Electromagnetic wave transparent laminate
The laminate structure with a synthetic resin substrate and color-developing layer addresses electromagnetic wave transparency issues in automotive components by enhancing transmittance and color flexibility.
Patent Information
- Application Number
- JP2024042429
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-03-18
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2044-03-18
AI Technical Summary
Existing automotive paints with metallic fillers have a relative dielectric constant greater than 3.0, making it difficult to ensure electromagnetic wave transparency in components like front grilles.
A laminate structure comprising a synthetic resin substrate, a primer layer, a color-developing layer with a relative dielectric constant of 3.1 to 66.7, and a protective layer, where the effective dielectric constant of the laminate is greater than the substrate's and 3.0 or less, ensuring electromagnetic transparency and flexibility in color selection.
Enhances electromagnetic wave transmittance and freedom in appearance color while maintaining adhesion between layers.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an electromagnetic wave transparent laminate. [Background technology]
[0002] Patent Document 1 discloses an automobile front grille (hereinafter referred to as "front grille") that is provided in the beam path of a radar device. The front grille disclosed in Patent Document 1 has a synthetic resin base, a titanium nitride layer covering the outer surface of the base, and an aluminum nitride layer covering the titanium nitride layer, and is millimeter wave transparent. The relative dielectric constants of the titanium nitride layer and the aluminum nitride layer are set to be approximately the same as the relative dielectric constant of the base. The relative dielectric constant of the synthetic resin base is 3.0 or less. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent No. 4158646 Summary of the Invention [Problem to be solved by the invention]
[0004] Incidentally, paints for coloring used on automobiles and the like contain metallic fillers. The relative dielectric constant of paint films containing metallic fillers is greater than 3.0. For this reason, it is considered difficult to ensure electromagnetic wave transparency in front grilles with paint films containing metallic fillers. [Means for solving the problem]
[0005] Various aspects of the electromagnetic wave transparent laminate for solving the above problems will be described below. [Aspect 1] A laminate having electromagnetic wave transparency, A base material made of synthetic resin; a color-developing layer laminated on the substrate, the color-developing layer has a relative dielectric constant of 3.1 or more and 66.7 or less; the effective dielectric constant of the laminate is greater than the relative dielectric constant of the substrate and is 3.0 or less; Electromagnetically transparent laminate.
[0006] The inventors of the present application discovered that, as long as the effective dielectric constant of the laminate is greater than the relative dielectric constant of the substrate and is 3.0 or less, the return loss of electromagnetic waves in the laminate is -18 dB or less, even if the relative dielectric constant of the color-producing layer is 3.1 or more and 66.7 or less. The effective dielectric constant is the relative dielectric constant taking into account the thickness of the entire laminate. Therefore, the above configuration allows for increased electromagnetic wave transmittance of the laminate while also increasing the flexibility of the exterior color.
[0007] [Aspect 2] a primer layer is laminated on the substrate, The color-forming layer is laminated on the primer layer. 2. The electromagnetic wave transparent laminate according to claim 1.
[0008] According to this configuration, the color-forming layer is laminated on the primer layer that is laminated on the substrate, so that the adhesion between the substrate and the color-forming layer can be improved. [Effects of the Invention]
[0009] According to the present invention, it is possible to increase the electromagnetic wave transmittance of the laminate and also increase the degree of freedom in the appearance color. [Brief explanation of the drawings]
[0010] [Figure 1] FIG. 1 is a cross-sectional view showing the positional relationship between a laminated body according to an embodiment and a millimeter wave radar device. [Figure 2] FIG. 2 is a cross-sectional view showing the layer structure of the laminate of FIG. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, with reference to Figs. 1 and 2, an embodiment in which a laminate is embodied as an exterior part of a vehicle will be described. In the following description, the front and rear sides of the vehicle in the longitudinal direction will be simply referred to as the front and rear sides, respectively.
[0012] 1, the vehicle is equipped with a well-known millimeter wave radar device 20. The millimeter wave radar device 20 is provided at the front of the vehicle and emits millimeter waves forward.
[0013] A laminated body 10 is provided in front of the millimeter wave radar device 20 as an exterior component that covers the millimeter wave radar device 20. The laminated body 10 is, for example, a grill cover that forms the outer shell of the front part of the vehicle.
[0014] The laminate 10 is millimeter wave transparent. Next, the layer structure of the laminate 10 will be described. As shown in FIG. 2, the laminate 10 includes, in order from the rear side, a substrate 11, a primer layer 12, a color-developing layer 13, and a protective layer 14.
[0015] The substrate 11 is made of a synthetic resin and has millimeter wave transparency. Examples of resin materials that can be used to form the substrate 11 include thermoplastic resins such as polypropylene (PP), polyvinyl chloride (PVC), polymethyl methacrylate resin (PMMA), acrylonitrile-butadiene-styrene copolymer (ABS) resin, acrylonitrile-ethylene-propylene-diene-styrene (AES) resin, acrylonitrile-styrene-acrylate copolymer (ASA) resin, and polycarbonate (PC). The substrate 11 of this embodiment is polycarbonate.
[0016] The primer layer 12 is laminated on the substrate 11 and serves to improve the adhesion of the color-forming layer 13 to the substrate 11. The primer layer 12 is made of a synthetic resin and has millimeter wave transparency. The primer layer 12 is formed from a well-known resin paint for primers.
[0017] The relative dielectric constant of the primer layer 12 is preferably 3.1 or more and 66 or less. The coloring layer 13 is used to give the laminate 10 an external color, and is laminated on the primer layer 12. The coloring layer 13 is made of a synthetic resin and is millimeter wave transparent. The coloring layer 13 is formed by applying a paint containing a base resin and a filler to the front surface of the primer layer 12. Known application methods such as spray coating, dipping, shower coating, flow coating, and roll coating can be used as the application method.
[0018] As the base resin material, resin materials contained in well-known resin paints such as acrylic resins, urethane resins, polyester resins, epoxy resins, melamine resins, alkyd resins, and phenolic resins can be used.
[0019] The filler material may have a higher dielectric constant than the base resin, and examples of the filler include lustrous materials such as mica, pearl mica, and glass flakes, metallic conductive fillers such as aluminum flakes, metal oxide conductive fillers such as zinc oxide, and metal-coated conductive fillers in which the surface of mica or glass flakes is coated with a metal such as aluminum or nickel.
[0020] The relative dielectric constant of the color forming layer 13 is 3.1 or more and 66.7 or less. The relative dielectric constant of the color forming layer 13 is preferably 3.5 or more. The relative dielectric constant of the color forming layer 13 is more preferably 4.0 or more.
[0021] The protective layer 14 imparts durability to the laminate 10 and is laminated on the color-forming layer 13 . protective layer 14 The protective layer 14 is made of a synthetic resin and has millimeter wave transparency. The protective layer 14 is a so-called clear coat, and is formed from a well-known resin paint for clear coats.
[0022] The effective dielectric constant of the laminate 10 is greater than the relative dielectric constant of the substrate 11 and is equal to or less than 3.0. The relative dielectric constant of the substrate 11 in this embodiment is 2.67. From the viewpoint of increasing the millimeter wave transmittance of the laminate 10, it is preferable to reduce the return loss of the laminate 10.
[0023] The main factor that increases the return loss of the laminate 10 is thought to be the coloring layer 13, which has a high relative dielectric constant. For this reason, the coloring layer 13 has conventionally been made of a material having a relative dielectric constant similar to that of the substrate 11, specifically 3.0 or less. However, in this case, the degree of freedom in selecting the material for forming the coloring layer 13 is limited, which reduces the degree of freedom in selecting the external color of the laminate 10.
[0024] As shown in Table 1, the inventors of the present application derived the effective dielectric constant of the laminate 10 when only the relative dielectric constant of the coloring layer 13 among the parameters of the layers constituting the laminate 10 was changed, and calculated the return loss of the laminate 10 based on the derived effective dielectric constant. They then found the range of the relative dielectric constant of the coloring layer 13 within which the return loss of the laminate 10 was −18 dB or less, which is considered to be an index of high millimeter-wave transmittance.
[0025] The effective dielectric constant is a relative dielectric constant taking into account the thickness of the entire laminate 10, and is calculated by a function using the refractive index, relative dielectric constant, and thickness of each layer and the wavelength of the millimeter wave.
[0026] [Table 1]
[0027] In this embodiment, when deriving the effective dielectric constant and return loss of the laminate 10, other parameters of each layer are set as follows. Thickness of base material 11: 2.2 mm Relative dielectric constant of substrate 11: 2.67 Thickness of primer layer 12: 30 μm Dielectric constant of primer layer 12: 7.0 Thickness of coloring layer 13: 30 μm Thickness of protective layer 14: 30 μm The relative dielectric constant of the protective layer 14 is 3.0. As shown in Table 1, when the relative dielectric constant of the color-producing layer 13 was in the range of 3.1 to 66.7, the effective dielectric constant of the laminate 10 was 2.72 to 3.00. The return loss of the laminate 10 was −27.18 dB to −18.52 dB.
[0028] Next, the operation of this embodiment will be described. The inventors of the present application have found that if the effective dielectric constant of the laminate 10 is greater than the relative dielectric constant of the substrate 11 and is 3.0 or less, the return loss of electromagnetic waves in the laminate 10 will be -18 dB or less even if the relative dielectric constant of the color-producing layer 13 is 3.1 or more and 66.7 or less.
[0029] Next, the effects of this embodiment will be described. (1) The laminate 10 is electromagnetically transparent and includes a synthetic resin substrate 11 and a coloring layer 13 laminated on the substrate 11. The coloring layer 13 has a relative dielectric constant of 3.1 or more and 66.7 or less. The laminate 10 has an effective dielectric constant that is greater than the relative dielectric constant of the substrate 11 and is 3.0 or less.
[0030] According to this configuration, the effects of the above-described embodiment are achieved, and the electromagnetic wave transmittance of the laminate 10 can be improved, while the degree of freedom in the external color can be increased. (2) A primer layer 12 is laminated on the substrate 11. A color-developing layer 13 is laminated on the primer layer 12.
[0031] According to this configuration, the color-forming layer 13 is laminated on the primer layer 12 which is laminated on the substrate 11, so that the adhesion between the substrate 11 and the color-forming layer 13 can be improved. <Modification> This embodiment can be modified as follows: This embodiment and the following modifications can be combined and implemented within the scope of technical compatibility.
[0032] The color-forming layer 13 may not contain a filler. If the adhesion between the substrate and the color-developing layer can be improved, the primer layer 12 can be omitted. [Explanation of symbols]
[0033] 10...Laminate 11...Base material 12...Primer layer 13...Coloring layer 14...Protective layer 20...Millimeter wave radar device
Claims
1. A laminate having millimeter wave transparency and constituting an exterior component of a vehicle, A base material made of synthetic resin; a synthetic resin primer layer laminated on the substrate; a color-developing layer laminated on the primer layer; a protective layer made of synthetic resin laminated on the color-developing layer, the color-developing layer has a relative dielectric constant of 3.1 or more and 20 or less; the effective dielectric constant of the laminate is greater than the relative dielectric constant of the substrate and is 2.84 or less; Electromagnetically transparent laminate.
2. The color-developing layer is made of a paint containing a base resin and a filler, the filler is at least one of a glittering material, a metallic conductive filler, a metal oxide-based conductive filler, and a metal-coated conductive filler; The glittering material includes at least one of mica, pearl mica, and glass flakes. The electromagnetic wave transparent laminate according to claim 1 .
Citation Information
Patent Citations
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