IP Library Granted Patent US 10,153,535
Granted Patent B2
US 10,153,535 · App. 15/270,593 · Granted Dec 11, 2018

Bond channel reliefs for bonded assemblies and related techniques

Inventor: Matthew J. Wargo (Tucson, AZ)
Assignee: Raytheon Company
H01P3/087F16B11/006H01P3/081H01P11/003H01Q21/064H01Q23/00H05K1/0242
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Quick Facts
Patent No.
US 10,153,535
App. No.
15/270,593
Granted
Dec 11, 2018
Kind
B2
Abstract

A flat plate assembly is provided from at least a pair of plates with at least one surface of one plate have one or more relief channels provided therein around epoxy bonded signal channels. The relief channels are provided having a size and shape selected to control the flow of a liquid bonding adhesive. Adhesive location can thus be controlled through geometry of the relief channels rather than through process controls. Thus, this approach reduces dependence on adhesive process control, reduces wicking of adhesive into signal channels and reduces the number of voids in a bond line of a bonded flat plate assembly.

Claims (53)

1. A flat plate assembly comprising:

a pair of plates, each plate having first and second opposing surfaces;

one or more signal paths provided in at least one surface of at least one of said plates;

one or more bond channels provided in the at least one surface of at least one of said plates proximate at least a portion of said signal paths; and

one or more relief channels provided in the at least one surface of at least one of said plates, wherein at least one of said relief channels is disposed around and spaced apart from a perimeter of said bond channels, the at least one of said relief channels and a shape which defines one or more wick regions such that in response to an adhesive disposed in at least one of said bond channels and pressure applied to said please causes the adhesive to wick to a surface of said plates in the one or more wick regions.

2. The flat plate assembly of claim 1 wherein the one or more wick regions correspond to portions of the at least one surface of at least one of said plates between said bond channels and said relief channels.

3. The flat plate assembly of claim 1 wherein at least one or more of said relief channels and said bond channels are provided in the same surface of one of said plates.

4. The flat plate assembly of claim 1 wherein the at least one of said relief channels and at least one of said bond channels are disposed around a perimeter of the at least one of said signal paths.

5. The flat plate assembly of claim 4 wherein the at least one of said signal paths comprises at least one channel in the at least one surface of at least one of said plates.

6. The flat plate assembly of claim 5 wherein the at least one of said signal paths is an RF signal path.

7. The flat plate assembly of claim 6 wherein:

the at least one of said signal paths is a suspended air stripline (SAS) signal path;

the at least one of said bond channels is disposed proximate at least a portion of said SAS signal path; and

the at least one of said relief channels is disposed proximate at least a portion of at least one of said bond channels.

8. The flat plate assembly of claim 7 wherein:

said suspended air stripline (SAS) signal path comprises one or more channels provided in a first surface of a first one of said pair of plates; one or more matching channels in a first surface of a second one of said pair of plates and a printed circuit board disposed substantially between the one or more channels;

the at least one of said bond channels is provided in the same surface as one of the channels of said of the SAS signal path and proximate the channel; and

the at least one of said relief channels is provided in the same surface as the at least one of the bond channels proximate at least a portion of the at least one of said bond channels.

9. A method of bonding first and second conductive plates to provide a bonded assembly, the method comprising:

a) providing a signal path in a first one of the first and second plates;

b) providing a bond channel in the first one of the first and second plates, said bond channel proximate at least a portion of said signal path;

c) providing a relief channel in the second one of the first and second plates, said relief channel proximate at least a portion of said bond channel;

d) disposing an epoxy in said bond channel; and

e) mating the first plate to the second plate to provide the bonded assembly.

10. The method of claim 9 wherein providing the signal path in the first one of the first and second plates comprises providing a radio frequency (RF) signal path in a first one of the first and second plates.

11. The method of claim 10 wherein providing the relief channel in the second one of the first and second plates, comprises providing the relief channel having an aspect ratio which causes a fluid epoxy to travel in said bond channel and wick to a surface defined by the relief channel and outside of the signal path in response to mating the first plate to the second plate.

12. The method of claim 11 wherein providing the RF signal path in a first one of the first and second plates comprises:

providing a suspended air stripline (SAS) signal path in the first one of the first and second plates;

providing the bond channel in the first one of the first and second plates comprises providing the bond channel proximate at least a portion of said of the SAS signal path; and

providing the relief channel in the second one of the first and second plates comprises providing the relief channel proximate at least a portion of said bond channel.

13. An electronic assembly comprising:

first and second housings have at least one flat mating surface;

one or more signal paths provided in at least one surface of at least one of said first and second housings;

one or more bond channels provided in the at least one surface of at least one of said first and second housings proximate at least a portion of said signal paths; and

one or more relief channels provided in the at least one surface of at least one of said first and second housings, wherein at least one of said relief channels is disposed around and spaced apart from a perimeter of said bond channels, the at least one of said relief channels and a shape which defines one or more wick regions such that in response to an adhesive disposed in said bond channels and pressure applied to one of said first and second housings, and causes the adhesive to wick to a surface of said first and second housings in the one or more wick regions.

14. The electronic assembly of claim 13 wherein the one or more wick regions correspond to portions of the at least one surface of at least one of said first and second housings between said bond channels and said relief channels.

15. The electronic assembly of claim 13 wherein at least some of said relief channels and said bond channels are provided in the same surface of one of said first and second housings.

16. The electronic assembly of claim 13 wherein the at least one of said relief channels and the at least one of said bond channels are disposed around a perimeter of at least one of said signal paths.

17. The electronic assembly of claim 16 wherein the at least one of said signal paths comprises at least one channel in the at least one surface of at least one of said first and second housings.

18. A radio frequency (RF) flat plate assembly comprising:

a pair of conductive plates, each plate having first and second opposing surfaces;

one or more signal paths provided in at least one surface of at least one of said conductive plates;

one or more bond channels provided in the at least one surface of at least one of said conductive plates proximate an entire perimeter of said at least one signal path; and

one or more relief channels provided in the at least one surface of at least one of said conductive plates, wherein at least one of said relief channels is disposed around and spaced apart from an entire perimeter of said bond channels, the at least one of said relief channels and a shape which defines one or more wick regions such that in response to an adhesive disposed in said bond channels and pressure applied to said please causes the adhesive to wick to a surface of said plates in the one or more wick regions wherein: the one or more wick regions correspond to portions of the at least one surface of at least one of said conductive plates between each said bond channels and said relief channels; and at least some of said relief channels and said bond channels are provided in the same surface of one of said plates.

19. The flat plate assembly of claim 18 wherein:

at least one of said signal paths comprises at least one channel in at least one surface of at least one of said plates;

at least one of said signal paths is a suspended air stripline (SAS) signal path;

at least one of said bond channels is disposed proximate at least a portion of said SAS signal path; and

at least one of said relief channels is disposed proximate at least a portion of the at least one of said bond channels.

20. The flat plate assembly of claim 19 wherein:

said suspended air stripline (SAS) signal path comprises one or more channels provided in a first surface of a first one of said pair of plates; one or more matching channels in a first surface of a second one of said pair of plates and a printed circuit board disposed substantially between the one or more channels;

the at least one of said bond channels is provided in the same surface as one of the channels of said of the SAS signal path and proximate the channel; and

the at least one of said relief channels is provided in the same surface as the at least one of the bond channels proximate at least a portion of the at least one of said bond channels.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jan 23, 2017
From: RAYTHEON COMPANY
To: THE GOVERNMENT OF THE UNITED STATES OF AMERICA AS REPRESENTED BY THE SECRETARY OF THE NAVY
Reel/Frame 041060/0984 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2016
From: WARGO, MATTHEW J.
To: RAYTHEON COMPANY
Reel/Frame 039856/0584 →
Continuity (1)
Related Publication 20180083333A1 · Mar 22, 2018