1. Field of Invention The present invention relates to antennas and more particularly to an improved ultra-wideband dipole antenna mounted in a wireless communication device (e.g., cellular phone or PDA).
2. Description of Related Art
Wireless communication has known a rapid, spectacular development in recent years. Also, requirements for quality and performance of antenna mounted in a wireless communication device (e.g., cellular phone or PDA) are increased. In addition to the requirement of miniature antenna, multiple frequency band or ultra-wideband feature is also necessary. For many types of newly developed wireless communication devices, having an ultra-wideband antenna is critical for high speed wireless transmission of image data or large amount of data.
A conventional dipole antenna is shown in
The prior dipole antenna is applicable for a single frequency band operation only and has a bandwidth about 10% to 12% of central frequency of resonance. For example, the dipole antenna operates in a single frequency band in a wireless LAN having a frequency 2.45 GHz and has a bandwidth about 250 MHz. As such, the prior dipole antenna does not meet the requirements for multiple frequency band or ultra-wideband applications. Thus, the need for improvement still exists in order to overcome the inadequacy of the prior art.
It is therefore an object of the present invention to provide an ultra-wideband dipole antenna. In a positive portion of the antenna, there are provided with a conductive interconnection and a metal sleeve to form a conductive post with substantially increased diameter for increasing impedance matching of the antenna. In a negative portion of the antenna, another metal sleeve is electrically connected to an outer conductive shell of a coaxial conductor for generating a base band resonance mode and a plurality of high frequency resonance modes of the dipole antenna. Moreover, one or two incorporated outer metal sleeves are able to generate a plurality of resonance modes due to its electromagnetic coupling characteristic. In addition, radius of each outer metal sleeve and a spacing between two outer metal sleeves are adapted to control a capacitive effect such that the antenna is adapted to operate in a frequency range of the plurality of electromagnetic coupling resonance modes within a required operating bandwidth. Thus, a predetermined impedance matching in the resonance mode of an antenna operating bandwidth is obtained. Also, an ultra-wideband characteristic of the antenna is formed. The dipole antenna of the invention is sufficient to operate in a frequency range of 2.1 GHz to 11.7 GHz as required in the existing ultra-wideband antenna. The dipole antenna of the present invention is able to significantly increase an operating frequency without increasing antennal height.
To achieve the above and other objects, the present invention provides an ultra-wideband dipole antenna comprising a generally axially disposed first outer metal sleeve having a first closed face at a top end thereof opposite its open bottom end, and a first hole through the first closed face; a generally axially disposed intermediate metal sleeve surrounded by the first outer metal sleeve, the intermediate metal sleeve having a second closed face at a top end thereof opposite its open bottom end, and a second hole through the second closed face; a generally axially disposed second outer metal sleeve above the first outer metal sleeve, the second outer metal sleeve having a third closed face at a bottom end thereof opposite its open top end; a conductive interconnection having a bottom end extended through the first hole, a feed point location at its bottom end, and a top end electrically connected to the third closed face; and an inner coaxial conductor surrounded by the intermediate metal sleeve, the coaxial conductor including a central conductor electrically connected to the feed point location and an outer grounding sleeve surrounding the central conductor and electrically connected to edges of the second hole wherein the dipole antenna is formed by the intermediate metal sleeve, the conductive interconnection, and the second outer metal sleeve and is adapted to generate a base band resonance mode and a plurality of high frequency resonance modes, an impedance matching between a base band resonance mode and one of a plurality of high frequency resonance modes is defined by length of the conductive interconnection and radii and lengths of both the intermediate metal sleeve and the second outer metal sleeve, the first outer metal sleeve is adapted to generate a plurality of resonance modes due to its electromagnetic coupling characteristic, radius and length of the first outer metal sleeve are adapted to control a frequency range of the plurality of resonance modes within a predetermined operating bandwidth, and a distance between the first outer metal sleeve and the intermediate metal sleeve is adapted to change for adjusting the generated capacitance for obtaining a predetermined impedance matching in the resonance mode of an antenna operating bandwidth and an ultra-wideband characteristic. The ultra-wideband dipole antenna is particularly suitable for operating in a frequency range of 2.1 GHz to 11.7 GHz.
The above and other objects, features and advantages of the present invention will become apparent from the following detailed description taken with the accompanying drawings.
Referring to
In the embodiment, a diameter of the first outer metal sleeve 20 is larger than that of the intermediate metal sleeve 22. An inner wall of the first outer metal sleeve 20 is engaged with an outer wall of the intermediate metal sleeve 22. A dipole antenna formed by the intermediate metal sleeve 22, the conductive interconnection 24, and the second outer metal sleeve 23 is able to generate a base band resonance mode and a plurality of high frequency resonance modes. Moreover, impedance matching between the base band resonance mode and the high frequency resonance mode is defined by length of the conductive interconnection 24 and radii and lengths of both the intermediate metal sleeve 22 and the second outer metal sleeve 23. The first outer metal sleeve 20 surrounding the intermediate metal sleeve 22 is able to generate a plurality of resonance modes due to its electromagnetic coupling characteristic. Moreover, radius and length of the first outer metal sleeve 20 are adapted to control a frequency range of the plurality of electromagnetic coupling resonance modes within a required operating bandwidth. In addition, a distance between the first outer metal sleeve 20 and the intermediate metal sleeve 22 can be changed for adjusting the generated capacitance so as to obtain an excellent impedance matching in the resonance mode of the antenna operating bandwidth and an ultra-wideband feature.
Referring to
Referring to
In the embodiment, a diameter of the first outer metal sleeve 50 is larger than that of the intermediate metal sleeve 52. An inner wall of the first outer metal sleeve 50 is not engaged with an outer wall of the intermediate metal sleeve 52. A dipole antenna formed by the intermediate metal sleeve 52, the conductive interconnection 54, and the second outer metal sleeve 53 is able to generate a base band resonance mode and a plurality of high frequency resonance modes. Moreover, impedance matching between the base band resonance mode and the high frequency resonance mode is defined by length of the conductive interconnection 54 and radii and lengths of both the intermediate metal sleeve 52 and the second outer metal sleeve 53. The first outer metal sleeve 50 surrounding the intermediate metal sleeve 52 is able to generate a plurality of resonance modes due to its electromagnetic coupling characteristic. Moreover, radius and length of the first outer metal sleeve 50 are adapted to control a frequency range of the plurality of electromagnetic coupling resonance modes within a required operating bandwidth. In addition, a distance between the first outer metal sleeve 50 and the intermediate metal sleeve 52 can be changed for adjusting the generated capacitance so as to obtain an excellent impedance matching in the resonance mode of the antenna operating bandwidth and an ultra-wideband feature.
Referring to
In the embodiment, a diameter of the first outer metal sleeve 60 is larger than that of the intermediate metal sleeve 62. An inner wall of the first outer metal sleeve 60 is not engaged with an outer wall of the intermediate metal sleeve 62. A diameter of the intermediate metal sleeve 62 is larger than that of the inner metal sleeve 63. An inner wall of the intermediate metal sleeve 62 is engaged with an outer wall of the inner metal sleeve 63. A dipole antenna formed by the inner metal sleeve 63, the conductive interconnection 65, and the second outer metal sleeve 64 is able to generate a base band resonance mode and a plurality of high frequency resonance modes. Moreover, impedance matching between the base band resonance mode and the high frequency resonance mode is defined by length of the conductive interconnection 65 and radii and lengths of both the intermediate metal sleeve 62 and the second outer metal sleeve 64. The first outer metal sleeve 60 and the intermediate metal sleeve 62 surrounding the inner metal sleeve 63 are able to generate a plurality of resonance modes due to its electromagnetic coupling characteristic. Moreover, radii and lengths of the first outer metal sleeve 60 and the intermediate metal sleeve 62 are adapted to control a frequency range of the plurality of electromagnetic coupling resonance modes within a required operating bandwidth. In addition, a distance between the first outer metal sleeve 60 and the intermediate metal sleeve 62, a distance between the intermediate metal sleeve 62 and the inner metal sleeve 63, and radii of the first outer metal sleeve 60 and the intermediate metal sleeve 62 can be changed for adjusting the generated capacitance so as to obtain an excellent impedance matching in the resonance mode of the antenna operating bandwidth and an ultra-wideband feature.
Referring to
In the embodiment, a diameter of the first outer metal sleeve 70 is larger than that of the intermediate metal sleeve 72, a diameter of the intermediate metal sleeve 72 is larger than that of the first inner metal sleeve 73, and a diameter of the second outer metal sleeve 74 is larger than that of the second inner metal sleeve 75 respectively. An inner wall of the first outer metal sleeve 70 is not engaged with an outer wall of the intermediate metal sleeve 72. An inner wall of the intermediate metal sleeve 72 is engaged with an outer wall of the first inner metal sleeve 73. An inner wall of the second outer metal sleeve 74 is engaged with an outer wall of the second inner metal sleeve 75. A dipole antenna formed by the first inner metal sleeve 73, the conductive interconnection 76, and the second inner metal sleeve 75 is able to generate a base band resonance mode and a plurality of high frequency resonance modes. Moreover, impedance matching between the base band resonance mode and the high frequency resonance mode is defined by length of the conductive interconnection 76 and radii and lengths of both the first inner metal sleeve 73 and the second inner metal sleeve 75. The first outer metal sleeve 70 and the intermediate metal sleeve 72 surrounding the first inner metal sleeve 73, and the second outer metal sleeve 74 surrounding the second inner metal sleeve 75 are able to generate a plurality of resonance modes due to its electromagnetic coupling characteristic. Moreover, radii and lengths of the first outer metal sleeve 70 and the intermediate metal sleeve 72 are adapted to control a frequency range of the plurality of electromagnetic coupling resonance modes within a required operating bandwidth. In addition, a distance between the first outer metal sleeve 70 and the intermediate metal sleeve 72, a distance between the intermediate metal sleeve 72 and the first inner metal sleeve 73, a distance between the second outer metal sleeve 74 and the second inner metal sleeve 75, and radii of the first outer metal sleeve 70, the intermediate metal sleeve 72, and the second outer metal sleeve 74 can be changed for adjusting the generated capacitance so as to obtain an excellent impedance matching in the resonance mode of the antenna operating bandwidth and an ultra-wideband feature.
While the invention herein disclosed has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims.
Number | Date | Country | Kind |
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93140545 A | Dec 2004 | TW | national |
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