Broad band dipole antenna
11095035 · 2021-08-17
Assignee
Inventors
Cpc classification
H01Q1/52
ELECTRICITY
International classification
H01Q9/28
ELECTRICITY
H01Q1/52
ELECTRICITY
Abstract
A broad band dipole antenna includes a first top radiator which is a planar polygonal shaped surface arranged parallel to vertical axis of the broad band dipole antenna, a first bottom radiator which is a planar polygonal shaped surface arranged parallel to the first radiator and below of the first top radiator, a first coupler which is a planar polygonal shaped surface arranged in close proximity to both the first top radiator and the first bottom radiator, N−1 top radiators where each next top radiator is a copy of the previous top radiator which is rotated by approximately 360°/N around the vertical axis, where N is an integer greater than one, N−1 bottom radiators where each next bottom radiator is a copy of the previous bottom radiator which is rotated by approximately 360′/N around the vertical axis, N−1 couplers where each next coupler is a copy of the previous coupler which is rotated by approximately 360′/N around the vertical axis, a first jumper which connects bottom sides of all the top radiators, and a second jumper which connects top sides of all the bottom radiators.
Claims
1. A broad band dipole antenna comprising: a first top radiator which is a planar polygonal shaped surface arranged parallel to a vertical axis of the broad band dipole antenna; a first bottom radiator which is a planar polygonal shaped surface arranged parallel to the first top radiator and below the first top radiator; a first coupler which is a planar polygonal shaped surface arranged in close proximity to both the first top radiator and the first bottom radiator; N−1 top radiators where each next top radiator is a copy of the previous top radiator which is rotated by approximately 360°/N around the vertical axis, where N is an integer greater than one; N−1 bottom radiators where each next bottom radiator is a copy of the previous bottom radiator which is rotated by approximately 360°/N around the vertical axis; N−1 couplers where each next coupler is a copy of the previous coupler which is rotated by approximately 360°/N around the vertical axis; a first jumper which connects the bottom sides of each top radiator; and a second jumper which connects the top sides of each bottom radiator, wherein the broad band dipole antenna further comprises 2N capacitive elements, where each of the 2N capacitive elements has a limited surface size, wherein a top side of each top radiator is connected to one of the capacitive elements, and wherein a bottom side of each bottom radiator is connected to one of the capacitive elements.
2. The broad band dipole antenna of claim 1, wherein feed PCB connectors connect all segments of the top radiators.
3. The broad band dipole antenna of claim 1, wherein feed PCB connectors connect all segments of the bottom radiators.
4. The broad band dipole antenna of claim 1, wherein feed PCB connectors connect all segments of the top and bottom radiators to a feed coax.
5. A broad band dipole antenna comprising: a first top radiator which is a planar polygonal shaped surface arranged parallel to a vertical axis of the broad band dipole antenna; a first bottom radiator which is a planar polygonal shaped surface arranged parallel to the first top radiator and below the first top radiator; a first coupler which is a planar polygonal shaped surface arranged in close proximity to both the first top radiator and the first bottom radiator; N−1 top radiators where each next top radiator is a copy of the previous top radiator which is rotated by approximately 360°/N around the vertical axis, where N is an integer greater than one; N−1 bottom radiators where each next bottom radiator is a copy of the previous bottom radiator which is rotated by approximately 360°/N around the vertical axis; N−1 couplers where each next coupler is a copy of the previous coupler which is rotated by approximately 360°/N around the vertical axis; a first jumper which connects the bottom sides of each top radiator; and a second jumper which connects the top sides of each bottom radiator, wherein the broad band dipole antenna further comprises a Balun assembly located between N bottom radiators, wherein the first jumper and the second jumper are connected to corresponding first and second inputs of the Balun assembly, and wherein two outputs of the Balun are outputs of the broad band dipole antenna.
6. The broad band dipole antenna of claim 5, wherein feed PCB connectors connect all segments of the top radiators.
7. The broad band dipole antenna of claim 5, wherein feed PCB connectors connect all segments of the bottom radiators.
8. The broad band dipole antenna of claim 5, wherein feed PCB connectors connect all segments of the top and bottom radiators to a feed coax.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
(1) Having thus described some example embodiments in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
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DETAILED DESCRIPTION
(18) Some example embodiments now will be described more fully hereinafter with reference to the accompanying drawings, in which some, but not all example embodiments are shown. Indeed, the examples described and pictured herein should not be construed as being limiting as to the scope, applicability or configuration of the present disclosure. Rather, these example embodiments are provided so that this disclosure will satisfy applicable legal requirements. Like reference numerals refer to like elements throughout. Furthermore, as used herein, the term “or” is to be interpreted as a logical operator that results in true whenever one or more of its operands are true. As used herein, operable coupling should be understood to relate to direct or indirect connection that, in either case, enables functional interconnection of components that are operably coupled to each other.
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(20) Accordingly, example embodiments may provide a complex structure that facilitated a small antenna, having broad bandwidth, with operation similar to a theoretical dipole but without the assistance of a ground plane. Referring now to
(21) In an example embodiment, the Balun 76 may include a coaxial semi rigid cable 100 which outer diameter is 0.047 inch and length is about 1.7 inch, a coaxial semi rigid cable 101 which outer diameter is 0.086 inch and length is about 2.5 inch, a coaxial semi rigid cable 102 which outer diameter is 0.086 inch and length is about 1.5 inch. The inner conductor of cable 102 is not in use. The Balun further includes capacitor 103, wherein inner conductor 104 and outer conductor 105 of the first side of the cable 100 represent the first and second input of Balun 76 correspondingly. Inner conductor 104 and outer conductor 105 are connected to the jumper 62 and jumper 63 correspondingly. Outer conductor of the second side of cable 100 is connected to the outer conductor of the first side of the cable 101. Inner conductor of the second side of cable 100 is connected to the first terminal of the capacitor 103. The second terminal of the capacitor 103 is connected to the outer conductor on the first side of cable 102 and inner conductor of the first side of cable 101. The outer conductor of the second side of cable 102 is connected to the point on outer conductor of the cable 101 which remote on 1.5 inch from the first side of cable 101. Inner conductor 106 and outer conductor 107 of the second side of the cable 101 represent: a) the first and second output of Balun 76 correspondingly, and b) the first and second output of Broad band dipole antenna correspondingly.
(22) VSWR of Broad band dipole antenna across the band is given on
(23) Example embodiments, as depicted in details in
(24) Many modifications and other embodiments of the inventions set forth herein will come to mind to one skilled in the art to which these inventions pertain having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the inventions are not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Moreover, although the foregoing descriptions and the associated drawings describe exemplary embodiments in the context of certain exemplary combinations of elements and/or functions, it should be appreciated that different combinations of elements and/or functions may be provided by alternative embodiments without departing from the scope of the appended claims. In this regard, for example, different combinations of elements and/or functions than those explicitly described above are also contemplated as may be set forth in some of the appended claims. In cases where advantages, benefits or solutions to problems are described herein, it should be appreciated that such advantages, benefits and/or solutions may be applicable to some example embodiments, but not necessarily all example embodiments. Thus, any advantages, benefits or solutions described herein should not be thought of as being critical, required or essential to all embodiments or to that which is claimed herein. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.