US20140044894A1 - Inkjet ink for printing an anti-slip image - Google Patents

Inkjet ink for printing an anti-slip image Download PDF

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Publication number
US20140044894A1
US20140044894A1 US13/939,252 US201313939252A US2014044894A1 US 20140044894 A1 US20140044894 A1 US 20140044894A1 US 201313939252 A US201313939252 A US 201313939252A US 2014044894 A1 US2014044894 A1 US 2014044894A1
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Prior art keywords
image
printed
glass
glass panel
ink
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US13/939,252
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Andy SHIPWAY
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DIP Tech Ltd
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DIP Tech Ltd
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Priority to US13/939,252 priority Critical patent/US20140044894A1/en
Assigned to DIP-TECH LTD. reassignment DIP-TECH LTD. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: Shipway, Andy
Publication of US20140044894A1 publication Critical patent/US20140044894A1/en
Abandoned legal-status Critical Current

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    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D11/00Inks
    • C09D11/30Inkjet printing inks
    • C09D11/38Inkjet printing inks characterised by non-macromolecular additives other than solvents, pigments or dyes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41MPRINTING, DUPLICATING, MARKING, OR COPYING PROCESSES; COLOUR PRINTING
    • B41M1/00Inking and printing with a printer's forme
    • B41M1/26Printing on other surfaces than ordinary paper
    • B41M1/34Printing on other surfaces than ordinary paper on glass or ceramic surfaces
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41MPRINTING, DUPLICATING, MARKING, OR COPYING PROCESSES; COLOUR PRINTING
    • B41M5/00Duplicating or marking methods; Sheet materials for use therein
    • B41M5/0041Digital printing on surfaces other than ordinary paper
    • B41M5/0047Digital printing on surfaces other than ordinary paper by ink-jet printing
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41MPRINTING, DUPLICATING, MARKING, OR COPYING PROCESSES; COLOUR PRINTING
    • B41M5/00Duplicating or marking methods; Sheet materials for use therein
    • B41M5/0041Digital printing on surfaces other than ordinary paper
    • B41M5/007Digital printing on surfaces other than ordinary paper on glass, ceramic, tiles, concrete, stones, etc.
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B44DECORATIVE ARTS
    • B44FSPECIAL DESIGNS OR PICTURES
    • B44F1/00Designs or pictures characterised by special or unusual light effects
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C17/00Surface treatment of glass, not in the form of fibres or filaments, by coating
    • C03C17/006Surface treatment of glass, not in the form of fibres or filaments, by coating with materials of composite character
    • C03C17/007Surface treatment of glass, not in the form of fibres or filaments, by coating with materials of composite character containing a dispersed phase, e.g. particles, fibres or flakes, in a continuous phase
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C17/00Surface treatment of glass, not in the form of fibres or filaments, by coating
    • C03C17/02Surface treatment of glass, not in the form of fibres or filaments, by coating with glass
    • C03C17/04Surface treatment of glass, not in the form of fibres or filaments, by coating with glass by fritting glass powder
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C17/00Surface treatment of glass, not in the form of fibres or filaments, by coating
    • C03C17/34Surface treatment of glass, not in the form of fibres or filaments, by coating with at least two coatings having different compositions
    • C03C17/3411Surface treatment of glass, not in the form of fibres or filaments, by coating with at least two coatings having different compositions with at least two coatings of inorganic materials
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D11/00Inks
    • C09D11/02Printing inks
    • C09D11/03Printing inks characterised by features other than the chemical nature of the binder
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D11/00Inks
    • C09D11/30Inkjet printing inks
    • C09D11/32Inkjet printing inks characterised by colouring agents
    • C09D11/322Pigment inks
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D11/00Inks
    • C09D11/30Inkjet printing inks
    • C09D11/36Inkjet printing inks based on non-aqueous solvents
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C2/00Building elements of relatively thin form for the construction of parts of buildings, e.g. sheet materials, slabs, or panels
    • E04C2/54Slab-like translucent elements
    • E04C2/546Slab-like translucent elements made of glass bricks
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04FFINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
    • E04F15/00Flooring
    • E04F15/02Flooring or floor layers composed of a number of similar elements
    • E04F15/02172Floor elements with an anti-skid main surface, other than with grooves
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04FFINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
    • E04F15/00Flooring
    • E04F15/02Flooring or floor layers composed of a number of similar elements
    • E04F15/02177Floor elements for use at a specific location
    • E04F15/02188Floor elements for use at a specific location for use in wet rooms
    • EFIXED CONSTRUCTIONS
    • E06DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
    • E06BFIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
    • E06B3/00Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41MPRINTING, DUPLICATING, MARKING, OR COPYING PROCESSES; COLOUR PRINTING
    • B41M7/00After-treatment of prints, e.g. heating, irradiating, setting of the ink, protection of the printed stock
    • B41M7/009After-treatment of prints, e.g. heating, irradiating, setting of the ink, protection of the printed stock using thermal means, e.g. infrared radiation, heat
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C2217/00Coatings on glass
    • C03C2217/40Coatings comprising at least one inhomogeneous layer
    • C03C2217/43Coatings comprising at least one inhomogeneous layer consisting of a dispersed phase in a continuous phase
    • C03C2217/46Coatings comprising at least one inhomogeneous layer consisting of a dispersed phase in a continuous phase characterized by the dispersed phase
    • C03C2217/47Coatings comprising at least one inhomogeneous layer consisting of a dispersed phase in a continuous phase characterized by the dispersed phase consisting of a specific material
    • C03C2217/475Inorganic materials
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C2217/00Coatings on glass
    • C03C2217/70Properties of coatings
    • C03C2217/77Coatings having a rough surface
    • C03C2217/775Coatings having a rough surface to provide anti-slip characteristics
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C2218/00Methods for coating glass
    • C03C2218/10Deposition methods
    • C03C2218/11Deposition methods from solutions or suspensions
    • C03C2218/119Deposition methods from solutions or suspensions by printing
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/24Structurally defined web or sheet [e.g., overall dimension, etc.]
    • Y10T428/24802Discontinuous or differential coating, impregnation or bond [e.g., artwork, printing, retouched photograph, etc.]
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/24Structurally defined web or sheet [e.g., overall dimension, etc.]
    • Y10T428/24802Discontinuous or differential coating, impregnation or bond [e.g., artwork, printing, retouched photograph, etc.]
    • Y10T428/24926Discontinuous or differential coating, impregnation or bond [e.g., artwork, printing, retouched photograph, etc.] including ceramic, glass, porcelain or quartz layer
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/29Coated or structually defined flake, particle, cell, strand, strand portion, rod, filament, macroscopic fiber or mass thereof
    • Y10T428/2982Particulate matter [e.g., sphere, flake, etc.]

Definitions

  • the present glass panels relate to slip-resistant developable image glass panels.
  • Flooring tiles are commonly made of ceramic, clay, or stone. These tiles often have a special surface treatment that increases the friction coefficient and prevents slippage making movement on the tile safe. The tiles are also processed to sustain prolonged periods of wear.
  • glass panels have become popular for different decorative applications including large colored panels, colored glass walls, doors, and floor tiles. It is known to place different images on one or both sides of a glass panel either to limit visual access through the glass sheets or implement a desired decorative pattern.
  • glass has a low coefficient of friction, particularly when it is wet.
  • Cleaning of both ceramic and glass tiles covered floors require application of a cleaning fluid, which in most of the cases is water with a detergent.
  • Application of the cleaning fluid to a tile or panel temporarily reduces the friction coefficient and in order to avoid damages to human beings, warning signs are usually temporary placed on segments of the floor being cleaned. When the cleaning fluid evaporates, the friction coefficient restores it original value and the signs are removed.
  • a glass panel with high slip resistance can be achieved by depositing on the surface of the glass panel an ink layer and firing the ink such that glass frit particles present in the ink become fused to each other and to the glass, and non-melting materials present in the ink provide a rough surface with specific chemistry, thus changing the friction coefficient of the surface.
  • more than one image could be printed on the same surface of the glass panel.
  • two images could be printed on the same surface of the glass panel.
  • One of the images could have a pleasing aesthetic appearance and the other image could increase the safety of walking/moving on the glass floor.
  • One of the images could be a monochrome image and the other one could be a color image. Alternatively, both images could be color images.
  • the monochrome image could be just a surface having a type of “etched glass” appearance.
  • One of the images, typically the image printed second, could at least partially overlap the first image or printed earlier image.
  • the second image could be an opaque image printed by an ink that after being fired possess a high friction coefficient and supports formation of a non-slip surface.
  • the first printed image could be a pictorial image creating an aesthetic impression. Alternatively, it could provide certain information that could be important to the viewer or observer of the image. This information could be a warning message regarding the current status of the glass panel surface or could be another message.
  • the second image, at least partially overlapping the first image is a partially opaque or an opaque image obstructing viewing of the first image.
  • the properties of the ink used to print the second image could be selected such as to facilitate changes in opacity of the second image. Changes in the opacity of the second image could support unobstructed or partially obstructed observation of the first image. The changes in the opacity of the second image could be caused for example, by a fluid placed over the second image. The fluid could be e.g.
  • a cleaning fluid an artistically applied fluid, atmospheric precipitation such as rain, or an accidentally spilled drink
  • the change in the opacity of the second image could be a temporary change facilitated by the presence of the fluid.
  • the second image opacity is restored when the fluid is removed from the image, for example, by evaporation.
  • the second image When the fluid is present and the second image becomes at least partially transparent, it reveals the overlapped or partially masked by the second image segments of the first image and facilitates observation of the first image, which could be a pictorial image or just a warning message for example, “Caution Wet Floor” or any other message,
  • Both the first and the second image could be fired and fused into the glass panel surface. Fusion of the image into the glass panel provides the images and the glass surface with a high friction coefficient and resistance to wear. Whether wet or dry the second image maintains the high friction coefficient.
  • Both the first and the second image are printed images and could be printed by different printing techniques for example, screen printing or inkjet printing.
  • the anti-slip ink is printed by inkjet printing
  • the ink thickness can be varied over the area of the printed image, resulting in increased roughness that can further improve the macroscopic anti-slip properties.
  • the present document discloses printing of images by inkjet printing methods and accordingly discloses the inks suitable for printing the first and the second image. It discloses inks that could be fired and fused into the glass panel surface. Inks that upon firing fuse to the glass surface and form an image possessing high friction coefficient.
  • Such surface, or at least the segment of the surface covered by the second image is inherently a high-slip resistant surface.
  • the glass panel surface covered by the second image has high hardness and excellent wear resistance.
  • Such surface supports safe human being walking as well as repositioning of some objects, for example, furniture without damaging the surface.
  • the process for making a slip-resistant fluid developable image glass panels results in a long lasting, inherently high-slip resistant glass panel without the need of any post-manufacturing surface modification step or additional of slip-resistant material or coatings.
  • the advantages of the present glass panel coating and production process are significant because it could be safer to walk on glass tiles and when the glass cleaning by a cleaning fluid is in progress or occasionally spilled fluid or oil is on the surface of the glass panel, it will automatically reveal the developable warning message.
  • the glass panels disclosed could find use in roofing and walls of residential and office buildings.
  • the ink printed on the outside surface of the glass panels will be nominally opaque in sunny weather, providing relief from excessive sunlight and heat. In rainy weather the roof and walls will become more transparent, allowing a greater proportion of light to enter through the roof.
  • glass panel means a generally transparent glass sheet including a first surface, and a second surface. The first and second surfaces are being spaced apart by thickness of the glass sheet.
  • a glass panel could have images on one or both of its surfaces. Glass panels of different size and thickness could be used as flooring tiles, decorative walls, and roofing material.
  • FIG. 1 is a simplified illustration of a glass panel printing process according to an example
  • FIG. 2 is a simplified illustration of a glass panel with two images printed on one of its surfaces according to an example
  • FIG. 3 is a simplified illustration of a glass panel with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example
  • FIG. 4 is a simplified illustration of a glass panel with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example
  • FIG. 5 is a simplified illustration of a glass panel with two images printed on different surfaces of the glass panel according to an example
  • FIG. 6 is a simplified illustration of decorative glass floor or a walk side with improved slip-resistance and revealed image according to an example.
  • FIGS. 7A and 7B are simplified illustrations of a building with a roof covered by the present glass panels according to an example.
  • FIG. 1 is a simplified illustration of a glass panel printing process according to an example.
  • a glass panel 100 is generally transparent glass sheet including a first surface 104 , and second surface 108 .
  • the first surface 104 and the second surface 108 are being spaced apart by thickness 112 of the glass panel.
  • a first image 116 is printed on first surface 104 of the glass panel 100 and a second image 120 is printed on the same first surface 104 of glass panel 100 .
  • Both the first image 116 , printed on the surface of the glass panel 100 , and the second image 120 could be monochrome or color images.
  • Both the first and the second images are fired at a temperature of about 500 degrees C. to 700 degrees C. and more typically about 570 degrees C., which is the Tg temperature of most industrial glasses.
  • both first image 116 and second image 120 become fused or imbedded into the glass panel.
  • FIG. 2 is a simplified illustration of a glass panel with printed on one of its surfaces two images according to an example.
  • Second image 120 is printed on surface of the glass panel 100 by an ink that upon firing forms a partially opaque or an opaque image.
  • the partially opaque or opaque image is fused with the glass panel and forms a wear resistant layer with a high friction coefficient.
  • Second image 120 after being fired provides the glass panel at least in the image area with non-slip properties. It is not necessary to fire the first image before printing the second image.
  • the first image is printed by screen printing and the second image by inkjet printing.
  • both the first and the second images could be printed by inkjet printing.
  • Inkjet is a non-contact printing method so the unfired first printed image will not be damaged by the printing of the second image on top of it.
  • the first printed image only needs to be dried of volatile ink components, and then the second image can be printed on top of the first image. Both images can subsequently be fired together in a single heat-treatment.
  • FIG. 3 is a simplified illustration of a glass panel with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example.
  • Second image 120 when covered by a fluid layer 300 becomes at least partially transparent to reveal the first image 116 printed on the same first surface 104 of the glass panel 100 .
  • the fluid could be a transparent fluid such as water, water with a detergent, and other cleaning fluids and sprays suitable for cleaning glass surface.
  • the fluid could also be an artistically applied fluid, atmospheric precipitation such as rain, or an accidentally spilled drink or oil, or hydrocarbons, and the change in the opacity of the second image could be a temporary change facilitated by the presence of the fluid.
  • FIG. 4 is a simplified illustration of a glass panel 400 with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example.
  • the first image 404 is a textual image.
  • the textual image of FIG. 4 provides information on the status of surface 104 on which the pictorial or textual image is printed. It this case textual image 404 informs a person that the floor is wet and he or she should be careful when walking on it.
  • FIG. 5 is a simplified illustration of a glass panel with two images printed on different surfaces of the glass panel according to an example.
  • Second image 120 is a color image printed on a first surface 104 of a glass panel 500 .
  • Second image 120 could be fired at a temperature of about 500 degrees C. to 700 degrees C. and more accurately about 570 degrees C., which is close to the Tg temperature of most industrial glasses. As a result of the firing, process second image 120 becomes opaque and fused to or imbedded into the glass panel.
  • Image 120 forms a wear resistant layer with a high friction coefficient and slip resistant properties.
  • first image 116 could be printed on second surface of glass panel 500 and it is not necessary fired.
  • second image 120 is covered by a fluid layer, for example, in course of the glass panel cleaning, the second image becomes at least partially transparent to reveal the first image 116 printed on the second surface 108 of the glass panel 500 .
  • Both the first and the second image could be printed by screen printing or by inkjet printing or by a combination of both printing methods depending on the length of the printing run.
  • the first image such as a warning message could be printed by screen printing
  • the second image could be a customized image selected according to particular customer requests and desires.
  • the thickness of the printed anti-slip ink layer could be varied. This is easily achieved by digital printing and in particular inkjet printing but much more difficult to do by e.g. screen printing.
  • This “printed texture” provides further roughness to the surface of the printed ink layer on the sub-millimeter-millimeter-scale, which further improves the anti-slip quality of the layer.
  • the first image 116 could be printed by inks that fuse with the glass panel upon firing.
  • inks could have a viscosity between 10 and 100 cps at jetting temperature and include an organic solvent as a vehicle, which is liquid at room temperature and as a binding composition include sub-micron particles of a glass frit composed of SiO 2 , Bi 2 O 3 , and B 2 O 3 .
  • the glass frit particles would typically have an average size between 0.4 and 1.2 microns.
  • the ink would also include particles of heat resistant inorganic pigments, for example, such as metal oxides having an average size of less than 1.2 microns.
  • Suitable metal oxides could be chromium oxide, copper oxide, titanium oxide, Cu—Cr 2 O 3 oxides; titanium dioxide, iron oxide, Nickel antimony titanium yellow rutile, Cobalt, aluminium, blue spinel; and combinations of two or more of the above pigments.
  • the organic solvent could be for example, PM (propylene glycol mono-methyl ether), DPM (dipropylene glycol mono methyl ether), TPM (tripropylene glycol mono methyl ether), PnB (propylene glycol mono n-butyl ether), DPnB (dipropylene glycol mono butyl ether), TPnB (trisropylene glycol mono n-butyl ether), PnP (propylene glycol mono propyl ether), DPnP (dipropylene glycol mono propyl ether), TPnB-H (propylene glycol butyl ether), PMA (propylene, glycol mono-methyl ether acetate), Dowanol DB (Diethylene glycol mono butyl ether) or other ethylene or propylene glycol ethers or a combination of two or more of the above solvents.
  • PM propylene glycol mono-methyl ether
  • DPM dipropylene glycol mono
  • the ink composition could also include a combination of dispersants, one or more wetting agents and one or more UV-curable agents as well as a number of photoinitiators or photosensitizers.
  • the second image 120 could be printed by inks, the formulation of which include elements supporting the anti-slip ink properties and facilitating ink transparency when it is covered by a layer of transparent fluid.
  • the anti-slip particles would be made from alumina.
  • Alumina has a very high hardness (9.0 on Mohs scale). More importantly, it was unexpectedly discovered that alumina supports better anti-slip property than titania, copper chromate, or silicon dioxide usually used in and-slip coatings. Without being bound by any specific theory it is believed that the anti-slip property is at least in part due to the alumina's surface chemistry. For example, high roughness surfaces with different chemistry can instead produce an opposite effect, due to the “Lotus Effect” (The “Lotus Effect” refers to the very high water repellence by a highly structured super hydrophobic surface.).
  • alumina Another reason for selecting alumina is its refractive index (n ⁇ 1.760-1.772), which is close to that of the bismuth-based glass frit (n ⁇ 1.7). It is believed that this is what allows the anti-slip layer to become nominally or partially transparent when the surface is made wet (i.e. by applying a liquid).
  • Alumina 99.99% purity, nominal particle size 0.3-1.7 micron
  • Disperbyk-106 was stirred in DPM with Disperbyk-106 to give a slurry containing 70% alumina and 2% dispersant.
  • An equal weight of zirconia milling beads was added and the mixture was stirred vigorously until the measured particle size decreased from the initial average of 1.7 microns to an average of 0.74 microns. The milling beads were then removed by filtration.
  • the alumina dispersion was used in different percentages (21% to 30%) for preparation of the inks possessing anti-slip properties.
  • the average particle size of the anti-slip particles could be in the range 0.3-1.5 micron (for inkjet inks), and typically between 0.8 and 1.2 microns.
  • the anti-slip particles could be of a larger size, for example 10 or 15 micron, or even more.
  • the amount and size of the anti-slip particles is selected to support a proper balance between the settling behavior of the ink, the jettability, the viscosity, and the fired ink layer roughness provided by large particles, within the context of the printer being used.
  • the kit component or components are selected of a durable composition.
  • the anti-slip frit supports high acid-resistance, and because of it is suitable for use as a flooring material that could sustain accidental acidic spillages (for example, sonic types of food or drinks) or cleaning by aggressive substances.
  • Such frit properties are not available from most currently used low Tg frits, e.g. bismuth or zinc-based frits. Those frits have poor acid-resistance and relatively low durability.
  • One of the properties of the anti-slip or non-slip ink is its excellent scratch-resistance i.e., a fired ink must not be removed from the substrate by repeated scratching with a 30N sclerometer.
  • a suitable ratio of glass frit to anti-slip particles in the ink was established through experiment.
  • the mass ratio of glass frit to anti-slip particles in the ink is 9:5, more generally between 9:4 and 9:6.
  • This proportion of non-fusing material is more than is used in conventional colored inks (i.e. in the form of pigments).
  • the glass frit is usually used as 70% dispersion in different solvents and the proportion of the dispersion can vary between 40% to 60%.
  • the conventional colored inks require gloss, but the present anti-slip ink does not require gloss.
  • too high an anti-slip particle concentration could result in reduced mechanical strength of the fused layer, which of course is not acceptable.
  • inkjet inks typically contain leveling additives rather than anti-sagging additives, on account of the low layer thickness that they are printed at.
  • the ink for printing the second image is preferably free of leveling additives, and could contain anti-sagging additives. This means that the anti-slip inks can provide more uneven surfaces and higher-resolution, thicker textures, then other firable inks.
  • the ink of example 1 was prepared by mixing the following components:
  • Alumina dispersion (as described above): 23% Glass frit JFC-004 (70% dispersion in DPM with 45% Disperbyk-180): Black pigment JPC-601 (Johnson Matthey dispersion): 3% Dowanol DB (solvent) 5% Cyclohexanone (solvent): 4.85% Laropal A81 solution (binder; 20% solution in DPM): 10% Disperbyk-180 (dispersant and wetting agent): 2% Byk-415 solution (anti-sagging agent; 10% solution 5% in cyclohexanone): Byk-430 solution (anti-sagging agent; 10% solution 2% in cyclohexanone): Byk-341 solution (surface tension reducer; 0.15% 10% solution in DPM):
  • the ink was printed on glass in a pattern of 10 mm-sized spot with the glass surface coverage of about 40%. Samples with and without light background of a different ink in the unprinted 60% of the glass surface were prepared. Spots with and without a texture pattern were printed.
  • the PTV (Pendulum Test Value) characterizing the slip resistance value of a surface, of wet glass is around 10, and of wet glass printed with similar patterns of standard ink such as for example, DIP SPECTRUMTM inks commercially available from Dip-Tech Ltd., Kfar Saba 44643 Israel is 12.
  • the PTV of the wet samples (average of three samples measurements according to ASTM E303) were measured to he as follows:
  • the ink of Example 2 was prepared by mixing the following components:
  • Alumina dispersion (as described above): 21% Glass frit (70% dispersion in DPM with Dispersant): 50% Dowanol DB (solvent) 5% Laropal A81 solution (binder; 20% solution in DPM): 10% Disperbyk-106 (dispersant and wetting agent): 1% Byk-415 solution (anti-sagging agent; 10% solution in 9% cyclohexanone): Byk-430 solution (anti-sagging agent; 10% solution in 3.8% cyclohexanone): Byk-341 solution (surface tension reducer; 0.2% 10% solution in DPM):
  • the ink was printed on glass in a pattern of 10 mm-sized spot with a glass surface coverage of 40%. Spots with “target” and “spider web” textures were printed.
  • the PTV of wet glass is around 10, and of wet glass printed with similar patterns of standard ink (Dip-Tech black ink) is 12.
  • the PTV of the wet samples (average of three samples measurements according to ASTM E303 Standard) were measured to be as follows:
  • Samples were printed which included standard black ink, such as DIP SPECTRUMTM ink commercially available from Dip-Tech Ltd., Kfar Saba 44643 Israel covered with ink of Example 2. These samples were light grey in appearance when dry, but became dark grey upon wetting with water, oil, or other liquids. This process was entirely reversible, with the sample becoming light grey again after frying, and could be carried out for multiple cycles without any evidence of loss of function. Pictures and messages (as dark grey on light grey) could he created by painting on the sample with water.
  • standard black ink such as DIP SPECTRUMTM ink commercially available from Dip-Tech Ltd., Kfar Saba 44643 Israel covered with ink of Example 2.
  • the ink of Example 3 was prepared by mixing the following components:
  • the ink was printed on glass in a pattern of 10 mm-sized spot with a glass coverage of 40%. Spots with and without a lower-thickness inner spot (thus creating some texture) were printed.
  • the PTV of wet glass is around 10.
  • the PTV of the wet samples (average of three samples measurements according to, ASTM E303) were measured to be as follows:
  • index-matching of frit and alumina
  • the ink of Example 4 was prepared by mixing the following components:
  • the ink was used to create drawdown samples. After drawdown and firing the ink on glass, scratch-resistance was found to be within specifications (fired ink could not be removed by repeated scratching with a sclerometer set to 30N). The anti-slip quality of the samples was qualitatively found to be comparable to the other alumina-containing inks.
  • the printed side of the glass was exposed to an etch solution of (i) 0.1M HCl; (ii) 0.1N H 2 SO 4 ; (iii) 4% acetic acid and (iv) 10% citric acid, at ambient temperature for a period of 15 minutes. After cleaning the glass, no sign of the exposure to etch solution was evident.
  • the ink was printed on glass in a pattern of 10 mm-sized spots with a glass surface coverage of 40%. Spots with “spider web” textures were printed.
  • the PTV of wet glass is around 10, and of wet glass printed with similar patterns of standard ink (Dip-Tech black ink) is 12.
  • the PTV of the wet samples (average of three samples measurements according to ASTM E303 Standard) were measured to be 70, i.e. exceeding even the most strict specifications for industrial anti-slip surfaces.
  • the glass panel and the method of revealing a hidden image could be used in curtain walls, floors, in shower areas and kitchen back splashes.
  • the second image could be a standard and well accepted image of polka dots or line patterns, or could be a pleasing, artistic image. Image color selection is almost unlimited since the printing is conducted by, for example, standard Cyan, Magenta, Yellow, White, and Black color inks.
  • the hidden image is revealed when the second image printed on the first surface of the glass panel becomes covered by a transparent fluid.
  • the fluid could be applied intentionally, in course of the cleaning process or occasionally, when it is spilled in a kitchen or the shower area becomes wet or when it rains.
  • FIG. 6 is a simplified illustration of decorative glass panel covered floor or a walk side with improved slip-resistance and revealed image according to an example.
  • the decorative glass floor or walk side 600 with improved slip-resistance includes an assembly of generally transparent glass panels (tiles) 608 , similar to panels (tiles) 100 or 400 or 500 with each panel/sheet including a first image printed on one of the surfaces of the glass panel/sheet and a second image printed on the same surface of the glass sheet and at least partially overlapping the first image.
  • the second image is printed over at least a segment of the first image and forms a partially opaque or an opaque imbedded into the glass sheet image with a high friction coefficient improving the slip-resistance of the glass panel (tile).
  • the walk side is surrounded on both sides by greenery 604 schematically shown as trees.
  • greenery 604 schematically shown as trees.
  • the water makes the second image printed on the glass panels transparent and develops/reveals the first, hidden image, which is a warning that the side walk has become slippery could be observed.
  • FIG. 7A is a simplified illustration of a building 700 with a roof 704 covered by the present glass panels.
  • the ink printed on the outside (first surface) of the glass panels will be nominally opaque in sunny weather, providing relief from excessive sunlight and heat.
  • the roof 708 FIG. 7B
  • the roof 708 FIG. 7B
  • the roof 708 FIG. 7B
  • In sunny days such a roof saves electricity by reducing the air conditioning costs and in rainy days, it reduces the amount of electricity required to provide adequate illumination for work or living.
  • the second image needs to be he printed on the outside (first) surface of the glass panel, although for aesthetic or decorative purposes, the first image that is obscured or revealed by the second image could be also printed.
  • the first image could be printed on the first (outer) surface of the glass panel or on the second (inner) surface of the glass panel.
  • the disclosed glass panels provide environmentally friendly, fully recyclable construction material.
  • the glass panels enhance electricity savings and provide a pleasing aesthetic appearance to interior or exterior images.
  • the glass panels with slip-resistant developable image glass panel could be produced in different sizes and with different images.
  • the developable image saves the need for warning signs and facilitates cleaning processes.
  • the high friction non-slip surface reduces slip and fall accidents and reduces liability costs and insurance premiums especially far the operators of public spaces where the accidents tend to occur.

Abstract

Anti-slip, ink jet inks and a glass panel having the anti-slip ink printed thereon.

Description

  • The present application claims priority to U.S. provisional application for patent 61/670,735 filed Jul. 12, 2012, the entire contents of which is incorporated herein by reference.
  • FIELD
  • The present glass panels relate to slip-resistant developable image glass panels.
  • BACKGROUND
  • Flooring tiles are commonly made of ceramic, clay, or stone. These tiles often have a special surface treatment that increases the friction coefficient and prevents slippage making movement on the tile safe. The tiles are also processed to sustain prolonged periods of wear.
  • Recently, glass panels (tiles) have become popular for different decorative applications including large colored panels, colored glass walls, doors, and floor tiles. It is known to place different images on one or both sides of a glass panel either to limit visual access through the glass sheets or implement a desired decorative pattern. However, glass has a low coefficient of friction, particularly when it is wet.
  • There are two competing requirements presented when glass panels (tiles) are used as a flooring material, namely aesthetic appearance versus safety of the glass floor. Generally, the glass surfaces could have different finishes and images printed on them that would be visually attractive. These surfaces, whilst aesthetically very pleasing to the eye of a viewer, could be slippery especially when they become cleaned or contaminated with fluids. In particular ceramic coatings, often required over plastic coatings on account of their better wear characteristics, can be as slippery as bare glass.
  • Cleaning of both ceramic and glass tiles covered floors require application of a cleaning fluid, which in most of the cases is water with a detergent. Application of the cleaning fluid to a tile or panel temporarily reduces the friction coefficient and in order to avoid damages to human beings, warning signs are usually temporary placed on segments of the floor being cleaned. When the cleaning fluid evaporates, the friction coefficient restores it original value and the signs are removed.
  • SUMMARY
  • A glass panel with high slip resistance can be achieved by depositing on the surface of the glass panel an ink layer and firing the ink such that glass frit particles present in the ink become fused to each other and to the glass, and non-melting materials present in the ink provide a rough surface with specific chemistry, thus changing the friction coefficient of the surface. Generally, more than one image could be printed on the same surface of the glass panel. For example, two images could be printed on the same surface of the glass panel. One of the images could have a pleasing aesthetic appearance and the other image could increase the safety of walking/moving on the glass floor. One of the images could be a monochrome image and the other one could be a color image. Alternatively, both images could be color images. The monochrome image could be just a surface having a type of “etched glass” appearance. One of the images, typically the image printed second, could at least partially overlap the first image or printed earlier image. The second image could be an opaque image printed by an ink that after being fired possess a high friction coefficient and supports formation of a non-slip surface.
  • The first printed image could be a pictorial image creating an aesthetic impression. Alternatively, it could provide certain information that could be important to the viewer or observer of the image. This information could be a warning message regarding the current status of the glass panel surface or could be another message. The second image, at least partially overlapping the first image, is a partially opaque or an opaque image obstructing viewing of the first image. The properties of the ink used to print the second image could be selected such as to facilitate changes in opacity of the second image. Changes in the opacity of the second image could support unobstructed or partially obstructed observation of the first image. The changes in the opacity of the second image could be caused for example, by a fluid placed over the second image. The fluid could be e.g. a cleaning fluid, an artistically applied fluid, atmospheric precipitation such as rain, or an accidentally spilled drink, and the change in the opacity of the second image could be a temporary change facilitated by the presence of the fluid. The second image opacity is restored when the fluid is removed from the image, for example, by evaporation.
  • When the fluid is present and the second image becomes at least partially transparent, it reveals the overlapped or partially masked by the second image segments of the first image and facilitates observation of the first image, which could be a pictorial image or just a warning message for example, “Caution Wet Floor” or any other message,
  • Both the first and the second image could be fired and fused into the glass panel surface. Fusion of the image into the glass panel provides the images and the glass surface with a high friction coefficient and resistance to wear. Whether wet or dry the second image maintains the high friction coefficient.
  • Both the first and the second image are printed images and could be printed by different printing techniques for example, screen printing or inkjet printing. In the case that the anti-slip ink is printed by inkjet printing, then the ink thickness can be varied over the area of the printed image, resulting in increased roughness that can further improve the macroscopic anti-slip properties. The present document discloses printing of images by inkjet printing methods and accordingly discloses the inks suitable for printing the first and the second image. It discloses inks that could be fired and fused into the glass panel surface. Inks that upon firing fuse to the glass surface and form an image possessing high friction coefficient. Such surface, or at least the segment of the surface covered by the second image, is inherently a high-slip resistant surface. In addition to high friction coefficient the glass panel surface covered by the second image has high hardness and excellent wear resistance. Such surface supports safe human being walking as well as repositioning of some objects, for example, furniture without damaging the surface.
  • The process for making a slip-resistant fluid developable image glass panels results in a long lasting, inherently high-slip resistant glass panel without the need of any post-manufacturing surface modification step or additional of slip-resistant material or coatings.
  • The advantages of the present glass panel coating and production process are significant because it could be safer to walk on glass tiles and when the glass cleaning by a cleaning fluid is in progress or occasionally spilled fluid or oil is on the surface of the glass panel, it will automatically reveal the developable warning message.
  • The glass panels disclosed could find use in roofing and walls of residential and office buildings. The ink printed on the outside surface of the glass panels will be nominally opaque in sunny weather, providing relief from excessive sunlight and heat. In rainy weather the roof and walls will become more transparent, allowing a greater proportion of light to enter through the roof.
  • GLOSSARY
  • As used in the present disclosure the term “glass panel” means a generally transparent glass sheet including a first surface, and a second surface. The first and second surfaces are being spaced apart by thickness of the glass sheet. A glass panel could have images on one or both of its surfaces. Glass panels of different size and thickness could be used as flooring tiles, decorative walls, and roofing material.
  • DRAWINGS
  • FIG. 1 is a simplified illustration of a glass panel printing process according to an example;
  • FIG. 2 is a simplified illustration of a glass panel with two images printed on one of its surfaces according to an example;
  • FIG. 3 is a simplified illustration of a glass panel with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example;
  • FIG. 4 is a simplified illustration of a glass panel with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example;
  • FIG. 5 is a simplified illustration of a glass panel with two images printed on different surfaces of the glass panel according to an example;
  • FIG. 6 is a simplified illustration of decorative glass floor or a walk side with improved slip-resistance and revealed image according to an example; and
  • FIGS. 7A and 7B are simplified illustrations of a building with a roof covered by the present glass panels according to an example.
  • DESCRIPTION
  • One problem that is therefore associated with the use of the existing glass panels or tiles is how to maintain their aesthetically very pleasing to the eye of a viewer or observer appearance and reduce the potential of slippage for a person walking on them and in particular in the times when the panels become cleaned or a fluid is occasionally spilled on them. The present glass panel and process of its manufacture as it will be explained below resolve this problem.
  • FIG. 1 is a simplified illustration of a glass panel printing process according to an example. A glass panel 100 is generally transparent glass sheet including a first surface 104, and second surface 108. The first surface 104 and the second surface 108 are being spaced apart by thickness 112 of the glass panel. A first image 116 is printed on first surface 104 of the glass panel 100 and a second image 120 is printed on the same first surface 104 of glass panel 100. Both the first image 116, printed on the surface of the glass panel 100, and the second image 120 could be monochrome or color images. Both the first and the second images are fired at a temperature of about 500 degrees C. to 700 degrees C. and more typically about 570 degrees C., which is the Tg temperature of most industrial glasses. As a result of the firing process both first image 116 and second image 120 become fused or imbedded into the glass panel.
  • FIG. 2 is a simplified illustration of a glass panel with printed on one of its surfaces two images according to an example. Second image 120 is printed on surface of the glass panel 100 by an ink that upon firing forms a partially opaque or an opaque image. The partially opaque or opaque image is fused with the glass panel and forms a wear resistant layer with a high friction coefficient. Second image 120 after being fired provides the glass panel at least in the image area with non-slip properties. It is not necessary to fire the first image before printing the second image.
  • In one example the first image is printed by screen printing and the second image by inkjet printing. In an additional example, both the first and the second images could be printed by inkjet printing. Inkjet is a non-contact printing method so the unfired first printed image will not be damaged by the printing of the second image on top of it. The first printed image only needs to be dried of volatile ink components, and then the second image can be printed on top of the first image. Both images can subsequently be fired together in a single heat-treatment.
  • Since second image 120 is printed on the same surface 104 of glass panel 100 as the first image 116 is printed, it is typically printed over at least a segment of the first image 116 and at least partially obscures observation or viewing of first image 116. FIG. 3 is a simplified illustration of a glass panel with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example. Second image 120 when covered by a fluid layer 300 becomes at least partially transparent to reveal the first image 116 printed on the same first surface 104 of the glass panel 100. The fluid could be a transparent fluid such as water, water with a detergent, and other cleaning fluids and sprays suitable for cleaning glass surface. The fluid could also be an artistically applied fluid, atmospheric precipitation such as rain, or an accidentally spilled drink or oil, or hydrocarbons, and the change in the opacity of the second image could be a temporary change facilitated by the presence of the fluid.
  • Both first image 116, printed on the surface of the glass panel, and the second image 120 printed on the surface of the glass panel and at least partially obscuring the first image could consist of a pictorial image or textual image. FIG. 4 is a simplified illustration of a glass panel 400 with two images printed on one of its surfaces and a fluid layer coating one of the images according to an example. The first image 404 is a textual image. The textual image of FIG. 4 provides information on the status of surface 104 on which the pictorial or textual image is printed. It this case textual image 404 informs a person that the floor is wet and he or she should be careful when walking on it.
  • FIG. 5 is a simplified illustration of a glass panel with two images printed on different surfaces of the glass panel according to an example. Second image 120 is a color image printed on a first surface 104 of a glass panel 500. Second image 120 could be fired at a temperature of about 500 degrees C. to 700 degrees C. and more accurately about 570 degrees C., which is close to the Tg temperature of most industrial glasses. As a result of the firing, process second image 120 becomes opaque and fused to or imbedded into the glass panel. Image 120 forms a wear resistant layer with a high friction coefficient and slip resistant properties.
  • In some examples first image 116 could be printed on second surface of glass panel 500 and it is not necessary fired. When second image 120 is covered by a fluid layer, for example, in course of the glass panel cleaning, the second image becomes at least partially transparent to reveal the first image 116 printed on the second surface 108 of the glass panel 500. Care should be taken when printing images on both sides of the glass panel, since the first image printed on the second side of the glass panel could be a mirror image of the original image.
  • Both the first and the second image could be printed by screen printing or by inkjet printing or by a combination of both printing methods depending on the length of the printing run. For example, the first image such as a warning message could be printed by screen printing, where the second image could be a customized image selected according to particular customer requests and desires.
  • In some examples, the thickness of the printed anti-slip ink layer could be varied. This is easily achieved by digital printing and in particular inkjet printing but much more difficult to do by e.g. screen printing. This “printed texture” provides further roughness to the surface of the printed ink layer on the sub-millimeter-millimeter-scale, which further improves the anti-slip quality of the layer.
  • When printed by inkjet printing the first image 116 could be printed by inks that fuse with the glass panel upon firing. Such inks could have a viscosity between 10 and 100 cps at jetting temperature and include an organic solvent as a vehicle, which is liquid at room temperature and as a binding composition include sub-micron particles of a glass frit composed of SiO2, Bi2O3, and B2O3. The glass frit particles would typically have an average size between 0.4 and 1.2 microns. The ink would also include particles of heat resistant inorganic pigments, for example, such as metal oxides having an average size of less than 1.2 microns. Suitable metal oxides could be chromium oxide, copper oxide, titanium oxide, Cu—Cr2O3 oxides; titanium dioxide, iron oxide, Nickel antimony titanium yellow rutile, Cobalt, aluminium, blue spinel; and combinations of two or more of the above pigments. The organic solvent could be for example, PM (propylene glycol mono-methyl ether), DPM (dipropylene glycol mono methyl ether), TPM (tripropylene glycol mono methyl ether), PnB (propylene glycol mono n-butyl ether), DPnB (dipropylene glycol mono butyl ether), TPnB (trisropylene glycol mono n-butyl ether), PnP (propylene glycol mono propyl ether), DPnP (dipropylene glycol mono propyl ether), TPnB-H (propylene glycol butyl ether), PMA (propylene, glycol mono-methyl ether acetate), Dowanol DB (Diethylene glycol mono butyl ether) or other ethylene or propylene glycol ethers or a combination of two or more of the above solvents.
  • The ink composition could also include a combination of dispersants, one or more wetting agents and one or more UV-curable agents as well as a number of photoinitiators or photosensitizers.
  • Inks for Printing the Anti-Slip or Non-Slip Image
  • The second image 120 could be printed by inks, the formulation of which include elements supporting the anti-slip ink properties and facilitating ink transparency when it is covered by a layer of transparent fluid.
  • Typically, the anti-slip particles would be made from alumina. Alumina has a very high hardness (9.0 on Mohs scale). More importantly, it was unexpectedly discovered that alumina supports better anti-slip property than titania, copper chromate, or silicon dioxide usually used in and-slip coatings. Without being bound by any specific theory it is believed that the anti-slip property is at least in part due to the alumina's surface chemistry. For example, high roughness surfaces with different chemistry can instead produce an opposite effect, due to the “Lotus Effect” (The “Lotus Effect” refers to the very high water repellence by a highly structured super hydrophobic surface.). Another reason for selecting alumina is its refractive index (n˜1.760-1.772), which is close to that of the bismuth-based glass frit (n˜1.7). It is believed that this is what allows the anti-slip layer to become nominally or partially transparent when the surface is made wet (i.e. by applying a liquid).
  • Alumina (Al2O3) Dispersion
  • Alumina (99.99% purity, nominal particle size 0.3-1.7 micron), commercially available from American Elements, Inc., Los Angeles Calif. 90024 USA, was stirred in DPM with Disperbyk-106 to give a slurry containing 70% alumina and 2% dispersant. An equal weight of zirconia milling beads was added and the mixture was stirred vigorously until the measured particle size decreased from the initial average of 1.7 microns to an average of 0.74 microns. The milling beads were then removed by filtration. The alumina dispersion was used in different percentages (21% to 30%) for preparation of the inks possessing anti-slip properties.
  • The average particle size of the anti-slip particles could be in the range 0.3-1.5 micron (for inkjet inks), and typically between 0.8 and 1.2 microns. For screen printed inks the anti-slip particles could be of a larger size, for example 10 or 15 micron, or even more. The amount and size of the anti-slip particles is selected to support a proper balance between the settling behavior of the ink, the jettability, the viscosity, and the fired ink layer roughness provided by large particles, within the context of the printer being used.
  • Glass Frit Component
  • The kit component or components are selected of a durable composition. The anti-slip frit supports high acid-resistance, and because of it is suitable for use as a flooring material that could sustain accidental acidic spillages (for example, sonic types of food or drinks) or cleaning by aggressive substances. Such frit properties are not available from most currently used low Tg frits, e.g. bismuth or zinc-based frits. Those frits have poor acid-resistance and relatively low durability.
  • One of the properties of the anti-slip or non-slip ink is its excellent scratch-resistance i.e., a fired ink must not be removed from the substrate by repeated scratching with a 30N sclerometer. A suitable ratio of glass frit to anti-slip particles in the ink was established through experiment. The mass ratio of glass frit to anti-slip particles in the ink is 9:5, more generally between 9:4 and 9:6. This proportion of non-fusing material is more than is used in conventional colored inks (i.e. in the form of pigments). The glass frit is usually used as 70% dispersion in different solvents and the proportion of the dispersion can vary between 40% to 60%. The conventional colored inks require gloss, but the present anti-slip ink does not require gloss. The higher the amount of anti-slip particles, the better the anti-slip property, since more particles “float” on the surface, producing submicron-scale roughness and reducing the gloss. However, too high an anti-slip particle concentration could result in reduced mechanical strength of the fused layer, which of course is not acceptable.
  • Typically, inkjet inks contain leveling additives rather than anti-sagging additives, on account of the low layer thickness that they are printed at. The ink for printing the second image is preferably free of leveling additives, and could contain anti-sagging additives. This means that the anti-slip inks can provide more uneven surfaces and higher-resolution, thicker textures, then other firable inks.
  • Below are some examples of the anti-slip ink formulations:
  • INK EXAMPLES Example 1 Grey-Colored Alumina-Based Anti-Slip Ink
  • The ink of example 1 was prepared by mixing the following components:
  • Content in the ink
    Component formulation
    Alumina dispersion (as described above): 23% 
    Glass frit JFC-004 (70% dispersion in DPM with 45% 
    Disperbyk-180):
    Black pigment JPC-601 (Johnson Matthey dispersion): 3%
    Dowanol DB (solvent) 5%
    Cyclohexanone (solvent): 4.85%  
    Laropal A81 solution (binder; 20% solution in DPM): 10% 
    Disperbyk-180 (dispersant and wetting agent): 2%
    Byk-415 solution (anti-sagging agent; 10% solution 5%
    in cyclohexanone):
    Byk-430 solution (anti-sagging agent; 10% solution 2%
    in cyclohexanone):
    Byk-341 solution (surface tension reducer; 0.15%  
    10% solution in DPM):
  • After printing and firing the ink on glass, scratch-resistance was found to be within specifications stated above i.e., fired ink is not removed by repeated scratching with a sclerometer set to 30N.
  • The ink was printed on glass in a pattern of 10 mm-sized spot with the glass surface coverage of about 40%. Samples with and without light background of a different ink in the unprinted 60% of the glass surface were prepared. Spots with and without a texture pattern were printed. The PTV (Pendulum Test Value) characterizing the slip resistance value of a surface, of wet glass is around 10, and of wet glass printed with similar patterns of standard ink such as for example, DIP SPECTRUM™ inks commercially available from Dip-Tech Ltd., Kfar Saba 44643 Israel is 12. The PTV of the wet samples (average of three samples measurements according to ASTM E303) were measured to he as follows:
  • “Flat” non-textured spot “Textured” spots
    Sample design surface (PTV) surface (PTV)
    No printed background 22.5 24.5
    With printed background 29 33
    Remark:
    ASTM E303-93(2008) Standard Test Method for Measuring Surface Frictional Properties Using the British Pendulum Tester.
  • Conclusions:
    • i) The ink described in Example 1 gives a large increase in PTV over standard (conventional) inks.
    • ii) Textured printed areas give a better PTV than un-textured areas.
    Example 2 White-Colored Anti-Slip and Picture-Hiding/Revealing Ink
  • The ink of Example 2 was prepared by mixing the following components:
  • Content in the ink
    Ink Formulation Component formulation
    Alumina dispersion (as described above): 21%
    Glass frit (70% dispersion in DPM with Dispersant): 50%
    Dowanol DB (solvent)  5%
    Laropal A81 solution (binder; 20% solution in DPM): 10%
    Disperbyk-106 (dispersant and wetting agent):  1%
    Byk-415 solution (anti-sagging agent; 10% solution in  9%
    cyclohexanone):
    Byk-430 solution (anti-sagging agent; 10% solution in 3.8% 
    cyclohexanone):
    Byk-341 solution (surface tension reducer; 0.2% 
    10% solution in DPM):
  • The ink was printed on glass in a pattern of 10 mm-sized spot with a glass surface coverage of 40%. Spots with “target” and “spider web” textures were printed. The PTV of wet glass is around 10, and of wet glass printed with similar patterns of standard ink (Dip-Tech black ink) is 12. The PTV of the wet samples (average of three samples measurements according to ASTM E303 Standard) were measured to be as follows:
  • Printed Sample Design “Textured” surface spots (PVT)
    “Target” 30.5
    “Spider web” 31.0
  • Samples were printed which included standard black ink, such as DIP SPECTRUM™ ink commercially available from Dip-Tech Ltd., Kfar Saba 44643 Israel covered with ink of Example 2. These samples were light grey in appearance when dry, but became dark grey upon wetting with water, oil, or other liquids. This process was entirely reversible, with the sample becoming light grey again after frying, and could be carried out for multiple cycles without any evidence of loss of function. Pictures and messages (as dark grey on light grey) could he created by painting on the sample with water.
  • Conclusions:
    • i) The ink described gives a large increase in PTV over standard printing inks.
    • ii) ii) The ink described adequately demonstrates a “picture hide/reveal” function.
    Example 3 Ink with High-Concentration of Black Pigment
  • The ink of Example 3 was prepared by mixing the following components:
  • Content in the
    Ink Formulation Component formulation
    Glass frit (70% dispersion in DPM with Dispersant)  49%
    Black pigment JPC-601 (Johnson Matthey dispersion)  25%
    Dowanol DB (solvent)   5%
    Cyclohexanone (solvent)   5%
    B-66 binder solution (10% solution in DPM)  10%
    Disperbyk-180 (dispersant and wetting agent) 0.8%
    Byk-415 solution (anti-sagging agent) 0.6%
    Propylene glycol diacetate: 4.5%
    Byk-341 solution (surface tension reducer; 0.1%
    solution in DPM)
  • The ink was printed on glass in a pattern of 10 mm-sized spot with a glass coverage of 40%. Spots with and without a lower-thickness inner spot (thus creating some texture) were printed. The PTV of wet glass is around 10. The PTV of the wet samples (average of three samples measurements according to, ASTM E303) were measured to be as follows:
  • Printed Sample “Flat” non-textured spot “Textured” spots
    Design surface (PTV) surface (PTV)
    Round spots 21.6 23.4
  • Conclusions:
    • i) The ink described gives an increase in PTV over standard inks such as for example, DIP SPECTRUM™ inks commercially available from Dip-Tech Ltd., Kfar Saba 44643 Israel on account of its very high pigment content. However, the PTV remains lower than for alumina-containing inks,
    • ii) Textured printed areas give a better PTV than un-textured areas.
    Example 4 Ink Providing Etch-Effect, High Acid-Resistance Anti-Slip Ink
  • The combination of index-matching (of frit and alumina) together with the micro-rough surface, as we know provides efficient scattering of light. This effect can also be used to produce an “etched glass” effect. It was discovered that the “etched glass” or “frosted glass” effect could be enhanced by selecting a glass frit that most closely matches the refractive index of alumina (within Δn=0.1 or the refractive index of the alumina). For example such glass frit as JFC-004 commercially available from Johnson-Matthey Plc., Stoke-on-Trent ST11 9RD United Kingdom. The “etched glass” effect is lost when the glass becomes wet and the glass becomes transparent.
  • The ink of Example 4 was prepared by mixing the following components:
  • Content in the
    Ink Formulation Component ink Formulation
    Alumina dispersion (as described above) 25%
    Glass frit JFC-004 (as-received 70% dispersion) 45%
    Laropal A81 solution (binder; 20% solution in DPM) 10%
    Disperbyk-180 (dispersant and wetting agent)  2%
    Byk-341 solution (surface tension reducer; 10% 0.1% 
    solution in DPM)
    DPM (solvent) 17.9%  
  • The ink was used to create drawdown samples. After drawdown and firing the ink on glass, scratch-resistance was found to be within specifications (fired ink could not be removed by repeated scratching with a sclerometer set to 30N). The anti-slip quality of the samples was qualitatively found to be comparable to the other alumina-containing inks.
  • The qualitative appearance of the samples was almost identical to acid-etched glass samples or sand blasted glass samples. When placed printed side-down on a surface, it appeared almost as clean, unprinted glass, but with any gap between the surface and the printed side, the “frosted” appearance was noted, obscuring the object behind the glass to the viewer while allowing most of the incident light to pass through the glass (as scattered rather than directly transmitted light).
  • The printed side of the glass was exposed to an etch solution of (i) 0.1M HCl; (ii) 0.1N H2SO4; (iii) 4% acetic acid and (iv) 10% citric acid, at ambient temperature for a period of 15 minutes. After cleaning the glass, no sign of the exposure to etch solution was evident.
  • In addition, the ink was printed on glass in a pattern of 10 mm-sized spots with a glass surface coverage of 40%. Spots with “spider web” textures were printed. The PTV of wet glass is around 10, and of wet glass printed with similar patterns of standard ink (Dip-Tech black ink) is 12. The PTV of the wet samples (average of three samples measurements according to ASTM E303 Standard) were measured to be 70, i.e. exceeding even the most strict specifications for industrial anti-slip surfaces.
  • Conclusions:
    • i) The combination of a suitable alumina dispersion and an appropriate frit in the right ratio give an excellent etch-effect coating.
    • ii) The use of appropriate frit results in an anti-slip or etch-effect with high acid resistance.
    • iii) The combination of a suitable alumina dispersion and an appropriate frit in the right ratio, together with an optimized printed texture, gives an excellent anti-slip surface.
  • The glass panel and the method of revealing a hidden image could be used in curtain walls, floors, in shower areas and kitchen back splashes. The second image could be a standard and well accepted image of polka dots or line patterns, or could be a pleasing, artistic image. Image color selection is almost unlimited since the printing is conducted by, for example, standard Cyan, Magenta, Yellow, White, and Black color inks. The hidden image is revealed when the second image printed on the first surface of the glass panel becomes covered by a transparent fluid. The fluid could be applied intentionally, in course of the cleaning process or occasionally, when it is spilled in a kitchen or the shower area becomes wet or when it rains.
  • FIG. 6 is a simplified illustration of decorative glass panel covered floor or a walk side with improved slip-resistance and revealed image according to an example. The decorative glass floor or walk side 600 with improved slip-resistance includes an assembly of generally transparent glass panels (tiles) 608, similar to panels (tiles) 100 or 400 or 500 with each panel/sheet including a first image printed on one of the surfaces of the glass panel/sheet and a second image printed on the same surface of the glass sheet and at least partially overlapping the first image. As explained above, the second image is printed over at least a segment of the first image and forms a partially opaque or an opaque imbedded into the glass sheet image with a high friction coefficient improving the slip-resistance of the glass panel (tile).
  • The walk side is surrounded on both sides by greenery 604 schematically shown as trees. When the greenery is irrigated or a rain falls down, the water makes the second image printed on the glass panels transparent and develops/reveals the first, hidden image, which is a warning that the side walk has become slippery could be observed.
  • Roofing of residential and office buildings by the disclosed glass panels could be another environmentally friendly application. FIG. 7A is a simplified illustration of a building 700 with a roof 704 covered by the present glass panels. The ink printed on the outside (first surface) of the glass panels will be nominally opaque in sunny weather, providing relief from excessive sunlight and heat. In rainy weather the roof 708 (FIG. 7B) will become more transparent, allowing a greater proportion of light to enter through the roof just when it is needed. In sunny days such a roof saves electricity by reducing the air conditioning costs and in rainy days, it reduces the amount of electricity required to provide adequate illumination for work or living. In such applications only the second image needs to be he printed on the outside (first) surface of the glass panel, although for aesthetic or decorative purposes, the first image that is obscured or revealed by the second image could be also printed. The first image could be printed on the first (outer) surface of the glass panel or on the second (inner) surface of the glass panel.
  • Therefore, the disclosed glass panels provide environmentally friendly, fully recyclable construction material. The glass panels enhance electricity savings and provide a pleasing aesthetic appearance to interior or exterior images.
  • The glass panels with slip-resistant developable image glass panel could be produced in different sizes and with different images. The developable image saves the need for warning signs and facilitates cleaning processes. The high friction non-slip surface reduces slip and fall accidents and reduces liability costs and insurance premiums especially far the operators of public spaces where the accidents tend to occur.

Claims (14)

What is claimed is:
1. An inkjet ink for printing an anti-slip image, comprising at least anti-slip and glass frit particles and wherein ratio of glass frit to anti-slip particles is at least 9:4.
2. The ink according to claim 1, wherein the anti-slip particles are alumina particles with an average particle size in range of 0.3-1.5 micron.
3. The ink according to claim 1, wherein the anti-slip particles are alumina particles and their content in alumina dispersion is at least 21%.
4. The ink according to claim 1 wherein the glass frits particles content varies from 40% to 60%.
5. The ink according to claim 1, further comprising a solvent and wherein the solvent is a mixture of Dowanol DB and Cyclohexanone.
6. The ink according to claim 1, further comprising a pigment, a binder, a dispersant, and a surface tension reducer.
7. The ink according to claim 1, wherein the ink is free from leveling additives and contains anti-sagging additive and wherein the anti-sagging additive is a mixture of Byk-415 and Byk-430 in Cyclohexanone.
8. The ink according to claim 1, wherein the anti-slip image is a developable image comprising at least alumina dispersion and bismuth-based glass frit and wherein refractive index of the alumina is selected to be close to the refractive index of the bismuth-based glass frit.
9. The ink according to claim 1, wherein when printed the ink forms a “printed texture” providing to surface of a printed ink layer roughness on a sub-millimeter-millimeter-scale, the roughness further improving an anti-slip quality of the printed ink layer.
10. The ink according to claim 1, further comprising alumina dispersion and a glass frit, the ink characterized in that the glass frit refractive index is selected to be within Δn=0.1 of the alumina refractive index and wherein a non-slip image printed by the ink has “glass-etch” like appearance.
11. A method of producing a slip-resistant developable image glass panel, comprising:
providing a glass panel including a first surface, and second surface and wherein the first and second surfaces are being spaced apart by thickness of the glass panel;
printing (by inkjet) on the first surface of the glass panel a first image and printing on same first surface of the glass panel a second image at least partially overlapping the first image; and
wherein the second image printed on the first surface forms an opaque imbedded into the glass panel image with high friction coefficient and wherein the opaque imbedded into the glass panel image when covered by a fluid becomes transparent to reveal the first image printed on the first surface of the glass panel.
12. An environmentally friendly construction material, comprising:
a generally transparent glass panel having a first surface, and a second surface and wherein the first and second surfaces are being spaced apart by thickness of the glass panel;
an opaque image printed on at least a segment of the first surface of the glass panel and providing relief from excessive sunlight and heat; and
wherein in rainy weather the opaque image becomes more transparent, allowing a greater proportion of light to enter through the glass panel and reduce amount of electricity required to provide adequate for work or living illumination.
13. The construction material according to claim 12, further comprising an additional aesthetic or decorative image printed on the first or second surface of the glass panel wherein the additional aesthetic or decorative image when printed on the first surface of the glass panel is printed before the opaque image is printed.
14. The construction material according to claim 12, further comprising a decorative glass floor with improved slip-resistance and developable image, including:
an assembly of generally transparent glass panels with a first image primed on one of surfaces of the glass panel and a second image printed on same surface of the glass panel and at least partially overlapping the first image;
wherein the second image printed over at least a segment of the first image forms an opaque imbedded into the glass panel image and wherein the opaque imbedded into the glass panel image possess a high friction coefficient improving the slip-resistance of the glass panel and when the second image when covered by a fluid becomes transparent to reveal the first image printed on the same surface of the glass panel.
US13/939,252 2012-08-13 2013-07-11 Inkjet ink for printing an anti-slip image Abandoned US20140044894A1 (en)

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Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140044893A1 (en) * 2012-08-13 2014-02-13 Dip-Tech Ltd. Glass panel
US20150015638A1 (en) * 2013-07-15 2015-01-15 Dip-Tech Ltd. Ceramic inkjet inks
US20160017161A1 (en) * 2014-07-16 2016-01-21 Electronics For Imaging, Inc. Ceramic inkjet ink for red decoration
WO2017058102A1 (en) 2015-10-01 2017-04-06 Neolt Asia Pte Ltd Method of forming a textured effect on a substrate
US9790388B2 (en) 2015-10-19 2017-10-17 Electronics For Imaging, Inc. Radiation-curable inkjet ink for application to glass, ceramic, or metal
US11066565B2 (en) * 2016-12-09 2021-07-20 Lubrizol Advanced Materials, Inc Aliphatic ceramics dispersant
US11130875B2 (en) * 2017-08-31 2021-09-28 Noritake Co., Limited Inkjet ink for ceramic substrate
US20210395544A1 (en) * 2018-08-31 2021-12-23 Tecglass Sl Digital ceramic inject inks for glass and procedure to obtain the same
US20210395543A1 (en) * 2018-08-31 2021-12-23 Tecglass Sl Digital ceramic inject inks for glass and procedure to obtain the same

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102014010335A1 (en) * 2014-07-14 2016-01-14 Schott Ag Ceramic ink-jet printing ink for glass and / or glass-ceramic, process for their preparation and use
KR101606573B1 (en) * 2014-12-31 2016-03-25 주식회사 티쓰리아이 Printing method of non-active area of display device
GB2552813A (en) * 2016-08-10 2018-02-14 Univ Oxford Innovation Ltd Wet surface indication
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US11472978B2 (en) 2017-04-18 2022-10-18 Dip-Tech, Ltd. Ink
CN110871156A (en) * 2018-08-31 2020-03-10 汉能移动能源控股集团有限公司 Preparation method of light-transmitting anti-skid layer
US11392994B2 (en) * 2019-09-18 2022-07-19 Wayne Fueling Systems Llc Retail digital signage and automatic promotion system

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4379039A (en) * 1979-12-29 1983-04-05 Toyo Boseki Kabushiki Kaish Ultraviolet curable resin composition
US4545819A (en) * 1982-02-02 1985-10-08 Sakupa Color Products Corp. Writing implement containing dual color ink composition
US5421877A (en) * 1992-12-21 1995-06-06 Central Glass Company, Limited Ceramic color composition and method of forming ceramic color film on glass plate using same
US5743946A (en) * 1995-12-18 1998-04-28 Asahi Glass Company Ltd. Water-color ink composition and process for forming an inorganic coating film
US20030199655A1 (en) * 2002-04-19 2003-10-23 Nippon Shokubai Co., Ltd. Reactive diluent and curable resin composition
US20050276002A1 (en) * 2004-06-09 2005-12-15 Ferro Corporation Copper termination inks containing lead free and cadmium free glasses for capacitors
US20060063858A1 (en) * 2004-09-15 2006-03-23 Samsung Electronics Co., Ltd. Ink composition and color filter including the same
US20080248260A1 (en) * 2004-09-17 2008-10-09 Ricoh Company, Ltd. Recording Ink, Ink Cartridge, Ink Record, Inkjet Recording Apparatus, and Inkjet Recording Method
US20090004382A1 (en) * 2007-06-29 2009-01-01 Rohm And Haas Electronic Materials Llc Electroless methods
US20090214840A1 (en) * 2005-09-28 2009-08-27 Gera Eron Ink Providing Etch-Like Effect for Printing on Ceramic Surfaces
US20100026771A1 (en) * 2008-07-30 2010-02-04 Fujifilm Corporation Inkjet recording method, inkjet recording system, and printed material

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE4105235A1 (en) * 1991-02-20 1992-08-27 Merck Patent Gmbh COATED SYSTEM
ATE121058T1 (en) * 1991-05-17 1995-04-15 Bischoff Glastechnik GLASS PLATE AND METHOD FOR PRODUCING THE SAME.
JP4234279B2 (en) * 1999-09-09 2009-03-04 岐阜県 Color ink for inkjet printer and drawing body using this ink
SE526280C2 (en) * 2004-03-22 2005-08-16 Nadja Ekman Method of reproducing a photographic image in a glass article
IL227151A0 (en) * 2012-08-13 2016-12-29 Dip-Tech Ltd Glass panel
US20130265376A1 (en) * 2013-06-06 2013-10-10 Ferro Corporation Inkjet Compositions For Forming Functional Glaze Coatings

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4379039A (en) * 1979-12-29 1983-04-05 Toyo Boseki Kabushiki Kaish Ultraviolet curable resin composition
US4545819A (en) * 1982-02-02 1985-10-08 Sakupa Color Products Corp. Writing implement containing dual color ink composition
US5421877A (en) * 1992-12-21 1995-06-06 Central Glass Company, Limited Ceramic color composition and method of forming ceramic color film on glass plate using same
US5743946A (en) * 1995-12-18 1998-04-28 Asahi Glass Company Ltd. Water-color ink composition and process for forming an inorganic coating film
US20030199655A1 (en) * 2002-04-19 2003-10-23 Nippon Shokubai Co., Ltd. Reactive diluent and curable resin composition
US20050276002A1 (en) * 2004-06-09 2005-12-15 Ferro Corporation Copper termination inks containing lead free and cadmium free glasses for capacitors
US20060063858A1 (en) * 2004-09-15 2006-03-23 Samsung Electronics Co., Ltd. Ink composition and color filter including the same
US20080248260A1 (en) * 2004-09-17 2008-10-09 Ricoh Company, Ltd. Recording Ink, Ink Cartridge, Ink Record, Inkjet Recording Apparatus, and Inkjet Recording Method
US20090214840A1 (en) * 2005-09-28 2009-08-27 Gera Eron Ink Providing Etch-Like Effect for Printing on Ceramic Surfaces
US20090004382A1 (en) * 2007-06-29 2009-01-01 Rohm And Haas Electronic Materials Llc Electroless methods
US20100026771A1 (en) * 2008-07-30 2010-02-04 Fujifilm Corporation Inkjet recording method, inkjet recording system, and printed material

Non-Patent Citations (4)

* Cited by examiner, † Cited by third party
Title
BYK-415, BYK-Chimie GmbH pages 1-2 Published July 2010; obtianed online from http://www.byk.com/en/additives/additives-by-name/byk-415.php *
BYK-415, BYK-Chimie GmbH pages 1-2 Published May 2010; obtianed online from http://www.byk.com/en/additives/additives-by-name/byk-430.php *
Refractive Index of Al2O3, pages 1-2, no publication date given, obtained online from http://refractiveindex.info/legacy/?group=CRYSTALS&material=Al2O3 *
Richard J. Lewis, Sr. "Hawley's Condensed Chemical Dictionary, 12th Edition", John Wiley & Sons, Inc., New York pages 1108 and 1227 (1993). *

Cited By (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8993102B2 (en) * 2012-08-13 2015-03-31 Dip-Tech Ltd. Glass panel
US20140044893A1 (en) * 2012-08-13 2014-02-13 Dip-Tech Ltd. Glass panel
US20150015638A1 (en) * 2013-07-15 2015-01-15 Dip-Tech Ltd. Ceramic inkjet inks
US9102843B2 (en) * 2013-07-15 2015-08-11 Dip-Tech Ltd. Ceramic inkjet inks
US9822271B2 (en) * 2014-07-16 2017-11-21 Electronics For Imaging, Inc. Ceramic inkjet ink for red decoration
US20160017161A1 (en) * 2014-07-16 2016-01-21 Electronics For Imaging, Inc. Ceramic inkjet ink for red decoration
US10392524B2 (en) 2014-07-16 2019-08-27 Electronics For Imaging, Inc. Ceramic inkjet ink for red decoration
EP3356145A4 (en) * 2015-10-01 2019-06-05 Neolt Asia Pte Ltd. Method of forming a textured effect on a substrate
WO2017058102A1 (en) 2015-10-01 2017-04-06 Neolt Asia Pte Ltd Method of forming a textured effect on a substrate
US10479019B2 (en) 2015-10-01 2019-11-19 Neolt Asia Pte Ltd Method of forming a textured effect on a substrate
US10889063B2 (en) 2015-10-01 2021-01-12 Neolt Asia Pte Ltd Method of forming a textured effect on a substrate
US9790388B2 (en) 2015-10-19 2017-10-17 Electronics For Imaging, Inc. Radiation-curable inkjet ink for application to glass, ceramic, or metal
US11066565B2 (en) * 2016-12-09 2021-07-20 Lubrizol Advanced Materials, Inc Aliphatic ceramics dispersant
US20210309876A1 (en) * 2016-12-09 2021-10-07 Lubrizol Advanced Materials, Inc. Aliphatic ceramics dispersant
US11661522B2 (en) * 2016-12-09 2023-05-30 Lubrizol Advanced Materials, Inc Aliphatic ceramics dispersant
US11130875B2 (en) * 2017-08-31 2021-09-28 Noritake Co., Limited Inkjet ink for ceramic substrate
US20210395544A1 (en) * 2018-08-31 2021-12-23 Tecglass Sl Digital ceramic inject inks for glass and procedure to obtain the same
US20210395543A1 (en) * 2018-08-31 2021-12-23 Tecglass Sl Digital ceramic inject inks for glass and procedure to obtain the same
US11866595B2 (en) * 2018-08-31 2024-01-09 Tecglass Sl Digital ceramic inject inks for glass and procedure to obtain the same

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