Composite resonators and assemblies

By designing a composite resonator including the first, second and third resonators, the problem of lack of design flexibility in transmission in the prior art is solved, and efficient transmission of electromagnetic waves and wide frequency characteristics are achieved.

JP7678697B2Active Publication Date: 2025-05-16KYOCERA CORP
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Patent Information

Application Number
JP2021070368
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-04-19
Publication Date
2025-05-16
Estimated Expiration
2041-04-19

AI Technical Summary

Technical Problem

The composite resonators in the prior art lack design flexibility in transmission, especially in changing polarization, without an effective transmission mechanism.

Method used

A composite resonator is designed, including a first resonator, a second resonator and a third resonator located between the first and second resonators, connected by magnetic or capacitively, and without contact with the reference conductor, thereby achieving a direct connection to the first and second resonators.

Benefits of technology

A composite resonator and assembly with high design flexibility can effectively connect and transmit electromagnetic waves without contacting the reference conductor, providing a wide range of frequency characteristics and efficient signal processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a complex resonator capable of configuring an aggregate with a high flexibility of design, and to provide the aggregate.SOLUTION: A complex resonator comprises: a first resonator extending in a first surface direction; a second resonator separated from the first resonator in a first direction and extending in the first surface direction; a third resonator located between the first resonator and the second resonator in the first direction and configured so as to be magnetically or capacitively connected or electrically connected with each of the first resonator and the second resonator; and a reference conductor located between the first resonator and the second resonator in the first direction, extending in the first surface direction and giving a potential reference for the first resonator and the second resonator. The third resonator directly couples the first resonator and the second resonator to each other and not in contact with the reference conductor. The first resonator and the second resonator are arranged so that the center of the first resonator and the center of the second resonator are deviated in the first direction.SELECTED DRAWING: Figure 3
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Description

[Technical field]

[0001] The present disclosure relates to composite resonators and assemblies. [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 changing the polarization of 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] Special Publication No. 2003-526978 Summary of the Invention [Problem to be solved by the invention]

[0004] The resonator element described in Patent Document 1 changes the polarization when reflected, but there is no description regarding transmission.

[0005] An object of the present disclosure is to provide a composite resonator and an assembly that can form an assembly with high design freedom. [Means for solving the problem]

[0006] A composite resonator according to the present disclosure includes a first resonator extending in a first surface direction, a second resonator separated from the first resonator in the first direction and extending in the first surface direction, a third resonator located between the first resonator and the second resonator in the first direction and configured to be magnetically or capacitively connected to each of the first resonator and the second resonator or to be electrically connected to each of the first resonator and the second resonator, and a reference conductor extending in the first surface direction and located between the first resonator and the second resonator in the first direction, serving as a potential reference for the first resonator and the second resonator, wherein the third resonator directly connects the first resonator and the second resonator and is not in contact with the reference conductor, and the first resonator and the second resonator are arranged such that a center of the first resonator and a center of the second resonator are shifted from each other in the first direction.

[0007] The assembly according to the present disclosure includes a plurality of composite resonators according to the present disclosure, and the plurality of composite resonators are aligned in the first surface direction. Effect of the Invention

[0008] According to the present disclosure, it is possible to provide a composite resonator and an assembly that can configure an assembly with high design freedom. [Brief description of the drawings]

[0009] [Figure 1] FIG. 1 is a diagram for explaining an overview of a radio wave refraction plate according to each embodiment. [Diagram 2] FIG. 2 is a diagram illustrating a schematic configuration example of a unit structure according to the first embodiment. [Diagram 3] FIG. 3 is a graph showing frequency characteristics of the unit structure according to the first embodiment. [Figure 4] FIG. 4 is a graph showing frequency characteristics of the unit structure according to the first embodiment. [Diagram 5] FIG. 5 is a diagram illustrating a configuration example of a unit structure according to the first embodiment. [Figure 6] FIG. 6 is a graph showing frequency characteristics of the unit structure according to the second embodiment. [Figure 7] FIG. 7 is a graph showing frequency characteristics of the unit structure according to the second embodiment. [Figure 8] FIG. 8 is a diagram illustrating a configuration example of a unit structure according to the third embodiment. [Figure 9] FIG. 9 is a graph showing frequency characteristics of the unit structure according to the third embodiment. [Figure 10] FIG. 10 is a graph showing frequency characteristics of the unit structure according to the third embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. The present disclosure is not limited to the embodiments described below.

[0011] In the following description, an XYZ Cartesian coordinate system is set, and the positional relationship of each part is described 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, a plane including the X-axis and Y-axis is appropriately referred to as the XY plane, a plane including the X-axis and Z-axis is appropriately referred to as the XZ plane, and a plane including the Y-axis and Z-axis is appropriately referred to as the YZ plane. The XY plane is parallel to the horizontal plane. The XY plane, the XZ plane, and the YZ plane are perpendicular to each other.

[0012] [overview] Figure 1 shows an assembly in which multiple composite resonators are periodically arranged. The assembly has a function as a group of multiple periodically arranged composite resonators.

[0013] As shown in FIG. 1, the assembly 1 includes a plurality of unit structures 10 and a substrate 12 .

[0014] The multiple unit structures 10 are arranged in the XY plane direction. The XY plane direction may also be called a first plane direction. That is, the multiple unit structures 10 are arranged two-dimensionally. Each of the multiple unit structures 10 has a resonant structure. The structure of the unit structures 10 will be described later. The unit structures 10 may also be called a composite resonator. The substrate 12 may be, for example, a dielectric substrate formed of a dielectric material. The assembly 1 is configured by arranging multiple unit structures 10 having resonant structures two-dimensionally on the substrate 12 made of a dielectric material.

[0015] In the present disclosure, an assembly can be formed by arranging composite resonators according to each of the following embodiments as shown in FIG.

[0016] [First embodiment] [Unit structure configuration] A configuration example of the unit structure according to the first embodiment will be described with reference to Fig. 2. Fig. 2 is a diagram showing a schematic configuration example of the unit structure according to the first embodiment. This structure is a structure that radiates horizontally polarized waves as horizontally polarized waves.

[0017] The first resonators 14 may be arranged on the substrate 12 so as to extend across the XY plane. The first resonators 14 may be formed of a conductor. The first resonators 14 may be, for example, patch conductors formed in a rectangular shape. In the example shown in FIG. 2, the first resonators 14 are shown as rectangular patch conductors, but the present disclosure is not limited thereto. The shape of the first resonators 14 may be, for example, linear, circular, loop, or polygonal except for rectangular. That is, the shape of the first resonators 14 may be arbitrarily changed depending on the design. The first resonators 14 are configured to resonate with electromagnetic waves received from the +Z axis direction.

[0018] The first resonator 14 is configured to radiate electromagnetic waves when resonating. The first resonator 14 is configured to radiate electromagnetic waves in the +Z-axis direction when resonating.

[0019] The second resonators 16 may be arranged on the substrate 12 so as to spread across the XY plane at positions away from the first resonators 14 in the Z-axis direction. The second resonators 16 may be, for example, patch conductors formed in a rectangular shape. In the example shown in FIG. 2, the second resonators 16 are shown as rectangular patch conductors, but the present disclosure is not limited thereto. The shape of the second resonators 16 may be, for example, linear, circular, loop, or polygonal except for rectangular. That is, the shape of the second resonators 16 may be arbitrarily changed depending on the design. The shape of the second resonators 16 may be the same as or different from the shape of the first resonators 14. The area of ​​the second resonators 16 may be the same as or different from the area of ​​the first resonators 14.

[0020] The second resonator 16 is configured to radiate electromagnetic waves when resonating. The second resonator 16 is configured to radiate electromagnetic waves, for example, in the -Z axis direction. The second resonator 16 is configured to radiate electromagnetic waves in the -Z axis direction when resonating. The second resonator 16 is configured to resonate by receiving electromagnetic waves from the -Z axis direction.

[0021] The second resonator 16 may be configured to resonate in a different phase from the first resonator 14. The second resonator 16 may be configured to resonate in a different direction from the first resonator 14 in the XY plane direction. For example, when the first resonator 14 is configured to resonate in the X-axis direction, the second resonator 16 may be configured to resonate in the Y-axis direction. The resonance direction of the second resonator 16 may be configured to change over time in the XY plane direction in response to the change over time of the resonance direction of the first resonator 14. The second resonator 16 may be configured to radiate the electromagnetic wave received by the first resonator 14 with the first frequency band attenuated.

[0022] The reference conductor 18 may be arranged between the first resonator 14 and the second resonator 16 on the substrate 12. The reference conductor 18 may be, for example, at the center of the first resonator 14 and the second resonator 16 on the substrate 12, but the present disclosure is not limited thereto. The reference conductor 18 may be, for example, at a position where the distance between the reference conductor 18 and the first resonator 14 is different from the distance between the reference conductor 18 and the second resonator 16. The reference conductor 18 has a through hole 18a through which the connection line 20 passes. The reference conductor 18 is configured to surround at least a portion of the connection line 20.

[0023] The connection line 20 may be formed of a conductor. The connection line 20 is located between the first resonator 14 and the second resonator 16 in the Z-axis direction. The Z-axis direction may be referred to as, for example, a first direction. The connection line 20 may be connected to each of the first resonator 14 and the second resonator 16. The connection line 20 passes through the through hole 18a but does not contact the reference conductor 18. The connection line 20 may be configured to be magnetically or capacitively connected to each of the first resonator 14 and the second resonator 16, for example. The connection line 20 may be configured to be electrically connected to each of the first resonator 14 and the second resonator 16, for example. The connection line 20 is connected to a side of the first resonator 14 that is parallel to the X-axis direction, and is connected to a side of the second resonator 16 that is parallel to the X-axis direction. The connection line 20 may be a path that is parallel to the Z-axis direction. The connection line 20 may be a third resonator.

[0024] The unit structure 10 is configured to combine the first resonator 14 and the second resonator 16 by magnetically or capacitively connecting them or electrically connecting them. By combining the three resonators, the unit structure 10 is configured so that high frequency waves excited by electromagnetic waves incident on the first resonator 14 are transmitted through the composite resonator. The unit structure 10 can perform one or more functions of a phase shift, a band-pass filter, a high-pass filter, and a low-pass filter depending on the transmission characteristics of the unit structure.

[0025] The unit structure 10 is configured to change the phase of an electromagnetic wave incident on the first resonator 14 and emit it from the second resonator 16. The amount of phase change varies depending on the length of the connection line 20. The amount of phase change also varies depending on the area of ​​the first resonator 14 or the second resonator 16.

[0026] As shown in FIG. 2, in the unit structure 10, the first resonator 14 arranged on the upper surface of the substrate 12 and the second resonator 16 arranged on the lower surface of the substrate 12 are arranged in a shifted state from facing each other. Specifically, the second resonator 16 is arranged in a shifted state from the center of the lower surface of the substrate 12. The first resonator 14 and the second resonator 16 are arranged in such a way that an electromagnetic wave incident on the first resonator 14 from the X-axis direction is emitted from the second resonator 16 in a direction parallel to the Y-axis direction. That is, the unit structure 10 is configured to convert a vertical electromagnetic wave into a horizontal direction. In other words, the second resonator 16 is configured to resonate in an in-plane direction different from that of the first resonator 14 in the XY plane direction. The connection line 20 is connected to the sides of the first resonator 14 and the second resonator 16 that are parallel to the Y-axis direction.

[0027] The frequency characteristics of the unit structure according to the first embodiment will be described with reference to Fig. 3 and Fig. 4. Fig. 3 and Fig. 4 are graphs showing the frequency characteristics of the unit structure according to the first embodiment.

[0028] In FIG. 3, the horizontal axis indicates frequency [GHz (Giga Hertz)], and the vertical axis indicates gain [dB (deci Bel)]. FIG. 3 shows graphs G1 and G2. Graph G1 indicates the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the X-axis direction. Graph G2 indicates the reflection coefficient. Graph G1 indicates that the insertion loss in the region from near 21.00 GHz to near 28.00 Hz is about -3 dB or more, indicating good transmission characteristics. Graph G2 indicates that the reflection coefficient in the region from near 21.00 GHz to near 28.00 GHz is low. That is, the unit structure 10 shown in FIG. 2 has a wide range of good transmission characteristics such as from near 21.00 GHz to near 28.00 GHz. That is, the unit structure 10 can be used as a spatial filter that changes the phase of an electromagnetic wave.

[0029] In Fig. 4, the horizontal axis indicates frequency [GHz], and the vertical axis indicates gain [dB]. Graph G3 is shown in Fig. 4. Graph G3 indicates the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the Y-axis direction. As shown in graph G3, the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the X-axis direction is a maximum of -60 dB. That is, the unit structure 10 is configured so that an electromagnetic wave incident from the X-axis direction to the first resonator 14 is not output from the X-axis direction of the second resonator 16.

[0030] [Second embodiment] [Unit structure configuration] A configuration example of a unit structure according to the second embodiment will be described with reference to Fig. 5. Fig. 5 is a diagram showing a schematic configuration example of a unit structure according to the second embodiment. This structure is a structure that radiates horizontally polarized waves as vertically polarized waves.

[0031] As shown in FIG. 5, in the unit structure 10A, the first resonator 14 arranged on the upper surface of the substrate 12 and the second resonator 16 arranged on the lower surface of the substrate 12 are arranged in a shifted state from facing each other. Specifically, the second resonator 16 is arranged in a shifted state in the Y-axis direction so that the center of the lower surface of the substrate 12 and the center of the second resonator 16 are shifted from each other. The first resonator 14 and the second resonator 16 are arranged so that an electromagnetic wave incident on the first resonator 14 from the X-axis direction is circularly polarized and emitted from the second resonator 16. In the second embodiment, the connection line 20 is connected to a side parallel to the Y-axis direction in the first resonator 14, and is connected to a side parallel to the X-axis direction in the second resonator 16.

[0032] The frequency characteristics of the unit structure according to the second embodiment will be described with reference to Fig. 6 and Fig. 7. Fig. 6 and Fig. 7 are graphs showing the frequency characteristics of the unit structure according to the second embodiment.

[0033] In FIG. 6, the horizontal axis indicates frequency [GHz], and the vertical axis indicates gain [dB]. FIG. 6 shows graphs G4 and G5. Graph G4 indicates the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the X-axis direction. Graph G5 indicates the reflection coefficient. Graph G5 indicates that the insertion loss is −40 dB in each frequency band. This indicates that in the unit structure 10A, an electromagnetic wave incident in the X-axis direction is unlikely to be output in the X-axis direction. Graph G5 indicates that the reflection coefficient is low in each frequency band.

[0034] In Fig. 7, the horizontal axis indicates frequency [GHz], and the vertical axis indicates gain [dB]. Graph G6 is shown in Fig. 7. Graph G6 indicates the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the Y-axis direction. As shown in graph G6, the insertion loss in the region from near 21.00 GHz to near 29.00 Hz is about -3 dB or more, indicating good transmission characteristics. In the unit structure 10A, the first resonator 14 is connected to a side parallel to the Y-axis direction, and the second resonator 16 is connected to a side parallel to the X-axis direction.

[0035] [Third embodiment] [Unit structure configuration] A configuration example of a unit structure according to the third embodiment will be described with reference to Fig. 8. Fig. 8 is a diagram showing a schematic configuration example of a unit structure according to the third embodiment. This structure is a structure that radiates linearly polarized waves as horizontally polarized waves.

[0036] 8, the unit structure 10B differs from the unit structure 10 shown in FIG. 2 in that the shape of the second resonator 16 disposed on the lower surface of the substrate 12 is different. Specifically, the second resonator 16 of the unit structure 10B has a shape like a rectangular resonator with one apex portion cut off. In the fifth embodiment, the resonance direction of the second resonator 16 is configured to change over time with respect to the resonance direction of the first resonator 14 in the XY plane direction.

[0037] The frequency characteristics of the unit structure according to the third embodiment will be described with reference to Fig. 9 and Fig. 10. Fig. 9 and Fig. 10 are graphs showing the frequency characteristics of the unit structure according to the third embodiment.

[0038] In FIG. 9, the horizontal axis indicates frequency [GHz], and the vertical axis indicates gain [dB]. FIG. 9 shows graphs G7 and G8. Graph G7 shows the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the X-axis direction. Graph G8 shows the reflection coefficient. Graph G7 shows that the insertion loss in the region from near 21.00 GHz to near 28.00 Hz is about -5 dB or more, indicating good transmission characteristics. Graph G8 shows that the reflection coefficient in the region from near 21.00 GHz to near 28.00 GHz is low. That is, the unit structure 10B shown in FIG. 8 has a wide range of good transmission characteristics such as from near 21.00 GHz to near 28.00 GHz.

[0039] In Fig. 10, the horizontal axis indicates frequency [GHz], and the vertical axis indicates gain [dB]. Graph G9 is shown in Fig. 10. Graph G9 indicates the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the Y-axis direction. As shown in graph G9, the transmission coefficient when an electromagnetic wave incident from the X-axis direction is output in the Y-axis direction has an insertion loss of about -5 dB or more in the region from near 21.00 GHz to near 28.00 Hz, indicating good transmission characteristics.

[0040] The unit structure 10B is configured to emit an electromagnetic wave incident on the first resonator 14 from the X-axis direction from the X-axis direction and the Y-axis direction of the second resonator 16. In other words, the unit structure 10D is configured to circularly polarize and emit an electromagnetic wave incident on the first resonator 14 from the X-axis direction.

[0041] Although the embodiments of the present disclosure have been described above, the present disclosure is not limited to the contents of these embodiments. The above-mentioned components include those that a person skilled in the art can easily imagine, those that are substantially the same, and those that are within the so-called equivalent range. Furthermore, the above-mentioned components can be appropriately combined. Furthermore, various omissions, substitutions, or modifications of the components can be made without departing from the gist of the above-mentioned embodiments. [Explanation of symbols]

[0042] 1 aggregate 10 Unit Structure 12 Substrate 14 1st resonator 16 Second resonator 18 Reference Conductor 20 Connecting Lines

Claims

1. a first resonator extending in a first plane direction; a second resonator spaced apart from the first resonator in a first direction and extending in the first plane direction; a third resonator located between the first resonator and the second resonator in the first direction and configured to be magnetically or capacitively coupled to, or electrically coupled to, each of the first resonator and the second resonator; a reference conductor that extends in the first plane direction, is located between the first resonator and the second resonator in the first direction, and serves as a potential reference for the first resonator and the second resonator; The first resonator and the second resonator are configured in a rectangular shape, the third resonator is connected to a side of the first resonator that is parallel to a second direction in the first plane direction, and is connected to a side of the second resonator that is parallel to a third direction different from the second direction in the first plane direction. Composite resonator.

2. a first resonator extending in a first plane direction; a second resonator spaced apart from the first resonator in a first direction and extending in the first plane direction; a third resonator located between the first resonator and the second resonator in the first direction and configured to be magnetically or capacitively coupled to, or electrically coupled to, each of the first resonator and the second resonator; a reference conductor that extends in the first plane direction, is located between the first resonator and the second resonator in the first direction, and serves as a potential reference for the first resonator and the second resonator; The first resonator and the second resonator are configured in a rectangular shape, The second resonator has a structure lacking at least one apex portion. Composite resonator.

3. The first resonator is configured to resonate by receiving an electromagnetic wave from a forward direction of a first direction. The composite resonator according to claim 1 or 2.

4. The second resonator is configured to radiate electromagnetic waves when resonating. The composite resonator according to claim 1 .

5. The second resonator is configured to radiate electromagnetic waves in a direction opposite to the first direction when resonating. The composite resonator according to claim 1 .

6. The second resonator is configured to resonate by receiving an electromagnetic wave from a direction opposite to the first direction. The composite resonator according to claim 1 .

7. The first resonator is configured to radiate electromagnetic waves when resonating. The composite resonator according to claim 1 .

8. The first resonator is configured to radiate electromagnetic waves in a forward direction in the first direction when resonating. The composite resonator of claim 7.

9. The second resonator is configured to resonate out of phase with the first resonator. The composite resonator according to any one of claims 6 to 8.

10. The second resonator is configured to resonate in an in-plane direction different from that of the first resonator in the first plane direction. The composite resonator according to any one of claims 6 to 9.

11. The resonance direction of the second resonator is configured to change over time with respect to the resonance direction of the first resonator in the first planar direction. The composite resonator according to any one of claims 6 to 10.

12. A composite resonator comprising: The composite resonators are arranged in the first plane direction. collective.

Citation Information

Patent Citations

  • Metamaterial-based low-profile gradient refractive index lens

    CN112366458A

  • Polarization conversion radio frequency reflective surface

    JP2003526978A

  • Antenna device

    JP2010268216A

  • Antenna for Mobile communication Repeater

    KR200354132Y1

  • Unit cell of a transmission network for a reconfigurable antenna

    US20180301807A1