IP Library › Granted Patent US 11,973,521
Granted Patent B2
US 11,973,521 · App. 17/425,863 · Granted Apr 30, 2024

Electronic device and method for processing harmonic signal

Inventors: Kiyoung Oh (Gyeonggi-do, KR); Wonsang Lee (Gyeonggi-do, KR)
Assignee: Samsung Electronics Co., Ltd
H04B1/005H03F3/245H04B1/04H03F2200/165H03F2200/294H03F2200/451H04B2001/0408
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Quick Facts
Patent No.
US 11,973,521
App. No.
17/425,863
Granted
Apr 30, 2024
Kind
B2
Abstract

According to various embodiments, an electronic device in a wireless communication system may include a Power Amplifier (PA) for a first frequency band, a Low Noise Amplifier (LNA) for a second frequency band at least partially overlapping a frequency band which is twice the first frequency band, and an impedance tuner which is in a first impedance state or a second impedance state under the control of the processor. The PA and the impedance tuner may be electrically coupled. A harmonic output level of the PA in the first impedance state may be greater than a harmonic output level of the PA in the second impedance state. The processor may be configured to control the impedance tuner to be in the second impedance state when communication is performed both in the first frequency band and the second frequency band, and control the impedance tuner to be in the first impedance state when communication is performed only in the first frequency band.

Claims (87)

1. An electronic device in a wireless communication system, the electronic device comprising:

a processor;

a radio frequency (RF) antenna and a power amplifier (PA) for a first frequency band;

a satellite antenna and a low noise amplifier (LNA) for a second frequency band at least partially overlapping a frequency band which is twice the first frequency band; and

an impedance tuner which is in a first impedance state or a second impedance state under a control of the processor and which is electrically connected to the RF antenna and the PA,

wherein a harmonic output level of the PA in the first impedance state is greater than a harmonic output level of the PA in the second impedance state, and

wherein the processor is configured to:

identify whether a magnitude of harmonic interference against signal sensitivity of the satellite antenna for the second frequency band is less than a threshold;

in case that the magnitude of the harmonic interference against the signal sensitivity of the satellite antenna for the second frequency band is greater than or equal to the threshold, control the impedance tuner to be in the second impedance state such that the magnitude of the harmonic interference is reduced; and

in case that the magnitude of the harmonic interference against the signal sensitivity of the satellite antenna for the second frequency band is less than the threshold, control the impedance tuner to be in the first impedance state such that transmit power of a first signal transmitted via the RF antenna for the first frequency band increases.

2. The electronic device of claim 1 , further comprising:

a first notch filter electrically coupled to an input stage of the PA; and

a second notch filter electrically coupled to an output stage of the PA,

wherein the first notch filter and the second notch filter are configured to remove a harmonic component of the first frequency band.

3. The electronic device of claim 2 , further comprising:

a duplexer which allows the first signal of the first frequency band to pass,

wherein the RF antenna transmits or receives the first signal of the first frequency band; and

wherein the satellite antenna receives a second signal of the second frequency band.

4. The electronic device of claim 3 , further comprising:

a third notch filter coupled to the duplexer,

wherein the third notch filter is configured to remove a harmonic component of the first frequency band.

5. The electronic device of claim 3 ,

wherein the impedance tuner is electrically coupled to the RF antenna, and

wherein first reception sensitivity of the satellite antenna related to the first impedance state is lower than second reception sensitivity of the satellite antenna related to the second impedance state.

6. The electronic device of claim 3 ,

wherein the impedance tuner comprises a first filter portion electrically coupled to the duplexer and a second filter portion electrically coupled to the RF antenna,

wherein the first filter portion comprises a first capacitor and a first inductor,

wherein the second filter portion comprises a second capacitor and a second inductor,

wherein the first capacitor is electrically coupled to the duplexer at a first node between the PA and the first inductor,

wherein the second capacitor is electrically coupled to the RF antenna at a second node between the second inductor and the RF antenna, and

wherein the first inductor and the second inductor are electrically coupled in series between the PA and the RF antenna.

7. The electronic device of claim 6 , wherein each of the first inductor and the second inductor is an element providing a fixed value, and

wherein the first capacitor and the second capacitor are each a variable element.

8. The electronic device of claim 7 , wherein, to control the impedance tuner to be in the first impedance state, the processor is configured to:

identify a first capacitance value and a second capacitance value corresponding to the first impedance state; and

set the impedance tuner such that the first capacitor has the first capacitance value, and the second capacitor has the second capacitance value, and

wherein, to control the impedance tuner to be in the second impedance state, the processor is configured to:

identify a third capacitance value and a fourth capacitance value corresponding to the second impedance state; and

set the impedance tuner such that the first capacitor has the third capacitance value, and the second capacitor has the fourth capacitance value.

9. The electronic device of claim 1 , further comprising a memory which stores information on a plurality of impedance states comprising the first impedance state and the second impedance state,

wherein the processor is further configured to:

identify a communication state, based on an extent to which a harmonic component of the first frequency band affects the second frequency band;

identify an impedance state corresponding to the identified communication state among the plurality of impedance states; and

configure the impedance tuner according to the identified impedance state.

10. The electronic device of claim 1 ,

wherein the first frequency band is a B14 band (or an LTE Band 14 ), and

wherein the second frequency band is a global positioning system (GPS) L1 band.

11. A method of operating an electronic device in a wireless communication system, the method comprising:

identifying whether a magnitude of harmonic interference against signal sensitivity of a satellite antenna for a second frequency band is less than a threshold,

in case that the magnitude of the harmonic interference against the signal sensitivity of the satellite antenna for the second frequency band is less than the threshold, configuring an impedance tuner to be in a first impedance state such that transmit power of a first signal transmitted via a radio frequency (RF) antenna for a first frequency band increases; and

in case that the magnitude of the harmonic interference against the signal sensitivity of the satellite antenna for the second frequency band is greater than or equal to the threshold, configuring the impedance tuner to be in a second impedance state such that the magnitude of the harmonic interference is reduced,

wherein the second frequency band at least partially overlaps a frequency band which is twice the first frequency band, and

wherein a harmonic output level of a Power amplifier (PA) operating in the first frequency band in the first impedance state is greater than a harmonic output level of the PA in the second impedance state.

12. The method of claim 11 , further comprising

removing a harmonic component of the first frequency band by using a first notch filter electrically coupled to an input stage of the PA and a second notch filter electrically coupled to an output stage of the PA.

13. The method of claim 12 , further comprising:

using a duplexer to allow the first signal of the first frequency band to pass;

using the RF antenna to transmit or receive the first signal of the first frequency band; and

using the satellite antenna to receive a second signal of the second frequency band.

14. The method of claim 13 , further comprising

using a third notch filter coupled to the duplexer to remove a harmonic component of the frequency band.

15. The method of claim 13 ,

wherein the impedance tuner is electrically coupled to the RF antenna, and

wherein first reception sensitivity of the satellite antenna related to the first impedance state is lower than second reception sensitivity of the satellite antenna related to the second impedance state.

16. The method of claim 13 ,

wherein the impedance tuner comprises a first filter portion electrically coupled to the duplexer and a second filter portion electrically coupled to the RF antenna,

wherein the first filter portion comprises a first capacitor and a first inductor,

wherein the second filter portion comprises a second capacitor and a second inductor,

wherein the first capacitor is electrically coupled to the duplexer at a first node between the PA and the first inductor,

wherein the second capacitor is electrically coupled to the RF antenna at a second node between the second inductor and the RF antenna, and

wherein the first inductor and the second inductor are electrically coupled in series between the PA and the RF antenna.

17. The method of claim 11 , further comprising:

using a memory to store information on a plurality of impedance states comprising the first impedance state and the second impedance state;

identifying a communication state, based on an extent to which a harmonic component of the first frequency band affects the second frequency band;

identifying an impedance state corresponding to the identified communication state among the plurality of impedance states; and

configuring the impedance tuner according to the identified impedance state.

18. The method of claim 16 , wherein each of the first inductor and the second inductor is an element providing a fixed value, and

wherein the first capacitor and the second capacitor are each a variable element.

19. The method of claim 18 , wherein configuring the impedance tuner to be in the first impedance state comprises:

identifying a first capacitance value and a second capacitance value corresponding to the first impedance state; and

setting the impedance tuner such that the first capacitor has the first capacitance value, and the second capacitor has the second capacitance value, and

wherein configuring the impedance tuner to be in the second impedance state comprises:

identifying a third capacitance value and a fourth capacitance value corresponding to the second impedance state; and

setting the impedance tuner such that the first capacitor has the third capacitance value, and the second capacitor has the fourth capacitance value.

20. The method of claim 11 ,

wherein the first frequency band is a B14 band (or an LTE Band 14 ), and

wherein the second frequency band is a global positioning system (GPS) L1 band.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2021
From: OH, KIYOUNG; LEE, WONSANG
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 057004/0125 →
Priority Claims (1)
KR 10-2019-0009322 · Jan 24, 2019 · national
Continuity (1)
Related Publication 20220029643A1 · Jan 27, 2022