IP Library Granted Patent US 12,620,949
Granted Patent B2
US 12,620,949 · App. 18/303,781 · Granted May 5, 2026

Amplifier circuit arrangement and electronic device

Inventor: Paul Gareth Lloyd (Munich, DE)
Assignee: Rohde & Schwarz GmbH & Co. KG
H03F3/245H03F1/0288H03F1/565H03F3/604H03F2200/198H03F2200/451
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Quick Facts
Patent No.
US 12,620,949
App. No.
18/303,781
Granted
May 5, 2026
Kind
B2
Abstract

An amplifier circuit arrangement for amplifying at least one input signal to an output signal for delivery to a load. The amplifier circuit arrangement includes at least one four-port hybrid coupler, a main amplifier having an input terminal for receiving a first input signal and coupled to a first port of the hybrid coupler, an auxiliary amplifier having an input terminal for receiving a second input signal and coupled to the second port of the hybrid coupler, a negative resistance amplifier circuit coupled to the third port of the hybrid coupler. The negative resistance amplifier circuit receives a signal from the hybrid coupler via the third port and returns an amplified signal back to the third port of the hybrid coupler. At least one of the auxiliary amplifier and negative resistance amplifier circuit selectively operates in combination with the main amplifier circuit.

Claims (39)

1 . An amplifier circuit arrangement for amplifying at least one input signal to an output signal for delivery to a load, the amplifier circuit arrangement comprising:

at least one four-port hybrid coupler,

a main amplifier having an input terminal for receiving a first input signal and being coupled to a first port of the hybrid coupler,

an auxiliary amplifier having an input terminal for receiving a second input signal and being coupled to the second port of the hybrid coupler,

a negative resistance amplifier circuit being coupled to the third port of the hybrid coupler and having a reflection coefficient greater than or equal to 1, wherein the negative resistance amplifier circuit is configured to receive a signal from the hybrid coupler via the third port and to return an amplified signal thereof back to the third port of the hybrid coupler,

wherein at least one of the auxiliary amplifier and the negative resistance amplifier circuit being selectively operable to operate in combination with the main amplifier circuit.

2 . The amplifier circuit arrangement of claim 1 , further comprising an output terminal connected to the fourth port for providing the output signal and for coupling the amplifier circuit arrangement to the load.

3 . The amplifier circuit arrangement of claim 1 , wherein the third port is an isolated port of the hybrid coupler.

4 . The amplifier circuit arrangement of claim 1 , wherein the negative resistance amplifier circuit comprises a first and a second terminal, wherein the first terminal acts as well as input and output terminal of the negative resistance amplifier circuit and wherein the second terminal is coupled to a reference voltage.

5 . The amplifier circuit arrangement of claim 1 , wherein the negative resistance amplifier circuit comprises a RF reflection amplifier.

6 . The amplifier circuit arrangement of claim 1 , wherein the negative resistance amplifier circuit comprises at least one IMPATT diode.

7 . The amplifier circuit arrangement of claim 1 , wherein the negative resistance amplifier circuit comprises at least one circulator circuit that is connected to an output of a reflection amplifier or another circulator circuit.

8 . The amplifier circuit arrangement of claim 7 , comprising a plurality of circulators and reflection amplifier that are connected in a Daisy chain configuration.

9 . The amplifier circuit arrangement of claim 1 , further comprising a power splitter configured to split a received input signal into the first input signal and the second input signal and to feed the splitted first and second input signals to the respective input terminals of the main amplifier and auxiliary amplifier, respectively.

10 . The amplifier circuit arrangement of claim 9 , wherein the power splitter is an uneven 3-way Wilkinson splitter.

11 . The amplifier circuit arrangement of claim 1 , wherein the hybrid coupler comprises at least one of:

a Branch-line coupler,

a lumped elements coupler,

a coupled-line coupler,

a Lange coupler.

12 . The amplifier circuit arrangement of claim 1 , wherein the hybrid coupler is a quadrature coupler.

13 . The amplifier circuit arrangement of claim 1 , wherein the hybrid coupler is a ring hybrid coupler.

14 . The amplifier circuit arrangement of claim 1 , further comprising at least one matching network, wherein each matching network is coupled to a respective one of the four ports of the hybrid coupler in order to perform impedance transformation, wherein at least one of the matching networks comprises a transmission line or a lumped element.

15 . The amplifier circuit arrangement of claim 1 , wherein a characteristic impedance of the hybrid coupler is configured to match a loading impedance of the load.

16 . The amplifier circuit arrangement of claim 1 , further comprising a sharpening filter coupled between the negative resistance amplifier and the third port.

17 . The amplifier circuit arrangement of claim 1 , wherein the negative resistance amplifier comprises a control terminal for receiving a control signal and wherein the negative resistance amplifier is configured such to set a predetermined magnitude of the reflection coefficient depending on the received control signal.

18 . The amplifier circuit arrangement of claim 1 , wherein the gain of the negative resistance amplifier is below 3 dB and in particular in the range of 1 dB or below.

19 . An electronic device comprising an amplifier circuit arrangement for amplifying at least one input signal to an output signal for delivery to a load, the amplifier circuit arrangement comprising:

at least one four-port hybrid coupler,

a main amplifier having an input terminal for receiving a first input signal and being coupled to a first port of the hybrid coupler,

an auxiliary amplifier having an input terminal for receiving a second input signal and being coupled to the second port of the hybrid coupler,

a negative resistance amplifier circuit being coupled to the third port of the hybrid coupler, wherein the negative resistance amplifier circuit is configured to receive a signal from the hybrid coupler via the third port and to return an amplified signal thereof back to the third port of the hybrid coupler;

wherein at least one of the auxiliary amplifier and the negative resistance amplifier circuit being selectively operable to operate in combination with the main amplifier circuit.

20 . The electronic device of claim 19 , wherein the electronic device comprises at least on one of:

a radio transmitter,

a TV transmitter,

a radio base station,

a bargaining chip,

a broadband amplifier.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE APPLICATION TITLE PREVIOUSLY RECORDED AT REEL: 063850 FRAME: 0839. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Aug 2, 2023
From: LLOYD, PAUL GARETH
To: ROHDE & SCHWARZ GMBH & CO. KG
Reel/Frame 064465/0776 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2023
From: LLOYD, PAUL GARETH
To: ROHDE & SCHWARZ GMBH & CO. KG
Reel/Frame 063850/0839 →
Continuity (2)
Provisional Application 63341016 · May 12, 2022
Related Publication 20230370034A1 · Nov 16, 2023
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