Infrared transmitting products
A cover for infrared detection devices with a base material and red light absorbing layer addresses the visibility of red light in infrared systems, improving driver comfort and vehicle aesthetics while maintaining detection accuracy.
Patent Information
- Application Number
- JP2021077267
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-04-30
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2041-04-30
AI Technical Summary
Infrared transparent products, such as those used in driver monitoring systems, suffer from visible red light emission that can psychologically disturb drivers and impair vehicle interior design due to the presence of light-emitting diodes, which emit infrared light containing red light visible through semi-transparent parts.
A cover for infrared detection devices that includes a base material absorbing visible light and a red light absorbing layer on its rear surface to prevent red light transmission in the wavelength range of 700 nm to 900 nm, while maintaining infrared transparency.
The solution effectively prevents red light from being visible through the cover, reducing driver awareness of the monitoring system and enhancing vehicle interior design by absorbing visible light and ensuring accurate infrared detection.
Smart Images

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Figure 0007735683000003 
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Abstract
Description
[Technical Field]
[0001] The present invention relates to infrared transparent products. [Background technology]
[0002] In recent years, vehicles equipped with driver monitoring systems have been proposed. Driver monitoring systems use an infrared camera mounted inside the vehicle to capture images of the driver and analyze the captured images to detect the driver's eye movements and facial orientation. Based on the detected eye movements and facial orientation, the system monitors whether the driver is looking away from the road or falling asleep while driving.
[0003] Patent Document 1 discloses a driver assistance module (hereinafter referred to as assistance module) that constitutes such a driver monitoring system. In this assistance module, a light-emitting diode that emits infrared light toward the driver is provided on a spoke of the steering wheel of the automobile. This assistance module has an outer wall that covers the light-emitting diode. This outer wall has a semi-transparent portion that allows infrared light to pass through.
[0004] The light-emitting diodes illuminate the driver with infrared light, thereby improving the clarity of the images captured by the infrared camera. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Special Publication No. 2018-502003 Summary of the Invention [Problem to be solved by the invention]
[0006] Infrared rays are electromagnetic waves with a wavelength of 700 nm to 1 mm. The infrared rays emitted from the light-emitting diodes contain red light in the wavelength range of 700 nm to 900 nm. Therefore, in the assistance module described in Patent Document 1, the red light contained in the infrared rays emitted from the light-emitting diodes is visible to the driver through the semi-transparent parts of the exterior wall. As a result, the driver is made aware of the presence of the assistance module containing the light-emitting diodes, which may cause the driver to feel psychologically repulsed by the idea that they are being monitored by an infrared camera.
[0007] Furthermore, the red glow of the translucent portion may impair the design of the interior part of the vehicle, and thus the marketability of the vehicle. Furthermore, these problems are not limited to infrared-transparent products used in systems for monitoring vehicle drivers, but commonly occur in infrared-transparent products that cover the infrared irradiating portion of an infrared detection device and have a main body portion that is infrared-transparent. [Means for solving the problem]
[0008] The infrared-transmitting product for solving the above problems includes a main body that covers both an infrared emitting section and a light receiving section of an infrared detecting device and is transparent to infrared light. The main body includes a base that absorbs visible light, and a red light absorbing layer that is provided on the rear surface of the base in the direction of propagation of infrared light from the emitting section and that absorbs red light in the wavelength region of 700 nm to 900 nm.
[0009] According to this configuration, both the irradiating unit and the light receiving unit are covered by the main body. The main body is composed of a base material and a red light absorbing layer. Therefore, visible light is absorbed by the base material, making the irradiating unit and the light receiving unit less visible. Furthermore, red light in the wavelength range of 700 nm to 900 nm is absorbed by the red light absorbing layer, making it possible to prevent red light contained in infrared light irradiated from the irradiating unit from being visible through the main body. Therefore, it is possible to prevent red light from being visible through the main body.
[0010] In the infrared transmitting product, it is preferable that the light transmittance in the wavelength range of the red light absorbing layer is 10% or less. According to this configuration, it is possible to effectively prevent red light contained in the infrared light emitted from the irradiating unit from being visible through the main body unit.
[0011] In the infrared transmitting product, the red light absorbing layer preferably has a light transmittance of 70% or more in the wavelength region of 900 nm to 1700 nm. According to this configuration, it is possible to ensure the accuracy of infrared detection by the infrared detection device while preventing red light contained in the infrared rays irradiated from the irradiating unit from being visible through the main body unit.
[0012] In the above-mentioned infrared transmissive product, the substrate preferably comprises a substrate body made of a transparent resin, and a visible light absorbing layer provided on the rear surface of the substrate body and absorbing visible light.
[0013] According to this configuration, the substrate is composed of the substrate body and the visible light absorbing layer, which allows for a reduction in the amount of material used compared to when a material that absorbs visible light is blended into the entire substrate.
[0014] In the infrared transmissive product, it is preferable that the red light absorbing layer is provided on the rear surface of the base material in a portion in front of the irradiating section, but not in front of the light receiving section.
[0015] According to this configuration, the red light absorbing layer is provided on the rear surface of the base material in a portion in front of the irradiation unit, which makes it possible to prevent red light contained in infrared rays irradiated from the irradiation unit from being visible through the main body.
[0016] Furthermore, the red light absorbing layer is not provided on the rear surface of the base material in the area in front of the light receiving section, which prevents infrared rays traveling toward the light receiving section from being absorbed as they pass through the main body, thereby preventing a decrease in the detection accuracy of the infrared detection device.
[0017] Furthermore, the amount of material used for the red light absorbing layer can be reduced compared to when the red light absorbing layer is provided on the entire rear surface of the base material. In the infrared transmitting product, the red light absorbing layer is preferably a coating layer formed by blending a dye that absorbs red light into a transparent resin.
[0018] According to this configuration, it is easy to form the red light absorbing layer partially on the rear surface of the base material. In the above-mentioned infrared-transmitting product, it is preferable that the infrared detection device is an infrared camera device that constitutes a system for monitoring the driver of a vehicle, the irradiation unit irradiates infrared rays toward the driver to illuminate the driver, the light-receiving unit receives infrared rays from the driver, and the main body unit is a cover that covers the irradiation unit and the light-receiving unit between the driver and the irradiation unit and the light-receiving unit.
[0019] This configuration can reduce the visibility of red light through the main body, thereby reducing the driver's awareness of the presence of the infrared camera device. It also improves the design of vehicle interior parts, including the cover.
[0020] An infrared-transmitting product for solving the above problems includes a main body that covers an infrared irradiating section of an infrared detecting device and is transparent to infrared light, the main body including a base that absorbs visible light, and a red light absorbing layer that is provided on the rear surface of the base in the direction of travel of the infrared light from the irradiating section and that suppresses transmission of red light in the wavelength region of 700 nm to 900 nm.
[0021] According to this configuration, the irradiating portion is covered by the main body portion. The main body portion is composed of a base material and a red light absorbing layer. Therefore, visible light is absorbed by the base material, making the irradiating portion less visible. Furthermore, the red light absorbing layer suppresses transmission of red light in the wavelength range of 700 nm to 900 nm, thereby preventing red light contained in infrared light irradiated from the irradiating portion from being visible through the main body portion. Therefore, it is possible to prevent red light from being visible through the main body portion. [Effects of the Invention]
[0022] According to the present invention, it is possible to prevent red light from being visible through the main body portion. [Brief explanation of the drawings]
[0023] [Figure 1] 1 is a side view showing a driver seated in a driver's seat of a vehicle and gripping a steering wheel. [Figure 2] Front view of a steering wheel. [Figure 3] FIG. 4 is an enlarged front view showing the steering wheel cover in the center. [Figure 4] Cross-sectional view taken along line 4-4 in Figure 3. [Figure 5] 10 is a graph showing the relationship between wavelength and light transmittance of a cover. DETAILED DESCRIPTION OF THE INVENTION
[0024] Hereinafter, one embodiment of an infrared transmitting product will be described with reference to FIGS. In this embodiment, the infrared-transmitting product is embodied as a cover 10 for an infrared camera device 90 mounted on the steering wheel of a vehicle. The infrared camera device 90 constitutes a system for monitoring a driver D of the vehicle.
[0025] As shown in FIG. 1, a steering wheel 81 constituting a steering device is provided in front of a driver's seat 80 of a vehicle. As shown in FIG. 2, the steering wheel 81 includes a ring portion 82, a pad portion 83, and spoke portions 84.
[0026] The ring portion 82 is a portion that is gripped by the driver D and rotated. The pad portion 83 is disposed in a space surrounded by the ring portion 82. The spoke portions 84 are provided between the ring portion 82 and the pad portion 83 at one or more locations (three locations in FIG. 2) around the axis of the ring portion 82.
[0027] The steering wheel 81 is provided with an airbag device 85. The pad portion 83 constitutes a part of the airbag device 85. The pad portion 83 has a through hole 83a formed in the center thereof.
[0028] As shown in FIGS. 3 and 4, an infrared emitting section 91 and a light receiving section 92 of an infrared camera device 90 are provided inside the pad section 83. A cover 10 having a main body 11 that closes the through-hole 83a and covers the light-emitting section 91 and the light-receiving section 92 is attached to the pad section 83 (see FIG. 2). The main body 11 is transparent to infrared rays. The cover 10 has an attachment section (not shown) for attaching the cover 10 to the through-hole 83a.
[0029] The main body 11 is located between the driver D and the irradiating unit 91 and the light receiving unit 92. The irradiating unit 91 irradiates the driver D with infrared rays to illuminate the driver D. The irradiating unit 91 is, for example, a light emitting diode (LED). The central wavelength of the infrared rays irradiated from the irradiating unit 91 is 940 nm.
[0030] The light receiving section 92 receives infrared rays from the driver D. The irradiating unit 91 and the light receiving unit 92 are arranged at an interval from each other. In this embodiment, the irradiating unit 91 and the light receiving unit 92 are arranged side by side in the vehicle width direction (the left-right direction in FIGS. 3 and 4).
[0031] In the following description, the front and rear in the direction of travel of infrared rays from the irradiating unit 91 will simply be referred to as the front and rear. As shown in FIG. 4, the main body 11 includes a base material 20 that absorbs visible light, and a red light absorbing layer 30 that is provided on the rear surface of the base material 20 and absorbs red light in the wavelength region of 700 nm to 900 nm.
[0032] The substrate 20 includes a substrate body 21 made of a transparent resin, and a visible light absorbing layer 22 provided on the rear surface of the substrate body 21 and absorbing visible light. Examples of transparent resins that form the substrate body 21 include polycarbonate, polymethyl methacrylate, cycloolefin polymer, and resin glass.
[0033] <Visible light absorbing layer 22> The visible light absorbing layer 22 is provided over the entire rear surface of the substrate body 21 . The visible light absorbing layer 22 absorbs visible light and is transparent to infrared light.
[0034] The visible light absorbing layer 22 is composed of a black coating layer. The coating layer is formed by blending at least two types of dyes and pigments, each of which has infrared transparency and turns black when mixed, into a transparent resin. The visible light absorbing layer 22 may contain a curing agent as needed.
[0035] The transparent resin mainly contains at least one selected from the group consisting of epoxy resin, silicone resin, urethane, urea resin, phenolic resin, polyethylene, polypropylene, polyethylene terephthalate, vinyl chloride, polystyrene, acrylonitrile butadiene styrene copolymer, acrylic resin, polyamide, polyimide, polycarbonate, and melamine resin. Note that the "main component" refers to a component that affects the properties of the material, and the content of the component is usually 50% by mass or more of the entire material.
[0036] The curing agent is appropriately used depending on the material of the transparent resin. When a transparent resin containing an epoxy resin as a main component is used, examples of the curing agent include an acid anhydride curing agent and a phenolic curing agent. When a transparent resin containing a component other than an epoxy resin as a main component is used, the curing agent can be omitted.
[0037] Furthermore, as the curing agent, other curing agents can be used in addition to the acid anhydride curing agents and phenolic curing agents, depending on the purpose and application. Examples of such curing agents include amine curing agents, the acid anhydride curing agents partially esterified with alcohol, and carboxylic acid curing agents such as hexahydrophthalic acid, tetrahydrophthalic acid, and methylhexahydrophthalic acid. These may be used alone or in combination of two or more, and may also be used in combination with the acid anhydride curing agents and phenolic curing agents.
[0038] The dyes and pigments used are selected from the group consisting of the following dyes and all the following pigments that can be used as color pigments. Examples of dyes include azo dyes, anthraquinone dyes, indigoid dyes, carbonium dyes, quinoneimine dyes, quinoline dyes, chrome dyes, threne dyes, triphenylmethane dyes, phthalocyanine dyes, procion dyes, methine dyes, nitro dyes, nitroso dyes, benzoquinone dyes, naphthoquinone dyes, naphthalimide dyes, verinone dyes, and Remazol dyes.
[0039] Examples of pigments include titanium dioxide, zinc oxide, iron oxide, calcined pigments, isoindolinone, isoin, doline, azomethine, anthraquinone, anthrone, xanthene, diketopyrrolopyrrole, perinone, perylene, indigoid, quinacridone, dioxazine, and phthalocyanine. Of these, oil-soluble dyes and pigments are preferred in order to easily achieve uniform dispersion in the visible light absorption layer 22.
[0040] Two or more dyes and pigments that satisfy the following conditions are selected from the above dyes and pigments and used. · A color that is not black when used alone, but becomes black when mixed. Black is a color that absorbs and blocks all colors without reflecting light.
[0041] Each dye or pigment has the property of not being able to absorb visible light in a specific region that is different from each other. · Visible light that cannot be absorbed by one molecule alone can be absorbed by mixing molecules together.
[0042] Specifically, dyes and pigments of complementary colors are selected. For example, a combination of a purple dye and a green dye and pigment can be used. A purple dye and pigment can be obtained by mixing a red dye and a blue dye and pigment. A green dye and pigment can be obtained by mixing a yellow dye and a blue dye and pigment.
[0043] When a curing agent is used, a curing accelerator may be used in combination. Furthermore, for the purpose of complementing the infrared transmittance property, etc., an antioxidant, a deterioration inhibitor, a modifying agent, a coupling agent, a defoaming agent, a leveling agent, a mold release agent, etc. may be used as appropriate.
[0044] The visible light absorbing layer 22 has a thickness of 5 μm to 50 μm. The visible light absorbing layer 22 contains 50 to 150 parts by mass of dyes and pigments in total, relative to 100 parts by mass of transparent resin. The visible light absorption layer 22 configured as above has a light transmittance of 10% or less in the wavelength range of 400 nm to 600 nm, and 70% or more in the wavelength range of 800 nm to 1700 nm. Note that the light transmittance here is an average value in the above wavelength range.
[0045] <Red light absorbing layer 30> The red light absorbing layer 30 is provided on the rear surface of the substrate 20 , that is, on the rear surface of the visible light absorbing layer 22 , in a portion in front of the irradiating section 91 but not in a portion in front of the light receiving section 92 .
[0046] The red light absorbing layer 30 is a coating layer formed by blending a dye that absorbs red light into a transparent resin. A curing agent may be used in the red light absorbing layer 30 as needed. As the transparent resin and hardener, materials similar to the transparent resin and hardener constituting the visible light absorbing layer 22 can be used.
[0047] The dye is a near-infrared absorbing pigment. Its chemical name is 1-{2,2-bis[4-(diethylamino)phenyl]vinyl}-3,3-bis[4-(diethylamino)phenyl]prop-2-en-1-ylium p-toluenesulfonate.
[0048] The red light absorbing layer 30 has a thickness of 10 μm to 100 μm. The red light absorbing layer 30 contains 3.0 to 10.0 parts by mass of dye in total, relative to 100 parts by mass of transparent resin.
[0049] The red light absorbing layer 30 configured as above has a light transmittance of 10% or less in the wavelength range of 700 nm to 900 nm. Also, the light transmittance of the red light absorbing layer 30 in the wavelength range of 900 nm to 1700 nm is 70% or more. Note that the light transmittance here is an average value in the above wavelength range.
[0050] <Example> Next, with reference to Table 1, examples of the red light absorbing layer 30 will be described.
[0051] [Table 1] In this embodiment, condition 1 is that the light transmittance at a wavelength of 900 nm is 10% or less. Condition 2 is that the light transmittance at an infrared wavelength of 940 nm is 70% or more.
[0052] In Table 1, if both Condition 1 and Condition 2 are met, it is marked as "〇", if only Condition 1 is met it is marked as "△1", and if only Condition 2 is met it is marked as "△2". Also, if neither Condition 1 nor Condition 2 is met, it is marked as "×".
[0053] As shown in Table 1, when the dye loading in the red light absorbing layer 30 (hereinafter simply referred to as the dye loading) was 1.0%, the coating layer thickness of 15 μm to 80 μm satisfied only condition 2 (△2). Also, when the coating layer thickness was 85 μm, both conditions 1 and 2 were satisfied (◯).
[0054] When the dye addition amount was 2.0%, only condition 2 was met when the coating layer thickness was 15 μm to 20 μm (△2). When the coating layer thickness was 30 μm to 60 μm, both conditions 1 and 2 were met (◯). When the coating layer thickness was 70 μm to 85 μm, only condition 1 was met (△1).
[0055] When the dye content was 3.0%, both conditions 1 and 2 were met when the coating layer thickness was 15 μm to 40 μm (◯). When the coating layer thickness was 50 μm to 85 μm, only condition 1 was met (△1).
[0056] When the dye addition amount was 3.5% or 4.0%, the dye did not dissolve and a paint could not be formed. Next, the operation of this embodiment will be described.
[0057] 5, the relationship between the wavelength of light and the light transmittance of the cover 10 of this embodiment is shown by a solid line. The relationship between the wavelength of light and the light transmittance of a cover of a comparative example is shown by a two-dot chain line. The cover of the comparative example includes only the substrate 20 and does not include the red light absorbing layer 30.
[0058] 5, in the case of the cover 10 of this embodiment, visible light is absorbed by the base material 20. This makes it difficult to see the irradiating portion 91 and the light receiving portion 92. This effect also applies to the cover of the comparative example.
[0059] However, in the case of the cover 10 of this embodiment, red light in the wavelength region of 700 nm to 900 nm is absorbed by the red light absorption layer 30. This makes it possible to prevent the red light contained in the infrared light irradiated from the irradiating unit 91 from being visible through the main body unit 11.
[0060] Next, the effects of this embodiment will be described. (1) The cover 10 includes a main body 11 that is transparent to infrared rays. The main body 11 includes a base material 20 that absorbs visible light, and a red light absorbing layer 30 that is provided on the rear surface of the base material 20 in the direction of travel of infrared rays from the irradiation unit 91 and that absorbs red light in the wavelength region of 700 nm to 900 nm.
[0061] According to this configuration, the above-mentioned effect is achieved, and therefore red light can be prevented from being visible through the main body 11. (2) The red light absorbing layer 30 has a light transmittance of 10% or less in the wavelength region of 700 nm to 900 nm.
[0062] According to this configuration, it is possible to effectively prevent red light contained in the infrared light emitted from the irradiating unit 91 from being visible through the main body unit 11. (3) The red light absorbing layer 30 has a light transmittance of 70% or more in the wavelength region of 900 nm to 1700 nm.
[0063] According to this configuration, it is possible to prevent red light contained in the infrared rays emitted from the irradiating unit 91 from being visible through the main body unit 11, while ensuring the accuracy of infrared detection by the infrared camera device 90.
[0064] (4) The substrate 20 includes a substrate body 21 made of a transparent resin and a visible light absorbing layer 22 provided on the rear surface of the substrate body 21 and absorbing visible light. According to this configuration, the amount of material used can be reduced compared to when the entire substrate 20 is blended with a material that absorbs visible light.
[0065] (5) The red light absorbing layer 30 is provided on the rear surface of the substrate 20 in a portion in front of the irradiating section 91 but is not provided on a portion in front of the light receiving section 92 . According to this configuration, the red light absorbing layer 30 is provided on the rear surface of the base material 20 in a portion in front of the irradiation unit 91. This makes it possible to prevent red light contained in the infrared light irradiated from the irradiation unit 91 from being visible through the main body 11.
[0066] Furthermore, the red light absorbing layer 30 is not provided on the rear surface of the base material 20 in a portion in front of the light receiving unit 92. This prevents infrared rays heading toward the light receiving unit 92 from being absorbed when passing through the main body 11. This prevents a decrease in the detection accuracy of the infrared camera device 90.
[0067] Furthermore, compared to when the red light absorbing layer 30 is provided on the entire rear surface of the substrate 20, the amount of material used for the red light absorbing layer 30 can be reduced. (6) The red light absorbing layer 30 is a coating layer made of a transparent resin containing a dye that absorbs red light.
[0068] With this configuration, it is easy to form the red light absorbing layer 30 partially on the rear surface of the substrate 20 . (7) The infrared detection device is an infrared camera device 90 that constitutes a system for monitoring a driver D of a vehicle. The irradiation unit 91 irradiates infrared rays toward the driver D to illuminate the driver D. The light receiving unit 92 receives infrared rays from the driver D. The main body unit 11 constitutes a cover 10 that covers the irradiation unit 91 and the light receiving unit 92 between the driver D and the irradiation unit 91 and the light receiving unit 92.
[0069] This configuration can prevent the red light from being visible through the main body 11, thereby preventing the driver from noticing the presence of the infrared camera device 90. In addition, the design of the interior parts of the vehicle, including the cover 10, can be improved.
[0070] <Modification> This embodiment can be modified as follows: This embodiment and the following modifications can be combined and implemented within the scope of technical compatibility.
[0071] The red light absorbing layer 30 is not limited to a coating layer, and may be made of a sheet material. In this case, the sheet material may be adhered to the rear surface of the substrate 20. Even in this case, the same effects as the above-mentioned effects (1) to (5) and (7) can be achieved.
[0072] The red light absorbing layer 30 may be provided on the entire rear surface of the substrate 20. Even in this case, the same effects as the above-mentioned effects (1) to (4), (6), and (7) can be achieved.
[0073] The substrate 20 is not limited to one including both the substrate body 21 and the visible light absorbing layer 22. That is, the visible light absorbing layer 22 may be omitted, and the entire substrate body may absorb visible light.
[0074] As long as red light can be prevented from being visible through the main body 11, the light transmittance of the red light absorption layer 30 in the wavelength region of 700 nm to 900 nm may be 10% or more.
[0075] As long as the detection accuracy required for the infrared camera device 90 can be ensured, the light transmittance of the red light absorption layer 30 in the wavelength region of 900 nm to 1700 nm may be less than 70%.
[0076] The irradiating unit 91 and the light receiving unit 92 of the infrared camera device 90 are not limited to being provided inside the pad portion 83 of the steering wheel 81, but may be provided outside the pad portion 83. The irradiating unit 91 and the light receiving unit 92 of the infrared camera device 90 may also be provided on the instrument panel of the vehicle. In this case, the cover 10 also constitutes part of the instrument panel.
[0077] The infrared-transmitting product according to the present invention is not limited to the cover 10 that covers the emitting unit 91 and the receiving unit 92 of the infrared camera device 90 that constitutes a system for monitoring the vehicle driver D. It can also be embodied as, for example, a cover that covers the emitting unit and the receiving unit of an infrared detection device that is mounted on a vehicle to detect the situation around the vehicle.
[0078] The infrared transparent product according to the present invention is not limited to one that covers both the irradiating section and the light receiving section of the infrared detection device, but may be one that covers at least the irradiating section and does not cover the light receiving section. In this case, the light receiving section may be covered by another infrared transparent product that does not have a red light absorbing layer. [Explanation of symbols]
[0079] 10...Cover (infrared transparent product) 11...Main body 20...Base material 21...Base material body 22...Visible light absorbing layer 30...Red light absorbing layer 80...Driver's seat 81...Steering wheel 82...Ring section 83...Pad section 83a...Through hole 84…Spoke section 85...Airbag device 90...Infrared camera device 91...Irradiation unit 92...Light receiving section
Claims
1. An infrared transparent product including a main body portion that covers both an infrared emitting portion and a light receiving portion of an infrared detection device and has infrared transparency, The main body portion includes a base material that absorbs visible light; a red light absorbing layer that is provided on a rear surface of the substrate in a traveling direction of the infrared rays from the irradiation unit and absorbs red light in a wavelength region of 700 nm to 900 nm; the red light absorbing layer is provided on the rear surface of the base material in a portion in front of the irradiating section but not in a portion in front of the light receiving section; Infrared transparent product.
2. the red light absorbing layer has a light transmittance in the wavelength region of 10% or less; 10. The infrared transparent product of claim 1.
3. the red light absorbing layer has a light transmittance of 70% or more in the wavelength region of 900 nm to 1700 nm; 3. The infrared-transmitting product according to claim 1 or claim 2.
4. The substrate is a substrate body made of a transparent resin; A visible light absorbing layer is provided on the rear surface of the substrate body and absorbs visible light.
4. An infrared-transmitting product according to any one of claims 1 to 3.
5. The red light absorbing layer is a coating layer formed by blending the dye that absorbs red light into a transparent resin.
5. An infrared-transmitting product according to any one of claims 1 to 4.
6. the infrared detection device is an infrared camera device that constitutes a system for monitoring a vehicle driver, the illumination unit illuminates the driver with infrared rays, the light receiving unit receives infrared rays from the driver, The main body portion constitutes a cover that covers the irradiation unit and the light receiving unit between the driver and the irradiation unit and the light receiving unit.
6. An infrared transparent product according to any one of claims 1 to 5.
Citation Information
Patent Citations
Infrared transmission filter and imaging apparatus using the same
JP2012137728A
vehicle steering assist module
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Optical camouflage filters
US20190025481A1
Infrared transmission cover
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