IP Library Granted Patent US 10,562,613
Granted Patent B2
US 10,562,613 · App. 14/097,122 · Granted Feb 18, 2020

Adjustable lift modification wingtip

Inventor: Nicholas R. Guida (Sagle, ID)
Assignee: Tamarack Aerospace Group, Inc.
B64C23/072B64C5/10B64C13/16B64C23/076Y02T50/164
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Quick Facts
Patent No.
US 10,562,613
App. No.
14/097,122
Granted
Feb 18, 2020
Kind
B2
Abstract

An adjustable lift modification wingtip may be attached to a baseline wing of an aircraft. The adjustable lift modification wingtip may comprise a horizontal portion including a control surface and a vertical portion coupled to the horizontal portion. The vertical portion may move about an axis that may be substantially perpendicular to the horizontal portion. The control surface and the vertical portion may be adjusted in conjunction to increase wing efficiency at a flight condition.

Claims (57)

1. A winglet fixedly attachable to a baseline wing of an aircraft comprising:

a horizontal portion comprising a control surface;

a vertical portion coupled to the horizontal portion, the vertical portion comprising a cantilevered portion, the cantilevered portion rotatable about a joint between the vertical portion and the horizontal portion and about an axis that is substantially perpendicular to the horizontal portion, the control surface and the vertical portion which, when attached to the baseline wing of the aircraft increase wing efficiency at a flight condition; and

a linkage coupled between the horizontal portion and vertical portion configured to provide a translational connection in a first plane between the horizontal portion and the vertical portion and configured to resist bending loads and twisting loads that do not coincide with motion of linkage in the first plane.

2. The winglet of claim 1 , further comprising a control system for controlling motion of the control surface and the vertical portion based at least in part on in-flight flight condition data.

3. The winglet of claim 2 , the control system communicatively coupled to a sensor located on the aircraft and configured to receive a signal from the sensor located on the aircraft.

4. The winglet of claim 2 , the control system operable to:

deflect the control surface down and rotate a leading edge of the cantilevered portion in to increase lift at a first flight condition; and

deflect the control surface up and rotate the leading edge of the cantilevered portion out to decrease lift at a second flight condition.

5. The winglet of claim 4 , the control surface configured to deflect between 15 degrees up and 15 degrees down; and the cantilevered portion configured to deflect between 4 degrees in and 4 degrees out.

6. The winglet of claim 2 , the control system configured to control the control surface and vertical portion independently of at least one of an auto-pilot or a fly-by-wire system of the aircraft.

7. The winglet of claim 2 , the control system configured to control the control surface and vertical portion in conjunction with at least one of an auto-pilot or a fly-by-wire system of the aircraft.

8. The winglet of claim 1 , the sensor comprising one or more of angle-of-attack, airspeed, density, atmospheric conditions, or pressure.

9. A method comprising:

receiving in-flight flight condition data from a sensor located on an aircraft; and

adjusting a control surface and vertical portion of a wingtip device attached to an outboard portion of a baseline wing of the aircraft based at least in part on the received in-flight flight condition data, the control surface located on a horizontal portion of the baseline wing of the aircraft, the vertical portion is coupled to the horizontal portion and projecting at an upward angle from the baseline wing, the vertical portion comprising a cantilevered portion, the cantilevered portion rotatable about a joint between the vertical portion and the horizontal portion and about an axis that is substantially perpendicular to the horizontal portion, the vertical portion further coupled to the horizontal portion through a linkage between the horizontal portion and vertical portion configured to provide a translational connection in a first plane between the horizontal portion and the vertical portion and configured to resist bending loads and twisting loads that do not coincide with motion of linkage in the first plane.

10. The method of claim 9 , wherein the adjusting of the control surface and vertical portion comprises rotating the control surface along a horizontal axis such that an edge of the control surface moves up or down in relation to the baseline wing and rotating the vertical portion about the axis that is substantially parallel to a vertical axis of the aircraft such that an edge of the vertical portion moves in or out in relationship to the baseline wing.

11. An aircraft comprising:

a fuselage;

a baseline wing, the baseline wing coupled to the fuselage at a first end of the baseline wing; and

a wing extension comprising:

a horizontal portion coupled to a second end of the baseline wing, such that the horizontal portion is outboard of the baseline wing, the horizontal portion comprising a control surface;

a vertical portion coupled to the horizontal portion, the vertical portion comprising a cantilevered connection to the horizontal portion, the vertical portion rotatable in flight to move at the cantilevered connection about an axis that is substantially perpendicular to the horizontal portion, the control surface and the vertical portion adjustable in flight to increase wing efficiency at a flight condition; and

a linkage coupled between the horizontal portion and vertical portion configured to provide a translational connection in a first plane between the horizontal portion and the vertical portion and configured to resist bending loads and twisting loads that do not coincide with motion of linkage in the first plane.

12. A winglet fixedly attachable to a baseline wing of an aircraft comprising:

a horizontal portion comprising a control surface;

a vertical portion coupled to the horizontal portion, the vertical portion comprising a cantilevered portion, the cantilevered portion rotatable about a joint between the vertical portion and the horizontal portion and about an axis that is substantially perpendicular to the horizontal portion, the control surface and the vertical portion which, when attached to the baseline wing of the aircraft increase wing efficiency at a flight condition;

a control system for controlling motion of the control surface and the vertical portion based at least in part on in-flight flight condition data;

an actuation linkage coupled between the horizontal portion and vertical portion; and

an actuation system coupled to the control system, the actuation system operable to:

deploy actuation linkage to a first position to rotate a leading edge of the cantilevered portion in to increase lift at a first flight condition; and

deploy actuation linkage to a second position to rotate the leading edge of the cantilevered portion out to decrease lift at a second flight condition.

13. The winglet of claim 12 , the control system communicatively coupled to a sensor located on the aircraft and configured to receive a signal from the sensor located on the aircraft.

14. The winglet of claim 12 , the control system operable to:

deflect the control surface down and rotate a leading edge of the cantilevered portion in to increase lift at a first flight condition; and

deflect the control surface up and rotate the leading edge of the cantilevered portion out to decrease lift at a second flight condition.

15. The winglet of claim 14 , the control surface configured to deflect between 15 degrees up and 15 degrees down; and the cantilevered portion configured to deflect between 4 degrees in and 4 degrees out.

16. The winglet of claim 12 , the control system configured to control the control surface and vertical portion independently of at least one of an auto-pilot or a fly-by-wire system of the aircraft.

17. The winglet of claim 12 , the control system configured to control the control surface and vertical portion in conjunction with at least one of an auto-pilot or a fly-by-wire system of the aircraft.

18. The winglet of claim 12 , the sensor comprising one or more of angle-of-attack, airspeed, density, atmospheric conditions, or pressure.

19. An aircraft comprising:

a fuselage;

a baseline wing, the baseline wing coupled to the fuselage at a first end of the baseline wing;

a wing extension comprising:

a horizontal portion coupled to a second end of the baseline wing, such that the horizontal portion is outboard of the baseline wing, the horizontal portion comprising a control surface;

a vertical portion coupled to the horizontal portion, the vertical portion comprising a cantilevered connection to the horizontal portion, the vertical portion rotatable in flight to move at the cantilevered connection about an axis that is substantially perpendicular to the horizontal portion, the control surface and the vertical portion adjustable in flight to increase wing efficiency at a flight condition; and

a control system for controlling motion of the control surface and the vertical portion based at least in part on in-flight flight condition data;

an actuation linkage coupled between the horizontal portion and vertical portion; and

an actuation system coupled to the control system, the actuation system operable to:

deploy actuation linkage to a first position to rotate a leading edge of the cantilevered portion in to increase lift at a first flight condition; and

deploy actuation linkage to a second position to rotate the leading edge of the cantilevered portion out to decrease lift at a second flight condition.

20. A method comprising:

receiving in-flight flight condition data from a sensor located on an aircraft; and

adjusting a control surface and vertical portion of a wingtip device attached to an outboard portion of a baseline wing of the aircraft based at least in part on the received in-flight flight condition data, the control surface located on a horizontal portion of the baseline wing of the aircraft, the vertical portion coupled to the horizontal portion and projecting at an upward angle from the baseline wing, the vertical portion comprising a cantilevered portion, the cantilevered portion rotatable about a joint between the vertical portion and the horizontal portion and about an axis that is substantially perpendicular to the horizontal portion, the vertical portion further coupled to the horizontal portion through an actuation linkage between the horizontal portion and vertical portion, the adjusting the vertical portion comprising:

deploying the actuation linkage to a first position to rotate a leading edge of the cantilevered portion in to increase lift at a first flight condition; and

deploying the actuation linkage to a second position to rotate the leading edge of the cantilevered portion out to decrease lift at a second flight condition.

21. The method of claim 20 , wherein the adjusting of the control surface and vertical portion comprises rotating the control surface along a horizontal axis such that an edge of the control surface moves up or down in relation to the baseline wing and rotating the vertical portion about the axis that is substantially parallel to a vertical axis of the aircraft such that an edge of the vertical portion moves in or out in relationship to the baseline wing.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2016
From: GUIDA, NICHOLAS R.
To: TAMARACK AEROSPACE GROUP, INC.
Reel/Frame 038304/0031 →
Continuity (1)
Related Publication 20160009378A1 · Jan 14, 2016
Cited By (2)
US 12,214,865 US 12,351,298