This application is based upon and claims the benefit of priority of the prior Japanese Patent Application No. 2013-153031, filed on Jul. 23, 2013, and the prior Japanese Patent Application No. 2013-158307, filed on Jul. 30, 2013, the entire contents of which are incorporated herein by reference.
A certain aspect of the present invention relates to an electronic circuit.
Communication devices such as mobile phones have extended their capabilities including a connection to the Internet. To address the increase in communication data, technology such as LTE (Long Term Evolution)-Advanced has been developed. In LTE-Advanced, CA (Carrier Aggregation) is employed to achieve high throughput. In CA, multiple frequency bands are simultaneously used. For example, in Inter-band CA, multiple frequency bands are shared to widen the band and to increase speed and the amount of data. A module supporting CA uses multiple filters or multiple duplexers to share multiple frequency bands. When a first duplexer have high impedance in the passband of a second duplexer, the loss of a signal is reduced, and good frequency characteristics can be obtained. Japanese Patent Application Publication Nos. 10-247801 and 2012-28895 disclose technology that makes it possible to achieve high impedance between duplexers. A module supporting three or more frequency bands includes a switch and multiple duplexers or multiple filters. The switch selects one of three or more duplexers or filters depending on a frequency band, and connects it to an antenna.
However, it has been difficult to make a single duplexer or filter have high impedance in two frequency bands. In addition, it has been difficult to make the duplexer have high impedance in a frequency band having large spacing between transmit and receive bands. When the impedance is not optimized, the signal leaks. As a result, frequency characteristics deteriorate.
According to an aspect of the present invention, there is provided an electronic circuit including: a switch including ports and selecting a port to be connected to an antenna from the ports; a first filter connected between a first port out of the ports and a first terminal; a second filter connected between a second port out of the ports and a second terminal and having a frequency band different from a frequency band of the first filter; and an impedance matching unit of which a first end is coupled to a third port out of the ports.
A description will now be given of embodiments with reference to the drawings.
A first embodiment optimizes impedance by using an inductor L1.
The duplexer 20 (a third duplexer) includes a transmit filter 20a and a receive filter 20b. The duplexer 22 (a first duplexer) includes a transmit filter 22a and a receive filter 22b. The duplexer 24 (a second duplexer) includes a transmit filter 24a and a receive filter 24b. Each filter is a bandpass filter such as a surface acoustic wave (SAW) filter.
The switch 12 is a semiconductor switch including four ports A˜D. A first end of the matching circuit 14 is coupled to the port A (a fourth port), and a second end is coupled to first ends of the transmit filter 20a and the receive filter 20b. A second end of the transmit filter 20a is coupled to the PA 26a through a transmit terminal Tx20 (a third terminal). A second end of the receive filter 20b is coupled to the LNA 26b through a receive terminal Rx20 (a third terminal). The port B (a first port), the matching circuit 16, the duplexer 22, a transmit terminal Tx22 and a receive terminal Rx22 (first terminals), the PA 26a, and the LNA 26b are connected in the same manner as the port A through the IC 26. The port C (a second port), the matching circuit 18, the duplexer 24, a transmit terminal Tx24 and a receive terminal Rx24 (second terminals), the PA 26a, and the LNA 26b are connected in the same manner as the port A through the IC 26. The matching circuits 14, 16, and 18 match impedance between the duplexers and impedance between an antenna 10 and each duplexer. A first end of the inductor L1 (a first matching circuit) is coupled to the port D (a third port), and a second end is grounded.
The duplexers support frequency bands different from each other. The duplexer 20 supports, for example, W-CDMA (Wideband Code Division Multiple Access) Band3. The duplexer 22 supports, for example, W-CDMA Band1. The duplexer 24 supports, for example, W-CDMA Band1. Hereinafter, Band may be solely described without describing W-CDMA.
A description will be given of transmission and reception of signals. The switch 12 selects a port from the ports A˜D depending on the frequency band to be used, and connects it to the antenna 10. Table 1 presents a relationship between frequency bands and ports.
In the examples of No. 1˜3, signals of a single frequency band are transmitted and received. The examples of Nos. 4 and 5 are the examples of CA, and signals of two frequency bands are simultaneously transmitted and received.
A description will be given of an example using a single frequency band. As presented in Nos. 1˜3 of Table 1, when a single frequency band is used, the switch 12 turns one port ON, and turns the other ports OFF.
A description will next be given of an example of CA simultaneously using two frequency bands. In CA, two frequency bands are used as presented in Nos. 4 and 5 in Table 1. A description will now be given of the example of No. 4 that simultaneously transmits and receives a signal of Band3 and a signal of Band1.
However, as described later in a comparative example, it is difficult to open the duplexer 22, which is opened to Band3, also to Band1. The first embodiment optimizes the duplexer with respect to two bands by using the inductor L1.
A description will be given of the example of No. 5 in Table 1 that simultaneously transmits and receives a signal of Band7 and a signal of Band1.
A description will be given of a comparative example.
As presented in Table 2, when signals of a single frequency band are transmitted and received (Nos. 6˜8), the switch 12 turns one port ON and turns the other two ports OFF in the same manner as in the first embodiment. When CA is performed (Nos. 9 and 10), the switch 12 turns two ports ON, and turns the other one port OFF. The duplexer 20 is opened in the passband of the duplexer 22 while the duplexer 22 is opened in the passband of the duplexer 20 as illustrated in
A description will be given of the example of No. 10 that transmits and receives a signal of Band7 and a signal of Band1. As presented in
The reactance component of the duplexer 22 in the frequency band of Band1 is approximately equal to the reactance component of the duplexer 24 in the frequency band of Band7. That is to say, the shifted amount ΔZ7 of the impedance Z7 from the right edge of the Smith chart illustrated in
A variation of the first embodiment uses a capacitor C1.
A description will be given of examples of the matching circuits 14, 16, and 18.
A second embodiment provides a filter instead of a duplexer.
Only the receive filter or only the transmit filter may be provided. Both the duplexer and the filter may be provided. For example, the receive filter 20b is coupled to the port A, the receive filter 24b is coupled to the port C, and the duplexer 22 is coupled to the port B. In the example of No. 4 in Table 1, the reception of signals of Band3 and Band7 and the transmission of a signal of Band7 can be simultaneously performed. In the example of No. 5 in Table 1, the reception of signals of Band1 and Band7 and the transmission of a signal of Band7 can be simultaneously performed.
The filter may be a boundary acoustic wave filter, an acoustic wave filter such as a filter using a Film Bulk Acoustic Resonator (FBAR), or a filter other than the acoustic wave filter. The switch 12 may include two ports or four or more ports. The number of filters and duplexers connected to the switch 12 may be two or four or more.
A third embodiment performs CA by using a duplexer and a filter.
The duplexer 70 (a first duplexer) includes a transmit filter 70a and a receive filter 70b. The duplexer 72 (a second duplexer) includes a transmit filter 72a and a receive filter 72b. The duplexer 74 (a third duplexer) includes a transmit filter 74a and a receive filter 74b. Each filter is a bandpass filter such as a surface acoustic wave (SAW) filter.
The switch 62 is a semiconductor switch including four ports A˜D. A first end of the matching circuit 64 (a first matching circuit) is coupled to the port A (a first port), and a second end thereof is coupled to first ends of the transmit filter 70a and the receive filter 70b. A second end of the transmit filter 70a is coupled to the PA 76a through a transmit terminal Tx70 (a first terminal). A second end of the receive filter 70b is coupled to the LNA 76b through a receive terminal Rx70 (a first terminal). The port B (a second port), the matching circuit 66 (a second matching circuit), the duplexer 72, a transmit terminal Tx72 and a receive terminal Rx72 (second terminals), the PA 76a, and the LNA 76b are connected in the same manner as the port A through the IC 76. A first end of the matching circuit 68 (a third matching circuit) is coupled to the port C (a third port), and a second end thereof is coupled to a first end of the receive filter 75 (an impedance matching unit). A second end of the receive filter 75 is coupled to the LNA 76b through a receive terminal Rx75 (a third terminal). The port D (a fourth port), the matching circuit 69 (a fourth matching circuit), the duplexer 74, a transmit terminal Tx74 and a receive terminal Rx74 (fourth terminals), the PA 76a, and the LNA 76b are connected in the same manner as the port A through the IC 76. The matching circuits 64, 66, 68 and 69 match impedance between the duplexers, impedance between the duplexer and the filter, impedance between an antenna 60 and each duplexer, and impedance between the antenna 60 and the receive filter 75.
The duplexers support frequency bands different from each other. The duplexer 70 supports, for example, W-CDMA (Wideband Code Division Multiple Access) Band4. The duplexer 72 supports, for example, W-CDMA Band7. The duplexer 74 supports, for example, W-CDMA Band1. The receive filter 75 supports a receive band of W-CDMA Band7. Hereinafter, Band may be solely described without describing W-CDMA. In addition, a receive band may be described as Rx, and a transmit band may be described as Tx.
A description will be given of transmission and reception of signals. The switch 62 selects a port from the ports A˜D depending on the frequency band to be used, and connects it to the antenna 60. Table 3 presents a relationship between frequency bands and ports.
In the examples of Nos. 51˜53, signals of a single frequency band are transmitted and received. The examples of Nos. 54˜57 are the examples of CA, and signals of two frequency bands are simultaneously transmitted and received. The third embodiment describes the examples of Nos. 54 and 55 out of the examples of Nos. 54˜57. The examples of Nos. 56 and 57 will be described in a fourth embodiment.
A description will be given of an example that uses a single frequency band. As presented in Nos. 51˜53 in Table 3, when a single frequency band is used, the switch 62 turns one port ON and turns the other ports OFF.
A description will be given of an example of CA simultaneously using two frequency bands. In CA, two frequency bands are used as presented in Nos. 54˜57 in Table 3. A description will be given of the example of No. 54 that receives a signal of Band4 and transmits and receives signals of Band7.
As illustrated in
As illustrated in
The third embodiment performs CA including the transmission of a signal of Band4 by using the receive filter 75. A description will be given of the example of No. 55 in Table 3 that transmits and receives signals of Band4 and receives a signal of Band7.
The impedance of the duplexer 70 is the same as that illustrated in
As described above, the third embodiment performs CA by using the duplexer 70 and the receive filter 75 having the same receive band as the duplexer 72. As viewed from the switch 62, the duplexer 70 is opened in the frequency band of the receive filter 75 and the receive filter 75 is opened in the frequency band of the duplexer 70. As a result, the signal of Band1 flows with difficulty through the duplexer 70 and easily flows through the receive filter 75. The signal of Band4 flows with difficulty through the receive filter 75 and easily flows through the duplexer 70. As the leakage of the signal is suppressed, good frequency characteristics with reduced signal loss can be obtained.
The fourth embodiment performs CA of No. 56 in Table 3 by using the duplexer 74. The fourth embodiment also uses the electronic circuit 150 illustrated in
The use of the example illustrated in
In a fifth embodiment, the switch 62 includes three ports. The number of ports may be changed depending on CA to be performed.
The filter may be a boundary acoustic wave filter, an acoustic wave filter such as a filter using a Film Bulk Acoustic Resonator (FBAR), or a filter other than the acoustic wave filter. The switch 62 may include four or more ports. The number of filters connected to the switch 62 may be two or more, and the number of duplexers may be four or more.
The matching circuits 64, 66, 68 and 69 may be a circuit including at least one of an inductor and a capacitor, for example. A description will be given of an example of the matching circuit.
Although the embodiments of the present invention have been described in detail, it is to be understood that the various change, substitutions, and alterations could be made hereto without departing from the spirit and scope of the invention.
Number | Date | Country | Kind |
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2013-153031 | Jul 2013 | JP | national |
2013-158307 | Jul 2013 | JP | national |