COATING OF INNER PLATE PART OF VEHICLE
20200109255 ยท 2020-04-09
Assignee
Inventors
- Sakura NAKANO (Hiroshima-shi, JP)
- Masaaki AKAMINE (Hiroshima-shi, JP)
- Kenta OKADA (Hiroshima-shi, JP)
- Hiroshi Kubota (Aki-gun, JP)
Cpc classification
C09D201/00
CHEMISTRY; METALLURGY
B60R13/00
PERFORMING OPERATIONS; TRANSPORTING
C09D5/4415
CHEMISTRY; METALLURGY
C08K5/0041
CHEMISTRY; METALLURGY
Y10T428/257
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
C09D201/00
CHEMISTRY; METALLURGY
Abstract
A coating of an outer plate contains a perylene-based pigment, and satisfies (R.sup.OH(P)/R.sup.OH(OA))74, where R.sup.OH(P) is the highlight reflectance of the coating of the outer plate at a peak wavelength at which reflectance reaches the maximum value in a spectral reflectance curve, and R.sup.OH(OA) is the average highlight reflectance of the coating of the outer plate in a complementary wavelength range. A coating of an inner plate part contains a perylene-based pigment and an iron oxide-based pigment, the content of the perylene-based pigment in the coating of the inner plate part is in units of PWC, and the mass ratio of the content of the iron oxide-based pigment to the content of the perylene-based pigment in the coating of the inner plate part is 3-20%.
Claims
1. A vehicle comprising: an outer plate part of the vehicle; an inner plate part of the vehicle; a coating of the outer plate part of the vehicle; and a coating of the inner plate part of the vehicle, wherein the coating of the outer plate part contains a perylene-based pigment to produce a particular color, and the coating of the outer plate satisfies R.sup.OH(P)/R.sup.OH(OA)74, where reflectance measured with reference to reflectance of a standard white plate at a light incidence angle of 45 degrees and a light reception angle of +30 degrees is defined as highlight reflectance, a wavelength at which reflectance reaches a maximum value in a spectral reflectance curve is defined as a peak wavelength, a wavelength range including a hue of a complementary color of the particular color and hues of colors positioned respectively on both sides of the complementary color of the particular color in a Munsell hue circle divided into ten hues is defined as a complementary wavelength range, R.sup.OH(P) is highlight reflectance of the coating of the outer plate at the peak wavelength, and R.sup.OH(OA) is average highlight reflectance of the coating of the outer plate in the complementary wavelength range, the coating of the outer plate part is formed such that a metallic base coating, a color-clear coating and a transparent top clear coating are stacked on each other in this order, and the metallic base coating contains aluminum flakes as a glittering material and a perylene-based pigment, and the color-clear coating contains a perylene-based pigment, the coating of the inner plate part of the vehicle contains a perylene-based pigment and an iron oxide-based pigment as pigments for producing a particular color similar to that of the coating of the outer plate, and a content of the perylene-based pigment in the coating of the inner plate part is equal to or higher than 10% and equal to or lower than 14% in units of Pigment Weight Concentration, and a mass ratio of a content of the iron oxide-based pigment to the content of the perylene-based pigment in the coating of the inner plate part is equal to or higher than 3% and equal to or lower than 20%.
2. The vehicle of claim 1, wherein the coating of the inner plate part contains the pigments and a glittering material, and a ratio of the content of the perylene-based pigment to a total amount of the pigments and the glittering material in the coating of the inner plate part is equal to or higher than 50% by mass.
3. The vehicle of claim 1, wherein the mass ratio of the content of the iron oxide-based pigment to the content of the perylene-based pigment in the coating of the inner plate part is equal to or higher than 5% and equal to or lower than 15%.
4. The vehicle of claim 1, wherein an average particle size of the iron oxide-based pigment is equal to or greater than 50 nm and equal to or less than 60 nm.
5. The vehicle of claim 1, wherein a highlight reflectance ratio R.sup.IH(P)/R.sup.OH(P) of the inner plate part to the outer plate at the peak wavelength is equal to or higher than 0.5 and equal to or lower than 1.0, and an average highlight reflectance ratio R.sup.IH(OA)/R.sup.OH(OA) of the inner plate part to the outer plate in the complementary wavelength range is equal to or higher than 1.0 and equal to or lower than 6.0, where R.sup.IH(P) is highlight reflectance of the coating of the inner plate part at the peak wavelength, and R.sup.IH(OA) is average highlight reflectance of the coating of the inner plate part in the complementary wavelength range.
6. The vehicle of claim 5, wherein a face reflectance ratio R.sup.IF(P)/R.sup.OF(P) of the inner plate part to the outer plate at the peak wavelength is equal to or higher than 0.7 and equal to or lower than 1.3, where reflectance measured with reference to the reflectance of the standard white plate at a light incidence angle of 45 degrees and a light reception angle of 0 degree is defined as face reflectance, R.sup.OF(P) is face reflectance of the coating of the outer plate at the peak wavelength, and R.sup.IF(P) is face reflectance of the coating of the inner plate part at the peak wavelength, and a shade reflectance ratio R.sup.IS(P)/R.sup.OS(P) of the inner plate part to the outer plate at the peak wavelength is equal to or higher than 1.0 and equal to or lower than 2.0, where reflectance measured with reference to the reflectance of the standard white plate at a light incidence angle of 45 degrees and a light reception angle of 30 degrees is defined as shade reflectance, R.sup.OS(P) is shade reflectance of the coating of the outer plate at the peak wavelength, and R.sup.IS(P) is shade reflectance of the coating of the inner plate part at the peak wavelength.
7. The vehicle claim 1, wherein an amount of worn-out coating every 100 reciprocations is less than 1.8 m when a sheet of abrasive paper having a mesh count of #1000 and having an area of 2020 mm is used to perform an abrasion test of the coating of the inner plate part under conditions where a load is 200 g, a moving distance per reciprocation is 240 mm, the number of reciprocations per minute is 30, and the total number of reciprocations is 300.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0043] An embodiment of the present invention will be described below with reference to drawings. The embodiment described below will be set forth merely for the purpose of a preferred example in nature, and is not intended to limit the scope, applications, and use of the invention.
[0044] (Composition of Coating of Outer Plate of Vehicle)
[0045]
[0046] [Study on Coloring Mechanism]
[0047] The multilayer coating 2 is used to achieve higher chroma and higher lightness at the highlight, to exhibit the appearance of denseness, and to exhibit the appearance of depth. Thus, the coloring mechanism of a particular color (red) will be described.
[0048] Referring to
[0049] Referring to
[0050] As in an example of the spectral reflectance curves of the metallic base coating 4 illustrated in
[0051] Referring to
[0052] According to
[0053] [Planning of Conditions for Achieving Higher Lightness and Higher Chroma and for Exhibiting Appearance of Denseness and Appearance of Depth]
[0054] According to the foregoing study on the coloring mechanism, the highlight reflectance, shade reflectance, and face reflectance of light having a particular color, the transmittance of light having the particular color, and the transmittance of light having colors other than the particular color influence the lightness and chroma of a multilayer coating and the appearance of depth of the multilayer coating. Thus, plural samples of multilayer coatings of examples and comparative examples were prepared. The reflectance of each sample was measured, thereby evaluating the chroma, the appearance of depth, and the appearance of denseness.
[0055] Outer Plate No. 1 (Example)
[0056] In the coating composition illustrated in
[0057] The metallic base coating 4 was formed of an acrylic melamine-based solvent paint by a rotary atomization type electrostatic coating apparatus. Such a paint was mixed with 10% (PWC) of aluminum flakes serving as a glittering material 7 and 15% (PWC) of a perylene-based pigment serving as a color pigment 8. The following coating conditions were set: a discharge rate of 330 cc/min; a rotational speed of 20000 rpm; and a shaping air (S/A) flow rate of 420 Nl/min. The thickness of the metallic base coating 4 was 12 m.
[0058] The color-clear coating 5 was also formed of an acrylic melamine-based solvent paint by the rotary atomization type electrostatic coating apparatus. Such a paint was mixed with 2.0% (PWC) of a perylene-based pigment serving as a color pigment 8. The following coating conditions were set: a discharge rate of 300 cc/min; a rotational speed of 20000 rpm; and a S/A flow rate of 300 Nl/min The thickness of the color-clear coating 5 was 12 m.
[0059] The top clear coating 6 was formed of an acid epoxy-based clear paint. The thickness of the top clear coating 6 was 30 m. The paint for intermediate coating, the paint for metallic base coating, the paint for color-clear coating, and the paint for top clear coating were applied using a wet-on-wet technique, and then were baked (heated for 20 minutes at a temperature of 140 C.).
[0060] Outer Plates Nos. 2-10 (Examples)
[0061] The orientation of the glittering material 7 of the outer plate No. 1 was changed in such a manner that the coating conditions for forming the metallic base coating 4 are adjusted. As a result, samples of outer plates Nos. 2-10 different from each other in the highlight reflectance, shade reflectance, and face reflectance of the metallic base coating 4 were prepared. The outer plates Nos. 2-10 are the same as the outer plate No. 1 in the compositions of the metallic base coating 4, the color-clear coating 5, the top clear coating 6, and the intermediate coating 9.
[0062] Outer Plate No. 11 (Example)
[0063] A multilayer coating (by a 3-coat-1-bake process) was formed in such a manner that an intermediate coating (having an L* value of 30) is stacked on an epoxy-based electrodeposited coating formed on a surface of a steel plate, and then a metallic base coating and a color-clear coating are stacked on the intermediate coating in this order. A polyester-based solvent paint was used for the intermediate coating. The thickness of the intermediate coating was 25 m.
[0064] The metallic base coating was formed of an acrylic melamine-based solvent paint by the rotary atomization type electrostatic coating apparatus. Such a paint was mixed with 8% (PWC) of aluminum flakes serving as a glittering material and 14% (PWC) of a perylene-based pigment serving as a color pigment. The following coating conditions were set: a discharge rate of 330 cc/min; a rotational speed of 20000 rpm; and a S/A flow rate of 420 Nl/min. The thickness of the metallic base coating was 15 m.
[0065] The color-clear coating was formed of an acid epoxy-based clear paint by the rotary atomization type electrostatic coating apparatus. Such a paint was mixed with 1.0% (PWC) of a perylene-based pigment serving as a color pigment. The following coating conditions were set: a discharge rate of 240 cc/min; a rotational speed of 22000 rpm; and a S/A flow rate of 250 Nl/min. The thickness of the color-clear coating was 30 m. The paint for intermediate coating, the paint for metallic base coating, and the paint for color-clear coating were applied using the wet-on-wet technique, and then were baked (heated for 20 minutes at a temperature of 140 C.).
[0066] Outer Plate No. 12 (Example)
[0067] A multilayer coating (by a 5-coat-2-bake process) was formed in such a manner that an intermediate coating and a metallic base coating are formed as in the outer plate No. 11, and then a clear coating, a color-clear coating, and a top clear coating are stacked on the metallic base coating in this order.
[0068] The color-clear coating was formed of an acrylic melamine-based solvent paint by the rotary atomization type electrostatic coating apparatus. Such a paint was mixed with 2.0% (PWC) of a perylene-based pigment serving as a color pigment. The following coating conditions were set: a discharge rate of 330 cc/min; a rotational speed of 20000 rpm; and a S/A flow rate of 300 Nl/min. The thickness of the color-clear coating was 12 m. The clear coating and the top clear coating were formed of an acid epoxy-based clear paint. The thickness of such coatings was 30 m. The paint for intermediate coating, the paint for metallic base coating, and the paint for clear coating were applied using the wet-on-wet technique, and then were baked (heated for 20 minutes at a temperature of 140 C.). Moreover, the paint for color-clear coating and the paint for top clear coating were applied using the wet-on-wet technique, and then were re-baked (re-heated for 20 minutes at a temperature of 140 C.).
[0069] Commercially-Available Products Nos. 1 and 2 (Comparative Examples)
[0070] Two types of samples (Red Mica 1 and Red Mica 2) of commercially-available automobiles which are manufactured by another manufacturer and which are different from each other in coating color were prepared.
[0071] Applicant's Currently-Available Products Nos. 1 and 2 (Comparative Examples)
[0072] Samples (Red Mica and Red Metallic) of commercially-available automobiles which are manufactured by the applicant of the present application and which are different from each other in coating color were prepared.
[0073] Evaluation on Color Properties of Multilayer Coating
[0074] For each sample, highlight reflectance R.sup.OH(P), shade reflectance R.sup.OS(P), and face reflectance R.sup.OF(P) at the peak wavelength of a particular color and average highlight reflectance R.sup.OH(OA) in a complementary wavelength range were measured. Moreover, the chroma, the appearance of depth, and the appearance of denseness were visually evaluated for each sample. The reflectance was measured using Gonio-Spectrophotometric Color Measurement System GCMS-4 manufactured by Murakami Color Research Laboratory Co., Ltd. A measurement wavelength range was 400 to 700 nm.
[0075] Referring to
[0076] The hue to which the particular color belongs was determined by Yxy measured based on the reflectance of an object obtained by the gonio-spectrophotometric color measurement system. The details thereof are described in 6. Determination on Color Notation of Color specificationSpecification according to their three attributes of JIS Z 8721. In the present specification, in order to determine the hue, color measurement of the samples was performed using a D65 light source at a field of view of 10 degrees, thereby obtaining Yxy.
TABLE-US-00001 TABLE 1 MUNSELL HUE NOTATION COMPLE- HUE OF IN COM- MENTARY PARTIC- MUNSELL PLEMENTARY WAVELENGTH ULAR HUE WAVELENGTH RANGE COLOR NOTATION RANGE (nm) RED R B, BG, G 460~550 YELLOW- YR PB, B, BG 410~500 RED YELLOW Y P, PB, B 400~490 GREEN- GY PR, P, PB 400~460 YELLOW GREEN G R, PR, P 610~700 BLUE- BG YR, R, PR 580~700 GREEN BLUE B Y, YR, R 570~700 PURPLE- PB GY, Y, YR 550~610 BLUE PURPLE P G, GY, Y 490~590 PURPLE- PR BG, G, GY 480~570 RED
[0077] The criteria for visual evaluation are as follows.
TABLE-US-00002 Chroma Double Circle: Strong Sense of Brightness White Circle: Sense of Brightness White Triangle: Slight Sense of Brightness Cross Mark: No Sense of Brightness Depth Double Circle: Strong Sense of Depth White Circle: Sense of Depth White Triangle: Slight Sense of Depth Cross Mark: No Sense of Depth Denseness Double Circle: No Sense of Granularity White Circle: Slight Sense of Granularity White Triangle: Sense of Granularity Cross Mark: Strong Sense of Granularity
[0078] Measurement and Evaluation Results
[0079] Measurement and evaluation results of the foregoing color properties are shown in Table 2.
TABLE-US-00003 TABLE 2 COMPLEMEN- TARY WAVE- PEAK WAVELENGTH LENGTH RANGE {circle around (1)} {circle around (2)} {circle around (3)} {circle around (4)} HIGHLIGHT FACE SHADE AVERAGE REFLEC- REFLEC- REFLEC- REFLEC- VISUAL TANCE TANCE TANCE TANCE EVALUATION R (%) R (%) R (%) (HIGHLIGHT) APPEARANCE OUTER PLATE R.sup.OH(P) R.sup.OF(P) R.sup.OS(P) R.sup.OH(OA) CHROMA OF DEPTH RED- No. 1 180.7 23.2 8.8 1.4 BASED No. 2 148.8 25.2 9.8 1.6 SAMPLE No. 3 130.5 27.4 10.7 1.3 No. 4 132.9 26.7 10.7 1.4 No. 5 153.2 25.3 9.9 1.4 No. 6 138.4 27.5 10.6 1.1 No. 7 148.0 26.9 10.2 2.0 No. 8 151.3 24.7 9.7 1.0 No. 9 148.0 26.1 10.0 1.6 No. 10 158.8 26.3 9.8 2.1 No. 11 139.4 22.9 13.4 0.5 No. 12 140.4 24.9 15.3 0.7 COMMERCIALLY- RED MICA 1 77.0 22.1 19.8 1.1 AVAILABLE RED MICA 2 34.8 5.5 4.3 0.9 PRODUCTS CURRENTLY- RED MICA 73.4 37.0 35.6 4.2 X X AVAILABLE RED METALLIC 62.0 9.0 3.0 2.0 PRODUCTS OPTIMAL FAVORABLE 3 RANGE RANGE BEST RANGE 3 CONDITIONS FOR COLORING CONDITION C VISUAL CONDITION B VALUE FOR EVALUATION CONDITION A VALUE FOR GREAT APPEARANCE VALUE FOR APPEARANCE APPEARANCE OF HIGH CHROMA OF DEPTH OF DEPTH OUTER PLATE DENSENESS R.sup.OH(P)/R.sup.OH(OA) A (R.sup.OH(P) R.sup.OS(P))/100 B/R.sup.OF(P) RED- No. 1 129.1 221.9 9.6 BASED No. 2 93.0 129.3 5.1 SAMPLE No. 3 100.4 120.3 4.4 No. 4 94.9 116.0 4.3 No. 5 109.4 156.8 6.2 No. 6 125.8 160.8 5.8 No. 7 74.0 102.0 3.8 No. 8 151.3 214.2 8.7 No. 9 92.5 127.7 4.9 No. 10 75.6 112.7 4.3 No. 11 278.8 351.3 15.3 No. 12 200.6 250.9 10.1 COMMERCIALLY- RED MICA 1 X 70.0 40.0 1.8 AVAILABLE RED MICA 2 X 38.7 11.8 2.1 PRODUCTS CURRENTLY- RED MICA X 17.5 6.6 0.2 AVAILABLE RED METALLIC X 31.0 18.3 2.0 PRODUCTS OPTIMAL FAVORABLE 74 >100 3 RANGE RANGE BEST RANGE >120 >150 >8
[0080] According to the relationship between the highlight reflectance R.sup.OH(P) at the peak wavelength of the particular color and the visually-evaluated chroma as shown in Table 2, e.g., Red Mica of the currently-available products has relatively-high highlight reflectance R.sup.OH(P), but has low visually-evaluated chroma. This shows that high chroma cannot be achieved only with high highlight reflectance R.sup.OH(P).
[0081] When Condition A (=R.sup.OH(P)/R.sup.OH(OA)) is high, the evaluated chroma tends to be relatively high, and favorable appearance of denseness is exhibited. According to the results of Table 1, Condition A is preferably equal to or greater than 74, and more preferably greater than 120.
[0082] In terms of the shade reflectance R.sup.OS(P), the tendency shows that a greater difference between the highlight reflectance R.sup.OH(P) and the shade reflectance R.sup.OS(P) results in greater appearance of depth. Red Mica of the currently-available products has a greater difference (R.sup.OH(P)R.sup.OS(P)) between the highlight reflectance R.sup.OH(P) and the shade reflectance R.sup.OS(P) as compared to that of Red Mica 2 of the commercially-available products, but the appearance of depth of Red Mica of the currently-available products in visual evaluation has a lower rating than that of Red Mica 2 of the commercially-available products. This shows that the appearance of depth cannot be exhibited only with a great difference between the highlight reflectance and the shade reflectance. A greater value for Condition B ((R.sup.OH(P)/R.sup.OH(OA))(R.sup.OH(P)R.sup.OS(P))1/100) results in higher chroma and greater appearance of depth in visual evaluation. That is, not only a great difference between the highlight reflectance and the shade reflectance but also high chroma are required for greater appearance of depth. According to the results of Table 2, Condition B is preferably greater than 100, and more preferably greater than 150.
[0083] In terms of the face reflectance R.sup.OF(P), the outer plates Nos. 1 to 12 are at the substantially same level as Red Mica 1 of the commercially-available products. However, the appearance of depth and the appearance of denseness are better in the outer plates Nos. 1 to 12 than in Red Mica 1 of the commercially-available products. This is because the difference between the highlight reflectance R.sup.OH(P) and the face reflectance R.sup.OF(P) is great. That is, a greater value for Condition C ((R.sup.OH(P)/R.sup.OH(OA))(R.sup.OH(P)R.sup.OS(P))(1/R.sup.OF(P))(1/100)) taking the face reflectance R.sup.OF(P) into consideration results in greater appearance of depth and greater appearance of denseness. According to the results of Table 1, Condition C is preferably equal to or greater than 3, and more preferably greater than 8.
[0084] The average highlight reflectance R.sup.OH(OA) in the complementary wavelength range is preferably equal to or less than 3%.
[0085] (Composition of Coating of Inner Plate Part)
[0086]
[0087] [Coloring Properties and Strength of Coating of Inner Plate Part]
[0088] The present invention relates to the coating 12 of the inner plate part 11, and aims to ensure coloring properties at such a level that the coating 12 of the inner plate part 11 is not inferior in appearance than the multilayer coating 2 of the outer plate 1 and to enhance coating strength. Thus, in order to produce a particular color similar to that of the multilayer coating 2 of the outer plate 1, the coating 12 of the inner plate part 11 contains, as pigments, a perylene-based pigment and an iron oxide-based pigment, the content of the perylene-based pigment is equal to or higher than 10% and equal to or lower than 14% in units of PWC, and the mass ratio of the content of the iron oxide-based pigment to the content of the perylene-based pigment is equal to or higher than 3% and equal to or lower than 20%.
[0089] Plural samples of coatings of examples and comparative examples were prepared. The coloring properties and strength of these samples were evaluated by reflectance measurement and an abrasion test.
[0090] Inner Plate Part No. 1 (Comparative Example)
[0091] In the coating composition illustrated in
[0092] The coating 12 was formed of an acrylic melamine-based solvent paint by the rotary atomization type electrostatic coating apparatus. Such a paint was mixed with 6.2% (PWC) of aluminum flakes serving as a glittering material 7, 14.4% (PWC) of a perylene-based pigment serving as a color pigment 8, and 2.7% (PWC) of a quinacridone-based pigment. The ratio of the content of the perylene-based pigment to the total amount of the pigment 8 and the glittering material 7 was 61.8% by mass. No iron oxide-based pigment was contained. The following coating conditions were set: a discharge rate of 400 cc/min; a rotational speed of 20000 rpm; and a S/A flow rate of 420 Nl/min. The thickness of the coating 12 was 15 m.
[0093] Inner Plate Parts Nos. 3, 4, and 7 to 10 (Examples) and Inner Plate Parts Nos. 2, 5, 6, 11, and 12 (Comparative Examples)
[0094] Coatings 12 of inner plate parts Nos. 2 to 12 different from each other in compositions of a pigment and a glittering material were formed. The compositions etc. of the pigment and the glittering material of the inner plate parts Nos. 1 to 12 are shown in Table 3. Coating conditions other than the compositions of the pigment and the glittering material of the inner plate parts Nos. 2 to 12 are the same as those of the inner plate part No. 1. An iron oxide-based pigment A has an average particle size of equal to or greater than 50 nm and equal to or less than 60 nm, and the specific gravity of the iron oxide-based pigment A is 4.2. An iron oxide-based pigment B has an average particle size of equal to or greater than 10 nm and equal to or less than 20 nm, and the specific gravity of the iron oxide-based pigment B is 3.9. The perylene-based pigment has an average particle size of equal to or greater than 40 nm and equal to or less than 50 nm, and the specific gravity of the perylene-based pigment is 1.2.
TABLE-US-00004 TABLE 3 INNER PLATE PART No. 1 No. 2 No. 3 No. 4 No. 5 No. 6 No. 7 PIGMENT PERYLENE-BASED 14.4 12.7 12.4 10.6 7.5 12.3 PWC (%) DIKETOPYRROLOPYRROLE-BASED 1.2 QUINACRIDONE-BASED 2.7 2.2 2.2 1.6 4.3 1.0 CARBON-BASED 0.1 0.1 IRON OXIDE-BASED A 0.7 2.5 0.4 IRON OXIDE-BASED B 1.1 GLITTERING ALUMINUM 6.2 5.2 4.8 3.9 2.6 1.2 5.2 MATERIAL MICA 2.8 3.1 10.4 PWC (%) TOTAL OF PIGMENT AND GLITTERING MATERIAL PWC (%) 23.3 20.1 20.1 20.1 13.7 20.2 20.1 (PERYLENE-BASED/TOTAL OF PIGMENT AND GLITTERING MATERIAL) (%) 61.8 63.2 61.7 52.7 0.0 33.0 61.2 (IRON OXIDE-BASED/PERYLENE-BASED) (%) 5.6 10.4 3.3 COLORING HIGHLIGHT REFLECTANCE RATIO 0.85 0.76 0.60 0.78 0.30 0.70 0.73 PROPERTIES (INNER PLATE PART/OUTER PLATE) (PEAK WAVELENGTH) HIGHLIGHT REFLECTANCE RATIO 3.58 3.26 4.02 5.03 3.06 9.10 3.37 (INNER PLATE PART/OUTER PLATE) (COMPLEMENTARY WAVELENGTH RANGE) FACE REFLECTANCE RATIO 1.04 1.01 1.22 0.93 1.00 0.70 1.11 (INNER PLATE PART/OUTER PLATE) (PEAK WAVELENGTH) SHADE REFLECTANCE RATIO 1.23 1.23 1.64 1.07 2.15 0.80 1.17 (INNER PLATE PART/OUTER PLATE) (PEAK WAVELENGTH) VISUAL EVALUATION X X COATING AMOUNT OF WORN-OUT COATING (m) 2.5 1.8 1.3 1.5 0.9 0.9 1.6 STRENGTH OVERALL EVALUATION X X X INNER PLATE PART No. 8 No. 9 No. 10 No. 11 No. 12 PIGMENT PERYLENE-BASED 12.0 11.2 10.7 9.7 9.2 PWC (%) DIKETOPYRROLOPYRROLE-BASED QUINACRIDONE-BASED CARBON-BASED IRON OXIDE-BASED A 0.7 1.5 2.0 3.0 3.5 IRON OXIDE-BASED B GLITTERING ALUMINUM 5.2 5.2 5.2 5.2 5.2 MATERIAL MICA PWC (%) TOTAL OF PIGMENT AND GLITTERING MATERIAL PWC (%) 20.1 20.1 20.1 20.1 20.1 (PERYLENE-BASED/TOTAL OF PIGMENT AND GLITTERING MATERIAL) (%) 59.7 55.7 53.2 48.3 45.8 (IRON OXIDE-BASED/PERYLENE-BASED) (%) 5.8 13.4 18.7 30.9 38.0 COLORING HIGHLIGHT REFLECTANCE RATIO 0.65 0.56 0.52 0.47 0.36 PROPERTIES (INNER PLATE PART/OUTER PLATE) (PEAK WAVELENGTH) HIGHLIGHT REFLECTANCE RATIO 3.72 3.98 3.69 3.30 2.58 (INNER PLATE PART/OUTER PLATE) (COMPLEMENTARY WAVELENGTH RANGE) FACE REFLECTANCE RATIO 1.10 1.10 1.11 1.16 1.22 (INNER PLATE PART/OUTER PLATE) (PEAK WAVELENGTH) SHADE REFLECTANCE RATIO 1.53 1.78 1.88 2.09 2.12 (INNER PLATE PART/OUTER PLATE) (PEAK WAVELENGTH) VISUAL EVALUATION X COATING AMOUNT OF WORN-OUT COATING (m) 1.3 1.1 1.0 0.8 0.7 STRENGTH OVERALL EVALUATION X
[0095] Evaluation on Coloring Properties
[0096] For each sample, highlight reflectance R.sup.IH(P), shade reflectance R.sup.IS(P), and face reflectance R.sup.IF(P) at the peak wavelength of a particular color and average highlight reflectance R.sup.IH(OA) in a complementary wavelength range were measured. Moreover, the followings were obtained: the ratio (R.sup.IH(P)/R.sup.OH(P)) of the highlight reflectance of each of the inner plate parts Nos. 1 to 12 at the peak wavelength of the particular color to the highlight reflectance of the outer plate No. 1 at the peak wavelength of the particular color; the ratio R.sup.IH(OA)/R.sup.OH(OA)) of the average highlight reflectance of each of the inner plate parts Nos. 1 to 12 in the complementary wavelength range to the average highlight reflectance of the outer plate No. 1 in the complementary wavelength range; the ratio (R.sup.IF(P)/R.sup.OF(P)) of the face reflectance of each of the inner plate parts Nos. 1 to 12 at the peak wavelength of the particular color to the face reflectance of the outer plate No. 1 at the peak wavelength of the particular color; and the ratio (R.sup.IS(P)/R.sup.OS(P)) of the shade reflectance of each of the inner plate parts Nos. 1 to 12 at the peak wavelength of the particular color to the shade reflectance of the outer plate No. 1 at the peak wavelength of the particular color. Further, the coloring properties of each sample were visually evaluated. The reflectance was measured using Gonio-Spectrophotometric Color Measurement System GCMS-4 manufactured by Murakami Color Research Laboratory Co., Ltd. A measurement wavelength range was 400 to 700 nm.
[0097]
[0098] The criteria for visual evaluation are as follows.
[0099] Criteria for Visual Evaluation on Coloring Properties
[0100] White Circle: No Sense of Discomfort at Inner Plate Part Coating Color as compared to Outer Plate Coating Color
[0101] White Triangle: Slight Sense of Discomfort at Inner Plate Part Coating Color as compared to Outer Plate Coating Color
[0102] Cross Mark: Sense of Discomfort at Inner Plate Part Coating Color as compared to Outer Plate Coating Color
[0103] Evaluation on Coating Strength
[0104] The coating strength of each of the inner plate parts Nos. 1 to 12 was evaluated by an abrasion test using a JSPS-type rubbing tester. That is, a sheet of abrasive paper having a mesh count of #1000 and having an area of 2020 mm was used as a friction element, and the amount of worn-out coating was measured by a film thickness meter when the friction element has horizontally reciprocated on a coating surface of the inner plate part under the following conditions: a load was 200 g; a moving distance per reciprocation was 240 mm; the number of reciprocations per minute was 30; and the total number of reciprocations was 300. The amount of worn-out coating every 100 reciprocations was obtained. The number of measurement points was 12. The coating strength was evaluated based on the amount of worn-out coating.
[0105] Measurement and Evaluation Results
[0106] Table 3 shows the reflectance ratio, the visual evaluation results, the amount of worn-out coating, and the overall evaluation results. Criteria for overall evaluation are as follows.
[0107] Double Circle: Excellent Coloring Properties and Coating Strength
[0108] White Circle: Favorable Coloring Properties and Coating Strength
[0109] White Triangle: Poor Coloring Properties or Coating Strength
[0110] Cross Mark: Inferior Coloring Properties or Coating Strength
[0111]
[0112] In the example inner plate parts Nos. 3, 4, and 7 to 10 having a perylene-based pigment content of equal to or higher than 10% and equal to or lower than 14% in units of PWC (i.e., the ratio of the content of the perylene-based pigment to the total amount of the pigment and the glittering material is equal to or higher than 50% by mass), the highlight reflectance ratio at the peak wavelength of the particular color is equal to or higher than 0.5 and equal to or lower than 1.0. According to Table 3, in the example inner plate parts Nos. 3, 4, and 7 to 10, the average highlight reflectance ratio (R.sup.IH(OA)/R.sup.OH(OA)) in the complementary wavelength range is equal to or higher than 1.0 and equal to or lower than 6.0. That is, as in the outer plate No. 1, the example inner plate parts Nos. 3, 4, and 7 to 10 is more likely to reflect red light of visible light (400 to 700 nm), and is less likely to reflect light other than red light. Thus, there is almost no sense of discomfort at the color tone of the inner plate part as compared to that of the outer plate.
[0113] According to Table 3, there is almost no face reflectance difference and no shade reflectance difference between each of the example inner plate parts Nos. 3, 4, and 7 to 10 and the outer plate No. 1 (0.7Face Reflectance Ratio1.3 and 1.0Shade Reflectance Ratio2.0). This shows that there is no sense of discomfort at the color tone of the inner plate part.
[0114]
[0115]
DESCRIPTION OF REFERENCE CHARACTERS
[0116] 1 Outer Plate [0117] 2 Multilayer Coating [0118] 3 Electrodeposited Coating [0119] 4 Metallic Base Coating [0120] 5 Color-Clear Coating [0121] 6 Top Clear Coating [0122] 7 Glittering Material [0123] 8 Pigment [0124] 9 Intermediate Coating [0125] 11 Inner Plate Part [0126] 12 Coating