IP Library Granted Patent US 12,017,787
Granted Patent B2
US 12,017,787 · App. 17/929,823 · Granted Jun 25, 2024

Aircraft propeller blade radiator

Inventor: Kerry Gregg Manning (Parker, CO)
Assignee: Experimental Vehicle Engineering Ltd.
B64D33/10B64C11/24B64C11/303
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Quick Facts
Patent No.
US 12,017,787
App. No.
17/929,823
Granted
Jun 25, 2024
Kind
B2
Abstract

An aircraft blade assembly, including: a blade extending from a blade root to an opposite tip; and a heat exchanger disposed on at least a portion of a leading edge of the blade, the heat exchanger including: a first arcuate panel shaped to conform to the leading edge of the blade; and a second arcuate panel mated with the first arcuate panel; wherein at least one of the first and second arcuate panels includes a channel formed thereon to form a fluid passage between the first and second arcuate panels.

Claims (36)

1. An aircraft blade assembly, comprising:

a blade extending from a blade root to an opposite tip;

a heat exchanger disposed on at least a portion of a leading edge of the blade, the heat exchanger comprising:

a first arcuate panel shaped to conform to the leading edge of the blade; and

a second arcuate panel mated with the first arcuate panel;

wherein at least one of the first and second arcuate panels includes a channel formed thereon to form a fluid passage between the first and second arcuate panels; and

inlet and outlet connections in fluid communication with the fluid passage and extending radially through the blade root, wherein at least one of the inlet and outlet connections is concentric with a pitch rotation axis of the blade.

2. The aircraft blade assembly of claim 1 , wherein the channel is a serpentine channel and the fluid passage is a serpentine fluid passage.

3. The aircraft blade assembly of claim 1 , wherein the blade includes a recessed region and the heat exchanger is positioned in the recess.

4. The aircraft blade assembly of claim 3 , wherein the heat exchanger is attached to the recessed region with adhesive.

5. The aircraft blade assembly of claim 1 , wherein the first and second arcuate panels comprise sheet metal.

6. The aircraft blade assembly of claim 5 , wherein the first and second arcuate panels are welded together to form the fluid passage.

7. The aircraft blade assembly of claim 1 , wherein the heat exchanger further comprises thermal breaks formed between portions of the fluid passage.

8. The aircraft blade assembly of claim 1 , wherein the heat exchanger covers at least a portion of both a front and a back side of the blade adjacent the leading edge.

9. An aircraft blade assembly, comprising:

a hub including a fluid return cavity;

a blade extending from a blade root to an opposite tip, wherein the blade root is coupled to the hub; and

a heat exchanger disposed on at least a portion of a leading edge of the blade, the heat exchanger comprising:

a first arcuate panel shaped to conform to the leading edge of the blade;

a second arcuate panel mated with the first arcuate panel, wherein at least one of the first and second arcuate panels includes a channel formed thereon to form a fluid passage between the first and second arcuate panels;

a first connection in fluid communication with the fluid passage; and

a second connection in fluid communication with the fluid passage and the fluid return cavity.

10. The aircraft blade assembly of claim 9 , wherein the first and second connections extend radially through the blade root.

11. The aircraft blade assembly of claim 9 , wherein the blade includes a recessed region and the heat exchanger is positioned in the recess.

12. The aircraft blade assembly of claim 11 , wherein the heat exchanger is attached to the recessed region with adhesive.

13. The aircraft blade assembly of claim 9 , wherein the first and second arcuate panels comprise sheet metal.

14. The aircraft blade assembly of claim 13 , wherein the first and second arcuate panels are welded together to form the fluid passage.

15. The aircraft blade assembly of claim 9 , wherein the heat exchanger further comprises thermal breaks formed between portions of the fluid passage.

16. The aircraft blade assembly of claim 9 , wherein the heat exchanger covers at least a portion of both a front and a back side of the blade adjacent the leading edge.

17. The aircraft blade assembly of claim 9 , wherein the hub and fluid cavity are components of a hydro-mechanical pitch governor for controlling a pitch of the blade.

18. An aircraft blade assembly, comprising:

a blade extending from a blade root to an opposite tip;

a heat exchanger disposed on at least a portion of a leading edge of the blade, the heat exchanger comprising:

a channel formed into a surface of the blade; and

an arcuate panel shaped to conform to the leading edge of the blade and cover the channel to form a fluid passage between the blade and the panel; and

inlet and outlet connections in fluid communication with the fluid passage and extending radially through the blade root, wherein at least one of the inlet and outlet connections is concentric with a pitch rotation axis of the blade.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 6, 2022
From: MANNING, KERRY GREGG
To: EXPERIMENTAL VEHICLE ENGINEERING LTD.
Reel/Frame 061385/0684 →
Continuity (2)
Provisional Application 63241408 · Sep 7, 2021
Related Publication 20230074603A1 · Mar 9, 2023