Microwave/millimeter-wave waveguide to circuit board connector
11342683 · 2022-05-24
Assignee
Inventors
- Timothy Smith (Durham, NC, US)
- Jean-Marc Rollin (Chapel Hill, NC, US)
- Jared Jordan (Raleigh, NC, US)
- Brian Kerrigan (Cary, NC, US)
- William Stacy (Blacksburg, VA, US)
Cpc classification
H01R12/7076
ELECTRICITY
H01R12/722
ELECTRICITY
International classification
H01R12/72
ELECTRICITY
Abstract
Circuit board connector that provides electrical connection between conductive traces in a printed circuit board and microwave/millimeter-wave components.
Claims
1. A connector configured to provide physical and electrical connection to a circuit board having conductive traces, the connector comprising: a mounting feature for receiving an edge of the circuit board; and at least one coaxial waveguide disposed within the connector, the waveguide having a center conductor having a first end, the first end configured to be electrically connected to a conductive trace of the circuit board, wherein all side surfaces of the center conductor are ground shielded.
2. The connector of claim 1, wherein the connector comprises a plurality of sequential layers of a metal joined to provide a unitary monolithic structure.
3. The connector of claim 2, wherein the center conductor has a longitudinal axis and the plurality of layers are disposed perpendicular to the longitudinal axis.
4. The connector of claim 2, wherein the center conductor has a longitudinal axis and the plurality of layers are disposed parallel to the longitudinal axis.
5. The connector of claim 2, wherein the at least one coaxial waveguide comprises an air spaced coaxial waveguide.
6. The connector of claim 2, wherein the mounting feature is a slot.
7. The connector of claim 2, wherein the at least one coaxial waveguide comprises a plurality of waveguides.
8. An antenna system, comprising: an antenna array; the connector of claim 1, the center conductor thereof electrically connected to the antenna array; and at least one circuit board disposed in the mounting feature, the circuit board electrically connected to the center conductor of the connector to provide electrical connection between the circuit board and the antenna array.
9. The antenna system of claim 8, wherein the antenna array is removably attached to the connector.
10. The antenna system of claim 8, wherein the antenna array comprises a plurality of sequential layers of a metal joined to provide a unitary monolithic structure.
11. The antenna system of claim 8, wherein the antenna array includes a conductive feedthrough, the conductive feedthrough electrically connected to the center conductor of the connector.
12. The antenna system of claim 8, wherein the first end of the center conductor of the connector is electrically connected to a selected electrical trace of the circuit board.
13. The antenna system of claim 8, wherein the first end of the center conductor of the connector is soldered to a selected electrical trace of the circuit board.
14. The antenna system of claim 8, wherein the circuit board comprises electronics for driving the antenna array.
15. The antenna system of claim 8, wherein the center conductor of the connector is electrically connected to the antenna array via a conductive elastomer.
16. The antenna system of claim 8, comprising an LGA electrically connected between the antenna array and the connector.
17. The antenna system of claim 16, wherein the LGA is removably connected to the antenna array.
18. The antenna system of claim 16, wherein the LGA is soldered to the connector.
19. The antenna system of claim 8, wherein the at least one coaxial waveguide of the connector comprises a plurality of coaxial waveguides, and the connector is electrically connected to the antenna array via a grid of conductive elastomer pins disposed between the connector and the antenna array, each pin disposed in electrical connection with a respective center conductor of the plurality of coaxial waveguides.
20. The antenna system of claim 8, wherein the connector is one of a plurality of connectors and the at least one circuit board comprises a plurality of circuit boards.
21. A connectorized circuit board assembly, comprising the connector of claim 1 and a circuit board disposed in the mounting feature, the circuit board electrically connected to the center conductor.
22. The connectorized circuit board assembly of claim 21, wherein the first end of the center conductor of the connector is electrically connected to a selected electrical trace of the circuit board.
23. The connectorized circuit board assembly of claim 21, wherein the first end of the center conductor of the connector is soldered to a selected electrical trace of the circuit board.
24. A method for creating a connector configured to provide physical and electrical connection to a circuit board having conductive traces, comprising: a. depositing a plurality of layers over a substrate, wherein the layers comprise one or more of conductive, non-conductive and sacrificial materials; b. patterning the layers of conductive, non-conductive and sacrificial material to define a structure of the connector which includes a mounting feature for receiving an edge of the circuit board, and at least one coaxial waveguide disposed within the connector, the waveguide having a center conductor having a first end, the first end configured to be electrically connected to a conductive trace of the circuit board, wherein all side surfaces of the center conductor are ground shielded; and c. removing the sacrificial material to provide the connector.
25. The method of claim 24, wherein the plurality of layers are disposed parallel to a longitudinal axis of the center conductor.
26. The method of claim 24, wherein the plurality of layers are disposed perpendicular to a longitudinal axis of the center conductor.
27. The method of claim 24, wherein the at least one coaxial waveguide comprises an air spaced coaxial waveguide.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing summary and the following detailed description of exemplary embodiments of the present invention may be further understood when read in conjunction with the appended drawings, in which:
(2)
(3)
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(5)
DETAILED DESCRIPTION OF THE INVENTION
(6) Referring now to the figures, wherein like elements are numbered alike throughout,
(7) More specifically, the connector 150 may include a slot 152 into which an edge of the printed circuit board 160 may be inserted,
(8) As to the removable connection between the connector 150 and the antenna array 120, a conductive elastomer pin 141, such as one provided in a land grid array, LGA 140, may be provided at the end of the connector 150 proximate the antenna array 120. The LGA 140 may include multiple forms of “separable” (i.e., removable as defined herein) interconnect between the stiffener 130 and/or the connector 150, including but not limited to: elastomer interconnects, metal spring interconnects, fuzz buttons, and/or diamond particle interconnect. In addition, the LGA 140 may include a hybrid of a separable interconnect and non-separable interconnect, such as solder and conductive epoxy. For example, the LGA 140 may include a separable compressive interconnection, such as a conductive elastomer, on one side of the LGA 140 and a ball grid array of solder bumps on the opposite side. Thus, for such a configuration the LGA 140 may separate from the remaining structure, but only on one side.
(9) The conductive elastomer pin 141 may be disposed in registration and electrical contact with the center conductor 154 of the connector 150. The conductive elastomer pin 141 may be electrically connected to a corresponding conductive feedthrough 121 of the antenna array 120. Optionally, a stiffener 130 may be provided between the LGA 140 and the antenna array 120 to provide additional stiffness to the antenna array 120, if required. The stiffener 130 may be provided in the form of a metal sheet having a conductive feedthrough 131 extending therethrough. The conductive feedthrough 131 of the stiffener 130 may be electrically connected to the feedthrough 121 of the antenna array 120 as well as to the conductive elastomer pin 141, thus completing electrical connection between the solder pad 162 of the circuit board 160 and the antenna array 120.
(10) As further illustrated in
(11) One or more of the connector elements 150, connector strips 152, stiffener 130, and antenna array 120 may contain a plurality of sequential (e.g., laminated) metal layers, such as provided by a multilayer build process such as PolyStrata® multilayer build processing/technology. As such, the connector elements 150, connector strips 152, stiffener 130, and antenna array 120 may each be a unitary monolithic structure comprised of the sequential layers. The layers of the connector 150 (or connector strips 152) may be oriented either perpendicular to, or parallel to, a longitudinal axis of the center conductor(s) 152 of the connector 150 (or connector strips 152). Similarly, layers of the antenna array 120 may be oriented either perpendicular to, or parallel to, a longitudinal axis of the feedthroughs 121 of the antenna array 120.
(12)
(13) These and other advantages of the present invention will be apparent to those skilled in the art from the foregoing specification. Accordingly, it will be recognized by those skilled in the art that changes or modifications may be made to the above-described embodiments without departing from the broad inventive concepts of the invention. It should therefore be understood that this invention is not limited to the particular embodiments described herein, but is intended to include all changes and modifications that are within the scope and spirit of the invention as set forth in the claims.