 2023
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