The present disclosure relates to the field of communication technology, and in particular to an antenna and an electronic device.
With the increasing number of 5G base stations, the beautification of the environment is undoubtedly influenced to a great extent by the over-dense layout of the 5G base stations. Therefore, a base station antenna with transparent beautification characteristics becomes a new scheme. Meanwhile, miniaturization is one of the key requirements for the design of the antenna. Therefore, nowadays, how to achieve an antenna with both transparency and a low profile for the 5G base station becomes a major trend and a subject.
The present disclosure is directed to at least one of the technical problems of the prior art, and provides an antenna and an electronic device.
In a first aspect, an embodiment of the present disclosure provides an antenna, including a first substrate and a second substrate opposite to each other: wherein the first substrate includes: a first dielectric substrate: a first radiation layer on the first dielectric substrate and including at least one first radiation portion and at least one feed structure: wherein each of the at least one first radiation portion is at least electrically connected to one of the at least one feed structure; and a first reference electrode layer on a side of the first dielectric substrate away from the first radiation layer; and the second substrate includes: a second dielectric substrate on a side of the first radiation layer away from the first dielectric substrate, wherein the second dielectric substrate and the first radiation layer have a first distance therebetween: and a second radiation layer on the second dielectric substrate and including at least one second radiation portion: wherein an orthographic projection of each second radiation portion on the first dielectric substrate at least partially overlaps with an orthographic projection of the corresponding first radiation portion on the first dielectric substrate: and orthographic projections of the at least one first radiation portion, the at least one feed structure and the at least one second radiation portion on the first dielectric substrate all at least partially overlap with an orthographic projection of the first reference electrode layer on the first dielectric substrate.
In some embodiments, the at least one feed structure includes a first feed structure and a second feed structure; the first and second feed structures each include one first feed port and at least one second feed port: each second feed port of the first feed structure is connected to a corresponding first radiation portion at a first node: each second feed port of the second feed structure is connected to a corresponding first radiation portion at a second node: and for each first radiation portion, there is an angle between an extending direction of a connecting line between the first node on the first radiation portion and a center of the first radiation portion and an extending direction of a connecting line between the second node on the first radiation portion and the center of the first radiation portion.
In some embodiments, the antenna includes a plurality of sub-arrays, each of which includes one or more first radiation portions and one or more second radiation portions, and the one ore more first radiation portions in each sub-array are fed by one first feed structure and one second feed structure, and the first radiation portions in different sub-arrays are fed by different first feed structures and different second feed structures
In some embodiments, each feed structure includes a plurality of branch lines from the first feed port to the at least one second feed port: at least a part of the plurality of branch lines have different line lengths: and an impedance difference between any two branch lines of each sub-array is in a range from 0.902 to 1.12.
In some embodiments, for each first radiation portion, the extending direction of the connecting line between the first node on the first radiation portion and the center of the first radiation portion is perpendicular to the extending direction of the connecting line between the second node on the first radiation portion and the center of the first radiation portion.
In some embodiments, each first radiation portion includes a polygon, and any interior angle of the polygon is greater than 90°.
In some embodiments, the polygon includes a first side, a second side, a third side, a fourth side, a fifth side, a sixth side, a seventh side, and an eighth side which are connected sequentially: an extending direction of the first side is the same as that of the fifth side, and is perpendicular to that of the third side: one corresponding second feed port of the first feed structure and one corresponding second feed port of the second feed structure are connected on the second and fourth sides, respectively.
In some embodiments, a ratio of a line connecting a midpoint of the second side and a midpoint of the sixth side of each first radiation portion to a diagonal line of the corresponding second radiation portion is in a range from 1.05:1 to 1.25:1.
In some embodiments, the first dielectric substrate includes a first bottom plate, a first side plate and a second side plate, the first bottom plate includes a first side surface and a second side surface extending in a first direction and opposite to each other in a second direction, the first side plate is connected to the first side surface, and the second side plate is connected to the second side surface: extending planes of the first side plate and the second side plate intersect with an extending plane of the first bottom plate: the first reference electrode layer matches with the first dielectric substrate, and includes a first reference sub-electrode opposite to the first bottom plate, a second reference sub-electrode opposite to the first side plate, and a third reference sub-electrode opposite to the second side plate: a third dielectric substrate is on a side of the second reference sub-electrode away from the first side plate, and a fourth dielectric substrate is on a side of the third reference sub-electrode away from the second side plate: and at least one first transmission line is on a side of the third dielectric substrate away from the second reference sub-electrode, and at least one second transmission line is on a side of the fourth dielectric substrate away from the third reference sub-electrode: one end of each first transmission line is electrically connected to the first feed port of the corresponding first feed structure through a first via extending through the first side plate, the second reference sub-electrode and the third dielectric substrate: and one end of each second transmission line is electrically connected to the first feed port of the corresponding second feed structure through a second via extending through the second side plate, the third reference sub-electrode and the fourth dielectric substrate.
In some embodiments, a second reference electrode layer is on a side of the third dielectric substrate close to the second reference sub-electrode, and a third reference electrode layer is on a side of the fourth dielectric substrate close to the third reference sub-electrode.
In some embodiments, the first radiation layer further includes a first base material, the at least one first radiation portion is on the first base material, and the first base material is attached to the first dielectric substrate by a first adhesive layer.
In some embodiments, the second radiation layer further includes a second base material, the at least one second radiation portion is on the second base material, and the second base material is attached to the second dielectric substrate by a second adhesive layer.
In some embodiments, at least one of the at least one first radiation portion, the at least one second radiation portion, the reference electrode layer includes a metal mesh structure.
In some embodiments, the at least one first radiation portion, the at least one second radiation portion, and the first reference electrode layer each include the metal mesh structure, and orthographic projections of hollow-out portions of the metal mesh structure of each of the at least one first radiation portion, the at least one second radiation portion, and the first reference electrode layer on the first dielectric layer at least partially overlap with each other.
In some embodiments, each metal mesh structure has a line width in a range of 2 μm to 30 μm: a line spacing in a range of 50 μm to 200 μm; a line thickness in a range of 1 μm to 10 μm.
In a second aspect, an embodiment of the present disclosure provides an electronic device, which includes the antenna in any one of the above embodiments.
In order to enable one of ordinary skill in the art to better understand the technical solutions of the embodiments of the present disclosure, the present invention will be described in further detail with reference to the accompanying drawings and the detailed description.
Unless defined otherwise, technical or scientific terms used herein shall have the ordinary meaning as understood by one of ordinary skill in the art to which the present disclosure belongs. The terms “first”, “second”, and the like used in the present disclosure are not intended to indicate any order, quantity, or importance, but rather are used for distinguishing one element from another. Further, the term “a”, “an”, “the”, or the like used herein does not denote a limitation of quantity, but rather denotes the presence of at least one element. The term of “comprising”, “including”, or the like, means that the element or item preceding the term contains the element or item listed after the term and its equivalent, but does not exclude other elements or items. The term “connected”, “coupled”, or the like is not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect connections. The terms “upper”, “lower”, “left”, “right”, and the like are used only for indicating relative positional relationships, and when the absolute position of an object being described is changed, the relative positional relationships may also be changed accordingly.
In a first aspect,
It should be noted that a transparent antenna in the embodiment of the present disclosure may be a receiving antenna, a transmitting antenna, or a transceiver antenna that are capable of simultaneously transmitting and receiving signals. The at least one first radiation portion 11 may include one or more first radiation portions 11; and the at least one second radiation portion 21 may include one or more second radiation portions 21. In the embodiment of the present disclosure, as an example, the at least one first radiation portion 11 may include a plurality of first radiation portions 11; and the at least one second radiation portion 21 may include a plurality of second radiation portions 21. In addition, in the embodiment of the present disclosure, as an example, the number of the first radiation portions 11 and the second radiation portions 21 is equal to each other, and the plurality of first radiation portions 11 and the plurality of second radiation portions 21 are in a one-to-one correspondence with each other.
When the antenna transmits a signal, a first feed port of the feed structure 12 receives a radio frequency signal, the feed structure 12 divides the radio frequency signal into a plurality of sub-signals, each sub-signal is output to the first radiation portion 11 through a second feed port connected to the first radiation portion 11, and the first radiation portion 11 feeds the sub-signal to the second radiation portion 21 directly opposite to the first radiation portion. When the antenna receives a signal, after receiving the radio frequency signal, any one of the second radiation portions 21 feed the radio frequency signal to the first radiation portion 11 directly opposite to the second radiation portion 21, and the second radiation portion 21 transmits the radio frequency signal to the first feed port through the second feed port connected to the first radiation portion 11.
It should be noted that a distance between the first radiation portion 11 and the second radiation portion 21 directly opposite to the first radiation portion should satisfy the requirement for the radiation rate of the antenna.
In the embodiment of the present disclosure, the plurality of second radiation portions 21 are disposed on the second dielectric substrate 201, that is, one dielectric substrate is provided between the first radiation portions 11 and the second radiation portions 21, so that the dielectric constant of the antenna can be effectively increased, and a capacitance between each first radiation portion 11 and the corresponding second radiation portion 21 is increased, thereby greatly reducing the overall cross section of the antenna.
In some embodiments,
In some embodiments, outlines of the first radiation portion 11 and the second radiation portion 21 are both polygons, and may have the same or different shapes. In the embodiment of the present disclosure, the first radiation portion 11 and the second radiation portion 21 have different shapes. For example;
In some embodiments, with continued reference to
Further, for the first radiation portion 11 and the second radiation portion 21 which are correspondingly arranged, the orthographic projection of the second radiation portion 21 on the first dielectric substrate 101 is positioned in the orthographic projection of the first radiation portion 11 on the first dielectric substrate 101. Further, orthographic projections of the center of the first radiation portion 11 and the center of the second radiation portion 21 on the first dielectric substrate 101 coincide with each other. In one example,
In an embodiment, for each first radiation portion 11, when sizes of the flat chamfers of the first radiation portion 11 are the same, the second feed port of the first feed structure 121 and the second feed port of the second feed structure 122 are respectively connected to two adjacent flat chamfers. In this way, the first and second feed structures 121 and 122 have different feed directions for the same first radiation portion 11.
Further, for each first radiation portion 11, when the second feed port of the first feed structure 121 and the second feed port of the second feed structure 122 are respectively connected to midpoints of two adjacent flat chamfers, an extending direction of a connecting line of the first node PI and the center on the first radiation portion 11 and an extending direction of a connecting line of the second node P2 and the center are perpendicular to each other. For example; the feed direction of the first feed structure 121 is a horizontal direction, and the feed direction of the second feed structure 122 is a vertical direction. Alternatively, the second feed port of the first feed structure 121 and the second feed port of the second feed structure 122 are not necessarily connected to the midpoints of two adjacent flat chamfers, so long as the extending direction of the connecting line between the node, at which the second feed port of the first feed structure 121 and the first radiation portion 11 are connected to each other, and the center of the first radiation portion 11, and the extending direction of the connecting line between the node, at which the second feed port of the second feed structure 122 and the first radiation portion 11 are connected to each other, and the center of the first radiation portion 11, do not coincide with each other.
In some embodiments, with continued reference to
In some embodiments, as shown in
In some embodiments, since first radiation portions 11 in each sub-array 100 are fed by the same first feed structure 121 and the same second feed structure 122 (for convenience of description, the first feed structure 121 and the second feed structure 122 in each sub-array 100 are collectively referred to the feed structures 12), and the first radiation portions 11 are arranged side by side. At least a part of branch lines from the first feed port of each feed structure 12 to the second feed ports are different in line length. In order that the power of the radio frequency signals fed by the first radiation portions 11 are equal or approximately equal to each other, it is necessary to adjust line widths of the branch lines, so that an impedance difference between any two branch lines of each sub-array is in a range from 0.9 Ω to 1.1 Ω.
For example; with continued reference to
In some embodiments,
Further, the first transmission lines 31 and the second transmission lines are respectively disposed in one-to-one correspondence with the sub-arrays 100, that is, each sub-array 100 feeds the first feed port of the first feed structure 121 through the corresponding first transmission line 31, and feeds the first feed port of the second feed structure 122 through the corresponding second transmission line. In some embodiments, the first transmission line 31 and the first feed port of the first feed structure 121 may be electrically connected to each other by soldering; similarly, the second transmission line and the first feed port of the second feed structure 122 may also be electrically connected to each other by soldering.
Further, the third dielectric substrate 301 and the first side plate 101b may be fixed together by a screw; and similarly, the fourth dielectric substrate and the second side plate 101c may also be fixed together by a screw. In some embodiments, a second reference electrode layer is disposed on a side of the third dielectric substrate 301 close to the second reference sub-electrode 102b, and a third reference electrode layer 42 is disposed on a side of the fourth dielectric substrate close to the third reference sub-electrode 102c. The second reference electrode layer may be attached to the third dielectric substrate 301 and has a planar structure, but it should be understood that an opening is formed at a position corresponding to the via in the second reference electrode layer; similarly, the third reference electrode layer 42 may be attached to the fourth dielectric substrate and has a planar structure, but it should be understood that an opening is formed at a position corresponding to the via in the third reference electrode layer 42. The second reference electrode layer and the third reference electrode layer 42 are formed on the third dielectric substrate 301 and the fourth dielectric substrate, respectively, so as to avoid the problem of inconsistent electric potentials on the first transmission line 31 and the second transmission line when the second reference sub-electrode 102b and the third reference sub-electrode 102c are warped.
In some embodiments, the third dielectric substrate 301 and the fourth dielectric substrate may each employ a PCB (Printed Circuit Board).
In some embodiments, with continued reference to
Materials of the first base material 10 and the second base material 20 may be the same or different; for example, the first base material 10 and the second base material 20 are flexible films made of materials including, but not limited to, polyethylene terephthalate (PET) or polyimide (PI), copolymers of cycloolefin (COP), or the like. In the embodiments of the present disclosure, as an example, the first base material 10 and the second base material 20 are made of PET. The first base material 10 and the second base material 20 each have a thickness in a range of about 50 μm to 250 μm.
The first dielectric substrate 101 and the second dielectric substrate 201 can provide good support, and therefore, may be made of polycarbonate (PC) or polymethyl methacrylate (PMMA). The first dielectric substrate 101 and the second dielectric substrate 201 have a thickness in a range of about 1 mm to 3 mm.
Materials of the first adhesive layer and the second adhesive layer may be the same or different, for example; the first adhesive layer and the second adhesive layer may be made of optically clear adhesive (OCA).
In some embodiments,
Further, the metal mesh structure may include a plurality of first metal lines and a plurality of second metal lines crossing with the plurality of first metal lines. The first metal lines are arranged side by side along a first direction and extend along a second direction; the second metal lines are arranged side by side along the first direction and extend along a third direction.
In some embodiments, ends of the first metal lines and the second metal lines of the first radiation portion 11 are connected together, that is, the periphery of the first radiation portion 11 is a closed loop structure. In an actual product, the ends of the first metal lines and the second metal lines of the first radiation portion 113 may not be connected to each other, that is, the periphery of the first radiation portion 11 is radial. Similarly, the metal meshes of the other elements may be arranged in the same manner as the first radiation portion 11, and therefore, the description thereof is not repeated.
Extending directions of each first metal line and each second metal line of the metal mesh structure may be perpendicular to each other, thereby forming square or rectangular hollow-out portions. Alternatively, the extending directions of each first metal line and each second metal line of the metal mesh structure may not be perpendicular to each other. For example; an angle between the extending directions of the first metal line and the second metal line is 45 degrees, thereby forming rhombic hollow-out portions.
In some embodiments, line widths, line thicknesses, and line spacings of the first metal lines and the second metal lines of the metal mesh structure are preferably the same, but may be different. For example; with reference to
In some embodiments,
In some embodiments, materials of the first reference electrode layer 102, the first radiation portions 113, the second radiation portions 21, the feed structures 12, the second reference electrode layer, and the third reference electrode layer 42 include, but are not limited to, metal materials such as copper, silver, aluminum, or the like, which are not limited in the embodiments of the present disclosure.
In some embodiments,
In order to make clearer the structure and the effect of the transparent antenna of the embodiment of the present disclosure, a specific structure of the transparent antenna is given below.
As shown in
In a second aspect, an embodiment of the present disclosure provides an electronic device which includes the antenna; the antenna may be fixed on a building, as shown in
In some embodiments, the electronic device provided by an embodiment of the present disclosure further includes a transceiver unit, a radio frequency transceiver, a signal amplifier, a power amplifier, and a filtering unit. The transparent antenna 1 in the electronic device may be used as a transmitting antenna or a receiving antenna. The transceiver unit may include a baseband and a receiving terminal, where the baseband provides a signal in at least one frequency band, such as 2G signal, 3G signal, 4G signal, 5G signal, or the like; and transmits the signal in the at least one frequency band to the radio frequency transceiver. After the signal is received by the transparent antenna 1 in the electronic device and is processed by the filtering unit, the power amplifier, the signal amplifier and the radio frequency transceiver, the antenna may transmit the signal to the receiving terminal (such as an intelligent gateway or the like) in the transceiver unit.
Further, the radio frequency transceiver is connected to the transceiver unit and is configured to modulate the signals transmitted by the transceiver unit or demodulate the signals received by the transparent antenna and then transmit the signals to the transceiver unit. Specifically, the radio frequency transceiver may include a transmitting circuit, a receiving circuit, a modulating circuit, and a demodulating circuit. After the transmitting circuit receives multiple types of signals provided by the baseband, the modulating circuit may modulate the multiple types of signals provided by the baseband, and then transmit the modulated signals to the antenna. The signals received by the transparent antenna are transmitted to the receiving circuit of the radio frequency transceiver, and transmitted by the receiving circuit to the demodulating circuit, and demodulated by the demodulating circuit and then transmitted to the receiving terminal.
Further, the radio frequency transceiver is connected to the signal amplifier and the power amplifier, which are in turn connected to the filtering unit connected to at least one transparent antenna 1. In the process of transmitting signals by the electronic device, the signal amplifier is used for improving a signal-to-noise ratio of the signals output by the radio frequency transceiver and then transmitting the signals to the filtering unit; the power amplifier is used for amplifying the power of the signals output by the radio frequency transceiver and then transmitting the signals to the filtering unit; the filtering unit specifically includes a duplexer and a filtering circuit, the filtering unit combines signals output by the signal amplifier and the power amplifier and filters noise waves and then transmits the signals to the transparent antenna, and the transparent antenna l radiates the signals. In the process of receiving signals by the electronic device, the signals received by the transparent antenna I are transmitted to the filtering unit, which filters noise waves in the signals received by the antenna and then transmits the signals to the signal amplifier and the power amplifier, and the signal amplifier gains the signals received by the antenna to increase the signal-to-noise ratio of the signals; the power amplifier amplifies the power of the signals received by the transparent antenna. The signals received by the transparent antenna are processed by the power amplifier and the signal amplifier and then transmitted to the radio frequency transceiver, and the radio frequency transceiver transmits the signals to the transceiver unit.
In some embodiments, the signal amplifier may include various types of signal amplifiers, such as a low noise amplifier, without limitation.
In some embodiments, the electronic device provided by the embodiments of the present disclosure further includes a power management unit connected to the power amplifier and for providing the power amplifier with a voltage for amplifying the signal.
It should be understood that the above embodiments are merely exemplary embodiments adopted to explain the principles of the present disclosure, and the present disclosure is not limited thereto. It will be apparent to one of ordinary skill in the art that various changes and modifications may be made therein without departing from the spirit and scope of the present disclosure, and such changes and modifications also fall within the scope of the present disclosure.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2022/083381 | 3/28/2022 | WO |