IP Library Granted Patent US 12,652,014
Granted Patent B2
US 12,652,014 · App. 18/061,210 · Granted Jun 9, 2026

Combiner/splitter

Inventors: Timothy M. Gittemeier (Plano, TX); Michael Roberg (Evergreen, CO)
Assignee: Qorvo US, Inc.
H03H7/487H01P5/16H04B1/40
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,652,014
App. No.
18/061,210
Granted
Jun 9, 2026
Kind
B2
Abstract

A combiner/splitter is disclosed having a first trifilar transformer having a first outer transmission element electrically connected between a first port node and a first intermediate node. A second trifilar transformer has a second outer transmission element electrically connected between the first intermediate node and a second port node. A third trifilar transformer has a third outer transmission element electrically connected between the first port node and a second intermediate node. A fourth trifilar transformer has a fourth outer transmission element electrically connected between the second intermediate node and a third port node.

Claims (37)

1 . A combiner/splitter ( 10 ) comprising:

a first trifilar transformer ( 12 ) having a first outer transmission element ( 14 ) electrically connected between a first port node (P 1 ) and a first intermediate node (N 1 );

a second trifilar transformer ( 16 ) having a second outer transmission element ( 18 ) electrically connected between the first intermediate node (N 1 ) and a second port node (P 2 );

a third trifilar transformer ( 20 ) having a third outer transmission element ( 22 ) electrically connected between the first port node (P 1 ) and a second intermediate node (N 2 );

a fourth trifilar transformer ( 24 ) having a fourth outer transmission element ( 26 ) electrically connected between the second intermediate node (N 2 ) and a third port node (P 3 ), wherein the second port node P 2 and the third port node P 3 are different nodes through which different signals from different external sources can be received, and each of the first trifilar transformer ( 12 ), the second trifilar transformer ( 16 ), the third trifilar transformer ( 20 ), and the fourth trifilar transformer ( 24 ) is configured to utilize magnetic coupling to perform impedance transformations; and

a resistor (R 1 ) and a capacitor (C 1 ) electrically connected in series between the second port node (P 2 ) and the third port node (P 3 ) to increase isolation between the second port node (P 2 ) and the third port node (P 3 ).

2 . The combiner/splitter ( 10 ) of claim 1 , wherein the first trifilar transformer ( 10 ) comprises a first middle transmission element ( 28 ) and a first inner transmission element ( 30 ) that are electrically connected in series between the first intermediate node (N 1 ) and a fixed voltage node (G 1 ), wherein the first middle transmission element ( 28 ) is arranged relative to the first outer transmission element ( 14 ) to magnetically couple with the first outer transmission element ( 14 ), and the first inner transmission element ( 30 ) is arranged relative to the first middle transmission element ( 28 ) to magnetically couple with the first middle transmission element ( 28 ).

3 . The combiner/splitter ( 10 ) of claim 2 , wherein the second trifilar transformer ( 16 ) comprises a second middle transmission element ( 32 ) and a second inner transmission element ( 34 ) that are electrically connected in series between the first intermediate node (N 1 ) and the fixed voltage node (G 1 ), wherein the second middle transmission element ( 32 ) is arranged relative to the second outer transmission element ( 18 ) to magnetically couple with the second outer transmission element ( 18 ), and the second inner transmission element ( 34 ) is arranged relative to the second middle transmission element ( 32 ) to magnetically couple with the second middle transmission element ( 32 ).

4 . The combiner/splitter ( 10 ) of claim 3 , wherein the third trifilar transformer ( 20 ) comprises a third middle transmission element ( 36 ) and a third inner transmission element ( 38 ) that are electrically connected in series between the second intermediate node (N 2 ) and the fixed voltage node (G 1 ), wherein the third middle transmission element ( 36 ) is arranged relative to the third outer transmission element ( 22 ) to magnetically couple with the third outer transmission element ( 22 ), and the third inner transmission element ( 38 ) is arranged relative to the third middle transmission element ( 36 ) to magnetically couple with the third middle transmission element ( 36 ).

5 . The combiner/splitter ( 10 ) of claim 4 , wherein the fourth trifilar transformer ( 20 ) comprises a fourth middle transmission element ( 40 ) and a fourth inner transmission element ( 42 ) that are electrically connected in series between the second intermediate node (N 2 ) and the fixed voltage node (G 1 ), wherein the fourth middle transmission element ( 40 ) is arranged relative to the fourth outer transmission element ( 26 ) to magnetically couple with the fourth outer transmission element ( 26 ), and the fourth inner transmission element ( 42 ) is arranged relative to the fourth middle transmission element ( 40 ) to magnetically couple with the fourth middle transmission element ( 40 ).

6 . The combiner/splitter of claim 1 further comprising a resistor (R 2 ) electrically connected between the first intermediate node (N 1 ) and the second intermediate node (N 2 ).

7 . The combiner/splitter of claim 1 further comprising a capacitor (C 2 ) electrically connected between the first port node (P 1 ) and the fixed voltage node (G 1 ).

8 . The combiner/splitter of claim 1 further comprising a capacitor (C 3 ) electrically connected between the first intermediate node (N 1 ) and the fixed voltage node (G 1 ).

9 . The combiner/splitter of claim 1 further comprising a capacitor (C 4 ) electrically connected between the second port node (P 2 ) and the fixed voltage node (G 1 ).

10 . The combiner/splitter of claim 1 further comprising a capacitor (C 5 ) electrically connected between the second intermediate node (N 2 ) and the fixed voltage node (G 1 ).

11 . The combiner/splitter of claim 1 further comprising a capacitor (C 6 ) electrically connected between the third port node (P 3 ) and the fixed voltage node (G 1 ).

12 . The combiner/splitter of claim 1 wherein the fixed voltage node is ground.

13 . A wireless communication device comprising:

a plurality of antennas;

a baseband processor;

transmit circuitry configured to receive encoded data from the baseband processor and to modulate a carrier signal with the encoded data; and

a combiner/splitter coupled between the plurality of antennas and the transmitter circuitry, the combiner/splitter comprising:

a first trifilar transformer ( 12 ) having a first outer transmission element ( 14 ) electrically connected between a first port node (P 1 ) and a first intermediate node (N 1 );

a second trifilar transformer ( 16 ) having a second outer transmission element ( 18 ) electrically connected between the first intermediate node (N 1 ) and a second port node (P 2 );

a third trifilar transformer ( 20 ) having a third outer transmission element ( 22 ) electrically connected between the first port node (P 1 ) and a second intermediate node (N 2 );

a fourth trifilar transformer ( 24 ) having a fourth outer transmission element ( 26 ) electrically connected between the second intermediate node (N 2 ) and a third port node (P 3 ), wherein the second port node P 2 and the third port node P 3 are different nodes through which different signals from different external sources can be received, and each of the first trifilar transformer ( 12 ), the second trifilar transformer ( 16 ), the third trifilar transformer ( 20 ), and the fourth trifilar transformer ( 24 ) is configured to utilize magnetic coupling to perform impedance transformations; and

a resistor (R 1 ) and a capacitor (C 1 ) electrically connected in series between the second port node (P 2 ) and the third port node (P 3 ) to increase isolation between the second port node (P 2 ) and the third port node (P 3 ).

14 . The wireless communication device of claim 13 , wherein the first trifilar transformer ( 10 ) comprises a first middle transmission element ( 28 ) and a first inner transmission element ( 30 ) that are electrically connected in series between the first intermediate node (N 1 ) and a fixed voltage node (G 1 ), wherein the first middle transmission element ( 28 ) is arranged relative to the first outer transmission element ( 14 ) to magnetically couple with the first outer transmission element ( 14 ), and the first inner transmission element ( 30 ) is arranged relative to the first middle transmission element ( 28 ) to magnetically couple with the first middle transmission element ( 28 ).

15 . The wireless communication device of claim 14 , wherein the second trifilar transformer ( 16 ) comprises a second middle transmission element ( 32 ) and a second inner transmission element ( 34 ) that are electrically connected in series between the first intermediate node (N 1 ) and the fixed voltage node (G 1 ), wherein the second middle transmission element ( 32 ) is arranged relative to the second outer transmission element ( 18 ) to magnetically couple with the second outer transmission element ( 18 ), and the second inner transmission element ( 34 ) is arranged relative to the second middle transmission element ( 32 ) to magnetically couple with the second middle transmission element ( 32 ).

16 . The wireless communication device of claim 15 , wherein the third trifilar transformer ( 20 ) comprises a third middle transmission element ( 36 ) and a third inner transmission element ( 38 ) that are electrically connected in series between the second intermediate node (N 2 ) and the fixed voltage node (G 1 ), wherein the third middle transmission element ( 36 ) is arranged relative to the third outer transmission element ( 22 ) to magnetically couple with the third outer transmission element ( 22 ), and the third inner transmission element ( 38 ) is arranged relative to the third middle transmission element ( 36 ) to magnetically couple with the third middle transmission element ( 36 ).

17 . The wireless communication device of claim 16 , wherein the fourth trifilar transformer ( 20 ) comprises a fourth middle transmission element ( 40 ) and a fourth inner transmission element ( 42 ) that are electrically connected in series between the second intermediate node (N 2 ) and the fixed voltage node (G 1 ), wherein the fourth middle transmission element ( 40 ) is arranged relative to the fourth outer transmission element ( 26 ) to magnetically couple with the fourth outer transmission element ( 26 ), and the fourth inner transmission element ( 42 ) is arranged relative to the fourth middle transmission element ( 40 ) to magnetically couple with the fourth middle transmission element ( 40 ).

18 . The wireless communication device of claim 13 further comprising a resistor (R 2 ) electrically connected between the first intermediate node (N 1 ) and the second intermediate node (N 2 ).

19 . The wireless communication device of claim 13 further comprising a capacitor (C 2 ) electrically connected between the first port node (P 1 ) and the fixed voltage node (G 1 ).

20 . The wireless communication device of claim 13 further comprising a capacitor (C 3 ) electrically connected between the first intermediate node (N 1 ) and the fixed voltage node (G 1 ).

21 . The wireless communication device of claim 13 further comprising a capacitor (C 4 ) electrically connected between the second port node (P 2 ) and the fixed voltage node (G 1 ).

22 . The wireless communication device of claim 13 further comprising a capacitor (C 5 ) electrically connected between the second intermediate node (N 2 ) and the fixed voltage node (G 1 ).

23 . The wireless communication device of claim 13 further comprising a capacitor (C 6 ) electrically connected between the third port node (P 3 ) and the fixed voltage node (G 1 ).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 18, 2023
From: GITTEMEIER, TIMOTHY M.; ROBERG, MICHAEL
To: QORVO US, INC.
Reel/Frame 064293/0649 →
Continuity (2)
Provisional Application 63301123 · Jan 20, 2022
Related Publication 20230231532A1 · Jul 20, 2023
References Cited (19)
US 4724602A · Weissman · 1988 [cited by applicant]
US 4810904A · Crawford · 1989 [cited by examiner]
US 10438732B2 · Roberg · 2019 [cited by applicant]
US 20090085666A1 · Ohnishi et al. · 2009 [cited by applicant]
US 20100091521A1 · Hinds et al. · 2010 [cited by applicant]
US 20120314734A1 · Zierdt · 2012 [cited by applicant]
US 20130234669A1 · Huang · 2013 [cited by examiner]
US 20130241308A1 · Bilbrey et al. · 2013 [cited by applicant]
US 20140253246A1 · Mei · 2014 [cited by applicant]
US 20170076855A1 · Roberg · 2017 [cited by examiner]
US 20190235050A1 · Maligeorgos · 2019 [cited by examiner]
US 20230030569A1 · Kim · 2023 [cited by examiner]
Boulouard, Andre et al., “Analysis of Rectangular Spiral Transformers for MMIC Applications,” IEEE Transactions on Microwave Theory and Techniques, vol. 37, No. 8, Aug. 1989, pp. 1257-1260. [cited by applicant]
Scardelletti, M.C. et a., ““Miniaturized Wilkinson Power Dividers Utilizing Capacitive Loading,”” IEEE Microwave and Wireless Components Letters, vol. 12, Issue 1, Jan. 2002, IEEE, 3 pages. [cited by applicant]
Winslow, Thomas A., “Ultra broadband MMIC impedance transformer,” Proceedings of the 41st European Microwave Conference, Oct. 10-13, 2011, Manchester, UK, IEEE, pp. 854-857. [cited by applicant]
Non-Final Office Action for U.S. Appl. No. 15/141,296, mailed Dec. 5, 2018, 12 pages. [cited by applicant]
Final Office Action for U.S. Appl. No. 15/141,296, mailed Mar. 20, 2019, 13 pages. [cited by applicant]
Advisory Action for U.S. Appl. No. 15/141,296, mailed Apr. 15, 2019, 3 pages. [cited by applicant]
Notice of Allowance and Applicant-Initiated Interview Summary for U.S. Appl. No. 15/141,296, mailed May 29, 2019, 10 pages. [cited by applicant]