EP4565423A1 - Near-infrared sensor glass cover - Google Patents

Near-infrared sensor glass cover

Info

Publication number
EP4565423A1
EP4565423A1 EP23797703.8A EP23797703A EP4565423A1 EP 4565423 A1 EP4565423 A1 EP 4565423A1 EP 23797703 A EP23797703 A EP 23797703A EP 4565423 A1 EP4565423 A1 EP 4565423A1
Authority
EP
European Patent Office
Prior art keywords
glass sheet
infrared sensor
wavelength range
glass
glass cover
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP23797703.8A
Other languages
German (de)
French (fr)
Inventor
Philippe Hocks
Jean Masson
Sacha REMACLE
Nabil SKHIRI GABBOUJ
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
AGC Glass Europe SA
Original Assignee
AGC Glass Europe SA
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by AGC Glass Europe SA filed Critical AGC Glass Europe SA
Publication of EP4565423A1 publication Critical patent/EP4565423A1/en
Withdrawn legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • B32B17/10Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin
    • B32B17/10005Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing
    • B32B17/10009Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing characterized by the number, the constitution or treatment of glass sheets
    • B32B17/10036Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing characterized by the number, the constitution or treatment of glass sheets comprising two outer glass sheets
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • B32B17/10Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin
    • B32B17/10005Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing
    • B32B17/10009Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing characterized by the number, the constitution or treatment of glass sheets
    • B32B17/10082Properties of the bulk of a glass sheet
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • B32B17/10Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin
    • B32B17/10005Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing
    • B32B17/10165Functional features of the laminated safety glass or glazing
    • B32B17/10247Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • B32B17/10Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin
    • B32B17/10005Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing
    • B32B17/10165Functional features of the laminated safety glass or glazing
    • B32B17/10247Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons
    • B32B17/10256Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons created by printing techniques
    • B32B17/10266Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons created by printing techniques on glass pane
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • B32B17/10Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin
    • B32B17/10005Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing
    • B32B17/10165Functional features of the laminated safety glass or glazing
    • B32B17/10247Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons
    • B32B17/10256Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons created by printing techniques
    • B32B17/10275Laminated safety glass or glazing containing decorations or patterns for aesthetic reasons created by printing techniques on interlayer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B17/00Layered products essentially comprising sheet glass, or glass, slag, or like fibres
    • B32B17/06Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
    • B32B17/10Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin
    • B32B17/10005Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of synthetic resin laminated safety glass or glazing
    • B32B17/10165Functional features of the laminated safety glass or glazing
    • B32B17/10431Specific parts for the modulation of light incorporated into the laminated safety glass or glazing
    • B32B17/1044Invariable transmission
    • B32B17/10449Wavelength selective transmission
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2307/00Properties of the layers or laminate
    • B32B2307/40Properties of the layers or laminate having particular optical properties
    • B32B2307/402Coloured
    • B32B2307/4023Coloured on the layer surface, e.g. ink
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B32LAYERED PRODUCTS
    • B32BLAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
    • B32B2451/00Decorative or ornamental articles
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S17/00Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
    • G01S17/88Lidar systems specially adapted for specific applications
    • G01S17/93Lidar systems specially adapted for specific applications for anti-collision purposes
    • G01S17/931Lidar systems specially adapted for specific applications for anti-collision purposes of land vehicles

Definitions

  • the present invention relates to the field of near-infrared sensor covers, more specifically to glass covers with a decorative element.
  • EP3300169, US6184842, WO2019130033 describe covers which are compatible for a radar system. These covers show the emblem of the vehicle manufacturer. The emblem is made so that it does not impair the functioning of the radar placed behind, while allowing increased visibility of the logo through metallic coating.
  • W02020208105 describes a radar cover showing an emblem which is also compatible with a camera.
  • the emblem is transparent for the radar, while the camera perceives signals through opening within the emblem.
  • Lidar is another type of sensor which is increasingly used in the automotive field.
  • Such lidar is usually placed on the bodywork of the vehicle, meaning such lidar pops out from the vehicle as a mushroom.
  • Such incorporation is not seen as aesthetical for vehicle manufacturer, and the tendency is to incorporate such lidar within the bodywork of vehicles, such as behind a window (as described in WO201 8178284) or behind an external trim element (as described in WO2018178286) of the vehicle.
  • the present invention concerns a glass cover for a near-infrared sensor.
  • the glass cover comprises at least one glass sheet having an internal face facing the nearinfrared sensor and an external face opposite to the internal face.
  • the glass sheet has an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor.
  • the glass cover further comprises a decorative element which is transparent in the operating wavelength range of the near-infrared sensor.
  • FIG. 1 illustrates a cover made of a monolithic glass according to the present invention.
  • FIG. 2a illustrates a laminated cover according to the present invention.
  • FIG. 2b shows the same laminated cover but with a coloured internal glass.
  • FIG. 3a illustrates an alternative laminated cover according to the present invention.
  • FIG. 3b shows the same laminated cover but with a coloured internal glass.
  • FIG. 4a illustrates another alternative laminated cover according to the present invention.
  • FIG. 4b shows the same laminated cover but with a coloured internal glass.
  • the present invention proposes a cover for a near-infrared sensor.
  • a nearinfrared sensor is a sensor whose operating wavelength range is situated in the nearinfrared wavelength range, meaning between 780nm and 1650nm. It encompasses lidar and near-infrared sensors.
  • Lidar is an acronym for “light detection and ranging”. It is sometimes called “laser scanning” or “3D scanning”. The technology uses laser beams to create a 3D-representation of the surveyed environment.
  • Operating wavelength of lidar compatible with the present invention is comprised between 780nm and 1650nm (usually referred to as near-infrared).
  • known operating wavelengths of currently produced lidars compatible with the present invention are 850nm, 905nm, 940nm, 1064nm, 1310nm, 1350nm, 1550nm, 1650nm.
  • An acceptable variance of 25nm around the nominal value of the wavelength may be considered, such that, for example, a wavelength range of 1525nm to 1575nm may be accepted around the nominal value of 1550nm.
  • the cover comprises at least one glass sheet, with an internal face facing the near-infrared sensor and an external face opposite to the internal face.
  • the glass sheet has a composition that is not particularly limited.
  • the glass sheet may be a soda- lime-silicate glass, an alumino-silicate glass, an alkali-free glass, a boro-silicate glass, ...
  • the glass sheet of the invention is made of a soda-lime glass or an alumino-silicate glass.
  • the glass sheet according to the invention may be a glass sheet obtained by a floating process, a drawing process, a rolling process or any other process known to manufacture a glass sheet starting from a molten glass composition.
  • the glass sheet is a float glass sheet.
  • float glass sheet is understood to mean a glass sheet formed by the float glass process, which consists in pouring the molten glass onto a bath of molten tin, under reducing conditions.
  • the glass sheet preferably has a thickness comprised between 0.5mm and 6mm, more preferably between 1 mm and 4mm. Usual thickness for such glass sheet is 1.6mm, 2.1 mm, 3.1 mm or 4mm.
  • the glass sheet has an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor, preferably less than 10m’ 1 , even more preferably less than 5m’ 1 .
  • the absorption coefficient is used in the wavelength range from 780nm to 1650nm.
  • the absorption coefficient is defined by the ratio between the absorbance and the optical path length traversed by electromagnetic radiation in a given environment. It is expressed in rrr 1 . It is therefore independent of the thickness of the material but it is function of the wavelength of the absorbed radiation and the chemical nature of the material.
  • the glass sheet having an absorption coefficient at the operating wavelength of near-infrared sensor of less than 15m’ 1 , preferably less than 10m’ 1 , even more preferably less than 5m’ 1 may be a soda-lime- silica glass, alumino-silicate, boro-silicate, ...
  • a glass composition compatible with the present invention comprises a total content expressed in weight percentages of glass:
  • a glass composition compatible with the present invention comprises in a content expressed as total weight of glass percentages: SiO 2 55 - 78%
  • the glass compatible with the present invention is made of soda-lime glass.
  • a glass composition compatible with the present invention comprises a content expressed as the total weight of glass percentages:
  • the glass may include other components, nature and adapted according to quantity of the desired effect.
  • the glass preferably has a composition which comprises a content expressed as the total weight of glass percentages:
  • the glass cover comprises a decorative element which is transparent in the operating wavelength range of the near-infrared sensor.
  • a decorative element can be a logo, an emblem of a vehicle manufacturer, a pattern, ...
  • the decorative element is printed on the internal face or the external face of the at least one glass sheet with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor.
  • the glass cover comprises an exterior glass sheet having an internal face facing the near-infrared sensor and an external face opposite to the internal face.
  • the exterior glass sheet has an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor.
  • the glass cover further comprises an interior glass sheet having an internal face facing the nearinfrared sensor and an external face opposite to the internal face.
  • the interior glass sheet has an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor.
  • the exterior glass sheet and the interior glass sheet are laminated with at least one laminating interlayer.
  • the at least one laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor.
  • the decorative element is printed on the internal face or the external face of the exterior glass sheet and/or on the internal face or the external face of the interior glass sheet and/or on the at least one laminating interlayer with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor.
  • the decorative element is coated on the internal face or the external face of the exterior glass sheet and/or on the internal face or the external face of the interior glass sheet with a coating which is transparent in the operating wavelength range of the near-infrared sensor.
  • the glass cover further comprises at least one diecut interlayer between the exterior glass sheet and the at least one laminating interlayer.
  • the at least one diecut interlayer is transparent in the operating wavelength range of the near-infrared sensor.
  • the at least one diecut interlayer has a diecut forming the decorative element.
  • the at least one laminating interlayer further comprises an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor corresponding to a zone of the diecut.
  • the decorative element is formed by the overlapping of several laminating interlayers.
  • the interior glass sheet may be further colored in the visible wavelength range. Such coloration may be done in the bulk, meaning the glass material itself is colored. Such coloration may also be done by a print layer or a coating on either internal or external faces. Such coloration may be done to render the interior glass sheet opaque to visible wavelength range in order to hide the near-infrared sensor placed behind.
  • the interior glass sheet may have a transmission in the visible wavelength range of less than 2%. The visible wavelength range is defined as from 380nm to 780nm.
  • the luminous transmittance represents the percentage of light flux emitted between wavelengths 380nm and 780nm which is transmitted through the cover.
  • the interior glass sheet is understood to have a luminous transmittance of less than 2%, preferably less than 1 %. It allows to hide the near-infrared sensor placed behind.
  • the interior glass sheet can be colored in the bulk, meaning that the material of the interior glass sheet itself is colored in the visible wavelength range (while still being transparent at the operating wavelength range of the near-infrared sensor).
  • the interior glass sheet could also be printed (with an ink or an enamel) or coated (for example through plasma vapor deposition process or any other process known by the skilled in the art) in order to render it opaque in the visible wavelength range.
  • the glass cover further comprises an area free of the decorative element.
  • Such area may be used in order for an optical system such as a camera to be placed behind the glass cover, in addition to the near-infrared sensor, while not impairing the field of view of the camera with the decorative element.
  • the glass cover further comprises a frame surrounding the glass cover.
  • Such frame is at least partially made of a plastic material and/or a metallic material.
  • the glass cover is bent.
  • the glass cover is a part of a windshield, backlite or sidelite of a vehicle, or part of an exterior trim element.
  • An exterior trim element includes bumper, window/door seal, pillar, wheel well, wheel arch, fender, headlight, mirror body and roof cover. Such exterior trim element can also be deployable, meaning it can pop out from the vehicle only when needed. Vehicle manufacturers use these exterior trim elements to add aesthetics, increase function, and add flexibility to the vehicle design.
  • the glass cover can further comprise an antireflection layer in the operating wavelength range of the near-infrared sensor.
  • an antireflection layer allows to decrease reflection, and therefore to increase the signal sent and/or received to/from the near-infrared sensor.
  • an antireflection layer may be a layer based on porous silica having a low refractive index or it may be composed of several layers (stack), in particular a stack of layers of dielectric material alternating layers having low and high refractive indexes and terminating in a layer having a low refractive index.
  • Such layer may be provided on any of the faces of the at least one glass sheet of the glass cover.
  • a textured glass sheet may be also used.
  • Etching or coating techniques may as well be used in order to avoid reflection.
  • the reflection of the treated surface would decrease from at least 1 % and preferably from at least 2% if both surfaces are coated, within the concerned wavelength range.
  • the antireflection layer may be a layer based on refractive index gradient layer deposited for example by ion implantation technique.
  • the glass cover may be coupled with a heating system that allows the glass cover to quickly defrost or defog when the external operating conditions are unfavorable.
  • a heating system can be composed of a network of conductive wires, conductive patch or alternatively a silverprint network directly applied on the glass surface where an adequate power supply can be applied.
  • the system can also comprise a temperature sensor for dynamically triggering the heating function in case of need.
  • the glass cover may be coated with a hydrophobic layer that prevents water droplets to aggregate onto the glass cover.
  • a hydrophobic layer that prevents water droplets to aggregate onto the glass cover.
  • Such coating allows to ensure proper sensor operation in case of rain (snow, frost) and/or in case of fog.
  • water repellant coating can be, for example, composed of thin molecular layers of fluoropolymers that reduces the surface energy and provides self-cleanability, anti-stain properties and improved moisture resistance among other effects.
  • suitable advantageous functionalities can be added to the glass sheet of the glass cover of the invention, in particular to provide supporting functions to further enhance the good operation of the near-infrared sensor.
  • Those supporting functions can be for example: the coupling with integrated detection functions for breakage, dirt, stain, min, ... or additional protection layers for preventing scratches, glare, stain, dirt, paint, ...
  • Dedicated filters could also be integrated for polarization, phase or spectral discrimination.
  • a glass cover (1 ) is placed in front of a near-infrared sensor (2).
  • the glass cover (1 ) comprises a glass sheet (10) having an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor (2).
  • a decorative element (3) is placed on the internal face of the glass sheet (10), meaning the face facing the near-infrared sensor (2).
  • such decorative element (3) could be placed on the external face of the glass sheet (10), meaning on the opposite face to the internal face.
  • the decorative element is transparent in the operating wavelength range of the near-infrared sensor (2).
  • Such decorative element (3) is printed on the glass sheet (10) with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2).
  • Such decorative element (3) can also be coated on the glass sheet (10) with a coating which is transparent in the operating wavelength range of the near-infrared sensor (2).
  • a glass cover (1 ) is placed in front of a near-infrared sensor (2).
  • the glass cover (1 ) comprises an external glass sheet (11 ) and an internal glass sheet (14). Both glass sheets (11 , 14) have an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2).
  • Both glass sheets (11 , 14) are laminated by a laminating interlayer (13). Such laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor (2).
  • a decorative element (3) is printed on the internal face of the external glass sheet (11 ) with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2). However, this decorative element (3) could also be printed on the external face of the external glass sheet (11 ), and/or on the internal face or the external face of the interior glass sheet (14) and/or on the laminating interlayer (13).
  • the decorative element (3) could also be coated on the internal face or the external face of the exterior glass sheet (11 ) and/or on the internal face or the external face of the interior glass sheet (14) with a coating which is transparent in the operating wavelength range of the near-infrared sensor (2).
  • Fig.2b shows the same embodiment as Fig.2a, except that the internal glass sheet (14) is opaque in the visible wavelength range. Such configuration allows to hide the near-infrared sensor (2).
  • a glass cover (1 ) is placed in front of a near-infrared sensor (2).
  • the glass cover (1 ) comprises an external glass sheet (11 ) and an internal glass sheet (14). Both glass sheets (11 , 14) have an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2).
  • Both glass sheets (11 , 14) are laminated by a laminating interlayer (13). Such laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor (2).
  • a further diecut interlayer (12) is placed between the exterior glass sheet (11 ) and the laminating interlayer (13).
  • This diecut interlayer (12) is transparent in the operating wavelength range of the near-infrared sensor (2).
  • This diecut interlayer (12) shows a decorative element (3) in the form of a diecut.
  • the diecut lets therefore see the laminating interlayer (13), seen from the outside (from the exterior glass sheet (11 )).
  • the laminating interlayer (13) can be chosen colored in the visible wavelength range in order to show the decorative element (3) in a specific colour.
  • laminating interlayer instead of a single laminating interlayer (13), several laminating interlayers can be used, for example to create specific visual effects in the visible wavelength range.
  • Fig.3b shows the same embodiment as Fig.3a, except that the internal glass sheet (14) is opaque in the visible wavelength range.
  • a glass cover (1 ) is placed in front of a near-infrared sensor (2).
  • the glass cover (1 ) comprises an external glass sheet (11 ) and an internal glass sheet (14). Both glass sheets (11 , 14) have an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2).
  • Both glass sheets (11 , 14) are laminated by a laminating interlayer (13). Such laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor (2).
  • a further diecut interlayer (12) is placed between the exterior glass sheet (11 ) and the laminating interlayer (13).
  • This diecut interlayer (12) is transparent in the operating wavelength range of the near-infrared sensor (2).
  • This diecut interlayer (12) shows a decorative element (3) in the form of a diecut.
  • the diecut lets therefore see the laminating interlayer (13), seen from the outside (from the exterior glass sheet (11 )).
  • the laminating interlayer (13) can be chosen colored in the visible wavelength range in order to show the decorative element (3) in a specific colour.
  • the laminating interlayer (13) further comprises an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2) corresponding to a zone of the diecut forming the decorative element (3). Such configuration allows for example for some part of the decorative element (3) being seen in another colour.
  • Fig.4b shows the same embodiment as Fig.4a, except that the internal glass sheet (14) is opaque in the visible wavelength range.

Landscapes

  • Photometry And Measurement Of Optical Pulse Characteristics (AREA)

Abstract

The present invention relates to a glass cover for a near-infrared sensor The glass cover comprises at least one glass sheet having an internal face facing the near-infrared sensor and an external face opposite to the internal face. The glass sheet has an absorption coefficient lower than 15m-1 in the operating wavelength range of the near-infrared sensor. The glass cover further comprises a decorative element which is transparent in the operating wavelength range of the near-infrared sensor.

Description

Near-infrared sensor glass cover
FIELD OF THE INVENTION
[0001] The present invention relates to the field of near-infrared sensor covers, more specifically to glass covers with a decorative element.
BACKGROUND OF THE INVENTION
[0002] Trend nowadays is to equip vehicles with increasing number of sensors. Optical cameras and radar are the most used sensors. While these sensors are becoming more and more important, especially for partly- of fully-automated driving, the tendency is to hide such sensors for aesthetical purpose.
[0003] EP3300169, US6184842, WO2019130033 describe covers which are compatible for a radar system. These covers show the emblem of the vehicle manufacturer. The emblem is made so that it does not impair the functioning of the radar placed behind, while allowing increased visibility of the logo through metallic coating.
[0004] W02020208105 describes a radar cover showing an emblem which is also compatible with a camera. The emblem is transparent for the radar, while the camera perceives signals through opening within the emblem.
[0005] Lidar is another type of sensor which is increasingly used in the automotive field. Such lidar is usually placed on the bodywork of the vehicle, meaning such lidar pops out from the vehicle as a mushroom. Such incorporation is not seen as aesthetical for vehicle manufacturer, and the tendency is to incorporate such lidar within the bodywork of vehicles, such as behind a window (as described in WO201 8178284) or behind an external trim element (as described in WO2018178286) of the vehicle.
[0006] However adding an emblem in front of such lidar based on the approaches used for the radar does not result into an efficient product. As a lidar is working at very different wavelength than a radar, solutions available for the radar does not function for the lidar.
[0007] There is therefore a need for a cover which would be compatible with a lidar and could further show the emblem of the vehicle manufacturer. i SUMMARY OF THE INVENTION
[0008] The present invention concerns a glass cover for a near-infrared sensor. The glass cover comprises at least one glass sheet having an internal face facing the nearinfrared sensor and an external face opposite to the internal face. The glass sheet has an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor. The glass cover further comprises a decorative element which is transparent in the operating wavelength range of the near-infrared sensor.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The invention will now be described further, byway of examples, with reference to the accompanying drawings, wherein like reference numerals refer to like elements in the various figures. These examples are provided by way of illustration and not of limitation. The drawings are a schematic representation and not true to scale. The drawings do not restrict the invention in any way. More advantages will be explained with examples.
[0010] FIG. 1 illustrates a cover made of a monolithic glass according to the present invention.
[0011] FIG. 2a illustrates a laminated cover according to the present invention. FIG. 2b shows the same laminated cover but with a coloured internal glass.
[0012] FIG. 3a illustrates an alternative laminated cover according to the present invention. FIG. 3b shows the same laminated cover but with a coloured internal glass.
[0013] FIG. 4a illustrates another alternative laminated cover according to the present invention. FIG. 4b shows the same laminated cover but with a coloured internal glass.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0014] The present invention will be described with respect to particular embodiments and with reference to certain drawings but the invention is not limited thereto but only by the claims.
[0015] While some embodiments described herein include some but not other features included in other embodiments, combinations of features of different embodiments are meant to be within the scope of the invention, and form different embodiments, as would be understood by those in the art. For example, in the following claims, any of the claimed embodiments can be used in any combination.
[0016] The present invention proposes a cover for a near-infrared sensor. A nearinfrared sensor is a sensor whose operating wavelength range is situated in the nearinfrared wavelength range, meaning between 780nm and 1650nm. It encompasses lidar and near-infrared sensors. Lidar is an acronym for “light detection and ranging”. It is sometimes called “laser scanning” or “3D scanning”. The technology uses laser beams to create a 3D-representation of the surveyed environment. Operating wavelength of lidar compatible with the present invention is comprised between 780nm and 1650nm (usually referred to as near-infrared). More specifically, known operating wavelengths of currently produced lidars compatible with the present invention are 850nm, 905nm, 940nm, 1064nm, 1310nm, 1350nm, 1550nm, 1650nm. An acceptable variance of 25nm around the nominal value of the wavelength may be considered, such that, for example, a wavelength range of 1525nm to 1575nm may be accepted around the nominal value of 1550nm.
[0017] The cover comprises at least one glass sheet, with an internal face facing the near-infrared sensor and an external face opposite to the internal face. The glass sheet has a composition that is not particularly limited. The glass sheet may be a soda- lime-silicate glass, an alumino-silicate glass, an alkali-free glass, a boro-silicate glass, ... Preferably, the glass sheet of the invention is made of a soda-lime glass or an alumino-silicate glass. The glass sheet according to the invention may be a glass sheet obtained by a floating process, a drawing process, a rolling process or any other process known to manufacture a glass sheet starting from a molten glass composition. According to a preferred embodiment according to the invention, the glass sheet is a float glass sheet. The term “float glass sheet” is understood to mean a glass sheet formed by the float glass process, which consists in pouring the molten glass onto a bath of molten tin, under reducing conditions. The glass sheet preferably has a thickness comprised between 0.5mm and 6mm, more preferably between 1 mm and 4mm. Usual thickness for such glass sheet is 1.6mm, 2.1 mm, 3.1 mm or 4mm.
[0018] The glass sheet has an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor, preferably less than 10m’1, even more preferably less than 5m’1.
[0019] To quantify the low absorption of the glass sheet in the near-infrared range, in the present description, the absorption coefficient is used in the wavelength range from 780nm to 1650nm. The absorption coefficient is defined by the ratio between the absorbance and the optical path length traversed by electromagnetic radiation in a given environment. It is expressed in rrr1. It is therefore independent of the thickness of the material but it is function of the wavelength of the absorbed radiation and the chemical nature of the material.
[0020] In the case of glass, the absorption coefficient (p) at a chosen wavelength X can be calculated from a measurement in transmission (T) as well as the refractive index n of the material (thick = thickness), the values of n, p and T being a function of the chosen wavelength X: with p = (n-1 )2/(n+1 )2.
[0021] According to the present invention, the glass sheet having an absorption coefficient at the operating wavelength of near-infrared sensor of less than 15m’1, preferably less than 10m’1, even more preferably less than 5m’1, may be a soda-lime- silica glass, alumino-silicate, boro-silicate, ...
[0022] Preferably, a glass composition compatible with the present invention comprises a total content expressed in weight percentages of glass:
SiO2 55 - 85%
AI2O3 0 - 30%
B2O3 0 - 20%
Na2O 0 - 25%
CaO 0 - 20%
MgO 0 - 15%
K2O 0 - 20%
BaO 0 - 20%.
[0023] More preferably, a glass composition compatible with the present invention comprises in a content expressed as total weight of glass percentages: SiO2 55 - 78%
AI2O3 0 - 18%
B2O3 0 - 18%
Na2O 0 - 20%
CaO 0 - 15%
MgO 0 - 10%
K2O 0 - 10%
BaO 0 - 5%
[0024] More preferably, for reasons of lower production costs, the glass compatible with the present invention is made of soda-lime glass. A glass composition compatible with the present invention comprises a content expressed as the total weight of glass percentages:
SiO2 60 - 75%
AI2O3 0 - 6%
B2O3 0 - 4%
CaO 0 - 15%
MgO 0 - 10%
Na2O 5 - 20%
K2O 0 - 10%
BaO 0 - 5%.
[0025] In addition to its basic composition, the glass may include other components, nature and adapted according to quantity of the desired effect. A solution to obtain a very transparent glass in the near-infrared, with weak or no impact on its aesthetic or its color, is to combine in the glass composition a low iron quantity and optionally chromium in a range of specific contents. Thus, the glass preferably has a composition which comprises a content expressed as the total weight of glass percentages:
Fe total (expressed asFe2O3) 0,002 - 0,06%
Cr2O3 0 - 0,06 %. [0026] Such glass compositions combining low levels of iron and chromium showed particularly good performance in terms of near-infrared reflection and show a high transparency in the visible and a little marked tint, near a glass called "extra-clear These compositions are described in international applications W02014128016A1 , WO2014180679A1 , W02015011040A1 , WO2015011041 A1 , W02015011042A1 , WO201 5011043A1 and WO2015011044A1 .
[0027] The glass cover comprises a decorative element which is transparent in the operating wavelength range of the near-infrared sensor. Such decorative element can be a logo, an emblem of a vehicle manufacturer, a pattern, ...
[0028] According to an embodiment, the decorative element is printed on the internal face or the external face of the at least one glass sheet with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor.
[0029] According to an embodiment, the glass cover comprises an exterior glass sheet having an internal face facing the near-infrared sensor and an external face opposite to the internal face. The exterior glass sheet has an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor. The glass cover further comprises an interior glass sheet having an internal face facing the nearinfrared sensor and an external face opposite to the internal face. The interior glass sheet has an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor. The exterior glass sheet and the interior glass sheet are laminated with at least one laminating interlayer. The at least one laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor. The decorative element is printed on the internal face or the external face of the exterior glass sheet and/or on the internal face or the external face of the interior glass sheet and/or on the at least one laminating interlayer with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor.
[0030] According to an alternative embodiment, the decorative element is coated on the internal face or the external face of the exterior glass sheet and/or on the internal face or the external face of the interior glass sheet with a coating which is transparent in the operating wavelength range of the near-infrared sensor.
[0031] According to an alternative embodiment, the glass cover further comprises at least one diecut interlayer between the exterior glass sheet and the at least one laminating interlayer. The at least one diecut interlayer is transparent in the operating wavelength range of the near-infrared sensor. The at least one diecut interlayer has a diecut forming the decorative element. In a preferred embodiment, the at least one laminating interlayer further comprises an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor corresponding to a zone of the diecut. In another preferred embodiment, the decorative element is formed by the overlapping of several laminating interlayers.
[0032] When the glass cover comprises an exterior glass sheet and an interior glass sheet, the interior glass sheet may be further colored in the visible wavelength range. Such coloration may be done in the bulk, meaning the glass material itself is colored. Such coloration may also be done by a print layer or a coating on either internal or external faces. Such coloration may be done to render the interior glass sheet opaque to visible wavelength range in order to hide the near-infrared sensor placed behind. For example, the interior glass sheet may have a transmission in the visible wavelength range of less than 2%. The visible wavelength range is defined as from 380nm to 780nm. In the present description, to quantify the luminous transmittance, one considers the total light transmission with illuminant A as defined in CIE15 with CIE1931 standard colorimetric observer 2°. The luminous transmittance represents the percentage of light flux emitted between wavelengths 380nm and 780nm which is transmitted through the cover. The interior glass sheet is understood to have a luminous transmittance of less than 2%, preferably less than 1 %. It allows to hide the near-infrared sensor placed behind. The interior glass sheet can be colored in the bulk, meaning that the material of the interior glass sheet itself is colored in the visible wavelength range (while still being transparent at the operating wavelength range of the near-infrared sensor). The interior glass sheet could also be printed (with an ink or an enamel) or coated (for example through plasma vapor deposition process or any other process known by the skilled in the art) in order to render it opaque in the visible wavelength range.
[0033] In a preferred embodiment, the glass cover further comprises an area free of the decorative element. Such area may be used in order for an optical system such as a camera to be placed behind the glass cover, in addition to the near-infrared sensor, while not impairing the field of view of the camera with the decorative element.
[0034] According to a preferred embodiment, the glass cover further comprises a frame surrounding the glass cover. Such frame is at least partially made of a plastic material and/or a metallic material.
[0035] According to a preferred embodiment, the glass cover is bent.
[0036] According to a preferred embodiment, the glass cover is a part of a windshield, backlite or sidelite of a vehicle, or part of an exterior trim element. An exterior trim element includes bumper, window/door seal, pillar, wheel well, wheel arch, fender, headlight, mirror body and roof cover. Such exterior trim element can also be deployable, meaning it can pop out from the vehicle only when needed. Vehicle manufacturers use these exterior trim elements to add aesthetics, increase function, and add flexibility to the vehicle design.
[0037] According to a preferred embodiment, the glass cover can further comprise an antireflection layer in the operating wavelength range of the near-infrared sensor. Such antireflection layer allows to decrease reflection, and therefore to increase the signal sent and/or received to/from the near-infrared sensor. As an example, an antireflection layer may be a layer based on porous silica having a low refractive index or it may be composed of several layers (stack), in particular a stack of layers of dielectric material alternating layers having low and high refractive indexes and terminating in a layer having a low refractive index. Such layer may be provided on any of the faces of the at least one glass sheet of the glass cover. A textured glass sheet may be also used. Etching or coating techniques may as well be used in order to avoid reflection. Preferably, the reflection of the treated surface would decrease from at least 1 % and preferably from at least 2% if both surfaces are coated, within the concerned wavelength range. The antireflection layer may be a layer based on refractive index gradient layer deposited for example by ion implantation technique.
[0038] According to another advantageous embodiment of the invention, the glass cover may be coupled with a heating system that allows the glass cover to quickly defrost or defog when the external operating conditions are unfavorable. Such heating system can be composed of a network of conductive wires, conductive patch or alternatively a silverprint network directly applied on the glass surface where an adequate power supply can be applied. Optionally, the system can also comprise a temperature sensor for dynamically triggering the heating function in case of need.
[0039] According to another advantageous embodiment of the invention, the glass cover may be coated with a hydrophobic layer that prevents water droplets to aggregate onto the glass cover. Such coating allows to ensure proper sensor operation in case of rain (snow, frost) and/or in case of fog. Such water repellant coating can be, for example, composed of thin molecular layers of fluoropolymers that reduces the surface energy and provides self-cleanability, anti-stain properties and improved moisture resistance among other effects.
[0040] Other suitable advantageous functionalities can be added to the glass sheet of the glass cover of the invention, in particular to provide supporting functions to further enhance the good operation of the near-infrared sensor. Those supporting functions can be for example: the coupling with integrated detection functions for breakage, dirt, stain, min, ... or additional protection layers for preventing scratches, glare, stain, dirt, paint, ... Dedicated filters could also be integrated for polarization, phase or spectral discrimination.
[0041] Referring to Fig.1 , a glass cover (1 ) is placed in front of a near-infrared sensor (2). The glass cover (1 ) comprises a glass sheet (10) having an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor (2). A decorative element (3) is placed on the internal face of the glass sheet (10), meaning the face facing the near-infrared sensor (2). However, such decorative element (3) could be placed on the external face of the glass sheet (10), meaning on the opposite face to the internal face. The decorative element is transparent in the operating wavelength range of the near-infrared sensor (2). Such decorative element (3) is printed on the glass sheet (10) with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2). Such decorative element (3) can also be coated on the glass sheet (10) with a coating which is transparent in the operating wavelength range of the near-infrared sensor (2).
[0042] Referring to Fig.2a, a glass cover (1 ) is placed in front of a near-infrared sensor (2). The glass cover (1 ) comprises an external glass sheet (11 ) and an internal glass sheet (14). Both glass sheets (11 , 14) have an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2). Both glass sheets (11 , 14) are laminated by a laminating interlayer (13). Such laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor (2). A decorative element (3) is printed on the internal face of the external glass sheet (11 ) with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2). However, this decorative element (3) could also be printed on the external face of the external glass sheet (11 ), and/or on the internal face or the external face of the interior glass sheet (14) and/or on the laminating interlayer (13).
[0043] Instead of (or in combination with) the decorative element (3) being printed, it could also be coated on the internal face or the external face of the exterior glass sheet (11 ) and/or on the internal face or the external face of the interior glass sheet (14) with a coating which is transparent in the operating wavelength range of the near-infrared sensor (2).
[0044] Fig.2b shows the same embodiment as Fig.2a, except that the internal glass sheet (14) is opaque in the visible wavelength range. Such configuration allows to hide the near-infrared sensor (2).
[0045] Referring to Fig.3a, a glass cover (1 ) is placed in front of a near-infrared sensor (2). The glass cover (1 ) comprises an external glass sheet (11 ) and an internal glass sheet (14). Both glass sheets (11 , 14) have an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2). Both glass sheets (11 , 14) are laminated by a laminating interlayer (13). Such laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor (2). A further diecut interlayer (12) is placed between the exterior glass sheet (11 ) and the laminating interlayer (13). This diecut interlayer (12) is transparent in the operating wavelength range of the near-infrared sensor (2). This diecut interlayer (12) shows a decorative element (3) in the form of a diecut. The diecut lets therefore see the laminating interlayer (13), seen from the outside (from the exterior glass sheet (11 )). The laminating interlayer (13) can be chosen colored in the visible wavelength range in order to show the decorative element (3) in a specific colour.
[0046] Instead of a single laminating interlayer (13), several laminating interlayers can be used, for example to create specific visual effects in the visible wavelength range.
[0047] Fig.3b shows the same embodiment as Fig.3a, except that the internal glass sheet (14) is opaque in the visible wavelength range.
[0048] Referring to Fig.4a, a glass cover (1 ) is placed in front of a near-infrared sensor (2). The glass cover (1 ) comprises an external glass sheet (11 ) and an internal glass sheet (14). Both glass sheets (11 , 14) have an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2). Both glass sheets (11 , 14) are laminated by a laminating interlayer (13). Such laminating interlayer is transparent in the operating wavelength range of the near-infrared sensor (2). A further diecut interlayer (12) is placed between the exterior glass sheet (11 ) and the laminating interlayer (13). This diecut interlayer (12) is transparent in the operating wavelength range of the near-infrared sensor (2). This diecut interlayer (12) shows a decorative element (3) in the form of a diecut. The diecut lets therefore see the laminating interlayer (13), seen from the outside (from the exterior glass sheet (11 )). The laminating interlayer (13) can be chosen colored in the visible wavelength range in order to show the decorative element (3) in a specific colour. The laminating interlayer (13) further comprises an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2) corresponding to a zone of the diecut forming the decorative element (3). Such configuration allows for example for some part of the decorative element (3) being seen in another colour.
[0049] Fig.4b shows the same embodiment as Fig.4a, except that the internal glass sheet (14) is opaque in the visible wavelength range.
[0050] While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. The foregoing description details certain embodiments of the invention. It will be appreciated, however, that no matter how detailed the foregoing appears in text, the invention may be practiced in many ways. The invention is not limited to the disclosed embodiments.

Claims

Claims Glass cover (1 ) for a near-infrared sensor (2) comprising at least one glass sheet (10), the at least one glass sheet (10) having an internal face facing the near-infrared sensor (2) and an external face opposite to the internal face, the glass sheet (10) having an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor (2),
Characterized in that the glass cover (1 ) comprises a decorative element (3) which is transparent in the operating wavelength range of the near-infrared sensor (2). Glass cover (1 ) according to claim 1 , wherein the decorative element (3) is printed on the internal face or the external face of the at least one glass sheet (10) with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2). Glass cover (1 ) according to claim 1 , wherein the decorative element (3) is coated on the internal face or the external face of the at least one glass sheet (10) with a coating which is transparent in the operating wavelength range of the near-infrared sensor (2). Glass cover (1 ) according to claim 1 , wherein the glass cover (1 ) comprises: a. An exterior glass sheet (11 ) having an internal face facing the nearinfrared sensor (2) and an external face opposite to the internal face, the exterior glass sheet (11 ) having an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor (2); b. An interior glass sheet (14) having an internal face facing the nearinfrared sensor (2) and an external face opposite to the internal face, the interior glass sheet (14) having an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor (2); c. At least one laminating interlayer (13) between the exterior glass sheet (11 ) and the interior glass sheet (14), the at least one laminating interlayer (13) being transparent in the operating wavelength range of the near-infrared sensor (2); Wherein the decorative element (3) is printed on the internal face or the external face of the exterior glass sheet (11 ) and/or on the internal face or the external face of the interior glass sheet (14) and/or on the at least one laminating interlayer (13) with an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2). Glass cover (1 ) according to claim 1 , wherein the glass cover (1 ) comprises: a. An exterior glass sheet (11 ) having an internal face facing the nearinfrared sensor (2) and an external face opposite to the internal face, the exterior glass sheet (11 ) having an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor (2); b. An interior glass sheet (14) having an internal face facing the nearinfrared sensor (2) and an external face opposite to the internal face, the interior glass sheet (14) having an absorption coefficient lower than 15rrr 1 in the operating wavelength range of the near-infrared sensor (2); c. At least one laminating interlayer (13) between the exterior glass sheet (11 ) and the interior glass sheet (14), the at least one laminating interlayer (13) being transparent in the operating wavelength range of the near-infrared sensor (2);
Wherein the decorative element (3) is coated on the internal face or the external face of the exterior glass sheet (11 ) and/or on the internal face or the external face of the interior glass sheet (14) with a coating which is transparent in the operating wavelength range of the near-infrared sensor (2). Glass cover (1 ) according to claim 1 , wherein the glass cover (1 ) comprises: a. An exterior glass sheet (11 ) having an internal face facing the nearinfrared sensor (2) and an external face opposite to the internal face, the exterior glass sheet (11 ) having an absorption coefficient lower than 15m’1 in the operating wavelength range of the near-infrared sensor (2); b. An interior glass sheet (14) having an internal face facing the nearinfrared sensor (2) and an external face opposite to the internal face, the interior glass sheet (14) having an absorption coefficient lower than 15m’ 1 in the operating wavelength range of the near-infrared sensor (2); c. At least one laminating interlayer (13) between the exterior glass sheet (11 ) and the interior glass sheet (14), the at least one laminating interlayer (13) being transparent in the operating wavelength range of the near-infrared sensor (2), the at least one laminating interlayer (13) being colored in the visible wavelength range; d. At least one diecut interlayer (12) between the exterior glass sheet (11 ) and the at least one laminating interlayer (13), the at least one diecut interlayer (12) being transparent in the operating wavelength range of the near-infrared sensor (2), the at least one diecut interlayer (12) having a diecut forming the decorative element (3).
7. Glass cover (1 ) according to claim 6, wherein the at least one laminating interlayer (13) further comprises an ink and/or an enamel which is transparent in the operating wavelength range of the near-infrared sensor (2) corresponding to a zone of the diecut forming the decorative element (3).
8. Glass cover (1 ) according to claim 6, wherein the decorative element (3) is formed by the overlapping of several laminating interlayers.
9. Glass cover (1 ) according to claims 4 to 8, wherein the interior glass sheet (14) is further colored in the visible wavelength range.
10. Glass cover (1 ) according to any of the previous claims, wherein the glass cover (1 ) further comprises a zone free of the decorative element (3).
11 . Glass cover (1 ) according to any of the previous claims, wherein the glass cover (1 ) further comprises a frame surrounding the glass cover (1 ).
12. Glass cover (1 ) according to claim 11 , wherein the frame is at least partially made of a plastic or a metallic material.
13. Glass cover (1 ) according to any of the previous claims, wherein the glass cover (1 ) is bent.
14. Glass cover (1 ) according to any of the previous claims, wherein the glass cover (1 ) is a part of a windshield, backlite or sidelite of a vehicle.
15. Glass cover (1 ) according to any of claims 1 to 13, wherein the glass cover (1 ) is a part of an exterior trim element.
EP23797703.8A 2022-10-20 2023-10-20 Near-infrared sensor glass cover Withdrawn EP4565423A1 (en)

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