Power distribution network, liquid crystal antenna and communication device
11450972 · 2022-09-20
Assignee
- Beijing Boe Optoelectronics Technology Co., Ltd. (Beijing, CN)
- Beijing BOE Technology Development Co., Ltd. (Beijing, CN)
Inventors
- Ying Wang (Beijing, CN)
- Tienlun Ting (Beijing, CN)
- Xiangzhong Kong (Beijing, CN)
- Jie Wu (Beijing, CN)
- Liang Li (Beijing, CN)
- Peizhi Cai (Beijing, CN)
- Chuncheng Che (Beijing, CN)
- Hao Liu (Beijing, CN)
Cpc classification
H01Q1/364
ELECTRICITY
International classification
H01Q21/06
ELECTRICITY
H01Q1/36
ELECTRICITY
Abstract
Embodiments of the present disclosure provide a power distribution network, a liquid crystal antenna including the power distribution network, and a communication device including the liquid crystal antenna. The power distribution network is configured to be used in a liquid crystal antenna and includes a plurality of cascaded power distributors. Each of the plurality of cascaded power distributors comprises a first microstrip line, a transmission medium region and a reference electrode. A tangent value of a dielectric loss angle of a transmission medium in the transmission medium region is smaller than a tangent value of a dielectric loss angle of a liquid crystal in the liquid crystal antenna.
Claims
1. A liquid crystal antenna, comprising: a first substrate and a second substrate opposite to each other; a plurality of radiating devices on a side of the first substrate away from the second substrate; a power distribution network comprising a plurality of cascaded power distributors, each of the plurality of cascaded power distributors comprising a first microstrip line, a transmission medium region and a reference electrode, wherein the power distribution network is configured to feed electromagnetic signals to the plurality of radiating devices; a phase shifter comprising a plurality of liquid crystal regions between the first substrate and the second substrate, the reference electrode between the first substrate and the plurality of liquid crystal regions, and a second microstrip line between the second substrate and the plurality of liquid crystal regions, and a second impedance transformer electrically coupled between the first microstrip line and the second microstrip line adjacent to each other, wherein a tangent value of a dielectric loss angle of a transmission medium in the transmission medium region is smaller than a tangent value of a dielectric loss angle of a liquid crystal in the plurality of liquid crystal regions, wherein the transmission medium region of each power distributor is between adjacent liquid crystal regions, and the transmission medium region and a liquid crystal region adjacent to the transmission medium region are separated by a wall, and wherein an orthographic projection of the wall on the second substrate at least partially overlaps with an orthographic projection of the second impedance transformer on the second substrate, and a length and width of the second impedance transformer are associated with a dielectric constant of the wall.
2. The liquid crystal antenna according to claim 1, wherein the first microstrip line comprises a plurality of sub-microstrip lines with different impedances, and each power distributor further comprises a first impedance transformer electrically coupled between the first microstrip lines with different impedances.
3. The liquid crystal antenna according to claim 1, wherein the transmission medium in the transmission medium region is air.
4. The liquid crystal antenna according to claim 1, wherein a width of the first microstrip line satisfies the following formula:
5. A liquid crystal antenna, comprising: a first substrate and a second substrate opposite to each other; a plurality of radiating devices on a side of the first substrate away from the second substrate; a power distribution network comprising a plurality of cascaded power distributors, each of the plurality of cascaded power distributors comprising a first microstrip line, a transmission medium region and a reference electrode, wherein the power distribution network is configured to feed electromagnetic signals to the plurality of radiating devices; and a phase shifter comprising: a plurality of liquid crystal regions between the first substrate and the second substrate, the reference electrode between the first substrate and the plurality of liquid crystal regions, and a second microstrip line between the second substrate and the plurality of liquid crystal regions; and a second impedance transformer electrically coupled between the first microstrip line and the second microstrip line adjacent to each other, wherein, respective one of the plurality of liquid crystal regions corresponds to respective one of the plurality of radiating devices, and an orthographic projection of each radiating device on the second substrate at least partially overlaps with an orthographic projection of the corresponding liquid crystal region on the second substrate; the transmission medium region of each power distributor is between adjacent liquid crystal regions, the reference electrode of each power distributor is between the first substrate and the transmission medium region, and the first microstrip line of each power distributor is between the second substrate and the transmission medium region; a tangent value of a dielectric loss angle of a transmission medium in the transmission medium region is smaller than a tangent value of a dielectric loss angle of a liquid crystal in the plurality of liquid crystal regions; the transmission medium region and a liquid crystal region adjacent to the transmission medium region are separated by a wall; and an orthographic projection of the wall on the second substrate at least partially overlaps with an orthographic projection of the second impedance transformer on the second substrate, and a length and width of the second impedance transformer are associated with a dielectric constant of the wall.
6. The liquid crystal antenna according to claim 5, wherein the wall is made of a frame sealant.
7. The liquid crystal antenna according to claim 5, wherein a width of the second microstrip line satisfies the following formula:
8. A communication device comprising the liquid crystal antenna according to claim 5.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to more clearly illustrate the technical solutions in embodiments of the disclosure, the accompanying drawings needed to be used in the description of the embodiments will be introduced briefly in the following. Obviously, the drawings in the following description represent only some embodiments of the disclosure. It should be noted that the dimensions shown in the drawings are only schematic and are not intended to limit the present disclosure in any way.
(2)
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(8) The embodiments of the present disclosure have been shown clearly in connection with the drawings, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the present disclosure in any way, but to explain the concepts of the present disclosure to those of ordinary skill in the art with reference to specific embodiments.
DETAILED DESCRIPTION OF EMBODIMENTS
(9) To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be further described in detail below with reference to the accompanying drawings.
(10)
(11) In an exemplary embodiment, further, in order to prevent energy loss during transmission, when the power distributor 104 includes microstrip lines 105 and 105′ with different impedances, as shown in
(12) In addition, as will be understood by those skilled in the art, the liquid crystal antenna 100 should further include other components to enable it to work normally, such as a reference electrode that forms an electric field with the microstrip lines 105, 105′ to adjust the alignment of the liquid crystal molecules, a controller that provides a low frequency voltage signal to the microstrip lines 105, 105′ to control the alignment of the liquid crystal molecules accordingly.
(13) In the liquid crystal antenna 100 shown in
(14) However, the inventors of the present disclosure recognize that in the liquid crystal antenna shown in
(15) In view of this, embodiments of the present disclosure provide a power distribution network.
(16) In particular, respective one of the plurality of liquid crystal regions 204 corresponds to respective one of the plurality of radiating devices 203, an orthographic projection of each radiating device 203 on the second substrate 202 at least partially overlaps with an orthographic projection of the corresponding liquid crystal region 204 on the second substrate 202, and the transmission medium region 208 is disposed between adjacent liquid crystal regions 204, as shown in
(17) It should be noted that although
(18) In the above embodiments of the present disclosure, a liquid crystal region is provided in a region where a phase shifter function is required to ensure a large-angle phase shifting function of the phase shifter, while in other regions, the power distribution network uses another transmission medium other than the liquid crystal, the dielectric loss angle of the transmission medium is smaller than the dielectric loss angle of the liquid crystal. As used herein, the term “dielectric loss angle” is also referred to as a dielectric phase angle, which is a ratio of power distributed amount to the non-power distributed amount in the dielectric under AC voltage, and reflects the amount of energy loss in a unit volume within the dielectric. Compared with the liquid crystal antenna 100 shown in
(19) In an exemplary embodiment, as shown in
(20) In some exemplary embodiments, the transmission medium in the transmission medium region 208 is air. In other words, the transmission medium region 208 is filled with air. In this way, the manufacturing process of the liquid crystal antenna can be simplified, and the manufacturing cost of the liquid crystal antenna can be reduced.
(21) Optionally, as shown in
(22) In particular, in an exemplary embodiment, a width of the first microstrip line may satisfy the following formula:
(23)
(24) where Z.sub.01 represents a characteristic impedance of the first microstrip line, ε.sub.e1 represents an effective dielectric constant of the transmission medium in the transmission medium region 208, μ.sub.1 represents a magnetic permeability of the transmission medium in the transmission medium region 208, w.sub.1 represents a width of the first microstrip line, and h.sub.1 represents a thickness of the transmission medium region 208.
(25) Similarly, in an exemplary embodiment, a width of the second microstrip line 207 may satisfy the following formula:
(26)
(27) where Z.sub.02 represents a characteristic impedance of the second microstrip line 207, ε.sub.e2 represents an effective dielectric constant of the liquid crystal in the liquid crystal region 204, μ.sub.2 represents a magnetic permeability of the liquid crystal in the liquid crystal region 204, w.sub.2 represents a width of the second microstrip line 207, and h.sub.2 represents a thickness of the liquid crystal region 204.
(28) In an exemplary embodiment, as shown in
(29)
(30) Turning to
(31) Further, an embodiment of the present disclosure further provides a communication device, which uses any one of the liquid crystal antennas described above.
(32) In such communication device, a liquid crystal region is provided in a region where a phase shifter function is required to ensure a large-angle phase shifting function of the phase shifter, while in other regions, the power distribution network uses another transmission medium other than the liquid crystal, the dielectric loss angle of the another transmission medium is smaller than the dielectric loss angle of the liquid crystal. By replacing the transmission medium in the region other than the region where the phase shifter function is required with a transmission medium having a smaller dielectric loss angle (that is, a smaller energy loss per unit volume), the power distribution network of the liquid crystal antenna in the communication device can substantially reduce the transmission loss generated by the liquid crystal in the power distribution network under the premise of ensuring that the input signals are evenly distributed to the array elements in equal amplitude and same phase.
(33) Unless defined otherwise, the technical or scientific terms used in the present disclosure shall have the ordinary meanings as understood by those of ordinary skill in the art to which this disclosure belongs. The terms “first”, “second”, and the like used in this disclosure do not indicate any order, quantity, or importance, but are only used to distinguish different components. Similarly, “a”, “an”, or “the” and the like do not indicate a limit on quantity, but rather indicate that there is at least one. Words such as “include” or “comprise” mean that the element or item preceding the word covers the element or item listed after the word and the equivalent thereof without excluding other elements or items. Words such as “connected” or “coupled” are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect. “Up”, “down”, “left”, “right”, etc. are only used to indicate the relative position relationship. When the absolute position of the described object changes, the relative position relationship may also change accordingly. It should be noted that the features in the above embodiments can be used in any combination without conflict.
(34) The above embodiments are only used for explanations rather than limitations to the present disclosure. The person of ordinary skill in the art, in the case of not departing from the spirit and scope of the present disclosure, may also make various modifications and variations. Therefore, all the equivalent solutions also belong to the scope of the present disclosure. The protection scope of the present disclosure should be defined by the claims.