1. Field of the Invention
The present invention relates generally to a multi-band antenna, and more particularly to a multi-band antenna used in an electric device.
2. Description of the Prior Art
In recent years, developments of portable wireless communication devices are speeded up. Considering the competitiveness, an antenna built in the device must have small size to save space and increase convenience.
A planar inverted-F antenna is always used inside an electric device. The inverted-F antenna usually comprises a first radiating element, a second radiating element extending from said first radiating element along a direction away from the first radiating element, a connecting element with an end connecting to the connection of the first and second radiating element, a grounding element connecting to the other end of the connecting element and a feed line linking to a feeder point on the connecting element. The current goes from the feeding point through the first radiating portion to operate in a first frequency band, and through the second radiating portion to operate in a second frequency band. TW Patent No. 1240450, which was issued to Cheng on May 1, 2005, discloses an antenna as above.
However, if the antenna works on a low frequency band, the length of the radiating element could be too long to adapt for present electronic device.
Hence, in this art, an improved antenna to overcome the above-mentioned disadvantages of the prior art should be provided.
A primary object, therefore, of the present invention is to provide a multi-band antenna with a small size.
In order to implement the above object, the multi-band antenna comprises a grounding element extending along a horizontal direction and comprising a side edge with a connecting point and a grounding point distanced from the connecting point by a length, a first radiating element disposed above and parallel to the grounding element, a second radiating element apart from the first radiating element and extending upwardly from the side edge of the grounding portion, a connecting element located between the first radiating element and the grounding element, a feeding point disposed on the connecting element, and a feeding line comprising an inner conductor connected to the feeding point and an outer conductor connected to the grounding point. The first radiating element operates in a first frequency band. The second radiating element defines a L-shaped configuration in a side view and operates in a second frequency band. The connecting element comprises a first end linked to an end of said first radiating element and a second end connecting to said connecting point of the grounding element. Said first radiating element extends from said first end of the connecting element along a direction away from the second radiating element, and forms a slot together with said second radiating element and said connecting element.
Other objects, advantages and novel features of the invention will become more apparent from the following detailed description of a preferred embodiment when taken in conjunction with the accompanying drawings.
Reference will now be made in detail to a preferred embodiment of the present invention.
Reference to
The grounding element 10 is of rectangular configuration and comprises a side edge 101 with a connecting point 102 around the mid portion thereof The connecting element 13 extends upwardly from the connecting point 102 of the side edge 101 along a vertical direction. The first radiating element 11 is of rectangular configuration and extends from a top end of the connecting element 13 along a direction away from the second radiating element 12. The first radiating element 11 is rectangular and located above the grounding element 10. The second radiating element 12 is of L-shaped configuration in a side view and comprises a rectangular first segment 121 extending upwardly from the grounding element 10 along a vertical direction and a rectangular second segment 122 extending from the first segment 121 and parallel to the grounding element 10. The second segment 122 is disposed on the same plane with the first radiating element 11.
The connecting element 13 is roughly of N-shaped configuration and located on the same plane with the first segment 121 of the second radiating element 12. The connecting element 13 comprises a first arm 131 which is close to the second radiating element 12 and extending from an end of the first radiating element 11 along a direction perpendicular to the first radiating element 11, and an L-shaped second arm 132 connecting the first arm 131 to the grounding element 10 on the connecting point 102. The first arm 131 is the widest of all parts of the connecting element 13. The second arm 132 comprises a first portion 1321 extending from a low end of the first arm 131 along a horizontal direction away from the first segment 121, and a second portion 1322 connecting to the grounding element 10. The first portion 1321 is perpendicular to the second portion 1322. The first arm 131 of the connecting element 13 is parallel to the first segment 121 of the second radiating element 12 and the second portion 1322 of the L-shaped second arm 132.
A feeding point 134 is disposed on the first portion 1321 of the second arm 132. The feeding line 14 comprises an inner conductor 141 connected to the feeding point 134 to provide current for the multi-band antenna 1 and an outer conductor 142 connected to the grounding point 103 on the grounding element 10. The first radiating element 11, the second radiating element 12 and the first arm 131 of the connecting element 13 together form an L-shaped slot 15 to adjust the impedance of the multi-band antenna 1.
Reference to
The connecting element 23 located between the first radiating element 21 and the grounding element 20 is disposed on the same plane with the first segment 221 of the second radiating element 22. The connecting element 23 includes a first arm 231 extending from an end of the first radiating element 21 along a direction perpendicular to the first radiating element 21 and adjacent to the first segment 221 of the second radiating element 12, and a second arm 232 extending from a low side of the first arm 231 to a connecting point 202 disposed on the side edge 201 of the grounding element 20 along a slantwise direction away from the second radiating element 22. The first arm 231 is the widest of all parts of the connecting element 23. A feeding point 234 is disposed on the second arm 232 of the connecting element 23. The feeding line 24 comprises an inner conductor 241 linked to the feeding point 234 and an outer conductor connected to a grounding point 203 disposed on the grounding element 20. And the first radiating element 21, the second radiating element 22, the first arm 231 of the connecting element 23 together form an L-shaped slot 25 to adjust the impedance of the multi-band antenna 2 by changing the size thereof
Reference to
The connecting element 33 between the first radiating element 31 and the grounding element 30 is disposed on the same plane with the first segment 321 of the second radiating element 32. The connecting element 33 includes a first arm 331 extending from an end of the first radiating element 31 along a direction perpendicular to the first radiating element 31 and adjacent to the second radiating element 32, and a second arm 332 composed of a first L-shaped body 332 and a second L-shaped body 333. The first L-shaped body 332 comprises a first part 3321 extending from the first arm 331 along a horizontal direction away from the first segment 321 of the second radiating element 32 and a second part 3322 perpendicular to the first part 3321. The second L-shaped body 333 includes a first portion 3331 extending from the second part 3322 along the same direction of the first part 3321 and a second portion 3332 linked to the grounding element 30 on a connecting point 302 on the side edge 301. The first arm 331 is the widest of all parts of the connecting element 33. A feeding point 334 is disposed on the second part 3322 of the first L-shaped body 332. The feeding line 34 comprises an inner conductor 341 linked to the feeding point 334, and an outer conductor 342 connecting to a grounding point 303 on the grounding element 30. And the first radiating element 31, the second radiating element 32, the first arm 331 of the connecting element 33 together form an L-shaped slot 35 to adjust the impedance of the multi-band antenna 3.
In all of above embodiments, the multi-band antenna 1,2,3 may be made by stamping or cutting a metal plate, or be printed or etched on a microwave substrate. And the grounding element 10,20,30 could be made from a metal plate while other elements of the multi-band antenna are printed or etched. The first radiating element 11,21,31 operates in a first lower frequency band, and the second radiating element 12,22,32 operates in a second higher frequency band, and both bands could be adjusted by changing the size of the slot 15,25,35. Reference to
In other embodiments, the positions of the feeding point 134,234,334 could be changed, and the multi-band antenna 1,2,3 could work on other bands by adjusting the size of the first and second radiating element or the slot. And each component of the multi-band antenna 1,2,3 could have other shapes different from above.
It is to be understood, however, that even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
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