Multibeam Antenna
20220368037 · 2022-11-17
Inventors
Cpc classification
H01Q9/28
ELECTRICITY
H01Q19/30
ELECTRICITY
H01Q25/00
ELECTRICITY
International classification
Abstract
A multibeam antenna including a substrate, and further includes an antenna element, a first guiding apparatus, and a second guiding apparatus disposed on the substrate. The antenna element includes a first pole configured to receive a feeding signal and a second pole that is grounded. The first guiding apparatus enables a first beam generated by the antenna element to radiate in a first direction, and the second guiding apparatus enables a second beam generated by the antenna element to radiate in a second direction. A phase center of the antenna element is at an intersecting point of a first axis and a second axis, the first axis passing through a phase center of the first guiding apparatus and parallel to the first direction, and the second axis passing through a phase center of the second guiding apparatus and parallel to the second direction.
Claims
1. A multibeam antenna, comprising: a substrate; an antenna element; a first guiding apparatus; and a second guiding apparatus; wherein the antenna element, the first guiding apparatus, and the second guiding apparatus are disposed on the substrate; wherein the antenna element comprises a first pole and a second pole, wherein the first pole is configured to receive a feeding signal, and wherein the second pole is grounded; wherein the first guiding apparatus is configured to enable a first beam generated by the antenna element to radiate in a first direction, wherein the second guiding apparatus is configured to enable a second beam generated by the antenna element to radiate in a second direction; and wherein a phase center of the antenna element is located at an intersecting point of a first axis and a second axis, wherein the first axis passes through a phase center of the first guiding apparatus and is parallel to the first direction, and wherein the second axis passes through a phase center of the second guiding apparatus and is parallel to the second direction.
2. The multibeam antenna according to claim 1, wherein the first guiding apparatus is one of a director or a reflector and wherein the second guiding apparatus is one of a director or a reflector.
3. The multibeam antenna according to claim 1, wherein the multibeam antenna further comprises a feeder, wherein the first pole is disposed on a first surface of the substrate, wherein the second pole is disposed on a second surface of the substrate, wherein an inner conductor of the feeder is connected to the first pole, and wherein an outer conductor of the feeder is connected to the second pole.
4. The multibeam antenna according to claim 1, wherein the multibeam antenna further comprises a feeder, and wherein the first pole, the second pole, and the feeder are disposed on a first surface of the substrate or a second surface of the substrate.
5. The multibeam antenna according to claim 1, wherein the first guiding apparatus is disposed on a first surface of the substrate or a second surface of the substrate, and wherein the second guiding apparatus is disposed on the first surface of the substrate or the second surface of the substrate.
6. The multibeam antenna according to claim 1, wherein the antenna element is disposed along an angle bisector of an angle between the first axis and the second axis.
7. The multibeam antenna according to claim 1, wherein the first axis is perpendicular to the second axis.
8. The multibeam antenna according to claim 1, wherein a resonance length of the antenna element is different from a length of the first guiding apparatus and is different from a length of the second guiding apparatus.
9. The multibeam antenna according to claim 1, wherein the multibeam antenna further comprises a third guiding apparatus and a fourth guiding apparatus, wherein the third guiding apparatus is one of a director or a reflector and wherein the fourth guiding apparatus is one of a director or a reflector, wherein the third guiding apparatus is configured to enable the first beam to radiate in the first direction, wherein the fourth guiding apparatus is configured to enable the second beam to radiate in the second direction, wherein the antenna element is located between the first guiding apparatus and the third guiding apparatus, and wherein the antenna element is located between the second guiding apparatus and the fourth guiding apparatus.
10. The multibeam antenna according to claim 1, wherein the first guiding apparatus is a director, wherein the multibeam antenna further comprises at least one first director, and wherein the first guiding apparatus and the at least one first director are successively disposed along the first direction.
11. The multibeam antenna according to claim 1, wherein the type of the second guiding apparatus is a director, wherein the multibeam antenna further comprises at least one second director, and wherein the second guiding apparatus and the at least one second director are successively disposed along the second direction.
12. An antenna system, comprising: an antenna element, comprising a first pole and a second pole; a first guiding apparatus; and a second guiding apparatus; wherein at one of the first pole or the second pole is configured to receive a feeding signal, and wherein an other one of the first pole of the second pole is grounded; wherein the first guiding apparatus is configured to enable a first beam generated by the antenna element to radiate in a first direction, wherein the second guiding apparatus is configured to enable a second beam generated by the antenna element to radiate in a second direction; and wherein a phase center of the antenna element is located at an intersecting point of a first axis and a second axis, wherein the first axis passes through a phase center of the first guiding apparatus and is parallel to the first direction, and wherein the second axis passes through a phase center of the second guiding apparatus and is parallel to the second direction.
13. The antenna system according to claim 12, wherein the first guiding apparatus is one of a director or a reflector and wherein the second guiding apparatus is one of a director or a reflector.
14. The antenna system according to claim 12, further comprising a feeder and a substrate; wherein the first pole is disposed on a first surface of the substrate, wherein the second pole is disposed on a second surface of the substrate, wherein an inner conductor of the feeder is connected to the first pole, and wherein an outer conductor of the feeder is connected to the second pole.
15. The antenna system according to claim 12, wherein the first guiding apparatus is disposed on a first surface of a substrate or a second surface of the substrate, and wherein the second guiding apparatus is disposed on the first surface of the substrate or the second surface of the substrate.
16. The antenna system according to claim 12, wherein the antenna element is disposed along an angle bisector of an angle between the first axis and the second axis.
17. The antenna system according to claim 12, wherein a resonance length of the antenna element is different from a length of the first guiding apparatus and is different from a length of the second guiding apparatus.
18. The antenna system according to claim 12, wherein the multibeam antenna further comprises a third guiding apparatus and a fourth guiding apparatus, wherein the third guiding apparatus is one of a director or a reflector and wherein the fourth guiding apparatus is one of a director or a reflector, wherein the third guiding apparatus is configured to enable the first beam to radiate in the first direction, wherein the fourth guiding apparatus is configured to enable the second beam to radiate in the second direction, wherein the antenna element is located between the first guiding apparatus and the third guiding apparatus, and wherein the antenna element is located between the second guiding apparatus and the fourth guiding apparatus.
19. The antenna system according to claim 12, wherein the first guiding apparatus is a director, wherein the multibeam antenna further comprises at least one first director, and wherein the first guiding apparatus and the at least one first director are successively disposed along the first direction.
20. The antenna system according to claim 12, wherein the type of the second guiding apparatus is a director, wherein the multibeam antenna further comprises at least one second director, and wherein the second guiding apparatus and the at least one second director are successively disposed along the second direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0031] Embodiments of this application provide a multibeam antenna. The multibeam antenna can implement beam coverage in at least two directions by feeding through at only one end. There is no need to dispose a complex feeding network, thereby facilitating miniaturization of the multibeam antenna. In this specification, the claims, and the accompanying drawings of this application, terms “first”, “second”, “third”, “fourth”, and the like (if existent) are intended to distinguish between similar objects but do not necessarily indicate a specific order or sequence. It should be understood that the data termed in such a way are interchangeable in an appropriate circumstance, so that the embodiments described herein can be implemented in another order than the order illustrated or described herein. Moreover, terms “include”, “comprise”, and any other variants thereof mean to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a list of steps or units is not necessarily limited to those steps or units, but may include other steps or units not expressly listed or inherent to such a process, method, product, or device.
[0032]
[0033] It should be noted that, after an electromagnetic wave radiated by the antenna element 102 leaves the antenna element 102 for a specific distance, an equiphase surface of the electromagnetic wave may be approximately a spherical surface, and a spherical center of the spherical surface is the phase center of the antenna element 102. The phase center should theoretically be a point. That is, theoretically, it may be considered that a signal radiated by the antenna element 102 is radiated outwards with this point as a circle center. However, in actual application, such perfect practice is usually impossible. Therefore, the phase center of the antenna element may be understood as an area. In addition, phase centers of the first guiding apparatus 103 and the second guiding apparatus 104 are similar, except that the first guiding apparatus 103 and the second guiding apparatus 104 do not receive a feeding signal, because their phase centers are generated by self-resonance. It can be understood that, if the antenna element 102, the first guiding apparatus 103, and the second guiding apparatus 104 all have regular geometric shapes, geometric centers thereof are the phase centers.
[0034] Optionally, the first guiding apparatus 103 and the second guiding apparatus 104 each are configured to enhance radiation of the antenna in a specific direction. A type of the first guiding apparatus 103 and a type of the second guiding apparatus 104 each include a director and a reflector. After receiving the feeding signal, the antenna element 102 generates a current component perpendicular to each radiation direction. A current component in a specific direction excites an induced current component on a reflector or a director along the same direction. A reflector enables a phase lead of an induced current component on the reflector to excite the antenna element 102. A director enables a phase lag of an induced current component on the director to excite the antenna element 102. A length of a reflector is greater than a resonance length of the antenna element 102. A length of a director is less than the resonance length of the antenna element 102. A beam radiation direction under an effect of a reflector is a direction from the reflector to the antenna element 102. A beam radiation direction under an effect of a director is a direction from the antenna element 102 to the director. For example, the first guiding apparatus 103 and the second guiding apparatus 104 shown in
[0035] It can be understood that, more guiding apparatuses may be further disposed on the basis of the first guiding apparatus 103 and the second guiding apparatus 104. A plurality of beams have different radiation directions, and are superposed in space to form multibeam radiation. Using the structure of the multibeam antenna shown in
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[0038] Optionally, the first guiding apparatus 103 and the second guiding apparatus 104 both may have regular geometric shapes, for example, may be strip reflectors shown in
[0039] Optionally, a shape of the antenna element 102 is not limited in this application. The antenna element 102 may be hyphen-shaped, as shown in
[0040] Optionally,
[0041] Optionally, the antenna element 102 may be disposed along an angle bisector of the included angle between first axis and the second axis. In this case, gain values of the two beams are approximate. For example, the antenna element 102 in
[0042] Optionally,
[0043] Optionally,
[0044] Optionally,
[0045] Optionally, the first guiding apparatus 103 and the second guiding apparatus 104 may be disposed on the upper surface of the substrate 101, may be disposed on the lower surface of the substrate 101, or may be fixed on four edges of the substrate 101. This is not specifically limited herein.
[0046] In the embodiments of this application, the first guiding apparatus is configured to enable the first beam generated by the antenna element to radiate in the first direction, and the second guiding apparatus is configured to enable the second beam generated by the antenna element to radiate in the second direction. The multibeam antenna can implement beam coverage in at least two directions by feeding through at only one end. There is no need to dispose a complex feeding network, thereby facilitating miniaturization of the multibeam antenna.
[0047] It should be noted that the foregoing embodiments are merely intended to describe the technical solutions of this application other than to limit this application. Although this application is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some technical features thereof, without departing from the spirit and scope of the technical solutions of the embodiments of this application.