1. Field of the Invention
The present invention relates to an antenna device capable of transmitting and receiving radio signals in a plurality of frequency bands, and a communication terminal apparatus including such an antenna device.
2. Description of the Related Art
In a communication terminal apparatus including a mobile phone, for example, such a loop antenna as disclosed in Japanese Patent Laying-Open No. 2002-43826 may be utilized. This loop antenna is configured by a looped-shaped conductor having one end as a power feed end and the other end as a ground end, and having an entire length of one wavelength. This loop antenna suppresses gain reduction even when being used in proximity to a human body, and exhibits excellent radiation characteristics.
In recent years, there is a need for a communication terminal apparatus to accommodate a plurality of frequency bands. For example, a communication terminal apparatus accommodating a penta-band of GSM (registered trademark; Global System for Mobile communication) 850, GSM900, GSM1800, GSM1900, and UMTS (Universal Mobile Telecommunications System) is required to accommodate a relatively wider band of 824 to 960 MHz (Low Band) and 1710 to 2170 MHz (High Band).
According to the loop antenna for accommodating such a relatively wider band, as shown in
As shown in
The resonance frequency of each resonance can be determined by the size of loop antenna 101. On the other hand, when this resonance frequency is controlled in a matching circuit, it is conceivable to implement a configuration in which an inductance element L1 and an inductance element L2 are loaded at the power feed end and the ground end, respectively, of the antenna, as shown in
However, when inductance elements are loaded in this way to adjust the frequency, the amount of change in each resonance frequency is increased as the frequency is higher. In other words, by the method of simply loading an inductance element, it is difficult to independently control the resonance frequency for each resonance mode.
Preferred embodiments of the present invention provide a multiband-capable antenna device exhibiting excellent frequency characteristics, by which a resonance frequency in each resonance mode is independently controlled in an antenna element having a plurality of resonance modes, and provide a communication terminal apparatus including such an antenna device.
According to a preferred embodiment of the present invention, an antenna device includes a radiation element including a first conductor including a power feed end and a ground end; and a matching circuit including a first inductance element loaded at the power feed end of the first conductor, and a second inductance element loaded at the ground end of the second conductor and magnetic-field coupled to the first inductance element. The radiation element is configured to resonate in a plurality of resonance modes including an even mode and an odd mode. The first inductance element and the second inductance element are wound and connected such that magnetic fields are mutually strengthened for one of the even mode and the odd mode, and such that the magnetic fields are mutually weakened for the other of the even mode and the odd mode.
Furthermore, a communication terminal apparatus according to another preferred embodiment of the present invention includes a power feed element; a radiation element including a power feed end and a ground end; and a matching circuit including a first inductance element loaded at the power feed end of the first conductor, and a second inductance element loaded at the ground end of the second conductor and magnetic-field coupled to the first inductance element. The radiation element is configured to resonate in a plurality of resonance modes including an even mode and an odd mode. The first inductance element and the second inductance element are wound and connected such that magnetic fields are mutually strengthened for one of the even mode and the odd mode, and such that the magnetic fields are mutually weakened for the other of the even mode and the odd mode.
According to various preferred embodiments of the present invention, since resonance frequencies in a plurality of resonance modes in a radiation element are controlled independently, a multiband-capable antenna device exhibiting excellent frequency characteristics is provided. Furthermore, a multiband-capable communication terminal apparatus exhibiting excellent frequency characteristics including such an antenna device is provided.
The above and other elements, features, steps, characteristics and advantages of the present invention will become more apparent from the following detailed description of the preferred embodiments with reference to the attached drawings.
An antenna device and a communication terminal apparatus of the present invention will be hereinafter described based on the first to third preferred embodiments.
An antenna device according to the present preferred embodiment preferably uses 824 MHz to 960 MHz (Low Band) and 1710 MHz to 2170 MHz (High Band) as a passband, and accommodates a penta-band of GSM850, GSM900, GSM1800, GSM1900, and UMTS, for example.
This antenna device utilizes a loop-shaped radiation element 11 preferably having an electric length of one wavelength as a radiation element, as shown in
A first inductance element L1 and a second inductance element L2 are loaded at the power feed end and the ground end, respectively, of loop-shaped radiation element 11. In other words, the first inductance element includes one end (terminal P1) that is connected to the power feed element, and another end (terminal P2) connected to one end (the power feed end) of loop-shaped radiation element 11. The second inductance element has one end (terminal P4) connected to ground, and another end (terminal P3) connected to another end (the ground end) of loop-shaped radiation element 11. First inductance element L1 and second inductance element L2 are coupled (additive polarity coupled) to each other through the magnetic field, and define a matching circuit (a matching circuit element 12).
As shown in
In this stacked body, terminal P1 is connected through a via-hole conductor 14 provided in base material layer 13a, via-hole conductor 14 provided in base material layer 13b and via-hole conductor 14 provided in base material layer 13c to one end of the conductor pattern having a half-turn coil shape and provided in base material layer 13c. The other end of this conductor pattern is connected through via-hole conductor 14 provided in base material layer 13c to one end of the conductor pattern having a half-turn coil shape and provided in base material layer 13b. The other end of this conductor pattern is connected through via-hole conductor 14 provided in base material layer 13b to one end of the conductor pattern having a half-turn coil shape and provided in base material layer 13a. The other end of this conductor pattern is connected through via-hole conductor provided in base material layer 13a to terminal P2 provided on the back surface of the stacked body. First inductance element L1 is defined by these conductor patterns and via-hole conductors.
Similarly, terminal P4 is connected through via-hole conductor 14 provided in base material layer 13a, via-hole conductor 14 provided in base material layer 13b, via-hole conductor 14 provided in base material layer 13c, and via-hole conductor 14 provided in base material layer 13d to one end of the conductor pattern having a one-turn coil shape and provided in base material layer 13d. The other end of this conductor pattern is connected through via-hole conductor 14 provided in base material layer 13d to one end of the conductor pattern having a half-turn coil shape and provided in base material layer 13c. The other end of this conductor pattern is connected through via-hole conductor 14 provided in base material layer 13c to one end of the conductor pattern having a half-turn coil shape and provided in base material layer 13b. The other end of this conductor pattern is connected through via-hole conductor 14 provided in base material layer 13b to one end of the conductor pattern having a half-turn coil shape and provided in base material layer 13a. The other end of this conductor pattern is connected through via-hole conductor provided in base material layer 13a to terminal P3 provided on the back surface of the stacked body. Second inductance element L2 is defined by these conductor patterns and via-hole conductors 14.
Each of base material layers 13a to 13e may be a ceramic layer like an LTCC ceramic layer, or may be a resin layer like a thermoplastic resin or a thermosetting resin, for example. In other words, the stacked body may be a ceramic stacked body or may be a resin stacked body. An in-plane conductor and an interlayer connection conductor (via-hole conductor) provided in each of base material layers 13a to 13e are preferably made of a metal material including silver, copper or the like as a main component and having a relatively low specific resistance, for example.
The communication terminal apparatus according to the present preferred embodiment preferably is a mobile phone accommodating a penta-band of GSM850, GSM900, GSM1800, GSM1900, and UMTS, for example.
The communication terminal apparatus 20 includes a terminal housing 21 having a rectangular or substantially rectangular outer shape, as shown in
Loop-shaped antenna element 26 according to the present preferred embodiment includes three resonance modes including the first resonance mode (resonance 1), the second resonance mode (resonance 2) and the third resonance mode (resonance 3) in increasing order of a resonance frequency. The first resonance mode and the third resonance mode each are an odd mode while the second resonance mode is an even mode. As shown in
As described above, the “odd mode” is a mode in the state where the current direction from the power feed end to the radiation element and the current direction from the ground end to the radiation element are aligned with each other, and is a transmission mode where inductance element L1 and inductance element L2 have voltages having different polarities. The “even mode” is a mode in the state where the current direction from the power feed end to the radiation element and the current direction from the ground end to the radiation element are opposite to each other, and is a transmission mode where inductance element L1 and inductance element L2 have voltages having the same polarity.
In the present preferred embodiment, inductance element L1 and inductance element L2 are wound and connected such that the magnetic fields are mutually strengthened for the odd mode, and that the magnetic fields are mutually weakened for the even mode. Therefore, as shown in
Although the antenna device according to the present preferred embodiment preferably has a configuration basically similar to that of the antenna device according to the first preferred embodiment, first inductance element L1 and second inductance element L2 are coupled (subtractive polarity coupled) through the magnetic field, as shown in
As shown in
Although the present invention has been described with reference to specific preferred embodiments, the present invention is not limited to these preferred embodiments.
For example, the radiation element (antenna element) only has to be configured to include the first conductor having one end as a power feed end and the second conductor having one end as a ground end, and to resonate in a plurality of resonance modes including an even mode and an odd mode. In other words, the shapes of the power feed radiation element and the non-power feed radiation element are not limited to a simple monopole type, but may be various types of shapes such as a folded type and a T-branch type.
Furthermore, the radiation element is not limited to a pattern provided on a flexible substrate. For example, a chip antenna made of a dielectric element body having an antenna pattern provided thereon may be utilized, or a conductor pattern directly rendered on a printed wiring board or a terminal housing may be utilized.
Furthermore, the first inductance element and the second inductance element are not limited to a coiled element provided by winding a conductor pattern in a coil shape, but may be a magnetic coupling element which is categorized as a type based on magnetic-field coupling.
While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
---|---|---|---|
2012-187238 | Aug 2012 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
2320124 | Forbes | May 1943 | A |
20020018021 | Koyanagi et al. | Feb 2002 | A1 |
20080197710 | Kreitz et al. | Aug 2008 | A1 |
20110105072 | Bhagat et al. | May 2011 | A1 |
20110273361 | Autti | Nov 2011 | A1 |
20120001701 | Taniguchi et al. | Jan 2012 | A1 |
20130249767 | Ishizuka et al. | Sep 2013 | A1 |
20140049440 | Ueki et al. | Feb 2014 | A1 |
Number | Date | Country |
---|---|---|
1 146 590 | Oct 2001 | EP |
2 388 858 | Nov 2011 | EP |
2002-043826 | Feb 2002 | JP |
2003-051705 | Feb 2003 | JP |
2009-206975 | Sep 2009 | JP |
2013-207438 | Oct 2013 | JP |
2010104179 | Sep 2010 | WO |
2012099085 | Jul 2012 | WO |
2012153690 | Nov 2012 | WO |
Entry |
---|
Official Communication issued in International Patent Application No. PCT/JP2013/072673, mailed on Oct. 22, 2013. |
Official Communication issued in corresponding European Patent Application No. 13831926.4, mailed on Jan. 28, 2015. |
Number | Date | Country | |
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20140218246 A1 | Aug 2014 | US |
Number | Date | Country | |
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Parent | PCT/JP2013/072673 | Aug 2013 | US |
Child | 14247271 | US |