1. Technical Field
The disclosure generally relates to antenna devices, and particularly to a dual band antenna device having a reduced size.
2. Description of Related Art
To communicate in multi-band communication systems, a bandwidth of an antenna of a wireless communication device such as a mobile phone should be wide enough to cover frequency bands of the multi-band communication systems. In addition, because of the miniaturization of the wireless communication device, available space for the antenna is reduced and limited. Therefore, it is necessary to design the antenna having the wider bandwidth within the reduced and limited space.
Therefore, there is room for improvement within the art.
Many aspects of the present disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the disclosure.
The antenna 10 includes a first radiating body 11 operating at a first frequency band (e.g. a signal at frequency about 790 MHz-1190 MHz) and a second radiating body 13 operating at a second frequency band (e.g. a signal at frequency about 1672 MHz-2271 MHz). In this exemplary embodiment, the first radiating body 11 is substantially T-shaped and includes a first radiating section 111 and a second radiating section 112. The first radiating section 111 is connected to a middle area of the second radiating section 112. The second radiating body 13 is substantially L-shaped and includes a third radiating section 131 and a fourth radiating section 133 perpendicularly connected to the third radiating section 131. The third radiating section 131 is parallel to and spaced from the first radiating section 111. The fourth radiating section 133 is parallel to and spaced from a portion of the second radiating section 112. In this exemplary embodiment, a length and a width of the second radiating section 112 are about 68 mm and 1 mm. A length of the fourth radiating section 132 is about 20 mm. A distance between the fourth radiating section 132 and the second radiating section 112 is about 1 mm.
Also referring to
One end of the first matching path 31 and one end of the second matching path 32 are both connected to an radio frequency (RF) module 530. Another end of the first matching path 31 is connected to the first radiating body 11. Another end of the second matching path 32 is connected to the second radiating body 13. The antenna 10 receives electronic signals transmitted from the RF module 530 by the matching circuit 30 and converts the electronic signals into radio waves and also transmits the radio waves received from other wireless communication devices to the RF module 530.
The first frequency band signal can be transmitted by the first matching path 31 so that the first radiating body 11 can transmit and receive the first frequency band signal. The second frequency band signal (e.g. a signal at frequency about 1672 MHz-2271 MHz) can be transmitted by the second matching path 32 so that the first radiating body 11 can transmit and receive the second frequency band signal. The antenna 10 is connected to the matching circuit 30 by an elastic member, a microchip, a coaxial cable and so on.
In this exemplary embodiment, the first matching path 31 includes a first inductor L1, a first capacitor C1, a second inductor L2, and a third inductor L3. The first inductor L1, the first capacitor C1, and the third inductor L2 are electronically connected in series between the first radiating body 11 and the RF module 530. One end of the second inductor L2 is electronically connected between the first capacitor C1 and the first inductor L1. Anther end of the second inductor L2 is grounded. In this exemplary embodiment, inductances of the first inductor L1, the second inductor L2, and the third inductor L3 are respectively 3.3 nH, 7.5 nH, and 15 nH. A capacitance of the first capacitor C1 may be from 0.5 pF to 2.0 pF, such as 1.3 pF.
The second radiating path 32 includes a fourth inductor L4 and a second capacitor C2 connected in parallel between the second radiating body 13 and the RF module 530. In this exemplary embodiment, an inductance of the fourth inductor L4 is about 12 nH, and a capacitance of the capacitor C2 is about 2.2 pF.
The PCB 50 includes an antenna mounting area 51 in which no conductive member (e.g. a speaker, a camera, etc.) is positioned and a ground plane 53. The first radiating body 11 and the second radiating body 13 are positioned on the mounting area 51. The RF module 530 is positioned at the ground plane 53. The matching circuit 30 is portioned on the PCB 50.
In use, to transmit and receive the first and second frequency band signals, the first frequency band signal is transmitted to the first radiating body 11 by adjusting the inductances of the first inductor L1, the second inductor L2, and the third inductor L3 so that the antenna device 100 can operate at LTE700/GSM850/GSM900 communication systems. The second frequency band signal is transmitted to the second radiating body 12 by adjusting the inductance of the fourth inductor L4 and the capacitance of the second capacitor C2 so that the antenna device 100 can operate at DCS/PCS/UMTS communication systems.
The antenna device 100 can both operates at the first frequency band and the second frequency band by adjusting impedances of the first matching path 31 and the second matching path 32 to correspondingly matching with the first radiating body 11 and the second radiating body 13. Therefore, the antenna device 100 can obtain a wider bandwidth with a simplified structure and a reduced size.
It is believed that the exemplary embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the disclosure or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments of the disclosure.
Number | Date | Country | Kind |
---|---|---|---|
102213679 | Jul 2013 | TW | national |