IP Library › Granted Patent US 12,730,996
Granted Patent B2
US 12,730,996 · App. 19/169,345 · Granted Sep 8, 2026

Code formation method and information code

Inventors: Shuichi Matsubara (Kariya-city, JP); Tatsuya Okabe (Kariya-city, JP); Shinichi Kikuchi (Kariya-city, JP); Mitsuo Okumura (Kariya-city, JP); Hiroyuki Sakakibara (Kariya-city, JP); Yuji Ito (Kariya-city, JP)
Assignee: DENSO CORPORATION
G06K7/12G06K15/1872G06K19/0614
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Quick Facts
Patent No.
US 12,730,996
App. No.
19/169,345
Granted
Sep 8, 2026
Kind
B2
Abstract

A code formation method for forming an information code on a target object is provided. The information code stores information with an array of a light area and a dark area. The code formation method includes forming an emissive layer by applying, to the target object, a coating material containing a reactive paint that emits light in response to invisible light, and irradiating a portion of the emissive layer corresponding to the dark area with laser light to reduce an emissive performance of the dark area to be lower than an emissive performance of the light area. The irradiating with the laser light includes irradiating with the laser light to make a transmittance for the invisible light in the portion corresponding to the dark area higher than a transmittance for the invisible light in a portion of the emissive layer corresponding to the light area.

Claims (58)

1 . A code formation method for forming an information code on a target object, the information code storing information with an array of a light area and a dark area, the code formation method comprising:

forming an emissive layer by applying, to the target object, a coating material containing a reactive paint that emits light in response to invisible light, the emissive layer including a forming area of the information code; and

irradiating a portion of the emissive layer corresponding to the dark area with laser light to reduce an emissive performance of the dark area to be lower than an emissive performance of the light area, wherein

the irradiating with the laser light includes irradiating with the laser light to make a transmittance for the invisible light in the portion of the emissive layer corresponding to the dark area higher than a transmittance for the invisible light in a portion of the emissive layer corresponding to the light area.

2 . The code formation method according to claim 1 , wherein

the irradiating with the laser light includes setting an output of the laser light to a value that does not discolor the emissive layer.

3 . The code formation method according to claim 1 , wherein

the emissive layer includes a non-irradiated area which is not irradiated with the laser light and an irradiated area which is irradiated with the laser light, and

the irradiating with the laser light includes setting an output of the laser light to a value that ensures a difference between a depth of the non-irradiated area and a depth of the irradiated area falls within a range 0 to 1.0 μm.

4 . The code formation method according to claim 1 , wherein

the emissive layer includes a non-irradiated area which is not irradiated with the laser light and an irradiated area which is irradiated with the laser light, and

the irradiating with the laser light includes setting an output of the laser light to a value that ensures a difference between a depth of the non-irradiated area and a depth of the irradiated area falls within a range 0 to 0.2 μm.

5 . The code formation method according to claim 1 , wherein

the irradiating with the laser light includes setting an output of the laser light to a value that reduces the emissive performance of the reactive paint.

6 . The code formation method according to claim 1 , wherein

a color strength is defined as a color value in a grayscale image of a captured image that captures the emissive layer, where the color strength of black is 1 and the color strength of white is 100,

the emissive layer includes a non-irradiated area which is not irradiated with the laser light and an irradiated area which is irradiated with the laser light,

a specified value is calculated by subtracting the color strength of the irradiated area from the color strength of the non-irradiated area, and

the irradiating with the laser light includes setting an output of the laser light to a value that makes the specified value equal to or greater than 30.

7 . The code formation method according to claim 1 , wherein

a color strength is defined as a color value in a grayscale image of a captured image that captures the emissive layer, where the color strength of black is 1 and the color strength of white is 100,

the emissive layer includes a non-irradiated area which is not irradiated with the laser light and an irradiated area which is irradiated with the laser light,

a specified value is calculated by subtracting the color strength of the irradiated area from the color strength of the non-irradiated area, and

the irradiating with the laser light includes setting an output of the laser light to a value that makes the specified value equal to or greater than 35.

8 . The code formation method according to claim 1 , wherein

the forming of the emissive layer includes the applying of the coating material and drying of the applied coating material, and

the applying of the coating material and the drying of the applied coating material are repeated multiple times.

9 . An information code that stores information with an array of a light area and a dark area, the information code comprising:

an emissive layer containing a reactive paint that emits light in response to an invisible light;

a strong emissive portion corresponding to the light area of the emissive layer and configured to emit light in response to the invisible light; and

a weak emissive portion corresponding to the dark area of the emissive layer, wherein

an emissive performance of the reactive paint in the weak emissive portion is lower than an emissive performance in the strong emissive portion,

wherein

the weak emissive portion includes the reactive paint.

10 . The information code according to claim 9 , wherein

an outer surface of the emissive layer is a reference surface, and

a difference in a depth from the reference surface between the strong emissive portion and the weak emissive portion falls within a range of 0 to 0.2 μm.

11 . The information code according to claim 9 , wherein

a color strength is defined as a color value in a grayscale image of a captured image that captures the emissive layer, where the color strength of black is 1 and the color strength of white is 100,

a specified value is calculated by subtracting the color strength of the weak emissive portion from the color strength of the strong emissive portion, and

the specified value is equal to or greater than 35.

12 . An information code that stores information with an array of a light area and a dark area, the information code comprising:

an emissive layer containing a reactive paint that emits light in response to an invisible light;

a strong emissive portion corresponding to the light area of the emissive layer and configured to emit light in response to the invisible light; and

a weak emissive portion corresponding to the dark area of the emissive layer, wherein

an emissive performance of the reactive paint in the weak emissive portion is lower than an emissive performance in the strong emissive portion,

wherein

an outer surface of the emissive layer is a reference surface, and

a difference in a depth from the reference surface between the strong emissive portion and the weak emissive portion falls within a range of 0 to 1.0 μm.

13 . An information code that stores information with an array of a light area and a dark area, the information code comprising:

an emissive layer containing a reactive paint that emits light in response to an invisible light;

a strong emissive portion corresponding to the light area of the emissive layer and configured to emit light in response to the invisible light; and

a weak emissive portion corresponding to the dark area of the emissive layer, wherein

an emissive performance of the reactive paint in the weak emissive portion is lower than an emissive performance in the strong emissive portion,

wherein

a color strength is defined as a color value in a grayscale image of a captured image that captures the emissive layer, where the color strength of black is 1 and the color strength of white is 100,

a specified value is calculated by subtracting the color strength of the weak emissive portion from the color strength of the strong emissive portion, and

the specified value is equal to or greater than 30.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2025
From: MATSUBARA, SHUICHI; OKABE, TATSUYA; KIKUCHI, SHINICHI; OKUMURA, MITSUO; SAKAKIBARA, HIROYUKI; ITO, YUJI
To: DENSO CORPORATION
Reel/Frame 070773/0946 →
Priority Claims (1)
JP 2022-162552 · Oct 7, 2022 · national
Continuity (2)
Continuation PCTJP2023033209 · Sep 12, 2023
Related Publication 20250232142A1 · Jul 17, 2025
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