radio wave reflector

The radio wave reflector with unit structures and a reference conductor stabilizes phase characteristics over a wide frequency band, addressing the limitations of existing dielectric lens technologies.

JP7767632B2Active Publication Date: 2025-11-11KYOCERA CORP
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Patent Information

Application Number
JP2024542732
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-08-25
Filing Date
2023-08-08
Publication Date
2025-11-11
Estimated Expiration
2043-08-08

AI Technical Summary

Technical Problem

Existing radio wave control techniques using dielectric lenses are limited in their ability to maintain consistent phase characteristics over a wide frequency band, making them ineffective for diverse electromagnetic wave applications.

Method used

A radio wave reflector design featuring a plurality of unit structures with resonators and a reference conductor, arranged in a specific configuration to stabilize phase characteristics over a wide frequency band through linear relationships between frequency and phase.

Benefits of technology

The design achieves stable phase characteristics over a wide frequency range, enhancing the reflector's performance and adaptability to various electromagnetic wave frequencies.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This radio wave reflector includes a plurality of unit structures arranged in a first plane direction, and a reference conductor serving as a reference potential of the plurality of the unit structures. The plurality of unit structures are configured by an equivalent circuit comprising two or more resonant circuits. The reference conductor is disposed below a resonator in a first direction.
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Description

[Technical Field]

[0001] The present disclosure relates to a radio wave reflector and a composite resonator. [Background technology]

[0002] There are known techniques for controlling electromagnetic waves without using a dielectric lens. For example, Patent Document 1 describes a technique for refracting radio waves by changing the parameters of each element in a structure in which resonator elements are arranged. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-231182 Summary of the Invention

[0004] The radio wave reflector of the present disclosure includes a plurality of unit structures arranged in a first surface direction and a reference conductor that serves as a reference potential for the plurality of unit structures, the plurality of unit structures being represented by an equivalent circuit having two or more resonant circuits, and the reference conductor being arranged below the resonator in the first direction.

[0005] The radio wave reflector of the present disclosure includes a plurality of unit structures arranged in a first surface direction and a reference conductor that serves as a reference potential for the plurality of unit structures, the plurality of unit structures including two or more resonators extending in the first direction and a connection portion that magnetically or capacitively connects the resonators and includes the reference conductor, the reference conductor being arranged below the resonators in the first direction.

[0006] The radio wave reflector of the present disclosure includes a plurality of unit structures arranged in a first surface direction, and a reference conductor that serves as a reference potential for the plurality of unit structures, wherein the plurality of unit structures include a first resonator that extends in the first surface direction, a second resonator that is spaced apart from the first resonator in the first direction and also extends in the first surface direction, and a connection portion that magnetically or capacitively connects the first resonator and the second resonator in the first direction, and the reference conductor is arranged below the first resonator and the second resonator in the first direction.

[0007] The radio wave reflector of the present disclosure includes a plurality of unit structures arranged in a first surface direction and a reference conductor that serves as a reference potential and is connected across the plurality of unit structures, and has a first resonator that inputs and outputs electromagnetic waves to and from free space and is coupled to the first resonator, the first resonator being electromagnetically coupled to one or more third resonator groups arranged in the stacking direction, and further, the main coupling is a subordinate coupling between the resonators, and the reference conductor is characterized in that coupling and frequency adjustment are performed, and the reference conductor is arranged below the first resonator in the first direction.

[0008] The composite resonator of the present disclosure is expressed by an equivalent circuit including two or more resonant circuits, and a reference conductor is disposed below the resonators in the first direction.

[0009] The composite resonator of the present disclosure includes two or more resonators extending in a first direction and a connection portion that magnetically or capacitively connects the resonators and includes a reference conductor, the reference conductor being arranged below the resonators in the first direction.

[0010] The composite resonator of the present disclosure includes a first resonator extending in the first surface direction, a second resonator spaced apart from the first resonator in the first direction and extending in the first surface direction, a connection portion that magnetically or capacitively connects the first resonator and the second resonator in the first direction, and a reference conductor arranged below the first resonator and the second resonator in the first direction.

[0011] The composite resonator of the present disclosure has a first resonator that inputs and outputs electromagnetic waves to and from free space and is coupled thereto, the first resonator being electromagnetically coupled to one or more third resonator groups arranged in the stacking direction, and further, the primary coupling is a subordinate coupling between those resonators, and is represented by an equivalent circuit characterized in that coupling and frequency adjustment are performed by a reference conductor, and the reference conductor is arranged below the first resonator in the first direction. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a diagram for explaining an overview of a radio wave reflector according to an embodiment. [Figure 2] FIG. 2 is a diagram showing a configuration example of a unit structure according to the embodiment. [Figure 3] FIG. 3 is a diagram illustrating an example of the configuration of a coupling conductor according to the embodiment. [Figure 4] FIG. 4 is a diagram showing an example of phase characteristics of a unit structure according to a comparative example. [Figure 5] FIG. 5 is a diagram showing an example of the phase characteristics of the first example unit structure according to the embodiment. [Figure 6] FIG. 6 is a diagram showing an example of the phase characteristics of the second example unit structure according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, an embodiment of the present invention will be described in detail with reference to the accompanying drawings. Note that the present invention is not limited to this embodiment, and in the following embodiments, the same components are designated by the same reference numerals, and redundant explanations will be omitted.

[0014] In the following explanation, an XYZ Cartesian coordinate system is set, and the positional relationship of each part will be explained with reference to this XYZ Cartesian coordinate system. The direction parallel to the X axis in a horizontal plane is defined as the X-axis direction, the direction parallel to the Y axis in the horizontal plane perpendicular to the X axis is defined as the Y-axis direction, and the direction parallel to the Z axis perpendicular to the horizontal plane is defined as the Z-axis direction. Furthermore, the plane containing the X and Y axes will be referred to as the XY plane as appropriate, the plane containing the X and Z axes will be referred to as the XZ plane as appropriate, and the plane containing the Y and Z axes will be referred to as the YZ plane as appropriate. The XY plane is parallel to the horizontal plane. The XY plane, XZ plane, and YZ plane are perpendicular to each other.

[0015] [Embodiment] (Radio wave reflector) An overview of the radio wave reflector according to the embodiment will be described with reference to Fig. 1. Fig. 1 is a diagram for explaining the overview of the radio wave reflector according to the embodiment.

[0016] The radio wave reflector 1 is a plate-like member configured to allow radio waves transmitted from a base station to pass through. For example, when the radio wave reflector 1 receives radio waves transmitted from a base station, it reflects the radio waves at a predetermined angle and then transmits them. The radio wave reflector 1 can be configured, for example, from a metamaterial that changes the phase of the incident wave.

[0017] As shown in FIG. 1, the radio wave reflector 1 can include, for example, a substrate 2, a unit structure 10a, a unit structure 10b, a unit structure 10c, and a unit structure 10d.

[0018] The unit structures 10a, 10b, 10c, and 10d may be formed on a substrate 2. The substrate 2 may have, for example, but is not limited to, a rectangular shape. The unit structures 10a, 10b, 10c, and 10d may be arranged two-dimensionally on the substrate 2. The substrate 2 may be, for example, a dielectric substrate made of a dielectric material.

[0019] Specifically, in the substrate 2, a plurality of unit structures 10a are arranged at the bottom of the substrate 2. columnOn the substrate 2, a plurality of unit structures 10b may be arranged in a row on the step above the step on which the unit structure 10a is arranged. On the substrate 2, a plurality of unit structures 10c may be arranged in a row on the step above the step on which the unit structure 10b is arranged. On the substrate 2, a plurality of unit structures 10d may be arranged in a row on the step above the step on which the unit structure 10c is arranged. That is, the radio wave reflector 1 may have a structure in which a plurality of unit structures of different sizes are periodically arranged. The unit structures 10a to 10d may each vary in the frequency band and the amount of phase change of the radio waves they change. Although the unit structures 10a to 10d each have a rectangular shape, this is not limiting. By changing the size and shape of the unit structures 10a, 10b, 10c, and 10d, the frequency band and the amount of phase change of the radio waves to be reflected may be adjusted.

[0020] [Unit Structure Configuration] A configuration example of a unit structure according to an embodiment will be described with reference to Fig. 2. Fig. 2 is a diagram showing a configuration example of a unit structure according to an embodiment.

[0021] 2, the unit structure 10 includes a substrate 12, a first resonator 14, a coupling conductor 16, a second resonator 18, and a reflective conductor (reference conductor) 20. The unit structure 10 has a four-layer structure in which conductors are stacked in four layers. The unit structure 10 is stacked in the following order from bottom to top: the reflective conductor 20, the second resonator 18, the coupling conductor 16, and the first resonator 14.

[0022] The first resonator 14 is formed on the top layer. The first resonator 14 extends in the XY plane. The first resonator 14 may be, for example, a patch conductor formed in a rectangular shape, but the present disclosure is not limited thereto. The shape of the first resonator 14 may be, for example, a linear, circular, loop, or polygonal shape other than a rectangle. The shape of the first resonator 14 may be arbitrarily changed depending on the design. The first resonator 14 is configured to resonate with electromagnetic waves received from the +Z-axis direction. The first resonator 14 is not in contact with the edge of the substrate 12. The size of the first resonator 14 may be arbitrarily changed depending on the design.

[0023] The coupling conductor 16 is formed on a layer immediately below the layer on which the first resonator 14 is formed. FIG. 3 is a diagram illustrating an example of the configuration of the coupling conductor 16 according to the embodiment. As illustrated in FIG. 3, the coupling conductor 16 extends on the XY plane. The coupling conductor 16 is configured in a square shape. The coupling conductor 16 has a hole 16a, a hole 16b, a hole 16c, and a hole 16d. The hole 16a is formed, for example, in the upper left corner of the coupling conductor 16. The hole 16b is formed, for example, in the upper right corner of the coupling conductor 16. The hole 16c is formed, for example, in the lower left corner of the coupling conductor 16. The hole 16d is formed, for example, in the lower right corner of the coupling conductor 16. The hole 16a, the hole 16b, the hole 16c, and the hole 16d may be formed, for example, in the same square shape. That is, the coupling conductor 16 has holes 16a to 16d formed so as to have four-fold rotational symmetry. The sizes of the holes 16a to 16d can be changed as desired depending on the design. The coupling conductor 16 is also called a connection part that capacitively or magnetically connects the first resonator 14 and the second resonator 18.

[0024] The second resonator 18 is formed on the layer immediately below the layer on which the coupling conductor 16 is formed. The second resonator 18 extends in the XY plane. The second resonator 18 may be, for example, a patch conductor formed in a rectangular shape, but the present disclosure is not limited thereto. The shape of the second resonator 18 may be, for example, a linear, circular, loop, or polygonal shape other than a rectangle. The shape of the second resonator 18 may be arbitrarily changed depending on the design. The second resonator 18 is configured to resonate with electromagnetic waves received from the +Z-axis direction. The second resonator 18 is not in contact with the edge of the substrate 12. The size of the second resonator 18 may be arbitrarily changed depending on the design. The first resonator 14 and the second resonator 18 may have different shapes and sizes. The first resonator 14 and the second resonator 18 are capacitively or magnetically connected via the holes 16a and 16d of the coupling conductor 16.

[0025] The reflective conductor 20 is formed on the substrate 2 over the entire XY plane. The reflective conductor 20 is disposed on the bottom surface of the unit feature 10. The reflective conductor 20 includes a conductor. The reflective conductor 20 is configured as a reference conductor (ground conductor). The reflective conductor 20 is configured, for example, to reflect electromagnetic waves received from the +Z-axis direction in the +Z-axis direction. Note that the reflective conductor 20 is not limited to being formed over the entire XY plane. The reflective conductor 20 only needs to be sufficiently large relative to the wavelength of the received radio waves, for example.

[0026] That is, the unit structure 10 can be represented by an equivalent circuit including two LC resonant circuits. The unit structure 10 may also have a configuration represented by an equivalent circuit including two or more LC resonant circuits. In other words, the unit structure 10 may include two or more resonators. In this case, the coupling conductor 16 is located between each of the resonators. In this case, the coupling conductor 16 is configured to magnetically or capacitively connect each of the resonators.

[0027] The first resonator 14 of the unit structure 10 can also be considered a resonator that inputs and outputs electromagnetic waves to and from free space and couples with electromagnetic waves. The first resonator 14 may be electromagnetically coupled to a third resonator group including one or more resonators arranged in the Z direction (stacking direction). The primary coupling between the multiple resonators may be replaced by secondary coupling between the resonators. In this case, the multiple resonators can be represented by an equivalent circuit in which coupling and frequency adjustment are performed by a reflective conductor 20 (reference conductor).

[0028] [Frequency characteristics] (Comparative Example) The phase characteristics of the unit structure according to the comparative example will be described with reference to Fig. 4. Fig. 4 is a diagram showing an example of the phase characteristics of the unit structure according to the comparative example. Comparative Example of The unit structure has, for example, a so-called mushroom structure in which a ground substrate and a metal plate are electromagnetically connected by vias.

[0029] In FIG. 4, the horizontal axis represents frequency [GHz (gigahertz)], and the vertical axis represents phase [deg]. Graph 101 shows the relationship between frequency and phase. As shown in graph 101, the unit structure according to the comparative example has nonlinear characteristics with respect to frequency. Therefore, the unit structure according to the comparative example is configured to target only a specific frequency, and it is difficult to maintain characteristics over a wide band.

[0030] (Embodiment) The phase characteristics of the unit structure according to the embodiment will be described with reference to Fig. 5 and Fig. 6. Fig. 5 is a diagram showing an example of the phase characteristics of a first example unit structure according to the embodiment. Fig. 6 is a diagram showing an example of the phase characteristics of a second example unit structure according to the embodiment.

[0031] In FIG. 5, the horizontal axis represents frequency [GHz] and the vertical axis represents phase [deg]. Graph 111 shows the relationship between frequency and phase. Graph 121 is an approximation of graph 111. That is, the unit structure 10 according to the embodiment exhibits a linear relationship between frequency and phase in a specific frequency band. For example, the unit structure 10 according to the embodiment exhibits a linear relationship between frequency and phase in frequency bands F1 and F2. The frequency band F1 is, for example, a band from approximately 24.00 GHz to 26.50 GHz. The frequency band F2 is, for example, a range from approximately 26.50 GHz to 29.00 GHz. The frequency bands F1 and F2 have a bandwidth of 2.5 GHz. As shown in graph 111, the unit structure 10 according to the embodiment exhibits a linear relationship between frequency and phase in, for example, the frequency bands F1 and F2. Specifically, the unit structure 10 according to the embodiment exhibits linear characteristics between frequency and phase in a phase range of approximately -180° to +50°. As a result, the unit structure 10 according to the embodiment can reduce the effect of frequency deviation on phase in frequency bands F1 and F2, thereby stabilizing the characteristics of the unit structure 10 over a wide band. In the present disclosure, by changing the design of the unit structure 10, it is possible to change the region in which the linear characteristics between frequency and phase are exhibited.

[0032] FIG. 6 shows an example of the phase characteristic of a unit structure different from that shown in FIG. 5. In FIG. 6, the horizontal axis indicates frequency [GHz], and the vertical axis indicates phase [deg]. Graph 112 shows the relationship between frequency and phase. Graph 122 is an approximation of graph 112. straight line For example, the unit structure 10 according to the embodiment exhibits a linear characteristic in the relationship between frequency and phase in the frequency bands F3 and F4. The frequency band F3 is, for example, a band from about 22.00 GHz to 24.50 GHz. 4 For example, the frequency band F3 is in the range from 24.50 GHz to 27.00 GHz. 4 has a bandwidth of 2.5 GHz. That is, frequency bands F3 and F4 are different from frequency bands F1 and F2 shown in FIG. 5, respectively. As shown in graph 112, in the example shown in FIG. 6, the unit structure 10 exhibits a linear characteristic of frequency and phase in frequency bands F3 and F4. Specifically, in the example shown in FIG. 6, the unit structure 10 exhibits a linear characteristic of frequency and phase in the range of approximately -100° to +180°. 6 In the example shown in FIG. 1, the unit structure 10 can reduce the effect of frequency deviation on the phase in the frequency bands F3 and F4, and therefore the characteristics of the unit structure 10 can be stabilized over a wide band.

[0033] 5 and 6, the region in which the relationship between frequency and phase exhibits linear characteristics can be changed by changing the design of the unit structure 10. For example, the present disclosure makes it possible to realize a unit structure having linear phase characteristics over a wide range, such as from −180° to +180°.

[0034] Although the embodiments of the present disclosure have been described above, the present disclosure is not limited to the contents of these embodiments. Furthermore, the above-described components include those that can be easily imagined by a person skilled in the art, those that are substantially the same, and those that are within the so-called equivalent range. Furthermore, the above-described components can be combined as appropriate. Furthermore, various omissions, substitutions, or modifications of the components can be made without departing from the spirit of the above-described embodiments. [Explanation of symbols]

[0035] 1 Radio wave reflector 2,12 PCB 10 Unit Structure 14 1st resonator 16 Coupled Conductors 18 Second resonator 20 Reflecting conductor

Claims

1. A radio wave reflector having a plurality of composite resonators arranged on a first surface, Each of the composite resonators comprises: a first resonator extending in a first plane direction; a second resonator disposed below the first resonator in the first direction and extending in the first plane direction; a connection portion disposed between the first resonator and the second resonator in the first direction and magnetically or capacitively connecting the first resonator and the second resonator; a reference conductor disposed below the second resonator in the first direction, extending in the first plane direction, and having an area larger than an area of ​​the first resonator and an area larger than an area of ​​the second resonator; Includes a radio wave reflector.

2. Each of the composite resonators comprises: further comprising a third resonator group including one or more resonators; the first resonators and the third resonator group are electromagnetically coupled to each other; The radio wave reflector according to claim 1.

3. The connection portion has a hole.

3. The radio wave reflector according to claim 1 or 2.

4. the hole is formed so that the connection portion has four-fold rotational symmetry; The radio wave reflector according to claim 3.

Citation Information

Patent Citations

  • Artificial magnetic conductor reflection plate for five-band multiplexing

    CN107394412A

  • Metamaterial passive element

    JP2015231182A

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