IP Library Granted Patent US 7,005,942
Granted Patent B2
US 7,005,942 · App. 10/719,817 · Granted Feb 28, 2006

Non-switching adaptable 4-way power splitter/combiner

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Quick Facts
Patent No.
US 7,005,942
App. No.
10/719,817
Granted
Feb 28, 2006
Kind
B2
Abstract

A 4-way power splitter/combiner circuit providing a plurality of transmission lines of selected impedance and phase shift to define four amplifier ports into which one to four amplifiers may be populated without reconfiguration of the circuit. The circuit provides acceptable VSWR and return loss under each operating condition.

Claims (133)

1. A 4-way power splitter/combiner circuit for use with power amplifiers, comprising:

a splitter circuit, further comprising

an input port;

a first node;

a second node;

a first splitter transmission line having an impedance Z S1 and an electrical length Φ S1 , said first splitter transmission line for connecting said input port to said first node;

a second splitter transmission line having an impedance Z S2 and an electrical length Φ S2 , said second splitter transmission line for connecting said input port to said second node;

a first amplifier input;

a second amplifier input;

a third amplifier input;

a fourth amplifier input;

a third splitter transmission line having an impedance Z S3 and an electrical length Φ S3 , said third splitter transmission line for connecting said first node to said first amplifier input;

a fourth splitter transmission line having an impedance Z S4 and an electrical length Φ S4 , said fourth splitter transmission line for connecting said first node to said second amplifier input;

a fifth splitter transmission line having an impedance Z S5 and an electrical length Φ S5 , said fifth splitter transmission line for connecting said second node to said third amplifier input;

a sixth splitter transmission line having an impedance Z S6 and an electrical length Φ S6 , said sixth splitter transmission line for connecting said second node to said fourth amplifier input;

a combiner circuit, further comprising

an output port;

a third node;

a fourth node;

a first combiner transmission line having an impedance Z C1 and an electrical length Φ C1 , said first combiner transmission line for connecting said output port to said third node;

a second combiner transmission line having an impedance Z C2 and an electrical length Φ C2 , said second combiner transmission line for connecting said output port to said fourth node;

a first amplifier output;

a second amplifier output;

a third amplifier output;

a fourth amplifier output;

a third combiner transmission line having an impedance Z C3 and an electrical length Φ C3 , said third combiner transmission line for connecting said third node to said first amplifier output;

a fourth combiner transmission line having an impedance Z C4 and an electrical length Φ C4 , said fourth combiner transmission line for connecting said third node to said second amplifier output;

a fifth combiner transmission line having an impedance Z C5 and an electrical length Φ C5 , said fifth combiner transmission line for connecting said fourth node to said third amplifier output;

a sixth combiner transmission line having an impedance Z C6 and an electrical length Φ C6 , said sixth combiner transmission line for connecting said fourth node to said fourth amplifier output;

wherein said first amplifier input and said first amplifier output together define a first amplifier port, said second amplifier input and said second amplifier output together define a second amplifier port, said third amplifier input and said third amplifier output together define a third amplifier port, and said fourth amplifier input and said fourth amplifier output together define a fourth amplifier port, each said amplifier port for receiving an amplifier;

wherein said first amplifier port, said second amplifier port, said third amplifier port and said fourth amplifier port collectively accept one to four amplifiers and the fraction of power provided to each of said amplifiers is 1/N where N is the number of operative amplifiers; and

wherein the phase shift of each of said combiner transmission lines and each of said splitter transmission lines is selected to produce an in-phase signal at said output port.

2. The 4-way power splitter/combiner circuit of claim 1 wherein the electrical lengths of said transmission lines satisfy the following equations:

Φ S1 +Φ S3 =Φ S1 +Φ S4 =X;

Φ S2 +Φ S5 =Φ S2 +Φ S6 =Y;

Φ C1 +Φ C3 =Φ C1 +Φ C4 =X′;

Φ C2 +Φ C5 =Φ C2 +Φ C6 =Y′;

|X−Y|=|X′−Y′|= 90 degrees; and

( X−Y )=( Y′−X′ ).

3. The 4-way power splitter/combiner circuit of claim 1 , further comprising at least one amplifier.

4. The 4-way power splitter/combiner circuit of claim 3 wherein the impedance presented by said input port and said output port are between approximately 35 Ω and approximately 71 Ω.

5. The 4-way power splitter/combiner circuit of claim 3 wherein said at least one amplifier comprises a first amplifier in said second amplifier port.

6. The 4-way power splitter/combiner circuit of claim 3 wherein said at least one amplifier comprises a first amplifier in said first amplifier port.

7. The 4-way power splitter/combiner circuit of claim 6 wherein said at least one amplifier further comprises a second amplifier in said second amplifier port.

8. The 4-way power splitter/combiner circuit of claim 7 wherein said at least one amplifier further comprises a third amplifier in said fourth amplifier port.

9. The 4-way power splitter/combiner circuit of claim 7 wherein said at least one amplifier further comprises a third amplifier in said third amplifier port.

10. The 4-way power splitter/combiner circuit of claim 9 wherein said at least one amplifier further comprises a fourth amplifier in said fourth amplifier port.

11. A 4-way power splitter/combiner circuit for use with power amplifiers, comprising:

an input port;

a first splitter transmission line connecting a first amplifier input to a first splitter node, said first splitter transmission line comprising a first splitter impedance transformer segment having impedance of 59.46 Ω and electrical length of 90° and a first splitter phase matching segment having impedance of 50 Ω and electrical length of 270°;

a second splitter transmission line connecting a second amplifier input to said first splitter node, said second splitter transmission line comprising a second splitter impedance transformer segment and a second splitter phase matching segment, each of said second splitter impedance transformer segment and said second splitter phase matching segment having impedance and electrical length substantially identical to that of said first splitter impedance transformer and said splitter first phase matching segment;

a third splitter transmission line connecting a third amplifier input to a second splitter node, said third splitter transmission line having impedance of 50 Ω and electrical length of 180°;

a fourth splitter transmission line connecting a fourth amplifier input to said second splitter node, said fourth splitter transmission line having impedance and electrical length substantially identical to that of said third splitter transmission line;

a fifth splitter transmission line connecting said second splitter node to said input port, said fifth splitter transmission line comprising a third splitter impedance transformer segment having impedance of 38 Ω and electrical length of 90°, and a fourth splitter impedance transformer segment having impedance of 64 Ω and electrical length of 90°;

a sixth splitter transmission line connecting said first splitter node to said input port, said sixth splitter transmission line having impedance of 50 Ω and electrical length of 90°;

an output port;

a first combiner transmission line connecting a first amplifier output to a first combiner node, said first combiner transmission line comprising a first combiner impedance transformer segment having impedance of 59.46 Ω and electrical length of 90° and a first combiner phase matching segment having impedance of 50 Ω and electrical length of 90°;

a second combiner transmission line connecting a second amplifier output to said first combiner node, said second combiner transmission line comprising a second combiner impedance transformer segment and a second combiner phase matching segment, each of said second combiner impedance transformer segment and said second combiner phase matching segment having impedance and electrical length substantially identical to that of said first combiner impedance transformer and said combiner first phase matching segment;

a third combiner transmission line connecting a third amplifier output to a second combiner node, said third combiner transmission line having impedance of 50 Ω and electrical length of 180°;

a fourth combiner transmission line connecting a fourth amplifier output to said second combiner node, said fourth combiner transmission line having impedance and electrical length substantially identical to that of said third combiner transmission line;

a fifth combiner transmission line connecting said second combiner node to said output port, said fifth combiner transmission line comprising a third combiner impedance transformer segment having impedance of 38 Ω and electrical length of 90°, and a fourth combiner impedance transformer segment having impedance of 64 Ω and electrical length of 90°;

a sixth combiner transmission line connecting said first combiner node to said output port, said sixth combiner transmission line having impedance of 50 Ω and electrical length of 90°;

wherein said first amplifier input and said first amplifier output together define a first amplifier port for receiving an amplifier, said second amplifier input and said second amplifier output together define a second amplifier port for receiving an amplifier, said third amplifier input and said third amplifier output together define a third amplifier port for receiving an amplifier, said fourth amplifier input and said fourth amplifier output together define a fourth amplifier port for receiving an amplifier; and

wherein 1–4 power amplifiers may be inserted in said amplifier ports to provide an amplified signal.

12. A 4-way power splitter/combiner circuit for use with power amplifiers, comprising:

a splitter circuit, further comprising

an input port;

a first node;

a second node;

a first splitter transmission line for connecting said input port to said first node;

a second splitter transmission line for connecting said input port to said second node;

a first amplifier input;

a second amplifier input;

a third amplifier input;

a fourth amplifier input;

a third splitter transmission line for connecting said first node to said first amplifier input;

a fourth splitter transmission line for connecting said first node to said second amplifier input;

a fifth splitter transmission line for connecting said second node to said third amplifier input;

a sixth splitter transmission line for connecting said second node to said fourth amplifier input;

a combiner circuit, further comprising

an output port;

a third node;

a fourth node;

a first combiner transmission line for connecting said output port to said third node;

a second combiner transmission line for connecting said output port to said fourth node;

a first amplifier output;

a second amplifier output;

a third amplifier output;

a fourth amplifier output;

a third combiner transmission line for connecting said third node to said first amplifier output;

a fourth combiner transmission line for connecting said third node to said second amplifier output;

a fifth combiner transmission line for connecting said fourth node to said third amplifier output;

a sixth combiner transmission line for connecting said fourth node to said fourth amplifier output;

wherein said first amplifier input and said first amplifier output together define a first amplifier port, said second amplifier input and said second amplifier output together define a second amplifier port, said third amplifier input and said third amplifier output together define a third amplifier port, and said fourth amplifier input and said fourth amplifier output together define a fourth amplifier port, each said amplifier port for receiving an amplifier;

wherein said splitter/combiner circuit accepts one to four amplifiers and the fraction of power provided to each of said amplifiers is 1/N where N is the number of operative amplifiers; and

wherein said splitter transmission lines and said combiner transmission lines have a plurality of electrical lengths; and

wherein the electrical lengths of each of said combiner transmission lines and each of said splitter transmission lines are selected to produce an in-phase signal at said output port.

13. The 4-way power splitter/combiner circuit of claim 12 further comprising an amplifier.

14. The 4-way power splitter/combiner circuit of claim 13 wherein said amplifier is populated in said first amplifier port.

15. The 4-way power splitter/combiner circuit of claim 13 wherein said amplifier is populated in said second amplifier port.

16. A 4-way power splitter/combiner circuit for use with power amplifiers, comprising:

a splitter circuit, further comprising

an input port;

a splitter node;

a first amplifier input;

a second amplifier input;

a third amplifier input;

a fourth amplifier input;

a first splitter transmission line having an impedance and an electrical length, said first splitter transmission line for connecting said input port to said splitter node;

a second splitter transmission line having an impedance and an electrical length, said second splitter transmission line for connecting said splitter node to said first amplifier input;

a third splitter transmission line having an impedance and an electrical length, said third splitter transmission line for connecting said splitter node to said second amplifier input;

a fourth splitter transmission line having an impedance and an electrical length, said fourth splitter transmission line for connecting said input port to said third amplifier input;

a fifth splitter transmission line having an impedance and an electrical length, said fifth splitter transmission line for connecting said input port to said fourth amplifier input;

a combiner circuit, further comprising

an output port;

a combiner node;

a first amplifier output;

a second amplifier output;

a third amplifier output;

a fourth amplifier output;

a first combiner transmission line having an impedance and an electrical length, said first combiner transmission line for connecting said output port to said combiner node;

a second combiner transmission line having an impedance and an electrical length, said second combiner transmission line for connecting said combiner node to said first amplifier output;

a third combiner transmission line having an impedance and an electrical length, said third combiner transmission line for connecting said combiner node to said second amplifier output;

a fourth combiner transmission line having an impedance and an electrical length, said fourth combiner transmission line for connecting said output port to said third amplifier output;

a fifth combiner transmission line having an impedance and an electrical length, said fifth combiner transmission line for connecting said output port to said fourth amplifier output;

wherein said first amplifier input and said first amplifier output together define a first amplifier port, said second amplifier input and said second amplifier output together define a second amplifier port, said third amplifier input and said third amplifier output together define a third amplifier port, and said fourth amplifier input and said fourth amplifier output together define a fourth amplifier port, each said amplifier port for receiving an amplifier;

wherein said splitter/combiner circuit accepts one to four amplifiers and the fraction of power provided to each of said amplifiers is 1/N where N is the number of operative amplifiers; and

wherein the electrical length of each of said combiner transmission lines and each of said splitter transmission lines is selected to produce an in-phase signal at said output port.

17. The 4-way power splitter/combiner circuit of claim 16 further comprising an amplifier.

18. The 4-way power splitter/combiner circuit of claim 17 wherein said amplifier is populated in said first amplifier port.

19. A splitter/combiner circuit comprising:

an N-way splitter circuit including a common input port coupled to N-amplifier input ports by way of at least one splitter impedance transformation network, the N-amplifier input ports being configured to accommodate at least one of N-RF amplifiers installed in the splitter/combiner circuit in a predetermined sequence, the at least one splitter impedance transformation network being characterized by at least one predetermined electric length and configured to provide each of the installed N-RF amplifiers with an RF amplifier input signal having an amplifier input signal power that is substantially equal to the signal power of a common input port signal divided by N, whereby N is an integer value between one (1) and four (4) inclusively; and

an N-way combiner circuit including N-amplifier output ports coupled to a common output port by way of at least one combiner impedance transformation network, the N-amplifier output ports corresponding to the N-amplifier input ports and configured to accommodate the at least one N-RF amplifiers installed in the splitter/combiner circuit in the predetermined sequence, the at least one combiner impedance transformation network being characterized by the at least one predetermined electric length and configured as a schematic mirror image of the at least one splitter impedance transformation network.

Assignments (11)
RELEASE OF SECURITY INTEREST IN PATENTS PREVIOUSLY RECORDED AT REEL/FRAME (063804/0702) Recorded Jun 2, 2026
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: TELEPHONICS CORPORATION; TTM TECHNOLOGIES, INC.; TTM TECHNOLOGIES NORTH AMERICA, LLC
Reel/Frame 075679/0852 →
PATENT SECURITY AGREEMENT (TERM LOAN) Recorded May 30, 2023
From: TELEPHONICS CORPORATION; TTM TECHNOLOGIES, INC.; TTM TECHNOLOGIES NORTH AMERICA, LLC
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 063804/0745 →
PATENT SECURITY AGREEMENT (ABL) Recorded May 30, 2023
From: TELEPHONICS CORPORATION; TTM TECHNOLOGIES, INC.; TTM TECHNOLOGIES NORTH AMERICA, LLC
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 063804/0702 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2021
From: ANAREN, INC.
To: TTM TECHNOLOGIES INC.
Reel/Frame 056635/0640 →
SUPPLEMENT TO PATENT SECURITY AGREEMENT - ABL Recorded Apr 23, 2018
From: ANAREN, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 045998/0401 →
SUPPLEMENT TO PATENT SECURITY AGREEMENT - TL Recorded Apr 23, 2018
From: ANAREN, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 046000/0815 →
RELEASE OF FIRST LIEN SECURITY INTEREST IN INTELLECTUAL PROPERTY RECORDED AT REEL/FRAME 032275/0473 Recorded Apr 18, 2018
From: CREDIT SUISSE AG, AS COLLATERAL AGENT
To: ANAREN, INC.; ANAREN MICROWAVE, INC.
Reel/Frame 045978/0510 →
RELEASE OF SECOND LIEN SECURITY INTEREST IN INTELLECTUAL PROPERTY RECORDED AT REEL/FRAME: 032276/0179 Recorded Apr 18, 2018
From: CREDIT SUISSE AG, AS COLLATERAL AGENT
To: ANAREN, INC.; ANAREN MICROWAVE, INC.
Reel/Frame 045972/0001 →
SECURITY AGREEMENT Recorded Feb 19, 2014
From: ANAREN, INC.; ANAREN MICROWAVE, INC.
To: CREDIT SUISSE AG, AS COLLATERAL AGENT (SECOND LIEN)
Reel/Frame 032276/0179 →
SECURITY AGREEMENT Recorded Feb 18, 2014
From: ANAREN, INC.; ANAREN MICROWAVE, INC.
To: CREDIT SUISSE AG, AS COLLATERAL AGENT (FIRST LIEN)
Reel/Frame 032275/0473 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2005
From: CULLITON, BRIAN E.; MEI, CHONG
To: ANAREN, INC.
Reel/Frame 016300/0063 →