This application claims the priority of the Chinese Application No. 2021105377926 filed on May 18, 2021, titled “Dual-Polarized Filtering Antenna Units, Dual-Polarized Filtering Antenna Arrays”, the disclosure of which is incorporated in this application by reference in its entirety.
The present application relates to the field of antenna technology, in particular to a dual-polarized filtering antenna unit and a dual-polarized filtering antenna array.
Dual-frequency dual-polarized antennas are multiple-band miniaturized, dual-polarized designs. The multiple frequency of the antennas enables the antennas to work in multiple-frequency bands at the same time, such that one multiple-frequency antenna may replace multiple single-frequency antennas, further improving the integration of the communication system to meet the needs of the 5G communication system.
At present, base station antennas are developing in the direction of broadband. The wider the bandwidth of the antenna is, the larger its size. In actual design, due to the limitation of the antenna size due to the application scenario of the antenna, it is often necessary to simplify the antenna structure in order to reduce the antenna size, which leads to narrowing of the bandwidth of the antenna.
The present application provides a dual-polarized filtering antenna unit and a dual-polarized filtering antenna array.
A first aspect of the present application relates to a dual-polarized filtering antenna unit, comprising a metal substrate and a radiating layer provided oppositely, a plurality of dielectric layers are provided between the metal substrate and the radiating layer, metal layers are provided between adjacent dielectric layers, each of the plurality of dielectric layers comprises a first via hole and a second via hole, axes of first via holes of the plurality of dielectric layers are parallel or coincident, axes of second via holes of the plurality of dielectric layers are parallel or coincident, the first via holes and the second via holes are for accommodating metal pillars, the metal pillars are for transmitting current signals;
wherein the first via holes of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers, the second via holes of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers, the first via hole of a first dielectric layer in the plurality of dielectric layers is electrically connected to the second via hole of a first dielectric layer through the metal substrate, the first via hole of a second dielectric layer in the plurality of dielectric layers and the second via hole of a second dielectric layer are respectively electrically connected to the radiating layer, the first dielectric layer is a dielectric layer closest to the metal substrate among the plurality of dielectric layers, the second dielectric layer is a dielectric layer closest to the radiating layer among the plurality of dielectric layers;
wherein the first via holes of each of the plurality of dielectric layers form a first sub-path, the second via holes of each of the plurality of dielectric layers form a second sub-path, the first sub-path and the second sub-path generate a resonance to form a radiation null point, thereby realizing a filtering.
A second aspect of the present application relates to a dual-polarized filtering antenna array, comprising dual-polarized filtering antenna units provided in an array, the dual-polarized filtering antenna units are the above-mentioned dual-polarized filtering antenna unit.
The details of one or more embodiments of the application are set forth in the accompanying drawings and the description below. Other features, objectives and advantages of the present application will become apparent from the description, drawings and claims.
In order to make the purposes, technical solutions and advantages of the present application more clearly understood, the present application will be described in further detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application, but not to limit the present application.
With the increasing popularity of mobile communication devices, the spectrum resources in the microwave frequency band are becoming more and more crowded, resulting in narrower bandwidth that may be allocated. As a result, the signal transmission speed is affected and cannot be further improved, and it is difficult to meet people's daily demands for higher communication speed.
Based on this, the current millimeter-wave frequency band communication has attracted the attention of many experts and scholars local and abroad due to its wide available bandwidth and high information transmission rate advantages. Wherein, the antenna is an indispensable and important part of the millimeter-wave wireless communication system.
Driven by the development of 5G communication systems, antenna technology has also continued to improve, making antenna design towards miniaturization, low profile, multiple-band, multiple-polarization directions etc. Miniaturized, low-profile antennas not only may reduce manufacturing costs, but also help improving the integration of 5G systems. However, in practical design, due to the limitation of the antenna size due to the application scenario of the antenna, it is often necessary to simplify the antenna structure in order to reduce the antenna size, which leads to the narrowing of the bandwidth of the antenna.
Therefore, providing a dual-polarized antenna that not only may reduce the antenna size but also ensure the antenna bandwidth has become a key research topic in this field.
In view of the shortcomings of the above-mentioned various existing technologies, an embodiment of the present application provides a dual-polarized filtering antenna unit. The dual-polarized filtering antenna unit comprises a metal substrate and a radiating layer. A plurality of dielectric layers are provided between the metal substrate and the radiating layer, each of which is provided with a first via hole and a second via hole, wherein the first via hole and the second via hole are for accommodating metal pillars. The metal pillars are for transmitting current signals. Axes of the first via holes of the plurality of dielectric layers are parallel or coincident. The first via holes of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers. In this way, when the current signal is transmitted between the metal substrate and the radiating layer, the flow path of the current signal is longer than that in the prior art, thereby realizing a low profile and reducing the size of the antenna. By loading the first via hole and the second via hole, the bandwidth of the antenna is expanded, and the purpose of antenna miniaturization and multiple-band design is realized.
Please refer to
Wherein, each dielectric layer 103 comprises a first via hole 1031 and a second via hole 1032. Both the first via hole 1031 and the second via hole 1032 penetrate the dielectric layer in the thickness direction of the dielectric layer 103. Wherein, via holes are also called metallized via holes. In double-sided and multiple-layer boards, in order to connect the printed wires between the layers, a common hole is drilled at an intersection of the wires that need to be connected in each layer. In this embodiment of the present application, the first via holes 1031 and the second via holes 1032 are used to accommodate metal pillars. The metal pillars are used to transmit current signals. The first via holes of the dielectric layers are electrically connected through the metal layer 104 between a dielectric layer and the adjacent dielectric layer, and the second via holes of the dielectric layers are electrically connected to the metal layer 104 between a dielectric layer and the adjacent dielectric layer.
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Optionally, in this embodiment of the present application, as shown in
Optionally, an embodiment of the present application provides a dual-polarized filtering antenna unit. The dual-polarized filtering antenna unit comprises M dielectric layers 103, wherein diameters of the first via holes 1301 of N dielectric layers 103 close to the metal substrate are larger than diameters of the first via holes 1301 of M-N dielectric layers far from the metal substrate 102; diameters of the second via holes 1302 of the N dielectric layers 103 close to the metal substrate are larger than diameters of the second via holes 1302 of the M-N dielectric layers far from the metal substrate 102, M, N are integers, N is less than M.
In the embodiment of the present application, the first via hole of the first dielectric layer in the plurality of dielectric layers is electrically connected with the second via hole of the first dielectric layer through the metal substrate. The first via hole of the second dielectric layer and the second via hole of the second dielectric layer in the plurality of dielectric layers are respectively electrically connected to the radiating layer. The first dielectric layer is the dielectric layer closest to the metal substrate among the plurality of dielectric layers. The second dielectric layer is the dielectric layer closest to the radiating layer among the plurality of dielectric layers.
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In an embodiment of the present application, the length of the signal path formed by the first via holes and the second via holes of the plurality of dielectric layers is the same as the half wavelength of the signal to be filtered out of the dual-polarized filtering antenna unit.
Wherein, the length of the signal path formed by the first via holes and the second via holes of the plurality of dielectric layers is determined by the vertical height of the metal pillars accommodated in the first via holes of the plurality of dielectric layers and the spacing distance between the axes of the first via holes of the plurality of dielectric layers. Wherein, the vertical height of the metal pillars is limited by the influence of the hardware size of the antenna, so it is not easy to change, and the spacing distance between the axes of the first via holes of the plurality of dielectric layers is adjustable. As shown in
In the embodiments of the present application, for the convenience of description, the signal path formed by the first via holes of the plurality of dielectric layers is defined as the first sub-path. The signal path formed by the second via holes of the plurality of dielectric layers is defined as the second sub-path. The first sub-path and the second sub-path are electrically connected through the metal substrate. Wherein, as shown in
In an embodiment of the present application, as shown in
Optionally, each dielectric layer comprises a plurality via hole groups. Each via hole group comprises a first via hole and a second via hole. All via holes in each via group are in the area covered by the orthographic projection of the same radiating sheet onto the dielectric layers. The first via hole and the second via hole in the same via hole group of the first dielectric layer among the plurality of dielectric layers are electrically connected through the metal substrate.
Optionally, the shape of the radiating layer may be circular, rectangular, triangular or fan-shaped.
Optionally, a plurality of radiating layers may be provided in a matrix.
Optionally, in the areas corresponding to the same radiating sheet, the length of the signal path formed by the first via holes and the second via holes in the plurality of dielectric layers is the same as the half wavelength of the signal to be filtered out of the dual-polarized filtering antenna unit. The areas corresponding to a radiating sheet refers to the areas of each layer covered by the orthographic projection of the radiating sheet onto each layer of the dual-polarized filtering antenna unit.
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This application does not use an additional filter circuit structure. By loading a plurality of first via holes and second via holes in the four quadrants of the metal substrate respectively, the four quadrants are combined to generate resonance. The current is concentrated into the four quadrants. The electric fields of each other cancel each other, thereby generating a radiation null point in the stop band, so that the antenna forms a band-stop filtering effect.
In an embodiment of the present application, the area corresponding to the reserved area between each dielectric layer and the adjacent radiating sheet is provided with electric feed holes. The electric feed holes are for accommodating metal pillars. Metal pillars are for transmitting current signals. The axes of the electric feed holes of the plurality dielectric layers are coincident, wherein the electric feed holes of the first dielectric layer are connected to the first feed line, the electric feed holes of the second dielectric layer are connected to the second feed line.
In an embodiment of the present application, as shown in
Wherein, the areas corresponding to the reserved areas between the plurality of dielectric layers and the adjacent two radiating sheets are provided with third via holes 1033, and the axes of the third via holes 1033 of the plurality of dielectric layers are parallel and spaced apart at a preset distance. The third via holes 1033 are for accommodating a metal pillar, and the third via holes 1033 of the first dielectric layer are respectively electrically connected to the first via hole 1031 of the first dielectric layer and the second via hole 1032 of the first dielectric layer through the metal substrate. The third via holes 1033 of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers.
Optionally, the plurality of dielectric layers comprise target dielectric layers and non-target dielectric layers, the target dielectric layers of the plurality of dielectric layers comprises third via holes, and the non-target dielectric layers do not comprise third via holes. Wherein, the target dielectric layers comprise a first dielectric layer. Optionally, the target dielectric layers are a plurality of adjacent dielectric layers. In other words, the third via holes may be provided only in target dielectric layers.
Optionally, the third via hole is located on the symmetry line of the two adjacent radiating sheets.
Optionally, in this embodiment of the present application, for convenience of description, the signal path formed by the third via holes of the plurality of dielectric layers is defined below as the third sub-path. The signal path formed by the first via holes of the plurality of dielectric layers is defined as the first sub-path. The signal path formed by the second via holes of the plurality of dielectric layers is defined as the second sub-path, and the third sub-path is electrically connected to the first sub-path and the second sub-path respectively through the metal substrate.
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Optionally, the radiating layer comprises four radiating sheets, and each radiating sheet is respectively located in four quadrants with the center of the metal substrate as the origin point. Third via holes are provided in the area corresponding to the reserved area between the plurality of dielectric layers and the adjacent two radiating sheets. As shown in
When the half wavelength of the signal is the same as the sum of the path lengths corresponding to any combination of the four groups, the signal may be filtered out.
In an embodiment of the present application, as shown in
Wherein, under the premise that the plurality dielectric layers are provided with first via holes 1031 and second via holes 1032 in the areas corresponding to the first radiating sheet 1301 and the second radiating sheet 1302, fourth via holes 1034 and fifth via holes 1035 are provided in the areas of the plurality of dielectric layers corresponding to the first radiating sheet 1301. The fourth via holes 1034 are connected with the fifth via holes 1035. The axes of the fourth via holes 1034 of the plurality of dielectric layers are parallel and spaced apart by a preset distance. The axes of the fifth via holes 1035 of each dielectric layer are parallel and spaced apart by a preset distance. The fourth via holes 1034 and the fifth via holes 1035 are for accommodating metal pillars. The fourth via holes 1034 of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers, and the fifth via holes 1035 of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers.
Sixth via holes 1036 and seventh via holes 1037 are provided in the areas corresponding to the second radiating sheet of the plurality of dielectric layers. The sixth via holes 1036 and the seventh via holes 1037 are connected. Axes of the sixth via holes 1036 of the plurality of dielectric layers are parallel and spaced apart by a preset distance. Axes of the seventh via holes of the plurality of dielectric layers are parallel and spaced apart by a preset distance. The sixth via holes 1036 and the seventh via holes 1037 are for accommodating metal pillars. Wherein, the fourth via hole 1034 of the first dielectric layer in the plurality of dielectric layers is electrically connected to the sixth via hole 1036 or the seventh via hole 1037 through the metal substrate. The fifth via hole 1035 of the first dielectric layer in the plurality of dielectric layers is electrically connected to the sixth via hole 1036 or the seventh via hole 1037 through the metal substrate. The sixth via holes 1036 of the adjacent dielectric layers are electrically connected through the metal layer between the adjacent dielectric layers. The seventh via holes 1037 of the adjacent dielectric layers are electrically connected through the metal layer between the adjacent dielectric layers.
Wherein, for the structures and relative relationships of the fourth via holes and the fifth via holes, and the structures and relative relationships of the sixth via holes and the seventh via holes, reference may be made to the structures and the relative relationships of the first via holes and the second via holes in the foregoing embodiment, and will not be repeated here.
Optionally, when the fourth via hole and the sixth via hole in the first dielectric layer in the plurality of dielectric layers are electrically connected through the metal substrate, the length of the signal path formed by the fourth via holes and the sixth via holes in the plurality of dielectric layers is the same as the half wavelength of the frequency of the resonance point of the low frequency passband, so as to realize the purpose of miniaturization of the antenna.
Optionally, when the fourth via hole and the seventh via hole in the first dielectric layer in the plurality of dielectric layers are electrically connected through the metal substrate, the length of the signal path formed by the fourth via holes and the seventh via holes in the plurality of dielectric layers is the same as the half wavelength of the frequency of the resonance point of the low frequency passband, so as to realize the purpose of miniaturization of the antenna.
Optionally, when the fifth via hole and the sixth via hole in the first dielectric layer in the plurality of dielectric layers are electrically connected through the metal substrate, the length of the signal path formed by the fifth via holes and the sixth via holes in the plurality of dielectric layers is the same as the half wavelength of the frequency of the resonance point of the low frequency passband, so as to realize the purpose of miniaturization of the antenna.
Optionally, when the fifth via hole and the seventh via hole in the first dielectric layer in the plurality of dielectric layers are electrically connected through the metal substrate, the length of the signal path formed by the fifth via holes and the seventh via holes in the plurality of dielectric layers is the same as the half wavelength of the frequency of the resonance point of the low frequency passband, so as to realize the purpose of miniaturization of the antenna.
In another embodiment of the present application, in the dual-polarized filtering antenna unit provided in an embodiment of the present application, the radiating layer comprises a first radiating sheet and a second radiating sheet. The first radiating sheet and the second radiating sheet are rotationally symmetrically distributed with the center of the metal substrate as the origin point.
Wherein, as shown in
The plurality of dielectric layers are provided with a plurality of second shorting pillar structures connected to each other in the areas corresponding to the second radiating sheet. The second shorting pillar structures comprise second adjustment via holes provided in each dielectric layer. The second adjustment via holes are for accommodating metal pillars. The metal pillar is for transmitting the current signals. The second adjustment via holes of the adjacent dielectric layers are electrically connected through the metal layers between the adjacent dielectric layers. Wherein, the plurality of first shorting pillar structures connected to each other and the plurality of second shorting pillar structures connected to each other may be equivalent to metal walls.
Optionally, the axes of the adjustment via holes of the plurality of dielectric layers may be coincident.
Optionally, the axes of the adjustment via holes of the plurality of dielectric layers are parallel and spaced apart by a preset distance.
Wherein, the current signal flows from the plurality of shorting pillar structures corresponding to the first radiating sheet to the plurality of shorting pillar structures corresponding to the second radiating sheet through the metal substrate, and generates resonance, thereby generating a new radiation pattern at low frequencies, which greatly widens the antenna bandwidth; the length of the signal path formed by the two shorting pillar structures that generate resonance and the metal substrate is half of the wavelength corresponding to the frequency of the resonance point.
Optionally, in this embodiment of the present application, the first via holes in the areas corresponding to the first radiating sheet in the plurality of dielectric layers form the first sub-signal path. The second via holes in the areas corresponding to the first radiating sheet in the plurality of dielectric layers form the second sub-signal path. The metal walls in the areas corresponding to the first radiating sheet in the plurality of dielectric layers form a third sub-signal path. The first sub-signal path, the second sub-signal path and the third sub-signal path interact to generate resonance, thereby forming a radiation null point, so that the antenna has a good band-stop filtering effect.
In an optional implementation manner, as shown in
In an embodiment of the present application, a dual-polarized filtering antenna array is provided, the dual-polarized filtering antenna array comprises dual-polarized filtering antenna units provided in an array, and the dual-polarized filtering antenna units are the dual-polarized filtering antenna unit described in the above embodiment.
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In the embodiment of the present application, the multiple-layer HDI process design is adopted. The antenna has strong stability, and the size of the antenna unit is 3.2 mm*3.2 mm*0.84 mm, which realizes the miniaturized design of the antenna.
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The implementation of this application has the following advantages:
(1) The structure of this application is simple. On the basis of the traditional magnetoelectric dipole antenna, the first signal path and the second signal path are formed by setting metallized via holes in the dielectric layer, and the rest of the metal substrates work together to expand the antenna bandwidth, and the antenna miniaturization and multiple-band design are realized.
(2) This application does not use an additional filter circuit structure, and the first signal path is formed in each quadrant by arranging the first via holes and the second via holes in the four quadrants of the plurality of dielectric layers and the metal substrate respectively. The first signal path and the second signal path in the four quadrants are combined to generate resonance, and the current is concentrated to the four quadrants, and the electric fields of each other cancel each other out, thereby generating a radiation null point in the stop band, so that the antenna forms a band-stop filtering effect. A pair of third via holes is respectively loaded in the plurality of dielectric layers and the two polarization directions with the center of the metal substrate as the origin point. The third signal path formed by the third via holes of the plurality of dielectric layers interacts with the first signal path and the second signal path that are closer in the four quadrants, thereby generating two radiation null points in the high-frequency passband of the antenna.
(3) This application is based on High Density Interconnector (HDI) process packaging, with low cost and high reliability.
(4) The antenna unit realizes the dual-polarized radiating characteristics with excellent performance. The antenna cross-polarization is low, the beam width is wide, and the radiation pattern is stable.
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In this embodiment, by loading shorting pillar structures around the antenna, two pairs of shorting pillars in the same polarization direction work together to generate a new radiation pattern at low frequencies, thereby expanding the low-frequency bandwidth of the antenna and realizing the miniaturized design of the antenna.
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To sum up, the present application does not require an additional filter circuit structure, achieves a good band-stop filtering effect, and covers two wide frequency bands while ensuring miniaturization, and has better dual-frequency dual-polarized radiating performance.
The technical features of the above embodiments may be combined arbitrarily. For the sake of brevity, all possible combinations of the technical features in the above embodiments are not described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of the description in this specification.
The above-mentioned embodiments only represent several embodiments of the present application, and the descriptions thereof are relatively specific and detailed, but should not be construed as a limitation on the scope of the patent application. It should be pointed out that for those skilled in the art, without departing from the concept of the present application, several modifications and improvements may be made, which all belong to the protection scope of the present application. Therefore, the scope of protection of the patent of the present application shall be subject to the appended claims.
Number | Date | Country | Kind |
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202110537792.6 | May 2021 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/131269 | 11/17/2021 | WO |