Antenna unit and antenna array
11322858 · 2022-05-03
Assignee
Inventors
- Qingming XIE (Shanghai, CN)
- Long Li (Xi'an, CN)
- Guoliang Cao (Shanghai, CN)
- Rui Shi (Shanghai, CN)
- Yang GENG (Shanghai, CN)
Cpc classification
H01Q15/0026
ELECTRICITY
H01Q15/0086
ELECTRICITY
International classification
Abstract
An antenna unit and an antenna array. The antenna unit includes M layers of cross metal patches, M layers of dielectric substrates, and a metal ground layer, where M is an integer greater than 1. In addition, an i.sup.th-layer dielectric substrate is disposed between an i.sup.th-layer cross metal patch and an (i+1).sup.th-layer cross metal patch. The i.sup.th-layer cross metal patch, the i.sup.th-layer dielectric substrate, and the (i+1).sup.th-layer cross metal patch are sequentially stacked, and i is an integer ranging from 1 to M−1. An M.sup.th-layer cross metal patch, an M.sup.th-layer dielectric substrate, and the metal ground layer are sequentially stacked. The antenna unit and the antenna array formed by units may have a good polarization feature, a relatively wide operating bandwidth, and a relatively good phase shift feature.
Claims
1. An antenna unit, comprising: M layers of cross metal patches, M layers of dielectric substrates, and a metal ground layer, wherein M is an integer greater than 1; an i.sup.th-layer dielectric substrate is disposed between an i.sup.th-layer cross metal patch and an (i+1).sup.th-layer cross metal patch, and the i.sup.th-layer cross metal patch, the i.sup.th-layer dielectric substrate and the (i+1).sup.th-layer cross metal patch are sequentially stacked in a first sequential stack, wherein i is an integer ranging from 1 to M−1; and an M.sup.th-layer cross metal patch, an M.sup.th-layer dielectric substrate, and the metal ground layer are sequentially stacked in a second sequential stack; wherein each element in each of the first sequential stack and the second sequential stack is disposed entirely above or entirely below adjoining elements in the first sequential stack or the second sequential stack.
2. The antenna unit according to claim 1, wherein projection, on a horizontal plane, of a geometric center of each of the M layers of cross metal patches overlaps, and the horizontal plane is a plane parallel to the metal ground layer.
3. The antenna unit according to claim 1, wherein shapes of different layers of cross metal patches of the M layers of cross metal patches are the same; or shapes of different layers of cross metal patches of the M layers of cross metal patches are not completely the same; or shapes of different layers of cross metal patches of the M layers of cross metal patches are completely different.
4. The antenna unit according to claim 3, wherein when the shapes of the different layers of cross metal patches of the M layers of cross metal patches are the same, sizes of the different layers of cross metal patches of the M layers of cross metal patches are the same; or sizes of the different layers of cross metal patches of the M layers of cross metal patches are not completely the same; or sizes of the different layers of cross metal patches of the M layers of cross metal patches are completely different.
5. The antenna unit according to claim 3, wherein when the shapes of the different layers of cross metal patches of the M layers of cross metal patches are the same, an area of the i.sup.th-layer cross metal patch is less than an area of the (i+1).sup.th-layer cross metal patch.
6. The antenna unit according to claim 1, wherein the cross metal patch comprises two rectangular metal patches that are perpendicular to each other.
7. The antenna unit according to claim 6, wherein the two rectangular metal patches that are perpendicular to each other are integrally formed.
8. The antenna unit according to claim 1, wherein thicknesses of different layers of dielectric plates of the M layers of dielectric substrates are the same; or thicknesses of different layers of dielectric plates of the M layers of dielectric substrates are not completely the same; or thicknesses of different layers of dielectric plates of the M layers of dielectric substrates are completely different.
9. The antenna unit according to claim 1, wherein the antenna unit is an integrally formed multi-layer printed circuit board; or the antenna unit is formed by bonding a plurality of single-layer printed circuit boards; or the antenna unit is formed by bonding a plurality of single-layer printed circuit boards and a plurality of multi-layer printed circuit boards.
10. An antenna array, comprising an antenna unit, the antenna unit comprising M layers of cross metal patches, M layers of dielectric substrates, and a metal ground layer, wherein M is an integer greater than 1; an i.sup.th-layer dielectric substrate is disposed between an i.sup.th-layer cross metal patch and an (i+1).sup.th-layer cross metal patch, and the i.sup.th-layer cross metal patch, the i.sup.th-layer dielectric substrate and the (i+1).sup.th-layer cross metal patch are sequentially stacked in a first sequential stack, wherein i is an integer ranging from 1 to M−1; and an M.sup.th-layer cross metal patch, an M.sup.th-layer dielectric substrate, and the metal ground layer are sequentially stacked in a second sequential stack; wherein each element in each of the first sequential stack and the second sequential stack is disposed entirely above or entirely below adjoining elements in the first sequential stack or the second sequential stack.
11. The antenna array according to claim 10, wherein the antenna array comprises a plurality of antenna units, and the plurality of antenna units are periodically arranged.
12. The antenna array according to claim 11, wherein a spacing between adjacent antenna units of the plurality of antenna units is D, and D is greater than or equal to 0.3 times an operating wavelength and is less than or equal to 0.6 times the operating wavelength.
13. An electronic device, comprising an antenna unit, the antenna unit comprising M layers of cross metal patches, M layers of dielectric substrates, and a metal ground layer, wherein M is an integer greater than 1; an i.sup.th-layer dielectric substrate is disposed between an i.sup.th-layer cross metal patch and an (i+1).sup.th-layer cross metal patch, and the i.sup.th-layer cross metal patch, the i.sup.th-layer dielectric substrate and the (i+1).sup.th-layer cross metal patch are sequentially stacked in a first sequential stack, wherein i is an integer ranging from 1 to M−1; and an M.sup.th-layer cross metal patch, an M.sup.th-layer dielectric substrate, and the metal ground layer are sequentially stacked in a second sequential stack; wherein each element in each of the first sequential stack and the second sequential stack is disposed entirely above or entirely below adjoining elements in the first sequential stack or the second sequential stack.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(14) To make the objectives, technical solutions, and advantages of the embodiments clearer, the following further describes the embodiments in detail with reference to the accompanying drawings.
(15) A terminal, also referred to as user equipment (UE), is a device providing voice and/or data connectivity to a user, for example, a handheld device or an in-vehicle device with a wireless connection function. For example, a common terminal includes a mobile phone, a tablet computer, a notebook computer, a palmtop computer, a mobile internet device (MID), a wearable device, and customer premises equipment (CPE) such as a smartwatch, a smart band, or a pedometer.
(16) A radio access network (RAN) device, also referred to as a base station, is a device for connecting a terminal to a wireless network, and includes but is not limited to a transmission reception point (TRP), an evolved NodeB (evolved Node B or eNB), a radio network controller (RNC), a NodeB (Node B or NB), a base station controller (BSC), a base transceiver station (BTS), a home base station (for example, a home evolved NodeB, or a home Node B, HNB), and a baseband unit (BBU). In addition, an access network device for next-generation mobile communication, a Wifi access point (AP), and the like, may be further included.
(17) “A plurality of” refers to two or more, and another quantifier is similar to this. The term “and/or” describes an association relationship of associated objects, and represents that three relationships may exist. For example, A and/or B may represent the following three cases: only A exists, both A and B exist, and only B exists. The character “/” generally indicates an “or” relationship of associated objects.
(18) With reference to a scenario shown in
(19) It can be understood that the antenna array 120 in
(20) This embodiment provides an antenna unit and an antenna array, and the antenna array may be used as a reflective antenna array.
(21) Sizes and shapes of cross metal patches shown in
(22) It can be understood that, by using a cross metal patch structure provided in this embodiment, incident electromagnetic waves with different polarization can be independently regulated, so that the antenna unit 200 may have a good polarization feature. In addition, by using a plurality of layers of cross metal patch structures, an operating bandwidth can be increased, and in addition, a phase shift feature can be improved.
(23) Further, an antenna array formed by periodically arranging antenna units 200 provided in this embodiment may have a good phase shift feature.
(24) For ease of description, the following uses an antenna unit 300 with double layers of cross metal patches as an example. That is, the antenna unit 300 is an antenna unit when M in the antenna unit 200 shown in
(25) Projection of a geometric center of the first-layer cross metal patch (1) overlaps projection of a geometric center of the second-layer cross metal patch (3) on a horizontal plane, and the horizontal plane is a plane parallel to the metal ground layer.
(26) To facilitate comparison of an area relationship between the first-layer cross metal patch (1) and the second-layer cross metal patch (3), both the first-layer cross metal patch (1) and the second-layer cross metal patch (3) shown in
(27) For example, the first-layer cross metal patch (1) or the second-layer the cross metal patch (3) have two rectangular metal patches that are perpendicular to each other. The two rectangular metal patches of the first-layer cross metal patch (1) or the second-layer cross metal patch (3) may be integrally formed. Two rectangular metal patches that form the first-layer cross metal patch (1) or two rectangular metal patches that form the second-layer cross metal patch (3) shown in
(28) Optionally, the two rectangular metal patches that form the first-layer cross metal patch (1) or the two rectangular metal patches that form the second-layer cross metal patch (3) may have same sizes, and overlapping or no overlapping geometric centers. This is merely an example, and is not limited in this embodiment.
(29) Still referring to
(30) Optionally, the area of the first-layer cross metal patch (1) may be greater than or equal to the area of the second-layer cross metal patch (3). This is not limited in this embodiment, and is merely an example.
(31) Still referring to
(32) For performance of the antenna unit 300, refer to electromagnetic simulation result diagrams shown in
(33) Further referring to
(34) Referring to
(35) In addition, referring to
(36) Thus, the antenna unit 300 provided in this embodiment has the relatively good phase shift feature, the relatively good polarization feature, the relatively good incident angle stability, and the relatively wide operating bandwidth.
(37) In addition, the antenna units provided in this embodiment may be periodically arranged to form an antenna array.
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(39) Optionally, the spacing D between the two adjacent antenna units 300 of the antenna array 1100 provided in this embodiment is 0.3 times the operating wavelength. For example, D may be greater than or equal to 0.3 times the operating wavelength, and less than or equal to 0.6 times the operating wavelength. A size of D is not limited in this embodiment.
(40) In addition, sizes of all of the antenna units 300 in the antenna array 1100 may be the same or may be different. For example, the sizes of all of the antenna units 300 in the antenna array 1100 may be designed based on an actual phase shift requirement. The sizes of all of the antenna units 300 in the antenna array 1100 are not limited in this embodiment.
(41) Further referring to
(42) The foregoing descriptions are merely implementations of embodiments, but are not intended to limit the protection scope of this application. Any variation or replacement readily figured out by a person of ordinary skill in the art within the scope disclosed in the embodiments shall fall within the protection scope of this application.