Stacked coating film and coated object
The laminated coating film, featuring a brightening layer with aluminum flakes and a colored layer with a red pigment, addresses the challenge of achieving high FF property in metallic coatings by controlling light reflection and absorption, resulting in enhanced metallic texture and design quality.
Patent Information
- Application Number
- JP2020189705
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-11-13
- Publication Date
- 2025-06-18
- Estimated Expiration
- 2040-11-13
AI Technical Summary
Conventional metallic coatings for vehicles fail to achieve a high Flip-Flop (FF) property, which is essential for a spectacular metallic texture, due to limitations in the brightness contrast between highlights and shades.
A laminated coating film is developed, comprising a brightening layer with aluminum flakes and a colored layer containing a red pigment, where the brightening layer includes a black-based colorant to control light reflection and absorption, thereby enhancing the FF property.
The solution effectively increases the FF property by ensuring sufficient darkness in the shade and high brightness in the highlight, resulting in a metallic color with high design quality and vivid red color development.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to a laminated coating film including a colored layer (color clear layer) containing a pigment and having translucency on a luminous layer (metallic base layer) containing a luminous material, and a coated article including the laminated coating film.
Background Art
[0002] In recent years, for coated articles such as automobiles that require high design quality, it has been desired to obtain a painted color with high highlight chroma and strong depth.
[0003] Patent Document 1 describes a laminated sheet for molding useful for automotive-related members and the like, which obtains a design with a sense of depth. In a laminated sheet in which a colored layer is stacked on a metallic gloss layer, the lightness L of the transmitted light of the colored layer is set to 20 to 80, the gloss value of the metallic gloss layer is set to 200 or more, and the chroma C of the specularly reflected light at 45 degrees is set to 150 or more. The same document also describes adding aluminum flakes to the metallic gloss layer and adopting perylene red as the pigment of the colored layer. * is set to 20 to 80, the gloss value of the metallic gloss layer is set to 200 or more, and the chroma C of the specularly reflected light at 45 degrees * is set to 150 or more. The same document also describes adding aluminum flakes to the metallic gloss layer and adopting perylene red as the pigment of the colored layer.
[0004] Patent Document 2 describes realizing a highly designed metallic color in a laminated coating film in which a luminous layer containing a luminous material formed directly or indirectly on the surface of a coated article and a colored layer containing a warm-color pigment and having translucency are stacked on the luminous layer. In the laminated coating film, a high-reflection flake and a low-reflection flake are used in combination as the luminous material of the luminous layer, and the ratio of the total projected area of both flakes on the bottom surface of the luminous layer when both flakes are projected on the bottom surface of the luminous layer is 100%.
[0005] Patent Document 3 describes a multi-layer coating formation method that can be applied to various industrial products, particularly the outer panels of automobiles. In the highlight (near specular reflection light), it has high brightness and high chroma, in the shade (oblique direction), it has high chroma, there is a large difference in lightness between the highlight and the shade, and a coating film with a uniform finished design can be obtained. In this method, a first color clear coating film is formed on a metallic base coating film obtained by applying a metallic base paint containing a colored pigment and a flaky glitter pigment, and then a second color clear coating film is formed thereon. The colored pigments contained in the first and second color clear coating films are the same. Also, the concentration of the colored pigment per unit film thickness in the first and second color clear coating films is in the range of 30 / 70 to 60 / 35 as the ratio of the former to the latter.
Prior Art Documents
Patent Documents
[0006]
Patent Document 1
Patent Document 2
Patent Document 3
Summary of the Invention
Problems to be Solved by the Invention
[0007] When a metallic coating is applied to a vehicle body or the like, a metallic texture is obtained because of the high flip-flop property (hereinafter referred to as "FF property") in which the lightness changes depending on the viewing angle of the coated object. That is, the stronger the contrast between light (highlight) and dark (shade), the higher the FF property and the better the metallic texture. This FF property is often represented by the FI (flop index) value, which is a metallic feeling index of X-Rite. However, conventionally, the FI value actually obtained with metallic coatings is generally around 18, and a spectacularly high metallic texture has not been achieved.
[0008] To put it simply, the above FI value represents the intensity of brightness in the highlight (near the specular reflection direction) with respect to the brightness in the shade. Therefore, when the brightness of the highlight is low, the FI value also becomes small. On the other hand, if the amount of the brightening agent is increased to enhance the brightness in the highlight, the diffuse reflection by the brightening agent also increases. As a result, the brightness in the shade also increases simultaneously, and a remarkable FF property cannot be obtained.
[0009] An object of the present disclosure is to improve the FF property and realize a metallic color with high design quality in a laminated coating film that produces a red color by a brightening layer and a colored layer having translucency.
Means for Solving the Problem
[0010] In order to solve the above problems, the present disclosure focuses on obtaining sufficient darkness in the shade.
[0011] The laminated coating film disclosed herein includes a brightening layer containing a brightening agent formed directly or indirectly on the surface of an object to be coated, and a colorant and a colored layer containing a red coloring material and having translucency, which is laminated on the brightening layer. The above-mentioned brightening layer contains, as the above-mentioned brightening material, aluminum flakes having an average particle diameter of 5 μm or more and 30 μm or less and an average thickness of 10 nm or more and 500 nm or less. The concentration of the aluminum flakes in the above-mentioned brightening layer is 1% by mass or more and 17% by mass or less. The colorant contained in the above-mentioned brightening layer consists of a black-based colorant. The black-based colorant contained in the above-mentioned brightening layer is carbon black. The concentration of the carbon black in the above-mentioned brightening layer is 1% by mass or more and 20% by mass or less. In the above brightening layer, with the incident angle of light (the angle from the perpendicular to the surface of the brightening layer) being 45°, when the brightness index L of the reflected light measured at the reception angle θ (the inclination angle from the specular reflection direction toward the light source side) is L * value, when it is L * (θ), L * (θ) is 10 or less at 45° ≤ θ ≤ 80° and 100° ≤ θ ≤ 110°, and when the above brightening agent is projected onto the bottom surface of the above brightening layer, the ratio of the projected area of the above brightening agent occupying the bottom surface is 3% or more and 70% or less per unit area.
[0012] In a laminated coating film that produces a red color with a light-emitting layer and a colored layer having translucency, the reflected light from the light-emitting material contained in the light-emitting layer passes through the colored layer, thereby vividly developing the coloring material (pigment and / or dye) contained in the colored layer. The higher the brightness in the highlight and the lower the brightness in the shade, the more vivid the red color development in the highlight can be obtained, and sufficient shade darkness can be obtained. Therefore, the FF property is increased, and a metallic color with high design quality can be realized.
[0013] In this configuration, by setting the brightness in the shade direction (45° ≤ θ ≤ 80° and 100° ≤ θ ≤ 110°) to 10 or less, sufficient shade darkness is ensured. Also, if the ratio of the projected area of the light-emitting material is less than the lower limit value, the amount of reflected light from the light-emitting material is insufficient, and sufficient brightness of the highlight cannot be obtained. On the other hand, when the ratio of the projected area of the light-emitting material exceeds the upper limit value, since the amount of the light-emitting material contained in the light-emitting layer is large, the influence of diffuse reflection due to the fine unevenness and edges on the surface of the light-emitting material becomes large, and the brightness of the shade becomes too high. By setting the ratio of the projected area of the light-emitting material within the above range, high FI can be achieved while ensuring sufficient shade darkness.
[0014] Note that the above L * (θ) is preferably 5 or less. Also, the ratio of the area of the light-emitting material is preferably 20% or more and 50% or less per unit area.
[0015] In this configuration That is, the above light-emitting layer contains aluminum flakes having an average particle size of 5 μm or more and 30 μm or less and an average thickness of 10 nm or more and 500 nm or less as the above light-emitting material, and the concentration of the aluminum flakes in the above light-emitting layer is 1 mass% or more and 17 mass% or less.
[0016] Since such aluminum flakes have a visible light reflectance of about 90% or more, sufficient light quantity in the highlight direction can be ensured, and sufficient brightness of the highlight can be obtained. In particular, the diffuse reflection at the edges of the aluminum flakes becomes stronger as the thickness of the flakes increases. By thinning the thickness of the aluminum flakes as described above, the intensity of the diffuse reflection can be weakened. Thus, the brightness of the shade can be reduced.
[0017] Also, when the concentration of the aluminum flakes is less than 1% by mass, the amount of reflected light by the aluminum flakes is insufficient, and sufficient brightness of the highlight cannot be obtained. When the concentration of the aluminum flakes exceeds 17% by mass, the influence of diffuse reflection due to the fine irregularities and edges on the surface of the aluminum flakes becomes large, and the brightness of the shade becomes too high. By setting the concentration of the aluminum flakes within the above range, high FI can be achieved while ensuring sufficient darkness of the shade. The concentration of the above aluminum flakes is preferably 5% by mass or more and 12% by mass or less.
[0018] Preferably, the surface roughness Ra of the above aluminum flakes is 50 nm or less.
[0019] Diffuse reflection due to the fine irregularities on the surface of the aluminum flakes causes an increase in the brightness of the shade. By setting the surface roughness Ra of the aluminum flakes within the above range, diffuse reflection can be reduced, so the brightness of the shade can be reduced.
[0020] In this configuration The above-mentioned bright layer contains a colorant, and the colorant Black coloring material consists of .
[0021] When the light diffusely reflected on the minute irregularities, edges, and base (for example, electrodeposited coating film) on the surface of the bright material passes through the colored layer, the light quantity in the shade direction increases and the brightness of the shade becomes higher. When the brightness of the shade increases, the whiteness of the shade increases, which causes the red color development in the highlight to be blurred.
[0022] In this configuration, since the luminous layer contains a black coloring material, in the luminous layer, most of the incident light passing through the gaps between the luminous materials is absorbed and / or shielded by the black coloring material, so that almost no light is reflected by the substrate. Further, since the light diffusely reflected by the minute irregularities and edges on the surface of the luminous material is absorbed and / or shielded by the black coloring material, the lightness of the shade is reduced.
[0023] Examples of the black coloring material contained in the luminous layer include black pigments with excellent weather resistance and / or black dyes with excellent transparency. From the viewpoint of ensuring sufficient weather resistance of the laminated coating film, a black pigment can be adopted. As the black pigment, for example, carbon black, chromium oxide, iron oxide, manganese oxide, black indigo pigment, etc. can be used.
[0024] In this configuration When the black coloring material contained in the luminous layer is carbon black and the concentration of the carbon black in the luminous layer is 1% by mass or more and 20% by mass or less. is.
[0025] If the concentration of carbon black is too low, there is a risk that its light absorption function and hiding power cannot be sufficiently obtained. On the other hand, if the concentration of carbon black is too high, the structures formed by the aggregation of primary particles are likely to be mechanically entangled, increasing light scattering, so that the transparency decreases and the lightness of the shade may increase. Therefore, setting the concentration of carbon black in the luminous layer within the above range is advantageous for reducing the lightness of the shade.
[0026] The average particle size of the carbon black is preferably 200 nm or less.
[0027] According to this configuration, since the average particle size of carbon black is 1 / 2 wavelength or less of the lower limit of visible light (wavelength 400 nm), light scattering by the carbon black particles can be suppressed.
[0028] The above-mentioned light-emitting layer may contain a coloring material other than the above-mentioned black-based coloring material, such as a red-based coloring material, as the coloring material. Thereby, light scattering is suppressed. Note that In this configuration From the viewpoint of increasing the FI the above-mentioned brightening layer containing only a black-based coloring material as the coloring material is.
[0029] Note that the above-mentioned L * (θ) is preferably 10 or less when the light-emitting layer contains a black-based coloring material and a red-based coloring material, and preferably 5 or less when the light-emitting layer contains only a black-based coloring material.
[0030] Preferably, the above-mentioned light-emitting layer has a spectral reflectance with respect to a standard white plate in the wavelength range of 450 nm to 700 nm measured at a light incident angle of 45° and light receiving angles of 45° and 110° of 0.02 or less in absolute value display.
[0031] Thereby, sufficient darkness of the shade can be obtained. In particular, the above-mentioned spectral reflectance is preferably 0.02 or less when the light-emitting layer contains a black-based coloring material and a red-based coloring material, and preferably 0.01 or less when the light-emitting layer contains only a black-based coloring material.
[0032] Examples of the red-based coloring material in the above-mentioned coloring layer include red-based pigments having excellent weather resistance and / or red-based dyes having excellent transparency. From the viewpoint of ensuring sufficient weather resistance of the laminated coating film, a red-based pigment can preferably be employed.
[0033] As the above-mentioned red-based pigment, organic pigments such as perylene red, dibromoanthraslone red, azo red, anthraquinone red, quinacridone red, and diketopyrrolopyrrole can preferably be used.
[0034] The concentration of the above-mentioned red-based coloring material in the above-mentioned coloring layer is preferably 1% by mass or more and 17% by mass or less.
[0035] The transmission characteristics of the colored layer vary depending on the concentration of the colorant in the colored layer. When the concentration of the red-based colorant in the colored layer is low, the color development of the red-based hue becomes insufficient. Also, when the concentration of the colorant is low, the reflected light from the light-emitting layer, especially the light due to diffuse reflection, is not attenuated much when passing through the colored layer, and the lightness of the shade increases, resulting in a decrease in the FI value. On the other hand, when the colorant concentration reaches 1% by mass or more, sufficient color development of the red-based hue can be ensured, and the light due to diffuse reflection is sufficiently absorbed by the colorant when passing through the colored layer, so the lightness of the shade decreases and the FI value increases. However, when the colorant concentration becomes excessively high, the effect of the colorant absorbing and / or shielding the reflected light from the light-emitting layer becomes large, and the lightness of the highlight decreases, resulting in a decrease in the FI value. Also, when the colorant is a pigment, light scattering by the pigment particles also causes an increase in the lightness of the shade and, consequently, a decrease in the FI value. Therefore, the upper limit of the colorant concentration is preferably 17% by mass.
[0036] Incidentally, the concentration of the red-based colorant is preferably 4% by mass or more and 10% by mass or less, more preferably 5% by mass or more and 9% by mass or less, and particularly preferably 5% by mass or more and 7% by mass or less. All the colorants contained in the above-mentioned coloring layer may be the above-mentioned red-based colorants.
[0037] Preferably, the above-mentioned colored layer further contains a black-based colorant.
[0038] According to this configuration, when the reflected light from the light-emitting material of the light-emitting layer passes through the colored layer, the reflected light is absorbed by the black-based colorant over the entire wavelength range. Since the amount of light in the shade direction is small, when absorbed by the black-based colorant, the amount of reflected light passing through the colored layer is greatly reduced. On the other hand, since the amount of reflected light in the highlight is large, even if a part of it is absorbed by the black-based colorant, the amount of reflected light passing through the colored layer is sufficiently ensured. Thus, the coated article provided with the laminated coating film appears jet black in the shade, while the red color appears vivid in the highlight, and a more highly designed metallic color is achieved.
[0039] Preferably, the concentration of the black-based colorant in the above-mentioned colored layer is 6% by mass or less.
[0040] If the concentration of the black-based colorant becomes too high, the amount of absorbed reflected light increases, so the blackness of the highlight excessively increases and the red color development in the highlight becomes cloudy. According to this configuration, by setting the concentration of the black-based colorant within the above range, an excessive increase in blackness in the highlight can be suppressed and cloudiness in red color development can be suppressed. Thus, a vivid red color development in the highlight can be obtained.
[0041] Preferably, the ratio of the black-based colorant to the total of the red-based colorant and the black-based colorant in the above coloring layer is 26% by mass or less.
[0042] Even when the ratio of the black-based colorant in the colorant increases too much, the blackness of the highlight excessively increases, which causes cloudiness in the red color development in the highlight. According to this configuration, since an excessive increase in blackness in the highlight can be suppressed and cloudiness in red color development can be suppressed, it is advantageous for obtaining a vivid red color development in the highlight. All the colorants contained in the above-mentioned coloring layer may be the above-mentioned red-based colorants and the above-mentioned black-based colorants.
[0043] Examples of the coated object provided with the above laminated coating film on the object to be coated include an automobile body, and may also be a body of a motorcycle or other vehicle, or other metal products or plastic products.
[0044] Also, the laminated coating film and the coated object of the present disclosure may have the following configurations.
[0045] Regarding the Y value calibrated with a standard white plate in the XYZ color system for the above brightening layer, when the incident angle of light (angle from the perpendicular to the surface of the brightening layer) is 45°, the Y value of the reflected light measured at a light receiving angle (tilt angle from the specular reflection direction to the light source side) of 5° is defined as Y(5°), and the Y value of the reflected light measured at a light receiving angle of 15° is defined as Y(15°), it is preferable that Y(5°) is 30 or more and 700 or less, Y(15°) = k × Y(5°) (where k is a coefficient), and k is 0.01 or more and 0.3 or less.
[0046] Here, the Y value in the XYZ color system is a stimulus value representing brightness (visual reflectance). Y(5°) serves as an index for the luminance feeling of the highlight. Y(15°) serves as an index for whether or not the hue due to the red-based colorant clearly appears at an observation angle slightly deviated from the highlight direction. When Y(5°) is 30 or more and 700 or less, and k in Y(15°)=k×Y(5°) is 0.01 or more and 0.3 or less, the colorant in the colored layer is vividly colored by the reflected light from the brightening layer, the hue due to the colorant clearly appears, and the FF property also increases.
[0047] Incidentally, Y(5°) is preferably 150 or more and 500 or less, more preferably 200 or more and 400 or less, and particularly preferably 200 or more and 300 or less. Also, k is preferably 0.03 or more and 0.2 or less, more preferably 0.05 or more and 0.15 or less.
[0048] The spectral transmittance of the colored layer in absolute value representation obtained by dividing the spectral reflectance measured at a light incident angle of 45° and a light receiving angle of 15° with the colored layer laminated on the brightening layer by the spectral reflectance measured at a light incident angle of 45° and a light receiving angle of 15° with the surface of the brightening layer exposed with the colored layer removed has a tangent slope at 620 nm of 0.02 nm -1 or more and 0.06 nm -1 or less is preferable.
[0049] Here, the inventors of the present application have found that the tangent slope at 620 nm of the spectral transmittance spectrum is in a proportional relationship with the chroma C * . The higher the chroma C * , the more the red coloring property improves. When the tangent slope is 0.02 nm -1 or more and 0.06 nm -1 or less, a sufficient chroma C * is obtained, so that a vivid red coloring with less turbidity and high transparency can be obtained.
[0050] Note that the light-receiving angle for measuring the spectral reflectance to obtain the spectral transmittance spectrum of the coloring layer is set to 15° at which the red hue is distinct. In the case of a red-based colorant, since the spectral reflectance rises in the wavelength range of 590 nm to 650 nm, it is defined as the slope of the tangent to the spectrum at the median wavelength of 620 nm in that wavelength range. The slope of the tangent to the spectral transmittance is preferably 0.03 nm -1 or more and 0.06 nm -1 or less.
[0051] The spectral transmittance characteristics of the coloring layer and the reflection characteristics of the brightening layer combine such that, in the highlight, red vividly and brightly appears with a sense of transparency, and the brightness drops on the shade side, making the red in the highlight stand out even more. Thus, it is advantageous for realizing a highly artistic metallic color.
[0052] It is preferable that the average particle size of the red-based pigment is 2 nm or more and 160 nm or less.
[0053] Since the average particle size of the pigment particles of the red-based pigment (in this specification, "the average particle size of the pigment particles" may be referred to as "the pigment particle size") is 160 nm or less, there is no geometric optical scattering or Mie scattering by the pigment particles, and since it is 2 nm or more, Rayleigh scattering is also avoided, which is advantageous for achieving a vivid red color with a sense of transparency. Also, when the pigment particle size is small, for the same pigment concentration, compared to the case where the pigment particle size is large, the frequency of light being absorbed when hitting the pigment particles when light passes through the coloring layer is higher, and thus the attenuation of light becomes larger. When the attenuation of light becomes larger, the amount of light passing through the coloring layer decreases and the brightness decreases, but since the amount of light in the highlight direction is originally large, the influence of the attenuation of light on the brightness is small. On the other hand, since the amount of light in the shade direction is originally small, the influence of the attenuation of light on the brightness becomes large. Thus, by reducing the diameter of the pigment particles, a higher FI can be achieved, which is advantageous for obtaining a high metallic texture. The average particle size of the red-based pigment is more preferably 2 nm or more and 30 nm or less.
[0054] It is preferable that a transparent clear layer is directly laminated on the brightening layer. The transparent clear layer can provide acid resistance and scratch resistance.
Advantages of the Invention
[0055] According to the present disclosure, in a laminated coating film in which a red color is produced by a phosphorescent layer and a colored layer having translucency, by setting the lightness in the shade direction (45° ≤ θ ≤ 80° and 100° ≤ θ ≤ 110°) to 10 or less, sufficient shade darkness is ensured. By setting the ratio of the projected area of the phosphorescent material within the above range, high FI can be achieved while ensuring sufficient shade darkness.
Brief Description of the Drawings
[0056]
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Modes for Carrying Out the Invention
[0057] Hereinafter, embodiments for carrying out the present disclosure will be described with reference to the drawings. The following description of the preferred embodiments is merely illustrative in nature and is not intended to limit the present disclosure, its applications, or its uses.
[0058] <Configuration Example of Multilayer Coating Film> As shown in FIG. 1, the vehicle body 11 (coated object) of the present embodiment of an automobile includes a multilayer coating film 12 provided on the surface of a steel sheet 11A (object to be coated) via an electrodeposition coating film 13. The multilayer coating film 12 is formed by sequentially laminating a gloss layer 14, a colored layer 15 having translucency, and a transparent clear layer 16. The electrodeposition coating film 13 is formed on the surface of the steel sheet 11A in advance by cationic electrodeposition coating.
[0059] The gloss layer 14 contains a resin component as a base material, a gloss material 21, and a first black pigment 23 as a black coloring material. The colored layer 15 contains a resin component as a base material, a red pigment 25 as a red coloring material, and a second black pigment 27 as a black coloring material.
[0060] As the resin components of the gloss layer 14 and the colored layer 15, although not intended to be limiting, for example, acrylic resins, polyester resins, urethane resins, melamine resins, etc. can be employed alone or in combination of multiple types. As the resin component of the transparent clear layer 16, for example, a carboxylic acid group-containing acrylic resin, a combination of a polyester resin and an epoxy-containing acrylic resin, a combination of an acrylic resin and / or a polyester resin and a polyisocyanate, etc. can be employed.
[0061] The gloss layer 14 and the colored layer 15 may contain additives such as an ultraviolet shielding material, a viscous material, a thickening material, a pigment dispersant, a surface conditioner, etc. as necessary. In particular, from the viewpoint of the light resistance of the multilayer coating film 12, it is desirable to contain an ultraviolet shielding material. As the ultraviolet shielding material, an organic compound-based ultraviolet absorber, an inorganic compound-based ultraviolet scattering agent, etc. can be employed, and among them, it is preferable to employ nanoparticles of metal oxides such as iron oxide.
[0062] The film thickness of the brightening layer 14 is preferably 6 μm or more and 15 μm or less, more preferably 7 μm or more and 13 μm or less, and the film thickness of the coloring layer 15 is preferably 8 μm or more and 15 μm or less.
[0063] The surface roughness Ra of the electrodeposited coating film 13 is preferably 2.0 μm or less, more preferably 1.0 μm or less. Thereby, the orientation of the brightening material 21 of the brightening layer 14 is improved.
[0064] <Brightening layer> [Brightening material] As the brightening material 21 contained in the brightening layer 14, a metal flake or the like having a high visible light reflectance can be adopted. In the present embodiment, aluminum flakes are adopted as the brightening material 21.
[0065] From the viewpoint of obtaining sufficient brightness of the highlight, the aluminum flakes preferably have a visible light reflectance of 90% or more. Thereby, a sufficient amount of light in the highlight direction can be ensured, and sufficient brightness of the highlight can be obtained.
[0066] As such aluminum flakes, specifically, those having an average particle size of 5 μm or more and 30 μm or less, preferably 10 μm or more and 15 μm or less, and an average thickness of 10 nm or more and 500 nm or less are preferably adopted. In particular, the average thickness is preferably 10 nm or more and 50 nm or less in the case of vapor-deposited aluminum flakes, and 100 nm or more and 500 nm or less in the case of thin-film aluminum flakes.
[0067] In this specification, the average particle size of the brightening material 21 and various coloring pigments is obtained by obtaining D50, which is the 50% value of the particle size distribution measured by, for example, a laser diffraction type particle size distribution measuring device.
[0068] The average thickness of the brightening material 21 is obtained, for example, by observing with a scanning electron microscope, measuring the thicknesses of a plurality of (for example, 50) brightening materials 21, and calculating the average value thereof.
[0069] If the average particle size is too small, the reflection characteristics may deteriorate. If the average particle size is too large, although the reflection characteristics are excellent, the particle feeling of the appearance may become too strong. In addition, the diffuse reflection at the edges of the aluminum flakes becomes stronger as the thickness of the flakes increases. As described above, since the thickness is thin, the diffuse reflection is weak. Therefore, it is advantageous for reducing the lightness of the shade.
[0070] Incidentally, the aspect ratio (average particle size / average thickness) of the aluminum flakes is preferably 30 or more and 300 or less.
[0071] Also, the aluminum flakes preferably have a surface roughness Ra of 50 nm or less. In particular, in the case of vapor-deposited aluminum flakes, the surface roughness Ra is preferably 7 nm or less, and in the case of smooth aluminum flakes, the surface roughness Ra is preferably 50 nm or less. Thereby, the diffuse reflection due to the fine irregularities on the surface of the aluminum flakes can be reduced, and the lightness of the shade can be reduced.
[0072] Incidentally, the brightening material 21 is oriented so as to be substantially parallel to the surface of the brightening layer 14 (so that the average orientation angle of the brightening material 21 with respect to the surface of the brightening layer 14 is 1.2 degrees or less) in order to increase the lightness of the highlight. For example, after applying a paint containing the brightening material 21, the first black pigment 23, etc. on the electrodeposition coating film 13, taking advantage of the fact that the coating film shrinks in volume and becomes thinner due to the evaporation of the solvent by baking, the brightening material 21 is arranged so that the average orientation angle is 1.2 degrees or less. The average orientation angle of the brightening material 21 is obtained by calculating the inclination of the brightening material 21 with respect to the surface of the brightening layer 14 in a plurality (for example, 50) of brightening materials 21 included in one field of view from the 3D shape data (xyz coordinates) of the surface of the brightening layer 14 measured using a laser microscope (manufactured by Keyence Corporation, VK-X1000) and averaging them.
[0073] There are two types of aluminum flakes: the leafing type and the non-leafing type, and either can be used, but it is preferable to use the non-leafing type of aluminum flakes.
[0074] Since the leafing type aluminum flakes have a low surface tension, when a paint containing the leafing type aluminum flakes is applied, the aluminum flakes float on the surface of the brightening layer 14 and are oriented parallel to the surface. When the aluminum flakes float on the surface of the brightening layer 14, the amount of reflected light increases and the FF property improves, but a planar strong gloss like specular reflection is obtained. Also, in the case of the leafing type aluminum flakes, due to the small surface area and the decrease in the amount of the resin component disposed on the surface of the brightening layer 14, etc., the adhesion between the brightening layer 14 and the coloring layer 15 decreases, and there is a problem that it becomes easy to peel off due to external factors such as chipping.
[0075] On the other hand, since the non - leafing type aluminum flakes have a high surface tension, when a paint containing the non - leafing type aluminum flakes is applied, for example, as shown in FIG. 1, the aluminum flakes are irregularly dispersed in the film thickness direction while being oriented parallel to the surface of the brightening layer 14. As a result, since the amount of reflected light changes corresponding to the position of the aluminum flakes in the film thickness direction, a three - dimensional metallic gloss can be obtained, and a more design - oriented metallic color can be obtained. Also, in the case of the non - leafing type aluminum flakes, since a sufficient amount of the resin component disposed on the surface of the brightening layer 14 can be ensured, sufficient adhesion between the brightening layer 14 and the coloring layer 15 can be ensured.
[0076] [Area ratio of brightening material] The ratio of the projected area of the brightening material 21 to the bottom surface when the brightening material 21 is projected onto the bottom surface of the brightening layer 14 (also referred to as "area ratio" in this specification) is preferably 3% or more and 70% or less, more preferably 20% or more and 50% or less per unit area.
[0077] If the area ratio of the brightening material 21 is too small, the amount of reflected light by the brightening material 21 is insufficient, and sufficient brightness of the highlight cannot be obtained. On the other hand, if the area ratio of the brightening material 21 is too large, since the amount of the brightening material 21 is large, the influence of diffuse reflection due to the fine unevenness and edges on the surface of the brightening material 21 becomes large, the brightness of the shade increases, and the strength and weather resistance of the brightening layer 14 decrease. By setting the area ratio of the brightening material 21 within the above range, it is possible to achieve a high FI while ensuring sufficient darkness of the shade, and to obtain sufficient strength and weather resistance.
[0078] The area ratio per unit area of the aluminum flakes can be obtained, for example, by magnifying and observing the brightening layer 14 from its surface with a microscope, calculating the area ratio of the aluminum flakes in a plurality of visual fields (for example, 10 visual fields) by image processing, and averaging them.
[0079] Specifically, FIG. 2 is a photograph taken of the brightening layer according to Production Example 1 shown in Table 1 from its surface side. In the Production Example 1, aluminum flakes are used as the brightening material 21, carbon black is used as the first black pigment 23, and an acrylic resin, a urethane resin, and a melamine resin are used as the resin component, and only the brightening layer 14 is formed on the surface of the steel plate 11A via the electrodeposition coating film 13.
[0080]
Table 1
[0081] The whitish particles in FIG. 2 are aluminum flakes. From the figure, when the aluminum flakes are projected onto the bottom surface of the brightening layer 14, the area ratio of the aluminum flakes occupying the bottom surface can be calculated as 22.5% per unit area.
[0082] The area ratio of the brightening material 21 as described above can be achieved, for example, by setting the concentration of the brightening material 21 in the brightening layer 14 to preferably 1% by mass or more and 17% by mass or less, more preferably 5% by mass or more and 12% by mass or less. If the concentration of the brightening material 21 is less than 1% by mass, a sufficient area ratio of the brightening material 21 cannot be obtained. If the concentration of the brightening material 21 exceeds 17% by mass, the area ratio of the brightening material 21 becomes too large.
[0083] [First black pigment] Although the flaky brightening material 21 is effective in increasing the brightness of the highlight, there is diffuse reflection due to minute irregularities on the flake surface and diffuse reflection at the edges of the flakes. Furthermore, there is diffuse reflection at the base (electrodeposition coating film 13 in this embodiment). When the light diffusely reflected in this way passes through the colored layer 15, the amount of light in the shade direction increases and the brightness of the shade increases. When the brightness of the shade increases, the whiteness of the shade increases, which causes the red color development in the highlight to become blurred and the vividness to decrease. Therefore, it is desirable to contain the first black pigment 23 as a black coloring material in the brightening layer 14 and adjust the reflection characteristics of the shade by utilizing the light absorption function and hiding ability of the first black pigment 23.
[0084] Most of the incident light passing through the gaps between the brightening materials 21 is absorbed and / or shielded by the first black pigment 23, so that there is almost no diffuse reflection by the base (electrodeposition coating film 13). Then, the light diffusely reflected by the minute irregularities and edges of the brightening material 21 is absorbed and / or shielded by the first black pigment 23, thereby reducing the brightness of the shade.
[0085] As the first black pigment 23 contained in the bright layer 14, although not intended to be limiting, for example, carbon black with excellent weather resistance can be adopted. The concentration of the first black pigment 23 in the bright layer 14 is desirably 1% by mass or more and 20% by mass or less. If the concentration of carbon black is too low, there is a risk that its light absorption function and hiding power cannot be sufficiently obtained. On the other hand, if the concentration of carbon black is too high, the structure formed by the aggregation of primary particles is likely to be mechanically intertwined, increasing light scattering, so the transparency decreases and the lightness of the shade may increase. Therefore, setting the concentration of carbon black in the bright layer 14 within the above range is advantageous for reducing the lightness of the shade.
[0086] The average particle size of carbon black is preferably 200 nm or less. Since the average particle size of carbon black is 1 / 2 wavelength or less of the lower limit of visible light (wavelength 400 nm), light scattering by carbon black particles can be suppressed. Thus, an increase in the lightness of the shade can be suppressed.
[0087] The bright layer 14 may contain a colorant of a color other than black, for example, a red colorant. Thereby, light scattering can be suppressed. From the viewpoint of increasing the FI value, it is desirable to contain only a black colorant as the colorant.
[0088] Also, for adjusting the light reflection characteristics, a black or other dark underlayer (absorbing layer) that absorbs light may be provided between the bright layer 14 and the electrodeposition coating film 13. That is, it is a method of absorbing the light transmitted through the gaps between the brightening materials 21 in the bright layer 14 with the dark underlayer. In the case of this method, coating of the dark underlayer is required, but it is possible to adjust the reflection characteristics.
[0089] <Reflection characteristics of the bright layer> [Y value] The Y value in the XYZ color system is the Y among the tristimulus values X, Y, and Z defined by the following formula in the CIE XYZ color space (https: / / ja.wikipedia.org / wiki / CIE_1931_%E8%89%B2%E7%A9%BA%E9%96%93), and it is a stimulus value representing brightness (visual reflectance).
[0090] [Number]
[0091] Note that x(λ), y(λ), and z(λ) (omitting the upper bar notation for each) are CIE color-matching functions, and Le, Ω, λ are the spectral radiance of the color for the colorimetric observer.
[0092] Figure 3 shows the method for measuring the Y value of the luminance layer 14. The incident angle of the light source 41 with respect to the luminance layer 14 is 45° (the inclination angle from the perpendicular to the surface of the luminance layer 14). The light-receiving angle θ (the inclination angle from the specular reflection direction toward the light source side) by the sensor 42 sets the specular reflection direction as 0°. For the measurement, a three-dimensional variable-angle spectroscopic colorimeter GCMS-4 manufactured by Murakami Color Research Laboratory Co., Ltd. was used.
[0093] In this embodiment, in order to increase the FI value, the reflection intensity Y(5°) at a light-receiving angle of 5° and the reduction rate k of the reflection intensity when the light-receiving angle changes from 5° to 15° are set within a predetermined range.
[0094] The reflection intensity Y(5°) at a light-receiving angle of 5° serves as an index for the luminance feeling of the highlight. Also, the reflection intensity Y(15°) at a light-receiving angle of 15° serves as an index for whether the hue by the red pigment 25 clearly appears at an observation angle slightly deviated from the highlight direction. The above reduction rate k is represented by the coefficient k in Y(15°) = k × Y(5°).
[0095] The Y(5°) of the glittering layer 14 is 30 to 700, preferably 150 to 500, more preferably 200 to 400, and particularly preferably 200 to 300. The coefficient k is 0.01 to 0.3, preferably 0.03 to 0.2, and more preferably 0.05 to 0.15. By setting the reflection characteristics of the glittering layer 14 in this way, the red pigment 25 of the coloring layer 15 can be made to develop a vivid color by the light reflected from the glittering layer 14. Thus, the hue of the red pigment 25 appears clearly and the FF property is also improved.
[0096] Specifically, Fig. 4 shows the relationship between the Y value calibrated using a standard white plate of the XYZ color system and the light-receiving angle of the glittering layer 14 (Table 1) of the above-mentioned Production Example 1. If the Y value of the reflected light measured at a light-receiving angle of 5° is Y(5°) and the Y value of the reflected light measured at a light-receiving angle of 15° is Y(15°), then in the example of Fig. 4, Y(5°) = 236 and Y(15°) = 13.1.
[0097] [L * value] L * The value is L * a * b * It is the lightness index of the color system. * The value can be measured in the same manner as the Y value.
[0098] As shown in FIG. 3, the brightness index L of the reflected light of the glittering layer 14 is measured at a light receiving angle θ with the light incident angle set to 45°. * Value L * In this embodiment, L in the range of 45°≦θ≦80° and 100°≦θ≦110° is set as (θ). * (θ) is 10 or less, preferably 5 or less. It is difficult to measure at a light receiving angle of 90° because the reflected light overlaps with the incident light. Therefore, no measurement was performed in the region of 80°<θ<100°. By setting the brightness in the shade direction (45°≦θ≦80° and 100°≦θ≦110°) to 10 or less, preferably 5 or less, sufficient darkness of the shade can be ensured.
[0099] Specifically, FIG. 5 is a graph showing the relationship between the L value of the phosphorescent layer 14 of Production Example 1 and the light-receiving angle θ. As shown in FIG. 5, when the light-receiving angle is 45° ≤ θ ≤ 80° and 100° ≤ θ ≤ 110°, the L value is 5 or less. * In addition, the above L(θ) in the range of 45° ≤ θ ≤ 80° and 100° ≤ θ ≤ 110° only needs to satisfy the condition of being 10 or less when the phosphorescent layer 14 contains a red colorant in addition to the first black pigment 23. *
[0100] *
[0101] [Spectral reflectance] The spectral reflectance indicates the wavelength dependence of the reflectance. The spectral reflectance of the phosphorescent layer 14 can be measured by the same method as the Y value and the L value. *
[0102] In this embodiment, for the phosphorescent layer 14, the spectral reflectance with respect to a standard white plate in the wavelength range of 450 nm to 700 nm measured with the light incident angle being 45° and the light-receiving angle θ being 45° and 110° (representative shade directions) is 0.02 or less, preferably 0.01 or less, in absolute value display.
[0103] Specifically, FIG. 6 is a graph showing the relationship between the above spectral reflectance of the phosphorescent layer 14 of Production Example 1 and the wavelength. As shown in FIG. 6, at the light-receiving angles of 45° and 110°, the spectral reflectance at wavelengths of 450 nm to 700 nm is 0.01 or less. Thereby, sufficient darkness of the shade can be obtained.
[0104] In addition, the above spectral reflectance only needs to be 0.02 or less when the phosphorescent layer 14 contains a red colorant in addition to the first black pigment 23.
[0105] [Coloring layer] [Red pigment] As the red pigment 25, for example, organic pigments such as perylene red, dibromoanthraslone red, azo red, anthraquinone red, quinacridone red, diketopyrrolopyrrole can be used, and it is particularly preferable to use perylene red which is excellent in weather resistance.
[0106] Details will be described later, but the average particle size of the red pigment 25 is preferably 2 nm or more and 160 nm or less, more preferably 2 nm or more and 30 nm or less.
[0107] Since the average particle size of the red pigment is 160 nm or less, there is no geometric optical scattering or Mie scattering by the pigment particles, and since it is 2 nm or more, Rayleigh scattering is also avoided, which is advantageous for a transparent and vivid red color development. Also, due to the small average particle size, at the same pigment concentration, compared to the case where the pigment particle size is large, when light passes through the colored layer, the frequency of hitting and being absorbed by the pigment particles is higher, and thus the light attenuation becomes larger. When the light attenuation becomes larger, the amount of light passing through the colored layer 15 decreases and the overall brightness decreases, but since the amount of light in the highlight direction is originally large, the influence of light attenuation on brightness is small. On the other hand, since the amount of light in the shade direction is originally small, the influence of light attenuation on brightness becomes large. Thus, by reducing the diameter of the pigment particles, high FI can be achieved, which is advantageous for obtaining a high metallic texture.
[0108] The concentration of the red pigment 25 in the colored layer 15 is 1 mass% or more and 17 mass% or less, preferably 4 mass% or more and 10 mass% or less, more preferably 5 mass% or more and 9 mass% or less, and particularly preferably 5 mass% or more and 7 mass%.
[0109] When the concentration of the red pigment 25 in the colored layer 15 is less than 1 mass%, sufficient color development of red in the highlight cannot be obtained. Also, when the concentration of the red pigment 25 exceeds 17 mass%, the absorption and / or shielding effect of the reflected light by the pigment particles becomes large and the brightness of the highlight decreases, and due to the light scattering effect by the pigment particles, the brightness of the shade increases, so the FI value decreases.
[0110] [Second black pigment] Since the colored layer 15 contains the second black pigment 27, when the reflected light from the light-emitting material 21 of the light-emitting layer 14 passes through the colored layer 15, the reflected light is absorbed by the second black pigment 27 over the entire wavelength range. Since the shade direction has a small amount of light, when absorbed by the second black pigment 27, the amount of the reflected light passing through the colored layer 15 is greatly reduced. On the other hand, since the amount of the reflected light in the highlight is large, even if a part of it is absorbed by the second black pigment 27, the amount of the reflected light passing through the colored layer 15 is sufficiently ensured. Thus, the vehicle body 11 provided with the laminated coating film 12 appears jet black in the shade, while the red color appears vivid in the highlight, and a more highly designed metallic color is achieved.
[0111] As the second black pigment 27, although not intended to be limiting, for example, carbon black having excellent weather resistance can be adopted.
[0112] The average particle diameter of the carbon black is preferably 20 nm or more and 160 nm or less. Since the average particle diameter of the carbon black is 1 / 2 wavelength or less of the lower limit of visible light (wavelength 400 nm), light scattering by the carbon black particles can be suppressed.
[0113] The concentration of the second black pigment 27 in the colored layer 15 is preferably 6% by mass or less. Further, the ratio of the second black pigment 27 to the total of the red pigment 25 and the second black pigment 27 in the colored layer 15 is preferably 26% by mass or less.
[0114] If the concentration of the second black pigment 27 and / or the ratio of the second black pigment 27 in the coloring material becomes too high, the amount of absorption of the reflected light increases, so that the blackness in the highlight excessively increases and the red color development in the highlight becomes turbid. By setting the concentration of the second black pigment 27 and / or the ratio of the second black pigment 27 in the coloring material within the above range, an excessive increase in blackness in the highlight can be suppressed and turbidity of red color development can be suppressed. Thus, vivid red color development in the highlight can be obtained.
[0115] [Entire coloring material] The total amount of all colorants contained in the colored layer 15, that is, the total of the red pigment 25 and the optional second black pigment 27, is preferably 1% by mass or more and 23% by mass or less.
[0116] The transmission characteristics of the colored layer 15 vary depending on the concentration of the colorants contained in the colored layer 15. In particular, when the concentration of all colorants in the colored layer is low, the reflected light from the light-emitting layer, especially the light due to diffuse reflection, is not significantly attenuated when passing through the colored layer, and the lightness of the shade increases, so the FI value decreases. On the contrary, when the concentration of all colorants is 1% by mass or more, the light due to diffuse reflection is sufficiently absorbed by the pigment particles when passing through the colored layer 15, so the lightness of the shade decreases and the FI value increases. On the other hand, when the concentration of all colorants becomes excessively high, the effect of the pigment particles absorbing and / or shielding the reflected light from the light-emitting layer 14 becomes large and the lightness of the highlight decreases, so the FI value decreases. Also, since the scattering of light by the pigment particles also causes an increase in the lightness of the shade and consequently a decrease in the FI value, the upper limit of the concentration of all colorants is preferably 23% by mass.
[0117] <Transmission characteristics of the colored layer> [Spectral transmittance] The transmission characteristics of the colored layer 15 are represented, for example, by its spectral transmittance. The spectral transmittance of the colored layer 15 is a value obtained by dividing the spectral reflectance measured with the colored layer 15 laminated on the light-emitting layer 14 by the spectral reflectance measured with the surface of the light-emitting layer 14 exposed by removing the colored layer 15, and here it is expressed as an absolute value. The spectral reflectance measured with the colored layer 15 laminated on the light-emitting layer 14 may be the coating film in the state where the colored layer 15 is laminated on the light-emitting layer 14 in the method shown in FIG. 3.
[0118] When obtaining the spectral transmittance spectrum of the colored layer 15, the incident angle in the measurement of each spectral reflectance is 45°, and the light-receiving angle is 15° at which the red hue clearly appears.
[0119] And in the case of the red colorant, since the spectral reflectance rises in the wavelength range of 590 nm to 650 nm, the slope of the tangent of the spectrum at the median value 620 nm of that wavelength range is set within a predetermined range.
[0120] That is, in the colored layer 15 of the present embodiment, the slope of the tangent line at 620 nm in the spectrum of the spectral transmittance is 0.02 nm -1 or more and 0.06 nm -1 or less, preferably 0.03 nm -1 or more and 0.06 nm -1 or less.
[0121] Specifically, FIG. 7 shows the spectrum of the spectral transmittance of the colored layer 15 in the coated plate of F (Example 3) shown in Table 2. For the measurement of the spectral reflectance, the variable-angle spectroscopic color measurement system GCMS-4 manufactured by the above-mentioned Murakami Color Research Laboratory was used. FIG. 7 is a spectral transmittance spectrum in the measurement wavelength range of 390 to 730 nm. The specifications of the laminated coating film 12 of the coated plate F (Example 3) and the slope of the tangent line at the wavelength of 620 nm of the spectrum are as shown in Table 2.
[0122]
Table 2
[0123] Next, as shown in Table 2, a plurality of coated plates A to E and G having the same configuration as the coated plate F (Example 3) were produced except that the pigment particle size of the colored layer 15 was variously changed, and the spectral transmittance spectra of each coated plate were measured. Then, the slope of the tangent line at 620 nm was obtained from the spectral transmittance spectrum as described above, and the XY and Z values in the XYZ colorimetric system were obtained using the equal-color function. XYZ was converted to L * a * b * and the chroma C * =√((a * ) 2 +(b * ) 2 ) was obtained.
[0124] According to the study of the present disclosure, as shown in FIG. 8, the chroma C * is proportional to the slope of the tangent line at the wavelength of 620 nm in the spectral transmittance spectrum. And at a slope of 0.02 nm -1 the chroma C * becomes approximately 50, and at a slope of 0.06 nm -1 the chroma C* becomes approximately 150. Therefore, the slope of the tangent line is 0.02 nm -1 or more, from the viewpoint of obtaining a vivid red color with less turbidity and high transparency, sufficient chroma C * is considered to be obtained.
[0125] Also, as shown in FIG. 9, the slope of the above tangent line depends on the average particle diameter (pigment particle diameter) of the red pigment in the colored layer 15. Here, when the pigment particle diameter exceeds 160 nm, there is a risk that the transparency will decrease due to irregular reflection by the pigment particles, that is, geometric optical scattering or Mie scattering, resulting in a color development with poor metallic luster. Also, when the pigment particle diameter is less than 2 nm, there is a risk of coloring purple due to Rayleigh scattering. According to FIGS. 8 and 9, when the slope of the above tangent line is 0.02 nm -1 or more and 0.06 nm -1 or less, preferably 0.03 nm -1 or more and 0.06 nm -1 or less, the average particle diameter of the pigment particles is 2 nm or more and 160 nm or less, preferably 2 nm or more and 30 nm or less. Thus, both irregular reflection by the pigment particles and Rayleigh scattering can be avoided, and a vivid red color development with less turbidity and high transparency can be obtained.
[0126] <Optical properties of the laminated coating film> [FI value] The FI value is a metallic feeling index of X-Rite and represents the FF property. The FI value is, as shown in FIG. 10, the lightness index L of the reflected light (45° reflected light) with a light incident angle (angle from the perpendicular to the surface) of 45° with respect to the surface of the laminated coating film 12 and a light receiving angle (tilt angle from the specular reflection direction to the light source side) of 45° * 45°, and the lightness index L of the reflected light (15° reflected light) with a light receiving angle of 15° * 15°, and the lightness index L of the reflected light (110° reflected light) with a light receiving angle of 110° * 110°, and is a value obtained by the following formula.
[0127] FI = 2.69×(L * 15° - L * 110°) 1.11 / L * 45° 0.86 The FI value is 20 or more, preferably 30 or more, more preferably 35 or more, and particularly preferably 40 or more, from the viewpoint of obtaining excellent vividness of red color development and excellent metallic texture in the laminated coating film 12.
[0128] [Combination of reflection characteristics of the bright layer and transmission characteristics of the colored layer] As described above, in the laminated coating film 12 according to the present embodiment, by combining the reflection characteristics of the bright layer 14 and the transmission characteristics of the colored layer 15, excellent color development of the red-based hue and high FI are realized in the laminated coating film 12.
[0129] That is, the reflection characteristics of the bright layer 14 and the transmission characteristics of the colored layer 15 cooperate with each other. In the highlight, red vividly develops brightly with a sense of transparency, while on the shade side, the brightness decreases, making the red in the highlight more prominent and obtaining a deep and high metallic texture. Thus, a highly metallic color with high design quality that combines vividness and depth is realized.
[0130] [Examples] Coated plates provided with the laminated coating films (the base is an electrodeposition coating film) of Examples 1 to 17 and Comparative Examples 1 to 4 shown in Tables 3 to 5 were produced. Then, the area ratio per unit area of aluminum flakes, Y(5°), Y(15°), the slope of the tangent line of the spectral transmittance spectrum at a wavelength of 620 nm, and the FI value were examined. Also, the vividness of red color development and the strength of contrast were evaluated by an external appearance visual test. The external appearance visual test was a four-level evaluation of "◎", "○", "△", and "×". The evaluation of the vividness of red and the strength of contrast is such that "◎" is the highest, and it gradually decreases in the order of "○" → "△" → "×".
[0131]
Table 3
[0132]
Table 4
[0133]
Table 5
[0134] Figure 11 is a graph showing the dependence of the FI value on Y(5°) and the concentration of the red pigment 25 in the colored layer 15 (pigment concentration) based on the results of Tables 3 and 4. However, k represented by Y(15°)=k×Y(5°) is 0.01 or more and 0.3 or less.
[0135] When Y(5°) of the bright layer 14 is 30 or more and 700 or less, and the pigment concentration of the colored layer 15 is 1 mass% or more and 17 mass% or less, the FI value can be made 20 or more. Also, when Y(5°) is 150 or more and 500 or less, and the pigment concentration of the colored layer 15 is 4 mass% or more and 10 mass% or less, the FI value can be made 30 or more. When Y(5°) is 200 or more and 400 or less, and the pigment concentration of the colored layer 15 is 5 mass% or more and 9 mass% or less, the FI value can be made 35 or more. When Y(5°) is 200 or more and 300 or less, and the pigment concentration of the colored layer 15 is 5 mass% or more and 7 mass% or less, the FI value can be made 40 or more.
Explanation of Signs
[0136] 11 Vehicle body 11A Steel plate 12 Multilayer coating film 13 Electrodeposition coating film 14 Bright layer 15 Colored layer 16 Transparent clear layer 21 Bright material 23 First black pigment (black coloring material) 25 Red pigment (red coloring material) 27 Second black pigment (black coloring material)
Claims
1. A laminated coating film comprising a brightening layer containing a brightening material and a coloring material formed directly or indirectly on the surface of an object to be coated, and a colored layer containing a red-based coloring material and having translucency, which is laminated on the brightening layer, The brightening layer contains aluminum flakes having an average particle size of 5 μm or more and 30 μm or less and an average thickness of 10 nm or more and 500 nm or less as the brightening material, The concentration of the aluminum flakes in the brightening layer is 1% by mass or more and 17% by mass or less, The coloring material contained in the brightening layer is composed of a black-based coloring material, The black-based coloring material contained in the brightening layer is carbon black, The concentration of the carbon black in the brightening layer is 1% by mass or more and 20% by mass or less, When the incident angle of light (the angle from the perpendicular to the surface of the brightening layer) is 45°, the brightening layer has a lightness index L of the reflected light measured at a light receiving angle θ (the inclination angle from the specular reflection direction toward the light source side), * value of L * When (θ), L at 45° ≤ θ ≤ 80° and 100° ≤ θ ≤ 110° * (θ) is 10 or less, The laminated coating film is characterized in that when the brightening material is projected onto the bottom surface of the brightening layer, the ratio of the projected area of the brightening material occupying the bottom surface is 3% or more and 70% or less per unit area.
2. In Claim 1, The laminated coating film is characterized in that the surface roughness Ra of the aluminum flakes is 50 nm or less.
3. In Claim 1 or Claim 2, The laminated coating film is characterized in that the ratio of the projected area of the brightening material is 20% or more and 50% or less per unit area.
4. In any one of Claims 1 to 3, The laminated coating film is characterized in that the average particle size of the carbon black is 200 nm or less.
5. In any one of Claims 1 to 4, the brightening layer has a spectral reflectance with respect to a standard white plate in the wavelength range of 450 nm to 700 nm measured at a light receiving angle of 45° and 110° with an incident angle of light being 45° of 0.02 or less in absolute value display, and is a laminated coating film.
6. In any one of Claims 1 to 5, the red colorant in the coloring layer is a red pigment, and is a laminated coating film.
7. In any one of Claims 1 to 6, the concentration of the red colorant in the coloring layer is 1% by mass or more and 17% by mass or less, and is a laminated coating film.
8. In any one of Claims 1 to 7, all colorants contained in the coloring layer are the red colorant, and is a laminated coating film.
9. In any one of Claims 1 to 7, the coloring layer further contains a black colorant, and is a laminated coating film.
10. In Claim 9, the concentration of the black colorant in the coloring layer is 6% by mass or less, and is a laminated coating film.
11. In Claim 9 or Claim 10, the ratio of the black colorant to the total of the red colorant and the black colorant in the coloring layer is 26% by mass or less, and is a laminated coating film.
12. In any one of Claims 9 to 11, all colorants contained in the coloring layer are the red colorant and the black colorant, and is a laminated coating film.
13. A coated article comprising the laminated coating film according to any one of Claims 1 to 12.
Citation Information
Patent Citations
Method for forming brilliant coating film and coated article
JP2002273332A
Formation method of lamination coated film, lamination coated film and coated matter
JP2005177541A
Molding laminated sheet
JP2006281451A
Method for forming multilayer coated film
JP2012232236A
Resin composition, laminate and method for manufacturing laminate
JP2017025173A