1. Field of the Invention
The present disclosure relates to a multi-band antenna, and more particularly to a multi-band antenna performing well in radiating efficiency and isolation of adjacent antenna.
2. Description of Related Art
With the miniaturization trend of portable electronic devices, the space between an antenna and other components inner the electronic devices and the space between two antennas become smaller and smaller. Planar Inverted-F Antenna (PIFA) is a type of often-used antenna inner the electronic devices. However, as the space between the PIFA and other components is very small, other components have negative impacts on the antenna which results in reducing the radiating efficiency of the antenna. And as the space between two PIFAs is very small, the isolation of the two PIFAs becomes bad.
In view of the above, an improved antenna is desired to overcome the problems mentioned above.
Accordingly, an object of the present disclosure is to provide an antenna performing well in radiating efficiency and isolation of adjacent antenna.
According to one aspect of the present disclosure, a multi-band antenna is provided. The multi-band antenna comprises a grounding element extending in a longitudinal direction and defining a longitudinal edge; a longitudinal arm extending in the longitudinal direction and defining a slot with the grounding element, the longitudinal arm comprising a first end and a second end opposite to each other, and the second end connecting the longitudinal edge through a connecting arm; and a first lateral arm extending from the longitudinal arm towards the grounding element and defining a feed point; wherein the first lateral arm adjacent to the first end of the longitudinal arm dividing the longitudinal arm into a shorter first radiating section and a longer second radiating section.
Other objects, advantages and novel features of the disclosure will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings, in which:
Reference will now be made to the drawings to describe a preferred embodiment of the present disclosure in detail.
Referring to
The radiating element comprises a longitudinal arm 21 extending in the longitudinal direction and defining a slot with the grounding element 10. The longitudinal arm 21 comprises a first end 210 and a second end 211 opposite to each other in the longitudinal direction. A connecting arm 22 connects the second end 211 and the longitudinal edge of the grounding element 10. The grounding element 10 is longer than the longitudinal arm 21 in the longitudinal direction.
A first lateral arm 23 extends from the longitudinal arm 21 towards the grounding element 10. The first lateral arm 23 is adjacent to the first end 210 dividing the longitudinal arm 21 into a shorter first radiating section 31 and a longer second radiating section 32. A feed point 230 is defined on the end of the first lateral arm 23 for electrically connecting a coaxial cable thereon.
A second lateral arm 24 extends from the longitudinal arm 21 and locates between the first lateral arm 23 and the connecting arm 22 for adjusting the impedance matching of the first and second radiating sections 31, 32. The second lateral arm 24 is wider than the first lateral arm 23 in the longitudinal direction. The second radiating section 32 comprises a narrow section 213 between the first lateral arm 23 and the second lateral arm 24 and a wide section 214 between the second lateral arm 24 and the connecting arm 22. In the traverse direction perpendicular to the longitudinal direction, the dimension of the narrow section 213 is less than the dimension of the wide section 214. In this embodiment, the dimension of the wide section 214 is at least twice the dimension of the narrow section 213.
In the preferred embodiment in accordance with the present disclosure, the grounding element 10 further comprises a secondary plate 11. The connecting arm 22 connects the secondary plate 11 and locates in the same plane with the secondary plate 11. The secondary plate 11 comprises a recess 111 corresponding to the first lateral arm 23 and a free end 112 corresponding to the first end 210 of the longitudinal arm 21, wherein the free end 112 extends towards the longitudinal arm 21 and beyond the end of the first lateral arm 23 in the traverse direction. The first lateral arm 23 is bent twice towards the grounding element 10 defining two creases while the second lateral arm 24 is bent once defining one crease, shown in
The embodiment of the present disclosure comprises the first lateral arm 23 dividing the longitudinal arm 21 into the first and second radiating sections 31, 32. The feed point 230 is defined on the end of the first lateral arm 23. From the feed point 230 to the joint of the connecting arm 22 and the secondary plate 11, i.e. the first lateral arm 23, the second radiating section 32 and the connecting arm 22, serves as a loop antenna working on a lower frequency band, as the dotted line shown in
While preferred embodiment in accordance with the present disclosure has been shown and described, equivalent modifications and changes known to persons skilled in the art according to the spirit of the present disclosure are considered within the scope of the present disclosure as defined in the appended claims.
Number | Date | Country | Kind |
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101132903 | Sep 2012 | TW | national |