US20150274571A1 - Method and lift jet floatation system for shaping thin glass - Google Patents

Method and lift jet floatation system for shaping thin glass Download PDF

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Publication number
US20150274571A1
US20150274571A1 US14/669,017 US201514669017A US2015274571A1 US 20150274571 A1 US20150274571 A1 US 20150274571A1 US 201514669017 A US201514669017 A US 201514669017A US 2015274571 A1 US2015274571 A1 US 2015274571A1
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United States
Prior art keywords
lift
array
glass sheet
lift jet
nozzles
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Abandoned
Application number
US14/669,017
Inventor
Michael Timothy Brennan
Anurag Jain
William Edward Lock
Michael John Moore
Larry Gene Smith
Kevin Lee Wasson
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Corning Inc
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Corning Inc
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Publication date
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Priority to US14/669,017 priority Critical patent/US20150274571A1/en
Assigned to CORNING INCORPORATED reassignment CORNING INCORPORATED ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: BRENNAN, MICHAEL TIMOTHY, JAIN, ANURAG, LOCK, WILLIAM EDWARD, MOORE, MICHAEL JOHN, SMITH, LARRY GENE, WASSON, KEVIN LEE
Publication of US20150274571A1 publication Critical patent/US20150274571A1/en
Abandoned legal-status Critical Current

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    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B23/00Re-forming shaped glass
    • C03B23/02Re-forming glass sheets
    • C03B23/023Re-forming glass sheets by bending
    • C03B23/03Re-forming glass sheets by bending by press-bending between shaping moulds
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B23/00Re-forming shaped glass
    • C03B23/02Re-forming glass sheets
    • C03B23/023Re-forming glass sheets by bending
    • C03B23/035Re-forming glass sheets by bending using a gas cushion or by changing gas pressure, e.g. by applying vacuum or blowing for supporting the glass while bending
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B23/00Re-forming shaped glass
    • C03B23/02Re-forming glass sheets
    • C03B23/023Re-forming glass sheets by bending
    • C03B23/035Re-forming glass sheets by bending using a gas cushion or by changing gas pressure, e.g. by applying vacuum or blowing for supporting the glass while bending
    • C03B23/0352Re-forming glass sheets by bending using a gas cushion or by changing gas pressure, e.g. by applying vacuum or blowing for supporting the glass while bending by suction or blowing out for providing the deformation force to bend the glass sheet
    • C03B23/0357Re-forming glass sheets by bending using a gas cushion or by changing gas pressure, e.g. by applying vacuum or blowing for supporting the glass while bending by suction or blowing out for providing the deformation force to bend the glass sheet by suction without blowing, e.g. with vacuum or by venturi effect
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B35/00Transporting of glass products during their manufacture, e.g. hot glass lenses, prisms
    • C03B35/14Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands
    • C03B35/16Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands by roller conveyors
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B35/00Transporting of glass products during their manufacture, e.g. hot glass lenses, prisms
    • C03B35/14Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands
    • C03B35/16Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands by roller conveyors
    • C03B35/18Construction of the conveyor rollers ; Materials, coatings or coverings thereof
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B35/00Transporting of glass products during their manufacture, e.g. hot glass lenses, prisms
    • C03B35/14Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands
    • C03B35/22Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands on a fluid support bed, e.g. on molten metal
    • C03B35/24Transporting hot glass sheets or ribbons, e.g. by heat-resistant conveyor belts or bands on a fluid support bed, e.g. on molten metal on a gas support bed
    • 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P40/00Technologies relating to the processing of minerals
    • Y02P40/50Glass production, e.g. reusing waste heat during processing or shaping
    • Y02P40/57Improving the yield, e-g- reduction of reject rates

Definitions

  • the disclosure relates generally to methods and systems for shaping glass sheets, and more particularly to lift jet floatation systems for bending thin glasses.
  • the ability to thermally shape and form thin glass sheets is increasingly relevant to various industries, such as the automotive industry.
  • the production of glass panes for automobiles is a complex process, which is constantly changing due to increasingly stringent environmental and safety requirements.
  • the demand for intricate glass shapes with high optical quality and low weight is growing as governmental regulations require increased fuel economy and reduced emissions.
  • the ability to make automotive parts from thinner glasses may translate to lower vehicle weight, improved fuel economy, reduced emissions, and/or improved vehicle weight distribution (e.g., lower center of gravity).
  • Prior art methods for shaping glass include placing glass sheets on a roll conveyor, conveying the glass through a furnace to heat and soften the sheets, and positioning the softened glass below a shaping mold, where it is lifted upward by a lift jet array to contact the shaping mold.
  • the shaping mold serves as a surface around which the glass sheet can be formed to the desired shape.
  • the lift jet array pattern is typically different for different shapes and/or parts and may include non-adjustable, fixed diameter/orifice nozzles and/or adjustable threaded nozzles. The nozzles are positioned below the rollers and blow controlled and focused streams of heated air up between the rollers.
  • the disclosure relates, in various embodiments, to a lift jet floatation system for shaping a glass sheet
  • a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane; a lift jet array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; and a shaping mold, wherein the roll conveyer is positioned substantially between the lift jet array and the shaping mold, and wherein the lift jet array is positioned such that each nozzle tip is located above the centerline of the plurality of rollers.
  • the disclosure also relates to methods for shaping a glass sheet comprising conveying the glass sheet along a plane on a roll conveyor comprising a plurality of rollers, the plurality of rollers having a centerline substantially parallel to the plane; heating the glass sheet; and positioning the glass sheet on the roll conveyor between a shaping mold and a lift jet array, wherein the lift jet array comprises a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices, and wherein the lift jet array is positioned substantially below the roll conveyor such that each nozzle tip is located above the centerline of the plurality of rollers, and wherein a stream of gas flows from each orifice in the lift jet array with a combined force sufficient to lift the glass sheet from the roll conveyor.
  • the disclosure further relates to a system for lifting or shaping a glass sheet
  • a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane, and an array of lift nozzles, each array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; wherein each nozzle tip is located above the centerline of the plurality of rollers.
  • FIG. 1 is a side view illustrating a jet lift floatation system according to one embodiment of the disclosure
  • FIG. 2 is a graphical illustration of a nozzle as originally installed and as positioned according to one embodiment of the disclosure
  • FIG. 3A is a side view illustrating a nozzle having a plurality of orifices according to one embodiment of the disclosure
  • FIG. 3B is an elevational view along the line A-A in FIG. 3A , illustrating a nozzle having a plurality of orifices according to one embodiment of the disclosure.
  • FIG. 3C is a top view illustrating a nozzle having a plurality of orifices according to one embodiment of the disclosure.
  • a lift jet floatation system for shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane; a lift jet array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; and a shaping mold, wherein the roll conveyer is positioned substantially between the lift jet array and the shaping mold, and wherein the lift jet array is positioned substantially below the roll conveyor such that each nozzle tip is located above the centerline of the plurality of rollers.
  • a system for lifting or shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane, and an array of lift nozzles, each array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; wherein each nozzle tip is located above the centerline of the plurality of rollers.
  • a lift jet floatation system which comprises a roll conveyor 100 having a plurality of rollers 110 on which glass sheets G may be conveyed along a directional plane 120 .
  • the glass sheet may be conveyed through a furnace or other heating means (not illustrated) or any other suitable means may be used to soften the glass sheet prior to shaping.
  • the glass sheet may be heated to a temperature at which the sheet can be shaped or molded.
  • the plurality of rollers has a centerline 130 which is substantially parallel to the plane 120 .
  • a lift jet array 140 may be located below the roll conveyor and includes a plurality of nozzles 150 , each nozzle comprising a tip 160 having a plurality of orifices.
  • FIGS. 3A-C provide detailed illustrations of the nozzle orifices.
  • the lift jet array is positioned such that each nozzle tip 160 is located between the rollers 110 and above the centerline 130 .
  • the position of the nozzles 150 is more particularly illustrated in FIG. 2 .
  • the glass sheet G may be conveyed and positioned under a shaping mold 180 and above the lift jet array 140 .
  • the nozzles 150 may supply an upward gas flow to the glass sheet.
  • Pressurized gas which may be chosen from any gas including, but not limited to, air, may be provided to the lift jet array 140 from a suitable source 170 .
  • the glass sheet G may be lifted up from the roll conveyor 100 by the flow of gas from the nozzles 150 and brought into contact with the downward facing surface 190 of the shaping mold 180 .
  • the shaping mold 180 may comprise one or more openings (not illustrated) through which a vacuum may optionally be drawn to support the glass sheet received from the conveyor.
  • the lift jet array 140 may comprise one or more nozzles 150 comprising a tip 160 having a plurality of orifices.
  • each nozzle 150 comprises a tip 160 having a plurality of orifices.
  • the nozzles 150 may be identical.
  • one or more of the plurality of nozzles 150 in the array has a distribution of orifices different from an adjacent nozzle.
  • FIG. 2 is a graphical illustration of a jet nozzle configured according to one aspect of the disclosure and positioned according to one embodiment of the disclosure 250 a (position “a”) and a nozzle configured according to one embodiment of the disclosure but positioned as initially installed 250 b (position “b”).
  • the nozzle array of the instant disclosure may be elevated to position “a,” such that the nozzle tips are above the roller centerline 230 .
  • Pre-existing systems may employ prior art lift jet arrays which can be installed and removed, e.g., by sliding on rails into position under the conveyor.
  • the lift jet array disclosed herein can be similarly installed and removed using the pre-existing rails (position “b”) and then elevated by any method such that the nozzle tips are between the rollers and above the roller centerline as disclosed herein (position “a”).
  • the nozzles themselves may be vertically adjustable, e.g., they may be designed to “pop up” during use, such that the nozzle tips are located above the centerline.
  • the pitch v of the rollers 210 represents the distance between the rollers as measured from the center of each roller.
  • the pitch v may vary depending on the conveyor. In certain embodiments, the pitch v may range from about 2 inches to about 8 inches, for example, from about 3 inches to about 6 inches, or about 4 inches, including all ranges and subranges therebetween.
  • the nozzles 250 may be positioned, according to various embodiments, such that the nozzle tips 260 are above the centerline 230 and a distance w from the tops of the rollers.
  • the distance w may also vary and may, in certain embodiments, range from about 0.5 inches to about 4 inches, such as from about 1 inch to about 2 inches, including all ranges and subranges therebetween.
  • the distance x between installation position “b” and elevated position “a” may vary and may, in various embodiments, range from about 1 inch to about 4 inches, such as from about 2 inches to about 3 inches, including all ranges and subranges therebetween.
  • the nozzles in position “b” may be below the rollers, e.g., a distance y from the bottoms of the rollers.
  • This distance y may also vary and may, in certain embodiments, range from about 0.5 inches to about 2 inches, for example, from about 1 inch to about 1.5 inches, including all ranges and subranges therebetween.
  • the nozzle 250 may furthermore have any dimensions, such as a total nozzle length z, which may vary and may range, for example, from about 1 inch to about 4 inches, such as from about 2 inches to about 3.5 inches, or from about 2.5 inches to about 3 inches, including all ranges and subranges therebetween.
  • a total nozzle length z may vary and may range, for example, from about 1 inch to about 4 inches, such as from about 2 inches to about 3.5 inches, or from about 2.5 inches to about 3 inches, including all ranges and subranges therebetween.
  • position “b” may also correspond to the prior art nozzle positioning, although the prior art nozzles in such an instance comprise only one orifice (not the multi-orifice nozzle illustrated).
  • prior art nozzles deliver a single, focused stream of gas and, thus, the nozzles are located below the rollers, i.e., further away from the glass surface, without a substantial negative impact to the lifting force.
  • thicker glasses are less susceptible to deformation caused by air turbulence, gas flow does not have to be as carefully controlled to prevent interference from the rollers themselves.
  • prior art systems typically position the lift jet array below the conveyor such that the nozzles are below the rollers. This position corresponds to the initial installation position (position “b”).
  • the lift jet array may be vertically adjustable, e.g., placed in position “b” and then elevated to position “a.”
  • a screw-based mechanism may be utilized to slide one or more wedges under the array assembly, the array may be elevated, for example evenly elevated, to the desired height.
  • the wedges may, in certain embodiments, be adjustable so as to allow adjustability of the lift jet array to different heights, depending on the dimensions of system in which it is implemented.
  • Such a lifting mechanism of course is exemplary only and should not limit the scope of the claims appended herewith as any number of lifting mechanisms may be utilized with embodiments of the present disclosure.
  • a lift may be installed beneath the lift jet array, such as beneath the floor, which may then lift a frame supporting the lift jet array to the desired height.
  • the lift jet array may be elevated at temperature, that is, the space (i.e., furnace or respective module containing the lift jet array) does not need to be reduced in temperature to raise or lower the lift jet manually or otherwise, and thus the associated system or bending lehr can be maintained at high efficiency and at temperature.
  • each nozzle 250 may have a plurality of orifices, each of which delivers a stream of gas, thus distributing the lifting force over a wider surface area. If the gas flow from the nozzles 250 impinges on the rollers 210 , this may cause turbulence and significantly reduce the lifting force. Accordingly, in various embodiments disclosed herein, the jet lift array may be positioned such that the tip 260 of each nozzle 250 is located between the rollers and above the centerline of the rollers 230 . In such embodiments, the gas flow is not, or is not substantially, disrupted by the adjacent rollers 230 .
  • FIG. 3A shows the nozzle 350 comprising a body 355 and a tip 360 , the tip optionally having a plurality of orifices 365 .
  • the tip may be angled relative to the body at any suitable angle ⁇ °.
  • may range from about 5° to about 85°, such as from about 15° to about 70°, or from about 30° to about 60°, including all ranges and subranges therebetween.
  • FIG. 3B is a view of the nozzle 350 along the line A-A in FIG. 3A .
  • This view provides a more detailed view of the orifices 365 located in the tip 360 of the nozzle.
  • the tip comprises six orifices; however, it is envisioned that various tips may comprise more or less orifices, such as two or more orifices, three or more, four or more, five or more, six or more, seven or more, or eight or more orifices.
  • the nozzle 350 may further comprise at least one conduit, such as conduit 358 that passes through the body and tip of the nozzle, to deliver a plurality of streams of gas to a proximate thin glass sheet via the orifices 365 .
  • FIG. 3C is a top view of the nozzle 350 , illustrating the spacing of the orifices, which are, in at least this embodiment, evenly spaced along the circumference of the tip.
  • Other configurations, including number, spacing, and/or distribution, are possible and within the scope of the instant disclosure. It should also be noted that these figures are not drawn to scale and any nozzle shape and/or size and/or orifice configuration may be employed in accordance with different aspects of the disclosure.
  • the nozzle design and placement according to the instant disclosure may thus provide an upward force over a greater surface area by replacing a single-opening nozzle with at least a portion of nozzles having multiple openings.
  • the plurality of orifices may provide multiple gas streams in a pattern that diffuses the lifting force over a greater surface area. For instance, when placed approximately one inch from the surface of the glass sheet (approximating installation height), each nozzle may provide an upward force over an area with a diameter of about 1.5 inches, for instance, from about 0.5 to about 2 inches in diameter. When placed approximately 2 inches from the surface of the glass sheet (approximating shaping mold height), each nozzle may provide an upward force over an area with a diameter of about 4 inches, for example, from about 2 inches to about 6 inches in diameter. According to various embodiments, depending on the roller and nozzle configuration, the upward force from each nozzle may provide a nearly continuous coverage over substantially the entire surface of the glass sheet.
  • the lift jet array disclosed herein may also be used to shape glass sheets that are thinner than those shaped by current systems.
  • the methods and systems disclosed herein may be used to shape thin glass sheets having a thickness ranging from about 0.3 mm to about 3 mm, such as from about 0.5 mm to about 2 mm, or from about 0.7 mm to about 1.5 mm, including all ranges and subranges therebetween.
  • the methods and systems disclosed herein may be used to shape thicker glass sheets, for example, sheets having a thickness greater than about 3 mm, such as greater than about 4 mm, or greater than about 5 mm.
  • a glass sheet may be conveyed along a plane on a roll conveyor comprising a plurality of rollers, the plurality of rollers having a centerline substantially parallel to the plane.
  • the glass may be placed directly on the rollers which convey the glass sheet along a predetermined plane.
  • the plane may, for example, be horizontal, but may also be at any other suitable angle, if desired.
  • the glass sheet is heated in any manner known in the art, for example, the sheet may be conveyed through a furnace or other heating device. Alternatively, the roll conveyor itself may be heated. In certain embodiments, the glass may be heated to a softening point, e.g., a point at which the sheet can be effectively molded into a new shape. According to various embodiments, the glass sheet may be heated to a temperature ranging from about 500° C. to about 1000° C., such as from about 600° C. to about 900° C., or from about 700° C. to about 800° C., including all ranges and subranges therebetween.
  • the glass sheet may be optionally conveyed to a position below a shaping mold.
  • the shaping mold may have any shape and size suitable for producing a shaped glass product for a particular application.
  • the shaping mold may be designed so as to impart a desired curvature to the glass sheet, for example, in the case of windshields and rear or side windows for an automobile.
  • Other shapes and configurations are envisioned and within the scope of the application.
  • a lift jet array comprising a plurality of nozzles may be positioned below the glass sheet.
  • One or more nozzles may comprise a plurality of orifices from which streams of gas may emanate to provide an upward lifting force capable of floating and lifting the glass sheet from the roll conveyor toward and/or up to the shaping mold.
  • the gas streams may comprise, in certain embodiments, pressurized air, but may also include other suitable gases and mixtures of gases, such as inert gases, as desired and without limitation.
  • the gas flow may alone be sufficient to lift the glass sheet until it contacts the shaping mold.
  • the shaping mold may also comprise orifices through which a vacuum may be drawn to assist the transfer of the glass sheet from the roll conveyor to the shaping mold. In such cases, a stronger vacuum may be initially drawn to provide the initial support, and may be subsequently lessened to prevent deformation of the glass sheet at the vacuum openings.
  • the terms “the,” “a,” or “an,” mean “at least one,” and should not be limited to “only one” unless explicitly indicated to the contrary.
  • reference to “a nozzle” includes examples having two or more such “nozzles” unless the context clearly indicates otherwise.
  • a “plurality” is intended to denote “more than one.”
  • a “plurality of nozzles” includes two or more such nozzles, such as three or more such nozzles, etc.
  • Ranges can be expressed herein as from “about” one particular value, and/or to “about” another particular value. When such a range is expressed, examples include from the one particular value and/or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent “about,” it will be understood that the particular value forms another aspect. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Organic Chemistry (AREA)
  • Re-Forming, After-Treatment, Cutting And Transporting Of Glass Products (AREA)

Abstract

Disclosed herein are systems for shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane; a lift jet array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; and a shaping mold located above the roll conveyor, wherein the lift jet array is positioned below the roll conveyor such that each nozzle tip is located above the centerline of the plurality of rollers. Also disclosed herein are methods for shaping a glass sheet comprising heating the glass sheet and conveying the glass sheet on a roll conveyor to a position between the lift jet array and the shaping mold, wherein gas flows from the lift jet array with a force sufficient to lift the glass sheet from the roll conveyor.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application claims the benefit of priority under 35 U.S.C. §119 of U.S. Provisional Application Ser. No. 61/972,784 filed on Mar. 31, 2014 the content of which is relied upon and incorporated herein by reference in its entirety.
  • FIELD OF THE DISCLOSURE
  • The disclosure relates generally to methods and systems for shaping glass sheets, and more particularly to lift jet floatation systems for bending thin glasses.
  • BACKGROUND
  • The ability to thermally shape and form thin glass sheets is increasingly relevant to various industries, such as the automotive industry. The production of glass panes for automobiles is a complex process, which is constantly changing due to increasingly stringent environmental and safety requirements. The demand for intricate glass shapes with high optical quality and low weight is growing as governmental regulations require increased fuel economy and reduced emissions. The ability to make automotive parts from thinner glasses may translate to lower vehicle weight, improved fuel economy, reduced emissions, and/or improved vehicle weight distribution (e.g., lower center of gravity).
  • Prior art methods for shaping glass include placing glass sheets on a roll conveyor, conveying the glass through a furnace to heat and soften the sheets, and positioning the softened glass below a shaping mold, where it is lifted upward by a lift jet array to contact the shaping mold. The shaping mold serves as a surface around which the glass sheet can be formed to the desired shape. The lift jet array pattern is typically different for different shapes and/or parts and may include non-adjustable, fixed diameter/orifice nozzles and/or adjustable threaded nozzles. The nozzles are positioned below the rollers and blow controlled and focused streams of heated air up between the rollers.
  • Conventional lift jet systems work well with traditional glasses, which are thicker, such as soda-lime glasses having a thickness ranging from about 3 mm to about 6 mm. Thicker glass sheets can generally withstand the pressure from the nozzles without suffering from local deformations. However, when thinner glasses (e.g., thicknesses less than about 3.0 mm, between about 0.3 mm and about 2.0 mm, between about 0.5 mm and about 1.5 mm, and all ranges and subranges therebetween) are processed using these traditional lift jet systems, the glass tends to distort and bend between each nozzle due to the localized upward force from the nozzles.
  • Accordingly, it would be advantageous to provide methods and systems for shaping and tempering thinner glass sheets, more specifically a lift jet array that more evenly distributes the upward lifting force over a greater surface area so as to reduce and/or eliminate glass distortion. To reduce manufacturing costs and/or processing times, it would additionally be advantageous to provide a system that can function, at least in part, in conjunction with existing systems for bending and tempering traditional (e.g., thicker) glasses.
  • SUMMARY
  • The disclosure relates, in various embodiments, to a lift jet floatation system for shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane; a lift jet array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; and a shaping mold, wherein the roll conveyer is positioned substantially between the lift jet array and the shaping mold, and wherein the lift jet array is positioned such that each nozzle tip is located above the centerline of the plurality of rollers.
  • The disclosure also relates to methods for shaping a glass sheet comprising conveying the glass sheet along a plane on a roll conveyor comprising a plurality of rollers, the plurality of rollers having a centerline substantially parallel to the plane; heating the glass sheet; and positioning the glass sheet on the roll conveyor between a shaping mold and a lift jet array, wherein the lift jet array comprises a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices, and wherein the lift jet array is positioned substantially below the roll conveyor such that each nozzle tip is located above the centerline of the plurality of rollers, and wherein a stream of gas flows from each orifice in the lift jet array with a combined force sufficient to lift the glass sheet from the roll conveyor.
  • The disclosure further relates to a system for lifting or shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane, and an array of lift nozzles, each array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; wherein each nozzle tip is located above the centerline of the plurality of rollers.
  • Additional features and advantages of the disclosure will be set forth in the detailed description which follows, and in part will be readily apparent to those skilled in the art from that description or recognized by practicing the methods as described herein, including the detailed description which follows, the claims, as well as the appended drawings.
  • It is to be understood that both the foregoing general description and the following detailed description present various embodiments of the disclosure, and are intended to provide an overview or framework for understanding the nature and character of the claims. The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated into and constitute a part of this specification. The drawings illustrate various embodiments of the disclosure and together with the description serve to explain the principles and operations of the disclosure.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The following detailed description can be best understood when read in conjunction with the following drawings, where like structures are indicated with like reference numerals and in which:
  • FIG. 1 is a side view illustrating a jet lift floatation system according to one embodiment of the disclosure;
  • FIG. 2 is a graphical illustration of a nozzle as originally installed and as positioned according to one embodiment of the disclosure;
  • FIG. 3A is a side view illustrating a nozzle having a plurality of orifices according to one embodiment of the disclosure;
  • FIG. 3B is an elevational view along the line A-A in FIG. 3A, illustrating a nozzle having a plurality of orifices according to one embodiment of the disclosure; and
  • FIG. 3C is a top view illustrating a nozzle having a plurality of orifices according to one embodiment of the disclosure.
  • DETAILED DESCRIPTION
  • Disclosed herein is a lift jet floatation system for shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane; a lift jet array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; and a shaping mold, wherein the roll conveyer is positioned substantially between the lift jet array and the shaping mold, and wherein the lift jet array is positioned substantially below the roll conveyor such that each nozzle tip is located above the centerline of the plurality of rollers.
  • Also disclosed herein is a system for lifting or shaping a glass sheet comprising a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane, and an array of lift nozzles, each array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; wherein each nozzle tip is located above the centerline of the plurality of rollers.
  • Lift Jet System
  • With reference to FIG. 1, one embodiment of a lift jet floatation system is illustrated, which comprises a roll conveyor 100 having a plurality of rollers 110 on which glass sheets G may be conveyed along a directional plane 120. The glass sheet may be conveyed through a furnace or other heating means (not illustrated) or any other suitable means may be used to soften the glass sheet prior to shaping. According to various embodiments, the glass sheet may be heated to a temperature at which the sheet can be shaped or molded.
  • The plurality of rollers has a centerline 130 which is substantially parallel to the plane 120. A lift jet array 140 may be located below the roll conveyor and includes a plurality of nozzles 150, each nozzle comprising a tip 160 having a plurality of orifices. FIGS. 3A-C provide detailed illustrations of the nozzle orifices. The lift jet array is positioned such that each nozzle tip 160 is located between the rollers 110 and above the centerline 130. The position of the nozzles 150 is more particularly illustrated in FIG. 2.
  • The glass sheet G may be conveyed and positioned under a shaping mold 180 and above the lift jet array 140. The nozzles 150 may supply an upward gas flow to the glass sheet. Pressurized gas, which may be chosen from any gas including, but not limited to, air, may be provided to the lift jet array 140 from a suitable source 170. The glass sheet G may be lifted up from the roll conveyor 100 by the flow of gas from the nozzles 150 and brought into contact with the downward facing surface 190 of the shaping mold 180. The shaping mold 180 may comprise one or more openings (not illustrated) through which a vacuum may optionally be drawn to support the glass sheet received from the conveyor.
  • According to various embodiments, the lift jet array 140 may comprise one or more nozzles 150 comprising a tip 160 having a plurality of orifices. In other embodiment, each nozzle 150 comprises a tip 160 having a plurality of orifices. According to further embodiments, the nozzles 150 may be identical. In still further embodiments, one or more of the plurality of nozzles 150 in the array has a distribution of orifices different from an adjacent nozzle.
  • FIG. 2 is a graphical illustration of a jet nozzle configured according to one aspect of the disclosure and positioned according to one embodiment of the disclosure 250 a (position “a”) and a nozzle configured according to one embodiment of the disclosure but positioned as initially installed 250 b (position “b”). In certain embodiments, after installation the nozzle array of the instant disclosure may be elevated to position “a,” such that the nozzle tips are above the roller centerline 230. Pre-existing systems may employ prior art lift jet arrays which can be installed and removed, e.g., by sliding on rails into position under the conveyor. According to various aspects of the disclosure, the lift jet array disclosed herein can be similarly installed and removed using the pre-existing rails (position “b”) and then elevated by any method such that the nozzle tips are between the rollers and above the roller centerline as disclosed herein (position “a”). Alternatively, instead of raising the entire lift jet array, the nozzles themselves may be vertically adjustable, e.g., they may be designed to “pop up” during use, such that the nozzle tips are located above the centerline.
  • As illustrated in FIG. 2, the pitch v of the rollers 210 represents the distance between the rollers as measured from the center of each roller. The pitch v may vary depending on the conveyor. In certain embodiments, the pitch v may range from about 2 inches to about 8 inches, for example, from about 3 inches to about 6 inches, or about 4 inches, including all ranges and subranges therebetween. The nozzles 250 may be positioned, according to various embodiments, such that the nozzle tips 260 are above the centerline 230 and a distance w from the tops of the rollers. The distance w may also vary and may, in certain embodiments, range from about 0.5 inches to about 4 inches, such as from about 1 inch to about 2 inches, including all ranges and subranges therebetween. The distance x between installation position “b” and elevated position “a” may vary and may, in various embodiments, range from about 1 inch to about 4 inches, such as from about 2 inches to about 3 inches, including all ranges and subranges therebetween. Upon installation the nozzles in position “b” may be below the rollers, e.g., a distance y from the bottoms of the rollers. This distance y may also vary and may, in certain embodiments, range from about 0.5 inches to about 2 inches, for example, from about 1 inch to about 1.5 inches, including all ranges and subranges therebetween. The nozzle 250 may furthermore have any dimensions, such as a total nozzle length z, which may vary and may range, for example, from about 1 inch to about 4 inches, such as from about 2 inches to about 3.5 inches, or from about 2.5 inches to about 3 inches, including all ranges and subranges therebetween.
  • It should be noted that position “b” may also correspond to the prior art nozzle positioning, although the prior art nozzles in such an instance comprise only one orifice (not the multi-orifice nozzle illustrated). Conventionally, prior art nozzles deliver a single, focused stream of gas and, thus, the nozzles are located below the rollers, i.e., further away from the glass surface, without a substantial negative impact to the lifting force. Additionally, because thicker glasses are less susceptible to deformation caused by air turbulence, gas flow does not have to be as carefully controlled to prevent interference from the rollers themselves. As such, prior art systems typically position the lift jet array below the conveyor such that the nozzles are below the rollers. This position corresponds to the initial installation position (position “b”).
  • As such, according to various non-limiting embodiments, the lift jet array may be vertically adjustable, e.g., placed in position “b” and then elevated to position “a.” For instance, in a non-limiting embodiment a screw-based mechanism may be utilized to slide one or more wedges under the array assembly, the array may be elevated, for example evenly elevated, to the desired height. The wedges may, in certain embodiments, be adjustable so as to allow adjustability of the lift jet array to different heights, depending on the dimensions of system in which it is implemented. Such a lifting mechanism of course is exemplary only and should not limit the scope of the claims appended herewith as any number of lifting mechanisms may be utilized with embodiments of the present disclosure. For example, in other embodiments, a lift may be installed beneath the lift jet array, such as beneath the floor, which may then lift a frame supporting the lift jet array to the desired height. Thus, in each of these embodiments, the lift jet array may be elevated at temperature, that is, the space (i.e., furnace or respective module containing the lift jet array) does not need to be reduced in temperature to raise or lower the lift jet manually or otherwise, and thus the associated system or bending lehr can be maintained at high efficiency and at temperature.
  • In various disclosed embodiments, each nozzle 250 may have a plurality of orifices, each of which delivers a stream of gas, thus distributing the lifting force over a wider surface area. If the gas flow from the nozzles 250 impinges on the rollers 210, this may cause turbulence and significantly reduce the lifting force. Accordingly, in various embodiments disclosed herein, the jet lift array may be positioned such that the tip 260 of each nozzle 250 is located between the rollers and above the centerline of the rollers 230. In such embodiments, the gas flow is not, or is not substantially, disrupted by the adjacent rollers 230.
  • Referring to FIGS. 3A-C, several views of a nozzle 350 according to various aspects of the disclosure are illustrated. FIG. 3A shows the nozzle 350 comprising a body 355 and a tip 360, the tip optionally having a plurality of orifices 365. The tip may be angled relative to the body at any suitable angle θ°. For example, θ may range from about 5° to about 85°, such as from about 15° to about 70°, or from about 30° to about 60°, including all ranges and subranges therebetween.
  • FIG. 3B is a view of the nozzle 350 along the line A-A in FIG. 3A. This view provides a more detailed view of the orifices 365 located in the tip 360 of the nozzle. In the illustrated embodiment, the tip comprises six orifices; however, it is envisioned that various tips may comprise more or less orifices, such as two or more orifices, three or more, four or more, five or more, six or more, seven or more, or eight or more orifices. The nozzle 350 may further comprise at least one conduit, such as conduit 358 that passes through the body and tip of the nozzle, to deliver a plurality of streams of gas to a proximate thin glass sheet via the orifices 365.
  • FIG. 3C is a top view of the nozzle 350, illustrating the spacing of the orifices, which are, in at least this embodiment, evenly spaced along the circumference of the tip. Other configurations, including number, spacing, and/or distribution, are possible and within the scope of the instant disclosure. It should also be noted that these figures are not drawn to scale and any nozzle shape and/or size and/or orifice configuration may be employed in accordance with different aspects of the disclosure.
  • The nozzle design and placement according to the instant disclosure may thus provide an upward force over a greater surface area by replacing a single-opening nozzle with at least a portion of nozzles having multiple openings. The plurality of orifices may provide multiple gas streams in a pattern that diffuses the lifting force over a greater surface area. For instance, when placed approximately one inch from the surface of the glass sheet (approximating installation height), each nozzle may provide an upward force over an area with a diameter of about 1.5 inches, for instance, from about 0.5 to about 2 inches in diameter. When placed approximately 2 inches from the surface of the glass sheet (approximating shaping mold height), each nozzle may provide an upward force over an area with a diameter of about 4 inches, for example, from about 2 inches to about 6 inches in diameter. According to various embodiments, depending on the roller and nozzle configuration, the upward force from each nozzle may provide a nearly continuous coverage over substantially the entire surface of the glass sheet.
  • Accordingly, the lift jet array disclosed herein, and the systems and methods employing such a lift jet array, may also be used to shape glass sheets that are thinner than those shaped by current systems. For example, the methods and systems disclosed herein may be used to shape thin glass sheets having a thickness ranging from about 0.3 mm to about 3 mm, such as from about 0.5 mm to about 2 mm, or from about 0.7 mm to about 1.5 mm, including all ranges and subranges therebetween. Alternatively, the methods and systems disclosed herein may be used to shape thicker glass sheets, for example, sheets having a thickness greater than about 3 mm, such as greater than about 4 mm, or greater than about 5 mm.
  • Methods
  • According to the methods disclosed herein, a glass sheet may be conveyed along a plane on a roll conveyor comprising a plurality of rollers, the plurality of rollers having a centerline substantially parallel to the plane. In certain embodiments, the glass may be placed directly on the rollers which convey the glass sheet along a predetermined plane. The plane may, for example, be horizontal, but may also be at any other suitable angle, if desired.
  • The glass sheet is heated in any manner known in the art, for example, the sheet may be conveyed through a furnace or other heating device. Alternatively, the roll conveyor itself may be heated. In certain embodiments, the glass may be heated to a softening point, e.g., a point at which the sheet can be effectively molded into a new shape. According to various embodiments, the glass sheet may be heated to a temperature ranging from about 500° C. to about 1000° C., such as from about 600° C. to about 900° C., or from about 700° C. to about 800° C., including all ranges and subranges therebetween.
  • After heating, the glass sheet may be optionally conveyed to a position below a shaping mold. The shaping mold may have any shape and size suitable for producing a shaped glass product for a particular application. For instance, the shaping mold may be designed so as to impart a desired curvature to the glass sheet, for example, in the case of windshields and rear or side windows for an automobile. Other shapes and configurations are envisioned and within the scope of the application.
  • A lift jet array comprising a plurality of nozzles may be positioned below the glass sheet. One or more nozzles may comprise a plurality of orifices from which streams of gas may emanate to provide an upward lifting force capable of floating and lifting the glass sheet from the roll conveyor toward and/or up to the shaping mold. The gas streams may comprise, in certain embodiments, pressurized air, but may also include other suitable gases and mixtures of gases, such as inert gases, as desired and without limitation.
  • According to various embodiments, the gas flow may alone be sufficient to lift the glass sheet until it contacts the shaping mold. In other embodiments, the shaping mold may also comprise orifices through which a vacuum may be drawn to assist the transfer of the glass sheet from the roll conveyor to the shaping mold. In such cases, a stronger vacuum may be initially drawn to provide the initial support, and may be subsequently lessened to prevent deformation of the glass sheet at the vacuum openings.
  • It will be appreciated that the various disclosed embodiments may involve particular features, elements or steps that are described in connection with that particular embodiment. It will also be appreciated that a particular feature, element or step, although described in relation to one particular embodiment, may be interchanged or combined with alternate embodiments in various non-illustrated combinations or permutations.
  • It is also to be understood that, as used herein the terms “the,” “a,” or “an,” mean “at least one,” and should not be limited to “only one” unless explicitly indicated to the contrary. Thus, for example, reference to “a nozzle” includes examples having two or more such “nozzles” unless the context clearly indicates otherwise. Likewise, a “plurality” is intended to denote “more than one.” As such, a “plurality of nozzles” includes two or more such nozzles, such as three or more such nozzles, etc.
  • Ranges can be expressed herein as from “about” one particular value, and/or to “about” another particular value. When such a range is expressed, examples include from the one particular value and/or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent “about,” it will be understood that the particular value forms another aspect. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint.
  • Unless otherwise expressly stated, it is in no way intended that any method set forth herein be construed as requiring that its steps be performed in a specific order. Accordingly, where a method claim does not actually recite an order to be followed by its steps or it is not otherwise specifically stated in the claims or descriptions that the steps are to be limited to a specific order, it is no way intended that any particular order be inferred.
  • While various features, elements or steps of particular embodiments may be disclosed using the transitional phrase “comprising,” it is to be understood that alternative embodiments, including those that may be described using the transitional phrases “consisting” or “consisting essentially of,” are implied. Thus, for example, implied alternative embodiments to a system that comprises A+B+C include embodiments where a system consists of A+B+C and embodiments where a system consists essentially of A+B+C.
  • It will be apparent to those skilled in the art that various modifications and variations can be made to the present disclosure without departing from the spirit and scope of the disclosure. Since modifications combinations, sub-combinations and variations of the disclosed embodiments incorporating the spirit and substance of the disclosure may occur to persons skilled in the art, the disclosure should be construed to include everything within the scope of the appended claims and their equivalents.

Claims (20)

What is claimed is:
1. A lift jet floatation system for shaping a glass sheet comprising:
(a) a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane;
(b) a lift jet array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices; and
(c) a shaping mold;
wherein the roll conveyer is positioned substantially between the lift jet array and the shaping mold; and
wherein the lift jet array is positioned such that each nozzle tip is located above the centerline of the plurality of rollers.
2. The lift jet floatation system of claim 1, further comprising a heating means for softening the glass sheet.
3. The lift jet floatation system of claim 1, wherein each nozzle comprises two or more orifices.
4. The lift jet floatation system of claim 1, wherein each nozzle comprises six or more orifices.
5. The lift jet floatation system of claim 1, wherein one or more of the plurality nozzles in the array has a distribution of orifices different from an adjacent nozzle.
6. The lift jet floatation system of claim 1, further comprising a pressurized gas source connected to the lift jet array, such that gas flows through each orifice of each nozzle in the lift jet array.
7. The lift jet floatation system of claim 1, wherein the shaping mold comprises any one of:
at least one surface for receiving and imparting a shape to the glass sheet; and
a plurality of orifices through which a vacuum is drawn.
8. The lift jet floatation system of claim 1, wherein one or more of the nozzles is vertically adjustable.
9. The lift jet floatation system of claim 1, wherein the lift jet array is vertically adjustable without reducing temperature in a space surrounding the array.
10. A method for shaping a glass sheet comprising:
(a) conveying the glass sheet along a plane on a roll conveyor comprising a plurality of rollers, the plurality of rollers having a centerline substantially parallel to the plane;
(b) heating the glass sheet;
(c) positioning the glass sheet on the roll conveyor between a shaping mold and a lift jet array; and
(d) lifting the glass structure from the roll conveyor by flowing a stream of gas from each orifice in the lift jet array,
wherein the lift jet array comprises a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices,
wherein the lift jet array is positioned such that each nozzle tip is located above the centerline of the plurality of rollers, and
wherein the stream of gas flows with a force sufficient to lift the glass structure from the roll conveyor.
11. The method of claim 10, wherein the glass structure is heated to a temperature ranging from about 600° C. to about 800° C.
12. The method of claim 10, wherein each nozzle comprises two or more orifices.
13. The method of claim 10, wherein each nozzle comprises six or more orifices.
14. The method of claim 10, wherein the stream of gas flow provides a force sufficient to lift the glass structure from the roll conveyor into contact with the shaping mold.
15. The method of claim 10, wherein the shaping mold comprises any one of:
at least one surface for receiving and imparting a shape to the glass sheet; and
a plurality of orifices through which a vacuum is drawn, and wherein the gas flow from the lift jet array and the vacuum from the shaping mold provide a combined force sufficient to lift the glass sheet from the roll conveyor into contact with the shaping mold.
16. The method of claim 11, wherein the glass sheet has a thickness ranging from about 0.7 mm to about 1.5 mm or from about 0.3 to about 1.5 mm.
17. A system for lifting or shaping a glass sheet comprising:
(a) a roll conveyor comprising a plurality of rollers for conveying the glass sheet along a plane, the plurality of rollers having a centerline substantially parallel to the plane; and
(b) an array of lift nozzles, each array comprising a plurality of nozzles, one or more of the plurality of nozzles comprising a tip having a plurality of orifices,
wherein each nozzle tip is located above the centerline of the plurality of rollers.
18. The system of claim 17 further comprising a shaping mold positioned above the roll conveyer and array of lift nozzles.
19. The system of claim 18, wherein one or more lift nozzles in the array is vertically adjustable.
20. The system of claim 18, wherein the array is vertically adjustable without reducing temperature in a space surrounding the array.
US14/669,017 2014-03-31 2015-03-26 Method and lift jet floatation system for shaping thin glass Abandoned US20150274571A1 (en)

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Cited By (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20150274575A1 (en) * 2014-03-31 2015-10-01 Corning Incorporated Method and lift jet floatation system for shaping thin glass
US9616641B2 (en) 2011-06-24 2017-04-11 Corning Incorporated Light-weight hybrid glass laminates
US9809485B2 (en) 2015-11-02 2017-11-07 Glasstech, Inc. Lift device for a glass processing system
US9902640B2 (en) 2012-06-28 2018-02-27 Corning Incorporated Process and system tuning precision glass sheet bending
US9908805B2 (en) 2013-08-26 2018-03-06 Corning Incorporated Method for localized annealing of chemically strengthened glass
US9925743B2 (en) 2012-06-14 2018-03-27 Corning Incorporated Process for laminating thin glass laminates
US10017033B2 (en) 2015-07-10 2018-07-10 Corning Incorporated Cold formed laminates
US10035724B2 (en) 2013-02-25 2018-07-31 Corning Incorporated Methods of manufacturing a thin glass pane
US10035331B2 (en) 2011-06-24 2018-07-31 Corning Incorporated Light-weight hybrid glass laminates
US10137667B2 (en) 2012-06-01 2018-11-27 Corning Incorporated Glass laminate construction for optimized breakage performance
US10279567B2 (en) 2013-08-30 2019-05-07 Corning Incorporated Light-weight, high stiffness glass laminate structure
US10336643B2 (en) 2014-08-01 2019-07-02 Corning Incorporated Glass shaping apparatus and methods
US10350861B2 (en) 2015-07-31 2019-07-16 Corning Incorporated Laminate structures with enhanced damping properties
US10379265B2 (en) 2015-05-11 2019-08-13 Corning Incorporated Surface display units with opaque screen
US10377655B2 (en) 2014-11-07 2019-08-13 Corning Incorporated Induction heating method and apparatus for shaping thin glass
US10549704B2 (en) 2014-07-10 2020-02-04 Corning Incorporated Cold formed glass applique
US10590021B2 (en) 2014-10-29 2020-03-17 Corning Incorporated Apparatus and method for shaping or forming heated glass sheets
US10596783B2 (en) 2012-05-31 2020-03-24 Corning Incorporated Stiff interlayers for laminated glass structures
US10663791B2 (en) 2015-06-02 2020-05-26 Corning Incorporated Material system having multiple appearance states for a display surface of a display unit
US10723104B2 (en) 2015-06-02 2020-07-28 Corning Incorporated Light-responsive thin glass laminates
US10800143B2 (en) 2014-03-07 2020-10-13 Corning Incorporated Glass laminate structures for head-up display system
US11440831B2 (en) * 2018-12-13 2022-09-13 Corning Incorporated Conveying apparatus and conveying ribbon
TWI840471B (en) 2018-12-13 2024-05-01 美商康寧公司 Conveying apparatus and methods for conveying ribbon

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107176787B (en) * 2017-06-29 2023-05-12 东旭光电科技股份有限公司 Roller for float glass annealing process, float glass conveying device and conveying method
US11485668B2 (en) 2019-08-09 2022-11-01 Ford Global Technologies, Llc Glass form and marking
US11753347B2 (en) * 2019-10-14 2023-09-12 Corning Incorporated Rapid forming of glass and ceramics
CN111018335B (en) * 2019-12-25 2022-08-02 中国建材国际工程集团有限公司 Glass taking and distributing system and method for float glass production line
JP7450851B2 (en) * 2020-02-25 2024-03-18 日本電気硝子株式会社 Glass film manufacturing method
CN115557251A (en) * 2022-10-14 2023-01-03 蚌埠高华电子股份有限公司 Pneumatic auxiliary conduction equipment and method for vacuum coated glass

Family Cites Families (57)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1960222A (en) 1930-10-22 1934-05-22 Saint Gobain Manufacture of tempered glass
JPS5549162A (en) 1978-10-03 1980-04-09 Ikeuchi:Kk Mist producting device
FI76315C (en) 1986-10-29 1988-10-10 Kyro Oy Apparatus in the cooling compartment for a glass curing plant
US4767437A (en) 1987-03-25 1988-08-30 Ppg Industries, Inc. Horizontal press bending using a splitting vacuum/pressure pickup
DE4002546C2 (en) 1990-01-29 1994-07-14 Wsp Ingenieurgesellschaft Fuer High-convection gas jet nozzle section for flat material guided over rollers, and method for their operation
US5147439A (en) 1990-05-01 1992-09-15 Glasstech, Inc. Variable pressure gas jet system for lifting and forming glass sheets
JPH04219334A (en) * 1990-12-20 1992-08-10 Asahi Glass Co Ltd Forming device of plate-like body and bending method
US5286271A (en) 1992-07-02 1994-02-15 Ppg Industries, Inc. Method and apparatus for bending glass sheets
US5403369A (en) 1993-09-13 1995-04-04 Glasstech, Inc. Apparatus and method for positioning glass sheets
US5507852A (en) 1994-01-07 1996-04-16 Ppg Industries, Inc. Glass sheet quench
FI104422B (en) 1998-06-30 2000-01-31 Tamglass Ltd Oy Method and apparatus for curing glass sheets
JP3717339B2 (en) * 1999-07-26 2005-11-16 セントラル硝子株式会社 Glass plate bending equipment
JP2001158631A (en) 1999-11-30 2001-06-12 Central Glass Co Ltd Method for curving and molding glass plate
US6505483B1 (en) 2000-02-25 2003-01-14 Surface Combustion, Inc. Glass transportation system
DE10045479A1 (en) 2000-09-14 2002-04-04 Schott Glas Method and device for contactless storage and transportation of flat glass
JP2002173332A (en) 2000-12-07 2002-06-21 Asahi Glass Co Ltd Air jetting nozzle and air floating apparatus for glass plate
JP4064740B2 (en) * 2002-06-24 2008-03-19 セントラル硝子株式会社 Method and apparatus for bending glass plate
JP2004051404A (en) 2002-07-18 2004-02-19 Asahi Glass Co Ltd Bend-forming apparatus for glass plate
DE10314408A1 (en) 2003-03-28 2004-10-07 Pilkington Automotive Deutschland Gmbh Device for generating a gas cushion
GB0406545D0 (en) 2004-03-23 2004-04-28 Pilkington Plc Tempering of glass
WO2006052919A1 (en) 2004-11-08 2006-05-18 New Way Machine Components, Inc. Non-contact porous air bearing and glass flattening device
US7958750B2 (en) 2005-10-21 2011-06-14 Glasstech, Inc. Glass sheet forming system
ATE479634T1 (en) 2005-10-24 2010-09-15 Glasstech Inc LIFTING JET NOZZLE TRANSFER OF GLASS SHEET AND JOB CHANGE
US20120094084A1 (en) 2010-10-15 2012-04-19 William Keith Fisher Chemically-strengthened glass laminates
US8986072B2 (en) 2011-05-26 2015-03-24 Corning Incorporated Methods of finishing an edge of a glass sheet
US9616641B2 (en) 2011-06-24 2017-04-11 Corning Incorporated Light-weight hybrid glass laminates
US10035331B2 (en) 2011-06-24 2018-07-31 Corning Incorporated Light-weight hybrid glass laminates
TWI572480B (en) 2011-07-25 2017-03-01 康寧公司 Laminated and ion-exchanged strengthened glass laminates
CN103930382B (en) 2011-10-10 2017-12-12 康宁股份有限公司 Apparatus and method for sharp turn glass plate
WO2013063207A1 (en) 2011-10-28 2013-05-02 Corning Incorporated Glass articles with infrared reflectivity and methods for making the same
US8816252B2 (en) 2011-11-22 2014-08-26 Corning Incorporated Methods and apparatus for localized heating and deformation of glass sheets
US20130127202A1 (en) 2011-11-23 2013-05-23 Shandon Dee Hart Strengthened Glass and Glass Laminates Having Asymmetric Impact Resistance
US8549885B2 (en) 2011-11-23 2013-10-08 Corning Incorporated Process and system for precision glass sheet bending
WO2013181484A1 (en) 2012-05-31 2013-12-05 Corning Incorporated Stiff interlayers for laminated glass structures
US8962084B2 (en) 2012-05-31 2015-02-24 Corning Incorporated Methods of applying a layer of material to a non-planar glass sheet
US8789392B2 (en) 2012-05-31 2014-07-29 Corning Incorporated Apparatus for shaping glass and methods
WO2013181505A1 (en) 2012-06-01 2013-12-05 Corning Incorporated Glass laminate construction for optimized breakage performance
US20150140301A1 (en) 2012-06-08 2015-05-21 Corning Incorporated Laminated glass structures having high glass to polymer interlayer adhesion
US20150122406A1 (en) 2012-06-08 2015-05-07 Corning Incorporated Process for laminating thin glass laminates
US9925743B2 (en) 2012-06-14 2018-03-27 Corning Incorporated Process for laminating thin glass laminates
EP2679551A1 (en) * 2012-06-28 2014-01-01 Corning Incorporated Process and system for fine tuning precision glass sheet bending
US20140087193A1 (en) 2012-09-26 2014-03-27 Jeffrey Scott Cites Methods for producing ion exchanged glass and resulting apparatus
US9387651B2 (en) 2012-09-26 2016-07-12 Corning Incorporated Methods for producing ion exchanged glass and resulting apparatus
EP2944617A4 (en) * 2013-01-11 2016-08-17 Asahi Glass Co Ltd Manufacturing method and manufacturing device for toughened glass
EP2958864B1 (en) 2013-02-25 2018-03-21 Corning Incorporated Method of manufacturing a thin glass pane
CN105408109A (en) 2013-04-22 2016-03-16 康宁股份有限公司 Laminated glass structures having high glass to polymer interlayer adhesion
US20160145139A1 (en) 2013-07-16 2016-05-26 Corning Incorporated System and method for bending thin glass
EP3038990A1 (en) 2013-08-26 2016-07-06 Corning Incorporated Methods for localized annealing of chemically strengthened glass
EP3511161A1 (en) 2013-08-26 2019-07-17 Corning Incorporated Laminate structure
CN105705330B (en) 2013-08-29 2019-06-04 康宁股份有限公司 Thin glass layer laminated structure
KR102317759B1 (en) 2013-08-30 2021-10-27 코닝 인코포레이티드 Light-weight, High Stiffness Glass Laminate Structure
US20160250825A1 (en) 2013-10-07 2016-09-01 Corning Incorporated Glass laminate structures having improved edge strength
US20150158275A1 (en) 2013-12-10 2015-06-11 Corning Incorporated Non-yellowing glass laminate structure
US20150232367A1 (en) 2014-02-18 2015-08-20 Corning Incorporated Press bending mold cloth change system and method
CN106232535A (en) 2014-02-18 2016-12-14 康宁股份有限公司 Adjustable mold system for glass press bending apparatus
US20150251377A1 (en) 2014-03-07 2015-09-10 Corning Incorporated Glass laminate structures for head-up display system
US9573833B2 (en) * 2014-03-31 2017-02-21 Corning Incorporated Method and lift jet floatation system for shaping thin glass

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
Machine translation of JP 2001-039724, Nishitani, Masami; BENDING METHOD FOR GLASS SHEET AND APPARATUS THEREFOR; February 13, 2001. *
Machine translation of JP 2004-026546, Miyamoto, Takayuki; METHOD AND APPARATUS FOR BENDING GLASS PLATE; January 29, 2004. *

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US10350861B2 (en) 2015-07-31 2019-07-16 Corning Incorporated Laminate structures with enhanced damping properties
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US9809485B2 (en) 2015-11-02 2017-11-07 Glasstech, Inc. Lift device for a glass processing system
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US9573833B2 (en) 2017-02-21
US20150274575A1 (en) 2015-10-01
EP3126300A1 (en) 2017-02-08
JP2017511293A (en) 2017-04-20
CN106573815A (en) 2017-04-19
TW201544464A (en) 2015-12-01
WO2015153342A1 (en) 2015-10-08
KR20160138485A (en) 2016-12-05
EP3126300B1 (en) 2018-12-26

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