Broadband helical antenna with cutoff pattern
09837709 ยท 2017-12-05
Assignee
Inventors
- Anton Pavlovich STEPANENKO (Moscow, RU)
- Andrey Vitalievich ASTAKHOV (Moscow, RU)
- Dmitry Vitalievich Tatarnikov (Moscow, RU)
- IVAN MIROSLAVOVICH CHERNETSKIY (Moscow, RU)
Cpc classification
H01Q1/36
ELECTRICITY
International classification
H01Q1/36
ELECTRICITY
H01Q25/00
ELECTRICITY
H01Q21/24
ELECTRICITY
Abstract
A broadband quadruple helical circularly-polarized antenna for receiving GNSS signals comprises an excitation circuit and a set of quadruple spiral elements. Each quadruple spiral element consists of four conductors. Each conductor is a one spiral turn of the quadruple spiral element. Said conductors have equal winding angle. The winding angle of all conductors does not change in the same quadruple spiral element. Conductors of neighboring (longitudinally) quadruple spiral elements have different winding angles. The antenna provides a sharp drop in AP at angles near the horizon and a small AP level in the lower hemisphere.
Claims
1. An antenna for receiving circularly polarized signals, the antenna comprising: a hollow dielectric cylinder oriented along a vertical axis; four spiral conducting elements wrapped around the cylinder; the four spiral conducting elements divided into at least three longitudinal sections, wherein the conducting elements in each section have a constant winding angle around the cylinder, wherein the winding angle of all of the conducting elements in the same longitudinal section is the same, and wherein neighboring longitudinal sections have different winding angles relative to each other; and an excitation circuit connected to the conducting elements, wherein the antenna provides a down/up ratio
2. The antenna of claim 1, wherein an amplitude antenna pattern is symmetrical relative to the vertical axis and its maximum is in a positive direction of the vertical axis.
3. The antenna of claim 1, wherein the excitation circuit is above the cylinder.
4. The antenna of claim 1, wherein each conducting element of each longitudinal section is one spiral turn around the cylinder.
5. The antenna of claim 1, wherein each conducting element of at least one of the longitudinal sections is one spiral turn around the cylinder.
6. The antenna of claim 1, wherein each conducting element has first and second ends, and the first ends of the conducting elements of a top longitudinal section are connected to the excitation circuit, and the second conductor ends of the conducting elements of a bottom longitudinal section are open.
7. The antenna of claim 1, wherein each conducting element has first and second ends, and first and second conductor ends of neighboring quadruple spiral element are rotationally aligned on the cylinder so as to connect to each other.
8. The antenna of claim 1, wherein each conducting element has first and second ends, and first and second conductor ends of neighboring quadruple spiral element are rotationally mis-aligned on the cylinder, and are connected to each other with circular arc elements that are oriented transverse to the vertical axis.
9. The antenna of claim 1, further comprising a power cable connected to the excitation circuit and located inside the cylinder.
10. An antenna comprising: a dielectric cylinder having a longitudinal axis; four spiral conductors wrapped around the cylinder; the four spiral conductors divided into at least three longitudinal sections, wherein the conductors in each section have a constant winding angle around the cylinder, wherein the winding angle of all of the conductors in the same longitudinal section is the same, and wherein neighboring longitudinal sections have different winding angles relative to each other; and an excitation circuit connected to the conductors, wherein the antenna provides a down/up ratio
11. An antenna comprising: a dielectric cylinder having a longitudinal axis; at least three spiral conductors wrapped around the cylinder; the at least three spiral conductors divided into top and bottom longitudinal sections, wherein the spiral conductors in each section have a constant winding angle around the cylinder, wherein a winding angle of all of the conductors in the same longitudinal section is the same, and wherein a winding angle of the top longitudinal section is different from a winding angle of the bottom longitudinal section; a central conducting portion connecting the top and bottom longitudinal sections, wherein conductors in the central conducting portion are arranged circularly around the dielectric cylinder; and an excitation circuit connected to the conductors, wherein the antenna provides a down/up ratio
Description
BRIEF DESCRIPTION OF THE ATTACHED FIGURES
(1) The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention.
(2) In the drawings:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings.
(13) A wideband circularly-polarized antenna is proposed to receive GNSS signals. According to
(14) The excitation circuit 102 is located above, and, thereby, the backfire operation mode is implemented. The power cable 103 is in the center of the antenna. The upper end of the power cable 103 is connected to the excitation circuit 102. The lower end of the power cable 103 is connected to the input of a low-noise amplifier (the LNA is not shown).
(15) The excitation circuit is well-known and is an equal-amplitude power splitter with one input and four outputs. The phase difference between neighboring outputs is 90 degrees. Each output of the excitation circuit is connected to a corresponding conductor of the first (upper) quadruple spiral element, thereby providing excitation of a right hand circular polarization (RHCP) wave in the positive direction of the vertical antenna axis z. The antenna pattern has maximum in this direction.
(16) Each of quadruple spiral elements consists of four conductors wound at the same angle and forming a quadruple spiral whose axis is aligned with the z axis. Each conductor is one spiral turn of the quadruple spiral. The winding angle for the conductors is the same for the entire quadruple spiral element.
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(18) Each conductor has a first (top) and second (bottom) ends. From
(19) The exception of this rule is conductors of the first (top) and the last (bottom) elements. First (top) conductor ends of the first quadruple spiral element are connected to the excitation circuit, and second (bottom) conductor ends of the last quadruple spiral element are open.
(20) Thus, the antenna includes a set of two or more quadruple spiral elements. A feature of the design is the same winding angle for the conductors of the same spiral elements, while the conductors of the neighboring spiral elements have different winding angles.
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(22) First and second conductor ends of the neighboring spiral elements can mismatch.
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for different embodiments. Embodiments 2 and 3 are seen to provide a DU (=10) ratio at least 15 dB in the whole frequency range from 1164-1610 MHz. Embodiment 1 produces the worst ratio DU (=10) in the high-frequency part of the range, but the actual antenna has the smallest dimensions, of the three embodiments discussed herein.
(27) Having thus described a preferred embodiment, it should be apparent to those skilled in the art that certain advantages of the described method and apparatus have been achieved.
(28) It should also be appreciated that various modifications, adaptations, and alternative embodiments thereof may be made within the scope and spirit of the present invention. The invention is further defined by the following claims.