IP Library Granted Patent US 12,451,920
Granted Patent B2
US 12,451,920 · App. 18/650,684 · Granted Oct 21, 2025

Apparatus and methods for power amplifier signal limiting

Inventor: Philip John Lehtola (Cedar Rapids, IA)
Assignee: Skyworks Solutions, Inc.
H04B1/40H03F1/52H03F3/245H03F2200/171H03F2200/426H03F2200/451
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Quick Facts
Patent No.
US 12,451,920
App. No.
18/650,684
Granted
Oct 21, 2025
Kind
B2
Abstract

Apparatus and methods for power amplifier signal limiting are disclosed. In certain embodiments, a front-end system includes a low noise amplifier that amplifies a radio frequency receive signal during a receive frame, a power amplifier that amplifies a radio frequency transmit signal during a transmit frame, and a signal limiter operable to limit a signal power of the power amplifier in an attenuating mode. The signal limiter includes a radio frequency detector configured to generate a detection signal based on detecting a power level of the radio frequency transmit signal, and a latch that locks the signal limiter in the attenuating mode in response to activation of the detection signal. The latch is reset by a bias signal of the power amplifier that is activated during the transmit frame and deactivated during the receive frame.

Claims (29)

1. A mobile device comprising:

a transceiver configured to generate a radio frequency transmit signal; and

a front-end system including a low noise amplifier configured to amplify a radio frequency receive signal during a receive frame, a power amplifier configured to amplify the radio frequency transmit signal during a transmit frame, and a signal limiter operable to limit a signal power of the power amplifier in an attenuating mode, the power amplifier biased by a bias signal that is activated during the transmit frame and deactivated during the receive frame, the signal limiter including a radio frequency detector configured to generate a detection signal based on detecting a power level of the radio frequency transmit signal, and a latch configured to lock the signal limiter in the attenuating mode in response to activation of the detection signal, the latch configured to be reset by the bias signal.

2. The mobile device of claim 1 wherein in response to activation of the detection signal, the latch is operable to lock the signal limiter in the attenuation mode for a remainder of the transmit frame.

3. The mobile device of claim 1 wherein activation of the detection signal indicates that a power level of the radio frequency transmit signal exceeds a threshold.

4. The mobile device of claim 3 wherein the radio frequency detector includes a reference current source configured to generate a reference current that sets the threshold.

5. The mobile device of claim 4 wherein the reference current source includes a trimming circuit operable to trim the reference current.

6. The mobile device of claim 4 wherein the reference current source is configured to generate the reference current with a positive temperature coefficient.

7. The mobile device of claim 1 wherein the front-end system further includes an acoustic wave filter configured to filter a radio frequency output signal from the power amplifier, the acoustic wave filter protected by the signal limiter.

8. The mobile device of claim 1 further comprising an antenna configured to provide the radio frequency receive signal to the low noise amplifier.

9. A front-end system comprising:

a low noise amplifier configured to amplify a radio frequency receive signal during a receive frame;

a power amplifier configured to amplify a radio frequency transmit signal during a transmit frame, the power amplifier biased by a bias signal that is activated during the transmit frame and deactivated during the receive frame; and

a signal limiter operable to limit a signal power of the power amplifier in an attenuating mode, the signal limiter including a radio frequency detector configured to generate a detection signal based on detecting a power level of the radio frequency transmit signal, and a latch configured to lock the signal limiter in the attenuating mode in response to activation of the detection signal, the latch configured to be reset by the bias signal.

10. The front-end system of claim 9 wherein an input and an output of the signal limiter are both connected to an input of the power amplifier.

11. The front-end system of claim 9 wherein an input of the signal limiter is connected to an input of the power amplifier and an output of the signal limiter is connected to an output of the power amplifier.

12. The front-end system of claim 9 wherein activation of the detection signal indicates that a power level of the radio frequency transmit signal exceeds a threshold.

13. The front-end system of claim 12 wherein the radio frequency detector includes a reference current source configured to generate a reference current that sets the threshold.

14. The front-end system of claim 12 wherein the reference current source includes a trimming circuit operable to trim the reference current.

15. The front-end system of claim 12 wherein the reference current source is configured to generate the reference current with a positive temperature coefficient.

16. The front-end system of claim 9 wherein in response to activation of the detection signal, the latch is operable to lock the signal limiter in the attenuation mode for a remainder of the transmit frame.

17. A method of signal limiting in a front-end system, the method comprising:

amplifying a radio frequency receive signal during a receive frame using a low noise amplifier;

amplifying a radio frequency transmit signal during a transmit frame using a power amplifier;

activating a bias signal of the power amplifier during the transmit frame, and deactivating the bias signal during the receive frame; and

limiting a signal power of the power amplifier using a signal limiter in an attenuating mode, including generating a detection signal based on detecting a power level of the radio frequency transmit signal using a radio frequency detector of the signal limiter, locking the signal limiter into the attenuating mode using a latch in response to activation of the detection signal, and resetting the latch with the bias signal.

18. The method of claim 17 wherein activation of the detection signal indicates that a power level of the radio frequency transmit signal exceeds a threshold.

19. The method of claim 18 further comprising generating a reference current that sets the threshold using a reference current source of the radio frequency detector.

20. The method of claim 18 further comprising generating the reference current with a positive temperature coefficient using the reference current source.

Continuity (3)
Continuation 17663067 · May 12, 2022
Provisional Application 63202141 · May 28, 2021
Related Publication 20240291513A1 · Aug 29, 2024
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