WAVEGUIDE DIRECTIONAL COUPLER
20170093013 ยท 2017-03-30
Inventors
Cpc classification
International classification
Abstract
A directional coupler assembly includes a waveguide housing. The waveguide housing has a first segment and a second segment. A first waveguide port and a second waveguide port are disposed on opposite sides of the waveguide housing. A third waveguide port is disposed on a third side of the waveguide housing, the third waveguide port being disposed substantially orthogonal to the first waveguide port and the second waveguide port. A main coupler board is disposed between the first segment and the second segment and communicatively couples the first waveguide port, the second waveguide port and the third waveguide port.
Claims
1. A directional coupler assembly, comprising: a waveguide housing, the waveguide housing comprising a first segment and a second segment; a first waveguide port and a second waveguide port disposed on opposite sides of the waveguide housing; a third waveguide port disposed on a third side of the waveguide housing, the third waveguide port being disposed substantially orthogonal to the first waveguide port and the second waveguide port; a main coupler board disposed between the first segment of the waveguide housing and the second segment of the waveguide housing, the main coupler board communicatively coupling the first waveguide port, the second waveguide port and the third waveguide port.
2. The directional coupler assembly of claim 1, wherein the main coupler board comprises: a first waveguide probe configured to be coupled to the first waveguide port; a second waveguide probe configured to be coupled to the second waveguide port; a third waveguide probe configured to be coupled to the third waveguide port; and a broadband resistor terminating a fourth waveguide port.
3. The directional coupler of claim 2, wherein the main coupler board comprises: a first transmission line coupling the first waveguide probe and the second waveguide probe; a second transmission line coupling the third waveguide probe and the broadband resistor; and a coupling point communicative coupling the first transmission line and the second transmission line.
4. The directional coupler of claim 2, wherein a substrate of the main coupler board comprises a quartz substrate.
5. The directional coupler of claim 1, comprising: a first waveguide coupling the first waveguide port and the first waveguide probe; a second waveguide coupling the second waveguide port and the second waveguide probe; a dividing member separating the first waveguide from the second waveguide, wherein the first waveguide and the second waveguide are disposed substantially in-line with each other; and a third waveguide coupling the third waveguide port and the third waveguide probe.
6. The directional coupler assembly of claim 5, wherein the third waveguide is disposed substantially orthogonal to the first waveguide and the second waveguide.
7. The directional coupler assembly of claim 1, wherein the directional coupler is a G-Band directional coupler.
8. The directional coupler assembly of claim 1, wherein the main coupler board is enclosed within the waveguide housing between the first segment and the second segment.
9. A directional coupler assembly, comprising: a waveguide housing, a first waveguide, a second waveguide and a third waveguide disposed within the waveguide housing; a main coupler board disposed within the waveguide housing, the main coupler board comprising: a first transmission line coupling the first waveguide and the second waveguide; a broadband resistor device disposed on the main coupler board; and a second transmission line coupling the third waveguide to the broadband resistor device.
10. The directional coupler assembly of claim 9, wherein the main coupler board is a quartz board.
11. The directional coupler assembly of claim 9, wherein the waveguide housing comprises a first part and a second part, the main coupler board being disposed between the first part and the second part.
12. The directional coupler assembly of claim 11, wherein the main coupler board is disposed in a cavity defined by the first part and the second part of the waveguide housing.
13. The directional coupler assembly of claim 11, wherein the first part comprises a first waveguide channel, a second waveguide channel and a third waveguide channel in a top surface of the first part of the waveguide housing, the second part comprises a first waveguide channel, a second waveguide channel and a third waveguide channel in a top surface of the second part of the waveguide housing, wherein the first waveguide channel, second waveguide channel and third waveguide channel of the respective first part and second part are joined together to form the first waveguide, the second waveguide and the third waveguide in the waveguide housing.
14. The directional coupler assembly of claim 13, comprising a first waveguide port coupled to the first waveguide, a second waveguide port coupled to the second waveguide and a third waveguide port coupled to the third waveguide.
15. The directional coupler assembly of claim 14, wherein the first waveguide port and the second waveguide port are disposed on opposite sides of the waveguide housing.
16. The directional coupler assembly of claim 14, comprising a fourth waveguide port coupled to the second transmission line, the broadband resistor terminating the fourth waveguide port.
17. The directional coupler assembly of claim 9, comprising a divider formed in the waveguide housing communicatively separating the first waveguide and the second waveguide.
18. The directional coupler assembly of claim 9, wherein the broadband resistor comprises an on-chip resistor.
19. The directional coupler assembly of claim 9, wherein the directional coupler is configured for the 156-206 GHz band.
20. The directional coupler assembly of claim 9, wherein the main coupler board is disposed in a void within the waveguide housing at an intersection of the first waveguide, the second waveguide and the third waveguide.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The accompanying drawings illustrate presently preferred embodiments of the present disclosure, and together with the general description given above and the detailed description given below, serve to explain the principles of the present disclosure. As shown throughout the drawings, like reference numerals designate like or corresponding parts.
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS OF THE DISCLOSURE
[0021] The aspects of the disclosed embodiments are directed to a G-Band chip/waveguide directional coupler that is compatible with standard waveguide flanges at G-band. The G-Band, 156-206 GHz, directional coupler of the disclosed embodiments provides an 11 dB coupling factor, less than 0.8 dB loss, greater than 22 dB isolation, and better than 13 dB return loss across the band. The directional coupler of the disclosed embodiments has less loss compared to existing couplers that cover comparable bandwidth.
[0022] Unlike existing couplers at this frequency range, the directional coupler of the disclosed embodiments is designed on a quartz board (on-chip) and is implemented into a waveguide housing. The directional coupler of the disclosed embodiments provides a form factor that is two to three times smaller than conventional waveguide couplers. Also, since the directional coupler of the disclosed embodiments is implemented on a chip it is easily integrated with chip components or on-chip devices such as noise sources and/or LNA. The directional coupler of the disclosed embodiments has a broadband resistor designed into it, eliminating the need for another port or chip resistor.
[0023]
[0024] In the example of
[0025] In one embodiment, the dimensions of the main body 110 comprise a width W of approximately 0.876 inches (22.253 mm); a length L of approximately 1.265 inches (32.14 mm); and a height H of approximately 0.778 inches (19.76 mm). In alternate embodiments, the dimensions of the main body 110 can comprise any suitable dimensions. Generally, the dimensions of the directional coupler assembly 100 can include any limitations in size that are established by standard flange sizes and hardware accommodation.
[0026] Referring also to
[0027] In the example of
[0028] As shown in
[0029]
[0030] In one embodiment, the first waveguide 402 is coupled to the first port 102, the second waveguide 404 to the second port 104 and the third waveguide 406 to the third port 106. The first waveguide 402 and the second waveguide 404 are generally in-line with each other, separated by a dividing member 401. The size and shape of the waveguides 402, 404, and 406 are selected to provide the smallest loss associated with the length of the respective waveguides.
[0031] As is shown in
[0032]
[0033]
[0034] In the example of
[0035] In the example of
[0036] In one embodiment, the main coupler board 410 is attached to the waveguide housing 110 via conductive epoxy. In alternate embodiments, the main coupler board 410 can be attached to the waveguide housing 110 in any suitable manner, other than including conductive epoxy. For example, solder paste can be used.
[0037]
[0038]
[0039] The aspects of the disclosed embodiments provide a 156-208 GHz chip-waveguide directional coupler has been designed on quartz substrate implemented into a waveguide housing. The directional coupler of the disclosed embodiments includes three waveguide ports for the input, output, and coupled ports. A broadband resistor is designed on chip for terminating the fourth port of the coupler. The design of the coupler is based on a conventional microstrip directional coupler, but since it is designed into an enclosed housing, the fields are confined resulting in better insertion loss, isolation, and return loss compared to a microstrip directional coupler. Compared to waveguide couplers, the directional coupler of the disclosed embodiments has better insertion loss and a smaller footprint. The performance of the direction coupler of the disclosed embodiments has been verified using the full wave electromagnetic simulator HFSS.
[0040] Thus, while there have been shown, described and pointed out, fundamental novel features of the invention as applied to the exemplary embodiments thereof, it will be understood that various omissions and substitutions and changes in the form and details of devices and methods illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention. Moreover, it is expressly intended that all combinations of those elements and/or method steps, which perform substantially the same function in substantially the same way to achieve the same results, are within the scope of the invention. Moreover, it should be recognized that structures and/or elements and/or method steps shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.