Reflection unit and wireless transmission system
A reflection unit with reflectarray reflectors addresses the challenges of redirecting radio transmission paths by allowing flexible reflection directions, improving high-frequency radio wave transmission and coverage in complex environments.
Patent Information
- Application Number
- JP2022558928
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-28
- Filing Date
- 2021-09-24
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-09-24
AI Technical Summary
Existing wireless communication systems face challenges in redirecting radio transmission paths efficiently, particularly with high-frequency radio waves like millimeter waves, due to narrow directivity and difficulty penetrating materials such as walls, leading to transmission loss and limited coverage in indoor environments.
The use of a reflection unit comprising multiple reflectarray reflectors that can be designed to reflect wireless communication signals in desired directions, including diffuse and focused reflections, to overcome directional restrictions and enhance coverage in complex environments.
The solution allows for improved transmission of high-frequency radio waves by diffusing or concentrating reflected waves, reducing transmission loss and enabling coverage in spaces with obstacles, thereby enhancing wireless communication systems' efficiency and coverage.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This disclosure relates to a reflector unit and a wireless transmission system. This application claims priority to Japanese Application No. 2020-180447, filed on October 28, 2020, and incorporates the entire contents of said Japanese application by reference. [Background technology]
[0002] Patent Document 1 discloses a radio wave reflector for use in an in-house information and communication system equipped with a master transceiver and a slave transceiver. The radio wave reflector in Patent Document 1 has a convex or concave curved surface and is attached to the ceiling of the premises.
[0003] Patent Document 2 discloses a design method for a reflectarray. A reflectarray is configured by arranging a plurality of reflective elements on a substrate. The reflectarray reflects incident radio waves in a desired direction.
[0004] Patent Document 3 discloses a curved reflector antenna. The reflector antenna of Patent Document 3 includes a primary radiator, a subreflector, and a main reflector. The subreflector has a curved surface that converts parallel light rays emitted from the primary radiator into focused light rays and reflects them. The main reflector has a curved surface that converts divergent light rays that diverge after the focused light rays from the subreflector pass through the focusing position into parallel light rays and reflects them. Patent Document 3 discloses that the subreflector and the main reflector may be configured as a reflectarray.
[0005] Patent Document 4 also discloses an antenna device including a primary radiator and a reflectarray.
[0006] Patent Document 5 discloses a millimeter wave transmitting and receiving system using a metal reflector.
[0007] Patent Document 6 discloses a millimeter wave communication system in which the initial direction of a metal reflector placed in the propagation path of a millimeter wave band signal can be easily adjusted.
[0008] Patent Document 7 discloses a millimeter-wave 90-degree bend used in a system that transmits millimeter waves output from a gyrotron in an electron cyclotron resonance heating device. The millimeter-wave 90-degree bend in Patent Document 7 changes the transmission direction of the millimeter waves using two reflectors.
[0009] Patent Document 8 discloses a reflectarray that can reflect, in desired directions, a first polarized wave having an electric field component parallel to the surface of the substrate and a second polarized wave having an electric field component perpendicular to the surface of the substrate.
[0010] Non-Patent Document 1 discloses the design of a reflectarray antenna that can be used for both radiation and scattering. [Prior art documents] [Patent documents]
[0011] [Patent Document 1] Japanese Patent Application Publication No. 6-200584 [Patent Document 2] Japanese Patent Application Laid-Open No. 2015-046821 [Patent Document 3] Japanese Patent Application Laid-Open No. 2012-182783 [Patent Document 4] Japanese Patent Application Laid-Open No. 2014-082709 [Patent Document 5] Japanese Patent Application Laid-Open No. 2010-118845 [Patent Document 6] Japanese Patent Application Laid-Open No. 2005-244362 [Patent Document 7] Japanese Patent Application Publication No. 6-053701 [Patent Document 8] Japanese Patent Application Laid-Open No. 2014-072818 [Non-patent literature]
[0012] [Non-Patent Document 1] Ryuhei Tsukada and two others, "Basic Study on the Design of a Reflectarray Antenna for Both Radiation and Scattering," Transmission Engineering Research Group Materials, Vol. 2016, No. 581, pp. 2-3, Tohoku University Research Institute of Electrical Communication, Transmission Engineering Research Group, June 2016 Summary of the Invention
[0013] One aspect of the present disclosure relates to a reflection unit that is installed in a wireless transmission path between a first radio device that at least transmits a wireless communication signal and a second radio device that at least receives the wireless communication signal in order to change the direction of the wireless transmission path, and that includes a plurality of reflectors that reflect the wireless communication signal, and the plurality of reflectors include at least one reflectarray reflector.
[0014] The disclosed reflection unit is a reflection unit installed in a wireless transmission path between a first radio that at least transmits a wireless communication signal and a second radio that at least receives the wireless communication signal, and includes at least one concentrated reflectarray reflector configured to concentrate reflected waves of the wireless communication signal at a focal point.
[0015] Another aspect of the disclosure is a wireless transmission system including a first radio that at least transmits a wireless communication signal, a second radio that at least receives the wireless communication signal, and a reflecting unit installed in the wireless transmission path between the first radio and the second radio to change the direction of the wireless transmission path. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a schematic diagram of a structure in which a wireless transmission system is installed. [Figure 2] FIG. 2 is a perspective view of the reflectarray reflector. [Figure 3] FIG. 3 is an explanatory diagram of variations in reflected waves from a reflectarray reflector. [Figure 4]FIG. 4 is a perspective view of a reflecting unit having a protective cover. [Figure 5] FIG. 5 is a plan view showing an example of installation of the reflection unit. [Figure 6] FIG. 6 is a perspective view of a reflecting unit having a protective cover. [Figure 7] FIG. 7 is an explanatory diagram showing variations of the reflecting unit. [Figure 8] FIG. 8 is an explanatory diagram showing variations of the reflecting unit. [Figure 9] FIG. 9 is an explanatory diagram showing variations of the reflecting unit. [Figure 10] FIG. 10 is an explanatory diagram showing variations of the reflecting unit. [Figure 11] FIG. 11 is an explanatory diagram showing variations of the reflecting unit. [Figure 12] FIG. 12 is an explanatory diagram of a single focus reflectarray reflector. [Figure 13] FIG. 13 is an explanatory diagram of a single focus reflectarray reflector. [Figure 14] FIG. 14 is an explanatory diagram of a multi-focal reflectarray reflector. [Figure 15] FIG. 15 is an explanatory diagram of a multi-focal reflectarray reflector. [Figure 16] FIG. 16 is a plan view showing an example of installation of a flat metal reflecting plate. [Figure 17] FIG. 17 is a plan view showing an example of installation of a convex curved metallic reflecting plate. [Figure 18] FIG. 18 is a plan view showing an example of installation of a reflectarray reflector. [Figure 19] FIG. 19 is a plan view showing an example of installation of a reflectarray reflector. [Figure 20] FIG. 20 is a plan view showing an example of installation of a reflectarray reflector. [Figure 21] FIG. 21 is a plan view showing an example of installation of a reflectarray reflector. [Figure 22]FIG. 22 is a cross-sectional view showing an example of installation of a reflectarray reflector. [Figure 23] FIG. 23 is an explanatory diagram showing that radio wave transmission loss is large in a ceiling or wall. [Figure 24] FIG. 24 is a plan view showing an example of installation of a reflectarray reflector. [Figure 25] FIG. 25 is a plan view showing an example of installation of a reflectarray reflector. [Figure 26] FIG. 26 is a plan view showing an example of installation of a reflectarray reflector. [Figure 27] FIG. 27 is a plan view showing an example of installation of a reflectarray reflector. [Figure 28] FIG. 28 is a plan view showing an example of installation of a reflectarray reflector. [Figure 29] FIG. 29 is a plan view showing an example of installation of a reflectarray reflector. [Figure 30] FIG. 30 is a plan view showing an example of installation of a reflectarray reflector. [Figure 31] FIG. 31 is a plan view showing an example of installation of a reflectarray reflector. [Figure 32] FIG. 32 is a plan view showing an example of installation of a reflectarray reflector. [Figure 33] FIG. 33 is a diagram illustrating an example of the configuration of a reflection unit according to the second embodiment. [Figure 34] FIG. 34 is a diagram illustrating reflection of a wireless communication signal by a reflecting unit according to the second embodiment. [Figure 35] FIG. 35 is a diagram illustrating reflection of a wireless communication signal by a reflecting unit according to the second embodiment. [Figure 36] FIG. 36 is a diagram for explaining reflection of a wireless communication signal by the first reflectarray reflector according to the second embodiment. [Figure 37] FIG. 37 is a diagram showing the configuration of a first modified example of the reflection unit according to the second embodiment. [Figure 38] FIG. 38 is a diagram showing the configuration of a second modified example of the reflection unit according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0017] <Problems to be solved by this disclosure> It may be necessary to redirect the radio transmission path between a first radio and a second radio that transmits and receives wireless communication signals, and a suitable reflecting unit for redirecting the radio transmission path is desired.
[0018] <Summary of Embodiments of the Present Disclosure> The following provides an outline of embodiments of the present disclosure.
[0019] (1) A reflection unit according to an embodiment is installed in a wireless transmission path between a first radio device that at least transmits a wireless communication signal and a second radio device that at least receives the wireless communication signal to change the direction of the wireless transmission path. The reflection unit includes multiple reflectors for reflecting the wireless communication signal. The multiple reflectors include at least one reflectarray reflector. Unlike metal reflectors, reflectarray reflectors are advantageous in that they can be designed to radiate reflected waves in a desired direction. Therefore, having at least one reflectarray reflector among the multiple reflectors increases the degree of freedom in the direction of the reflected wave. Furthermore, while a single reflectarray reflector makes it difficult to handle incident light from directly lateral or reflected light from directly lateral, including multiple reflectors in the reflection unit solves this problem. Note that the term "wireless communication signal" used here includes radio signals of quasi-millimeter waves, millimeter waves, and frequencies higher than millimeter waves, as well as high-frequency power signals.
[0020] (2) The at least one reflectarray reflector may be a plurality of reflectarray reflectors. By combining a plurality of reflectarray reflectors, the function of the reflecting unit is improved.
[0021] (3) The reflection unit may be attachable to a structure having a corner where a first surface and a second surface meet. The plurality of reflectarray reflectors may include a first reflectarray reflector attached to the first surface and a second reflectarray reflector attached to the second surface. In this case, an appropriate installation configuration at the corner can be obtained.
[0022] (4) The plurality of reflectarray reflectors may include at least one non-diffuse reflectarray reflector configured to non-diffusely reflect the wireless communication signal, thereby obtaining a non-diffuse reflected wave.
[0023] (5) The plurality of reflectarray reflectors may include at least one diffuse reflectarray reflector configured to diffusely reflect the wireless communication signal and at least one non-diffuse reflector configured to non-diffusely reflect the wireless communication signal, thereby achieving diffusion and non-diffusion of the reflected wave.
[0024] (6) The at least one non-diffusing reflectarray reflector may include at least one focused reflectarray reflector configured to focus reflected waves of the wireless communication signal at a focal point, thereby narrowing the angle of the reflected waves.
[0025] (7) The reflecting unit may be attachable to a structure having a first portion and a second portion through which the wireless communication signal propagates more easily than through the first portion. The centralized reflectarray reflector may be attached to the structure so that the reflected wave passes through the second portion. In this case, the narrow-angle reflected wave can pass through the second portion.
[0026] (8) The centralized reflectarray reflector may be configured so that the focal point is located at a position that avoids obstacles that exist in the wireless transmission path. In this case, wireless communication signals can be transmitted while avoiding the obstacles.
[0027] (9) The plurality of reflectors may include another reflector that further reflects the reflected wave from the concentrated reflectarray reflector. The other reflector may be smaller than the concentrated reflectarray reflector. In this case, the other reflector can be made smaller.
[0028] (10) The plurality of reflectarray reflectors may include a first reflectarray reflector and a second reflectarray reflector that reflects the wireless communication signal reflected by the first reflectarray reflector. The first reflectarray reflector may be any one of a diffuse reflectarray reflector, a focused reflectarray reflector, and a non-diffuse and decentralized reflector. The second reflectarray reflector may be any one of the diffuse reflectarray reflector, the focused reflectarray reflector, and the non-diffuse and decentralized reflector. The diffuse reflectarray reflector may be a reflectarray reflector configured to diffusely reflect the wireless communication signal. The focused reflectarray reflector may be a reflectarray reflector configured to concentrate the reflected wave of the wireless communication signal at a focal point. The non-diffusive and decentralized reflectarray reflector may be a reflectarray reflector configured to diffusely reflect the wireless communication signal and not concentrate the reflected wave of the wireless communication signal at a focal point. Combining multiple reflectarray reflectors improves the function of the reflecting unit.
[0029] (11) The reflection unit may be attachable to a structure having an installation surface. The plurality of reflectarray reflectors may include a first reflectarray reflector that forms a first reflected wave by reflecting the wireless communication signal, and a second reflectarray reflector that forms a second reflected wave by reflecting the first reflected wave. The second reflectarray reflector may be configured to radiate the second reflected wave in a range including a direction perpendicular to the installation surface. In this case, the second reflected wave may be wave can be emitted in a range including a direction perpendicular to the installation surface, resulting in an intuitively easy-to-understand radiation range.
[0030] (12) The plurality of reflectarray reflectors may include a first reflectarray reflector, a second reflectarray reflector, and a third reflectarray reflector. The first reflectarray reflector may be configured to reflect a first incident wave having a first incident angle toward the second reflectarray reflector and to form a first reflected wave toward the third reflectarray reflector, and to reflect a second incident wave having a second incident angle different from the first incident angle and to form a second reflected wave toward the third reflectarray reflector. The second reflectarray reflector may be configured to reflect the first reflected wave to form a third reflected wave. The third reflectarray reflector may be configured to reflect the second reflected wave to form a fourth reflected wave. The third reflected wave and the fourth reflected wave may have overlapping radiation ranges. In this case, the overlapping radiation ranges of the third reflected wave and the fourth reflected wave can be widened, which is preferable.
[0031] (13) The plurality of reflectarray reflectors may include a first reflectarray reflector and a second reflectarray reflector. The reflecting unit may further include a radio wave absorber. The first reflectarray reflector may be configured to reflect a first incident wave having a first incident angle and form a first reflected wave heading toward the second reflectarray reflector, and to reflect a second incident wave having a second incident angle different from the first incident angle and form a second reflected wave heading toward the radio wave absorber. In this case, the second reflected wave can be absorbed.
[0032] (14) The at least one reflectarray reflector may include a multi-focal reflectarray reflector. The multi-focal reflectarray reflector may be configured such that a first focus on a first radiation surface included in a radiation range of the reflected wave of the wireless communication signal and a second focus on a second radiation surface orthogonal to the first radiation surface are located at different positions. In this case, multiple focuses are obtained.
[0033] (15) The plurality of reflectarray reflectors may include a first reflectarray reflector and a second reflectarray reflector. The first reflectarray reflector may be configured to reflect a second reflected wave of a second wireless communication signal transmitted from the second radio device, the second reflected wave being reflected by the second reflectarray reflector. The second reflectarray reflector may be configured to reflect a first reflected wave of a first wireless communication signal transmitted from the first radio device, the first reflected wave being reflected by the first reflectarray reflector. The first reflectarray reflector may include a first concentrating reflecting portion configured to concentrate the first reflected wave at a focal point, and a first non-concentrating reflecting portion configured to prevent the first reflected wave from concentrating. The second reflectarray reflector may include a second concentrating reflecting portion configured to concentrate the second reflected wave at a focal point, and a second non-concentrating reflecting portion configured to prevent the second reflected wave from concentrating. It is possible to reduce transmission loss of wireless communication signals not only in the wireless transmission path from the first radio device to the second radio device, but also in the wireless transmission path from the second radio device to the first radio device.
[0034] (16) Each of the first concentrated reflector and the second concentrated reflector may be configured as a reflectarray including a plurality of reflecting elements. This increases the degree of freedom in the direction of the reflected waves. Furthermore, since the reflectarray can be configured as a flat plate, it saves space and prevents the appearance of the installation location of the reflector unit from being impaired.
[0035] (17) The first non-concentrated reflecting portion may be configured to reflect the second reflected wave from the second concentrated reflecting portion. The second non-concentrated reflecting portion may be configured to reflect the first reflected wave from the first concentrated reflecting portion. This allows for efficient transmission of wireless communication signals.
[0036] (18) The first reflectarray reflector may include a first low-reflection area around the first non-concentrated reflecting portion. The first low-reflection area may have a reflectance lower than the reflectance of the second reflected wave by the first non-concentrated reflecting portion. The second reflectarray reflector may include a second low-reflection area around the second non-concentrated reflecting portion. The second low-reflection area may have a reflectance lower than the reflectance of the first reflected wave by the second non-concentrated reflecting portion. This makes it possible to suppress noise radio waves from being mixed into wireless communication signals.
[0037] (19) Each of the first low-reflection area and the second low-reflection area may include a radio wave absorber, thereby further suppressing interference with radio noise signals.
[0038] (20) The first concentrated reflecting portion may be configured in an annular shape. The first non-concentrated reflecting portion may be disposed inside the first concentrated reflecting portion. The second concentrated reflecting portion may be configured in an annular shape. The second non-concentrated reflecting portion may be disposed inside the second concentrated reflecting portion. This allows the first concentrated reflecting portion and the first non-concentrated reflecting portion, and the second concentrated reflecting portion and the second non-concentrated reflecting portion, to be efficiently arranged.
[0039] (21) The reflection unit may be attachable to a structure having a corner where a first surface and a second surface meet. The first reflectarray reflector may be attached to the first surface. The second reflectarray reflector may be attached to the second surface. The first non-concentrated reflection section may be disposed closer to the second surface than the first concentrated reflection section, or farther from the second surface than the first concentrated reflection section. The second non-concentrated reflection section may be disposed closer to the first surface than the second concentrated reflection section, or farther from the first surface than the second concentrated reflection section. This allows the effects of noise in wireless communications to be reduced by determining the locations of the first concentrated reflection section and the first non-concentrated reflection section, and the second concentrated reflection section and the second non-concentrated reflection section, depending on factors such as radio wave conditions in the space in which the reflection unit is attached.
[0040] (22) The first non-concentrated reflecting portion may be configured to diffuse the first reflected wave, or may be configured to neither diffuse nor concentrate the first reflected wave. The second non-concentrated reflecting portion may be configured to diffuse the second reflected wave, or may be configured to neither diffuse nor concentrate the second reflected wave. This allows for optimal transmission of wireless communication signals.
[0041] (23) Each of the first decentralized reflecting section and the second decentralized reflecting section may be configured as a reflectarray including a plurality of reflecting elements. This increases the degree of freedom in the direction of the reflected waves. Furthermore, since the reflectarray can be configured as a flat plate, it is space-saving and can prevent the appearance of the installation location of the reflecting unit from being impaired.
[0042] (24) The first non-concentrated reflecting portion may be detachable from the first concentrated reflecting portion. The second non-concentrated reflecting portion may be detachable from the second concentrated reflecting portion. This allows the position of the first non-concentrated reflecting portion to be adjusted to a position onto which a reflected wave from the second concentrated reflecting portion can be incident. The position of the second non-concentrated reflecting portion can be adjusted to a position onto which a reflected wave from the first concentrated reflecting portion can be incident.
[0043] (25) The reflective unit may be embedded in a building material. A preferred embodiment is obtained in which the reflective unit is embedded in a building material.
[0044] (26) A reflection unit according to an embodiment is installed in a wireless transmission path between a first radio device that at least transmits a wireless communication signal and a second radio device that at least receives the wireless communication signal. The reflection unit includes at least one concentrated reflectarray reflector configured to concentrate reflected waves of the wireless communication signal at a focal point. In this case, the reflected waves are Near the focus Narrow width It can be made into
[0045] (27) The reflecting unit may be attachable to a structure having a first portion and a second portion through which the wireless communication signal propagates more easily than the first portion. The centralized reflectarray reflector may be attached to the structure so that the reflected wave passes through the second portion. In this case, Near the focus Narrow width The reflected wave can then pass through the second portion.
[0046] (28) The centralized reflectarray reflector may be configured so that the focal point is located at a position that avoids an obstacle present in the wireless transmission path. In this case, the obstacle can be avoided.
[0047] (29) The reflecting unit may further include another reflector that further reflects the reflected wave. The other reflector may be smaller than the centralized reflectarray reflector. In this case, the other reflector can be made smaller.
[0048] (30) Wireless transmission according to the embodiment system The wireless communication system includes a first radio that at least transmits a wireless communication signal, a second radio that at least receives the wireless communication signal, and a reflecting unit that is installed in the wireless transmission path to change the direction of the wireless transmission path between the first radio and the second radio.
[0049] <Details of the embodiment of the present disclosure> DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, the preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. At least some of the following preferred embodiments may be combined in any desired manner.
[0050] (First embodiment) FIG. 1 shows a wireless transmission system 1 according to a first embodiment. The wireless transmission system 1 according to the first embodiment is used for wireless transmission of, for example, quasi-millimeter waves and frequencies higher than quasi-millimeter waves, and more preferably, for wireless transmission of millimeter waves and frequencies higher than millimeter waves. Millimeter waves are radio waves in the range of 30 GHz to 300 GHz. Quasi-millimeter waves are radio waves with frequencies lower than millimeter waves but close to millimeter waves. The frequency of quasi-millimeter waves is, for example, 20 GHz or higher and lower than 30 GHz. High-frequency radio waves such as millimeter waves can transmit large amounts of data. However, high-frequency radio waves such as millimeter waves have high linearity and tend to have narrow directivity (narrow beam characteristics) to compensate for transmission loss. For this reason, high-frequency radio waves such as millimeter waves pose problems when radiating into spaces with poor visibility or over a wide area. Furthermore, high-frequency radio waves such as millimeter waves have difficulty penetrating materials such as walls, posing problems when transmitting indoors.
[0051] The wireless transmission system 1 shown in Fig. 1 includes a plurality of wireless devices 10, 20 that transmit and receive wireless communication signals. The plurality of wireless devices 10, 20 includes a first wireless device 10 and a second wireless device 20. The first wireless device 10 is, for example, a base station. The base station 10 is, for example, a base station for a fifth-generation or later-generation mobile communication system. The second wireless device 20 is, for example, user equipment that communicates with the base station 10. The user terminal 20 may be a mobile station that is freely movable, or may be a fixed station that is not movable.
[0052] The wireless transmission system 1 shown in FIG. 1 is installed in a structure 30 having an internal space such as a building. The building is, for example, a house, a building, or a factory. The structure 30 may be an underground mall, a tunnel, or the like. In this embodiment, the internal space of the structure 30 is used as the wireless transmission path. Note that the space used as the wireless transmission path may be an external space surrounded by one or more buildings.
[0053] The structure 30 shown in FIG. 1 is, for example, a building having multiple interior spaces S1, S2, and S3 separated by wall material 41. The multiple interior spaces include, for example, a corridor S1 and a room S2. In addition to the wall material 41 described above, the building 30 also includes a ceiling material 42 and a floor material 43. The ceiling material 42 and the floor material 43, together with the wall material 41, define the interior spaces S1, S2, and S3 within the building 30. The building 30 also has, as interior spaces, an attic space S3 above the ceiling material 42 and an underfloor space below the floor material 43. In this embodiment, in addition to interior spaces used by people such as the corridor S1 or the room S2, the attic space S3 or the underfloor space, which are not interior spaces used by people, are also used as wireless transmission paths.
[0054] 1 includes a plurality of reflecting units 100A, 100B, 100C, 100D, 100E, 100F, and 100G. The reflecting units 100A, 100B, 100C, 100D, 100E, 100F, and 100G are installed in the wireless transmission path between the base station 10 and the user terminals 20A, 20B, and 20C, respectively, to change the direction of the wireless transmission path.
[0055] In Fig. 1, the reflecting unit 100A is provided within the line of sight (LOS) of the base station 10 and reflects a wireless communication signal (incident wave) transmitted from the base station 10. The wave reflected by the reflecting unit 100A is emitted to a user terminal 20A located outside the line of sight (NLOS) of the base station 10. The reflecting unit 100A also diffuses the incident wave transmitted from the base station 10 and emits a wide-beam reflected wave into the space where the user terminal 20A is located. Because the reflecting unit 100A is capable of wide-angle reflection by diffusion, it can compensate for the narrow beam characteristics of high-frequency radio waves such as millimeter waves.
[0056] The reflecting unit 100B is provided within the line of sight of the base station 10 and reflects a wireless communication signal (incident wave) transmitted from the base station 10. The reflecting unit 100B passes radio waves from the internal space S1 in which the base station 10 exists, through an opening formed in the wall material 41, to the adjacent internal space S2 partitioned by the wall material 41. The reflecting unit 100C further reflects the wave reflected by the reflecting unit 100B. Within the internal space S2, the wave reflected by the reflecting unit 100C is radiated toward the reflecting unit 100D. The reflecting unit 100D further reflects the wave reflected by the reflecting unit 100C and provides it to the user terminal 20B.
[0057] Generally, high frequency radio waves such as millimeter waves may not be able to be sufficiently radiated to another space S2 separated by building materials such as wall material 41, but the reflection unit 100B reflects the radio waves so that they pass through the opening in the wall material 41, allowing the radio waves to be efficiently radiated to the other space S2.
[0058] The reflection unit 100E is provided within the line of sight of the base station 10 and reflects a wireless communication signal (incident wave) transmitted from the base station 10. The reflection unit 100E passes radio waves from the interior space S1 in which the base station 10 is located to the attic space S3 through an opening formed in the ceiling material 42. The reflection unit 100F further radiates the wave reflected by the reflection unit 100E. In the attic space S3, the wave reflected by the reflection unit 100F is radiated toward the reflection unit 100G. The reflection unit 100G further reflects the wave reflected from the reflection unit 100F and provides it to the user terminal 20C. In this embodiment, even a space not used by people, such as the attic space S3, is utilized as a wireless transmission path.
[0059] As shown in FIG. 1, by arranging a plurality of reflecting units 100A, 100B, 100C, 100D, 100E, 100F, and 100G indoors, radio waves can be radiated to every corner of the indoor space.
[0060] The reflecting units 100A, 100B, 100C, 100D, 100E, 100F, and 100G also reflect wireless communication signals (radio waves) transmitted from the user terminals 20A, 20B, and 20C to the base station 10.
[0061] The functions of the reflection units 100A, 100B, 100C, 100D, 100E, 100F, and 100G shown in Fig. 1 are merely examples. Details of the reflection units and various variations in their functions will be described below.
[0062] FIG. 2 shows a reflectarray reflector 110 included in the reflection unit according to the first embodiment. The reflectarray reflector 110 of the first embodiment is plate-shaped and is therefore also called a reflectarray reflector. The reflection unit according to the first embodiment includes one or more reflectarray reflectors 110. The reflectarray reflector 110 includes a high-frequency substrate 131 having a first surface, which is a front surface 131A, and a second surface, which is a back surface 131B. The high-frequency substrate 131 is formed in a flat plate shape. The high-frequency substrate 131 is made of a dielectric. A plurality of reflection elements 132, each made of a conductor, are formed on the front surface 131A of the high-frequency substrate 131. A conductor serving as a ground is formed on the back surface 131B of the high-frequency substrate 131. The reflectarray reflector 110 reflects radio waves from the front surface 131A on which the reflection elements 132 are formed.
[0063] Here, an example of a radio wave reflector is a flat metal reflector. A flat metal reflector specularly reflects radio waves. In other words, the angle of incidence of the incident wave on a flat metal reflector is equal to the angle of reflection of the reflected wave. Therefore, when a flat metal reflector is used as a reflector, the direction of the reflected wave is restricted by the direction of the incident wave. For this reason, if there are restrictions on the installation surface, it is difficult to radiate the reflected wave in the desired direction even if only a flat metal reflector is used.
[0064] In contrast, the reflectarray reflector 110 can radiate reflected waves in a desired direction by adjusting the size or shape of the reflecting elements 132.
[0065] Here, a reflectarray is generally used as part of an antenna. However, the reflectarray reflector 110 of the first embodiment does not constitute part of the antenna provided in the radio devices 10 and 20, but is used to reflect, in a radio transmission path, radio waves (radio communication signals) emitted from the radio devices 10 and 20 equipped with the antenna. That is, the reflectarray reflector 110 of the first embodiment is installed in the radio transmission path between the first radio device 10 and the second radio device 20 to change the direction of the radio transmission path.
[0066] Furthermore, the reflectarray reflector 110 can be designed to simulate the reflection characteristics of a metal reflecting surface of any shape in terms of diffusion or concentration of reflected waves. To design a reflectarray reflector 110 that simulates the reflection characteristics of a metal reflecting surface of any shape, first, the amount of phase change required in the reflecting elements 132 of the reflectarray reflector 110 is calculated from the reflection characteristics of the metal reflecting surface to be simulated. The amount of phase change and the reflecting elements 132 Size or shape Therefore, once the amount of phase change is determined, the size or shape of the reflecting element 132 can be determined.
[0067] Here, the reflection characteristics simulated by the reflectarray reflector 110 are only those related to the diffusion or concentration of reflected waves on a metallic reflecting surface, and there is no need to simulate the direction of the reflected waves. As mentioned above, in the case of a metallic reflecting surface, the direction of the reflected waves cannot be freely adjusted, but the reflectarray reflector 110 can radiate reflected waves in the desired direction by appropriately designing the size or shape of the reflecting elements.
[0068] The shape of the metal reflecting surface whose reflection characteristics can be simulated by the reflectarray reflector 110 is, for example, a spherical surface. As shown in FIG. 3, the convex curved metal plate 200A, which has a convex curved surface that constitutes part of a spherical surface, diffuses reflected waves. The degree of diffusion is determined by the curvature of the convex curved surface. Another shape of the metal reflecting surface whose reflection characteristics can be simulated by the reflectarray reflector 110 is a paraboloid of revolution. The concave curved metal plate 200C, which has a concave curved surface that constitutes part of a paraboloid of revolution, concentrates reflected waves. The degree of concentration is determined by the curvature of the concave curved surface. The focus of the concentrated reflected waves is located in front of the concave curved metal plate 200C. The flat metal plate 200B does not have the effect of diffusing or concentrating reflected waves.
[0069] Here, as shown in Fig. 3, the reflectarray reflector that simulates the beam diffusion characteristics of the convex curved metal plate 200A is referred to as the diffuse reflectarray reflector 110A. The diffuse reflectarray reflector 110A diffuses reflected waves, similar to the convex curved metal plate 200A. The waves reflected by the diffuse reflectarray reflector 110A are also referred to as diffuse reflected waves.
[0070] The reflectarray reflector that simulates the beam characteristics of the planar metal plate 200B is called the non-diffusive and non-concentrated reflectarray reflector 110B. Like the planar metal plate 200B, the non-diffusive and non-concentrated reflectarray reflector 110B does not have the effect of diffusing or concentrating the reflected wave.
[0071] The reflectarray reflector that simulates the beam focusing characteristics of the concavely curved metal plate 200C is called the focused reflectarray reflector 110C. The focused reflectarray reflector 110C focuses reflected waves, similar to the concavely curved metal plate 200C. The focal point of the focused reflected waves is located in front of the focused reflectarray reflector 110C.
[0072] Here, the non-diffuse and non-concentrated reflectarray reflector 110B and the concentrated reflectarray reflector 110C are also referred to as non-diffuse reflectarray reflectors. Waves reflected by the non-diffuse reflectarray reflectors 110B and 110C are also referred to as spot reflected waves or non-diffuse reflected waves. Waves reflected by the non-diffuse and non-concentrated reflectarray reflector 110B are also referred to as non-concentrated spot reflected waves. Waves reflected by the concentrated reflectarray reflector 110C are also referred to as concentrated spot reflected waves.
[0073] The reflectarray reflector 110 can diffuse or concentrate reflected waves without forming a convex or concave curved surface like a metal reflector. If a convex or concave curved surface is required, the space required for installation increases, but the reflectarray reflector 110 can diffuse or concentrate reflected waves with a flat body, so the space required for installation can be reduced.
[0074] The metal reflecting surfaces simulated by the diffuse reflectarray reflector 110A and the concentrated reflectarray reflector 110C are not limited to partial curved surfaces of a sphere, which is the surface of a sphere, or partial curved surfaces of a paraboloid, which is the surface of a paraboloid of revolution, but may also be partial curved surfaces of a spheroid or a hyperboloid of revolution. Paraboloids of revolution include spheroids and hyperboloids of revolution as examples. Therefore, the metal reflecting surfaces simulated by the diffuse reflectarray reflector 110A and the concentrated reflectarray reflector 110C may also be partial curved surfaces of a spheroid or a hyperboloid of revolution. When the convex curved metal plate 200A shown in FIG. 3 is a paraboloid or a spheroid of revolution and the reflectarray reflector 110A simulates the beam diffusion characteristics of the convex curved metal plate 200A, the focal points of the reflected waves are located behind the reflectarray reflector 110A and the convex curved metal plate 200A.
[0075] Fig. 4 shows an example of the reflection unit 100 according to the first embodiment. The reflection unit 100 shown in Fig. 4 includes one reflectarray reflector 110 and a protective cover 120 (housing) that surrounds the reflectarray reflector 110. The protective cover 120 is a member that covers the reflectarray reflector 110 so that it is not exposed.
[0076] The reflecting unit 100 according to the first embodiment is a passive element that only reflects radio waves, and does not have an active element (e.g., a transmitter or receiver) for transmitting or receiving radio waves. The reflecting unit 100 according to the first embodiment reflects an incident wave incident from a first direction in a second direction different from the first direction.
[0077] Fig. 5 shows another example of the reflection unit 100 according to the first embodiment. As shown in Fig. 5, the reflection unit 100 according to the first embodiment is installed at a location where it is desired to change the direction of the wireless transmission path. The location where it is desired to change the direction of the wireless transmission path is, for example, a corner 31 in a building 30 where a first surface 31A and a second surface 31B meet.
[0078] 5 includes a first reflectarray reflector 111 and a second reflectarray reflector 112. The first reflectarray reflector 111 reflects an incident wave 60 along the second surface 31B to form a reflected wave 61 directed toward the second reflectarray reflector 112. The second reflectarray reflector 112 reflects the reflected wave 61 to form a reflected wave 62 along the first surface 31A.
[0079] The first reflectarray reflector 111 is covered with a protective cover 120. The protective cover 120 incorporating the first reflectarray reflector 111 is embedded in the wall material 41A. The first reflectarray reflector 111 may be attached to the wall material 41A together with the protective cover 120 after the wall material 41A is assembled into the building 30. Alternatively, the first reflectarray reflector 111 may be attached to the wall material 41A together with the protective cover 120 before the wall material 41A is assembled into the building 30.
[0080] The first reflectarray reflector 111 is installed parallel to the first face 31A, which is the surface of the wall material 41A. Moreover, since the first reflectarray reflector 111 is embedded inside the wall material 41A, it does not impair the appearance of the wall material 41A. Furthermore, the protective cover 120 does not protrude from the wall material 41A or protrudes only slightly, so it does not impair the appearance of the wall material 41A.
[0081] The second reflectarray reflector 112 is covered by a protective cover 120. Although the first reflectarray reflector 111 and the second reflectarray reflector 112 are covered by different protective covers 120 in Fig. 5, they may be covered by the same protective cover 120.
[0082] The protective cover 120 incorporating the second reflectarray reflector 112 is embedded in the wall material 41B. The second reflectarray reflector 112 may be attached to the wall material 41B together with the protective cover 120 after the wall material 41B is assembled into the building 30. Alternatively, the second reflectarray reflector 112 may be attached to the wall material 41B together with the protective cover 120 before the wall material 41B is assembled into the building 30.
[0083] The second reflectarray reflector 112 is installed parallel to the second face 31B, which is the surface of the wall material 41B. Moreover, since the second reflectarray reflector 112 is embedded inside the wall material 41B, it does not impair the appearance of the wall material 41B. Furthermore, the protective cover 120 does not protrude from the wall material 41B or protrudes only slightly, so it does not impair the appearance of the wall material 41B.
[0084] 5, in a wireless transmission path in which incident wave 60 is radiated in a direction (first direction) parallel to second surface 31B, reflects the incident wave 60 in a direction (second direction) parallel to first surface 31A to generate reflected wave 62. The reflecting unit 100 shown in FIG. 5 bends the wireless transmission path by 90 degrees at corner 31, thereby forming a wireless transmission path along wall materials 41A and 41B.
[0085] As shown in Fig. 4, even a reflection unit 100 having only one reflectarray reflector 110 can bend the wireless transmission line by 90 degrees at the corner 31. That is, the reflection unit 100 shown in Fig. 4 and the reflection unit 100 shown in Fig. 5 both have the common function of bending the wireless transmission line by 90 degrees. However, as shown in Fig. 4, if there is only one reflectarray reflector 110, it is difficult to install the reflectarray reflector 110 parallel to the wall materials 41A and 41B. Therefore, it is more advantageous to use multiple reflectarray reflectors 111 and 112 as shown in Fig. 5.
[0086] As shown in FIG. 6, the reflection unit 100 may include a plurality of reflectarray reflectors 111 and 112 within one protective cover 120.
[0087] In the first embodiment, the reflection unit 100 preferably has a plurality of reflectors 110 including at least one reflectarray reflector 110. All of the plurality of reflectors 110 may be reflectarray reflectors 110. Alternatively, the plurality of reflectors 110 may include one or more reflectarray reflectors 110A, 110B, and 110C and one or more metal reflectors 200A, 200B, and 200C.
[0088] In the first embodiment, one reflective unit 100 does not need to be configured as a single, cohesive structure as shown in FIG. 4 or FIG. 6 , but may be configured as multiple separate structures as shown in FIG. 5 . In the first embodiment, one reflective unit 100 refers to a cohesive unit that realizes a desired reflection angle at the location where the reflective unit 100 is installed. For example, in FIG. 5 , the reflectarray reflectors 111 and 112 are covered with separate protective covers 120, so the reflective unit 100 shown in FIG. 5 is configured as multiple separate structures. On the other hand, in FIG. 6 , the reflectarray reflectors 111 and 112 are covered with a common protective cover 120, so the reflective unit 100 shown in FIG. 6 is configured as a single, composite structure. However, both the reflective units 100 shown in FIGS. 5 and 6 realize the desired reflection angle of 90 degrees at the 90-degree corner 31. Therefore, the number of reflective units 100 is one in each of FIGS. 5 and 6 .
[0089] 7, 8, and 9 show variations in the combination of the first reflectarray reflector 111 and the second reflectarray reflector. FIG. 7 shows CASEs 1-1, 1-2, and 1-3 in which the first reflectarray reflector 111 is a non-diffusive and non-concentrated reflectarray reflector 110B that forms a non-concentrated spot reflected wave. In CASE 1-1, the second reflectarray reflector 112 is also a non-diffusive and non-concentrated reflectarray reflector 110B. In CASE 1-1, mainly, only the direction of the wireless transmission path is changed.
[0090] In CASE 1-2, the second reflectarray reflector 112 is a diffuse reflectarray reflector 110 A. In CASE 1-2, in addition to changing the direction of the wireless transmission path, it is possible to form the second reflected wave 62 into a wide-angle beam.
[0091] In CASE 1-3, the second reflectarray reflector 112 is a concentrated reflectarray reflector 110C. In CASE 1-3, it is possible to concentrate the second reflected wave 62 and form a wide-angle beam beyond the focal point 62A of the second reflected wave 62.
[0092] 8 shows Cases 2-1, 2-2, and 2-3 in which the first reflectarray reflector 111 is a diffuse reflectarray reflector 110A that forms a diffuse reflected wave. In Case 2-1, the second reflectarray reflector 112 is also a diffuse reflectarray reflector 110A. In Case 2-1, the first reflectarray reflector 111 can be made smaller. Even if the first reflectarray reflector 111 is made smaller, the first reflected wave 61 is diffused and becomes a wide-angle beam. Moreover, the second reflectarray reflector 112 further diffuses and reflects the wave, resulting in an even wider-angle beam.
[0093] In CASE 2-2, the second reflectarray reflector 112 is a non-diffusive and non-concentrated reflectarray reflector 110B. In CASE 2-2 as well, the first reflectarray reflector 111 can be made smaller.
[0094] In CASE 2-3, the second reflectarray reflector 112 is a concentrated reflectarray reflector 110C. In CASE 2-3 as well, it is possible to reduce the size of the first reflectarray reflector 111. Furthermore, in CASE 2-3, it is possible to concentrate the second reflected wave 62 and form a wide-angle beam beyond the focal point 62A of the second reflected wave 62.
[0095] 9 shows CASE 3-1, 3-2, and 3-3 in which the first reflectarray reflector 111 is a concentrated reflectarray reflector 110C that forms concentrated reflected waves. In CASE 3-1, the second reflectarray reflector 112 is also a concentrated reflectarray reflector 110C. In CASE 3-1, the first reflected wave 61 is concentrated at a focal point 61A, and the second reflected wave 62 is concentrated at a focal point 62A.
[0096] In CASE3-2, the second reflectarray reflector 112 is a non-diffusing and non-concentrated reflectarray reflector 110B. In CASE3-2, the first reflected wave 61 is concentrated at a focal point 61A.
[0097] In CASE 3-3, the second reflectarray reflector 112 is a diffuse reflectarray reflector 110A. In CASE 3-3, the first reflected wave 61 is concentrated at a focal point 61A. Also, the second reflected wave 62 can be made into a wide-angle beam.
[0098] In Cases 3-1, 3-2, and 3-3 shown in Fig. 9, the focal point 61A of the first reflected wave 61 is located between the first reflectarray reflector 111 and the second reflectarray reflector 112. However, the position of each focal point 61A shown in Fig. 9 is not limited to between the first reflectarray reflector 111 and the second reflectarray reflector 112, and may be at a position shown in any of Cases 4-1, 4-2, and 4-3 shown in Fig. 10.
[0099] 10, the focal point 61A is located farther from the first reflectarray reflector 111 than the second reflectarray reflector 112. That is, the second reflectarray reflector 112 is located between the first reflectarray reflector 111 and the focal point 61A. In CASE 4-1, the second reflectarray reflector 112 only needs to reflect the narrow-angle first reflected wave 61, so the second reflectarray reflector 112 can be made smaller. Furthermore, in CASE 4-1, the electric field intensity of the first reflected wave 61 reflected by the second reflectarray reflector 112 can be increased.
[0100] In CASE 4-2, the focal point 61A is located on or near the second reflectarray reflector 112. In CASE 4-2, the second reflectarray reflector 112 only needs to reflect the first reflected wave 61 concentrated at the focal point 61A, so the second reflectarray reflector 112 can be made very small. Also, in CASE 4-2, the electric field intensity of the first reflected wave 61 reflected by the second reflectarray reflector 112 can be made very large.
[0101] In CASE 4-3, the focal point 61A is located between the first reflectarray reflector 111 and the second reflectarray reflector 112. That is, the second reflectarray reflector 112 is located farther away from the first reflectarray reflector 111 than the focal point 61A. In CASE 4-3, the beam can be concentrated between the first reflectarray reflector 111 and the second reflectarray reflector 112. This allows the reflected wave 61 to be efficiently transmitted through a narrow-diameter space (such as an opening formed in a wall or ceiling) located between the first reflectarray reflector 111 and the second reflectarray reflector 112. Furthermore, the reflected wave 61 can be transmitted while avoiding obstacles located between the first reflectarray reflector 111 and the second reflectarray reflector 112.
[0102] FIG. 11 shows CASEs 5-1 and 5-2, which are examples in which the reflection unit 100 is used as a penetration unit for passing radio waves through a small-diameter opening 50 formed in a wall material 41. CASE 5-1 corresponds to, for example, an example in CASE 1-3, CASE 2-3, and CASE 3-1 in which the second reflected wave 62 passes through the opening 50. The second reflected wave 62 is concentrated at the focal point 62A and has a small diameter, so it can pass through the small opening 50 formed in a building material such as the wall material 41. The diameter of the second reflected wave 62 is smaller than that of the opening 50 at the position of the opening 50. Therefore, the second reflected wave 62 is prevented from being obstructed by a building material such as the wall material 41, and can pass efficiently through the position of the opening 50.
[0103] CASE 5-2 corresponds to, for example, an example in which the first reflected wave 61 in CASE 3-1 or CASE 4-3 passes through the opening 50. Note that CASE 5-2 may also be regarded as an example in which the reflected wave from the reflectarray reflector 110 shown in FIG. 4 passes through the opening 50.
[0104] Now, the aforementioned concentrated reflectarray reflector 110C (or the diffuse reflectarray reflector 110A) may be a single-focus reflectarray reflector 110C-1 (see Figures 12 and 13) or a multi-focus reflectarray reflector 110C-2 (see Figures 14 and 15).
[0105] The single-focus reflectarray reflector 110C-1 is configured so that there is only one focus of the reflected wave, whereas the multi-focus reflectarray reflector 110C-2 is configured so that there are multiple focuses.
[0106] 12 shows the spread of reflected waves beyond the focal point 65 in the case of the single focus reflectarray reflector 110C-1. In this case, the relationship between the spread φ of the reflected waves in the horizontal plane (first radiation surface) included in the radiation range of the reflected waves and the spread θ of the reflected waves in the vertical plane (second radiation surface) is constrained by the aspect ratio of the single focus reflectarray reflector 110C-1. Therefore, it is necessary to change the size or aspect ratio of the second reflectarray reflector 112 that further reflects the waves reflected by the single focus reflectarray reflector 110C-1 depending on its arrangement.
[0107] 13, the size (horizontal dimension) of the second reflectarray reflector 112 may match the spread φ of the reflected waves in the horizontal plane, but the size (vertical dimension) of the second reflectarray reflector 112 may be smaller than the spread θ of the reflected waves in the vertical plane. In this case, the second reflectarray reflector 112 cannot receive all of the reflected waves, resulting in a decrease in transmission efficiency. Therefore, for efficient transmission, it becomes necessary to change the vertical dimension of the second reflectarray reflector 112 depending on the arrangement of the second reflectarray reflector 112, which is uneconomical.
[0108] On the other hand, as shown in Fig. 14, in the multifocal reflectarray reflector 110C-2, a first focal point 65A on a horizontal plane (first radiation surface) included in the radiation range of the reflected wave and a second focal point 65B on a vertical plane (second radiation surface) included in the radiation range of the reflected wave are located at different positions. The horizontal plane (first radiation surface) is a plane that includes the horizon. The horizontal line here is a horizontal line that passes through the center of the front surface of the multifocal reflectarray reflector 110C-2 and runs along the front surface. The vertical plane (second radiation surface) is a plane that includes a vertical line and is perpendicular to the horizontal plane (first radiation surface). The vertical line here is a vertical line that passes through the center of the front surface of the multifocal reflectarray reflector 110C-2.
[0109] The separation between the first focal point 65A in the horizontal plane and the second focal point 65B in the vertical plane allows the spread (φ, θ) of the reflected wave to be formed arbitrarily regardless of the aspect ratio of the multifocal reflectarray reflector 110C-2. For example, as shown in Fig. 15, the first focal point 65A in the horizontal plane can be positioned closer to the multifocal reflectarray reflector 110C-2, and the second focal point 65B in the vertical plane can be shifted to a position closer to the second reflectarray reflector 112. As a result, the spread of the reflected wave can be appropriately controlled depending on the aspect ratio and arrangement of the second reflectarray reflector 112, which is economical.
[0110] The amount of phase change of the reflecting element 132 required to separate the first focal point 65A in the horizontal plane from the second focal point 65B in the vertical plane can be calculated as follows. That is, a first amount of phase change of the reflecting element 132 in the horizontal plane where the first focal point 65A is set and a second amount of phase change of the reflecting element 132 in the vertical plane where the second focal point 65B is set are calculated. Then, the first and second phase change amounts are added together to obtain the amount of phase change of the reflecting element 132 required to design the multifocal reflectarray reflector 110C-2. Note that even with a metallic reflecting surface, it is possible to form a curved surface in which the first focal point 65A in the horizontal plane and the second focal point 65B in the vertical plane are located at different positions (for example, the surface of a paraboloid of revolution with different focal lengths in the horizontal and vertical cross sections).
[0111] The advantages of the reflection unit 100 according to the first embodiment will be described below based on specific installation examples.
[0112] FIG. 16 shows a wireless transmission system having a planar metal plate 200B as a reflector as a reference example. In FIG. 16, the wireless transmission system is constructed in a building 30 having an L-shaped interior space in which a first area 71 and a second area 72 are perpendicular to each other. The wireless transmission system includes a base station 10 and user terminals 21 and 22. The base station 10 is installed in the first area 71. The user terminals 21 and 22 are located in the second area 72 and therefore are outside the line of sight (NLOS) from the base station 10. In FIG. 16, the planar metal plate 200B is installed at a corner 31 where a wall material 41A facing the second area 72 and a wall material 41B facing the first area 71 meet. The planar metal plate 200B bends an incident wave 60 traveling straight through the first area 71 along the wall material 41B by approximately 90 degrees to form a reflected wave 61 traveling straight through the second area 72 along the wall material 41A.
[0113] By providing the flat metal plate 200B, even if the radio waves emitted from the base station 10 have a high degree of directivity, the radio waves can reach the user terminal 21 outside the line of sight. However, because the radio waves have a narrow beam characteristic, in the case of FIG. 16 , the radio waves cannot reach the user terminal 22 located in the second area 72.
[0114] Fig. 17 shows an example in which a convex curved metal plate 200A is installed at the corner 31 instead of the flat metal plate 200B in Fig. 16. In the example of Fig. 17, the convex curved metal plate 200A creates a wide beam angle, and radio waves can be emitted to the entire second area 72.
[0115] In the examples of FIGS. 16 and 17, the metal plates 200A and 200B must be installed in a state in which they protrude from the wall materials 41 and 41B, which is likely to spoil the appearance.
[0116] Therefore, it is conceivable to use a reflectarray reflector 110 as a reflector instead of a metal plate. The reflectarray reflector 110 is flat and can be designed to direct reflected waves in a desired direction. For example, the reflectarray reflector 110 can be attached to a wall material 41B near a corner 31 as shown in FIG. 18, or to a wall material 41A near a corner 31 as shown in FIG. 19. In the installation configuration shown in FIG. 18 or 19, the reflectarray reflector 110 is parallel to the wall materials 41A and 41B and protrudes only slightly from the wall materials 41A and 41B, which does not impair the appearance.
[0117] However, even if the reflectarray reflector 110 can direct the reflected wave in a desired direction, it is difficult to form a reflected wave if the incident wave enters the reflectarray reflector 110 from directly beside it. Therefore, the installation configuration in Fig. 18 is not realistic. It is also difficult for the reflectarray reflector 110 to radiate a reflected wave directly beside it. Therefore, the installation configuration in Fig. 19 is also not realistic.
[0118] On the other hand, as shown in Fig. 20 , the reflection unit 100 according to this embodiment, which uses multiple reflectarray reflectors 110, can appropriately reflect an incident wave 60 from a first area 71 to a second area 72. In Fig. 20 , the first reflectarray reflector 111 is attached to a first surface 31A of a wall material 41A facing the base station 10. The second reflectarray reflector 112 is attached to a second surface 31B of a wall material 41B facing the user terminals 21 and 22. The first reflectarray reflector 111 and the second reflectarray reflector 112 are installed at a corner 31 where the first surface 31A and the second surface 31B meet. Note that points not specifically described in Fig. 20 are the same as those in Figs. 16 to 19 .
[0119] The first reflectarray reflector 111 receives an incident wave 60 from a substantially frontal direction and forms a first reflected wave 61 traveling toward the second reflectarray reflector 112 located diagonally forward (not directly to the side). The first reflectarray reflector 111 is, for example, a concentrated reflectarray reflector 110C configured so that the focal point of the first reflected wave 61 is located farther away than the second reflectarray reflector 112. Therefore, the second reflectarray reflector 112 may be small. Furthermore, the electric field strength of the radio waves received by the second reflectarray reflector 112 is high.
[0120] The second reflectarray reflector 112 receives the first reflected wave 61 from obliquely forward and radiates a second reflected wave 62 in a substantially frontal direction. The second reflectarray reflector 112 is, for example, a diffuse reflectarray reflector 110A in which the focal point of the second reflected wave 62 is located behind the second reflectarray reflector 112. Therefore, the second reflected wave 62 is formed into a wide-angle beam and reaches the entire second area 72.
[0121] Moreover, the installation configuration shown in FIG. 20 has a better appearance than the installation configuration shown in FIG. 16 or FIG.
[0122] The example in Fig. 21 uses a concentrated reflectarray reflector 110C instead of the diffuse reflectarray reflector 110A as the second reflectarray reflector 112 in Fig. 20. Points in Fig. 21 that are not particularly described are the same as those in Fig. 20.
[0123] 21 forms a second reflected wave 62 whose focal point 62A is located near an obstacle 45. The obstacle 45 is, for example, a locker or other object placed in contact with the wall material 41.
[0124] When the second reflectarray reflector 112 is a diffuse reflectarray reflector 110A as shown in Fig. 20, if an obstacle 45 as shown in Fig. 21 is present, the area where the radio waves cannot reach will become larger due to the obstacle 45. In contrast, in the case of Fig. 21, the second reflectarray reflector 112 can focus the second reflected wave 62 at a focal point 62A near the obstacle 45, allowing the beam to propagate while avoiding the obstacle 45. Moreover, the second reflected wave 62 diffuses beyond the focal point 62A, so it reaches substantially the entire second area 72.
[0125] 22 shows an example in which a small diameter opening 30B is formed in a building material such as a wall material 41 or a ceiling material 42 to transmit radio waves with small transmission loss. Fig. 22 corresponds to CASE 5-2 shown in Fig. 11.
[0126] 23, high-frequency radio waves 60A such as millimeter waves have difficulty penetrating building materials such as wall material 41 or ceiling material 42. In other words, when radio waves 60A hit building materials such as wall material 41 or ceiling material 42, most of the radio waves become reflected waves 67B, and only a small amount of transmitted waves 67C. Therefore, it is difficult to transmit radio waves 60A to another space separated by building materials such as wall material 41 or ceiling material 42.
[0127] Therefore, a narrow-diameter opening 30B is formed in a building material such as a wall material 41 or a ceiling material 42. The opening 30B allows even high-frequency radio waves such as millimeter waves to pass through with little loss. That is, in a building material such as a wall material 41 or a ceiling material 42, the portion where the opening 30B is not formed is a first portion with a large transmission loss, and the portion where the opening 30B is formed is a second portion with a small transmission loss. Radio waves propagate more easily through the second portion 30B than through the first portion 30A. Reflectarray reflection body When 110 is a concentrated type, the diameter of the reflected wave 61 is made smaller at the position of the second portion 30B, which is the opening, than that of the second portion 30B. Therefore, the reflected wave 61 is prevented from being obstructed from passing by building materials such as the wall material 41 or the ceiling material 42. As a result, the transmission loss is reduced.
[0128] If the reflectarray reflector 110 is a decentralized type, an opening 30B of the same size or larger than the reflectarray reflector 110 is required to transmit radio waves with low loss. However, as shown in FIG. 22 , the reflectarray reflector 110 is a concentrated type and the focal point 61A is set near the opening 30B, so the opening 30B can be small. This makes it easy to form the opening 30B. Furthermore, because the opening 30B can be small, it is possible to prevent the appearance from being impaired. The opening 30B may be covered with a member such as a decorative panel 30C. The decorative panel 30C is thinner than the wall material 41 or is made of a material that allows radio waves to easily pass through, thereby preventing an increase in radio wave transmission loss.
[0129] 24 shows an example in which reflectors 111 and 112 are installed at a plurality of corners 33 and 34 of a structure 30. In FIG. 24, an incident wave 60 is reflected by the reflector 111 to form a first reflected wave 61 that travels along a wall material 41A. The first reflected wave 61 is reflected by the reflector 112 The reflected wave is reflected by the reflector 62 to form a second reflected wave.
[0130] When transmitting radio waves using multiple reflectors 111, 112, it is appropriate to install reflectors 111, 112 at each of corners 33, 34 of structure 30, taking into consideration the stability of the reflective surface, ease of installation, and inconspicuousness. However, installing reflectors 111, 112 at corners 33, 34 necessitates that the wireless transmission path be close to wall material 41A. In particular, a large clearance is required between first reflected wave 61 and wall material 41A at the center of the transmission node, where the radio wave path (first Fresnel radius) is at its maximum. As a result, reflectors 111, 112 must be installed away from wall material 41A.
[0131] However, as shown in Figure 25, reflectors 111 and 112 are configured to form a concentrated reflected wave, and a focal point 61A is located near the center of the transmission node, which is preferable because it reduces the clearance between the first reflected wave 61 and the wall material 41A.
[0132] 25, a single reflector 111, 112 is installed at each of the corners 33, 34, but this is not limiting. The reflecting unit 100 according to the first embodiment or the concave curved metal plate 200C may be installed at each of the corners 33, 34. The reflecting units 100 installed at each of the corners 33, 34 preferably include a concentrated reflectarray reflector 110C. More specifically, the reflecting units 100 installed at each of the corners 33, 34 are preferably any one of CASE 1-3, 2-3, and 3-1.
[0133] 26 shows a flat metal plate 200B installed on a wall material 41. The wall material 41 has an installation surface 47 for the flat metal plate 200B. The flat metal plate 200B is installed on a signage or digital signage. Near may be.
[0134] There are many opportunities for users to use the user terminal 20 in front of signage or digital signage. Furthermore, advertisers want people to stop and look in front of the signage or digital signage. However, even if a flat metal plate 200B is installed near the signage or digital signage and radio waves 60 and 61 are reflected as shown in FIG. 26 , the radio waves 60 and 61 are invisible, so the user cannot tell in which direction the radio waves are being reflected. Furthermore, it is difficult for the installer of the flat metal plate 200B to know in which direction the radio waves are being reflected, making it difficult to perform proper installation work.
[0135] The radiation direction (reflection direction) of radio waves that is intuitively easy for people to understand is the front direction of the reflector or the reflector installation surface 47. Therefore, it is conceivable to install a reflectarray reflector 110 on the installation surface 47, as shown in Fig. 27. The reflectarray reflector 110 in Fig. 27 is configured to radiate reflected waves 61 in a range that includes the front direction, which is a direction perpendicular to the installation surface 47. In the case of Fig. 27, the reflected waves 61 are radiated in the front direction of the reflectarray reflector 110 or the installation surface 47, so the radiation direction of the invisible reflected waves 61 is easy to understand intuitively.
[0136] 27, however, the incident wave 60 is incident on the side of the reflectarray reflector 110, and therefore the range X2 of the reflectarray reflector 110 is smaller than the range X1 where the incident wave 60 strikes the installation surface 47. As a result, the reflection efficiency of the reflectarray reflector 110 decreases.
[0137] 28, the reduction in reflection efficiency can be suppressed. That is, the incident wave 60 is reflected by the first reflectarray reflector 111. The first reflected wave 61 by the first reflectarray reflector 111 travels toward the second reflectarray reflector 112 installed on the installation surface 47. The first reflectarray reflector 111 can be installed so as to receive the incident wave 60 substantially from the front. Therefore, the first reflectarray reflector 111 can receive the incident wave 60 efficiently.
[0138] Furthermore, the first reflectarray reflector 111 is preferably a concentrated reflectarray reflector 110C. In this case, the first reflected wave 61 can be concentrated on the second reflectarray reflector 112. Therefore, the second reflectarray reflector 112 may be small. Note that the focal point 61A of the first reflected wave 61 is located farther from the first reflectarray reflector 111 than the second reflectarray reflector 112.
[0139] The second reflectarray reflector 112 reflects the first reflected wave 61 to form a second reflected wave 62 that is radiated in the front direction of the second reflectarray reflector 112 or the installation surface 47. In the case of Figure 28, the radiation direction of the invisible second reflected wave 62 is easy to understand intuitively.
[0140] The second reflectarray reflector 112 is preferably a diffuse reflectarray reflector 110A. In this case, the second reflected wave 62 is radiated over a wide range. The focal point 62A of the second reflected wave 62 is located behind the second reflectarray reflector 112.
[0141] 29 shows a reflectarray reflector 110 that reflects incident waves 160A and 160B from multiple base stations 11 and 12. Although the direction of the reflected waves from the reflectarray reflector 110 can be freely designed, if the incident angle of the incident wave to the reflectarray reflector 110 changes, the reflection angle of the reflected wave also changes.
[0142] 29, when multiple base stations 11, 12 are located at different positions, there will be a first incident wave 160A traveling from the first base station 11 toward the reflectarray reflector 110, and a second incident wave 160B traveling from the second base station 12 toward the reflectarray reflector 110. When viewed from the reflectarray reflector 110, the first incident wave 160A has a first incident angle, and the second incident wave 160B has a second incident angle that is different from the first incident angle.
[0143] Therefore, the radiation direction of the first reflected wave 161A formed by the reflectarray reflector 110 reflecting the first incident wave 160A differs from the radiation direction of the second reflected wave 161B formed by reflecting the second incident wave 160B. That is, the first cover area C1 from which the first reflected wave 161A is radiated differs from the second cover area C2 from which the second reflected wave 161B is radiated. However, it is not preferable that the cover areas C1 and C2 of the reflected waves 161A and 161B from the same reflector 110 differ depending on the base station 11 or 12. Note that in FIG. 29 , the reflectarray reflector 110 is, for example, a diffuse reflectarray reflector 110A, and the focal points 162A and 162B of the reflected waves 161A and 161B are located behind the reflectarray reflector 110.
[0144] Fig. 30 shows an example of an installation configuration that alleviates the problem of different cover areas C1 and C2 as seen in Fig. 29. In Fig. 30, a first incident wave 160A and a second incident wave 160B are reflected by a first reflectarray reflector 111. The first reflectarray reflector 111 reflects the first incident wave 160A to form a first reflected wave 161. The first reflectarray reflector 111 also reflects the second incident wave 160B to form a second reflected wave 162. The reflection angles of the first reflected wave 161 and the second reflected wave 162 differ depending on the difference in the incident angles of the first incident wave 160A and the second incident wave 160B.
[0145] 30, a second reflectarray reflector 112 that receives a first reflected wave 161 and a third reflectarray reflector 113 that receives a second reflected wave 162 are provided. The second reflectarray reflector 112 reflects the first reflected wave 161 to form a third reflected wave 163. The third reflectarray reflector 113 reflects the second reflected wave 162 to form a fourth reflected wave 164.
[0146] The reflection angles of the second reflectarray reflector 112 and the third reflectarray reflector 113 can be designed independently. Therefore, as shown in Fig. 30 , the ranges (coverage areas) into which the third reflected wave 163 and the fourth reflected wave 164 are radiated can be made to overlap substantially. That is, the third reflected wave 163 and the fourth reflected wave 164 have overlapping radiation ranges. When the radiation range of either the third reflected wave 163 or the fourth reflected wave 164 is set to 100, the overlapping range of the radiation range of the third reflected wave 163 and the radiation range of the fourth reflected wave 164 is preferably 60 or more, more preferably 70 or more, even more preferably 80 or more, and even more preferably 90 or more.
[0147] 30, the first reflectarray reflector 111 is preferably a concentrated reflectarray reflector 110C. In this case, the second reflectarray reflector 112 and the third reflectarray reflector 113 can be made smaller. The focal points 162B and 162A of the first reflected wave 161 and the second reflected wave 162 are located farther away from the first reflectarray reflector 111 than the second reflectarray reflector 112 and the third reflectarray reflector 113.
[0148] Furthermore, the second reflectarray reflector 112 and the third reflectarray reflector 113 are preferably the diffuse reflectarray reflector 110A, respectively, which allows the third reflected wave 163 and the fourth reflected wave 164 to be emitted over a wide range.
[0149] 30, either the second reflectarray reflector 112 or the third reflectarray reflector 113 may be a radio wave absorber instead of a reflector. That is, Fig. 30 may be understood to show an example of a reflection unit including two reflectarray reflectors 111 and 112 and a radio wave absorber 113, rather than an example of a reflection unit including three reflectarray reflectors 111, 112, and 113.
[0150] 30, if a radio wave absorber is provided instead of the third reflectarray reflector 113, the radio waves from the second base station 12 are absorbed by the radio wave absorber, thereby preventing the formation of the fourth reflected wave 164.
[0151] Fig. 31 shows a specific installation example of CASE 4-2 shown in Fig. 10. CASE 4-2 is an example in which the second reflectarray reflector 112 is installed at or near the position of the focal point 61A of the first reflected wave 61 by the first reflectarray reflector 111. Fig. 31 also shows an example in which the focal point 61A of the first reflected wave 61 by the first reflectarray reflector 111 in Fig. 20 is set near the second reflectarray reflector 112.
[0152] In FIG. 31 , an incident wave 60 from a base station 10 is reflected by a first reflectarray reflector 111 to form a first reflected wave 61. The first reflected wave 61 travels toward a second reflectarray reflector 112. The first reflected wave 61 is focused near the second reflectarray reflector 112. Therefore, the second reflectarray reflector 112 may be small. Instead of the second reflectarray reflector 112, a metal reflector plate may be used as the reflector that reflects the first reflected wave 61. Whether a reflectarray reflector or a metal reflector plate is used, a small reflector is less noticeable and does not detract from the appearance. Furthermore, a small reflector is inexpensive, lightweight, and easy to handle. Furthermore, a small reflector is advantageous for adjusting the reflection angle, for example, to reflect light toward a specific spot.
[0153] Fig. 32 shows another example of specific installation of CASE4-2 shown in Fig. 10. Fig. 32 also shows an example in which focal points 163A and 164A of the first reflectarray reflector 111 in Fig. 30 are set near the second reflectarray reflector 112 and the third reflectarray reflector 113.
[0154] In Fig. 32, incident waves 160A and 160B from base stations 11 and 12 are reflected by a first reflectarray reflector 111 to form a first reflected wave 161 and a second reflected wave 162. The first reflected wave 161 forms a focal point 163A near the second reflectarray reflector 112. The second reflected wave 162 forms a focal point 164A near the third reflectarray reflector 113. Therefore, the second reflectarray reflector 112 and the third reflectarray reflector 113 may be small. The reflectors that reflect the first reflected wave 161 and the second reflected wave 162 may be metal reflectors instead of the second reflectarray reflector 112 and the third reflectarray reflector 113. Whether a reflectarray reflector or a metal reflector is used, a small reflector can provide the advantages described above with reference to Fig. 31.
[0155] 32, either the second reflectarray reflector 112 or the third reflectarray reflector 113 may be a radio wave absorber instead of a reflector. In this case, for example, by using the third reflectarray reflector 113 as a radio wave absorber, it is possible to prevent the formation of the fourth reflected wave 164 and prevent radio waves from reaching the user terminal 20 from the second base station 12.
[0156] (Second embodiment) 33 is a diagram showing an example of the configuration of a reflection unit according to the second embodiment. Similar to the reflection unit 100 according to the first embodiment, the reflection unit 300 according to the second embodiment is installed in the wireless transmission path between the base station 10 and the user terminals 20A, 20B, and 20C (see FIG. 1) in order to change the direction of the wireless transmission path.
[0157] The reflecting unit 300 includes a first reflectarray reflector 311 and a second reflectarray reflector 312 .
[0158] 33, the reflection unit 300 is attached to a corner 31 of a building where a first surface 31A and a second surface 31B meet. The first reflectarray reflector 311 and the second reflectarray reflector 312 are each plate-shaped. The first reflectarray reflector 311 is attached to the first surface 31A, and the second reflectarray reflector 312 is attached to the second surface 31B.
[0159] 34 and 35 are diagrams illustrating reflection of a wireless communication signal by a reflection unit 300 according to the second embodiment. In the illustrated example, the X direction and the Y direction are orthogonal to each other on a horizontal plane. The first surface 31A is a wall extending along the X direction, and the second surface 31B is a wall extending along the Y direction. Alternatively, one of the first surface 31A and the second surface 31B may be a ceiling or a floor, and one of the X direction and the Y direction may be vertical. FIG. 34 shows an example of a wireless transmission path from a base station 10 to a user terminal 20, and FIG. 35 shows an example of a wireless transmission path from a user terminal 20 to the base station 10.
[0160] 34, the wireless transmission path from the base station 10 to the user terminal 20 will be described. The first reflectarray reflector 311 reflects a wireless communication signal (first incident wave) transmitted in the Y direction from the base station 10 (first radio device). The first reflectarray reflector 311 reflects a first incident wave 601 in the Y direction, which is a direction perpendicular to the first reflectarray reflector 311, in a direction toward the second reflectarray reflector 312.
[0161] The first reflectarray reflector 311 includes a first concentrated reflecting portion 321 and a first non-concentrated reflecting portion 331. The first concentrated reflecting portion 321 is a reflectarray (concentrated reflectarray) that simulates the reflection characteristics of the concavely curved metal plate 200C (see FIG. 3). The first concentrated reflecting portion 321 concentrates the reflected wave (hereinafter referred to as the "primary reflected wave 611") at a focal point 611A located in front of the first concentrated reflecting portion 321. The primary reflected wave 611 is an example of the "first reflected wave."
[0162] Here, a more detailed description will be given of reflection of wireless communication signals by the first reflectarray reflector 311. Fig. 36 is a diagram for explaining reflection of wireless communication signals by the first reflectarray reflector according to the second embodiment.
[0163] Primary reflected wave 611 includes a reflected wave component 611 a caused by first concentrated reflecting portion 321 and a reflected wave component 611 b caused by first non-concentrated reflecting portion 331 .
[0164] Of the primary reflected wave 611, reflected wave component 611a by the first concentrated reflecting section 321 converges as it approaches the second reflectarray reflector 312. The focal point 611A is located farther from the first reflectarray reflector 311 than the second reflectarray reflector 312. The reflected wave component 611a is incident on a part of the second reflectarray reflector 312.
[0165] The second reflectarray reflector 312 includes a second concentrated reflecting portion 322 and a second non-concentrated reflecting portion 332 (see FIG. 33). At the position of the second reflectarray reflector 312, the reflected wave component 611a has an area approximately the same as that of the second non-concentrated reflecting portion 332. In other words, almost all of the reflected wave component 611a is incident on the second non-concentrated reflecting portion 332.
[0166] The first non-concentrated reflecting portion 331 does not concentrate the reflected wave (reflected wave component 611b). The first non-concentrated reflecting portion 331 diffuses the reflected wave component 611b, or neither diffuses nor concentrates the reflected wave component 611b. The first non-concentrated reflecting portion 331 is, for example, a reflectarray (diffuse reflectarray) that simulates the reflection characteristics of the convex curved metal plate 200A (see FIG. 3) or a reflectarray (non-diffuse and non-concentrated reflectarray) that simulates the reflection characteristics of the flat metal plate 200B (see FIG. 3). Note that the first non-concentrated reflecting portion 331 may be the convex curved metal plate 200A or the flat metal plate 200B.
[0167] When the first non-concentrated reflecting portion 331 is a diffusing reflectarray, the reflected wave component 611b is diffused. For example, the area of the reflected wave component 611b at the position of the second reflectarray reflector 312 is larger than the area of the second non-concentrated reflecting portion 332. In this case, part of the reflected wave component 611b does not enter the second non-concentrated reflecting portion 332.
[0168] Returning to FIG. 33, the second concentrated reflection portion 322 is annular, and the second non-concentrated reflection portion 332 is disposed inside the second concentrated reflection portion 322. The second non-concentrated reflection portion 332 is spaced a predetermined distance from the second concentrated reflection portion 322. In other words, a space of a predetermined size is provided between the second concentrated reflection portion 322 and the second non-concentrated reflection portion 332. The space around the second non-concentrated reflection portion 332 is a second low-reflection region 342. The second low-reflection region 342 has a reflectance lower than the reflectance of the second non-concentrated reflection portion 332. The second low-reflection region 342 includes a radio wave absorber 342a. That's fine A portion of reflected wave component 611b that misses second non-concentrated reflection portion 332 is incident on second low-reflection area 342. The portion of reflected wave component 611b that is incident on second low-reflection area 342 is attenuated, and the portion of reflected wave component 611b that is incident on radio wave absorber 342a is absorbed by radio wave absorber 342a.
[0169] 36 , when the first non-concentrated reflecting portion 331 is a non-diffusive and non-concentrated reflectarray, the reflected wave component 611b is neither diffused nor concentrated. That is, the reflected wave component 611b is radiated as a parallel beam toward the second reflectarray reflector 312. When the shape and size of the first non-concentrated reflecting portion 331 and the shape and size of the second non-concentrated reflecting portion 332 are the same as or similar to each other, almost all of the reflected wave component 611b is incident on the second non-concentrated reflecting portion 332 of the second reflectarray reflector 312.
[0170] As described above, almost all of reflected wave component 611a and at least a part of reflected wave component 611b are incident on second non-concentrated reflecting portion 332. That is, most of primary reflected wave 611 is incident on second non-concentrated reflecting portion 332.
[0171] The second non-concentrated reflecting portion 332 is, for example, a reflectarray (diffuse reflectarray) that simulates the reflection characteristics of the convex curved metal plate 200A (see FIG. 3) or a reflectarray (non-diffuse and non-concentrated reflectarray) that simulates the reflection characteristics of the flat metal plate 200B (see FIG. 3), similar to the first non-concentrated reflecting portion 331. Note that the second non-concentrated reflecting portion 332 may be the convex curved metal plate 200A or the flat metal plate 200B.
[0172] The primary reflected wave 611 is reflected by the second non-concentrated reflecting portion 332, and the secondary reflected wave 621 travels in the opposite direction of the X direction (toward the user terminal 20). In the example of FIG. 34 , the secondary reflected wave 621 is neither diffused nor concentrated. That is, the secondary reflected wave 621 is radiated to the user terminal 20 as a parallel beam. In this example, the second non-concentrated reflecting portion 332 is a diffusive reflectarray (or a convex curved metal plate 200A). As a result, the converged primary reflected wave 611 is reflected as a parallel beam by the second non-concentrated reflecting portion 332. The secondary reflected wave 621 may be a convergent beam that converges as it travels toward the user terminal 20, or may be a divergent beam that diverges as it travels toward the user terminal 20.
[0173] Noise radio waves exist in the space where the reflection unit 300 is placed. The noise radio waves include, for example, reflected waves (multipath) of wireless communication signals reflected on wall surfaces. Noise radio waves different from the first incident wave 601 enter the first incident wave 601 at an incident angle slightly different from that of the first incident wave 601. Non Even if a noise radio wave is incident on concentrated reflection section 331, the reflected wave of the noise radio wave is incident on second reflectarray reflector 312 at a position away from second non-concentrated reflection section 332. Second low-reflection area 342 is provided around second non-concentrated reflection section 332, so the noise radio wave is attenuated, and the noise radio wave incident on radio wave absorber 342a is absorbed. This makes it possible to reduce noise in wireless communications.
[0174] 35, the wireless transmission path from the user terminal 20 to the base station 10 will be described. The second reflectarray reflector 312 reflects a wireless communication signal (second incident wave) transmitted in the X direction from the user terminal 20 (second radio device). The second reflectarray reflector 312 reflects a second incident wave 602 in the X direction, which is a direction perpendicular to the second reflectarray reflector 312, in a direction toward the first reflectarray reflector 311.
[0175] The second concentrated reflecting section 322 of the second reflectarray reflector 312 is a concentrated reflectarray, similar to the first concentrated reflecting section 321 of the first reflectarray reflector 311. The second concentrated reflecting section 322 concentrates the reflected wave (hereinafter referred to as the "primary reflected wave 612") at a focal point 612A located in front of the second concentrated reflecting section 322. The primary reflected wave 612 is an example of a "second reflected wave."
[0176] Similar to the above-described primary reflected wave 611, primary reflected wave 612 includes a wave component reflected by second concentrated reflecting portion 322 and a wave component reflected by second non-concentrated reflecting portion 332. The wave component reflected by second concentrated reflecting portion 322 converges, and almost all of the reflected wave component is incident on first non-concentrated reflecting portion 331. The wave component reflected by second non-concentrated reflecting portion 332 does not converge, and at least a part of the reflected wave component is incident on first non-concentrated reflecting portion 331. In other words, most of primary reflected wave 612 is incident on first non-concentrated reflecting portion 331.
[0177] The first non-concentrated reflecting portion 331 reflects the primary reflected wave 612, and the secondary reflected wave 622 travels in the opposite direction of the Y direction (toward the base station 10). In the example of FIG. 35, the secondary reflected wave 622 is neither diffused nor concentrated. That is, the secondary reflected wave 622 is radiated to the base station 10 as a parallel beam. In this example, the first non-concentrated reflecting portion 331 is a diffusive reflectarray (or a convex curved metal plate 200A). As a result, the converged primary reflected wave 612 is reflected as a parallel beam by the first non-concentrated reflecting portion 331. The secondary reflected wave 622 may be a convergent beam that converges as it travels toward the base station 10, or may be a divergent beam that diverges as it travels toward the base station 10.
[0178] Returning to FIG. 33, first concentrated reflection portion 321 is annular, and first non-concentrated reflection portion 331 is disposed inside first concentrated reflection portion 321. A first low-reflection area 341 is provided around first non-concentrated reflection portion 331. First low-reflection area 341 has a reflectance lower than that of first non-concentrated reflection portion 331. First low-reflection area 341 includes radio wave absorber 341a. That's fine The noise radio waves are attenuated by the first low-reflection area 341, and the noise radio waves that are incident on the radio wave absorber 341a are absorbed, thereby reducing noise in wireless communication.
[0179] The first non-concentrated reflecting portion 331 is detachable from the first concentrated reflecting portion 321. This allows the position of the first non-concentrated reflecting portion 331 to be easily adjusted so that the primary reflected wave 612 is accurately incident on the first non-concentrated reflecting portion 331. The second non-concentrated reflecting portion 332 is 2 It is detachable from concentrated reflection portion 322. This makes it possible to easily adjust the position of second non-concentrated reflection portion 332 so that primary reflected wave 611 is accurately incident on second non-concentrated reflection portion 332.
[0180] In the second embodiment described above, the first non-concentrated reflecting portion 331 is arranged inside the annular first concentrated reflecting portion 321, and the second non-concentrated reflecting portion 332 is arranged inside the annular second concentrated reflecting portion 322, but this is not limiting. FIG. 37 is a diagram showing the configuration of a first modified example of the reflecting unit according to the second embodiment. In the first modified example, the first concentrated reflecting portion 321 and the second concentrated reflecting portion 322 are each rectangular. In the first reflectarray reflector 311, the first non-concentrated reflecting portion 331 is arranged closer to the second surface 31B than the first concentrated reflecting portion 321. In the second reflectarray reflector 312, the second non-concentrated reflecting portion 332 is arranged closer to the first surface 31A than the second concentrated reflecting portion 322. Depending on the radio wave conditions in the space in which the reflection unit 300 is placed, if there is less noise radio waves near the wall (near the first surface 31A and the second surface 31B) and more noise radio waves at positions away from the wall, the above-mentioned configuration can reduce the influence of noise on wireless communication.
[0181] 38 is a diagram showing the configuration of a second modified example of the reflecting unit according to the second embodiment. In the second modified example, the first concentrated reflecting portion 321 and the second concentrated reflecting portion 322 are each rectangular. In the first reflectarray reflector 311, the first non-concentrated reflecting portion 331 is disposed at a position farther from the second surface 31B than the first concentrated reflecting portion 321. In the second reflectarray reflector 312, the second non-concentrated reflecting portion 332 is disposed at a position farther from the first surface 31A than the second concentrated reflecting portion 322. When the radio wave conditions in the space in which the reflecting unit 300 is disposed are such that there is little noise radio waves at positions far from the wall (positions far from the first surface 31A and the second surface 31B) and more noise radio waves near the wall, the above-described configuration can reduce the influence of noise on wireless communications.
[0182] Note that first non-concentrated reflecting portion 331 may be disposed above first concentrated reflecting portion 321 or below first concentrated reflecting portion 321. Second non-concentrated reflecting portion 332 may be disposed above second concentrated reflecting portion 322 or below second concentrated reflecting portion 322. The positional relationship between first concentrated reflecting portion 321 and first non-concentrated reflecting portion 331, and the positional relationship between second concentrated reflecting portion 322 and second non-concentrated reflecting portion 332 may be determined depending on the location where reflection unit 300 is disposed in the building and the radio wave conditions.
[0183] (Other embodiments) In the above-described embodiment, the wireless communication signal is a radio signal of a quasi-millimeter wave or a frequency higher than the quasi-millimeter wave, or a radio signal of a millimeter wave or a frequency higher than the millimeter wave, but is not limited thereto. The reflection unit 300 may be used to reflect a high-frequency power signal for spatial power transmission. That is, the power supply device (first radio) that transmits the high-frequency power signal and the high-frequency power signal A reflecting unit 300 may be disposed between the power receiving device (second radio device) that receives the high frequency power signal, and the reflecting unit 300 may change the direction of the transmission path of the high frequency power signal.
[0184] The embodiments disclosed herein are illustrative in all respects and are not restrictive. The scope of the present invention is defined by the claims, not the above-described embodiments, and includes meanings equivalent to the claims and all modifications within the scope thereof. [Explanation of symbols]
[0185] 1. Wireless transmission system 10 1st radio (base station) 11 1st base station 12 2nd base station 20 Second radio (user terminal) 20A, 20B, 20C, 21, 22 User terminal 30 Structures (buildings) 30A 1st part 30B 2nd part (opening) 30C decorative panel Corners 31, 33, and 34 31A 1st page 31B 2nd side 41, 41A, 41B Wall material 42 Ceiling material 43 Flooring 45 Obstacles 47 Reflector installation surface 50 aperture 60 incident wave 60A radio waves 61 1st reflected wave 61A,62A,65,162A,162B,163A,164A,611A,612A Focus 62 Second reflected wave 65A 1st focus 65B 2nd focal point 67B Reflected wave 67C transmitted wave 71 Area 1 72 Area 2 100, 100A, 100B, 100C, 100D, 100E, 100F, 100G, 300 Reflection Unit 110 Reflectarray reflector 110A Diffuse Reflectarray Reflector 110B Non-diffusive and non-concentrated reflectarray reflector (non-diffusive reflectarray reflector) 110C Concentrated Reflectarray Reflector (Non-Diffuse Reflectarray Reflector) 110C-1 Single Focus Reflectarray Reflector 110C-2 Multi-focal reflectarray reflector 111,311 First reflectarray reflector 112,312 Second reflectarray reflector 113 Third Reflectarray Reflector (Radio Wave Absorber) 120 Protective Cover 131 High Frequency Board 131A Front 131B Back 132 Reflective element 160A,601 1st incident wave 160B,602 2nd incident wave 161,161A 1st reflected wave 161B,162 2nd reflected wave 163 Third reflected wave 164 4th reflected wave 200A Convex curved metal plate (metal reflector) 200B Flat metal plate (metal reflector) 200C concave curved metal plate (metal reflector) 321 1st concentrated reflection section 322 2nd concentrated reflection section 331 1st non-concentrated reflection section 332 2nd non-concentrated reflection section 341 1st low reflection area 341a, 342a Radio wave absorber 342 2nd low reflection area 611,612 Primary reflected wave 611a,611b Reflected wave component 621,622 Secondary reflected wave C1 First Coverage Area C2 Second Coverage Area S1 Corridor (interior space) S2 Room (interior space) S3 Ceiling space (internal space) X1 Range X2 Range θ spread φ spread
Claims
1. a reflecting unit disposed in a wireless transmission path to change the direction of the wireless transmission path between a first radio device that transmits at least a wireless communication signal and a second radio device that receives at least the wireless communication signal, a plurality of reflectors for reflecting the wireless communication signals; the plurality of reflectors comprises a plurality of reflectarray reflectors; the plurality of reflectarray reflectors include a first reflectarray reflector and a second reflectarray reflector; the first reflectarray reflector is configured to reflect a second reflected wave of a second wireless communication signal transmitted from the second wireless device, the second reflected wave being generated by the second reflectarray reflector; the second reflectarray reflector is configured to reflect a first reflected wave of a first wireless communication signal transmitted from the first wireless device, the first reflected wave being reflected by the first reflectarray reflector; the first reflectarray reflector, a first concentrating reflecting section configured to concentrate the first reflected wave at a focal point; a first non-concentrating reflection portion configured to prevent the first reflected wave from concentrating; Including, the second reflectarray reflector, a second concentrating reflecting section configured to concentrate the second reflected wave at a focal point; a second non-concentrating reflection portion configured to prevent the second reflected wave from concentrating; Contains Reflection unit.
2. Each of the first concentrated reflecting portion and the second concentrated reflecting portion is configured by a reflectarray including a plurality of reflecting elements. The reflector unit according to claim 1 .
3. the first non-concentrated reflecting portion is configured to reflect the second reflected wave by the second concentrated reflecting portion, The second non-concentrated reflecting portion is configured to reflect the first reflected wave by the first concentrated reflecting portion. The reflecting unit according to claim 1 or 2.
4. the first reflectarray reflector includes a first low-reflection area around the first non-concentrated reflection portion; The first low-reflection area has a reflectance lower than a reflectance of the second reflected wave by the first non-concentrated reflecting portion, the second reflectarray reflector includes a second low-reflection area around the second non-concentrated reflection portion; The second low-reflection area has a reflectance lower than the reflectance of the first reflected wave by the second non-concentrated reflecting portion. The reflecting unit according to any one of claims 1 to 3.
5. Each of the first low-reflection area and the second low-reflection area includes a radio wave absorber. The reflector unit according to claim 4 .
6. The first concentrated reflection portion is configured in an annular shape, the first non-concentrated reflecting portion is disposed inside the first concentrated reflecting portion, The second concentrated reflection portion is configured in an annular shape, The second non-concentrated reflecting portion is disposed inside the second concentrated reflecting portion. The reflecting unit according to any one of claims 1 to 5.
7. The reflecting unit is attachable to a structure having a corner where a first surface and a second surface meet, the first reflectarray reflector is attached to the first surface; the second reflectarray reflector is attached to the second surface; the first non-concentrated reflecting portion is disposed at a position closer to the second surface than the first concentrated reflecting portion, or at a position farther from the second surface than the first concentrated reflecting portion, The second non-concentrated reflection portion is disposed at a position closer to the first surface than the second concentrated reflection portion, or at a position farther from the first surface than the second concentrated reflection portion. The reflecting unit according to any one of claims 1 to 5.
8. The first non-concentrated reflection portion is configured to diffuse the first reflected wave, or to neither diffuse nor concentrate the first reflected wave, The second non-concentrated reflection portion is configured to diffuse the second reflected wave, or is configured to neither diffuse nor concentrate the second reflected wave. The reflecting unit according to any one of claims 1 to 7.
9. Each of the first non-concentrated reflecting portion and the second non-concentrated reflecting portion is configured by a reflectarray including a plurality of reflecting elements. The reflector unit according to claim 8 .
10. the first non-concentrated reflecting portion is detachable from the first concentrated reflecting portion, the second non-concentrated reflecting portion is detachable from the second concentrated reflecting portion; The reflecting unit according to any one of claims 1 to 9.
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