IP Library Granted Patent US 12,017,771
Granted Patent B2
US 12,017,771 · App. 17/222,604 · Granted Jun 25, 2024

Slat-cove filler for wing structure of an aircraft

Inventors: Travis L Turner (Yorktown, VA); Scott E Brynildsen (Yorktown, VA); John W. Mulvaney (Yorktown, VA); Albert R. Allen (Yorktown, VA); David P Lockard (Hampton, VA); Craig L. Streett (Fairfax, VA); Mehdi R Khorrami (Norfolk, VA)
Assignee: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF NASA
B64C9/24B64C9/02B64C9/08
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Quick Facts
Patent No.
US 12,017,771
App. No.
17/222,604
Granted
Jun 25, 2024
Kind
B2
Abstract

Methods, systems and devices of the various embodiments may provide slat-cove fillers configured to reduce leading-edge slat noise on aircraft, such as transport aircraft.

Claims (32)

1. A wing structure for an aircraft, comprising:

a primary wing structure;

a leading-edge slat comprising:

a cove wall;

a sliding-flexure-hinge extending from the cove wall; and

an interior space within the leading-edge slat, wherein the leading-edge slat is configured to movably interconnect with the primary wing structure for movement between a retracted position and a deployed position;

a slat-cove filler comprising a flexible material and defining a first shape when the leading-edge slat is in the deployed position and a second shape when the leading-edge slat is in the retracted position, wherein a leading end of the slat-cove filler is configured to slide along the sliding-flexure-hinge into the interior space when the leading-edge slat is moving toward the retracted position and out of the interior space when the leading-edge slat is moving toward the deployed position; and

wherein the slat-cove filler comprises an internal auxiliary slat-cove filler component having a first component end and a second component end, the internal auxiliary slat-cove filler component attached at the first end to a trailing portion of the slat-cove filler facing the cove wall and the second end to the cove wall forward of the attachment to the slat-cove filler, the internal auxiliary slat-cove filler component configured to be disposed in a curved manner in the interior space between the cove wall and slat-cove filler when the leading-edge slat is in the deployed position, with at least one concavity of the internal auxiliary slat-cove filler component open to the cove wall.

2. The wing structure of claim 1 , wherein the leading end of the slat-cove filler includes a mechanical stop.

3. The wing structure of claim 2 , wherein the sliding-flexure-hinge is a bulbous type sliding-flexure-hinge.

4. The wing structure of claim 2 , wherein the sliding-flexure-hinge includes at least one roller in rolling engagement with the slat-cove filler.

5. The wing structure of claim 2 , wherein the leading end of the slat-cove filler includes a bias element configured to apply a bias force to the mechanical stop or directly to the leading end of the slat-cove filler itself.

6. The wing structure of claim 1 , wherein at least a portion of the slat-cove filler comprises shape memory (SM) effect shape memory alloy (SMA) material.

7. The wing structure of claim 6 , wherein the shape memory (SM) effect shape memory alloy (SMA) material is selected to have a predetermined application temperature below a finish temperature for transformation to martensite.

8. The wing structure of claim 6 , wherein the at least a portion of the slat-cove filler comprising shape memory (SM) effect shape memory alloy (SMA) material is configured such that the application of heat to the at least a portion of the slat-cove filler causes the leading end of the slat-cove filler to slide along the sliding-flexure-hinge into the interior space when the leading-edge slat is moving toward the retracted position.

9. The wing structure of claim 8 , wherein the application of heat to the at least a portion of the slat-cove filler further causes the slat-cover filler to achieve a desired shape relative to the wing structure.

10. The wing structure of claim 8 , wherein the at least a portion of the slat-cove filler comprising shape memory (SM) effect shape memory alloy (SMA) material includes the internal auxiliary slat-cove filler component.

11. A wing structure for an aircraft, comprising:

a primary wing structure;

a leading-edge slat comprising:

a cove wall;

a sliding-flexure-hinge extending from the cove wall; and

an interior space within the leading-edge slat, wherein the leading-edge slat is configured to movably interconnect with the primary wing structure for movement between a retracted position and a deployed position; and

a slat-cove filler comprising a flexible material and defining a first shape when the leading-edge slat is in the deployed position and a second shape when the leading-edge slat is in the retracted position, wherein a leading end of the slat-cove filler is configured to slide along the sliding-flexure-hinge into the interior space when the leading-edge slat is moving toward the retracted position and out of the interior space when the leading-edge slat is moving toward the deployed position; wherein at least a portion of the slat-cove filler comprises shape memory (SM) effect shape memory alloy (SMA) material, wherein the shape memory (SM) effect shape memory alloy (SMA) material is selected to have a predetermined application temperature below a finish temperature for transformation to martensite.

12. The wing structure of claim 11 , wherein the at least a portion of the slat-cove filler comprising shape memory (SM) effect shape memory alloy (SMA) material is configured such that application of heat to the at least a portion of the slat-cove filler causes the leading end of the slat-cove filler to slide along the sliding-flexure-hinge into the interior space when the leading-edge slat is moving toward the retracted position.

13. The wing structure of claim 12 , wherein the application of heat to the at least a portion of the slat-cove filler further causes the slat-cover filler to achieve a desired shape relative to the wing structure.

14. The wing structure of claim 11 , wherein the leading end of the slat-cove filler includes a mechanical stop.

15. The wing structure of claim 14 , wherein the sliding-flexure-hinge is a bulbous type sliding-flexure-hinge.

16. The wing structure of claim 14 , wherein the sliding-flexure-hinge includes at least one roller in rolling engagement with the slat-cove filler.

17. The wing structure of claim 14 , wherein the leading end of the slat-cove filler includes a bias element configured to apply a bias force to the mechanical stop or directly to the leading end of the slat-cove filler itself.

18. The wing structure of claim 11 , wherein the leading end of the slat-cove filler further comprises an internal auxiliary slat-cove filler component having a first component end and a second component end, the internal auxiliary slat-cove filler component attached at the first end to a trailing portion of the slat-cove filler facing the cove wall and the second end to the cove wall forward of the attachment to the slat-cove filler, the internal auxiliary slat-cove filler component configured to be disposed in a curved manner in the interior space between the cove wall and slat-cove filler when the leading-edge slat is in the deployed position, with at least one concavity of the internal auxiliary slat-cove filler component open to the cove wall.

19. The wing structure of claim 18 , wherein the at least a portion of the slat-cove filler comprising shape memory (SM) effect shape memory alloy (SMA) material includes the internal auxiliary slat-cove filler component.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 21, 2024
From: KHORRAMI, MEHDI R.
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 067795/0956 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 20, 2024
From: BRYNILDSEN, SCOTT E.
To: CRAIG TECHNOLOGIES
Reel/Frame 067460/0626 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 20, 2024
From: CRAIG TECHNOLOGIES
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 067463/0555 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2024
From: ALLEN, ALBERT R.; LOCKARD, DAVID P.; STREETT, CRAIG L.; TURNER, TRAVIS L.
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 067437/0110 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2024
From: MULVANEY, JOHN W.
To: ANALYTICAL MECHANICS ASSOCIATES
Reel/Frame 067437/0555 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2024
From: ANALYTICAL MECHANICS ASSOCIATES
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 067437/0807 →
Continuity (4)
Continuation In Part 16158595 · Oct 12, 2018
Provisional Application 63005757 · Apr 6, 2020
Provisional Application 62571315 · Oct 12, 2017
Related Publication 20210237850A1 · Aug 5, 2021