Antenna unit and window glass
The antenna unit design addresses the visibility issue of mesh conductors by using a pseudo-layer to minimize the conspicuousness of the ground conductor, enhancing aesthetics while maintaining functionality.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- AGC INC
- Filing Date
- 2023-03-03
- Publication Date
- 2026-04-21
AI Technical Summary
Existing antenna units with mesh-shaped conductors and ground conductors on substrates are visually conspicuous, compromising design aesthetics.
An antenna unit configuration with a dielectric layer, a first conductor layer, and a pseudo-layer, where the pseudo-layer is positioned around the second conductor layer to minimize visibility of the ground conductor, achieved by maintaining a specific gradation value difference between non-overlapping regions at a resolution of 400 dpi.
The configuration results in an antenna unit with improved design aesthetics by making the ground conductor less conspicuous while maintaining effective radio wave transmission and reception.
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Abstract
Description
Technical Field
[0001] The present invention relates to an antenna unit and a window glass.
Background Art
[0002] An antenna unit including a mesh-shaped antenna conductor and a mesh-shaped ground conductor used for a window glass of a building, an automobile, or the like is known (for example, Patent Document 1).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] Here, since the mesh patterns of the antenna conductor and the ground conductor described in Patent Document 1 above are formed on a part of the substrate, the mesh patterns are likely to be conspicuous when the substrate is visually recognized. Therefore, there is a demand for an antenna unit in which the pattern is inconspicuous and the design property is improved.
[0005] An object of the present invention is to provide an antenna unit and a window glass having excellent design properties in view of the above-described problems.
Means for Solving the Problems
[0006] One aspect of the present invention provides an antenna unit having the following configurations [1] to
[13] . [1] A dielectric layer through which visible light passes, A first conductor layer, A pseudo layer, A second conductor layer provided separately from the first conductor layer, and the first conductor layer is provided on the side of the first main surface of the dielectric layer with respect to the dielectric layer. The second conductor layer is provided on the side of the first main surface of the dielectric layer or on the side of the second main surface opposite to the first main surface with respect to the dielectric layer, In a plan view, at least a part of the pseudo layer is disposed around the second conductor layer, In the plan view, when each of the first region where the pseudo layer exists without overlapping the second conductor layer and the second region where the pseudo layer exists without overlapping the second conductor layer is read at a resolution of 400 dpi, the N (N is a natural number) - step gradation values are n1 and n2 (n1 and n2 are integers of 0 or more), |n1 - n2| / N ≦ 1.09×10 -1 is satisfied. Antenna unit. [2] |n1 - n2| / N ≦ 6.25×10 -2 The antenna unit according to [1]. [3] The antenna unit according to [1] or [2], where N = 256 and n2 ≦ 246. [4] The first conductor layer includes a radiation conductor, The second conductor layer includes a ground conductor, The second conductor layer is provided on the side of the second main surface of the dielectric layer with respect to the dielectric layer. The antenna unit according to any one of [1] to [3]. [5] The first conductor layer includes a radiation conductor, The second conductor layer includes a ground conductor, The second conductor layer is provided on the side of the first main surface of the dielectric layer with respect to the dielectric layer. The antenna unit according to any one of [1] to [3]. [6] The first conductor layer includes a ground conductor, The second conductor layer includes a radiation conductor, The second conductor layer is provided on the side of the second main surface of the dielectric layer with respect to the dielectric layer. The antenna unit according to any one of [1] to [3]. [7] The first conductor layer includes a radiation conductor, The second conductor layer includes a waveguide element that guides the radio waves emitted by the radiating conductor in a predetermined direction. The second conductor layer is provided on the side of the second main surface of the dielectric layer with respect to the dielectric layer, The antenna unit further comprises a ground conductor layer provided on the opposite side of the dielectric layer from the first conductor layer. An antenna unit as described in any one of items [1] to [3]. [8] The antenna unit according to any one of [1] to [7], wherein the pseudo-layer includes a pattern in which array elements are arranged spaced apart from each other. [9] The conductivity of the array element is 1 × 10 6 The antenna unit described in [8] is (S / m) or greater.
[10] The shape of the array element is circular, The average diameter of the array elements is less than or equal to λ0 / 2, where λ0 is the free-space wavelength of the radio waves transmitted and received by the antenna unit. The antenna unit described in [9].
[11] The shape of the array element is rectangular, The length of the longer side of the aforementioned array element is less than or equal to λ0 / 2, where λ0 is the free-space wavelength of the radio waves transmitted and received by the antenna unit. [9] Antenna unit
[12] The pseudo-layer is composed of an insulator, The conductivity of the aforementioned insulator is 1 × 10 6 (S / m) is less than An antenna unit is provided for one of the items from [1] to [7].
[13] The antenna unit according to any one of [1] to
[12] , wherein the second conductor layer includes a mesh-like conductor pattern.
[0007] One aspect of the present invention provides a window glass equipped with an antenna unit having any of the configurations [1] to
[13] . [Effects of the Invention]
[0008] According to one aspect of the present invention, an antenna unit and window glass with excellent design can be provided. [Brief explanation of the drawing]
[0009] [Figure 1] This is a top view of the window glass according to Embodiment 1. [Figure 2] This is a top view of the antenna unit according to Embodiment 1. [Figure 3] This is a plan view of the antenna unit according to Embodiment 1. [Figure 4] This figure shows a plan view of the radiating element layer, ground conductor layer, and pseudo-layer formed in the dielectric layer of the antenna unit according to Embodiment 1. [Figure 5] This is an enlarged plan view of the boundary region A1 according to Embodiment 1. [Figure 6A] This is a diagram illustrating an example of the homogenization process according to Embodiment 1. [Figure 6B] This is a diagram illustrating an example of the homogenization process according to Embodiment 1. [Figure 7] This is a top view of the antenna unit according to Configuration Example 1 of Embodiment 2. [Figure 8] This figure shows a plan view of the radiating element layer, ground conductor layer, and pseudo-layer formed in the dielectric layer of the antenna unit according to Configuration Example 1 of Embodiment 2. [Figure 9] This figure shows a plan view of the radiating element layer, ground conductor layer, and pseudo-layer formed in the dielectric layer of the antenna unit according to Configuration Example 2 of Embodiment 2. [Figure 10] This is a top view of the antenna unit according to configuration example 3 of Embodiment 2. [Figure 11] This is a cross-sectional view of the antenna unit according to Embodiment 3. [Figure 12] This is a plan view of the antenna unit according to Embodiment 3. [Figure 13] This figure shows a plan view of the radiating element layer, waveguide layer, and pseudo-layer formed in the dielectric layer of the antenna unit according to Embodiment 3. [Figure 14]This is a cross-sectional view of a modified example of the antenna unit according to Embodiment 3. [Figure 15] This is a top view of the antenna unit according to Embodiment 4. [Figure 16] This is a plan view of the antenna unit according to Embodiment 5. [Figure 17] This is a cross-sectional view of the antenna unit according to Embodiment 5. [Figure 18] This is a cross-sectional view of the antenna unit according to Embodiment 5. [Figure 19] This figure shows the relationship between (dot diameter / dot pitch) and grayscale value. [Figure 20] This diagram shows the relationship between (mesh line width / mesh pitch) and grayscale values. [Modes for carrying out the invention]
[0010] Hereinafter, specific embodiments to which the present invention is applied will be described in detail with reference to the drawings. For clarity of explanation, the following descriptions and drawings have been omitted and simplified as appropriate. In each drawing, the same elements are denoted by the same reference numerals, and redundant explanations have been omitted as necessary. In each embodiment, deviations in directions such as parallel, horizontal, and vertical are permitted to the extent that they do not impair the effects of the present invention. The X-axis direction, Y-axis direction, and Z-axis direction are the directions parallel to the X-axis, the Y-axis, and the Z-axis, respectively. The X-axis direction, Y-axis direction, and Z-axis direction are orthogonal to each other. The XY plane, YZ plane, and ZX plane are the planes parallel to the X-axis and Y-axis directions, the planes parallel to the Y-axis and Z-axis directions, and the planes parallel to the Z-axis and X-axis directions, respectively.
[0011] In this embodiment, "plan view" and "plan drawing" refer to viewing the XY plane or the XY plane itself, respectively. Also, in this embodiment, "top view" and "top drawing" refer to viewing the ZX plane or the ZX plane itself, respectively.
[0012] In this embodiment, "same plane" means that a deviation is permissible to the extent that it does not impair the effects of the present invention.
[0013] The "antenna unit" in this embodiment is used for the propagation of signals in a predetermined frequency band. Hereinafter, the predetermined frequency band may be referred to as the target frequency band. The target frequency band may be from 4G LTE (Long Term Evolution) to 5G, or it may be, for example, the frequency band from 700MHz to 6GHz (so-called sub6), but it is not limited to these. In other words, the target frequency band may be a frequency band below 700MHz, or a frequency band above 6GHz, for example, the 28GHz band, or a frequency band above 30GHz known as millimeter wave, for example, the 79GHz band. The antenna unit may be used in, for example, wireless communication standards such as 5G and Bluetooth (registered trademark), or wireless LAN (Local Area Network) standards such as IEEE802.11ac. Furthermore, when used in a vehicle, the antenna unit may be used in an in-vehicle radar system, a V2X communication system, or a dedicated narrowband communication system called DSRC (Dedicated Short Range Communications). The antenna unit may also be compatible with standards other than those listed above.
[0014] <Overview of Embodiments> First, an overview of the embodiment described later will be explained. The antenna unit according to this embodiment comprises a dielectric layer that transmits visible light, a first conductor layer, a pseudo-layer, and a second conductor layer.
[0015] The first conductor layer is a layer provided on the side of the first main surface of the dielectric layer, with respect to the dielectric layer. The second conductor layer is a layer provided at a predetermined distance from the first conductor layer when viewed from above. The second conductor layer is provided on the side of the first main surface or the side of the second main surface of the dielectric layer, with respect to the dielectric layer. The second main surface is the main surface of the dielectric layer that is opposite to the first main surface.
[0016] In a plan view, the pseudo-layer is positioned, at least in part, around the second conductive layer. Here, in a planar view, the region of the pseudo-layer where the pseudo-layer does not overlap with the second conductor layer is defined as the first region. The region of the second conductor layer where the second conductor layer does not overlap with the pseudo-layer is defined as the second region. When both the first and second regions are read at a resolution of 400 dpi, the N-level grayscale values of the first and second regions are denoted as n1 and n2, respectively. Here, N is a natural number, and n1 and n2 are non-negative integers. In this case, the normalized absolute value of the difference between the grayscale values, i.e., |n1-n2| / N, is between 0 and 1.09 × 10⁻¹⁴. -1 The following applies:
[0017] According to the antenna unit of this embodiment, at least a portion of the pseudo-layer is arranged around the second conductor layer, and since the difference in gradation values between the first and second regions is small, the second conductor layer can be made less conspicuous by the pseudo-layer. Therefore, the aesthetic appeal can be improved.
[0018] The antenna unit will be specifically described in the following embodiments 1 to 5.
[0019] <Embodiment 1> First, Embodiment 1 of the present invention will be described. Figure 1 is a top view of a window glass 1 according to Embodiment 1. The window glass 1 is a window glass that is installed in a building or vehicle. The window glass 1 comprises a window glass body 200, an antenna unit 100, and support parts 300a and 300b.
[0020] The window glass body 200 is a transparent plate-like member that transmits visible light. In Figure 1, the main surface of the window glass body 200 is parallel to the XY plane, and the thickness direction is parallel to the Z axis direction. The positive Z direction is the indoor side, and the negative Z direction is the outdoor side. The window glass body 200 is a dielectric member whose main component is a dielectric. The material of the window glass body 200 is glass, but it may also be resin.
[0021] The antenna unit 100 is a plate-shaped, sheet-shaped, or film-shaped member provided on the main indoor surface of the window glass body 200 via support parts 300a and 300b. In this figure, the antenna unit 100 is provided along the main surface of the window glass body 200. The antenna unit 100 transmits and receives radio waves in the target frequency band. The antenna unit 100 is a planar antenna, such as a patch antenna, microstrip antenna, or slot antenna.
[0022] Support parts 300a and 300b are members that support the antenna unit 100 relative to the window glass body 200. Support parts 300a and 300b support the antenna unit 100 so that a space is formed between the window glass body 200 and the antenna unit 100. In addition, support parts 300a and 300b may support the antenna unit 100 so that the window glass body 200 is in contact with the main surface of the antenna unit 100, but to reduce the risk of thermal cracking, it is preferable to support it so that a space is formed as shown in Figure 1. In this case, support parts 300a and 300b may be spacers to secure the space between the window glass body 200 and the antenna unit 100, or they may be housings for the antenna unit 100. The materials of the support parts 300a and 300b may be dielectric materials. For example, the materials of the support parts 300a and 300b may be resins such as silicone resin, polysulfide resin, or acrylic resin. Alternatively, the materials of the support parts 300a and 300b may be metals such as aluminum.
[0023] Figure 2 is a top view of the antenna unit 100 according to Embodiment 1. Figure 3 is a plan view of the antenna unit 100 according to Embodiment 1. Figure 3 shows the XY plane as viewed from the negative Z-axis direction. The antenna unit 100 includes, as an example of the dielectric layer, first conductor layer, pseudo-layer, and second conductor layer described in the overview, a dielectric layer 10, a radiating element layer 20, a pseudo-layer 60, and a ground conductor layer 40, respectively. Figure 4 is a plan view showing the radiating element layer 20, ground conductor layer 40, and pseudo-layer 60 formed in the dielectric layer 10 of the antenna unit 100 according to Embodiment 1. Figure 4 shows a plan view as seen from the first main surface side and a plan view as seen from the second main surface side.
[0024] As shown in Figure 2, the dielectric layer 10 is a transparent plate-like, sheet-like, or film-like member that transmits visible light. The dielectric layer 10 mainly consists of a dielectric material. The material of the dielectric layer 10 may be glass, ceramics, or resin. Examples of materials for the dielectric layer 10 include glass substrates, acrylic, polycarbonate, PVB (polyvinyl butyral), COP (cycloolefin polymer), PET (polyethylene terephthalate), polyimide, ceramics, or sapphire. If the dielectric layer 10 is a glass substrate, examples of its material include alkali-free glass, quartz glass, soda-lime glass, borosilicate glass, alkali borosilicate glass, or aluminosilicate glass.
[0025] The visible light transmittance of the dielectric layer 10 is preferably 30% or more, more preferably 50% or more, even more preferably 70% or more, particularly preferably 80% or more, and most preferably 90% or more. The visible light transmittance is measured in accordance with JIS R 3106 (1998).
[0026] The dielectric layer 10 has a main surface that is parallel to the XY plane, similar to the window glass body 200, and a thickness direction that is parallel to the Z axis. Hereinafter, the main surface of the dielectric layer 10 on the negative Z-axis side may be referred to as the first main surface 10(1), and the main surface of the dielectric layer 10 on the positive Z-axis side may be referred to as the second main surface 10(2). In other words, the second principal surface 10(2) is the principal surface opposite to the first principal surface 10(1).
[0027] The radiating element layer 20 is a layer containing a radiating conductor that is formed to transmit and receive radio waves in the target frequency band described above. The radiating element layer 20 is provided on the side of the first main surface 10(1) of the dielectric layer 10, that is, on the negative Z-axis side with respect to the dielectric layer 10. In this embodiment 1, the radiating element layer 20 is specifically formed on at least a portion of the first main surface 10(1) of the dielectric layer 10, such that its surface is parallel to the XY plane.
[0028] The grounding conductor layer 40 is a layer containing a grounding conductor that forms the ground plane. The grounding conductor layer 40 is provided in correspondence with the radiating element layer 20. Since the grounding conductor layer 40 may be visually conspicuous, in this embodiment 1, the grounding conductor layer 40 is camouflaged to make it less conspicuous. In this embodiment 1, the grounding conductor layer 40 is provided on the side of the second main surface 10(2) of the dielectric layer 10, that is, on the positive Z-axis side with respect to the dielectric layer 10. Specifically, the grounding conductor layer 40 is formed on at least a portion of the second main surface 10(2) of the dielectric layer 10, such that its surface is parallel to the XY plane.
[0029] The pseudo-layer 60 is a camouflage layer formed to make the ground conductor layer 40 less conspicuous. Like the ground conductor layer 40, the pseudo-layer 60 is provided on the side of the second main surface 10(2) of the dielectric layer 10, with the dielectric layer 10 as the reference. More specifically, the pseudo-layer 60 is formed on the same plane as the ground conductor layer 40. That is, the pseudo-layer 60 is formed on at least a portion of the second main surface 10(2) of the dielectric layer 10, such that its surface is parallel to the XY plane.
[0030] Figures 3 and 4 show, as an example, a configuration in which two antenna elements 20a and 20b are formed on the radiating element layer 20 shown in Figure 2 (see the first main surface side in Figure 4). Also shown is a configuration in which two grounding conductors 40a and 40b are formed on the grounding conductor layer 40 shown in Figure 2 (see the second main surface side in Figure 4). The grounding conductors 40a and 40b are provided corresponding to the antenna elements 20a and 20b, respectively. The antenna element 20a and grounding conductor 40a, and the antenna element 20b and grounding conductor 40b are arranged at a predetermined distance apart in the X-axis direction. Note that the number of antenna elements and grounding conductors included in the antenna unit 100 is not limited to 2; it may be 1 or 3 or more.
[0031] [Antenna element 20a] The following describes the details of antenna element 20a. Note that antenna element 20b is the same as antenna element 20a, so its description is omitted.
[0032] The antenna element 20a is a planar conductive pattern formed on the side of the first main surface 10(1). Examples of conductive materials used for the antenna element 20a include gold, silver, copper, platinum, aluminum, or chromium. The antenna element 20a may also be formed by plating the above-mentioned materials. Plating makes it possible to form an antenna element 20a that is resistant to corrosion and has good design. Alternatively, the antenna element 20a may be formed by sintering a pattern created on the first main surface 10(1) using screen printing with a paste of silver or copper, etc.
[0033] The antenna element 20a may be formed directly on the first main surface 10(1), or it may be formed indirectly. For example, the antenna element 20a may be formed on the first main surface 10(1) of the dielectric layer 10 via a resin layer. The resin layer may be an interlayer such as polyvinyl butyral or ethylene vinyl acetate, polyethylene terephthalate, or optically transparent adhesive (OCA).
[0034] The antenna element 20a has a radiating conductor 21a and a feed line 30a.
[0035] The radiating conductor 21a includes at least one patch conductor. In this embodiment 1, the radiating conductor 21a includes four patch conductors 22a, 23a, 24a, and 25a. The patch conductors 22a, 23a, 24a, and 25a may be composed of solid planar conductors. However, they are not limited to this, and the patch conductors 22a, 23a, 24a, and 25a may be composed of a mesh-like conductor pattern formed such that gaps are created in a planar view. In this case, the field of view can be ensured and the design can be improved.
[0036] The power supply line 30a is a conductor pattern formed on the side of the first main surface 10(1). The power supply line 30a functions as a signal wiring. In this embodiment 1, the power supply line 30a is a strip conductor extending in the Y-axis direction. The power supply line 30a may be composed of a solid planar conductor. However, it is not limited to this, and the power supply line 30a may be composed of a mesh-like conductor pattern formed so that gaps are created in a planar view. In this case, the field of view can be secured and the design can be improved.
[0037] In this embodiment 1, the power supply line 30a is formed integrally with the radiating conductor 21a. The power supply line 30a is connected to the radiating conductor 21a at one end 32a. More specifically, at one end 32a, the power supply line 30a has branch paths to patch conductors 22a and 23a, branch paths to patch conductors 24a and 25a, and a branching point 36a where these branch paths are connected to each other. The power supply line 30a is also connected to a wireless device such as a transmitter at the other end 33a. The end 33a of the power supply line 30a functions as a power supply terminal. In this embodiment 1, the end 33a coincides with the end of the dielectric layer 10 in the positive Y-axis direction, but it may be separated from the end of the dielectric layer 10 in the positive Y-axis direction by a predetermined distance in the negative Y-axis direction.
[0038] [Grounding conductor 40a] The following describes the details of the grounding conductor 40a. Note that the grounding conductor 40b is the same as grounding conductor 40a, so its description is omitted.
[0039] The grounding conductor 40a is a planar conductor pattern formed on the second main surface 10(2) side.
[0040] Examples of conductor materials used for the grounding conductor 40a include gold, silver, copper, platinum, aluminum, or chromium. The grounding conductor 40a may also be formed by plating one of the above materials. Plating makes it possible to form a grounding conductor 40a that is resistant to corrosion and has a good design. Alternatively, the grounding conductor 40a may be formed by sintering a pattern created on the second main surface 10(2) using screen printing with a paste of silver or copper, etc.
[0041] The grounding conductor 40a may be formed directly on the second main surface 10(2), or it may be formed indirectly. For example, the grounding conductor 40a may be formed on the second main surface 10(2) of the dielectric layer 10 via a resin layer. The resin layer may be an interlayer such as polyvinyl butyral or ethylene vinyl acetate, polyethylene terephthalate, or OCA, as an example.
[0042] The grounding conductor 40a includes a linear grounding conductor 41a formed such that a gap is created when viewed from above, and a planar grounding conductor 50a connected to the linear grounding conductor 41a.
[0043] The linear ground conductor 41a is a continuous pattern in which linear conductors are electrically connected to each other, specifically a mesh-like conductor pattern. In other words, the region in which the linear ground conductor 41a is formed contains grid-like gaps in a plan view. This ensures a clear field of view and improves the aesthetic appearance. The linear ground conductor 41a is located on the side of the second main surface 10(2) such that at least a portion of it overlaps with the antenna element 20a in a plan view. For example, in this embodiment 1, the linear ground conductor 41a is formed in a rectangular region. However, the shape of the region in which the linear ground conductor 41a is formed is not limited to this, and may be other polygons or circles. In this embodiment 1, the end of the linear ground conductor 41a in the positive Y-axis direction coincides with the end of the dielectric layer 10 in the positive Y-axis direction, but it may be separated from the end of the dielectric layer 10 in the positive Y-axis direction by a predetermined distance in the negative Y-axis direction.
[0044] For example, the angle between the linear conductors of the linear grounding conductor 41a is approximately 90°, but it is not limited to this; it may be acute or obtuse. In other words, the mesh may be rectangular or rhombic. If the mesh is rectangular, a square is preferred from an aesthetic standpoint. The mesh may also be other polygons, such as hexagons. If the mesh is hexagonal, a regular hexagon is preferred from an aesthetic standpoint. The mesh may also be a random shape formed by a self-organizing method.
[0045] The planar grounding conductor 50a is a ground electrode corresponding to the end portion 33a, which functions as a power supply end. Specifically, the planar grounding conductor 50a is formed on the side of the second main surface 10(2) at a position that overlaps with the end portion 33a in a plan view. In this embodiment 1, the planar grounding conductor 50a is formed at the end portion of the dielectric layer 10 in the positive Y-axis direction, but it may also be formed at a position separated by a predetermined distance in the negative Y-axis direction from the end portion of the dielectric layer 10 in the positive Y-axis direction. The planar grounding conductor 50a is formed in a solid pattern.
[0046] [Pseudo-layer 60] In a plan view, the pseudo-layer 60 is positioned around the area where the grounding conductor 40a is formed, without overlapping with the area where the grounding conductor 40a is formed. "Placed around the area" means that it is positioned so as to be in contact with at least a portion of the outer edge of the area where the grounding conductor 40a is formed in a plan view. For example, if the area where the grounding conductor 40a is formed is rectangular, the pseudo-layer 60 may be positioned so as to be in contact with three sides of the rectangle, excluding the end side in the positive Y-axis direction, as shown in Figure 4, and surrounding the three sides. However, it is not limited to this, and the pseudo-layer 60 may be positioned so as to be in contact with all four sides of the rectangle, surrounding the four sides. Alternatively, the pseudo-layer 60 may be positioned so as to be in contact with one or two sides of the rectangle. Note that "in contact" may mean direct contact, but there may also be a gap that does not impair the effect. If the gap is large, the boundary between the pseudo-layer 60 and the grounding conductor 40a will become more noticeable.
[0047] Here, it is preferable that the pseudo-layer 60 does not affect the antenna performance, but the size of the gap can affect the antenna performance. For example, as shown in Figures 2 to 4, if the pseudo-layer 60 is formed on the same plane as the ground conductor 40a and the pseudo-layer 60 is made of a conductor, the antenna performance will change depending on the size of the gap. In this case, the gap may be between 20 μm and 300 μm. If the gap is 20 μm or larger, the influence of the pseudo-layer 60 on the antenna performance will be small. Also, if the gap is 300 μm or smaller, the boundary between the pseudo-layer 60 and the ground conductor 40a will be less noticeable. As an example, the gap is 30 μm.
[0048] On the other hand, if the pseudo-layer 60 is formed on a plane different from the ground conductor 40a, or if the pseudo-layer 60 is made of an insulator, the effect on antenna performance is sufficiently small regardless of the size of the gap. Therefore, in this case, the gap when it is present may be greater than 0 μm and less than or equal to 300 μm.
[0049] Furthermore, a conductor is defined as having a conductivity σ of 1 × 10⁻⁶. 6 A conductive material has a conductivity of (S / m) or higher, while an insulator has a conductivity σ of 1 × 10⁻⁶. 6 It is a dielectric material with a ratio of less than (S / m).
[0050] In Figures 3 and 4, the grounding conductor layer 40 includes grounding conductors 40a and 40b that are spaced apart from each other in the X-axis direction, and the pseudo-layer 60 is also arranged around the grounding conductors 40b in a plan view. For example, the pseudo-layer 60 may be arranged around multiple grounding conductors 40a and 40b so as to integrally connect them in a plan view.
[0051] In this way, the pseudo-layer 60 is positioned around the ground conductor layer 40 in a plan view, at least in part, thereby camouflaging the ground conductor layer 40. This improves the aesthetic appearance. As shown in Figures 3 and 4, when the ground conductor layer 40 of the antenna unit 100 has multiple ground conductors 40a and 40b that are spaced apart from each other, the multiple ground conductors 40a and 40b appear as a single unit, resulting in a particularly noticeable effect.
[0052] Furthermore, in Figures 3 and 4, the shape of the pseudo-layer 60 is designed to form a rectangular area when combined with the area where the grounding conductor layer 40 is formed. However, it is not limited to this, and may be designed to be circular or other shapes. For example, the shape of the pseudo-layer 60 may be designed to form an arbitrary pattern when combined with the area where the grounding conductor layer 40 is formed. This can further improve the aesthetic appeal.
[0053] Furthermore, the X-axis edge of the pseudo-layer 60 may coincide with the X-axis edge of the dielectric layer 10, or it may be separated from the X-axis edge of the dielectric layer 10 by a predetermined distance. The same applies to the Y-axis edge.
[0054] Figure 5 is an enlarged plan view of region A1 according to Embodiment 1. Region A1 is the region that includes the boundary between the pseudo-layer 60 and the ground conductor layer 40, as shown in Figures 3 and 4.
[0055] The pseudo-layer 60 preferably has a structure that causes sufficiently small scattering by radio waves and does not affect antenna performance. The pseudo-layer 60 may be made of a conductor or an insulator. If the pseudo-layer 60 is an insulator, the scattering of radio waves by the pseudo-layer 60 can be sufficiently reduced, and the impact on antenna characteristics can be reduced. Also, if the pseudo-layer 60 is made of a conductor, the scattering of radio waves by the pseudo-layer 60 can be reduced by making it composed of multiple conductors that are spatially separated, i.e., do not conduct DC, and the impact on antenna characteristics can be reduced.
[0056] In this embodiment 1, the pseudo-layer 60 includes a pattern in which conductive array elements 61 are arranged at predetermined pitches, spaced apart from one another. In Figure 5, the array elements 61 are circular, and may be referred to as dots. It is preferable that the diameter of the array elements 61 is λ0 / 2 or less, as this reduces scattering by radio waves. It is more preferable that the diameter of the array elements 61 is λ0 / 5 or less, and even more preferable that it is λ0 / 10 or less. As shown in Figure 5, the array elements 61 may be positioned in a location where a predetermined gap is created between them and the ground conductor layer 40 in a plan view. As an example, the distance from the outer edge of the ground conductor layer 40 to the array elements 61 is 30 μm.
[0057] The shape of the array element 61 may be rectangular. When the shape of the array element 61 is rectangular, it is preferable that the length of one side, especially the length of the longer side, be λ0 / 2 or less, as this reduces scattering by radio waves. The length of one side of the rectangle, especially the length of the longer side, is more preferably λ0 / 5 or less, and even more preferably λ0 / 10 or less. Here, λ0 is the wavelength of the radio waves transmitted and received by the antenna unit 100 in free space. Furthermore, the term "rectangle" includes not only rectangles and squares, but also shapes in which the corners of a rectangle or square are beveled.
[0058] Furthermore, the shape of the array element 61 may be a rhombus, triangle, hexagon, other polygon, star, or any other shape.
[0059] Examples of conductor materials used for the array element 61 include gold, silver, copper, platinum, aluminum, or chromium. From the viewpoint of manufacturing cost, the conductor material used for the array element 61 is preferably the same material as the second conductor layer described in the overview, that is, the same material as the ground conductor layer 40 in this embodiment 1. The pseudo layer 60 may be formed by plating the above-mentioned material. By plating, it is possible to form a pseudo layer 60 that is resistant to corrosion and has good design appeal. Alternatively, the pseudo layer 60 may be formed by sintering a pattern created on the second main surface 10(2) using screen printing with a paste of silver or copper, etc.
[0060] The pseudo-layer 60 may be formed directly on the second main surface 10(2), or it may be formed indirectly. For example, the pseudo-layer 60 may be formed on the side of the second main surface 10(2) of the dielectric layer 10 via a resin layer. The resin layer may be an interlayer such as polyvinyl butyral or ethylene vinyl acetate, polyethylene terephthalate, or an optically transparent adhesive, as an example.
[0061] In this embodiment 1, the region in which the pseudo-layer 60 does not overlap with the second conductor layer, the ground conductor layer 40, in a plan view is defined as the first region. The region in which the second conductor layer, the ground conductor layer 40, does not overlap with the pseudo-layer 60 is defined as the second region. In this embodiment 1, since the pseudo-layer 60 and the ground conductor layer 40 do not overlap in a plan view, the first region is any region of the pseudo-layer 60, and the second region is any region of the ground conductor layer 40.
[0062] [F, an index for contrast, and inconspicuousness] When the patterns contained in the first and second regions are fine, or when a person views the first and second regions from a distance, the first and second regions appear as a homogenized monochromatic color to the human eye. This phenomenon is particularly pronounced when the resolution of the human eye is lower than the resolution required to recognize the patterns contained in the first and second regions. The density of the color seen by the human eye changes depending on the diameter, line width, or pitch of the pattern. For example, the larger the diameter of the dots, the larger the line width, or the smaller the pitch, the darker the color appears in that region. Conversely, for example, the smaller the diameter of the dots, the smaller the line width, or the larger the pitch, the lighter the color appears in that region.
[0063] In this embodiment 1, the phenomenon described above is used to reduce the difference in intensity between the color of the first region when homogenized and the color of the second region when homogenized. As a result, the first and second regions appear continuous and integrated to the human eye, making the second region less conspicuous.
[0064] (Method for calculating the intensity difference index F) In the first embodiment, as an index of the density difference, a value F obtained by normalizing the difference in the gradation values of N (N is a natural number) steps between the first region and the second region when both the first region and the second region are read at a resolution of 400 dpi is used. F is represented by the following formula (1). F = |n1 - n2| / N …(1) n1 is the gradation value of the first region, and n2 is the gradation value of the second region.
[0065] Thus, the density difference index F can be obtained by substituting the gradation value n1 of the first region and the gradation value n2 of the second region into formula (1).
[0066] <S The above density difference index F is preferably 0 or more and 1.09×10 -1 or less, more preferably 0 or more and 6.25×10 -2 or less, even more preferably 0 or more and 3.52×10 -2 or less, still more preferably 0 or more and 1.56×10 -2 or less, and particularly preferably 0 or more and 1.09×10 -1 or less. When F is 0 or more and 1.09×10 -2 or less, the density difference becomes small, so the second region becomes less conspicuous. When F is 0 or more and 6.25×10 -2 or less, the density difference becomes smaller, so the second region becomes even less conspicuous. When F is 0 or more and 3.52×10 -2 or less, the density difference becomes even smaller, so the second region becomes even less conspicuous. When F is 0 or more and 1.56×10 or less, the density difference becomes so small that the boundary is indistinguishable, so the second region becomes particularly less conspicuous. Here, the density difference index F is a value at a resolution of 400 dpi of the imaging unit.
[0067] (Calculation method of gradation values n1, n2) The gradation value n1 of the first region and the gradation value n2 of the second region can be calculated from an image obtained by homogenizing the patterns included in each of the first region and the second region. Figures 6A and 6B illustrate an example of the homogenization process according to Embodiment 1. The left side of Figure 6A shows the dot pattern of the first region included in the pseudo-layer 60. First, the dot pattern of the first region is captured using an imaging unit set to a predetermined resolution. The imaging unit may be an imaging unit included in an optical reading device such as a digital camera or scanner. By setting the resolution of the imaging unit in this case to be equal to or lower than the resolution of the human eye, the captured image shown on the right side of Figure 6A can be obtained. The resolution here refers to relative resolution. The captured image includes a homogenized pattern 70, which is a homogenized image region. The gradation value n1 of the first region can be obtained by measuring the gradation value of the homogenized pattern 70. The measurement of the gradation value can be performed using any image processing software. The gradation value n1 may be the gradation value of one point in the homogenized pattern 70, or it may be the average of the gradation values of multiple points in the homogenized pattern 70.
[0068] The resolution of the imaging unit is preferably 100 dpi to 500 dpi, more preferably 200 dpi to 400 dpi, and even more preferably 300 dpi to 400 dpi. A resolution of 100 dpi or higher improves the reliability of the tonal values because the differences in patterns are reflected in the tonal values. A resolution of 200 dpi or higher further improves the reliability of the tonal values because the differences in tonal values become more pronounced depending on the pattern. A resolution of 300 dpi or higher allows for the acquisition of images equivalent to those seen by the human eye, enabling the calculation of tonal values that accurately reflect reality. A resolution of 700 dpi or lower allows for the acquisition of images with less uniformity, enabling the calculation of tonal values. A resolution of 600 dpi or lower further improves the accuracy of tonal value calculation because images with even less uniformity are obtained. It should be noted that the resolution of the human eye is said to be 300 dpi or lower, or 400 dpi or lower.
[0069] The left side of Figure 6B shows the mesh pattern of the second region included in the grounding conductor layer 40. Similar to the dot pattern of the pseudo-layer 60, the mesh pattern of the second region can be homogenized to obtain a homogenized pattern 72. Then, by measuring the gradation value of the homogenized pattern 72, the gradation value n2 of the second region can be obtained.
[0070] Alternatively, as another method of homogenization, the dot pattern of the first region contained in the pseudo-layer 60 may be captured using an imaging unit set to a predetermined resolution, and a homogenized pattern 70 may be obtained by performing image processing on the captured image. The gradation value of the homogenized pattern 70 can then be measured to obtain the gradation value n1 of the first region. The gradation value can be measured using any image processing software. In this case, the imaging unit may be an imaging unit included in an optical reading device such as an optical microscope, digital camera, or scanner. In this case, the resolution of the imaging unit may be sufficient to recognize the pattern. Furthermore, the gradation value n2 of the second region only needs to consider the gradation value near the boundary with the first region, and may increase or decrease as it moves away from the first region.
[0071] [Pattern dimensions and gradation values] Here, the dimensions of the pattern are closely related to the grayscale values when the pattern is observed.
[0072] For example, if grayscale values (N=256) are used as an example of gradation values, the relationship between (dot diameter / dot pitch) in the first region and the gradation value n1 in the first region can be expressed by the following formula, where (dot diameter / dot pitch) is x1. n1 = -261.40x1 + 321.02 …(2)
[0073] Furthermore, if we use grayscale values (N=256) as an example of gradation values, the relationship between (mesh line width / mesh pitch) in the second region and the gradation value n2 in the second region can be expressed by the following formula, where (mesh line width / mesh pitch) is x2. n² = -861.64x² + 250.71 …(3)
[0074] [Gradation values and antenna performance] If the line width of the mesh in the second region is small or the mesh pitch is large, radio waves can penetrate more easily, thus reducing antenna performance. On the other hand, if the line width of the mesh in the second region is large or the mesh pitch is small, radio waves cannot penetrate as easily, thus improving antenna performance. As mentioned above, (mesh line width / mesh pitch) x 2 is correlated with the gradation value n2 of the second region, so antenna performance also changes depending on the gradation value n2 of the second region. Specifically, the larger the gradation value n2 of the second region, the lower the antenna performance, and the smaller the gradation value n2 of the second region, the better the antenna performance.
[0075] For example, when using a grayscale value (N=256) as an example of a gradation value, in order to improve antenna performance, n2 is preferably 246 or less, more preferably 240 or less, even more preferably 232 or less, particularly preferably 217 or less, and most preferably 211 or less. When n2 is 246 or less, the mesh line width or mesh pitch becomes a desirable size, making it more difficult for radio waves to penetrate. Also, in order to make the second region less conspicuous, n2 is preferably 150 or more, more preferably 173 or more, and even more preferably 190 or more.
[0076] Therefore, by setting the gradation value n2 of the second region within the above range and setting the intensity difference index F within the above range, an antenna unit 100 that is less conspicuous and has improved antenna performance can be provided.
[0077] Furthermore, a preferred range for (mesh line width / mesh pitch) x2 can be derived from equation (3) above. x2 is 5.47 × 10 -3 The above is preferable, 1.24 × 10 -2 The above is more preferable, 2.17 × 10 -2 The above is even more preferable, 3.91 × 10 -2 The above is particularly preferred, 4.61 × 10 -2 The above is the most preferable. Also, x2 is 1.17 × 10 -1The following is preferable: 9.02 × 10 -2 The following is more preferable: 7.05 × 10 -2 The following is even more preferable. Therefore, by setting (mesh line width / mesh pitch) x 2 within the preferred range and setting the density difference index F within the above range, an antenna unit 100 that is less conspicuous and has improved antenna performance can be provided. The mesh line width may be 5 μm or more and 30 μm or less, or 6 μm or more and 15 μm or less. The mesh pitch may be 50 μm or more and 500 μm or less, or 100 μm or more and 300 μm or less.
[0078] In order to set the intensity difference index F within the above range, n1 is preferably 246 or less, more preferably 240 or less, even more preferably 232 or less, particularly preferably 217 or less, and most preferably 211 or less. Furthermore, n1 is preferably 150 or more, more preferably 173 or more, and even more preferably 190 or more.
[0079] Furthermore, a preferred range for (dot diameter / dot pitch)x1 can be derived from equation (2) above. x1 is 2.87 × 10 -1 The above is preferable, 3.10 × 10 -1 The above is more preferable, 3.41 × 10 -1 The above is even more preferable, 3.98 × 10 -1 The above is particularly preferred, 4.21 × 10 -1 The above is the most preferable. Also, x1 is 6.54 × 10 -1 The following is preferable: 5.66 × 10 -1 The following is more preferable: 5.01 × 10 -1 The following is even more preferable. Therefore, by setting (dot diameter / dot pitch) x 1 within the preferred range and setting the density difference index F within the above range, an antenna unit 100 that is less conspicuous and has improved antenna performance can be provided. The diameter of the dot may be between 50 μm and 500 μm.
[0080] As described above, according to Embodiment 1, the pseudo-layer 60 is arranged around the ground conductor layer 40, and by adjusting the difference in gradation values or color difference between the first and second regions to a suitable range, an antenna unit and window glass with excellent design can be provided. Furthermore, by adjusting the gradation values of the second region or the dimensions of the dots in the first region to a suitable range, antenna performance can be suitably ensured.
[0081] Furthermore, Embodiment 1 can be modified as follows. For example, in Embodiment 1 described above, the pattern included in the pseudo-layer 60 was a pattern in which conductive array elements 61 were arranged at predetermined intervals, but it may also be a pattern made of an insulator such as resin. In this case, the pattern may be a pattern in which circular insulators are arranged at predetermined intervals, or it may be a continuous pattern in which linear insulators are connected to each other, specifically a mesh-like pattern. The shape of the pattern may be a rhombus, triangle, hexagon, star, or other shape.
[0082] The pseudo-layer 60 may be composed of an insulator and may not contain a conductor. In this case, the pseudo-layer 60 may not have a pattern and may be a solid planar insulator. Examples of insulating materials include acrylic, polycarbonate, PVB (polyvinyl butyral), COP (cycloolefin polymer), PET (polyethylene terephthalate), polyimide, ceramics or sapphire silicone resins, polysulfide resins, acrylic resins, or glass. The pseudo-layer 60 may also be made by printing ink (pigment) onto these materials.
[0083] In Embodiment 1, the grounding conductor layer 40 had a mesh-like pattern, but the grounding conductor layer 40 may also be a solid planar conductor. In this case, the conductor material used for the grounding conductor layer 40 may be a transparent material such as ITO (Indium Tin Oxide).
[0084] <Embodiment 2> Next, Embodiment 2 of the present invention will be described. In Embodiment 1, the pseudo-layer 60 was on the same plane as the ground conductor layer 40 of the antenna unit 100. In Embodiment 2, the pseudo-layer 60 is on a different plane from the ground conductor layer 40.
[0085] [Configuration Example 1] Figure 7 is a top view of the antenna unit 100A according to Configuration Example 1 of Embodiment 2. Figure 8 is a plan view showing the radiating element layer 20, ground conductor layer 40, and pseudo-layer 60A formed in the dielectric layer 10 of the antenna unit 100A according to Embodiment 2.
[0086] The antenna unit 100A includes, as an example of the dielectric layer, first conductor layer, pseudo-layer, and second conductor layer described in the overview, a dielectric layer 10, a radiating element layer 20, a pseudo-layer 60A, and a ground conductor layer 40, respectively.
[0087] In Configuration Example 1, the radiating element layer 20 is provided on the side of the first main surface 10(1) of the dielectric layer 10, with the dielectric layer 10 as the reference.
[0088] In Configuration Example 1, the grounding conductor layer 40 is the layer to be camouflaged, similar to Embodiment 1. The grounding conductor layer 40 is provided on the side of the second main surface 10(2) of the dielectric layer 10, with the dielectric layer 10 as the reference.
[0089] In Configuration Example 1, the pseudo-layer 60A is a camouflage layer to make the second conductor layer, the ground conductor layer 40, less conspicuous, similar to Embodiment 1. Therefore, the pseudo-layer 60A is arranged around the ground conductor layer 40 in a plan view, similar to the pseudo-layer 60. However, the pseudo-layer 60A differs from the pseudo-layer 60 in that it is provided on the side of the first main surface 10(1) of the dielectric layer 10, with the dielectric layer 10 as the reference. More specifically, the pseudo-layer 60A is formed on the same plane as the radiating element layer 20.
[0090] In Configuration Example 1, the first region is any region of the pseudo-layer 60A, and the second region is any region of the grounding conductor layer 40. The preferred ranges of F, x2, n2, and D are the same as in Embodiment 1.
[0091] Even if the pseudo-layer 60A in Configuration Example 1 is not on the same plane as the ground conductor layer 40, the pseudo-layer 60A is arranged around the ground conductor layer 40 in a plan view, and the difference in gradation values or color difference between the first and second regions is adjusted to a suitable range, thereby achieving the same effect as in Embodiment 1.
[0092] [Configuration Example 2] In Configuration Example 2, the pseudo-layer 60A is a camouflage layer that makes the radiating element layer 20 less conspicuous instead of making the grounding conductor layer 40 less conspicuous. For example, if the conductor used in the grounding conductor layer 40 is a transparent material such as ITO, and the conductor used in the radiating element layer 20 is an opaque material such as gold, silver, or copper, the radiating element layer 20 will be more conspicuous. However, this can be avoided by camouflaging the radiating element layer 20 with the pseudo-layer 60A.
[0093] In Configuration Example 2, the arrangement of the radiating element layer 20, the ground conductor layer 40, and the pseudo-layer 60A in the Z-axis direction is the same as in Configuration Example 1 of Embodiment 2. In other words, the radiating element layer 20 is formed on the first main surface 10(1) with respect to the dielectric layer 10, and the ground conductor layer 40 is formed on the second main surface 10(2) with respect to the dielectric layer 10. However, Configuration Example 2 differs from Configuration Example 1 in that the antenna unit 100A has the radiating element layer 20 as the second conductor layer described in the overview, and the ground conductor layer 40 as the first conductor layer described in the overview.
[0094] In Configuration Example 2, the grounding conductor layer 40 may have a continuous pattern, specifically a mesh pattern, similar to the grounding conductor layer 40 in Embodiment 1, or it may be a solid planar conductor.
[0095] In the second configuration example, the radiating element layer 20 may have a continuous pattern, specifically a mesh pattern, similar to the grounding conductor layer 40 in the first embodiment.
[0096] In configuration example 2, the pseudo-layer 60A is formed on the same plane as the radiating element layer 20.
[0097] Figure 9 is a plan view showing the radiating element layer 20, ground conductor layer 40, and pseudo-layer 60A formed in the dielectric layer 10 of the antenna unit 100A according to Configuration Example 2 of Embodiment 2. In a plan view, the pseudo-layer 60A is arranged around the radiating element layer 20. Specifically, it is arranged to be in contact with at least a portion of the outer edge of the radiating conductor 21a included in the radiating element layer 20 and the outer edge of the feed line 30.
[0098] In configuration example 2, the first region is any region of the pseudo-layer 60A, and the second region is any region of the radiating element layer 20. The preferred ranges of F, x2, n2, and D are the same as in embodiment 1.
[0099] Even if the object to be camouflaged is the radiating element layer 20, the pseudo-layer 60A is arranged around the radiating element layer 20 in a plan view, and by adjusting the difference in gradation values or color difference between the first and second regions to a suitable range, the camouflage can be effectively achieved. This improves the aesthetic appeal.
[0100] [Configuration Example 3] From the viewpoint of manufacturing cost, it is preferable that the pseudo-layer be formed on the same plane as the ground conductor layer 40, as in Embodiment 1, or on the same plane as the radiating element layer 20, as in Embodiment 2. Also, from the viewpoint of parallax, it is preferable that the pseudo-layer be formed on the same plane as the second conductor layer to be camouflaged. However, the pseudo-layer may be formed on a plane different from either the radiating element layer 20 or the ground conductor layer 40.
[0101] For example, antenna unit 100B has the same configuration as configuration example 1 or configuration example 2 in a plan view, but the configuration in a top view is different. Figure 10 is a top view of antenna unit 100B according to configuration example 3 of embodiment 2. Antenna unit 100B differs from antenna unit 100A in that it has a dielectric layer 11 and a pseudo-layer 60B instead of pseudo-layer 60A. In addition, antenna unit 100B has a dielectric layer 10 in addition to the dielectric layer 11, and the dielectric layer described in the overview is the dielectric layer 10. Also, in antenna unit 100B, the second conductor layer described in the overview may be a ground conductor layer 40 or a radiating element layer 20.
[0102] The dielectric layer 11 is a transparent plate-like, sheet-like, or film-like member that transmits visible light. The dielectric layer 11 functions as a support substrate for the pseudo-layer 60B. The dielectric layer 11 is provided parallel to the XY plane on the negative Z-axis side with respect to the radiating element layer 20. As an example, the dielectric layer 11 is arranged in contact with the radiating element layer 20. Further description of the dielectric layer 11 is the same as that of the dielectric layer 10 and is therefore omitted.
[0103] The pseudo-layer 60B is provided on the negative Z-axis side with respect to the dielectric layer 11. As an example, the pseudo-layer 60B is arranged on the surface of the dielectric layer 11 such that its surface is parallel to the XY plane. The shape and position of the pseudo-layer 60B in plan view may be the same as that of the pseudo-layer 60A in Configuration Example 1 or Configuration Example 2.
[0104] In configuration example 3, the first region is any region of the pseudo-layer 60B, and the second region is any region of the radiating element layer 20 or the grounding conductor layer 40. The preferred ranges of F, x2, n2, and D are the same as in embodiment 1.
[0105] Furthermore, the dielectric layer 11 may be provided on the positive Z-axis side with respect to the ground conductor layer 40. In this case, the pseudo-layer 60B is provided on the positive Z-axis side with respect to the dielectric layer 11.
[0106] The pseudo-layer 60B is arranged around the second conductive layer that is to be camouflaged in a plan view, and by adjusting the difference in gradation values or color difference between the first and second regions to a suitable range, the same effect as in Configuration Example 1 or Configuration Example 2 is achieved.
[0107] <Embodiment 3> Next, Embodiment 3 of the present invention will be described. There is a problem in that the reflection of radio waves at the interface of the window glass body 200 increases radiation toward the indoor side, which reduces the front-to-back ratio of the antenna unit. The indoor side is the positive Z-axis side. To solve this problem, an antenna unit is known in which a waveguide layer is provided on the outdoor side of the radiating element layer. The antenna unit according to Embodiment 3 corresponds to such an antenna unit. In this Embodiment 3, the object to be camouflaged is the waveguide layer in addition to the ground conductor layer.
[0108] Figure 11 is a cross-sectional view of the antenna unit 100C according to Embodiment 3. Specifically, Figure 11 is a cross-sectional view of the antenna unit 100C shown in Figure 12 along the line XIV-XIV'. Figure 12 is a plan view of the antenna unit 100C according to Embodiment 3. Figure 13 is a plan view showing the radiating element layer 20C, the waveguide layer 80, and the pseudo-layer 60C formed in the dielectric layer 12 according to Embodiment 3. Figure 13 shows a plan view of the dielectric layer 12 as seen from the first main surface side and a plan view of the dielectric layer 12 as seen from the second main surface side.
[0109] In antenna unit 100C, the dielectric layer, first conductor layer, pseudo-layer, and second conductor layer described in the overview are the dielectric layer 12, radiating element layer 20C, pseudo-layer 60C, and waveguide layer 80.
[0110] Figures 12 and 13 show, as an example, a configuration in which two antenna elements 20Ca and 20Cb are formed on the radiating element layer 20 shown in Figure 11 (see the first main surface side in Figure 13). Also shown is a configuration in which two waveguide sections 80a and 80b are formed on the waveguide layer 80 shown in Figure 11 (see the second main surface side in Figure 13). Similarly, two grounding conductors 40a and 40b are formed on the grounding conductor layer 40. Note that the number of radiating elements, grounding conductor layers, and waveguide sections included in the antenna unit 100C is not limited to two; it may be one or three or more.
[0111] (Dielectric layer 12) As shown in Figure 11, the dielectric layer 12 is a transparent plate-like, sheet-like, or film-like member that transmits visible light. The dielectric layer 12 functions as a spacer to prevent contact between the radiating element layer 20C and the waveguide layer 80. The main surface of the dielectric layer 12 is parallel to the XY plane, and the thickness direction is parallel to the Z axis direction. Further description of the dielectric layer 12 is the same as that of the dielectric layer 10 and is therefore omitted.
[0112] In the following, the principal surface of the dielectric layer 12 on the positive Z-axis side will be referred to as the first principal surface 12(1), and the principal surface of the dielectric layer 12 on the negative Z-axis side will be referred to as the second principal surface 12(2). In other words, the second principal surface 12(2) is the principal surface opposite to the first principal surface 12(1).
[0113] (Radiating element layer 20C) The radiating element layer 20C is a layer that includes a radiating conductor 21C formed to transmit and receive radio waves in the target frequency band. Similar to the radiating element layer 20, the radiating element layer 20C is provided on the side of the first main surface 10(1) of the dielectric layer 10 with respect to the dielectric layer 10. Specifically, the radiating element layer 20C is formed on at least a portion of the first main surface 10(1) of the dielectric layer 10, such that its surface is parallel to the XY plane.
[0114] In this embodiment 3, the radiating element layer 20 is provided on the side of the first main surface 12(1) of the dielectric layer 12, with reference to the dielectric layer 12. Specifically, the radiating element layer 20C is in contact with at least a portion of the surface of the first main surface 12(1) of the dielectric layer 12 at its end face in the negative Z-axis direction.
[0115] As shown in Figures 12 and 13, the antenna elements 20Ca and 20Cb have basically the same configuration and function as the antenna elements 20a and 20b, but the antenna elements 20Ca and 20Cb are rectangular planar conductors. Note that the shape of the antenna elements 20Ca and 20Cb is not limited to rectangles; they may be circular or any other arbitrary shape.
[0116] (Waveguide layer 80) As shown in Figure 11, the waveguide layer 80 has the function of guiding the radio waves radiated by the radiating element layer 20C in a predetermined direction. Specifically, the waveguide layer 80 has the function of guiding the radio waves radiated by the radiating element layer 20C toward the window glass body 200 toward the outside. This improves the front-to-back ratio.
[0117] The waveguide layer 80 is provided on the outdoor side with respect to the dielectric layer 12, that is, on the side of the second main surface 12(2) of the dielectric layer 12. Specifically, the waveguide layer 80 is formed on at least a portion of the second main surface 12(2) of the dielectric layer 12, such that its surface is parallel to the XY plane.
[0118] Examples of conductive materials used for the waveguide layer 80 include gold, silver, copper, platinum, aluminum, or chromium. The waveguide layer 80 may also be formed by plating the above-mentioned materials. Plating makes it possible to form a waveguide layer 80 that is resistant to corrosion and has good aesthetic appeal. Alternatively, the waveguide layer 80 may be formed by sintering a pattern created on the second main surface 12(2) using screen printing with a paste of silver or copper.
[0119] The waveguide layer 80 may be formed directly on the second main surface 12(2), or it may be formed indirectly. For example, the waveguide layer 80 may be formed on the second main surface 12(2) of the dielectric layer 12 via a resin layer. The resin layer may be an interlayer such as polyvinyl butyral or ethylene vinyl acetate, polyethylene terephthalate, or OCA, as an example.
[0120] As shown in Figures 12 and 13, the waveguide portion 80a included in the waveguide layer 80 contains conductor elements 81a, 82a, 83a, and 84a. Each of the conductor elements 81a, 82a, 83a, and 84a is a strip-shaped conductor element arranged parallel to each other and spaced apart. In this example, the conductor elements 81a, 82a, 83a, and 84a extend in the Y-axis direction. Also in this example, the conductor elements 81a, 82a, 83a, and 84a are arranged in order from the negative X-axis direction, spaced apart by a predetermined distance in the X-axis direction. In a plan view, the distance between conductor element 82a and conductor element 83a is greater than the distance between conductor element 81a and conductor element 82a and the distance between conductor element 83a and conductor element 84a. In a plan view, an antenna element 20Ca is arranged between conductor element 82a and conductor element 83a.
[0121] Each of the conductor elements 81a, 82a, 83a, and 84a may be composed of a conductor pattern formed such that gaps are created in a plan view, similar to the linear grounding conductor 41 of the grounding conductor layer 40. In other words, each of the conductor elements 81a, 82a, 83a, and 84a is composed of a continuous pattern in which linear conductors are electrically connected to each other, specifically a mesh-like conductor pattern.
[0122] Furthermore, since the waveguide section 80b has the same configuration as the waveguide section 80a, its explanation will be omitted.
[0123] (Pseudo-layer 60C) As shown in Figure 11, the pseudo-layer 60C is a camouflage layer to make the waveguide layer 80, which is the second conductor layer in Embodiment 3, less conspicuous. Similar to the waveguide layer 80, the pseudo-layer 60C is provided on the side of the second main surface 12(2) of the dielectric layer 12 with respect to the dielectric layer 12. More specifically, the pseudo-layer 60C is formed on the same plane as the waveguide layer 80. That is, the waveguide layer 80 is formed on at least a portion of the second main surface 10(2) of the dielectric layer 10, such that its surface is parallel to the XY plane.
[0124] As shown in Figures 12 and 13, in a plan view, the pseudo-layer 60C is arranged around the waveguide layer 80. For example, the pseudo-layer 60C may be arranged to completely surround each conductor element 81a to 84a, or it may be arranged to be in contact with a part of it. Furthermore, the pseudo-layer 60C does not need to be placed between adjacent conductor elements 81a and 82a, or between adjacent conductor elements 83a and 84a.
[0125] Furthermore, the X-axis edge of the pseudo-layer 60C may coincide with the X-axis edge of the dielectric layer 12, or it may be separated from the X-axis edge of the dielectric layer 12 by a predetermined distance. The same applies to the Y-axis edge.
[0126] In this way, the pseudo-layer 60C is arranged around the waveguide layer 80 in a plan view, thereby camouflaging the waveguide layer 80. This improves the aesthetic appearance. This effect is particularly noticeable when the antenna unit 100C has multiple waveguide sections 80a and 80b that are spaced apart from each other.
[0127] Here, region A2 shown in Figures 12 and 13 is the region that includes the boundary between the pseudo-layer 60C and the waveguide layer 80. Regarding region A2, in the description of region A1, the pseudo-layer 60, ground conductor layer 40, first main surface 10(1), and second main surface 10(2) are replaced with pseudo-layer 60C, waveguide layer 80, first main surface 12(1), and second main surface 12(2), respectively, and the description is omitted. In other words, in Embodiment 3, the first region is any region of the pseudo-layer 60C, and the second region is any region of the waveguide layer 80, and the specific configuration of the patterns of the waveguide layer 80 and the pseudo-layer 60C, the preferred ranges of F, x2, n2, and D, etc. are the same as in Embodiment 1.
[0128] Furthermore, the antenna unit 100C includes a ground conductor layer 40 provided via the dielectric layer 10 on the opposite side of the dielectric layer 12 with respect to the radiating element layer 20C, and a pseudo-layer 60 that camouflages the ground conductor layer 40. The configuration of the dielectric layer 10, the ground conductor layer 40, and the pseudo-layer 60 is the same as in Embodiment 1. The radiating element layer 20C is fed by a feed point (not shown) corresponding to the ground electrode (not shown) of the ground conductor layer 40.
[0129] As described above, according to Embodiment 3, by providing the pseudo-layer 60C around the waveguide layer 80 in a plan view and adjusting the difference in gradation values or color difference between the first and second regions to a suitable range, the waveguide layer 80 can be made unobtrusive. Therefore, an antenna unit and window glass with excellent design can be provided.
[0130] Furthermore, the dielectric layer 12 between the waveguide layer 80 and the radiating element layer 20C may be a space instead of a transparent member. The medium of the space may be air or other gas, but the space may also be a vacuum. Figure 14 shows an example where a space 12A is used instead of the dielectric layer 12. In this case, as shown in Figure 14, the antenna unit 100C may have a dielectric layer 12B supporting the waveguide layer 80 on the negative Z-axis side with respect to the waveguide layer 80. The presence of a space 12A between the waveguide layer 80 and the radiating element layer 20C makes the resonant frequency less susceptible to the influence of the transparent member, improving the front-to-back ratio. Also, when a space 12A is used instead of the dielectric layer 12, and a dielectric layer 12B supporting the waveguide layer 80 is provided on the negative Z-axis side with respect to the waveguide layer 80, a waveguide layer 80C may be further provided on the negative Z-axis side of the dielectric layer 12B, as shown in Figure 14. In this case, a pseudo-layer 60D that camouflages the waveguide layer 80C may be further provided.
[0131] <Embodiment 4> Next, Embodiment 4 of the present invention will be described. In Embodiment 3, the pseudo-layer 60C was on the same plane as the waveguide layer 80 of the antenna unit 100C. However, the pseudo-layer 60C may be on a different plane from the waveguide layer 80. In Embodiment 4, as in Embodiment 3, the dielectric layer, first conductor layer, pseudo-layer, and second conductor layer described in the overview are the dielectric layer 12, radiating element layer 20C, pseudo-layer 60C, and waveguide layer 80.
[0132] Figure 15 is a top view of an antenna unit 100D according to Embodiment 4. In the antenna unit 100D, the pseudo-layer 60C is formed on a plane different from the radiating element layer 20 and the waveguide layer 80. For example, the antenna unit 100D further includes a dielectric layer 11 that functions as a support substrate for the pseudo-layer 60C. The dielectric layer 11 is provided parallel to the XY plane on the negative Z-axis side with respect to the waveguide layer 80. As an example, the dielectric layer 11 is arranged in contact with the waveguide layer 80. Further description of the dielectric layer 11 is the same as that of the dielectric layer 11 in Configuration Example 3 of Embodiment 2.
[0133] The pseudo-layer 60C is provided on the negative Z-axis side with respect to the dielectric layer 11. As an example, the pseudo-layer 60C is arranged on the surface of the dielectric layer 11 such that its surface is parallel to the XY plane. The shape and position of the pseudo-layer 60C in plan view may be the same as that of the pseudo-layer 60C in Embodiment 3.
[0134] In Embodiment 4, the first region is any region of the pseudo-layer 60C, and the second region is any region of the waveguide layer 80. The preferred ranges of F, x2, n2, and D are the same as in Embodiment 1.
[0135] Even when the pseudo-layer 60C is located on a plane separate from the waveguide layer 80, by arranging it around the waveguide layer 80 in a plan view and adjusting the difference in gradation values or color difference between the first and second regions to a suitable range, the same effects as in Embodiment 3 can be achieved.
[0136] <Embodiment 5> Next, Embodiment 5 of the present invention will be described. Embodiment 5 is a modification of Embodiment 1. In the antenna unit 100 according to Embodiment 1, the radiating element layer 20 and the ground conductor layer 40 were formed facing each other via the dielectric layer 10. In the antenna unit according to Embodiment 5, the radiating element layer and the ground conductor layer are formed on the same main surface side with respect to the dielectric layer 10.
[0137] Figure 16 is a plan view of the antenna unit 100E according to Embodiment 5. Figure 17 is a cross-sectional view of the antenna unit 100E according to Embodiment 5. Specifically, Figure 17 is a cross-sectional view of the antenna unit 100E shown in Figure 16 along the line XVII-XVII. Figure 18 is a cross-sectional view of the antenna unit 100E according to Embodiment 5. Specifically, Figure 18 is a cross-sectional view of the antenna unit 100E shown in Figure 16 along the line XVIII-XVIII.
[0138] In Embodiment 5, the dielectric layer, first conductor layer, pseudo-layer, and second conductor layer described in the overview are the dielectric layer 10, the radiating element layer 20E, the ground conductor layer 40E, and the pseudo-layer 60E.
[0139] The radiating element layer 20E, the grounding conductor layer 40E, and the pseudo-layer 60E have basically the same configuration and function as the radiating element layer 20, the grounding conductor layer 40, and the pseudo-layer 60, but differ in shape and arrangement. As shown in Figures 17 and 18, the radiating element layer 20E, the grounding conductor layer 40E, and the pseudo-layer 60E are all provided on the side of the first main surface 10(1) of the dielectric layer 10, with the dielectric layer 10 as the reference. Specifically, as shown in Figure 17, the radiating element layer 20E and the pseudo-layer 60E are formed on at least a portion of the first main surface 10(1) of the dielectric layer 10, such that their surfaces are parallel to the XY plane. Also, as shown in Figure 18, the grounding conductor layer 40E is formed on at least a portion of the first main surface 10(1) of the dielectric layer 10, such that its surface is parallel to the XY plane.
[0140] The cable 92 shown in Figure 18, etc., is a component that electrically connects the radiating element layer 20E and the grounding conductor layer 40E, respectively, and comprises a conductive wire 91, an insulator 93, an outer conductor 94, and a sheath 95. In the cable 92, the conductive wire 91 is covered by the insulator 93, the outer conductor 94 covers the insulator 93, and the sheath 95 covers the outer conductor 94. As shown in Figure 18, the cable 92 is arranged to bridge the radiating element layer 20E and the grounding conductor layer 40E. The outer conductor 94 of the cable 92 is exposed at a location adjacent to the grounding conductor layer 40E and is electrically connected by contact or soldering to the grounding conductor layer 40E. In the example shown in Figure 18, the outer conductor 94 is electrically connected to the grounding conductor layer 40E by solder 96. The conductive wire 91 of the cable 92 is exposed at a location adjacent to the radiating element layer 20E and is electrically connected by contact or soldering to the radiating element layer 20E. In the example shown in Figure 18, the conductive wire 91 is electrically connected to the radiating element layer 20E by solder 97.
[0141] As shown in Figure 16, the radiating element layer 20E is a rectangular planar conductor. However, the shape of the radiating element layer 20E is not limited to this, and it may be circular or any other arbitrary shape. The radiating element layer 20E is located in the portion of the first main surface 10(1) of the dielectric layer 10 that is on the negative Y-axis side from the center. The radiating element layer 20E includes a mesh-like conductor pattern.
[0142] The grounding conductor layer 40E is a planar conductor pattern. The grounding conductor layer 40E is positioned on the positive Y-axis side of the center of the first main surface 10(1) so as not to overlap with the radiating element layer 20E in a plan view. In this example, the positive Y-axis end of the grounding conductor layer 40E coincides with the positive Y-axis end of the first main surface 10(1) of the dielectric layer 10, but it may be separated from the positive Y-axis end of the first main surface 10(1) by a predetermined distance in the negative Y-axis direction.
[0143] Furthermore, since the conductor pattern of the grounding conductor layer 40E is the same as that of the grounding conductor layer 40, the explanation is omitted.
[0144] The pseudo-layer 60E is an example of the pseudo-layer described above. The pseudo-layer 60E is a camouflage layer designed to make the first conductor layer, the radiating element layer 20E, and the second conductor layer, the grounding conductor layer 40E, less conspicuous. The pseudo-layer 60E is a planar layer. In a plan view, the pseudo-layer 60E is positioned around the grounding conductor layer 40 and around the radiating element layer 20E. This makes the radiating element layer 20E and the grounding conductor layer 40E, which would otherwise be conspicuous due to their separation, less conspicuous.
[0145] Region A3 shown in Figure 16 is the region that includes the boundary between the pseudo-layer 60E and the ground conductor layer 40E. Region A4 shown in Figure 16 is the region that includes the boundary between the pseudo-layer 60E and the radiating element layer 20E. For region A3, the explanation is omitted, and the pseudo-layer 60 and ground conductor layer 40 are read as pseudo-layer 60E and ground conductor layer 40E, respectively, in the explanation of region A1. For region A4, the explanation is omitted, and the pseudo-layer 60 and ground conductor layer 40 are read as pseudo-layer 60E and radiating element layer 20E, respectively, in the explanation of region A1. The specific configuration of the patterns of the waveguide layer 80 and the pseudo-layer 60C, the preferred ranges of F, x2, n2, and D, etc., are the same as in Embodiment 1.
[0146] Thus, according to Embodiment 5, even when the grounding conductor layer and the radiating element layer are formed on the same main surface, an antenna unit and window glass with excellent design can be provided.
[0147] Furthermore, the pseudo-layer 60E may be a camouflage layer intended to make either the first conductor layer, the radiating element layer 20E, or the second conductor layer, the ground conductor layer 40E, less conspicuous. In this case, the pseudo-layer 60E is positioned around the layer to be camouflaged in a plan view. [Examples]
[0148] [Experimental Example 1: Indicator F for contrast difference and inconspicuousness] The inventors conducted the following Experimental Example 1 to verify the effect of the intensity difference index F between the first and second regions on the inconspicuousness of the second region. Examples 1 to 10 are examples, and examples 11 to 13 are comparative examples. In Experimental Example 1 below, a grayscale gradation value with the number of gradations N being 256 was used as an example of gradation values.
[0149] (sample) A sheet with a mesh pattern (network-like pattern) measuring 500 mm (length) x 600 mm (width) x 0.14 mm (thickness) was used as the sample corresponding to the first region. In Examples 1-6, 11, and 12, the mesh was hexagonal, with a distance of 274 μm between the centers of adjacent hexagons and a mesh width of 14 μm. In Examples 7-10 and 13, the mesh was hexagonal, with a distance of 548 μm between the centers of adjacent hexagons and a mesh width of 14 μm. In addition, a sheet with a dot pattern having a diameter of 70 μm to 120 μm and a pitch of 150 μm to 280 μm was used as the sample corresponding to the second region. The dots were approximately circular. In each example, a sample corresponding to the first region was selected from multiple samples with different mesh patterns, and a sample corresponding to the second region was selected from multiple samples with different dot patterns.
[0150] (Measurement of grayscale values) First, a Canon iR-ADV C5235F optical reader was used to photograph each sample and obtain the captured image. The reading resolution was set to 400 dpi. Next, Microsoft Paint was used to measure the grayscale values of three randomly selected locations in the captured image. The average of these three randomly selected grayscale values was then used as the grayscale value n1 for the first region or n2 for the second region corresponding to that sample.
[0151] (Calculation of the intensity difference index F) The grayscale value n1 of the first region and the grayscale value n2 of the second region were substituted into equation (1) above to obtain the grayscale index F.
[0152] (Evaluation of inconspicuousness) In each example, a sample corresponding to the first region and a sample corresponding to the second region were placed side by side, and the inconspicuousness of the sample corresponding to the second region was visually evaluated. The evaluation of inconspicuousness was a sensory evaluation. The evaluation of inconspicuousness was performed by multiple subjects. Then, in each experimental example, the percentage r of all subjects who evaluated the sample corresponding to the second region as inconspicuous was calculated. The results are shown in Table 1. ≪Evaluation Criteria for Inconspicuousness≫ Excellent (◎): r is 50% or higher. Good (〇): r is greater than 0% and less than 50%. Defective (×): r is 0%.
[0153] [Table 1]
[0154] In Examples 1-6, the gradation value n1 in the first region is 201, |n1-n2| is 28 or less, and F is 1.09 × 10⁻¹⁰ -1 The results were as follows. In examples 1-6, r was 2.70% or higher in all cases, indicating good or excellent inconspicuousness. In particular, in examples 4-6, |n1-n2| was 9 or less, and F was 3.52 × 10 -2 The following results were obtained, with r being 58.11% or higher, indicating excellent inconspicuousness.
[0155] On the other hand, in Examples 11-12, the gradation value n1 in the first region was 201, but |n1-n2| were 30 and 33 respectively, and F was 1.29 × 10⁻¹⁴. -1 and 1.17 × 10 -1 In these examples 11 and 12, r was 0 in all cases, indicating poor inconspicuousness.
[0156] In Examples 7-10, the gradation value n1 in the first region is 232, |n1-n2| is 12 or less, and F is 4.69 × 10⁻¹⁰. -2 The results were as follows. In examples 7-10, r was 13.51% or higher in all cases, indicating good or excellent inconspicuousness. In particular, in examples 9-10, |n1-n2| was 4 or less, and F was 1.56 × 10 -2 The following results were obtained, with r being 72.97% or higher, indicating excellent inconspicuousness.
[0157] On the other hand, in Example 13, the gradation value n1 in the first region was 232, but |n1-n2| was 15, and F was 5.86 × 10⁻¹⁰. -2 In this example 13, r was 0, indicating poor inconspicuousness.
[0158] According to Experiment Example 1 above, if the gradation value n1 in the first region is 201, then F is 0 or greater and 1.09 × 10⁻¹⁰ -1 The following is preferable: 0 or more, 6.25 × 10 -2 The following are more preferable: 0 or more and 3.52 × 10 -2 The following are even more preferable: 0 to 1.56 × 10 -2 The following are particularly preferable. Furthermore, if the gradation value n1 in the first region is 232, then F is 0 or greater and 4.69 × 10 -2 The following is preferable: 0 or more, 1.56 × 10 -2 The following are preferable.
[0159] [Experimental Example 2: Relationship between (dot diameter / dot pitch) and grayscale value in the first region] The inventors conducted Experimental Example 2 to find the relationship between the dimensions of the dot pattern in the first region and the grayscale values.
[0160] (Sample preparation) Sixty-five samples were prepared, each with a dot pattern having a diameter of 70 μm to 120 μm and a pitch of 150 μm to 280 μm. The dots were approximately circular.
[0161] (Measurement of sample diameter / pitch) Using an electron microscope (Dino-Lite Edge AMR Polarizer from OptoScience), the sample piece was observed in a planar manner, and the diameter and pitch of three randomly selected dots were measured.
[0162] (Measurement of grayscale values) A Canon iR-ADV C5235F optical reader was used to photograph each sample and obtain the resulting image. The reading resolution was set to 400 dpi. Next, Microsoft Paint was used to measure the grayscale values of three randomly selected locations within the captured image. The average of these three randomly selected grayscale values was then used as the grayscale value for that sample.
[0163] (Evaluation results) The evaluation results for Experimental Example 2 are shown in Figure 19. Figure 19 shows the relationship between (dot diameter / dot pitch) and grayscale value. If (dot diameter / dot pitch) is x1, then as shown in Figure 19, the relationship between diameter / pitch x1 and grayscale value n1 is approximately linear. When the regression line was found, the above equation (2) was obtained as the regression line. Furthermore, the dashed line shown in Figure 19 represents the regression line of the grayscale value against (dot diameter / dot pitch).
[0164] Thus, the inventors discovered that the gradation value n1 of the second region included in the pseudo-layer can be expressed as the ratio of the dot diameter to the pitch.
[0165] [Experimental Example 3: Relationship between (mesh line width / mesh pitch) and grayscale value in the second region] The inventors conducted Experiment Example 3 to find the relationship between the dimensions of the mesh pattern in the second region and the grayscale values.
[0166] (Sample preparation) Ten samples were prepared, each with a mesh pattern having a line width of 10 μm to 28 μm and a pitch of 274 μm to 548 μm. The mesh pattern had a hexagonal shape.
[0167] (Measurement of line width / pitch of the sample) Using an electron microscope (Dino-Lite Edge AMR Polarizer from OptoScience), the sample pieces were observed in a planar manner, and the line width and pitch of the mesh at three randomly selected locations were measured.
[0168] (Measurement of grayscale values) Similar to Experimental Example 2, the grayscale values of each sample were measured.
[0169] (Evaluation results) The evaluation results for Experimental Example 3 are shown in Figure 20. Figure 20 is a diagram showing the relationship between (mesh line width / mesh pitch) and grayscale value. If (mesh line width / mesh pitch) is x2, then as shown in Figure 20, the relationship between (mesh line width / mesh pitch)x2 and grayscale value n2 is approximately linear. When the regression line was found, the above equation (3) was obtained as the regression line. Furthermore, the dashed line shown in Figure 20 represents the regression line of the grayscale value with respect to (mesh width / mesh pitch).
[0170] Thus, the inventors discovered that the gradation value n2 of the second region contained in the second conductor layer can be expressed as the ratio of the mesh line width to the mesh pitch.
[0171] [Experimental Example 4: Regarding Grayscale Values and Antenna Performance] The inventors evaluated the antenna performance with respect to the second region's gradation value n2 in order to find a preferred range of n2 from the viewpoint of antenna performance. In Experimental Example 4, the FB ratio (Front Back ratio) was used as the antenna performance.
[0172] (sample) A mesh-patterned sheet measuring 500 mm (length) x 600 mm (width) x 0.14 mm (thickness) was used as the sample. In each example, a mesh-patterned sheet with a different gradation value n2 was used as the sample. Note that the sample used in Example 14 of Experimental Example 4 was the same as the sample used in Example 1 of Experimental Example 1.
[0173] (Measurement of gradation value n2) Similar to Experimental Example 2, the grayscale values of each sample were measured.
[0174] (Calculation of (mesh line width / mesh pitch) x 2) Using equation (3), x2 was calculated from the measured n2.
[0175] (Measurement of antenna performance) The front-to-back ratio was calculated from the directivity measurement results using an anechoic chamber. The frequency condition was 4550 MHz. The measured values were classified according to the evaluation criteria below, and the antenna performance was evaluated. The results are shown in Table 2. ≪Evaluation Criteria for Antenna Performance≫ Good (〇): The measured value of the front-to-back ratio is 10 dB or higher. Acceptable (△): The measured value of the face-to-back ratio is between 8 dB and 10 dB. Poor (×): The measured value of the front-to-back ratio is less than 8 dB.
[0176] [Table 2]
[0177] In examples 14-15, (mesh line width / mesh pitch) x 2 is 3.91 x 10 -2 The above results show that the gradation value n2 was 211 or higher, and the FB ratio was 10 dB or higher. Also, in examples 16-17, x2 was 1.24 × 10 -2 The above results show that the gradation value n2 was 232 or higher, and the FB ratio was 8 dB or higher.
[0178] On the other hand, in Example 18, x2 is 3.15 × 10 -3 The result was that n2 was 248, and the FB ratio was poor.
[0179] According to Experiment Example 4 above, x² is 5.47 × 10 -3 The above is preferable, 1.24 × 10 -2 The above is more preferable, 2.17 × 10 -2 The above is even more preferable, 3.91 × 10 -2 The above is particularly preferred, 4.61 × 10 -2 The above is the most preferable. Furthermore, n2 is preferably 246 or less, more preferably 240 or less, even more preferably 232 or less, particularly preferably 217 or less, and most preferably 211 or less. If n2 is 246 or less, and especially 217 or less, the FB ratio will be 8 dB or more, and antenna performance can be ensured.
[0180] The present invention is not limited to the embodiments described above, and can be modified as appropriate without departing from the spirit of the invention. For example, although the pseudo-layer was arranged so as not to overlap with the second conductor layer in a plan view, it may overlap with the second conductor layer in part.
[0181] This application claims priority based on Japanese Patent Application No. 2022-035030, filed on 8 March 2022, and incorporates all of its disclosures herein. [Explanation of Symbols]
[0182] 1 Windowpane 10,11,12,12B dielectric layers 10(1) First main surface 10(2) Second main surface 11(1) First main surface 11(2) Second main surface 12(1) First main surface 12(2) Second main surface 12A space 20, 20C, 20E radiating element layer 21 Radiating conductors 22, 23, 24, 25 Patch conductors 30 Power supply line 32,33 End 36 branching points 40,40E Grounding conductor layer 41 Linear grounding conductor 50 Planar grounding conductor 60, 60A, 60B, 60C, 60D, 60E pseudo-layers 61 array elements 70,72 Homogenization Patterns 80,80C waveguide layer 81, 82, 83, 84 Conductor elements 91 Conductive wire 92 Cables 93 Insulator 94 Outer conductor 95 Sheath 96,97 Handa 100, 100A, 100B, 100C, 100D, 100E Antenna Units 200 Window glass body 300 Support part A1,A2,A3,A4 Boundary area
Claims
1. A dielectric layer that transmits visible light, The first conductor layer, Pseudolayers and A second conductor layer is provided at a distance from the first conductor layer. Equipped with, The first conductor layer is provided on the side of the first main surface of the dielectric layer with respect to the dielectric layer, The second conductor layer is provided on the side of the first main surface of the dielectric layer or on the side of the second main surface opposite to the first main surface of the dielectric layer, with reference to the dielectric layer. In a plan view, at least a portion of the pseudo-layer is arranged around the second conductor layer. In the plan view, the first region of the pseudo-layer that does not overlap with the second conductor layer, and the second region of the second conductor layer that does not overlap with the pseudo-layer, are read at a resolution of 400 dpi, and the resulting N (N is a natural number) gradation values are given by n 1 ,n 2 (n 1 and n 2 If (a non-negative integer), |n 1 -n 2 | / N ≤ 1.09 × 10 -1 That is Antenna unit.
2. |n 1 -n 2 | / N ≤ 6.25×10 -2 is The antenna unit according to claim 1.
3. N = 256, and n 2 ≤ 246 The antenna unit according to claim 1 or 2.
4. The first conductor layer includes a radiating conductor, The above second conductor layer includes a ground conductor, The second conductor layer is provided on the side of the second main surface of the dielectric layer with respect to the dielectric layer. The antenna unit according to claim 1 or 2.
5. The first conductor layer includes a radiating conductor, The above second conductor layer includes a ground conductor, The second conductor layer is provided on the side of the first main surface of the dielectric layer with respect to the dielectric layer. The antenna unit according to claim 1 or 2.
6. The first conductor layer includes a ground conductor, The second conductor layer includes a radiating conductor, The second conductor layer is provided on the side of the second main surface of the dielectric layer with respect to the dielectric layer. The antenna unit according to claim 1 or 2.
7. The first conductor layer includes a radiating conductor, The second conductor layer includes a waveguide element that guides the radio waves emitted by the radiating conductor in a predetermined direction. The second conductor layer is provided on the side of the second main surface of the dielectric layer with respect to the dielectric layer, The antenna unit further comprises a ground conductor layer provided on the opposite side of the dielectric layer from the first conductor layer. The antenna unit according to claim 1 or 2.
8. The aforementioned pseudo-layer includes a pattern in which the array elements are arranged spaced apart from each other. The antenna unit according to claim 1 or 2.
9. The conductivity of the aforementioned array element is 1 × 10 6 (S / m) or higher The antenna unit according to claim 8.
10. The shape of the aforementioned array element is circular. The average diameter of the array elements is such that the free-space wavelength of the radio waves transmitted and received by the antenna unit is λ 0 Therefore, λ 0 / is less than or equal to 2 The antenna unit according to claim 9.
11. The shape of the aforementioned array element is rectangular. The length of the longer side of the array element is such that the free-space wavelength of the radio waves transmitted and received by the antenna unit is λ 0 Therefore, λ 0 / is less than or equal to 2 The antenna unit according to claim 9.
12. The aforementioned pseudo-layer is composed of an insulator. The conductivity of the insulator is 1 × 10 6 (S / m) is less than The antenna unit according to claim 1 or 2.
13. The second conductor layer includes a mesh-like conductor pattern. The antenna unit according to claim 1 or 2.
14. A window glass comprising the antenna unit according to claim 1 or 2.
Citation Information
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