Dual-polarized wide-bandwidth antenna
11189939 · 2021-11-30
Assignee
Inventors
Cpc classification
H01Q21/28
ELECTRICITY
H01Q21/08
ELECTRICITY
H01Q1/36
ELECTRICITY
H01Q21/24
ELECTRICITY
International classification
H01Q1/42
ELECTRICITY
H01Q1/36
ELECTRICITY
Abstract
The invention relates to a low profile antenna, operating over a wide range of frequencies. The dual-polarized wideband antenna consists of: radiating elements, ground plane, metallic walls, coaxial cables, split-ring slots. The antenna is fed by coaxial cables at feed points, which are surrounded by split-ring slots. The antenna can be utilized as an element in an array to provide particular radiation pattern.
Claims
1. A dual-polarized wideband antenna with split-ring slots surrounding feed points, comprising: four identical radiating elements, ground plane, metallic walls, coaxial cables, split-ring slots, which are configured such that: the four identical radiating elements are etched on a face of a printed-circuit board using a thin substrate material with low permittivity and dielectric loss (ε.sub.r=2.2, tan δ=0.0009); the four identical radiating elements are placed above the ground plane with a height of a quarter wavelength of a centre frequency of an operating band of the antenna; the metallic walls are raised perpendicular to the ground plane forming a cavity below the four identical radiating elements with an optimum height of 0.2 wavelength of the centre frequency; the coaxial cables penetrating through the ground plane and the substrate material to feed the antenna by connection of separate ones of said coaxial cables to each of the four identical radiating elements; an inner conductor of the coaxial cables connecting to the respective radiating elements; the split-ring slots surroundine the feed points.
2. A dual-polarized wideband antenna according to claim 1, with optimum dimensions listed below: wherein the antenna is fed in pairs of opposite radiating elements at the feed points of the radiating elements; wherein each radiating element of the radiating elements is shaped as a polygon having eight vertices, V1, V2, V3, V4, V5, V6, V7 and V8, said vertices numbering in clockwise fashion beginning with V1 being the most distal from a connection location of an individual one of said coaxial cables to respective radiating element, wherein the coordinates of the vertex of the radiating elements are: V1V2=4.2 mm, V2V3=2.1 mm, V3V4=3.9 mm, V4V5=1.9 mm, V5V6=1.9 mm, V6V7=3.7 mm, V7V8=2.1 mm, V8V1=4.2 mm; and a length of the substrate material of 25 mm; a length of the ground plane of 40 mm; a distance between two said feed points of a pair of the radiating elements of 3.15 mm; a gap of the split-ring slot of 0.2 mm; a diameter of the split-ring slot of 0.51 mm; a spacing between the radiating elements and the ground plane of 6.4 mm; the metallic-wall height of 4.5 mm; a thickness of the substrate material of 0.508 mm.
3. A dual-polarized wideband antenna according to claim 2 employed as an element in an array to synthesize a particular radiation pattern; the array using plural said elements in a row and column configuration.
4. A dual-polarized wideband antenna according to claim 3 wherein said metallic walls extend around all said plural elements.
5. A dual-polarized wideband antenna according to claim 2 employed as an element in row of plural said elements.
6. A dual-polarized wideband antenna according to claim 5 wherein the number of said plural elements is 16.
7. A dual-polarized wideband antenna according to claim 5 wherein said metallic walls extend around all said plural elements.
8. A dual-polarized wideband antenna according to claim 1 employed as an element in an array to synthesize a particular radiation pattern; the array using plural said elements in a row and column configuration.
9. A dual-polarized wideband antenna according to claim 8 wherein said metallic walls extend around all said plural elements.
10. A dual-polarized wideband antenna according to claim 1, wherein the substrate material comprises Rogers RO5880.
11. A dual-polarized wideband antenna according to claim 1 employed as an element in a row of plural said elements.
12. A dual-polarized wideband antenna according to claim 11 wherein the number of said plural elements is 16.
13. A dual-polarized wideband antenna according to claim 11 wherein said metallic walls extend around all said plural elements.
14. A dual-polarized wideband antenna according to claim 1, wherein the walls define an enclosed space under the printed-circuit board.
15. A dual-polarized wideband antenna according to claim 1, wherein the radiating elements are arranged as 4 parts in a cruciform, flower petal arrangement.
16. A dual-polarized wideband antenna according to claim 1, wherein the radiating elements are etched only on a top face of the printed-circuit board.
17. A dual-polarized wideband antenna according to claim 1, wherein the radiating elements comprise copper elements.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(8) The following describes the invention with explanations and images.
(9)
(10) The antenna includes the radiating elements 102 etched on the dielectric substrate 101. The radiating elements are four petals copper flower-shaped patches printed on the dielectric substrate 101. The four petals are identical, generated by a 90° rotation around the axis perpendicular to the substrate plane. Each petal is bounded by a polygon having vertices V1-V8. Initially, V1-V8 are the vertices of the polygon inscribed in a circle having the diameter of V1-V5 distance. The position of each vertex is optimized to obtain the best impedance matching and operating bandwidth. Thanks to the optimized shape, the antenna is composed of multi-segments corresponding to many resonant frequencies.
(11) The dielectric substrate 101 is made of Rogers RO5880 with the low relative permittivity and loss tangent (ε.sub.r=2.2, tan δ=0.0009). Moreover, for reducing dielectric loss, the thickness of the substrate (t) is also small.
(12) The height between the printed-circuit board and the ground plane 103 is initially assigned of a quarter wavelength at the center frequency (λ.sub.c/4) of the operating frequency band (i.e. 13 GHz). In the design progress, the height (H) is optimized to satisfy the requirements of antenna bandwidth and radiation pattern. After all, the H value is chosen of 0.27 λ.sub.c.
(13) The ground plane 103 is employed to focus the radiated power into perpendicular direction. Theoretically, a larger ground plane 103 results in a higher radiated power. However, if the distance between the printed-circuit board and the ground plane 103 becomes considerable, the current density on the ground plane 103 is small and it is reasonable to reduce ground size.
(14) Additionally, to avoid the distortion of antenna radiation patterns at high frequencies, metallic walls 104 are perpendicularly built to the ground plane, forming a cavity enclosed in the space under the printed-circuit board antenna. The cavity height H.sub.w is figured out to be 0.2 λ.sub.c.
(15) Referred to
(16) The antenna is dual-polarized provided that it is fed in pairs of opposite petals (two petals forming an angle of 180 degree).
(17) In this case, the signals propagating along the corresponding coaxial cable must be out-of-phase (or 180-degree different).
(18) The feed point in each radiating element 102 is surrounded by a split-ring slot 106. The signal from the coaxial cable 105 is impeded by the slot 106 creating more inductance before flowing into the antenna. The longer the gap of the slot 106 is, the more inductance it provides. The inductance cancels out the intrinsic capacitance of the radiating elements 102, hence, the imaginary of the impedance of the antenna Im(Z.sub.ant) decreases, leaving real part Re(Z.sub.ant) of that closer to the characteristic impedance Z.sub.0 of the system. Therefore, the antenna is better impedance matched, thus, has a better reflection coefficient.
(19) The fractional bandwidth that is defined as the following formula:
(20)
where f.sub.max and f.sub.min are respectively the lowest and highest frequencies at which the reflection coefficients are lower than a desired value (ex. −10 dB).
(21)
(22) At frequencies below 18 GHz, the radiation pattern of the antenna is depicted in
(23) An antenna with the above technical descriptions has a good reflection coefficient and radiation pattern in the range from 8 GHz to 18 GHz. The following table describes an example of antenna with such specifications, thus, the antenna works well in the system.
(24) The details of the antenna are listed in the Tab. 1 below
(25) TABLE-US-00001 Coordinates of the vertex of the radiating elements (unit: mm) V1V2 V2V3 V3V4 V4V5 V5V6 V6V7 V7V8 V8V1 4.2 2.1 3.9 1.9 1.9 3.7 2.1 4.2 Dimensions of the antenna (unit: mm) L L.sub.g F s D H H.sub.w t 25 40 3.15 0.2 0.51 6.4 4.5 0.508
(26) Where: L is the length of the substrate 101; L.sub.g is the length of the ground plane 103; F is the distance between the two feed point of the pair; s is gap of the split-ring slot 106; D is the diameter of the split-ring slot 106; H is the height from the ground plane 103 to the substrate 101; H.sub.w is the height of the metallic wall 104; T is the thickness of the substrate 101.
(27) The antenna elements can be used in a different fashion that multiple elements be employed in an array configuration to provide required gain and radiation pattern for the systems. The radiation pattern of the array depends on the number of the antenna. Each element has its maximum gain of 7.5 dBi.
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(29) The number of elements can increase arbitrarily, however, this change causes the unwanted sidelobes that distort the radiation pattern. Hence, consideration must be carefully taken to trade off the array's radiation pattern with sidelobe levels.