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Patent · US9481598B2 · B2 · US

Laser cutting strengthened glass

(11) Publication number
US9481598B2
(21) Application number
14/212,841
(22) Filing date
2014-03-14
(30) Priority date
2013-03-15
(43) Publication date
2016-11-01
(45) Date of grant
2016-11-01
(51) IPC
C03B 33/09; E06B 3/66; G02F 1/153; B23K 26/00; B23K 26/38; B23K 26/40
(52) CPC
  • G02F Optical devices or arrangements for the control of light by modification of the optical properties of the media of the elements involved therein; non-linear optics; frequency-changing of light; optical logic elements; optical analogue/digital converters: 1/1533
  • B23K Soldering or unsoldering; welding; cladding or plating by soldering or welding; cutting by applying heat locally, e.g. flame cutting; working by laser beam: 2103/50, 2103/54, 2203/50, 26/0624, 26/361, 26/38, 26/40, 26/402
  • B32B Layered products, i.e. products built-up of strata of flat or non-flat, e.g. cellular or honeycomb, form: 17/10036, 17/10155, 17/1055, 17/1077
  • C03B Manufacture, shaping, or supplementary processes: 33/0222, 33/091
  • E06B Fixed or movable closures for openings in buildings, vehicles, fences or like enclosures in general, e.g. doors, windows, blinds, gates: 2009/2464, 3/66, 3/663, 3/673, 9/24
  • Y02P Climate change mitigation technologies in the production or processing of goods: 40/57
  • Y10T Technical subjects covered by former us classification: 428/24777
(73) Assignee
Kinestral Technologies Inc
(72) Inventors
Howard S Bergh; Nicolas Timmerman
(54) Title
Laser cutting strengthened glass
(57) Abstract

Methods for cutting strengthened glass are disclosed. The methods can include using a laser. The strengthened glass can include chemically strengthened, heat strengthened, and heat tempered glass. Strengthened glass with edges showing indicia of a laser cutting process are also disclosed. The strengthened glass can include an electrochromic film.

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Claims (24)

  1. A method for cutting thermally-strengthened glass, comprising: providing a thermally-strengthened glass substrate wherein the thermally-strengthened glass substrate has a first surface and an opposing second surface; applying laser energy to the thermally-strengthened glass substrate under conditions effective to cut the thermally-strengthened glass substrate, wherein applying laser energy comprises: focusing the laser energy at a first position on or in proximity of the first surface; and pulsing the laser energy for a pulse duration ranging from about 10 femtoseconds to about 100 picoseconds at a pulse frequency ranging from about 100 kHz to about 100 MHz, the pulsed laser energy having a pulse energy of about 1 μJ to about 400 μJ, and having a wavelength of about 250 nm to about 1100 nm; and wherein the laser energy forms a filamentation pattern defined by a series of regularly recurring substantially parallel filamentation traces in the thermally-strengthened glass substrate.
  2. The method of claim 1 further comprising translating the laser energy relative to a surface of the strengthened glass substrate at a speed ranging from 10 cm/s to 500 cm/s.
  3. The method of claim 1 wherein the laser energy is applied to the thermally-strengthened glass substrate under conditions effective to cut the thermally-strengthened glass substrate into two or more cut pieces, at least one of the cut pieces having a modulus of rupture of greater than about 100 MPa, a set of the cut pieces having a probability of failure of less than about 5% under a 40 MPa load, and the two or more cut pieces having a Weibull modulus greater than 10.
  4. The method of claim 1 wherein the strengthened glass substrate has a first surface, an opposing second surface and a thickness defined by the perpendicular distance between the first surface and the second surface, wherein the laser energy comprises a focal point and wherein conditions effective to cut the strengthened glass substrate include: (a) translating the focal point of the laser energy relative to the first surface, (b) repeating the steps of pulsing the laser energy and translating the focal point of the laser energy to form a filamentation pattern defined by a series of regularly recurring substantially parallel filamentation traces, and (c) separating the strengthened glass substrate along the filamentation pattern to form two or more cut pieces of the strengthened glass substrate.
  5. The method claim 1 wherein the strengthened glass substrate has a first surface, an opposing second surface, and a thickness defined by the perpendicular distance between the first surface and the second surface, the thickness being at least about 1.6 mm; and wherein the first surface has a surface area of at least 1 m 2.
  6. The method of claim 1, further comprising protecting a cut edge of the strengthened glass substrate by coating it with a metal, oxide material, or polymer layer.
  7. The method of claim 1, further comprising forming one or more layers on the strengthened glass substrate prior to applying the laser energy, wherein one of the layers is an electrochromic layer.
  8. The method of claim 1, further comprising assembling an electrochromic device using a cut piece of the strengthened glass substrate.
  9. The method of claim 1, further comprising assembling an integrated glass unit using a cut piece of the strengthened glass substrate.
  10. The method of claim 1, wherein the series of filamentation traces extends from a first surface of the thermally-strengthened glass substrate toward a second surface of the thermally-strengthened glass substrate to a depth of at least 75% of the thickness as detected by optical microscopy.
  11. The method of claim 10, wherein the series of filamentation traces extends from the first surface toward the second surface to a depth of at least 90% of the thickness.
  12. A method for fabricating two or more electrochromic composites, the method comprising: providing an electrochromic composite comprising a strengthened glass substrate having a first surface and an opposing second surface, an electrically conductive layer supported on the first surface of the strengthened glass substrate, and an electrochromic layer in electronic communication with the electrically conductive layer; and applying laser energy to the strengthened glass substrate under conditions effective to cut the strengthened glass substrate to form two or more electrochromic composites, wherein the laser energy forms a filamentation pattern defined by a series of regularly recurring substantially parallel filamentation traces in the strengthened glass substrate extending from a first surface of the strengthened glass substrate toward a second surface of the strengthened glass substrate to a depth of at least 75% of the thickness as detected by optical microscopy.
  13. The method of claim 12, wherein the strengthened glass substrate is a thermally-strengthened glass substrate.
  14. The method of claim 12, wherein the electrochromic composite is provided as a mother glass composite comprising an array of two or more spatially discrete electrochromic composites, each comprising a corresponding spatially discrete portion of the strengthened glass substrate, and the laser energy is applied to the strengthened glass substrate to cut the mother glass composite and separate two or more spatially discrete electrochromic composites.
  15. The method of claim 12, wherein applying laser energy comprises pulsing the laser energy for a pulse duration ranging from about 10 femtoseconds to about 100 picoseconds at a pulse frequency ranging from about 100 kHz to about 100 MHz, the pulsed laser having a pulse energy of about 1 μJ to about 400 μJ, and having a wavelength of about 250 nm to about 1100 nm.
  16. The method of claim 12 further comprising translating the laser energy relative to a surface of the strengthened glass substrate at a speed ranging from 10 cm/s to 500 cm/s.
  17. The method of claim 12, wherein the laser energy is applied to the strengthened glass substrate under conditions effective to cut the strengthened glass substrate into two or more cut pieces, at least one of the cut pieces having a modulus of rupture of greater than about 100 MPa, a set of the cut pieces having a probability of failure of less than about 5% under a 40 MPa load, and the two or more cut pieces having a Weibull modulus greater than 10.
  18. The method of claim 12, wherein the strengthened glass substrate has a first surface, an opposing second surface, and a thickness defined by the perpendicular distance between the first surface and the second surface, the thickness being at least about 1.6 mm.
  19. The method of claim 12, further comprising protecting a cut edge of the strengthened glass substrate by coating it with a metal, oxide material, or polymer layer.
  20. The method of claim 12, further comprising assembling an integrated glass unit using a cut piece of the composite.
  21. The method of claim 12, wherein the series of filamentation traces extends from the first surface toward the second surface to a depth of at least 90% of the thickness.
  22. A method for fabricating an insulated glass unit, the method comprising: providing a first mother glass comprising a first strengthened glass substrate; applying laser energy to the first strengthened glass substrate under conditions effective to cut the strengthened glass substrate to form a first glass lite, wherein applying laser energy comprises pulsing the laser energy for a pulse duration ranging from about 10 femtoseconds to about 100 picoseconds at a pulse frequency ranging from about 100 kHz to about 100 MHz, the pulsed laser having a pulse energy of about 1 μJ to about 400 μJ, and having a wavelength of about 250 nm to about 1100 nm; providing a second glass lite; and assembling the first glass lite and the second glass lite into an insulated glass unit.
  23. The method of claim 22, wherein the first strengthened glass substrate is provided as a component of an electrochromic device.
  24. The method of claim 22, wherein the laser energy is applied to the strengthened glass substrate under conditions effective to cut the strengthened glass substrate into two or more cut pieces, at least one of the cut pieces having a modulus of rupture of greater than about 100 MPa and a set of the cut pieces having a probability of failure of less than about 5% under a 40 MPa load and a Weibull modulus greater than 10.

Description

The present disclosure and inventions relate generally to methods for cutting strengthened glass, such as thermally strengthened glass, to methods for fabricating electrochromic composites, to methods for fabricating electrochromic devices, and to methods for fabricating insulated glass units. The disclosure and inventions also relate to cut thermally strengthened glass, to electrochromic composites, to electrochromic devices and to insulated glass units.

Strengthened glass can be used in a variety of applications that require higher strength than annealed glass. Examples of strengthened glass include chemically-strengthened and thermally-strengthened glass. Thermally-strengthened glass includes both heat-strengthened glass and fully-tempered glass. Chemically-strengthened glass and thermally-strengthened glass both have strained surface regions under compressive stress and an inner region under tensile stress. Chemically-strengthened glass can be manufactured by submerging untreated glass in a molten potassium salt bath. Typical temperatures are 450° C. to 550° C. and a prototypical salt is KNO 3. The sodium ions in the glass surface are exchanged with the potassium ions from the bath. This time dependent ion exchange process results in the formation of compressed surface regions on the glass. Thermally-strengthened glass is typically manufactured by heating annealed glass in a furnace to temperatures over 600° C. followed by rapidly cooling the glass. Such thermal treatment induces residual compressive stress at the surfaces of the glass and tensile stress in the center of the glass.

Citations (20)

  • US5442478A
  • US5609284A
  • US6407360B1
  • US20030006221A1
  • US6787732B1
  • US20070090100A1
  • US20090324899A1
  • US20110304899A1
  • US8327666B2
  • US20100206008A1
  • WO2010100147A1
  • US20110049765A1
  • US20110261429A1
  • WO2012006736A2
  • US20130126573A1
  • US20120047956A1
  • US8824140B2
  • US20120182593A1
  • US20120200908A1
  • US20130266757A1
Record as JSON
{
  "publication_number": "US9481598B2",
  "country": "US",
  "kind": "B2",
  "title": "Laser cutting strengthened glass",
  "abstract": "Methods for cutting strengthened glass are disclosed. The methods can include using a laser. The strengthened glass can include chemically strengthened, heat strengthened, and heat tempered glass. Strengthened glass with edges showing indicia of a laser cutting process are also disclosed. The strengthened glass can include an electrochromic film.",
  "claims": [
    "1. A method for cutting thermally-strengthened glass, comprising: providing a thermally-strengthened glass substrate wherein the thermally-strengthened glass substrate has a first surface and an opposing second surface; applying laser energy to the thermally-strengthened glass substrate under conditions effective to cut the thermally-strengthened glass substrate, wherein applying laser energy comprises: focusing the laser energy at a first position on or in proximity of the first surface; and pulsing the laser energy for a pulse duration ranging from about 10 femtoseconds to about 100 picoseconds at a pulse frequency ranging from about 100 kHz to about 100 MHz, the pulsed laser energy having a pulse energy of about 1 μJ to about 400 μJ, and having a wavelength of about 250 nm to about 1100 nm; and wherein the laser energy forms a filamentation pattern defined by a series of regularly recurring substantially parallel filamentation traces in the thermally-strengthened glass substrate.",
    "2. The method of claim 1 further comprising translating the laser energy relative to a surface of the strengthened glass substrate at a speed ranging from 10 cm/s to 500 cm/s.",
    "3. The method of claim 1 wherein the laser energy is applied to the thermally-strengthened glass substrate under conditions effective to cut the thermally-strengthened glass substrate into two or more cut pieces, at least one of the cut pieces having a modulus of rupture of greater than about 100 MPa, a set of the cut pieces having a probability of failure of less than about 5% under a 40 MPa load, and the two or more cut pieces having a Weibull modulus greater than 10.",
    "4. The method of claim 1 wherein the strengthened glass substrate has a first surface, an opposing second surface and a thickness defined by the perpendicular distance between the first surface and the second surface, wherein the laser energy comprises a focal point and wherein conditions effective to cut the strengthened glass substrate include: (a) translating the focal point of the laser energy relative to the first surface, (b) repeating the steps of pulsing the laser energy and translating the focal point of the laser energy to form a filamentation pattern defined by a series of regularly recurring substantially parallel filamentation traces, and (c) separating the strengthened glass substrate along the filamentation pattern to form two or more cut pieces of the strengthened glass substrate.",
    "5. The method claim 1 wherein the strengthened glass substrate has a first surface, an opposing second surface, and a thickness defined by the perpendicular distance between the first surface and the second surface, the thickness being at least about 1.6 mm; and wherein the first surface has a surface area of at least 1 m 2.",
    "6. The method of claim 1, further comprising protecting a cut edge of the strengthened glass substrate by coating it with a metal, oxide material, or polymer layer.",
    "7. The method of claim 1, further comprising forming one or more layers on the strengthened glass substrate prior to applying the laser energy, wherein one of the layers is an electrochromic layer.",
    "8. The method of claim 1, further comprising assembling an electrochromic device using a cut piece of the strengthened glass substrate.",
    "9. The method of claim 1, further comprising assembling an integrated glass unit using a cut piece of the strengthened glass substrate.",
    "10. The method of claim 1, wherein the series of filamentation traces extends from a first surface of the thermally-strengthened glass substrate toward a second surface of the thermally-strengthened glass substrate to a depth of at least 75% of the thickness as detected by optical microscopy.",
    "11. The method of claim 10, wherein the series of filamentation traces extends from the first surface toward the second surface to a depth of at least 90% of the thickness.",
    "12. A method for fabricating two or more electrochromic composites, the method comprising: providing an electrochromic composite comprising a strengthened glass substrate having a first surface and an opposing second surface, an electrically conductive layer supported on the first surface of the strengthened glass substrate, and an electrochromic layer in electronic communication with the electrically conductive layer; and applying laser energy to the strengthened glass substrate under conditions effective to cut the strengthened glass substrate to form two or more electrochromic composites, wherein the laser energy forms a filamentation pattern defined by a series of regularly recurring substantially parallel filamentation traces in the strengthened glass substrate extending from a first surface of the strengthened glass substrate toward a second surface of the strengthened glass substrate to a depth of at least 75% of the thickness as detected by optical microscopy.",
    "13. The method of claim 12, wherein the strengthened glass substrate is a thermally-strengthened glass substrate.",
    "14. The method of claim 12, wherein the electrochromic composite is provided as a mother glass composite comprising an array of two or more spatially discrete electrochromic composites, each comprising a corresponding spatially discrete portion of the strengthened glass substrate, and the laser energy is applied to the strengthened glass substrate to cut the mother glass composite and separate two or more spatially discrete electrochromic composites.",
    "15. The method of claim 12, wherein applying laser energy comprises pulsing the laser energy for a pulse duration ranging from about 10 femtoseconds to about 100 picoseconds at a pulse frequency ranging from about 100 kHz to about 100 MHz, the pulsed laser having a pulse energy of about 1 μJ to about 400 μJ, and having a wavelength of about 250 nm to about 1100 nm.",
    "16. The method of claim 12 further comprising translating the laser energy relative to a surface of the strengthened glass substrate at a speed ranging from 10 cm/s to 500 cm/s.",
    "17. The method of claim 12, wherein the laser energy is applied to the strengthened glass substrate under conditions effective to cut the strengthened glass substrate into two or more cut pieces, at least one of the cut pieces having a modulus of rupture of greater than about 100 MPa, a set of the cut pieces having a probability of failure of less than about 5% under a 40 MPa load, and the two or more cut pieces having a Weibull modulus greater than 10.",
    "18. The method of claim 12, wherein the strengthened glass substrate has a first surface, an opposing second surface, and a thickness defined by the perpendicular distance between the first surface and the second surface, the thickness being at least about 1.6 mm.",
    "19. The method of claim 12, further comprising protecting a cut edge of the strengthened glass substrate by coating it with a metal, oxide material, or polymer layer.",
    "20. The method of claim 12, further comprising assembling an integrated glass unit using a cut piece of the composite.",
    "21. The method of claim 12, wherein the series of filamentation traces extends from the first surface toward the second surface to a depth of at least 90% of the thickness.",
    "22. A method for fabricating an insulated glass unit, the method comprising: providing a first mother glass comprising a first strengthened glass substrate; applying laser energy to the first strengthened glass substrate under conditions effective to cut the strengthened glass substrate to form a first glass lite, wherein applying laser energy comprises pulsing the laser energy for a pulse duration ranging from about 10 femtoseconds to about 100 picoseconds at a pulse frequency ranging from about 100 kHz to about 100 MHz, the pulsed laser having a pulse energy of about 1 μJ to about 400 μJ, and having a wavelength of about 250 nm to about 1100 nm; providing a second glass lite; and assembling the first glass lite and the second glass lite into an insulated glass unit.",
    "23. The method of claim 22, wherein the first strengthened glass substrate is provided as a component of an electrochromic device.",
    "24. The method of claim 22, wherein the laser energy is applied to the strengthened glass substrate under conditions effective to cut the strengthened glass substrate into two or more cut pieces, at least one of the cut pieces having a modulus of rupture of greater than about 100 MPa and a set of the cut pieces having a probability of failure of less than about 5% under a 40 MPa load and a Weibull modulus greater than 10."
  ],
  "description_excerpt": "The present disclosure and inventions relate generally to methods for cutting strengthened glass, such as thermally strengthened glass, to methods for fabricating electrochromic composites, to methods for fabricating electrochromic devices, and to methods for fabricating insulated glass units. The disclosure and inventions also relate to cut thermally strengthened glass, to electrochromic composites, to electrochromic devices and to insulated glass units.\n\nStrengthened glass can be used in a variety of applications that require higher strength than annealed glass. Examples of strengthened glass include chemically-strengthened and thermally-strengthened glass. Thermally-strengthened glass includes both heat-strengthened glass and fully-tempered glass. Chemically-strengthened glass and thermally-strengthened glass both have strained surface regions under compressive stress and an inner region under tensile stress. Chemically-strengthened glass can be manufactured by submerging untreated glass in a molten potassium salt bath. Typical temperatures are 450° C. to 550° C. and a prototypical salt is KNO 3. The sodium ions in the glass surface are exchanged with the potassium ions from the bath. This time dependent ion exchange process results in the formation of compressed surface regions on the glass. Thermally-strengthened glass is typically manufactured by heating annealed glass in a furnace to temperatures over 600° C. followed by rapidly cooling the glass. Such thermal treatment induces residual compressive stress at the surfaces of the glass and tensile stress in the center of the glass.",
  "cpc": [
    "G02F 1/1533",
    "B23K 2103/50",
    "B23K 2103/54",
    "B23K 2203/50",
    "B23K 26/0624",
    "B23K 26/361",
    "B23K 26/38",
    "B23K 26/40",
    "B23K 26/402",
    "B32B 17/10036",
    "B32B 17/10155",
    "B32B 17/1055",
    "B32B 17/1077",
    "C03B 33/0222",
    "C03B 33/091",
    "E06B 2009/2464",
    "E06B 3/66",
    "E06B 3/663",
    "E06B 3/673",
    "E06B 9/24",
    "Y02P 40/57",
    "Y10T 428/24777"
  ],
  "ipc": [
    "C03B 33/09",
    "E06B 3/66",
    "G02F 1/153",
    "B23K 26/00",
    "B23K 26/38",
    "B23K 26/40"
  ],
  "assignees": [
    "Kinestral Technologies Inc"
  ],
  "inventors": [
    "Howard S Bergh",
    "Nicolas Timmerman"
  ],
  "filing_date": "2014-03-14",
  "publication_date": "2016-11-01",
  "grant_date": "2016-11-01",
  "priority_date": "2013-03-15",
  "application_number": "US-201414212841-A",
  "family_id": "51537676",
  "cited_by_count": 65,
  "citations": [
    "US5442478A",
    "US5609284A",
    "US6407360B1",
    "US20030006221A1",
    "US6787732B1",
    "US20070090100A1",
    "US20090324899A1",
    "US20110304899A1",
    "US8327666B2",
    "US20100206008A1",
    "WO2010100147A1",
    "US20110049765A1",
    "US20110261429A1",
    "WO2012006736A2",
    "US20130126573A1",
    "US20120047956A1",
    "US8824140B2",
    "US20120182593A1",
    "US20120200908A1",
    "US20130266757A1"
  ]
}

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