The present invention relates to a wideband antenna and a manufacturing method for the same, and more particularly to a multi-mode resonant wideband antenna and a manufacturing method for the same.
The application of antenna in wireless LAN card is not only limited by the character of the antenna, but also by the space and the cost of the wireless LAN card. The chip antenna is usually applied in the wireless LAN card because of its small size. However, the chip antenna has the deficiencies of the high cost and the narrow bandwidth. Further, while the chip antenna is used in the wireless LAN card, the real bandwidth thereof is often narrower than expected because of the interference from the printed circuit board (PCB) layout.
If there is enough space in the wireless LAN card, the printed antenna is usually applied firstly. The printed antennas include the monopole antenna, the dipole antenna, the planar inverted-F antenna, and the ring antenna, wherein the planar inverted-F antenna is frequently used because it could efficiently reduce the size occupied by the printed antenna on PCB. Nevertheless, the bandwidth of the planar inverted-F antenna is always limited by the special structure itself. If the bandwidth of an antenna is not broad enough, the most electromagnetic wave delivered by the antenna would easily be reflected back by the surrounding objects that are close to the antenna. Further, the character of the return loss of the antenna is possible to be affected, which makes the deviation of the central frequency. For overcoming these deficiencies, an antenna that could provide a broader bandwidth and a better performance in return loss, and could overcome the affection of the surrounding objects to the return loss and the central frequency deviation, without any additional cost, is needed.
In order to overcome the drawbacks in the prior art, a multi-mode resonant wideband antenna and a manufacturing method for the same are provided. The particular design in the present invention not only solves the problems described above, but also is easy to be implemented. Thus, the invention has the utility for the industry.
In accordance with the present i nvention, there is provided a wireless transmit/receive unit for transmitting and receiving an electromagnetic wave. The wireless transmit/receive unit includes a radiating element and a feeding line. The radiating element is a metal piece having a first edge with a first length, a second edge with a second length, and a plurality of cutouts. The first and second edges are separated from each other and the first length is longer than the second length. Further, the cutouts are formed on the metal piece respectively, which makes the metal piece have a zigzag shape. In addition, the feeding line is electrically connected to the second edge.
Preferably, the metal piece is an inverted triangle-shaped metal piece or inverted trapezium-shaped metal piece.
Preferably, the first length is a multiple of a quarter wavelength of the electromagnetic wave.
Preferably, the metal piece having the zigzag shape has an effective electrical length that is a multiple of a half wavelength of the electromagnetic wave.
Preferably, the cutouts being cutting slots have a total length that is a multiple of a half wavelength of the electromagnetic wave.
Preferably, the cutouts are formed by one of a cutting process and an etching process.
Preferably, each of the cutouts being cutting slots has a width of 20 milliinches.
Preferably, the feeding line is further mounted on a dielectric substrate.
Preferably, the wireless transmit/receive unit as further comprises a reference ground surface connected to the dielectric substrate.
Preferably, the dielectric substrate is made of FR4.
Preferably, the wireless transmit/receive unit is configured in a wireless transmission device.
In accordance with another aspect of the invention, there is provided a wideband antenna transmitting/receiving an electromagnetic wave. The wideband antenna includes a meander line and a feeding line. The meander line has a first terminal and a second terminal, and further includes a first section, a first bend part, a second section a second bend part, and a third section. The first section has a first length and is connected to the first terminal, and the second section has a second length and is connected to the first section via the first bending part. Moreover, the third section has a third length and is connected to the second section via the second bend part and is further connected to the second terminal. The first length is shorter than the second length, and the second length is shorter than the third length. In addition, the feeding line is electrically connected to the first terminal.
Preferably, the third length is a multiple of a quarter wavelength of the electromagnetic wave.
Preferably, the meander line has a total length that is a multiple of a half wavelength of the electromagnetic wave.
Preferably, the wideband antenna further comprises two slots between the first and second sections, and the second and third sections respectively, wherein each of the slots has a width of 20 milliinches.
Preferably, the feeding line is further mounted on a dielectric substrate.
Preferably, the wideband antenna further includes a reference ground surface, wherein the dielectric substrate is connected to the reference ground surface.
In accordance with a further aspect of the present invention, a method for increasing a bandwidth of an antenna is provided. The method includes the steps as follows. Firstly, a radiating element that has a first edge with a first length and a second edge with a second length is provided, and the first length is longer than the second length. Secondly, a plurality of cutouts are formed on the radiating element for producing a plurality of horizontal electric fields parallel to the cutouts and a plurality of vertical electric fields vertical to the cutouts, and the horizontal electric fields offset with each other and the vertical electric fields superimpose with each other.
Preferably, the cutouts are formed by one of a cutting process and an etching process.
The above objects and advantages of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed descriptions and accompanying drawings, in which:
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 the purposes 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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In order to receive/transmit electromagnetic waves having different wavelengths, the length of the edges of radiating element 11 and each of the cutouts 111a-111e could be adjusted accordingly. In our first preferred embodiment, the first edge 113 has a length equal to a quarter wavelength of the electromagnetic wave having a frequency of 2.45 GHz, and the respective cutouts 111a-111e have a width of 20 milliinches, which is easy to be carried out by the present technology. Further, the sum of the length of the respective sections 112a-112e is equal to a half wavelength of the electromagnetic wave having a frequency of 2.45 GHz.
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Further, since the cutouts 111a-111e have very narrow widths (20 milliinches), the multiple leakage currents would be induced easily across each cutouts 111a-111e, which makes the radiating element 11 have multiple effective electrical lengths from a quarter to a half wavelength of the received electromagnetic wave. Therefore, by coupling multiple effective electrical lengths, a broader bandwidth could be easily provided.
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Number | Date | Country | Kind |
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096135232 | Sep 2007 | TW | national |