1. Field of the Invention
The present invention relates generally to a multi-band antenna, and more particularly to a Ultra Wide Band antenna (UWB) used for electronic devices, such as notebooks.
2. Description of the Prior Art
At present, the Bluetooth and the IEEE802.11a/g are two of main wire network technologies. However, both the two wire network technologies have disadvantage that transmitting rate of signals fall down with the increase of transmitting distance. A new technology, Ultra Wide Band (UWB) interknit technology, is used in short-haul signal high-speed transmission and signal low-speed transmission among over 100 m even to 1 km distance. The system in electronic device sends low-intensity and narrow pulse signal but not carrier signal to achieve high quality and high-speed transfer. For this reason, this signal transmission has strong anti-jamming capability, and smaller loss of power and electric. Besides, UWB has a big advantage of big capacity to transmit more data. In Feb. 14, 2002, FCC in USA allowed UWB interknit technology used on consumer electrical products. To achieve Ultra Wide Band transmission, an UWB antenna is designed. The band width of the antenna lies on the impedance matching degree, so the UWB antennas need higher requirement of impedance. In current technique, most of UWB antennas are monopole antennas or dipole antennas. However, present electric devices require small-size, so smaller antenna therein is needed. Plane inverted F antennas, a kind of antennas with small size, are used more and more. U.S. Pat. No. 7,042,414 discloses an UWB antenna with small size as shown by
Hence, an improved antenna is desired to overcome the above-mentioned shortcomings of the existing antennas.
A primary object, therefore, of the present invention is to provide a multi-band antenna which is able to achieve an Ultra Wide Band antenna with small-size and simple manufacture.
In order to implement the above object and overcomes the above-identified deficiencies in the prior art, the multi-band antenna, made by an integral plate and comprises a radiating element, a grounding element, a slit formed as part of the plate, and a feeding line, wherein horizontal conductive portion of said plate are separated from each other with said slit between them and serve as the radiating element and the ground element respectively; the feeding line comprises an inner conductor connected with the radiating element and an outer conductor connected with the grounding element; wherein said radiating element comprising at least two radiating portions defining at least one radiating arm with gradually increasing width, and at least two radiating portions cooperatively acting to achieve a Ultra Wide Band antenna.
In order to implement the above object and overcomes the above-identified deficiencies in the prior art, the multi-band antenna made by an integral plate and comprises a radiating element, a grounding element, a slit formed and a feeding line; the slit as part of the plate, comprising a close groove, and wherein horizontal conductive portion of said plate are separated from each other with said slit between them and serve as the radiating element and the ground element respectively; a feeding line, comprising an inner conductor connected with the radiating element and an outer conductor connected with the grounding element; wherein said radiating element comprising at least two radiating portions defining at least one radiating arm with gradually increasing width, and said at least two radiating portion cooperatively acting to achieve a Ultra Wide Band antenna.
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 multi-band antenna 1 is a planar invert-F antenna 1, and is made by cutting and slitting a plate. The multi-band antenna comprises a radiating element 2, a large-size planar grounding element 3, a slit 4, a feeding line 5 and a protrusion 6. The radiating element 2 and the grounding element 3 are respectively located at the two opposite sides of the slit 4, and one end of the radiating element 2 is connected with the grounding element 3.
The radiating element 2 of the multi-band antenna 1 consists of metal sheets with certain lengths, and connecting with one and another and comprises a first radiating portion 21, a third radiating portion 23 which is connected with the first radiating portion 21 on point P and located in a first plane same as that of the first radiating portion 21, and a second radiating portion 22 vertically extending from the third radiating portion 23 to located in a second plane perpendicular to the first plane. The first radiating portion 21 is a tapered radiating portion and extends from the point P to a first end 210. The width of the first radiating portion 21 is broadened gradually with the length increase from the point P to the first end 210. The second radiating portion 22 firstly extends upward form the joint of the first radiating portion 21 and the third radiating portion 23 to form a first radiating arm 221 whose width is gradually broadened from bottom to up. A second radiating arm 222 with gradually broadened width extends vertically from the first radiating arm 221 in the second plane, and forms a second end 2220. On the joint point of the first radiating arm 221 and the second radiating arm 222, the width of the second radiating arm 222 is narrower than that of the first radiating arm 221. The third radiating portion 23 comprises a rectangle plate 231 defined a third end 230 opposite to the first end 210, and a tapered radiating arm 232. The tapered radiating arm 232 is shown as trapeze shape and extends form the rectangle plate 231 in a direction perpendicular to the rectangle plate 231 to connect with the grounding element 3. The rectangle plate 231 and the tapered radiating arm 232 are respectively located on the two sides of the slit 4 defined between the radiating elements 2 and the grounding element 3. Thus, in this embodiment of the present invention, the first radiating portion 21, the third radiating portion 23, the grounding element 3 and the protrusion 6 are on the first plane and extend toward the grounding element 3, and the second radiating portion 22 is located on the second plane vertical to the first one. The first radiating portion 21 extends along the first plane beyond the grounding element 3.
The grounding element 3 is rectangular shape, and comprises a grounding tab 31. The feeding line 5 comprises an inner conductor 51 and an outer conductor 52. The outer conductor 52 is connected to the grounding tab 31 to form a grounding point. The slit 4 comprises a close groove 41 and an open groove (not graded). The feeding line 5 together with the grounding element 3 and the third radiating portion 23 encircles a close groove 41 on the slit 4. The open groove is formed by the first radiating portion 21, the feeding line 6 and the grounding element 3.
In this embodiment of the present invention, the first radiating portion 21 creates a first frequency resonance whose center frequency is 3.2 GHz. The second radiating portion 22 creates a second frequency resonance whose center frequency is 4.5 GHz. The third radiating portion 23, the grounding element 3 and the close groove 41 jointly create a third frequency resonance whose center frequency is 5.5 GHz. The entire first radiating portion 21, the second radiating portion 22 and the third radiating portion 23 have gradually-increasing-width structure, and this structure is good for impedance match to increase the band width of the radiating portions. So every two frequency bands of the radiating portions are joined to perform an ultra wide band antenna. Reference to
In this embodiment of the present invention, the multi-band antenna 1 broadens the band width of the radiating portions through a special structure to make each two frequency bands of the radiating portion joined to achieve a UWB antenna. In manufacturing process, an integer plate is cut and bent to form the multi-band antenna 1. The multi-band antenna 1 has simple structure, conveniently manufacturing process and compact size. In alternative embodiments, the structures of the radiating portions can be not only changed from broad to narrow, but also changed to other shape to adapt to the inner space of the electronic device. And the position of the feeding point and the grounding point can be changed to match impedance.
While the foregoing description includes details which will enable those skilled in the art to practice the invention, it should be recognized that the description is illustrative in nature and that many modifications and variations thereof will be apparent to those skilled in the art having the benefit of these teachings. It is accordingly intended that the invention herein be defined solely by the claims appended hereto and that the claims be interpreted as broadly as permitted by the prior art.
Number | Date | Country | Kind |
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09 5 124096 | Jul 2006 | CN | national |
Number | Name | Date | Kind |
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5828340 | Johnson | Oct 1998 | A |
6661380 | Bancroft et al. | Dec 2003 | B1 |
7042414 | Lee | May 2006 | B1 |
Number | Date | Country | |
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20080001826 A1 | Jan 2008 | US |