IP Library Granted Patent US 10,498,004
Granted Patent B1
US 10,498,004 · App. 16/049,332 · Granted Dec 3, 2019

Wideband dual directional coupler

Inventors: Donghyeon Ji (Gyeonggi-do, KR); Hyungbin Lee (Seoul, KR); Junghyun Kim (Gyeonggi-do, KR)
Assignee: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
H01P5/18H03H7/38H03K17/693H04B1/18
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Quick Facts
Patent No.
US 10,498,004
App. No.
16/049,332
Granted
Dec 3, 2019
Kind
B1
Abstract

A directional coupler device includes an asymmetric dual directional coupler for receiving a radio frequency (RF) signal and a switching circuit. The asymmetric dual directional coupler includes a main line having an input port and an output port, multiple coupled lines separated from the main line, the coupled lines having different lengths for providing different coupling factors, respectively, where each coupled line has first and second ports. The switching circuit selectively applies one of the different coupling factors of the coupled lines, depending on frequency of the RF signal in relation to a predetermined threshold frequency, while coupling a portion of forward power or reverse power of the RF signal to a coupling reading port, to mitigate power loss in an upper frequency range of the RF signal, while satisfying coupling criteria.

Claims (46)

1. A directional coupler device, comprising:

an asymmetric dual directional coupler for receiving a radio frequency (RF) signal, the asymmetric dual directional coupler comprising:

a main line having an input port and an output port;

a plurality of coupled lines separated from the main line, the plurality of coupled lines having different lengths for providing a corresponding plurality of different coupling factors, respectively, wherein each coupled line comprises first and second ports; and

a switching circuit for selectively applying one of the different coupling factors corresponding to the plurality of coupled lines, depending on frequency of the RF signal in relation to a predetermined threshold frequency, while coupling a portion of forward power or reverse power of the RF signal to a coupling reading port, to mitigate power loss in an upper frequency range of the RF signal, while satisfying coupling criteria.

2. The directional coupler device of claim 1 , wherein the switching circuit applies a first coupling factor corresponding to a first coupled line of the plurality of coupled lines for coupling forward power or reverse power of the RF signal in a lower frequency range lower the predetermined threshold frequency, and applies a second coupling factor corresponding to a second coupled line of the plurality of coupled lines for coupling forward power or reverse power of the RF signal in an upper range higher than the predetermined threshold frequency, and

wherein the first coupled line is longer than the second coupled line.

3. The directional coupler device of claim 1 , wherein the switching circuit comprise a plurality of tristate switches connected to the first and second ports of the plurality of coupled lines, respectively, the plurality of tristate switches being configured to selectively couple one of the plurality of coupled lines to the coupling reading port and float one of the plurality of coupled lines.

4. The directional coupler device of claim 3 , wherein each of the tristate switches comprises a terminated state, a reading state and a floating state.

5. The directional coupler device of claim 4 , wherein first tristate switches of the plurality of tristate switches are respectively connected to the first and second ports of the coupled one of the coupling lines, and second tristate switches of the plurality of tristate switches are respectively connected to the first and second ports of the floated one of coupling lines,

wherein one of first tristate switches is in the termination state to connect the first port to ground via a resistance and another of the first tristate switches is in the reading state to connect the second port to the coupling reading port, and

wherein both of the second tristate switches are in the floating state.

6. The directional coupler device of claim 1 , further comprising:

an interface for outputting a plurality of control bits to control operation of the switching circuit.

7. The directional coupler device of claim 6 , wherein the switching circuit comprises a plurality of tristate switches connected to the first and second ports of the plurality of coupled lines, respectively, and a switching controller for controlling operation of the plurality of tristate switches in response to the plurality of control bits.

8. The directional coupler device of claim 7 , wherein the switching controller comprises a logic circuit.

9. The directional coupler device of claim 1 , wherein the coupled lines are in a different metal layer than the main line, enabling broadside coupling of the coupled line corresponding to the applied coupling factor.

10. The directional coupler device of claim 1 , wherein the coupled lines are in a same metal layer as the main line, enabling edge coupling of the coupled line corresponding to the applied coupling factor.

11. A directional coupler device, comprising:

an asymmetric dual directional coupler, comprising:

a main line having an input port for receiving a radio frequency (RF) signal and a transmission port;

a first coupled line having a first length; and

a second coupled line having a second length shorter than the first length; and

a switching circuit for selectively connecting one of the first coupled line and the second coupled line to a coupling reading port, depending on frequency of the RF signal received the by the input port of the main line, in order to couple a portion of forward or reverse power of the RF signal in the main line to the coupling reading port, the switching circuit comprising:

first switches connected to respective ports of the first coupled line;

second switches connected to second respective ports of the second coupled line; and

a switching controller for controlling operation of the first and second switches, wherein when the frequency of the RF signal is lower than a predetermined threshold frequency, the switching controller connects the first coupled line to the coupling reading port through one of the ports of the first coupled line, and when the frequency of the RF signal is higher than the predetermined threshold frequency, the switching controller connects the second coupled line to the coupling reading port through one of the ports of the second coupled line.

12. The directional coupler device of claim 11 , wherein the switching circuit further comprises a coupling matching circuit connected to the coupling reading port, and configured to compensate for parasitic capacitance from at least one of the first and second switches.

13. The directional coupler device of claim 11 , wherein each of the first and second switches comprises a tristate switch having a terminated state, a reading state and a floating state.

14. The directional coupler device of claim 13 , wherein connecting the first coupled line to the coupling reading port through one of the ports of the first coupled line comprises switching one of the first switches to the reading state and another of the first switches to the terminated state, and the second switches to the floating state, to read the forward power when the frequency of the RF signal is lower than the predetermined threshold frequency.

15. The directional coupler device of claim 13 , wherein connecting the first coupled line to the coupling reading port through one of the ports of the first coupled line comprises switching one of the first switches to the terminated state and another of the first switches to the reading state, and the second switches to the floating state, to read the reverse power when the frequency of the RF signal is lower than the predetermined threshold frequency.

16. The directional coupler device of claim 13 , wherein connecting the second coupled line to the coupling reading port through one of the ports of the second coupled line comprises switching one of the second switches to the reading state and another of the second switches to the terminated state, and the first switches to the floating state, to read the forward power when the frequency of the RF signal is higher than the predetermined threshold frequency.

17. The directional coupler device of claim 13 , wherein connecting the second coupled line to the coupling reading port through one of the ports of the second coupled line comprises switching one of the second switches to the terminated state and another of the second switches to the reading state, and the first switches to the floating state, to read the reverse power when the frequency of the RF signal is higher than the predetermined threshold frequency.

18. The directional coupler device of claim 11 , wherein the switching controller comprises a logic circuit.

19. The directional coupler device of claim 11 , further comprising:

an interface for outputting a plurality of control bits to the switching controller, in response to user input, for controlling operation of the first and second switches.

20. A wireless communication device, comprising:

a first asymmetric dual directional coupler device for receiving a first radio frequency (RF) signal, the first asymmetric dual directional coupler device comprising:

a first main line having an first input port and a first output port; and

a plurality of first coupled lines separated from the first main line, the plurality of first coupled lines having different lengths for providing a corresponding plurality of first different coupling factors;

a first switching circuit for selectively applying one of the first different coupling factors corresponding to the plurality of first coupled lines, depending on first frequency of the RF signal in relation to a first predetermined threshold frequency; and

a second asymmetric dual directional coupler device for receiving a second RF signal, the second asymmetric dual directional coupler device comprising:

a second main line having an second input port and a second output port;

a plurality of second coupled lines separated from the second main line, the plurality of second coupled lines having different lengths for providing a corresponding plurality of second different coupling factors; and

a second switching circuit for selectively applying one of the second different coupling factors corresponding to the plurality of second coupled lines, depending on second frequency of the RF signal in relation to a second predetermined threshold frequency,

wherein the first and second switching circuits are configured to electrically couple one of the plurality of first coupled lines to one of the plurality of second coupled lines in series.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE EXECUTION DATE OF THE MERGER AND APPLICATION NOS. 13/237,550 AND 16/103,107 FROM THE MERGER PREVIOUSLY RECORDED ON REEL 047231 FRAME 0369. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER. Recorded Mar 8, 2019
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 048549/0113 →
MERGER Recorded Oct 4, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047231/0369 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2018
From: JI, DONGHYEON; LEE, HYUNGBIN; KIM, JUNGHYUN
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 046661/0462 →
Cited By (5)
US 12,368,224 US 12,451,581 US 12,483,466 US 12,542,342 US 12,706,367