1. Technical Field
The present disclosure relates to antennas and, particularly, to a multiple-band antenna.
2. Description of Related Art
Nowadays, electronic devices such as mobile phones are widely used. To satisfy user's needs, a type of mobile phone which can support multiple subscriber identity module (SIM) cards has been developed. Usually, these SIM cards work in different frequency bands, therefore, corresponding number of antennas are needed, which increases the volume of the electronic device.
Therefore, it is desirable to provide a multiple-band antenna to overcome the above-mentioned limitations.
Many aspects of the present disclosure should 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 present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Embodiments of the present disclosure will now be described in detail below, with reference to the accompanying drawings.
Referring to
As shown in
In the embodiment, the lengths of the first antenna structure S1, the second antenna structure S2, and the second antenna body 30 can be changed according to needed frequency bands supported by the antenna 1.
In the embodiment, the antenna 1 is a Worldwide Interoperability for Microwave Access (Wimax) antenna, and the range of the first frequency band f1 is from 5.2 Gigahertz (GHz) to 5.8 GHz. The range of the second frequency band f2 is from 2.4 GHz to 2.7 GHz, and the range of the third frequency band f3 is from 3.3 GHz-3.8 GHz. It is known that f (frequency)*λ (wavelength)=v (wave velocity), and if attempting to receive and transmit a wireless communication signal with a certain frequency, the length (L) of the antenna is better set to be a quarter of wavelength of the wireless communication signal. Because the wave velocity is a constant, namely 3*108 (m/s), the length of the antenna can be calculated according to the desired frequency band and the wave velocity. Therefore, in the embodiment, the length of the first antenna structure S1 is set to be a quarter of the wavelength of the wireless communication signal with the first frequency band f1, and the length of the second antenna structure S2 is set to be a quarter of the wavelength of the wireless communication signal with the second frequency band f2.
In the embodiment, the length of the feedback terminal 201 is about 4 millimeter mm and the width of the feedback terminal 201 is about 10.5 mm. The length of the left arc portion 203 is about 9.5 mm, and the length of the right arc portion 204 is about 27.5 mm. Therefore, the length of the first antenna structure S1 is about 13.5 mm which equals to the sum of the length of the feedback terminal 201 and the length of the left arc portion 203. The length of the second antenna structure S2 is 31.5 mm which equals to the sum of the length of the feedback terminal 201 and the length of the right arc portion 204. The internal radius R1 of the second antenna body 30 is about 1.5 mm, and the external radius R2 of the second antenna body 30 is about 6 mm. Therefore, the length of the second antenna body 30 is equals to 2π*(R1+R2)/2, namely, the length of the second antenna body 30 is about 23.55 mm which is calculated by 2π*(R1+R2)/2.
In the embodiment, the right arc portion 204 includes a number of slots 205 to increase its length, without increasing the volume of the antenna 1.
Referring to
It is believed that the present 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 exemplary embodiments of the present disclosure.
Number | Date | Country | Kind |
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201010137046.X | Mar 2010 | CN | national |