Glazing for a vehicle, and vehicle comprising such glazing

EP4547483A1Pending Publication Date: 2025-05-07SAINT GOBAIN SEKURIT FRANCE
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Patent Information

Application Number
EP2023755123
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-06-29
Filing Date
2023-06-29
Publication Date
2025-05-07

AI Technical Summary

Technical Problem

Current vehicle glazing technologies fail to provide electro-controllable, multi-functional, luminous, and variable tint capabilities without compromising performance or complicating manufacturing and architecture.

Method used

The development of vehicle glazing that incorporates a laminated structure with a transparent polymer interlayer, a liquid crystal cell, and an optical insulator layer, allowing for adjustable tint and light transmission, while maintaining mechanical efficiency and simplicity.

Benefits of technology

Enables the creation of electro-controllable, luminous, and variable tint vehicle glazing that enhances functionality without compromising performance or complexity, offering improved light management and aesthetic versatility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to light-emitting laminated glazing (100) for a vehicle, having variable tinting and comprising an optical isolator layer (21) between the liquid crystal cell (2) and the light guide (1').
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Description

[0001] DESCRIPTION

[0002] TITLE: VEHICLE GLAZING AND A VEHICLE WITH SUCH GLAZING

[0003] The present invention relates to glazing for a vehicle, in particular glazing for a road vehicle.

[0004] The aim is to have electrically controlled multi-function automotive glazing without compromising the performance of each of the functions and without overly complicating manufacturing and / or architecture.

[0005] The present invention has sought in particular to develop vehicle glazing that is both luminous and variable in tint.

[0006] To this end, the present invention relates to a vehicle glazing, luminous (or illuminable) and with variable tint, in particular road (car, truck, public transport: bus, coach, etc.) or rail (train, metro, tram), preferably curved, in particular a windshield, a rear window, a side glazing, a roof, comprising a laminated (curved) glazing - transparent at least in a window clear - comprising:

[0007] - a first sheet (curved, domed), transparent, made of mineral glass, possibly tempered, possibly tinted and even over-tinted, in particular gray or green, with a first main face and a second main face bare or coated with a functional coating (transparent) in particular of at most 200nm, (in particular the first face facing the outside of the vehicle and even being the outer face, often called face F1 and the second face being face F2) or even the first sheet intended to be the inner sheet, for example the first sheet with a refractive index nv of at least 1.5 in the visible

[0008] - a second sheet (curved, domed), transparent, in particular made of mineral or organic glass, possibly a polymer sheet, thermoplastic, preferably clear or extra-clear (colorless), with a third main face bare or even coated with a functional coating (transparent) of at most 200nm and a fourth main face (bare or even coated with a functional coating (transparent) of at most 200nm,) second sheet in particular intended to be the inner sheet, (in particular third face facing the inside often called face F3 of the vehicle and fourth face towards the passenger compartment called face F4), or second sheet intended to be the outer sheet, second sheet with a refractive index n'v in the visible in particular of at least 1.5 and at most 1.54 (especially if glass) preferably at least one of the first and second sheets intended to be the outer glazing is made of mineral glass

[0009] - between the first and second sheets, a polymer lamination interlayer (transparent), multilayer (in particular 2, 3 or 4 adhesive layers and even 2, 3, 4 adhesive films), comprising (in an upper part) a first upper adhesive layer on the side (or even preferably in adhesive contact with the) second face (bare or coated), and (in a lower part) a first lower adhesive layer on the side (or even in adhesive contact with the) third face (bare or coated), at least one of the first upper and lower adhesive layers being an adhesive layer made of crosslinked polymer material (preferably film, or even deposited on a flexible support, in particular the external face of the first electrically conductive support or of a polarizer bonded to the first support) in particular thickness of the first lower adhesive layer (film or layer) of at most 500 pm and even at most 300 pm,

[0010] - between the first upper and lower adhesive layers (and in contact with the external main faces of) a liquid crystal cell containing an electroactive layer comprising a liquid solution of liquid crystals (with transparent spacers), electroactive layer between a first upper support called electroconductive (curved, flexible) having an upper electrode (upper support preferably coated with a transparent upper electrode layer) and a first lower support called electroconductive (curved, flexible) having a lower electrode (lower support preferably coated with a transparent lower electrode layer), the electroactive layer being between the lower and upper electrodes (between lower and upper electrode layers),

[0011] - and in particular between (in contact with) the upper electrode (layer) and the electroactive layer, an upper alignment layer, between (in contact with) the lower electrode (lower electrode layer) and the electroactive layer, a lower alignment layer, (alignment layers for fixing the orientation of the liquid crystals in the OFF state),

[0012] - a guide layer, preferably clear or extra-clear, (multi-layer or single-layer in particular film(s)), with a refractive index nO in the visible, capable of guiding (visible) light by total internal reflection, guide layer formed by the second sheet and / or a transparent layer on the third face side called the internal guide layer (in particular F3), or on the fourth face side (in particular F4), called the external guide layer

[0013] - between the liquid crystal cell and the guide layer, an optical isolator layer, optically isolating the liquid crystal cell from the guide layer, optical isolator layer with a refractive index n1 in the visible, and with n0-n1 which is at least 0.04 in the visible, and even at least 0.1, and with a thickness preferably of at least 500nm and even 800nm ​​(and preferably submillimeter).

[0014] The optical isolating layer is an adhesive layer made of crosslinked polymer material, forming part of the lamination interlayer (lower part), and is an additional layer under (and even in contact with) the first lower adhesive layer or formed by the first lower adhesive layer. And the optical isolating layer is preferably on the third face, in particular F3, and even in contact with the third face, in particular F3, or in contact with the internal guide layer, in particular itself on a lower low-index layer with a refractive index n'1 in the visible, preferably on and even in contact with the third face, in particular F3. The lower low-index layer is detailed later. The glazing further preferably comprises a light source (peripheral, preferably offset from the clear glass, preferably diodes) in optical coupling with the guide layer.The light source can be removable, added, sold separately or as a kit.

[0015] The glazing further preferably comprises light extraction means, extraction of light guided in the guide layer (light extraction means on or in the guide layer). The extraction means may be temporary (removable stickers etc.) and therefore added or replaced, in particular on the fourth face side, or permanent, in particular on the third face side.

[0016] Naturally, the guide layer (second sheet, guide layer, internal or external) is an active light guide once the light source and extraction means are mounted.

[0017] The guide layer (especially internal) is preferably of EO thickness of at most 2mm (and even at most 1mm) and at least 200pm or even 400pm. The thickness of the guide layer can be adapted (increased) for a mechanical contribution.

[0018] The guide layer (in particular internal) can be for example a polymer layer, in particular a thermoplastic adhesive film, a thermoplastic film (polyester, in particular PET, or PC), non-adhesive or a glass film (ultra-thin).

[0019] We can choose nO as a function of n1 or vice versa.

[0020] The invention lies in the use of a transparent optical insulating adhesive layer, possibly tinted:

[0021] - making it possible to use the light function or the variable tint function in combination

[0022] - having adhesion with the first and second sheets and even with other layers (interlayer if necessary) depending on its mechanical performance.

[0023] The optical isolator layer can optically isolate the light guide from any element that is tinted or absorbs or that would be disturbed by light or would disturb the guiding of the light.

[0024] The optical isolator layer can be combined with one or more other thermoplastic and / or crosslinked polymer adhesive layers, while maintaining the most compact, mechanically efficient, and transparent interlayer possible if necessary.

[0025] The optical isolator layer is an optical glue (OCA for optically clear adhesive in English, LOCA if coating obtained by liquid method) chosen with sufficiently low n1.

[0026] The optical isolator layer can be a monolayer which is a self-supporting film or a coating on a support (for example thermoplastic, of higher refractive index, in particular non-adhesive). It can be a multilayer (multi-deposits or a film and a deposit).

[0027] The optical isolator layer is preferably single-layer for simplicity or even multi-layer crosslinked polymer (all low index).

[0028] Preferably, the second glass sheet and / or any lower layer which is between the extraction means and the observer of extracted light is clear, colorless (inside in the passenger compartment, or outside outside the vehicle) rather than tinted (and even over-tinted). It is preferred to avoid any layer significantly absorbing the extracted light (mono or polychromatic). In the present invention, the expression crosslinked polymer relates to the family of thermosetting polymers in the broad sense (any crosslinking route).

[0029] Preferably the refractive index of any layer according to the invention is defined for a reference value in a range going from 550 and 600nm.

[0030] Preferably, the optical isolator layer is in contact with the guide layer which is the inner guide layer or the second glass sheet and even the optical isolator layer is in contact with the guide layer.

[0031] Advantageously, for greater simplicity and compactness, the first lower adhesive layer comprises, and even forms, the optical isolator layer preferably with a thickness of at least 300 μm and even 500 μm. The lower part of the lamination interlayer may comprise only this optical isolator layer or in addition a second lower adhesive layer, in particular made of film.

[0032] In particular, the optical isolator layer is a film preferably with a thickness of at least 30 pm or the optical isolator layer is a coating preferably with a thickness of at least 1 pm. The optical isolator layer may even be at least 300 pm thick and even at least 500 pm thick and preferably at most 800 pm thick if it corresponds to the first lower adhesive layer.

[0033] The glazing according to the invention can be curved, generally in two directions. The liquid crystal cell, although flexible, must deform locally in two directions to fit the curved shape, which is difficult.

[0034] To preserve the liquid crystal cell, at least one of the first upper and lower adhesive layers is an adhesive layer made of crosslinked polymer material, thus helping to deform the liquid crystal cell. In particular, a single adhesive layer made of crosslinked polymer material with a thickness of at least 300 μm and even at least 500 μm and preferably at most 800 μm is used.

[0035] We can have:

[0036] - the first upper adhesive layer which is a thermoplastic film (PVB in particular UV filter etc.) and the first lower adhesive layer which is a crosslinked polymer adhesive film (or coating), preferably forming the optical isolator layer.

[0037] - or the first upper adhesive layer which is crosslinked polymer, the crosslinked polymer material is preferably chosen from a polymer based on acrylate, polyvinyl acetate, polyurethane, silicone, and epoxy and the first lower adhesive layer is a crosslinked polymer adhesive film (or coating), preferably forming the optical isolator layer. One or even several adjacent or non-identical liquid crystal cells or not (two GH or TN cells etc.).

[0038] Advantageously, the optical isolator layer is in adhesive contact with the guide layer, in particular:

[0039] - in adhesive contact with the third face (bare or coated, for example, with a low-index transparent layer or an adhesion primer), the second sheet being the guide layer

[0040] - in adhesive contact with the internal guide layer.

[0041] Alternatively, in particular for mechanical and / or adhesion reinforcement, the optical insulating layer is in adhesive contact with a second lower adhesive layer (transparent), made of thermoplastic or crosslinked polymer material in adhesive contact with the third face (in particular F3), in particular with a refractive index n2 in the visible such that n2>n1, second lower adhesive layer in contact with the guide layer preferably which is the second sheet (in particular inner sheet).

[0042] In particular, the second lower adhesive layer (single or multi-layer, preferably a film or sheet) can guide part of the rays coming from the light source. To avoid absorbing these rays, it is preferably colorless, particularly extra-clear.

[0043] In particular, the second lower adhesive layer is in adhesive contact with the third face (bare or coated) and preferably of a thickness of at most 0.4 mm (to gain compactness), in particular a layer based on poly(vinyl butyral) PVB (preferably with plasticizers) or copolymer of ethylene and vinyl acetate of EVA (thermoplastic or thermosetting) or based on thermoplastic polyurethane TPU.

[0044] The first upper adhesive layer (mono or multi-layer, preferably at least one film or sheet) may be in adhesive contact with the second face (in particular F2) and preferably of a thickness of at most 0.4 mm (to gain in compactness), in particular a layer based on PVB (preferably with plasticizers and even anti-IV filter) or EVA (thermoplastic or thermosetting).

[0045] Preferably, any PVB-based layer (sheet) comprises 70% to 75% PVB, 20% or 25 to 30% plasticizer and less than 1% additives. There are also PVB sheets with little or no plasticizer (less than 10% or 5% or even less than 1%) such as the “MOWITAL LP BF” film from KURARAY.

[0046] A crosslinked polymer adhesive layer according to the invention (optical isolator layer, first or second lower and / or upper adhesive layer etc.) may contain at least 50%, 60%, 70%, 80%, 90%, 95% by weight of polymer(s) and even at most 20%, 10% 5% 2% 1% of additives. A crosslinked polymer adhesive layer according to the invention may contain a main polymer (or base polymer) at least 50%, 60%, 70%, 80%, 90%, 95% by weight of polymer(s). A crosslinked polymer adhesive layer according to the invention may comprise other additives (preferably less than 10% or 5% or 1% by weight of layer) such as at least one of the following:

[0047] - crosslinking agent e.g. photoinitiators (residual),

[0048] - plasticizers (for more flexibility)

[0049] - membership promoters

[0050] - additives for durability.

[0051] The polymerization or even crosslinking rate of a crosslinked polymer adhesive layer according to the invention is not necessarily 100%, the material according to can therefore include residual prepolymers, monomers, oligomers. The layer after crosslinking can be analyzed by NMR (Nuclear Magnetic Resonance) in order to determine the polymerization rate. Preferably, n1 is at most 1.48 or 1.46 (or nO is at most 1.52 or even 1.5) and even n0-n1 is at least 0.1 and even 0.15.

[0052] According to one feature, the internal guiding layer, in particular a polymer, thermoplastic or glass film or an adhesive layer (film or coating), is in contact with a lower low-index layer (coating or film), which is adhesive (thermoplastic or crosslinked polymer) and preferably on and even in contact with the third face (in particular F3) or which is a coating in particular porous, in particular silica in particular porous on the third face (in particular F3) and even directly on the third face (in particular F3). The lower low-index layer has a refractive index n'1 in the visible, and with n0-n'1 which is at least 0.04 in the visible, and preferably with a thickness of at least 100nm and even at least 400nm, 800nm ​​or 1 pm. Preferably, n'1 is at most 1.48 or 1.46 (or nO is at most 1.52 or even 1.5) and even n0-n'1 is at least 0.1 and even 0.15. Preferably, in absolute value n1-n1' is at most 0.04 or even zero.A lower low index layer of crosslinked polymer adhesive of the same nature as the optical isolator layer (possibly less thick) may be preferred.

[0053] Between the optical insulating layer and the third face (notably F3), the glazing may be free of a thermoplastic adhesive layer.

[0054] Between the lower low index layer and the third face, the glazing may be free of adhesive, thermoplastic or crosslinked material layer.

[0055] In one embodiment, the lower optical insulating and / or adhesive layer made of crosslinked polymer, for example with a refractive index n1 of at most 1.46 or 1.4 or 1.35 or 1.3 and / or the lower low-index layer is made of crosslinked polymer adhesive, for example with a refractive index n'1 of at most 1.46 or 1.4 or 1.35 or 1.3.

[0056] The crosslinked polymer material of the optical insulator layer and / or of a lower adhesive low index layer between the optical insulator layer and the third face (and preferably in contact with the third face, in particular F3) may preferably be chosen from a polymer based on (or essentially consisting of) polyacrylate (for example to have a refractive index n1 or n'1 of at most 1.46 or 1.4), in particular fluorourethane acrylate (to have the lowest possible refractive index n1 or n'1) or urethane acrylate or fluorosilicone acrylate, polysiloxanes or silicone (for example with a refractive index n1 or n'1 of at most 1.4 or 1.3), in particular polydimethylsiloxane, polyurethane, polyvinyl acetate, polyester or even epoxy polymer, polyepoxides.

[0057] The crosslinked polymer material of the optical insulating layer / or of the lower adhesive low index layer is preferably chosen from an acrylate-based polymer, in particular urethane acrylate or silicone acrylate or silicone-based, and the polymer further having a fluorinated function.

[0058] A crosslinked polymer adhesive layer according to the invention may contain at least 50%, 60%, 70%, 80%, 90%, 95% by weight of polymer(s) and even at most 20%, 10% 5% 2% 1% of additives. Regarding the optical properties, the optical isolator layer or even any crosslinked polymer or thermoplastic adhesive layer (lower and / or upper adhesive layer) may have a light transmission of at least 85% or 90% and / or a haze of less than 6%, 5%, 4%, 3%, 2%, 1%, 0.5%.

[0059] The glazing can have a transparency suitable for its use and even a haze of less than 6%, 5%, 4%, 3%, 2%, 1%, 0.5%.

[0060] Let n m the average refractive index of the optical insulator layer over a wavelength range A from 380nm to 750nm, i.e. x the variation in refractive index of the optical insulator layer over the range A, x is at most 30% of the difference n0-n m and even at most 20% or at most 10%, this to control the color of the extracted light. This makes it possible in particular to limit colorimetric variations between the color (if polychromatic, white etc.) of the injected light and that extracted and even better color homogeneity between different extraction patterns at various distances from the light source.

[0061] Preferably, the optical insulating layer or even more broadly any other crosslinked polymer adhesive layer according to the invention (first lower or upper adhesive layer; etc.) may preferably be photo-crosslinked by ultraviolet, for example comprises a polymer matrix photo-crosslinked by ultraviolet.

[0062] The polyacrylate described herein means any polymer containing repeating units derived from acrylate. The repeating unit may be substituted or unsubstituted within the permitted valence range. The acrylate polymer may be homopolymeric and / or copolymeric. In this text, polyacrylate includes one or more of polymethyl acrylate, polyethylene acrylate, polypropyl methacrylate, polymethyl methacrylate, polyethylene methacrylate, polyethylene methacrylate, polyethyl methacrylate, polypropyl methacrylate.

[0063] The epoxy polymer described herein refers to the polymer obtained after polymerization of substances containing epoxy bonds. The epoxy polymer includes one or more of bisphenol A epoxy, bisphenol A epoxy, halogenated phenolic epoxy, phenolic epoxy, cycloaliphatic epoxy, bisphenol S epoxy resin.

[0064] The crosslinked polymer material (of the optical isolator layer or even any other crosslinked polymer adhesive layer, lower and / or upper in particular) may preferably be based on (or essentially consisting of) a polymer associated with one or more other functions such as the acrylate function for photo-crosslinking (crosslinked polymer material based on urethane acrylate or based on silicone acrylate) and / or the fluorinated function to lower the refractive index in particular for the optical isolator layer (crosslinked polymer material based on fluoro-urethane acrylate or fluoro-silicone acrylate). Thus, it is preferred for the crosslinked polymer material of the optical isolator layer to be a polymer preferably based on acrylate, urethane acrylate, silicone, silicone acrylate, the polymer also having a fluorinated function.

[0065] Depending on the desired properties, the acrylate function can be used for photo-crosslinking (for a urethane acrylate or a silicone acrylate). The acrylate function allows the photo-crosslinking of the polymer, the skeleton of which is made up of other functions such as urethane.

[0066] The optical isolator layer (or even any other crosslinked polymer adhesive layer, lower and / or upper in particular) can in particular be a coating obtained by liquid means and obtained from a formulation preferably photocrosslinkable by UV (UVA) or even two-component crosslinking by chemical reaction. Crosslinking by UV(A) is preferred because crosslinking is faster and the equipment less expensive / more compact than by chemical reaction.

[0067] The optical isolating layer (and / or lower adhesive low index layer) may be a crosslinked polymer coating (deposition on the third side, in particular F3 or on the support) may preferably be based on urethane acrylate or fluoro urethane acrylate.

[0068] In a first example of an optical isolating layer (and / or lower adhesive low index layer) in the form of a coating, a crosslinkable UV resin based on acrylates is deposited on the second sheet (of mineral or organic glass) or on a polymer or glass support (UTG).

[0069] In a second example of an optical insulating layer (and / or lower adhesive low index layer) in the form of a coating, a single-component crosslinkable UV resin based on acrylates (urethane acrylate) is deposited on the second glass sheet (mineral or organic), in particular an inner sheet, or on a polymer or glass support (UTG).

[0070] In a third example of an optical isolating layer (and / or lower adhesive low index layer) in the form of a coating, a silicone-based crosslinkable UV resin is deposited on the second glass sheet (mineral or organic), in particular the inner sheet, or on a polymer support. The following resins may be mentioned as crosslinkable low index liquid adhesive (for the optical isolating layer (and / or the lower adhesive low index layer):

[0071] - based on urethane acrylate, for example from the company Norland, in particular the product called LOCA Norland NOA 1315 (n1 = 1.315) which is an aliphatic urethane acrylate,

[0072] -based on fluorourethane acrylate, for example from the company Shin-A, in particular the product called SFA 335 (n1 = 1,335-1,339) or SFA 387 (n1 = 1,385-1,389),

[0073] - based on acrylate, for example the product called LIZ181A (n1 = 1.47) from the company AKChemTeck, or the product called UVEKOL S15 (n1 = 1.44) from the company Allnex.

[0074] We can cite liquid COAs based on fluorourethane acrylate, for example from the company Shin-A, in particular the product called LOCA Shin-A 335 (n1 = 1,335-1,339) or 387 (n1 = 1,385-1,389).

[0075] The optical isolator layer or even more broadly any (other) crosslinked polymer adhesive layer according to the invention (lower or upper adhesive layer; lower low index adhesive layer, etc.) may comprise or even be a crosslinked polymer film, in particular of at least 30 pm or 40 pm or 50 pm.

[0076] In particular, the optical isolator layer and / or a lower and / or upper adhesive layer made of crosslinked polymer (and / or the lower low-index adhesive layer) is a film based on crosslinked polymer, in particular of at least 30 pm, in particular:

[0077] - pressure-sensitive film, and preferably chosen from polymers based on acrylate, urethane acrylate or fluoro urethane acrylate or silicone

[0078] - or a so-called post-adhesive film of partially photocrosslinked polymer before assembly - and completely (photo)crosslinked after assembly -, and preferably a so-called post-adhesive film photocrosslinked and based on acrylate.

[0079] Adhesive contact results from the continuation of photocrosslinking. Before further crosslinking, the assembled glazing is placed under vacuum for degassing, then placed in an autoclave under pressure - positive pressure of 2 to 4 bars - for example, and possibly at a temperature above ambient.

[0080] In particular, pressure-sensitive adhesive (PSA) film adheres by contact after applying mechanical pressure.

[0081] A pressure-sensitive adhesive, abbreviated PSA and commonly referred to as a pressure-sensitive adhesive, is an adhesive that forms a bond when pressure is applied to it, thereby securing the adhesive to the surface to be bonded. No solvent, water, or heat is required to activate the adhesive.

[0082] As the name "pressure sensitive" suggests, the degree of bonding between a given surface and the self-adhesive binder is influenced by the amount of pressure used to apply the adhesive to the target surface and the nature and density of the physical bonds formed between the adhesive and the substrate (mineral or organic glass sheet).

[0083] PSAs are generally designed to form a bond and maintain that bond at room temperature.

[0084] PSAs can be made of rubber, polyurethane, acrylic ester polymer, polysiloxane.

[0085] PSAs are typically elastomer based coupled with a suitable additional adhesive or "tackifying" agent (e.g., an ester resin).

[0086] The elastomers can preferably be based on:

[0087] - acrylates, which may be sticky enough not to require an additional tackifying agent.

[0088] - silicone, requiring special tackifying agents such as “MQ” type silicate resins, composed of monofunctional trimethyl silane (“M”) which has reacted with quadrifunctional silicon tetrachloride (“Q”), silicone-based PSAs are for example polydimethylsiloxane gums and resins dispersed in xylene or a mixture of xylene and toluene or possibly:

[0089] - styrene-based block copolymers such as styrene butadiene-styrene (SBS), styrene-ethylene / butylene-styrene (SEBS), styrene-ethylene / propylene (SEP), styrene-isoprene-styrene (SIS) block copolymers,

[0090] - vinyl ethers.

[0091] - nitriles.

[0092] PSA adhesives are marketed as double-sided adhesive rolls with a liner on each side to protect the PSA film.

[0093] Examples of silicone-based PSAs include Dow Corning® adhesives such as 2013 Adhesive, 7657 Adhesive, Q2-7735 Adhesive, Q2-7406 Adhesive, Q2-7566 Adhesive, 7355 Adhesive, 7358 Adhesive, 280A Adhesive, 282 Adhesive, 7651 Adhesive, 7652 Adhesive, 7356 Adhesive or Taica adhesives such as OPT alpha GEL® such as K120E, K90E or MRK adhesives such as MR3050, MR3080.

[0094] Examples of acrylate-based PSAs include Nitto adhesives such as CS98210U, CS98210UK or Tesa® adhesives such as OCA 69206, OCA 69208, OCA 69405. Examples of acrylate-based PSA low-index films (for the optical isolator layer and / or the lower adhesive low-index layer) include the product called CS986 (n1 = 1.47) from Nitto.

[0095] As a low PSA index film (for the optical isolator layer and / or the lower adhesive low index layer) based on silicone, we can cite the product called Opt Alpha Gel from the company Taica (n1 = 1.41). As for silicone, we prefer polydimethylsiloxane, PDMS or dimethicone, which is an organomineral polymer from the siloxane family.

[0096] In an example of a crosslinked polymer adhesive layer in the form of an acrylate-based PSA film, mention may be made of the product called CS986 from Nitto with a refractive index n2 of 1.49.

[0097] The first upper adhesive layer may be a thermoplastic film, in particular PVB, and the first lower adhesive layer is a crosslinked polymer adhesive film or coating, preferably forming the optical isolator layer and even having a thickness of at least 300 pm and even 500 pm and, for example, at most 800 pm.

[0098] The first upper adhesive layer may be a crosslinked polymer, the crosslinked polymer material is preferably chosen from a polymer based on acrylate, polyvinyl acetate, polyurethane, silicone, and epoxy and the first lower adhesive layer is a crosslinked polymer adhesive film, preferably forming the optical isolator layer and even having a thickness of at least 300 pm and even 500 pm and for example at most 800 pm.

[0099] The glazing comprises between the second face (in particular F2) and the third face (in particular F3) the following stacking, possibly strict, as desired (the elements in parentheses are optional):

[0100] - 1) first thermoplastic adhesive upper layer preferably (film) PVB in particular UV filter / liquid crystal cell (in particular GH) / optical isolator layer (film or coating) / internal guide layer ( / lower (adhesive) low index layer, film or coating), in particular internal guide layer being polymer film (thermoplastic), glass or adhesive layer,

[0101] - 2) first upper cross-linked polymer adhesive layer / liquid crystal cell (in particular GH) / optical isolator layer (film or coating) / inner guide layer ( / lower low index (adhesive) layer), in particular inner guide layer being polymer (thermoplastic) film, glass or adhesive layer,

[0102] - 3) first thermoplastic adhesive upper layer, preferably PVB, in particular UV filter / liquid crystal cell (in particular GH) / optical isolator layer (film or coating) / , the optical isolator layer preferably being in contact with the third face of the second sheet, second sheet forming a light guide

[0103] - 4) first crosslinked polymer adhesive top layer / liquid crystal cell / optical isolator layer (film or coating), the optical isolator layer preferably being in contact with the third face of the second sheet, second sheet forming a light guide.

[0104] The stack may comprise 1 or 2 or 3 adhesive films, in particular 1 or 2 PSA or post-adhesive films and a PVB film. For example, the lamination interlayer (mono or multi-layer) may incorporate one or more functional elements (preferably functional films) in particular of subcentimetric thickness and even at most 0.6 mm or 0.5 mm or 0.3 or 0.2 mm, and preferably at least 30 or 40 or 50 μm, preferably chosen from at least one of the following functional films:

[0105] - (in the upper part) an athermal film, reflecting infrared, and / or heating for example a polymer substrate with an electroconductive (transparent) coating, in particular with a thickness of at most 0.4 mm,

[0106] - an extractor film, in particular polymer (for example thermoplastic or thermoset), forming means for extracting guided light, for example with reliefs and / or diffusing in volume or on the surface (by a diffusing layer),

[0107] - and / or a so-called redirector film, in particular polymer (for example thermoplastic or thermoset), forming a means of redirecting light (coming from the light source on the fourth side or even offset from the glazing), locally.

[0108] The polymer functional film (first electrically conductive support, polymer support of the optical insulating layer, optical film: extractor, redirector, athermal etc.) is for example thermoplastic (flexible, curved following the curvature of the glazing), in particular non-adhesive to the glass, is for example: polyester, in particular polyethylene terephthalate (PET), poly(butylene terephthalate) PBT, poly(ethylene naphthalate) (PEN), polyimide (PI), polyurethane (PU) or cellulose triacetate (TAC), acrylic, polyolefin in particular polypropylene (PP) polycarbonate (PC) or PMMA, (coextruded) film in P ET- PM MA poly(vinyl chloride) PVC.

[0109] For the athermal film, for example, a clear coated PET film, for example XIR from Eastman, or a coextruded PET-PMMA film, for example of the 3M® SRF type, can be used. Naturally, a functional polymer film can be multifunctional (support, barrier, optical, etc.).

[0110] The extraction film can have a custom-made extent. It can be local or cover at least 50%, 60%, 70%, 80%, 90%, 100% of the clear glass. The extraction film can have one or more local extraction zones (textured etc.) or occupying at least 50%, 60%, 70%, 80%, 90%, 100% of the clear glass (and / or at least 50%, 60%, 70%, 80%, 90%, 100% of the surface of the transparent film)

[0111] Furthermore, the first sheet can be tinted (preferably mineral glass) and / or one or more layers above the liquid crystal cell (or even the electrically conductive supports) can be tinted. The optical isolator layer itself can be tinted.

[0112] To achieve this, any tinted layer (optical insulator layer and / or layer above the liquid crystal cell) may contain (in a polymer matrix) a coloring agent (organic or inorganic), in particular a molecular dye or inorganic pigment. To be opaque, the coloring agent level can be increased.

[0113] A tinted film (crosslinked polymer adhesive coating carrier, adhesive layer, top, electrically conductive carrier) may have a light transmission of not more than 50% or 40% or 30% or 20% and not less than 5%.

[0114] The tinted optical insulating layer may have a light transmission of not more than 50% or 40% or 30% or 20% and not less than 5%.

[0115] There may be several separate optical films distributed in the clear glass on the same side, for example. The optical film may be a thermoplastic or thermoset polymer film.

[0116] When an optical film is placed on the third face (particularly F3), it is preferred that it be local to increase the adhesive contact surface of the lamination interlayer (the optical insulator layer or the lower adhesive layer) with the third face.

[0117] Preferably, the local redirecting optical film is at most 10cm wide, or at most 5cm wide, or even at most 2cm wide, and in particular of a length similar to that of the linear light source (custom-made). It can be a rectangular strip with rounded corners, for example.

[0118] The extent of the (local) extractor film may be significantly less than that of the second sheet. It advantageously represents less than 30%, preferably at most 25%, in particular between 1 and 10% of the extent of the second sheet. The extractor film may have any shape. It may cover the clear glass and even its edges are under the internal masking layer.

[0119] Alternatively, the local optical film (extractor or redirector) may be bonded to the guide layer (second sheet or inner guide layer) by a transparent bonding adhesive layer preferably having a refractive index close to no.

[0120] The optical extractor or redirector film can be between the optical isolator layer and the lower adhesive layer, thermoplastic polymer or crosslinked polymer. The lower adhesive layer can be used to fix this film. The extent of the film is custom.

[0121] A liquid crystal cell consists of an electroactive layer (essentially and even only) of liquid crystals, the liquid crystals having a predefined orientation or equilibrium direction. The liquid crystal cell is encapsulated between two supports (polymer films or glass) which are kept at a constant distance thanks to spacers (transparent, preferably point, 3D) such as beads (or cube or cylindrical circular base etc.) made of glass or polymer.

[0122] The thickness of the electroactive layer can be 1 to 20pm and even 5 to 15pm.

[0123] Each support is provided with an electrode (transparent layer, for example, conductive metal oxide or silver stack) and an alignment layer, in particular for planar or homeotropic anchoring. When a preferably alternating voltage (for example, 60 Hz, with peak voltage of 5 to 30 V and preferably with a square signal) is applied to the electrodes, the cell changes from a clear state (weakly colored or even colorless) to a dark state (colored), or vice versa. The term "clear state, dark state" means that the glazing has a light transmission in the visible range in its clear state that is greater than the light transmission it has in its dark state.

[0124] Depending on the intended application, the equilibrium orientation of the liquid crystals in interaction with the dichroic dyes when they are present, the light and dark states will correspond to an ON / OFF or OFF / ON state of energizing the electrodes. We will speak of a normally clear state of the glazing when the light transmission is the highest in the absence of voltage between the electrodes (OFF state), thus allowing vision through the glazing, while the dark state of said glazing will correspond to the energizing of the electrodes (ON state) causing a reorientation of the liquid crystals and a modification of the light transmission (the light transmission becoming lower). Conversely, we will speak of a normally dark state of a glazing when the light transmission is the lowest in the absence of voltage, while by applying a voltage, the glazing will become clear.

[0125] For example :

[0126] - in the clear state, the liquid crystal cell (especially host guests) and even the glazing can have a TL>30% or 45% or 70%

[0127] - in the dark state, the liquid crystal cell (especially host guests) and even the glazing may have a TL<20% or even 10% or 5 or 1%.

[0128] It is preferred that the liquid crystal cell (especially host guests) and even the glazing have a haze of at most 3% 2% or 1%.

[0129] It may be preferable that in the dark state, the liquid crystal cell (especially host guests) and even the glazing presents a neutral color defined by -4 <a<4 et -4<b<4.

[0130] For example, the liquid crystal cell (especially the guest host) and even the glazing has a gray, black color.

[0131] Examples of liquid crystal cells include those described in patent applications JP2018141891 or EP3990981.

[0132] The liquid crystal cell may have at least one of the following cumulative or alternative technical characteristics:

[0133] - the electroactive layer contains at most 5% or 1% or 0% of polymer and polymer precursor in the solution (excluding spacers)

[0134] - the liquid crystal cell is called "host-guest" (GH), and the electroactive layer contains at least one dichroic dye (the external faces of the first inner and outer supports are the external faces of the "host-guest" cell)

[0135] - or the liquid crystal cell is called TN (for twisted nematic) and comprises an upper polarizer (tinted) on an upper external face of the first upper electrically conductive support and a lower polarizer (tinted) on a lower external face of the first lower electrically conductive support (the external faces of the polarizers are the external faces of the cell),

[0136] - the liquid crystal cell (GH or TN) has an aligned edge set back from the edge of the first glass sheet, internal edge (edge) under an internal masking layer (enamel or ink) closer to the second face,

[0137] - one or more transparent supports are flexible, for example polymer of at most 200pm, or glass for example of at most 400pm,

[0138] - the electrode layer (lower and / or upper) is an electroconductive coating (functional layer stack which is a transparent conductive oxide, for example ITO, IZO, AZO, SnO2:F or metallic (silver etc.), these functional layers generally being interposed between dielectric layers based on oxides, nitrides and / or oxide nitrides) on the so-called front face oriented towards the electroactive layer, in particular the lower or upper electrode coatings are of identical nature and even of the same thickness and / or the transparent supports are of identical nature and even of the same thickness,

[0139] - the total thickness of the liquid crystal cell (GH or TN) is at most 1 mm and in particular host guest cell at most 500pm and even 30pm and TN cell at most 600pm.

[0140] Furthermore, the glazing according to the invention may comprise an external, peripheral seal which surrounds the periphery of the edge of the liquid crystal cell, preferably an external seal which is a thermoplastic adhesive layer, in particular is in contact with

[0141] -the first adhesive top layer, extending beyond the edge of the liquid crystal cell, external seal and first adhesive top layer are preferably PVB-based

[0142] - or in contact with the second face (bare or coated).

[0143] And possibly the external seal is in contact with the first lower adhesive layer, in particular forming the optical insulator layer, protruding from the edge of the liquid crystal cell, or in contact with the third face (bare or coated) and for example forming a framing layer (based on PVB for example) of the optical insulator layer.

[0144] The external seal is preferably at least a few mm wide.

[0145] The external seal may include an opaque area:

[0146] - masking a light injection zone, the light source (diodes) being under the second face, in particular housed between the second face and the third face (in a notch or a closed hole in the second sheet of the internal guide layer or in a groove) or in a notch or a closed hole in the second sheet of glass forming a guide

[0147] -or a light source on the fourth face, in particular emitting towards the main face of the guide layer (internal guide layer, second sheet).

[0148] The external seal is preferably wholly or partly offset by a glass clear. The external seal may be in contact with an internal sealing seal, preferably a crosslinked polymer (epoxy, etc.), which surrounds the periphery of the electroactive layer and in particular between the first and second electrically conductive supports.

[0149] In particular, the first upper and / or lower adhesive layers (forming the optical isolator layer) protrude by at least 1 mm or 5 mm or 1 cm and by at most 5 cm or 2 cm from the (external) edge of the cell (GH or TN).

[0150] The edges of the first upper and / or lower adhesive layers may be aligned with the (outer) edge of an external seal of the liquid crystal cell.

[0151] Another cell may be adjacent to said liquid crystal cell, and separated by an extension of the optical insulator layer or first upper adhesive layer (PVB in particular) or an external sealing gasket (PVB in particular) which surrounds the edge of the edge of the liquid crystal cell.

[0152] It is preferable and even generally essential that the glazing includes at least one transparent area, called "glass clear" or daylight, not covered by an opaque (internal), peripheral masking layer. The glass clear is therefore a central area.

[0153] This clear glass may represent at least 20%, preferably at least 50% and in particular at least 70% or 80% or 90% or 95% of the total surface area of ​​the glazing, including areas covered by encapsulation or seals. In other words, the opaque layer covers an area which generally represents at most 80%, preferably at most 50% and in particular at most 30% or 20 or 10% or 5% of the total surface area of ​​the glazing.

[0154] The optical density of the opaque layer is preferably at least 2 and even up to 5. The lamination interlayer can occupy at least 70%, 80%, 90%, 95% or even 100% of the glazing surface.

[0155] The optical isolator layer preferably extends beyond the propagation zone, and may occupy at least 70%, 80%, 90%, 95% of the surface of the glazing.

[0156] Regarding the extent of the elements, several configurations are possible, in particular the edge of the lamination interlayer (edge ​​of the optical insulator layer, of the first lower and / or upper adhesive layer) is not necessarily aligned with the edge of the first and / or second sheets and the edges of the layers of the interlayer itself are not necessarily aligned with each other.

[0157] The first upper adhesive layer may be set back from the edge of the first sheet by no more than 10mm or even no more than 2mm.

[0158] The first upper adhesive layer (and the optical isolator layer and the possible lower adhesive layer) can occupy at least 70%, 80%, 90%, 95% of the surface of the glazing.

[0159] There may be several injection zones, several light sources, preferably peripheral ones. The optical isolator layer may occupy at least 70%, 80%, 90%, 95% of the glazing surface. The extraction means cover, for example, at most 90% or 70% or 50% of the glazing surface.

[0160] The liquid crystal cell may occupy at least 70%, 80%, 90%, 95% of the surface area of ​​the glazing or a more restricted surface area, in particular at most 50% or 30%, for example being at least one peripheral strip, for example along a lower or upper longitudinal edge of a windshield or other glazing.

[0161] The glazing may therefore comprise between the second face (in particular F2) and the third face (in particular F3), an opaque, internal peripheral masking layer, in particular an enamel (black etc.) on the second face. This may be an opaque coating on the first upper thermoplastic adhesive layer, in particular PVB, for example an opaque coating based on PVB and with a coloring agent on a main face of a PVB layer (in particular upper adhesive layer) facing the second or third face.

[0162] The internal masking layer can be 2mm or 3mm (less than 5mm) from the edge of the glazing or even up to the edge. The masking layer can be a strip framing the glazing (windshield, roof, etc.), particularly black. The entire periphery is opaque to hide bodywork elements or joints or to protect an adhesive for mounting on the vehicle. This internal masking layer delimits the clear glass. It may be advantageous for the external edge of the optical isolator layer or, more broadly, any adhesive layer of the lamination interlayer or the guide layer and the liquid crystal cell (and even the internal seal or the external seal) to be masked by the internal masking layer, and not to be in the clear glass.

[0163] The width of the internal masking layer along the sides of a motor vehicle roof is usually less than that at the front or even the rear.

[0164] In the case where the first sheet is the exterior glazing, another masking layer, called the interior, can be on the fourth face called F4 on the passenger compartment side, in particular facing the internal masking layer (and even of an identical nature, for example an enamel, in particular black, on the second sheet of mineral glass). It can be adjacent to a possible transparent functional coating, in particular athermal, at least in the clear of the window.

[0165] Especially for a car roof (first sheet is the exterior glazing):

[0166] - the width of the internal (and even interior) masking layer along the longitudinal edges can be at most 30cm, in particular 10-20cm.

[0167] - the width of the internal (and even interior) masking layer along the rear side edge may be at most 30cm, in particular at least 1 or 5cm, and along the front side edge at most 60cm, in particular at least 1 or 5cm.

[0168] The width of the inner masking layer is preferably greater than that of the inner masking layer. The inner and / or inner masking layer may be an organic or mineral binder (fused glass frit) with an organic or inorganic coloring agent, in particular a molecular dye or inorganic pigment.

[0169] The internal and / or inner masking layer is preferably a continuous layer (solid with a solid edge or alternatively a gradient edge (set of patterns).

[0170] In a first case of light injection, the light source is coupled to the edge of the second sheet (or the internal guide layer) possibly in a peripheral opening notch. The light source can be housed in a polymer encapsulation as described in application WO2010049638 in particular in figure 15 or in figure 16 and even having a recess for removal, replacement of the source.

[0171] In a second case of light injection, the second sheet, in particular made of mineral glass, may comprise at least one peripheral hole (through or even blind in thickness, open on the fourth face side at least) under the internal masking layer (outside the clear glass) and the light source is coupled to the wall of the second sheet delimiting the hole, preferably housed in the hole. The light source, in particular the diodes, may be in the hole, may be associated with an optical element (light guide) between the injection wall and the light source in the hole or inside the passenger compartment. Examples of embodiments described in patents WO2018 / 178591 or WO 2013 / 110885 may be cited in particular.

[0172] The inner masking layer is for example on either side of said hole (of each hole).

[0173] The second sheet may have a plurality of (through) holes each delimited by an internal wall, and a light source (all identical or not, as desired) is coupled to an internal wall and even housed in each (through) hole.

[0174] The hole (each hole) is preferably not more than 50mm wide and not less than 10mm wide and preferably spaced not more than 200mm from the edge of the second sheet. The shape of the hole (each hole) may be oblong or circular.

[0175] The hole in the second sheet of glass (mineral) in which the light source (the diodes) is housed can advantageously be closed by a cover, preferably a removable cover, preferably integrated into a diode module, fixed on the internal edge of the hole and / or on the fourth main face (by reversible fixing means).

[0176] The through hole is blocked by a cover, in particular forming a seal, which prevents moisture from penetrating into the glass through the recess, on the third side, in particular a reflective metal sheet (aluminum, etc.) or a metallized film (plastic or mineral).

[0177] The cover also forms an optical shutter. The cover protrudes from the inner wall of the hole preferably by no more than 30 mm. It can be placed on the third side or adhesively bonded and / or in adhesive contact with the interlayer (the optical isolator layer for example). The hole and / or the cover and / or the lid is for example at most 100 mm from the clear glass and preferably at least 10 or 20 mm.

[0178] In a third case of light injection, the light source is on the fourth face side, under (opposite) the internal masking layer, and is coupled to the second sheet or to the internal guide layer via an optical redirector film as already described on the third face or on the fourth face or on the internal guide layer.

[0179] In particular, the light source on the fourth face (namely F4) is adjacent to a macroprism also on the fourth face (face F4). The prismatic film possibly between the macroprism and the fourth face (face F4) is transparent. The guide layer is the second sheet.

[0180] The possible inner peripheral masking layer (on face F4) may include a spacer so as not to block the optical coupling, in particular to allow the rays from the light source to pass towards the light redirection element.

[0181] The injection / coupling is via the light redirection element, in particular a textured redirection film on the second sheet (third or fourth face, for example a prismatic polymer film) or on the internal guide layer, the light source being opposite the fourth face, possibly off-center or even offset from this redirection film.

[0182] This redirecting film (transparent) is for example longitudinal in shape along the glazing or rounded in the corners, for example the length of the glass clear. This redirecting film can be of thickness of at most 0.5mm or 0.4mm or 0.3mm or 0.2mm and in particular of at least 80pm or 100pm.

[0183] The redirection element / redirecting film and / or the light source is, for example, at most 100 mm from the glass clear and / or preferably at least 10 or 20 mm.

[0184] By this redirector film oriented towards the second face and between the second face and the third face, the light passing through the second sheet (or the internal guide layer) is redirected into the second sheet (or into the internal guide layer) by reflection, or even diffusion. By this redirector film on the fourth face (or oriented towards the third face for the internal guide layer), the light passing through the second sheet (or the internal guide layer) is redirected into the second sheet of glass (or the internal guide layer) by refraction, or even diffusion.

[0185] The optical redirector film can be a textured and even prismatic film. The prismatic film has a smooth (non-textured) main surface and a textured opposite surface. The prismatic film is flexible and therefore curved to adapt to the curvature of the glazing. The prismatic film can comprise a transparent plastic film (for example, polyester, in particular PET or PC) partially structured forming (micro)prisms or a transparent (planar) plastic film with on a main surface a transparent layer (organic for example, resin) with an arrangement of (micro)prisms. The prismatic film can be side and even on the third side (bare or coated) or side and even on the fourth side (bare or coated). The prismatic film, in particular side and even on the third side, can be reflective (with the guiding layer which is the second glass sheet, in particular inner sheet). The prisms are coated with a reflective layer for example metallic.The reflecting (micro)prisms are oriented towards the second face or the third face.

[0186] With the guide layer being the inner guide layer, the prismatic film, especially on the face oriented towards the second face (F2) of the inner guide layer, can be reflective. The prisms are coated with a reflective layer, for example metallic. The reflective (micro)prisms are oriented towards the second face or the third face.

[0187] The prismatic film side and even on the fourth face (bare or coated, in particular F4) is preferably transparent (with the guide layer which is the second sheet of glass, in particular inner sheet).

[0188] The (micro)prisms are for example oriented towards the second face.

[0189] Light extraction means may include:

[0190] - a texturing of a so-called textured element chosen from the internal guide layer or the second guide-forming sheet, the optical isolator layer, the lower low index (adhesive) layer under the internal guide layer,

[0191] - or an extractor film on the internal guide layer or the second guide-forming sheet, in particular in contact with the optical isolator layer

[0192] - or a diffusing layer comprising a binder and diffusing particles and / or pores, on the internal guide layer or the second guide-forming sheet, in particular in contact with the optical isolator layer

[0193] - a local diffusing zone in the guide layer comprising diffusing particles and / or pores, in particular a laser engraving of a glass sheet (second sheet, internal guide layer).

[0194] The light extraction means may comprise an optical film between the optical isolator layer and the guide layer (inner guide layer, second sheet).

[0195] An example of a film with reflective reliefs, in particular a plastic film with a refractive index greater than or equal to nO with reflective reliefs (prisms) forming light extraction on the third face of an automobile roof, is described in patent WO2013 / 167832.

[0196] The reflective relief preferably has a low roughness so that the reflection is essentially of the specular type. The relief and roughness of the reflective interface are chosen so that the total widths at half-height of the angular distribution of the light intensity emitted by the system are preferably between 30° and 60°.

[0197] Regardless of the roughness of the reflective interface, a height or depth of the relief can be defined which is equal to the distance between the highest and lowest points of said relief. The height of the reflective relief is for example between 5 μm and 1 mm, preferably between 10 μm and 500 μm, in particular between 20 and 100 μm. Such polymer films textured by a relief are available on the market and we can cite for example the film Vikuiti® Image Directing Film II marketed by the company 3M.

[0198] The optical extractor film may comprise a plurality of individual prisms, each consisting of an oblique surface and a surface substantially perpendicular to the general plane of the second sheet.

[0199] Examples of regular relief include a Fresnel lens type relief or a Fresnel prism type relief.

[0200] The relief may be reflective by a low index coating having a refractive index at least 0.04, preferably at least 0.1 lower than the index n0 of the second glass sheet or the index of the optical film with reliefs. The relief may be reflective by the optical isolator layer. The hollows of the reliefs may otherwise be filled by the optical isolator layer.

[0201] Alternatively or cumulatively, the extraction means may comprise a diffusing layer. This diffusing layer comprises diffusing elements in a matrix (transparent and even diffusing), in particular defining at least a first diffusing zone, for example with a width of at least 0.5 mm, in particular a first diffusing zone that is solid and / or comprising a set of discontinuous patterns.

[0202] The scattering particles can be of the order of micrometers in a binder, organic or mineral, allowing these particles to adhere to the surface of the second sheet or even the interlayer. The particles can be made of metal or metal oxide. The light extraction means can also be a textured area of ​​the optical isolator layer.

[0203] The extraction means on the third side can be completely opaque or remain transparent. On the fourth side, the extraction means have a non-zero light transmission.

[0204] The light source preferably comprises a set of light-emitting diodes on a diode support, for example flexible, in particular a printed circuit (such as a PCB for "printed circuit board" in English), in particular an elongated, linear support, a straight or curved strip. Several strips can be provided, connected to each other, etc., along an edge, etc.

[0205] The light source may be between the second and third faces (coupled to the internal guide layer). The diode support may be wholly or partly between the second and third faces, curved (flexible) to adapt to the curvature of the glazing and even the diode support (especially if side-emitting diodes and / or support along the second or third face) protrudes from the edge of the glazing.

[0206] The diode support and the diodes may be in an L-shaped or U-shaped profile which is wholly or partly between the second and third faces (in a groove, within a framing layer, etc.), in particular a curved (flexible) profile to adapt to the curvature of the glazing. The light source may comprise an extractor optical fiber coupled with a primary light source (light-emitting diode(s) etc.).

[0207] Preferably the diodes are surface-mounted components on the front face of a diode carrier which is a printed circuit board called a PCB (with conductive tracks).

[0208] Diodes, for example, have Lambertian or quasi-Lambertian emission.

[0209] The width (or length) of a diode with a single semiconductor chip, usually a square-shaped diode, is preferably at most 5mm.

[0210] The width of the diode support (PCB board), especially the strip, is preferably at most 5cm, better at most 2cm, and even at most 1cm.

[0211] There may be one or more light sources (peripheral, preferably offset from the glass clear), several sets of diodes. The source(s) are elongated, linear over at least 10cm and / or more local, in particular in a hole or several holes separate from the guide layer or a hole in a peripheral layer (framing layer).

[0212] One or more light sources (identical or not) may be used, for example electrical and / or made up of electroluminescent device(s) (LED, etc.). The light source(s) may be monochromatic (emitting in blue, green, red, etc.) or polychromatic, or may be adapted or combined to produce, for example, white light, etc.; they may be continuous or discontinuous, etc.

[0213] The light source can be extended linearly (rectangular strip like a bar of diodes) along one side of the glazing (longitudinal edges) or split (with similar or distinct light, e.g. different color intensity, controlled independently or simultaneously) along both sides.

[0214] The light source, preferably comprising a set of light-emitting diodes, may be under the second face:

[0215] - bonded to the second side (by an upper adhesive layer or not, if the upper adhesive layer is further back)

[0216] -and even between the second face and the third face, in particular linked to the second face or to the third face and / or linked to the internal guide layer (adhesive or with added glue). The light source can be coupled to the edge of the guide layer and all or part be external to the edge of the glazing. The light source (the diodes and even the diode support) can be housed in a polymer encapsulation like that described in application WO2010049638, in particular in figure 15 or in figure 16 and even having a recess for removal, replacement of the source.

[0217] The injection of light, from the light source which preferably comprises a set of light-emitting diodes on a diode support, into the guide layer is preferably: 1) by a slice of the guide layer (second glass sheet, internal, external guide layer)

[0218] 2) by wall delimiting a closed hole (blind or through) of the guide layer guide layer (second sheet of glass, internal guide layer), in particular light source in contact or distant from said edge or wall (space or material in particular adhesive) of the guide layer, the light source preferably being under the second face and even between the second face and the third face.

[0219] Optionally, the light source is in a notch of the edge of the guide layer or is bonded or embedded or in a wall delimiting a closed hole (or in the vicinity) of a transparent framing layer (for optical coupling by the edge) possibly adhesive on the periphery of the edge of the guide layer (internal guide layer, second glass sheet,).

[0220] Or :

[0221] 2) by a light redirection element, local such as an optical redirection film, preferably on the third main face or fourth main face, the light source then being opposite or offset from the fourth main face, in particular the light source and light redirection element offset by a window clear.

[0222] In particular, the optical coupling is direct or via an optic, in particular a light source and a light redirection element offset by a window clear and facing an internal masking layer.

[0223] The power supply to the light source (diodes) can be provided by a current supply integrated into the laminated glazing, for example an electric wire incorporated into the lamination interlayer, or this electric wire can be applied to the fourth main face of the second sheet (inner sheet, passenger compartment side), and possibly be protected by a cover.

[0224] The light source may be on the fourth face, under (facing) the inner masking layer, and is coupled to the guide layer via an optical redirector film as already described.

[0225] The light source on the fourth face can be associated with collimating optics. The light source with a possible collimator can be fixed on the fourth face, by direct gluing or by being spaced and on a peripheral support fixed on the fourth face.

[0226] The possible inner peripheral masking layer (on face F4) may include a spacer so as not to block the optical coupling, in particular to allow the rays from the light source to pass towards the light redirection element.

[0227] This (transparent) redirecting film is for example longitudinal in shape along the glazing or rounded in the corners, for example the length of the window clear. This redirecting film can have a thickness of at most 0.5 mm or 0.4 mm and in particular at least 0.1 mm. The redirecting film and / or the light source is for example at most 100 mm from the window clear and / or preferably at least 10 or 20 mm.

[0228] By this redirecting film on the second side, the light passing through the guiding layer is redirected into the guiding layer by reflection, or even diffusion. By this redirecting film on the third side, the light passing through the glass guiding layer is redirected into the guiding layer by refraction, or even diffusion.

[0229] The optical redirecting film can be a textured and even prismatic film (with a smooth (non-textured, non-functional) main surface and a textured, functional opposite surface), flexible and therefore curved to adapt to the curvature of the glazing, a partially structured transparent plastic film forming (micro)prisms or a transparent (planar) plastic film with a transparent layer on a main surface with an arrangement of (micro)prisms. The (micro)prisms are oriented towards the third face or towards the second face.

[0230] The prismatic film on the second side can be reflective and the reflective (micro)prisms are oriented towards the second side.

[0231] The thickness of the layer(s) between the second face and the third face is preferably at most 2 mm or 1.5 mm or 1 mm.

[0232] The thickness between the first face and the fourth face is preferably at most 9mm or 7mm, particularly for a road vehicle.

[0233] The first sheet is preferably made of mineral glass, possibly tempered, especially if intended to be the outer sheet and if the second sheet is made of organic glass. In particular for road glazing, the first (outer) sheet is preferably at most 2.5 mm thick, even at most 2.2 mm - especially 1.9 mm, 1.8 mm, 1.6 mm and 1.4 mm - and even at least 0.7 mm thick.

[0234] In particular, the first sheet is the outer sheet and even made of mineral glass and the glazing is chosen from a roof, a windshield, a side window.

[0235] The first sheet can alternatively be the internal sheet and in particular, the glazing is chosen from a windshield, a side window, a rear window, a rear door glazing, and in particular the external sheet is made of mineral glass, in particular tempered.

[0236] The second mineral glass sheet in particular may be the second sheet intended to be the inner sheet, in particular with a thickness of at least 0.7 mm, possibly less than that of the first outer glass sheet, even at most 2.2 mm - in particular 1.9 mm, 1.8 mm, 1.6 mm and 1.4 mm - or even at most 1.3 mm or at most 1 mm.

[0237] The total thickness of the first and second sheets (of mineral glass in particular) is preferably strictly less than 5 or 4 mm, even 3.7 mm.

[0238] The first and second sheets of glass (mineral in particular) may be of substantially identical size, for example generally rectangular in shape. The first sheet (if external) may be larger than the second sheet (if internal), thus exceeding this second sheet over at least part of its circumference, possibly a smaller second sheet (passenger compartment side) with a recessed edge in particular of at most 10 or 5 cm from the edge of the first sheet of glass, on one edge or several edges (longitudinal and / or lateral) in particular or over the entire circumference.

[0239] The first sheet may be clear glass with a thermally aerodynamic functional coating on the second side and the possible first top layer (adhesive, thermoplastic or crosslinked polymer) is tinted or clear.

[0240] The first mineral glass sheet may be based on silica, soda-lime, preferably silicosodo-lime, or even aluminosilicate, or even borosilicate. It may have a weight content of total iron oxide (expressed in the form Fe2Os) of at least 0.4% and preferably at most 1.5%.

[0241] The second mineral glass sheet may be based in particular on silica, soda-lime, silico-soda-lime, or aluminosilicate, or borosilicate. To limit absorption, it has a weight content of total iron oxide (expressed in the form Fe2Os) of at most 0.05% (500 ppm), preferably at most 0.03% (300 ppm) and at most 0.015% (150 ppm) and in particular greater than or equal to 0.005%. The redox of the second glass sheet is preferably greater than or equal to 0.15.

[0242] In this text, the light transmission is calculated from the transmission spectrum between 380 and 780 nm taking into account illuminant A and the CIE 1964 reference observer (10°).

[0243] The light transmission and tint of each glass sheet are adjusted by the chemical composition of the glass and the thickness of the glass sheet. The chemical composition of the glass includes a colorless base, preferably soda-lime-silica (but other glasses may be used, including borosilicate or aluminosilicate glasses), as well as a coloring part. The coloring part includes in particular one or more colorants chosen from transition metal oxides - including iron oxides (ferrous and ferric), cobalt oxide, chromium oxide, nickel oxide, rare earth oxides, including erbium oxide, and selenium.

[0244] A clear glass sheet is a sheet having, for example, a light transmission of at least 85%, or even at least 90%. It generally does not include any coloring part except for unavoidable impurities, in particular iron oxides, in a total content of between 0.005 and 0.200% by weight, in particular between 0.010 and 0.150% by weight, or even between 0.030 and 0.120% by weight.

[0245] A tinted glass sheet is a glass sheet having, for example, a light transmission of between 50 and 80%, in particular between 60 and 75%. It comprises a coloring part, for example, consisting of iron oxides, in a total content of between 0.4 and 1.2% by weight, in particular between 0.6 and 1.1% by weight. The glasses obtained are then green, possibly yellowish or blueish-green depending on the proportion of ferrous iron. According to other examples, cobalt oxide, selenium and / or erbium oxide are added in order to impart a tint, for example blue or gray.

[0246] A sheet of over-tinted glass is a sheet of glass having, for example, a light transmission of between 5 and 50%, in particular between 8 and 40%. It comprises a coloring part, for example, consisting of iron oxides, in a total content of between 1.0 and 2.3% by weight, in particular between 1.1 and 2.0% by weight, as well as cobalt and chromium oxides and / or selenium. The coloring part comprises, for example, the following colorants, in the weight contents defined below: Fe2Os (total iron) of 1.2 to 2.3%, in particular of 1.5 to 2.2%, CoO of 50 to 400 ppm, in particular of 200 to 350 ppm, Se of 0 to 35 ppm, in particular of 10 to 30 ppm. The redox is preferably between 0.1 and 0.4, in particular between 0.2 and 0.3. Redox is understood to mean the weight ratio between the ferrous iron content (expressed as FeO) and the total iron content (expressed as Fe2Os). The glasses obtained are in particular green or gray.

[0247] The second sheet may be made of organic glass, in particular based on polyurethane (PU) typically with n'v of approximately 1.47, polycarbonate (PC) typically with n'v of approximately 1.59, poly(methyl methacrylate) (PMMA) typically with n'v of approximately 1.47, poly(vinyl chloride) (PVC) with n'v of approximately 1.54.

[0248] The second organic glass sheet may be flexible to follow the curvature of the first curved sheet or the second organic glass sheet may be preformed.

[0249] With organic glass such as PC or PMMA, thermoplastic polyurethane (TPU) or a cross-linked polymer material is preferred over PVB as the lower thermoplastic adhesive layer (for greater chemical compatibility). Thermoplastic or thermoset EVA can also be used.

[0250] The first sheet of glass may preferably be tempered glass if the second sheet is organic glass.

[0251] In the present invention, the expression tempered glass means glass thermally tempered in the absence of any precision, and preferably glass tempered during a glass bending operation.

[0252] The second face (in particular with a first colorless glass sheet and an upper tinted adhesive layer, first additional layer or other layer) may have a functional coating (stack of thin layers etc.) athermal or heating, comprising an electrically conductive coating, (low emissive, heating). The electrically conductive coating may be a stack of thin layers, with one or more metallic layers (silver etc.) between layers, for example of metal oxide or nitride or oxynitride. The electrically conductive coating is less than 200nm thick and even 160nm thick. The electrically conductive coating may be in contact with a possibly tinted layer which is: - the first additional upper adhesive layer (thermoplastic or crosslinked polymer)

[0253] - an additional adhesive layer, thermoplastic (PVB etc) or crosslinked polymer, non-adhesive thermoplastic film (PET etc).

[0254] In particular, the first sheet is made of clear or extra-clear mineral glass and the electroconductive coating is in contact with a tinted layer (such as those mentioned above).

[0255] A coating is low emissivity, in particular with the normal emissivity is preferably less than 0.50, in particular 0.30 and even 0.20 or even 0.10. It is preferably a stack of thin layers comprising at least one (in particular two, three or four) layer of silver (preferably on the second face or on a film between the second face and the liquid crystal cell, for example within the first upper additional layer) or a layer of a transparent conductive oxide (preferably on the F4 face), in particular chosen from indium tin oxides (ITO), aluminum-doped zinc oxides (AZO) or gallium-doped zinc oxides (GZO) or fluorine-doped tin oxides or antimony-doped tin oxides. These functional layers are generally interposed between dielectric layers based on oxides, nitrides and / or oxide nitrides.The thermal comfort of the occupants is further improved by the presence of such a stack, particularly for a roof, stack on the F4 face based on ITO.

[0256] The invention also relates to a vehicle, in particular a road or automobile vehicle, incorporating the glazing defined above.

[0257] In the mounted position in the motor vehicle, in the case of a laminated roof, the fourth face is preferably the inner face of the motor vehicle, conventionally referred to as face F4. The roof can be opening or fixed.

[0258] The first sheet may be the outer sheet in particular, the glazing is selected from a roof, a windshield, a side window, or the first sheet may be the inner sheet in particular, the glazing is selected from a windshield, a side window, a rear window, a rear door glazing.

[0259] Laminated glass is generally curved, particularly in one or two directions, in order to integrate perfectly with the vehicle body.

[0260] In the case of an interlayer comprising at least one thermoplastic adhesive film (in addition to an OCA film or even an OCA coating), for example the first upper adhesive layer, the method for manufacturing the glazing according to the invention may comprise lamination by autoclave treatment, for example at temperatures of 110 to 160°C and under a pressure ranging from 10 to 15 bars and even prior to the autoclave treatment, the air trapped between the glass sheets and the lamination interlayer is eliminated by calendering or by vacuum. Other details and advantageous characteristics of the invention will appear on reading [Fig. 1] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle according to the invention in a first embodiment.

[0261] [Fig. T] represents a schematic front view of the glazing of Figure 1. [Fig. 2] represents a schematic sectional view of a guest host cell.

[0262] [Fig. 2'] represents a schematic cross-sectional view of an alternative guest host cell.

[0263] [Fig. 3] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a second embodiment.

[0264] [Fig. 4] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a third embodiment.

[0265] [Fig. 5] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a fourth embodiment.

[0266] [Fig. 5'] represents a schematic front view of the glazing of Figure 5.

[0267] [Fig. 6] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a fifth embodiment.

[0268] [Fig. 7] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a sixth embodiment.

[0269] [Fig. 7'] represents a schematic front view of the glazing of Figure 7.

[0270] [Fig. 8] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a seventh embodiment.

[0271] [Fig. 9] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in an eighth embodiment.

[0272] [Fig. 10] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a ninth embodiment.

[0273] [Fig. 11] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle in a tenth embodiment.

[0274] [Fig. 12] shows a view of a motor vehicle with different luminous and variable tint laminated glazing.

[0275] Please note that for the sake of clarity, the various elements of the objects represented are not necessarily reproduced to scale.

[0276] [Fig. 1] represents a schematic sectional view of a luminous and variable-tint laminated glazing for a motor vehicle (or aeronautical or railway) according to the invention in a first embodiment.

[0277] [Fig. 1'] represents a schematic front view of the glazing of Figure 1.

[0278] This is a 100 laminated glazing which is here for example a car roof, rectangular and curved, which includes:

[0279] - a first sheet 1, transparent, made of mineral glass, forming here an external sheet, for example rectangular (of dimensions 300X300 mm for example), with a composition for a tinted solar control function (VENUS VG10 or TSA 4+ glass marketed by the company Saint-Gobain Glass) for example of thickness equal to 2.1 mm, or is a clear glass, with a first main face 11 corresponding here to the face F1 a second main face 12 on the inner side corresponding here to F2, coated with an athermal coating 16' or even heating etc, and an edge (longitudinal slices 10 and 10')

[0280] - a second sheet 1', transparent, for example mineral or organic glass, here of the same dimensions as the glass 1, forming internal glazing, passenger compartment side, having a third main face 13 corresponding to the face F3 and a fourth main face 14 which is here the face F4, and an edge (longitudinal slices 21 and 22 - of thickness equal for example to 2.1 mm or even thinner, of refractive index n'v for example of at least 1.5 in the visible)

[0281] - between the first and second sheets, a multi-layer polymer lamination interlayer, comprising a first upper adhesive layer 31 on the second face side and a first lower adhesive layer 32 on the third face side, at least one of the first upper and lower adhesive layers being an adhesive layer made of crosslinked polymer material

[0282] - between the first upper and lower adhesive layers, a liquid crystal cell 2 containing an electroactive layer (details in figure 2 or 2')

[0283] - a guide layer, with a refractive index nO in the visible, capable of guiding light by total internal reflection, a guide layer here formed by the second sheet 1'

[0284] - a light source 4 in optical coupling with the second sheet,

[0285] - guided light extraction means 6 in the second sheet,

[0286] - between the liquid crystal cell 2 and the guide layer 1', an optical isolator layer 31, 2', optically isolating the liquid crystal cell from the guide layer 1', optical isolator layer with a refractive index n1 in the visible, and with n0-n1 which is at least 0.04 in the visible.

[0287] The optical isolating layer 2' is an adhesive layer made of crosslinked polymer material, forming part of the lamination interlayer, here formed by the first lower adhesive layer 31. For the first upper layer 31, a commercially available ultraviolet PVB film can be chosen, for example the film marketed under the name Eastman RU41 of 0.76 mm. It provides protection at least in the ultraviolet radiation spectrum from 280 nm to 400 nm.

[0288] The second face 12 comprises an internal masking layer 7 forming a masking frame, for example a black enamel (deposited on the second face 12), delimiting a window clear 16 (daylight) here rectangular (see figure 1'). It may be desirable to have an opaque, peripheral internal masking layer on the fourth main face 14, in particular congruent or of a width less than the width of the internal masking layer 7 and adjacent to a possible athermal layer 15.

[0289] The second glass sheet 1' is preferably silico-calcic, colorless, in the same clear or extra-clear as Diamant glass marketed by the company Saint-Gobain Glass, n'v being of the order of 1.52 to 550nm or Optiwhite glass of 1.95mm. The second glass sheet 1' optionally comprises an athermal stack with ITO 15 on the fourth face 14 here F4.

[0290] The liquid crystal cell 2 is surrounded by an external sealing gasket forming a frame 81. The frame 81 is for example made of PVB or epoxy resin. When the liquid crystal cell 2 does not extend over the entire surface of the glazing, the frame 81 serves as a spacer of the same thickness as that of the liquid crystal cell 2, to fill the empty space which would otherwise exist between the two layers 31 and 32. The internal edge 810 of the gasket 81 is under the masking layer 7. Advantageously, said frame 81 preferably constitutes an ultraviolet filter.

[0291] The following resins can be mentioned as low refractive index (photo)crosslinkable liquid adhesives (for the optical isolator layer 2'):

[0292] - based on urethane acrylate, for example from the company Norland, in particular the product called LOCA Norland NOA 1315 (refractive index 1.315) which is an aliphatic urethane acrylate,

[0293] - based on fluorourethane acrylate, for example from the company Shin-A, in particular the product called SFA 335 (refractive index 1.335-1.339) or SFA 387 (refractive index 1.385-1.389),

[0294] - based on acrylate, for example the product called UZ181A (refractive index 1.47) from the company AKChemTeck, or the product called UVEKOL S15 (refractive index 1.44) from the company Allnex.

[0295] A PSA film based on acrylate includes the product called CS986 (refractive index 1.47) from Nitto.

[0296] As a silicone-based PSA film, we can mention the product called Opt Alpha Gel from the Taica company (refractive index 1.41).

[0297] Light-emitting diodes 4 extend along the longitudinal coupling edge 21 of the guide layer 1'. The light injection is peripheral and via the edge of the guide layer 1'. These are front-emitting diodes. Thus, these diodes 4 are aligned on a PCB support 5, for example a parallelepiped strip. The PCB support 5 is spaced and / or fixed, for example, by glue (or double-sided adhesive) to the glazing via the edge 21 and / or even to the face 14 F4. The edge 21 may have a notch (housing the diodes and even the diode support).

[0298] Alternatively, the light source may be one or more primary sources (diodes etc.) coupled directly to a guide, along the coupling edge 21, for example an extractor optical fiber with a light exit zone (texturing of the optical fiber etc.).

[0299] The luminous glazing 100 may have a plurality of extraction zones 6 for the guided light, in particular of given geometry (rectangular, square, round, etc.).

[0300] The means of light extraction are for example: - a texturing of a so-called textured element chosen from the second sheet forming a guide, the optical isolator layer,

[0301] - an extractor film on the second sheet forming a guide, in particular in contact with the optical isolator layer 2' or side F4 14.

[0302] For example, for the light extraction means, this is a diffusing layer 6 (screen-printed, for example, an enamel on glass T or an ink) on the third face 13 or even the fourth face 14. The layer 6 is here in the clear glass 16. Alternatively, it can be a local extractor film placed or glued locally on the third face 13 (in relief or with a diffusing layer or diffusing in mass).

[0303] The extraction means are in the clear view 16 but could be peripheral, under the internal masking layer 7 and visible from the passenger compartment with a saving of a possible internal masking layer on the fourth face.

[0304] For example, the distance between the extraction 6 and the diodes 4 is at least 10 or 40 mm. For example, the extraction 6 occupies from 10 to 100% of the window clear 16. As shown in figure T, it is possible to have a set of disjoint diffusing patterns 6, for example of rectangular shape. It is possible to provide several series of diodes 4 (one edge, two edges, three edges, over the entire periphery) controlled independently and even of different colors. It is possible to choose diodes emitting white or colored light for ambient lighting, reading. It is possible to choose a red light for signaling, possibly alternating with green light. The diode support 5 can be glued to the edge 21.

[0305] Alternatively to glass for the second sheet T, an organic glass can be used, for example PC, PMMA, or a thermoplastic film (PET, etc.) with a thickness of at most 500 or 300 μm, for example. Preferably, the first sheet of glass 1 is then tempered.

[0306] The roof 100 can form, for example, a fixed luminous panoramic roof of a motor vehicle such as a car, mounted from the outside on a body.

[0307] The glazing may have a peripheral polymeric encapsulation, for example in PU (black), in particular polymeric encapsulation such as that described in patent application WO2010049638. The light source may be within the encapsulation and possibly removable, for example by means of a notch as described in patent application WO 2011 092419.

[0308] This glazing 100 can alternatively form a windshield with internal light signaling (pictogram etc.) in particular for driving assistance. The diffusing layer 6 (or any other extraction means) forms for example an anti-collision signal in particular along the lower longitudinal edge. For example, the light comes on (red) when a vehicle in front is too close.

[0309] This glazing 100 can alternately form a front or rear quarter light or even a front windshield with light decoration or external light signaling. The diffusing layer 6 forms, for example, a turn signal repeater or a LOGO. In these latter cases, the second colorless glass sheet (preferably mineral) is the exterior glazing (fourth face is face F1, third face is face F2) and the first glass sheet is the interior glazing (tinted or colorless) with the first face being face F4, and the second face being face F3.

[0310] The liquid crystal cell, in particular forming a peripheral band, a local area in the clear view, can be opposite or offset from the light extraction means for the interior or exterior.

[0311] [Fig. 2] represents a schematic cross-sectional view of a guest host cell 2 used in Figure 1.

[0312] The liquid crystal cell 2 comprises the liquid mixture 22, two alignment layers 23 and 24, two transparent electrodes 25 and 26, two glass encapsulation substrates 27 and 28, and a sealing gasket 29. The two glass encapsulation substrates 27 and 28 are kept spaced apart by glass spacers 22', and together with the sealing gasket 29 form a cavity accommodating the liquid crystal volume 22. The sealing of the cell edge is achieved by the peripheral sealing gasket 29, for example made of epoxy resin or silicone. The spacers 22' are arranged throughout the cavity and preferably also the sealing gasket.The internal surface facing the cavity of each of the two encapsulation substrates 27 and 28 is covered with the electrode 25, respectively 26, for example made of ITO, itself covered with the alignment layer 23, respectively 24, the alignment layers 23 and 24 being in contact with the liquid volume 22. The liquid crystal cell 2 has a total thickness here of between 250 and 350 μm. The height of the cavity corresponds to the height of the spacers, the cavity having a height in particular of the order of 10 μm.

[0313] The two encapsulation substrates 27 and 28 of the liquid crystal cell 2 are made of thin glass. Preferably, they are made of chemically toughened glass. Each of the glass encapsulation substrates 27, 28 has a thickness of less than 1000 μm, in particular between 25 μm and 700 μm, preferably a thickness of less than 300 μm, or even less than 100 μm. The glass thickness of each encapsulation substrate is sufficiently thin to provide the liquid crystal cell with film-like flexibility when it comes to associating the cell with the glass substrates 10 and 11, especially when the latter are curved. In particular, the glass thickness of each glass encapsulation substrate 27, 28 is such that each glass encapsulation substrate has a minimum radius of curvature which is at least of the order of 600 mm and can even reach 200 mm.

[0314] The two encapsulation substrates 27 and 28 of the liquid crystal cell 2 are alternatively polymeric. [Fig. 2'] represents a schematic sectional view of a guest host cell which differs in that the peripheral sealing joint 29' is internal, between encapsulation layers 27,28.

[0315] [Fig. 3] represents a schematic sectional view of a luminous and variable-tint laminated glazing 200 of a motor vehicle in a second embodiment.

[0316] The glazing 200 differs from the glazing 100 in that the first lower adhesive layer 32, in particular made of crosslinked adhesive polymer as possibly the first upper adhesive layer 31) is distinct from the underlying optical isolator layer 2', and in particular has a higher refractive index than the optical isolator layer. For example, the first lower adhesive layer 32 has a thickness of at least 300 pm or 500 pm and the optical isolator layer 2' is less thick.

[0317] [Fig. 4] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 300 in a third embodiment.

[0318] The glazing 300 differs from the glazing 100 in that a second lower adhesive layer 34 has been added under the optical isolator layer 2', 32 (which here remains the first lower adhesive layer). The second lower adhesive layer 34 is for example PVB (or better EVA or TPU if the sheet 2 is made of organic glass such as PC, PMMA) or a crosslinked polymer layer with a higher refractive index than the optical isolator layer 2', 32.

[0319] Furthermore, the first sheet 1 possibly has an edge extending 121 (covering) above the light source fixed to the face F4 (L-shaped support 5) or possibly to the second face 12 (support glued or against the internal masking layer 7 and possibly side-emitting source).

[0320] For example, layer 15 was omitted and a diffusing extractor layer 6' was added on the fourth face F4 14.

[0321] [Fig. 5] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 400 in a fourth embodiment. [Fig. 5'] represents a schematic front view of the glazing unit of FIG. 5.

[0322] The glazing 400 differs from the glazing 100 in that the second glass sheet has a through hole 17 closed by a cover 50 on the third face 13, a hole housing the diodes 4 or even the diode support 5. A cover can close the hole and be fixed on the fourth face 14. There can be two coupling holes for example along the front edge of the roof 400 (see figure 5'). The external seal 81 can be locally opaque (and sufficiently wide) to mask the cover 50, the hole 17, the source 4 from the outside in addition to the layer 7. The diffusing patterns are for example stars. [Fig. 6] represents a schematic sectional view of a luminous and variable tint laminated glazing of a motor vehicle 500 in a fifth embodiment.

[0323] The glazing 500 differs from the previous glazing 400 in that the external seal 81 (notably PVB) extends to the third face 13 F3, covering the cover 510 and alternatively also to the second face 12.

[0324] For example, layer 15 was omitted and a diffusing extractor layer 6' was added on F4 14.

[0325] [Fig. 7] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 600 in a sixth embodiment.

[0326] [Fig. 7'] represents a schematic front view of the glazing of Figure 7.

[0327] The glazing 600 differs from the glazing 100 in that the light source 4 is on the fourth face F4 14 and a prismatic light redirection film 9, preferably reflective, (with prisms 91 forming a textured surface and covered with a reflective layer, for example metallic, and an opposite, smooth surface called base 92), is on the third face F3 13. For example, it is a textured polymer film with a metallic layer, a film with a thickness preferably of at most 200 pm or 150 pm and at least 80 pm or 100 pm.

[0328] The external seal 81 may be locally opaque (and sufficiently wide) to mask the light points of the source 4 from the outside in addition to the layer 7.

[0329] Alternatively, the prismatic film is on the F4 face and is transparent.

[0330] Alternatively, the light source 4 is adjacent to a macroprism also on face F4. The prismatic film is removed or retained between the macroprism and face F4 and is transparent.

[0331] [Fig. 8] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 700 in a seventh embodiment.

[0332] The glazing 700 differs from the previous glazing 600 in that the external seal 81 (notably PVB) extends to the third face 13 F3, covering the reflective prismatic film 9 and alternatively also to the second face 12

[0333] For example, layer 15 was omitted and a diffusing extractor layer 6' was added on F4 14.

[0334] [Fig. 9] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 800 in an eighth embodiment.

[0335] The 800 glazing differs from the 100 glazing in that the guide layer is an internal guide layer 3' for example a thin sheet of glass, thermoplastic (polyester, in particular PET or PC etc.), an adhesive layer. We also added a lower low index adhesive layer 32' with a refractive index n'1 in the visible. Here we choose the same crosslinked polymer material as the optical isolator layer 32, 2' and a lower thickness for example 50pm if in film and 5pm if in coating.

[0336] Alternatively it is a coating like a layer of porous silica sol gel on the F3 face

[0337] 13 for example of 400nm or 800nm ​​and with n'1 of 1.4.

[0338] For example, diodes 4 are side-emitting and coupled to the 30' edge of the internal guide layer 3'.

[0339] A 6' diffusing extractor layer was added on the third face F3 of the 3' internal guide layer in addition to that on the second face F2.

[0340] [Fig. 10] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 900 in a ninth embodiment.

[0341] The glazing 900 differs from the previous glazing 100 in that the internal guide layer 3 has an opening or notch 33' to house the diodes 4 (here with front emission) and the diode support 5 (rectangular or even C-shaped section).

[0342] A 7' masking layer was added to the fourth face F4 14.

[0343] [Fig. 11] represents a schematic sectional view of a luminous and variable-tint laminated glazing unit for a motor vehicle 1000 in a tenth embodiment.

[0344] The 1000 glazing differs from the 900 glazing in that the light source 4 is on the fourth side F4

[0345] 14 and a prismatic light redirection film 9 (prisms 91 and base 92) for example reflector, is on the internal guide layer 3' on the second face side F2 12.

[0346] The prismatic light redirection film 9, preferably reflective, has prisms 91 forming a textured surface and covered with a reflective layer, for example metallic, and an opposite, smooth surface called base 92, is on the internal guide layer 3'. For example, it is a textured polymer film with a metallic layer, a film with a thickness preferably of at most 200 pm or 150 pm and at least 80 pm or 100 pm.

[0347] The external seal 81 may be locally opaque (and sufficiently wide) to mask the light points of the source 4 from the outside in addition to the layer 7.

[0348] Alternatively, the prismatic film is on the opposite side of the inner guide layer 3' and is transparent.

[0349] [Fig. 12] represents a view of a 2000 motor vehicle with different luminous laminated glazing and variable tinting in particular showing the location of the liquid crystal cells:

[0350] - lower or upper longitudinal strips of a windshield 110, 210,

[0351] - full surface (here in two adjacent zones 210, 220) of a roof - full surface (or in several surfaces) of a side glazing 310 and even of a quarter window 410.

[0352] The laminated glazing may comprise two adjacent GH or TN 2 cells, or one GH or TN cell and at least one other liquid crystal system. Between the two cells, there may be the material of the optical isolator layer (by creep etc.) or even the first upper adhesive layer, in particular PVB (by creep etc.) or even an extension of the external seal 81, in particular PVB.

[0353] It may be desired to mask all liquid crystal cell borders with the inner masking layer 7.

Claims

CLAIMS 1. Vehicle glazing, particularly road glazing (100) comprising: - laminated glazing, preferably curved, comprising: - a first sheet (1), transparent, made of mineral glass, with a first main face (11) and a second main face (12) - a second sheet (1'), transparent, with a third main face (13) and a fourth main face (14), - between the first and second sheets, a multi-layer polymer lamination interlayer (3), comprising a first upper adhesive layer (31) on the second face and a first lower adhesive layer (32, 34) on the third face, at least one of the first upper and lower adhesive layers is an adhesive layer made of crosslinked polymer material - between the first upper and lower adhesive layers; a liquid crystal cell (2) containing an electroactive layer (22) comprising a liquid solution of liquid crystals, electroactive layer between a first upper support called electroconductive (27) having an upper electrode (25) and a first lower support called electroconductive (28) having a lower electrode (26), the electroactive layer being between the lower and upper electrodes - a guide layer, with a refractive index nO in the visible, capable of guiding light by total internal reflection, guide layer formed by the second sheet and / or a transparent layer (3') on the third face side, called the internal guide layer, or on the fourth face side, called the external guide layer, - preferably a light source (4) optically coupled with the guide layer, - preferably guided light extraction means (6, 6') in the guide layer, - between the liquid crystal cell and the guide layer, an optical isolator layer (31, 2'), optically isolating the liquid crystal cell from the guide layer, optical isolator layer with a refractive index n1 in the visible, and with n0-n1 which is at least 0.04 in the visible, the optical isolator layer (2') being an adhesive layer made of crosslinked polymer material, forming part of the lamination interlayer, and is an additional layer under the first lower adhesive layer or formed by the first lower adhesive layer (31).

2. Vehicle glazing according to the preceding claim characterized in that which is the internal guide layer (3) or the second glass sheet and even the optical isolator layer is in contact with the guide layer.

3. Vehicle glazing according to one of the preceding claims, characterized in that n1 is at most 1.48 and even n0-n1 is at least 0.1 and even 0.

15.

4. Vehicle glazing according to one of the preceding claims, characterized in that the first lower adhesive layer comprises, and even forms, the optical isolator layer preferably with a thickness of at least 300 pm and even at least 500 pm.

5. Vehicle glazing according to one of the preceding claims, characterized in that the optical insulating layer is a film preferably with a thickness of at least 30 μm or the optical insulating layer is a coating preferably with a thickness of at least 1 μm.

6. Vehicle glazing according to one of the preceding claims, characterized in that the optical insulating layer is in adhesive contact on the third face: - with the guide layer, in particular in adhesive contact with the third face, the second sheet being the guide layer or in adhesive contact with the internal guide layer, - or is in adhesive contact with a second lower adhesive layer, with a refractive index n2 in the visible such that n2>n1, made of thermoplastic or crosslinked polymer material, second lower adhesive layer in adhesive contact with the third face, the second sheet preferably being the guide layer.

7. Vehicle glazing according to one of the preceding claims, characterized in that the optical insulating layer and / or the first lower adhesive layer made of crosslinked polymer is a film based on crosslinked polymer, in particular of at least 30 pm, chosen from: - pressure-sensitive film, preferably chosen from polymers based on acrylate, urethane acrylate or fluoro urethane acrylate or silicone, a so-called post-adhesive film of partially crosslinked polymer before assembly, and preferably photocrosslinked and based on acrylate 8. Vehicle glazing according to one of the preceding claims, characterized in that it comprises between the second face and the third face the following stack, possibly strict, as desired: - 1) first thermoplastic adhesive top layer preferably PVB in particular UVZ filter liquid crystal cell / optical isolator layer / internal guide layer ( / lower low index layer) in particular internal guide layer polymer film, glass or adhesive layer - 2) first upper adhesive layer crosslinked polymer / liquid crystal cell / optical isolator layer / inner guide layer ( / lower low index layer) including inner guide layer polymer film, glass or adhesive layer - 3) first thermoplastic adhesive upper layer, preferably PVB, in particular IIV filter / liquid crystal cell / optical isolator layer / , the optical isolator layer preferably being in contact with the third face of the second sheet, second sheet forming a light guide - 4) first crosslinked polymer adhesive top layer / liquid crystal cell / optical isolator layer, the optical isolator layer preferably being in contact with the third face of the second sheet, second sheet forming a light guide.

9. Vehicle glazing according to one of the preceding claims, characterized in that the internal guide layer is in contact with a lower low index layer which is adhesive or a coating, lower low index layer with a refractive index n'1 in the visible, and with nO-n'1 which is at least 0.04 in the visible.

10. Vehicle glazing according to one of the preceding claims, characterized in that the crosslinked polymer material of the optical insulating layer and / or of a lower adhesive low index layer between the optical insulating layer and the third face, is chosen from polymers based on polyacrylate, in particular urethane acrylate or fluorourethane acrylate or fluoro-silicone acrylate, polysiloxanes, silicone, in particular polydimethylsiloxane, epoxy polymer or polyepoxides, polyurethane, polyvinyl acetate, polyester, in particular the crosslinked polymer material of the optical insulating layer / or of the lower adhesive low index layer is preferably chosen from a polymer based on acrylate, in particular urethane acrylate or silicone acrylate or based on silicone, and the polymer further having a fluorinated function.

11. Vehicle glazing according to one of the preceding claims, characterized in that an external, peripheral seal (81) surrounds the periphery of the edge of the liquid crystal cell, preferably is a thermoplastic adhesive layer, in particular is in contact with the first upper adhesive layer, protruding from the edge of the cell, external seal and first upper adhesive layer are based on PVB or in contact with the second face.

12. Vehicle glazing according to the preceding claim, characterized in that the external seal (81) comprises an opaque zone: - masking a light injection zone, the light source being under the second face -or a light source on the fourth side.

13. Luminous vehicle glazing according to one of the preceding claims, characterized in that it comprises an internal, peripheral, opaque masking layer (7) between the third face and the second face, and even covering the periphery of the optical isolator layer and the liquid crystal cell, in particular in contact with the second main face, in particular defining a window clear, and in that it optionally comprises, in particular when the second sheet is an internal glazing, an internal, peripheral, opaque masking layer on the fourth main face, in particular congruent or of a width less than the width of the internal masking layer.

14. Luminous glazing for a vehicle, in particular a road vehicle, according to one of the preceding claims, characterized in that the light extraction means (6, 6') comprise: - a texturing of a so-called textured element chosen from the internal guide layer or the second guide-forming sheet, the optical isolator layer, a lower low index layer under the internal guide layer, - or an extractor film on the internal guide layer or the second guide-forming sheet, in particular in contact with the optical isolator layer - or a diffusing layer comprising a binder and diffusing particles and / or pores, on the internal guide layer or the second guide-forming sheet, in particular in contact with the optical isolator layer - a local diffusing zone in the guide layer comprising diffusing particles and / or pores, in particular a laser engraving of a glass sheet.

15. Vehicle glazing according to one of the preceding claims, characterized in that an injection of light from the light source in optical coupling with the guide layer, preferably a set of light-emitting diodes, is: 1) by a slice of the guide layer 2) or by a wall delimiting a closed hole in the guide layer, the light source preferably being under the second face and even between the second face and the third face, 3) or by a light redirection element, local such as an optical redirector film, in particular a prismatic film on the third main face or fourth main face, the light source then being opposite or offset from the fourth main face which is preferably face F4.

16. Luminous vehicle glazing according to one of the preceding claims, characterized in that at least one local optical redirector film is a prismatic film on the guide layer forming means for redirecting light in the guide layer coming from a light source (4) on the fourth face side, which is preferably face F4, or even offset from the glazing, in particular - a reflective prismatic film between the inner guide layer and the second face or on the third face with the second sheet which is the guide layer -or transparent prismatic film preferably between the internal guide layer and the third face or on the fourth face with the second sheet which is the guide layer.

17. Vehicle glazing, in particular road vehicle glazing, according to one of the preceding claims, characterized in that the first sheet is the outer sheet, in particular, the glazing is chosen from a roof, a windshield, a side window, or in that the first sheet is the inner sheet, in particular, the glazing is chosen from a windshield, a side window, a rear window, a rear door glazing, in particular the outer sheet is made of mineral glass.

18. Vehicle, in particular a road vehicle, incorporating at least one glazing unit according to one of the preceding claims.