Multi-band quadrifilar helix slot antenna
11437728 · 2022-09-06
Assignee
Inventors
Cpc classification
H01Q13/12
ELECTRICITY
International classification
H01Q13/12
ELECTRICITY
Abstract
A quadrifilar helix antenna may comprise a cylindrical body with a conductive layer. The antenna may further comprise a first slot disposed on the cylindrical body, wherein a length of the first slot is proportional to a first wavelength of a first signal. The antenna may further comprise a second slot disposed on the cylindrical body. The antenna may further comprise a first feed line crossing the first slot. The antenna may further comprise a second feed line crossing the second slot.
Claims
1. A quadrifilar helix antenna, comprising, a cylindrical body with a conductive layer; a first slot disposed on the cylindrical body, wherein a length of the first slot is proportional to a first wavelength of a first signal; a second slot disposed on the cylindrical body, wherein a length of the second slot is proportional to a second wavelength of a second signal, the second wavelength of the second signal is different from the first wavelength of the first signal, wherein the second slot is substantially parallel to the first slot and wherein the length of the second slot is different from the length of the first slot; a first feed line crossing the first slot; and a second feed line crossing the second slot.
2. The antenna of claim 1, wherein the cylindrical body is connected to an electrical ground.
3. The antenna of claim 1, wherein the length of the first slot is approximately half of the first wavelength of the first signal.
4. The antenna of claim 1, wherein the length of the first slot is approximately one quarter the first wavelength of the first signal.
5. The antenna of claim 1, wherein the cylindrical body is made of a flexible printed circuit board.
6. The antenna of claim 1, wherein the first slot extends around the cylindrical body, in a helical configuration, by less than one full turn.
7. The antenna of claim 6, wherein the first slot extends around the cylindrical body, in a helical configuration, by approximately one-half turn.
8. The antenna of claim 1, wherein the first slot is approximately 3 mm wide.
9. The antenna of claim 1, wherein the first slot is approximately 4 mm wide.
10. The antenna of claim 1, further comprising a base attached to the cylindrical body.
11. The antenna of claim 1, wherein the first feed line and second feed line are formed by a single feed line that crosses both the first and second slots.
12. The antenna of claim 1, wherein at least one of the first feed line and the second feed line forms a short circuit through a metalized member.
13. A half wavelength quadrifilar helix antenna, comprising, a cylindrical body with a conductive layer; a first slot disposed on the cylindrical body, wherein a length of the first slot is approximately one half of a first wavelength of a first signal; a second slot disposed on the cylindrical body, wherein a length of the second slot is approximately one half of a second wavelength of a second signal and wherein the length of the second slot is different from the length of the first slot; a first feed line crossing the first slot; and a second feed line crossing the second slot.
14. The antenna of claim 13, wherein the cylindrical body is connected to an electrical ground.
15. The antenna of claim 13, wherein at least one of the first slot and the second slot extends around the cylindrical body, in a helical configuration, by approximately one-half turn.
16. The antenna of claim 13, wherein at least one of the first feed line and the second feed line forms a short circuit through a metalized member.
17. A quarter wavelength quadrifilar helix antenna, comprising, a cylindrical body with a conductive layer; a base attached to a lower end of the cylindrical body; a first slot disposed on the cylindrical body, wherein a length of the first slot is approximately one quarter of a first wavelength of a first signal; a second slot disposed on the cylindrical body, wherein a length of the second slot is approximately one quarter of a second wavelength of a second signal and wherein the length of the second slot is different from the length of the first slot; a first feed line crossing the first slot; and a second feed line crossing the second slot.
18. The antenna of claim 17, wherein the cylindrical body is connected to an electrical ground.
19. The antenna of claim 17, wherein at least one of the first slot and the second slot extends around the cylindrical body, in a helical configuration, by approximately one-half turn.
20. The antenna of claim 17, wherein at least one of the first feed line and the second feed line forms a short circuit through a metalized member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
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where η is the intrinsic impedance of free space, having a value of 120π. For example, the complementary structure of a halfwave dipole with impedance of 73 Ohms is a slot with impedance of about 487 Ohms.
(13) As shown in
(14) The antenna body 201 may be made of materials with at least one conductive layer. In some embodiments, the antenna body 201 may be made of a cylindrical ceramic core coated with a conductive layer. In a preferred embodiment, the body of the antenna may be made of a double-sided flexible printed circuit board (“PCB”). Preferably, the substrate of the flexible PCB is made from polyimide with a dielectric constant of 3.5 and with thickness of 5-10 mil (where a “mil” is one thousandth of an inch). The one or more conductive layers of the flexible PCB may be made from copper or other conductive materials.
(15) The antenna body 201 further comprises a lower-band slot 210, a higher-band slot 220, and feed lines 230 and 240. Each of the slots may be extended, in a helical configuration, by approximately one-half turn around the antenna body 201. In the preferred embodiment, the lower-band slot 210 and higher-band slot 220 are etched, in a helical configuration, on the inner side of the flexible PCB. The feed lines 230 and 240 may be microstrip lines etched on the outer side of the flexible PCB. As explained below, the antenna body 201 comprises four lower-band slots, four higher-band slots, and eight feed lines, with all the slots and feed lines shown in
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(17) Each slot may be associated with a feed line. The lower-band slots 210-213 may be associated with feed lines 230-233, respectively. The higher-band slots 220-223 may be associated with feed lines 240-243, respectively. Preferably, each feed line forms a short circuit through a metalized member (e.g., a via) at the top end of each feed line. In some embodiments, the feed lines 240-243 may be combined with feed lines 230-233, respectively, to form a four-port antenna, as shown in
(18) Each of the feed lines 230-233 may be placed across the associated slot and close to one end of the slot. Preferably, a feed line may be placed close to the lower end of a slot because the impedance caused by the slot is lower (e.g., 50 Ohms) at the lower end of the slot due to the sinusoidal distribution of the electric field along the slot. For example, in a preferred embodiment, each of the feed lines 230-233 may be routed so an end is perpendicular to an associated slot and about 8.5 mm from the lower end of the associated slot.
(19) Similarly, each of the feed lines 240-243 may be placed across the associated slot and close to one end of the slot. For example, in a preferred embodiment, each of the feed lines 240-243 may be routed so an end is perpendicular to the associated slot and about 1.4 mm from the lower end of the associated slot.
(20) Preferably, each of the feed lines 230-233 and 240-243 may match the impedance of the associated slot (e.g., 50 Ohms). For example, each of the feed lines may be a 0.6 mm wide strip on a 10 mil flexible PCB. The feeding network connected to the feed lines may simultaneously receive signals with equal or approximately equal amplitude but having 0°, 90°, 180°, and 270° phase differentials.
(21) While the height of the antenna body 201 and lengths of the slots on the antenna body 201 are approximately half of the wavelength of signals the antenna 200 is designed to receive, integer multiples of the height and lengths are also in accordance with the disclosed embodiments of the invention. For example, those skilled in the art will appreciate that an antenna with doubled height (e.g., 2110 mm), doubled lower-band slot lengths (e.g., 2115 mm), and doubled higher-band slot lengths (e.g., 2*80 mm) is in accordance with the disclosed embodiments of the invention. The same is true for other integer multiples, such as 3×, 4×, 5×, etc. While four sets of slots are discussed in detail in this disclosure, those skilled in the art will appreciate that the antennas with six, eight, or more sets of slots are in accordance with the disclosed embodiments of the invention.
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(26) Etched on the antenna body 701 are slots with open top ends, comprising a lower-band slot 710 and a higher-band slot 720. Each of the slots may be rolled approximately by a quarter turn around the antenna body 701. The length of each of the slots may be approximately quarter of wavelength of signals it is designed to receive. In a preferred embodiment, the length of the lower-band slot 710 may be 63 mm, and the width may be 4 mm. The length of the higher-band slot 720 may be 42.5 mm, and the width may be 3 mm. Three additional similar or identical lower-band slots and three additional higher-band slots are spaced around the antenna at intervals approximately equal to one quarter of the circumference of the antenna. In some embodiments, each of the slots is associated with a feed line. Preferably, two feedlines are separate as shown in
(27) The base 702 is connected to the lower end of the antenna body 701. In some embodiments, the base 702 may be a plate with a conductive layer connected to ground. Those skilled in the art will appreciate that the antenna body 701 is also connected to ground at least through its connection to grounded base 702. In some embodiments, the base 702 may have a feeding network attached to the bottom of the base 702 (although this particular arrangement for the feeding network is not shown). In some embodiments, the base 702 may be made of similar materials as the antenna body 702.
(28) While the height of the antenna body 701 and length of the associated slots are approximately one quarter of the wavelength of signals the antenna is designed to receive, odd integer multiples of the height and the length are equally applicable to the antenna in accordance with the disclosed embodiments of the invention. For example, those skilled in the art will appreciate that antenna with tripled height (e.g., 3*45 mm), tripled lower-band slot lengths (e.g., 3*63 mm), and tripled higher-band slot lengths (e.g., 3*42.5 mm) is in accordance with the disclosed embodiments of the invention. The same is true for other odd integer multiples, such as 5×, 7×, 9×, etc. While four sets of slots are discussed in detail in this disclosure, those skilled in the art will appreciate that the antennas with six, eight, or more sets of slots are in accordance with the disclosed embodiments of the invention.
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(32) The embodiments of the present invention relate generally to a novel design for a dual-band or multiband quadrifilar helix antenna structure. While the preferred embodiments represent implementations primarily in GNSS survey applications, the design may be equally applied to other applications. Those skilled in the art will appreciate that, similar to conventional dipole or monopole antennas, the slot antenna can also be loaded with a higher dielectric constant material to reduce its size.
(33) As used in this application, the term “approximately” refers to a variation of up to +/−5%. While certain embodiments have been described, these embodiments are presented by way of example only. They are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of forms consistent with the disclosed principles without departing from the spirit of the inventions. The accompanying claims and their equivalents set forth the scope of the inventions.