The present invention relates to an antenna, and more particularly to a multiple frequency band antenna for use in a wireless communication device.
In recent years, the development of the wireless communication industry is vigorous. The wireless communication devices, for example, cell phones or PDAs, have become indispensable commodities for people. An antenna generally plays an important role for transmitting and receiving wireless signals in a wireless communication device. Therefore, the operating characteristics of the antenna have a direct impact on the transmission and receiving quality for the wireless communication device.
Generally, the antenna of the portable wireless device is roughly classified into two categories, including the external type antenna and embedded type antenna. The external type antenna is commonly shaped as a helical antenna, and the embedded type antenna is commonly shaped as a planar inverted-F antenna (PIFA). The helical antenna is exposed to the exterior of the casing of the wireless communication device and is prone to be damaged. Thus, the helical antenna usually bears a poor communication quality. A planar inverted-F antenna has a simple structure and a small size and is easily to be integrated with electronic circuits. Nowadays, planar inverted-F antenna has been widely employed in a variety of electronic devices.
Typically, a well-designed antenna is required to have a low return loss and a high operating bandwidth. In order to allow the user of the wireless communication device to receive wireless signals with great convenience and high quality, the current wireless communication devices have been enhanced by increasing the number of antennas or enlarge the antenna to allow the wireless communication device to transmit and receive wireless signals with a larger bandwidth or multiple frequency bands. However, with the integration of circuit elements and the miniaturization of the wireless communication device, the conventional design method has been outdated.
For allowing the wireless communication device to increase the number of antennas in the limited receiving space so as to transmit and receive wireless signals with a larger bandwidth and a better transmission quality and performance, the structure of the antenna has been modified. Referring to
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In addition to the aforementioned antenna 1, the Taiwanese Patent Application No. 092119341 entitled “multiple frequency band antenna for cell phone” also discloses another antenna structure for use with dual frequency band applications, where the low frequency band is located at the frequency band of the GSM system and the high frequency band is located at the frequency band of personal communication services (PCS) system. However, the contemporary wireless communication system not only supports the GSM system, but also supports the digital communication system (DCS) system, personal communication services (PCS) system, and the WCDMA system. The frequency bands of the DCS system, the frequency bands of the PCS system and the frequency bands of the WCDMA system are located at 1710˜1880 MHz, 1850˜1990 MHz, and 1920˜2170 MHz, respectively. Because the conventional antenna is only adapted for single frequency band application or dual frequency band applications, it is obvious that the limited frequency bandwidth of the conventional antenna can not be adapted for the code division multiple access (CDMA) system, the GSM system, the DCS system, the PCS system, and the WCDMA system simultaneously.
Therefore, there is a need of developing a multiple frequency band antenna with a larger frequency bandwidth for obviating the drawbacks encountered by the prior art.
An object of the present invention is to provide a multiple frequency band antenna having a plurality of radiating elements, a common feeding point and a common ground terminal for increasing the bandwidth of the antenna. The multiple frequency band antenna of the present invention is adapted for global system for the code division multiple access (CDMA) system, the mobile communication (GSM) system, the digital communication system (DCS), the personal communication system (PCS), and the wideband code division multiple access (WCDMA) system.
Another object of the present invention is to provide a multiple frequency band antenna that can increase its bandwidth with reduced dimension and size of the antenna, thereby improving the efficiency of antenna and reducing the power consumption of antenna.
In accordance with an aspect of the present invention, there is provided a multiple frequency band antenna for a wireless communication device. The multiple frequency band antenna includes a first radiating element, a connecting element and a second radiating element. The connecting element has an end connected to the first radiating element and includes a feeding point and a ground terminal. The second radiating element has a first terminal connected to the other end of the connecting element and a second terminal externally extended and bent for several time. The second radiating element is externally extended in the direction substantially parallel with the connecting element and has a longer path length compared with the first radiating element. The first radiating element is configured to transmit and receive wireless signals in multiple first frequency bands. The second radiating element is configured to transmit and receive wireless signals in multiple second frequency bands. The frequencies of the first frequency bands are higher than those of the second frequency bands.
In an embodiment, the first frequency bands include the frequency band of the digital communication (DCS) system, the frequency band of the personal communication services (PCS) system, and the frequency band of the wideband code division multiple access (WCDMA) system.
In an embodiment, the second frequency bands includes the frequency band of the code division multiple access (CDMA) system and the frequency band of the global system for mobile communications (GSM) system.
The above contents of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
a) is a plan view showing the structure of a multiple frequency band antenna according to a preferred embodiment of the present invention;
b) is a plan view showing the structure of a multiple frequency band antenna according to another preferred embodiment of the present invention;
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
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The width of the first radiating element 32 is for example but not limited to 6 mm. One side of the distal region 321 of the first radiating element 32 is connected to the connecting element 31. The width of the connecting element 31 is smaller than that of the first radiating element 32. In addition, the width of the second radiating element 33 is smaller than that of the connecting element 31. In this embodiment, the width of the second radiating element 33 is for example but not limited to 2 mm. The first terminal 331 of the second radiating element 33 is connected to the connecting element 31. The second terminal 332 of the second radiating element 33 is externally extended in the direction substantially parallel with the connecting element 31. In some embodiments, the second radiating element 33 is bent for several times such that the overall area of the multiple frequency band antenna 3 is reduced. For example, as shown in
According to the present invention, the feeding point 311 can feed the RF signals to be transmitted by RF circuits (not shown) to the multiple frequency band antenna 3. Certainly, the feeding point 311 can feed the RF signal sensed by the multiple frequency band antenna 3 to the RF circuits. The first radiating element 32 has a shorter path length compared with the second radiating element 33, thereby forming a resonant mode to transmit and receive wireless signals in a first frequency band (e.g. a relatively higher frequency band). In this embodiment, the first frequency band is located at the frequency band of a digital communication system (DCS) system, a personal communication services (PCS) system, and a WCDMA system. The frequency bands of the DCS system, the frequency bands of the PCS system and the frequency bands of the WCDMA system are located at 1710˜1880 MHz, 1850˜1990 MHz, and 1920˜2170 MHz, respectively. Whereas, the second radiating element 33 forms a resonant mode to transmit and receive wireless signals in a second frequency band (e.g. a relatively lower frequency band). Moreover, the first radiating element 32 may broaden the second frequency band. The second frequency band includes multiple relatively lower frequency bands located at 880˜960 MHz of the GSM system or 824˜880 MHz of a code division multiple access (CDMA) system.
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Table 1 shows the comparison between the multiple frequency band antenna of
In conclusion, the present invention provides a multiple frequency band antenna by configuring and connecting a plurality of radiating elements and a common feeding point and a common ground terminal, so as to increase the bandwidth of the antenna. Thus, the multiple frequency band antenna of the present invention can be applied to the CDMA system, the GSM system, the DCS system, the PCS system and the WCDMA system simultaneously. On the other hand, the multiple frequency band antenna of the present invention can increase the bandwidth of the antenna, improve the antenna efficiency, reduce the power consumption of the antenna with reduced dimension and size of the antenna.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.