IP Library › Granted Patent US 11,539,381
Granted Patent B2
US 11,539,381 · App. 17/215,615 · Granted Dec 27, 2022

Radio frequency circuit, antenna module, and communication device

Inventors: Atsushi Ono (Nagaokakyo, JP); Hirotsugu Mori (Nagaokakyo, JP)
Assignee: MURATA MANUFACTURING CO., LTD.
H04B1/0078H04B1/006H04B1/04H04B1/745H04B2001/0408
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Quick Facts
Patent No.
US 11,539,381
App. No.
17/215,615
Granted
Dec 27, 2022
Kind
B2
Abstract

A radio frequency circuit includes: a first filter having a first passband that corresponds to a portion of a frequency range of a first communication band allocated as a communication band for TDD; a second filter having a second passband that corresponds to a portion of the frequency range of the first communication band, the second passband being different from the first passband; a power amplifier that amplifies a transmission signal in the first communication band; a low-noise amplifier that amplifies a reception signal in the first communication band; and a switch that switches between connecting the first filter and the power amplifier and connecting the first filter and the low-noise amplifier, and switches between connecting the second filter and the power amplifier and connecting the second filter and the low-noise amplifier.

Claims (76)

1. A radio frequency circuit, comprising:

a first filter having a first passband that corresponds to a portion of a frequency range of a first communication band allocated as a communication band for time division duplex, the first communication band being a single continuous band;

a second filter having a second passband that corresponds to a portion of the frequency range of the first communication band, the second passband being different from the first passband;

a power amplifier configured to amplify a transmission signal in the first communication band;

a low-noise amplifier configured to amplify a reception signal in the first communication band; and

a first switch configured to switch between connecting the first filter and the power amplifier and connecting the first filter and the low-noise amplifier, and to switch between connecting the second filter and the power amplifier and connecting the second filter and the low-noise amplifier,

wherein the first passband includes a portion of a frequency range of a second communication band that is allocated as a communication band for time division duplex.

2. The radio frequency circuit according to claim 1 , further comprising:

an antenna connection terminal; and

a second switch configured to switch between connecting the antenna connection terminal and the first filter and connecting the antenna connection terminal and the second filter.

3. The radio frequency circuit according to claim 1 ,

wherein the first passband includes one of a transmission band or a reception band of the second communication band allocated as a communication band for frequency division duplex.

4. The radio frequency circuit according to claim 1 , further comprising:

a third filter having a third passband that includes a remaining one of the transmission band and the reception band of the second communication band,

wherein the first filter and the third filter are included in a duplexer configured to transfer a transmission signal and a reception signal in the second communication band, using frequency division duplex.

5. The radio frequency circuit according to claim 4 ,

wherein a transmission signal and a reception signal of time division duplex and one of a transmission signal and a reception signal of frequency division duplex pass through the first filter,

the transmission signal and the reception signal of time division duplex pass through the second filter, and the transmission signal and the reception signal of frequency division duplex do not pass through the second filter, and

the transmission signal and the reception signal of time division duplex do not pass through the third filter, and a remaining one of the transmission signal and the reception signal of frequency division duplex passes through the third filter.

6. The radio frequency circuit according to claim 1 ,

wherein the first switch includes a first selection terminal, a second selection terminal, a third selection terminal, and a fourth selection terminal,

the first selection terminal is connected to the first filter,

the second selection terminal is connected to the second filter,

the third selection terminal is connected to the power amplifier,

the fourth selection terminal is connected to the low-noise amplifier, and

the first switch is configured to:

connect the first selection terminal and the third selection terminal and not connect the first selection terminal and the fourth selection terminal to cause a transmission signal in the first passband of the first communication band to pass through the first filter;

connect the second selection terminal and the fourth selection terminal and not connect the second selection terminal and the third selection terminal to cause a transmission signal in the second passband of the first communication band to pass through the second filter;

connect the first selection terminal and the fourth selection terminal and not connect the first selection terminal and the third selection terminal to cause a reception signal in the first passband of the first communication band to pass through the first filter; and

connect the second selection terminal and the fourth selection terminal and not connect the second selection terminal and the third selection terminal to cause a reception signal in the second passband of the first communication band to pass through the second filter.

7. The radio frequency circuit according to claim 5 ,

wherein the first switch includes a first selection terminal, a second selection terminal, a third selection terminal, and a fourth selection terminal,

the first selection terminal is connected to the first filter,

the second selection terminal is connected to the second filter,

the third selection terminal is connected to the power amplifier,

the fourth selection terminal is connected to the low-noise amplifier, and

the first switch is configured to:

connect the first selection terminal and the third selection terminal and not connect the first selection terminal and the fourth selection terminal to cause (i) a transmission signal in the first passband of the first communication band to pass through the first filter, or (ii) a signal in one of the transmission band and the reception band of the second communication band to pass through the first filter, and to cause a signal in a remaining one of the transmission band and the reception band of the second communication band to pass through the third filter;

connect the second selection terminal and the third selection terminal and not connect the second selection terminal and the fourth selection terminal to cause the transmission signal in the second passband of the first communication band to pass through the second filter;

connect the first selection terminal and the fourth selection terminal and not connect the first selection terminal and the third selection terminal to cause a reception signal in the first passband of the first communication band to pass through the first filter; and

connect the second selection terminal and the fourth selection terminal and not connect the second selection terminal and the third selection terminal to cause the reception signal in the second passband of the first communication band to pass through the second filter.

8. The radio frequency circuit according to claim 1 , further comprising:

a fourth filter having a fourth passband that corresponds to a portion of the frequency range of the first communication band, the fourth passband being different from the first passband and the second passband.

9. The radio frequency circuit according to claim 1 ,

wherein the first filter and the second filter are acoustic wave filters.

10. The radio frequency circuit according to claim 1 ,

wherein the first communication band is a Fifth Generation-New Radio (5G-NR) communication band.

11. The radio frequency circuit according to claim 10 ,

wherein the first communication band is one of n77, n78, n79, n46, n96, n97, or n50 of 5G-NR.

12. A radio frequency circuit, comprising:

a first filter having a first passband that corresponds to a portion of a frequency range of a first communication band that is a single continuous band;

a second filter having a second passband that corresponds to a portion of the frequency range of the first communication band, the second passband being different from the first passband;

a power amplifier configured to amplify an intermediate frequency transmission signal;

a low-noise amplifier configured to amplify an intermediate frequency reception signal;

a first mixer configured to perform a frequency conversion on the intermediate frequency transmission signal to obtain a millimeter-wave transmission signal that is a signal in a millimeter-wave frequency range included in the first communication band;

a second mixer configured to perform a frequency conversion on a millimeter-wave reception signal to obtain the intermediate frequency reception signal, the millimeter-wave reception signal being a signal in the millimeter-wave frequency range included in the first communication band; and

a first switch configured to switch between connecting the first filter and the first mixer and connecting the first filter and the second mixer, and to switch between connecting the second filter and the first mixer and connecting the second filter and the second mixer,

wherein the first passband includes a portion of a frequency range of a second communication band allocated as a communication band for time division duplex.

13. The radio frequency circuit according to claim 12 ,

wherein the first communication band is n257 of 5G-NR.

14. An antenna module, comprising:

an antenna; and

the radio frequency circuit according to claim 1 configured to transfer a radio frequency signal that is to be transmitted or has been received by the antenna.

15. An antenna module, comprising:

an antenna; and

the radio frequency circuit according to claim 12 configured to transfer a radio frequency signal that is to be transmitted or has been received by the antenna.

16. A communication device, comprising:

an antenna;

a radio frequency (RF) signal processing circuit configured to process a radio frequency signal that is to be transmitted or has been received by the antenna; and

the radio frequency circuit according to claim 1 configured to transfer the radio frequency signal between the antenna and the RF signal processing circuit.

17. A communication device, comprising:

an antenna;

a base band signal processing circuit configured to process an intermediate frequency transmission signal that corresponds to a transmission signal transmitted from the antenna, and an intermediate frequency reception signal that corresponds to a reception signal received by the antenna; and

the radio frequency circuit according to claim 12 configured to perform a frequency conversion on the intermediate frequency transmission signal to obtain the transmission signal and on the reception signal to obtain the intermediate frequency reception signal, the intermediate frequency transmission signal and the intermediate frequency reception signal being transferred between the antenna and the base band signal processing circuit.

18. The radio frequency circuit according to claim 1 ,

wherein the frequency range of the first communication band is 5.925 GHz to 7.125 GHz or 3.3 GHz to 3.8 GHz.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2021
From: ONO, ATSUSHI; MORI, HIROTSUGU
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 055755/0046 →
Priority Claims (1)
JP JP2020-060558 · Mar 30, 2020 · national
Continuity (1)
Related Publication 20210306013A1 · Sep 30, 2021