IP Library › Granted Patent US 11,336,310
Granted Patent B2
US 11,336,310 · App. 17/099,826 · Granted May 17, 2022

Radio frequency circuit and communication device

Inventor: Hirotsugu Mori (Nagaokakyo, JP)
Assignee: MURATA MANUFACTURING CO., LTD.
H04B1/006H04B1/0067H04B1/0483
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Quick Facts
Patent No.
US 11,336,310
App. No.
17/099,826
Granted
May 17, 2022
Kind
B2
Abstract

A radio frequency circuit includes: a first transfer circuit that transfers a signal of a first frequency band under 5 GHz; a second transfer circuit that transfers a signal of a second frequency band higher than or equal to 5 GHz; and a third transfer circuit that transfers a signal of a third frequency band higher than or equal to 5 GHz. One of the second transfer circuit and the third transfer circuit transfers a WLAN signal. The first transfer circuit includes a first filter. The second transfer circuit includes a second filter. The third transfer circuit includes a third filter. One of the first transfer circuit or the second transfer circuit further includes a band-stop filter having, as an attenuation band, at least a part of a frequency band in which the remaining one of the first transfer circuit or the second transfer circuit transfers a signal.

Claims (86)

1. A radio frequency circuit, comprising:

a first transfer circuit configured to transfer a signal of a first frequency band, the first frequency band including at least a part of a frequency region under 5 GHz;

a second transfer circuit configured to transfer a signal of a second frequency band, the second frequency band including at least a part of a frequency region higher than or equal to 5 GHz; and

a third transfer circuit configured to transfer a signal of a third frequency band, the third frequency band including at least a part of a frequency region higher than or equal to 5 GHz,

wherein one of the second transfer circuit or the third transfer circuit is configured to transfer a wireless local area network (WLAN) signal,

the first transfer circuit includes a first filter having the first frequency band as a passband,

the second transfer circuit includes a second filter having the second frequency band as a passband,

the third transfer circuit includes a third filter having the third frequency band as a passband,

one of the first transfer circuit or the second transfer circuit further includes a band-stop filter having, as an attenuation band, at least a part of a frequency band in which a remaining one of the first transfer circuit or the second transfer circuit transfers a signal,

the first frequency band is a frequency band ranging from 4.4 GHz to 5.0 GHz that is used in 4th generation mobile communication system Long Term Evolution (4G-LTE) or 5th generation mobile communication system New Radio (5G-NR),

one of the second frequency band and the third frequency band is a frequency band ranging from 5.15 GHz to 5.925 GHz that is used in 4G-LTE or 5G-NR, and

a remaining one of the second frequency band or the third frequency band is a frequency band ranging from 5.15 GHz to 5.85 GHz that is used in WLAN.

2. The radio frequency circuit of claim 1 ,

wherein the second transfer circuit includes the band-stop filter,

the second transfer circuit further includes:

a transmission output terminal; and

a second transmission power amplifier configured to amplify a transmission signal of the second frequency band,

the band-stop filter is disposed on an output side of the second transmission power amplifier, and has at least a part of the first frequency band as an attenuation band, and

the second transfer circuit further includes:

a first switch disposed between the second transmission power amplifier and the band-stop filter, and configured to switch connection of the second transmission power amplifier between the band-stop filter and a bypass path on which the band-stop filter is not disposed; and

a second switch disposed between the transmission output terminal and the band-stop filter, and configured to switch connection of the transmission output terminal between the band-stop filter and the bypass path.

3. The radio frequency circuit of claim 1 , further comprising:

an antenna connection terminal; and

a fifth switch disposed between the antenna connection terminal and each of the first transfer circuit, the second transfer circuit, and the third transfer circuit, and configured to connect and disconnect the antenna connection terminal and the first transfer circuit, to connect and disconnect the antenna connection terminal and the second transfer circuit, and to connect and disconnect the antenna connection terminal and the third transfer circuit.

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

an antenna connection terminal,

wherein each of the first filter, the second filter, and the third filter is directly connected to the antenna connection terminal.

5. The radio frequency circuit of claim 1 ,

wherein a frequency of a third order intermodulation distortion between a signal of the first frequency band and a signal of one of the second frequency band and the third frequency band is included in a remaining one of the second frequency band or the third frequency band.

6. A communication device, comprising:

an antenna;

a radio frequency (RF) signal processing circuit configured to process radio frequency signals transmitted and received by the antenna; and

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

7. A radio frequency circuit, comprising:

a first transfer circuit configured to transfer a signal of a first frequency band, the first frequency band including at least a part of a frequency region under 5 GHz;

a second transfer circuit configured to transfer a signal of a second frequency band, the second frequency band including at least a part of a frequency region higher than or equal to 5 GHz; and

a third transfer circuit configured to transfer a signal of a third frequency band, the third frequency band including at least a part of a frequency region higher than or equal to 5 GHz,

wherein one of the second transfer circuit and the third transfer circuit is configured to transfer a wireless local area network (WLAN) signal,

the first transfer circuit includes a first transmission power amplifier configured to amplify a transmission signal of the first frequency band,

the second transfer circuit includes a second transmission power amplifier configured to amplify a transmission signal of the second frequency band,

one of the first transfer circuit and the second transfer circuit further includes a band-stop filter having, as an attenuation band, at least a part of a frequency band in which a remaining one of the first transfer circuit or the second transfer circuit transfers a signal,

the first frequency band is a frequency band ranging from 4.4 GHz to 5.0 GHz that is used in 4th generation mobile communication system Long Term Evolution (4G-LTE) or 5th generation mobile communication system New Radio (5G-NR),

one of the second frequency band and the third frequency band is a frequency band ranging from 5.15 GHz to 5.925 GHz that is used in 4G-LTE or 5G-NR, and

a remaining one of the second frequency band or the third frequency band is a frequency band ranging from 5.15 GHz to 5.85 GHz that is used in WLAN.

8. The radio frequency circuit of claim 7 ,

wherein the second transfer circuit includes the band-stop filter,

the second frequency band includes a fourth frequency band and a fifth frequency band that do not overlap each other,

the band-stop filter has the first frequency band as an attenuation band, and

the second transfer circuit further includes:

a transmission output terminal;

a fourth filter that is connected to the band-stop filter and has the fourth frequency band as a passband;

a fifth filter that has the fifth frequency band as a passband;

a third switch that is disposed between an output terminal of the second transmission power amplifier and each of the fourth filter and the fifth filter, and is configured to switch connection of the output terminal between the fourth filter and the fifth filter; and

a fourth switch disposed between the transmission output terminal and each of the band-stop filter and the fifth filter, and configured to switch connection of the transmission output terminal between the band-stop filter and the fifth filter.

9. The radio frequency circuit of claim 7 , further comprising:

an antenna connection terminal; and

a fifth switch disposed between the antenna connection terminal and each of the first transfer circuit, the second transfer circuit, and the third transfer circuit, and configured to connect and disconnect the antenna connection terminal and the first transfer circuit, to connect and disconnect the antenna connection terminal and the second transfer circuit, and to connect and disconnect the antenna connection terminal and the third transfer circuit.

10. The radio frequency circuit of claim 7 ,

wherein a frequency of a third order intermodulation distortion between a signal of the first frequency band and a signal of one of the second frequency band and the third frequency band is included in a remaining one of the second frequency band or the third frequency band.

11. A communication device, comprising:

an antenna;

a radio frequency (RF) signal processing circuit configured to process radio frequency signals transmitted and received by the antenna; and

the radio frequency circuit of claim 3 configured to transfer the radio frequency signals between the antenna and the RF signal processing circuit.

12. A radio frequency circuit, comprising:

a first transfer circuit configured to transfer a signal of a first frequency band, the first frequency band including at least a part of a frequency region under 5 GHz;

a second transfer circuit configured to transfer a signal of a second frequency band, the second frequency band including at least a part of a frequency region higher than or equal to 5 GHz; and

a third transfer circuit configured to transfer a signal of a third frequency band, the third frequency band including at least a part of a frequency region higher than or equal to 5 GHz,

wherein one of the second transfer circuit or the third transfer circuit is configured to transfer a wireless local area network (WLAN) signal,

the first transfer circuit includes a first filter having the first frequency band as a passband,

the second transfer circuit includes a second filter having the second frequency band as a passband,

the third transfer circuit includes a third filter having the third frequency band as a passband,

one of the first transfer circuit or the second transfer circuit further includes a band-stop filter having, as an attenuation band, at least a part of a frequency band in which a remaining one of the first transfer circuit or the second transfer circuit transfers a signal,

the first frequency band is any one of: a frequency band ranging from 3.3 GHz to 4.2 GHz that is used in 4th generation mobile communication system Long Term Evolution (4G-LTE) or 5th generation mobile communication system New Radio (5G-NR); a frequency band ranging from 3.4 GHz to 3.6 GHz that is used in 4G-LTE or 5G-NR, a frequency band ranging from 3.6 GHz to 3.8 GHz that is used in 4G-LTE or 5G-NR, a frequency band ranging from 3.55 GHz to 3.7 GHz that is used in 4G-LTE or 5G-NR; and a frequency band ranging from 3.3 GHz to 3.8 GHz that is used in 4G-LTE or 5G-NR,

one of the second frequency band or the third frequency band is a frequency band ranging from 5.15 GHz to 5.85 GHz that is used in 4G-LTE or 5G-NR, and

a remaining one of the second frequency band or the third frequency band is a frequency band ranging from 6.10 GHz to 7.125 GHz that is used in WLAN.

13. A radio frequency circuit, comprising:

a first transfer circuit configured to transfer a signal of a first frequency band, the first frequency band including at least a part of a frequency region under 5 GHz;

a second transfer circuit configured to transfer a signal of a second frequency band, the second frequency band including at least a part of a frequency region higher than or equal to 5 GHz; and

a third transfer circuit configured to transfer a signal of a third frequency band, the third frequency band including at least a part of a frequency region higher than or equal to 5 GHz,

wherein one of the second transfer circuit and the third transfer circuit is configured to transfer a wireless local area network (WLAN) signal,

the first transfer circuit includes a first transmission power amplifier configured to amplify a transmission signal of the first frequency band,

the second transfer circuit includes a second transmission power amplifier configured to amplify a transmission signal of the second frequency band,

one of the first transfer circuit and the second transfer circuit further includes a band-stop filter having, as an attenuation band, at least a part of a frequency band in which a remaining one of the first transfer circuit or the second transfer circuit transfers a signal,

the first frequency band is any one of: a frequency band ranging from 3.3 GHz to 4.2 GHz that is used in 4th generation mobile communication system Long Term Evolution (4G-LTE) or 5th generation mobile communication system New Radio (5G-NR); a frequency band ranging from 3.4 GHz to 3.6 GHz that is used in 4G-LTE or 5G-NR, a frequency band ranging from 3.6 GHz to 3.8 GHz that is used in 4G-LTE or 5G-NR, a frequency band ranging from 3.55 GHz to 3.7 GHz that is used in 4G-LTE or 5G-NR; and a frequency band ranging from 3.3 GHz to 3.8 GHz that is used in 4G-LTE or 5G-NR,

one of the second frequency band and the third frequency band is a frequency band ranging from 5.15 GHz to 5.85 GHz that is used in 4G-LTE or 5G-NR, and

a remaining one of the second frequency band or the third frequency band is a frequency band ranging from 6.10 GHz to 7.125 GHz that is used in WLAN.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2020
From: MORI, HIROTSUGU
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 054386/0830 →
Priority Claims (1)
JP JP2019-210068 · Nov 21, 2019 · national
Continuity (1)
Related Publication 20210159925A1 · May 27, 2021