Patent · US12103884B2 · B2 · US
Vacuum chuck having elongate grooves and method of cold-forming curved glass articles using same
- (11) Publication number
- US12103884B2
- (21) Application number
- 17/201,605
- (22) Filing date
- 2021-03-15
- (30) Priority date
- 2020-03-18
- (43) Publication date
- 2024-10-01
- (45) Date of grant
- 2024-10-01
- (51) IPC
- B25B 11/00; C03B 23/035
- (52) CPC
- (73) Assignee
- CORNING INC
- (72) Inventors
- FRISKE MARK STEPHEN; KNOWLES PETER; Schweiger Christopher Mark; TIMMONS CHRISTOPHER LEE
- (54) Title
- Vacuum chuck having elongate grooves and method of cold-forming curved glass articles using same
- (57) Abstract
Disclosed are embodiments of a vacuum chuck. The vacuum chuck includes a forming surface having a first longitudinal end, a second longitudinal end, and a curved region. The first longitudinal end and the second longitudinal end define a longitudinal axis, and the curved region defines a radius of curvature along the longitudinal axis. A plurality of elongate grooves are formed into the forming surface in the curved region. Each elongate groove of the plurality of elongate grooves has a length, a width, and a depth extending into the forming surface. The length of each elongate groove is greater than the width. At least one conduit is configured for connection to a vacuum source and is disposed beneath the forming surface. The at least one conduit extends transversely across the plurality of elongate grooves, and the at least one conduit is in fluid communication with the plurality of elongate grooves.
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Claims (17)
- A vacuum chuck, comprising: a forming surface comprising a first longitudinal end, a second longitudinal end, and a curved region, wherein the first longitudinal end and the second longitudinal end define a longitudinal axis, and wherein the curved region defines a radius of curvature along the longitudinal axis, wherein the radius of curvature is from 200 mm to 5000 mm; a plurality of elongate grooves formed into the forming surface in the curved region, each elongate groove of the plurality of elongate grooves having a length, a width, and a depth extending into the forming surface, wherein the length of each elongate groove is greater than the width; and at least one conduit configured for connection to a vacuum source, the at least one conduit disposed beneath the forming surface and the at least one conduit extending transversely across the plurality of elongate grooves, wherein the at least one conduit is in fluid communication with the plurality of elongate grooves, wherein each elongate groove of the plurality of elongate grooves is spaced apart from an adjacent elongate groove by 4 mm to 10 mm, wherein the plurality of elongate grooves cover from 20% to 40% of the forming surface.
- The vacuum chuck of claim 1, wherein the width of each elongate groove of the plurality of elongate grooves is from 1 mm to 2 mm.
- The vacuum chuck of claim 1, wherein the depth of each elongate groove is from 1 mm to 10 mm.
- The vacuum chuck of claim 1, wherein the forming surface comprises a steel alloy, a stainless steel alloy, an aluminum alloy, a magnesium alloy, or a resin material.
- The vacuum chuck of claim 1, wherein the vacuum chuck comprises a resin material.
- The vacuum chuck of claim 1, wherein the forming surface comprises a film layer, wherein the plurality of elongate grooves are cut into the film layer, and wherein the vacuum chuck comprises a plurality of ports providing fluid communication between the plurality of elongate grooves and the at least one conduit.
- The vacuum chuck of claim 6, wherein the film layer has a thickness of 50 μm to 1 mm.
- The vacuum chuck of claim 1, further comprising a channel extending around a perimeter of the forming surface and a gasket disposed within the channel.
- The vacuum chuck of claim 1, wherein the first set of elongate grooves extends across at least 90% of the curved region.
- The vacuum chuck of claim 1, wherein the plurality of elongate grooves comprises a first set of elongate grooves and a second set of elongate grooves, wherein the at least one conduit comprises a first conduit in fluid communication with the first set of elongate grooves and a second conduit in fluid communication with the second set of elongate grooves, and wherein a different level of vacuum can be drawn through the first set of elongate grooves than through the second set of elongate grooves.
- The vacuum chuck of claim 1, wherein the length of each elongate groove extends parallel to the longitudinal axis.
- A method, comprising: bending a glass sheet over a forming surface: wherein the glass sheet comprises a first major surface and a second major surface, wherein the second major surface opposes the first major surface, and wherein the first major surface and the second major surface define a thickness of the glass sheet; wherein the forming surface comprises a curved region and a plurality of elongate grooves, wherein the curved region defines a first radius of curvature, wherein the first radius of curvature is from 200 mm to 5000 mm, wherein each elongate groove of the plurality of elongate grooves is spaced apart from an adjacent elongate groove by 4 mm to 10 mm, wherein the plurality of elongate grooves cover from 20% to 40% of the forming surface; and wherein the second major surface of the glass sheet conforms to the curved region of the forming surface; and drawing a vacuum through the plurality of elongate grooves to hold the glass sheet against the forming surface.
- A vacuum chuck, comprising: a resin body comprising a forming surface, wherein the forming surface defines a curvature having a first radius of curvature, wherein the first radius of curvature is from 200 mm to 5000 mm; a plurality of elongate grooves formed into the forming surface, wherein each elongate groove of the plurality of elongate grooves is spaced apart from an adjacent elongate groove by 4 mm to 10 mm, wherein the plurality of elongate grooves cover from 20% to 40% of the forming surface; at least one conduit formed in the resin body, wherein the plurality of elongate grooves are in fluid communication with the at least one conduit and wherein the at least one conduit is configured for connection to a vacuum source; and a gasket extending around a periphery of the forming surface, wherein the gasket is seated within a channel formed into the forming surface.
- The vacuum chuck of claim 13, wherein the resin body comprises at least one of a polyurethane, an epoxy, a phenolic resin, a polyester, a polyamide, an acetal, a polyetherimide, a polyetheretherketone, or a polyphenylene sulfide.
- The vacuum chuck of claim 13, wherein each elongate groove comprises a width of from 1 mm to 2 mm.
- The vacuum chuck of claim 13, wherein each elongate groove comprises a depth of from 1 mm to 10 mm.
- The vacuum chuck of claim 13, wherein the plurality of elongate grooves arranged substantially parallel to a longitudinal axis of the resin body.
Description
The disclosure relates to a vacuum chuck and a method of forming a curved glass article using same and, more particularly, to a vacuum chuck having a plurality of elongate groves, connected by a cross conduit, that are configured to hold a glass sheet in a cold-bent configuration. Vehicle interiors include curved surfaces and can incorporate displays in such curved surfaces. The materials used to form such curved surfaces are typically limited to polymers, which do not exhibit the durability and optical performance as glass. As such, curved glass sheets are desirable, especially when used as covers for displays. Existing methods of forming such curved glass sheets, such as thermal forming, have drawbacks including high cost, optical distortion, and surface marking. Additionally, to meet manufacturing demands, several forming apparatuses are needed for each processing line, and because of the number of forming apparatuses needed, the forming apparatuses are preferably relatively inexpensive to manufacture and use. Accordingly, Applicant has identified a need for vehicle interior systems that can incorporate a curved glass sheet in a cost-effective manner and without problems typically associated with glass thermal forming processes.
According to an aspect, embodiments of the disclosure relate to a vacuum chuck. The vacuum chuck includes a forming surface having a first longitudinal end, a second longitudinal end, and a curved region. The first longitudinal end and the second longitudinal end define a longitudinal axis, and the curved region defines a radius of curvature along the longitudinal axis.
Citations (22)
- CN104395252A
- CN109822444A
- CN110520293A
- CN217025764U
- EP2566658B1
- JP2013188993A
- KR101678986B1
- US10138546B2
- US2013323415A1
- US2015217420A1
- US2017121210A1
- US2017274626A1
- US2018319144A1
- US2019010603A1
- US2019077262A1
- US2019344405A1
- US2023409136A1
- US6032997A
- US9938179B2
- WO2012118612A1
- WO2014130331A1
- WO2019055652A1
Record as JSON
{
"publication_number": "US12103884B2",
"country": "US",
"kind": "B2",
"title": "Vacuum chuck having elongate grooves and method of cold-forming curved glass articles using same",
"abstract": "Disclosed are embodiments of a vacuum chuck. The vacuum chuck includes a forming surface having a first longitudinal end, a second longitudinal end, and a curved region. The first longitudinal end and the second longitudinal end define a longitudinal axis, and the curved region defines a radius of curvature along the longitudinal axis. A plurality of elongate grooves are formed into the forming surface in the curved region. Each elongate groove of the plurality of elongate grooves has a length, a width, and a depth extending into the forming surface. The length of each elongate groove is greater than the width. At least one conduit is configured for connection to a vacuum source and is disposed beneath the forming surface. The at least one conduit extends transversely across the plurality of elongate grooves, and the at least one conduit is in fluid communication with the plurality of elongate grooves.",
"claims": [
"1. A vacuum chuck, comprising: a forming surface comprising a first longitudinal end, a second longitudinal end, and a curved region, wherein the first longitudinal end and the second longitudinal end define a longitudinal axis, and wherein the curved region defines a radius of curvature along the longitudinal axis, wherein the radius of curvature is from 200 mm to 5000 mm; a plurality of elongate grooves formed into the forming surface in the curved region, each elongate groove of the plurality of elongate grooves having a length, a width, and a depth extending into the forming surface, wherein the length of each elongate groove is greater than the width; and at least one conduit configured for connection to a vacuum source, the at least one conduit disposed beneath the forming surface and the at least one conduit extending transversely across the plurality of elongate grooves, wherein the at least one conduit is in fluid communication with the plurality of elongate grooves, wherein each elongate groove of the plurality of elongate grooves is spaced apart from an adjacent elongate groove by 4 mm to 10 mm, wherein the plurality of elongate grooves cover from 20% to 40% of the forming surface.",
"2. The vacuum chuck of claim 1, wherein the width of each elongate groove of the plurality of elongate grooves is from 1 mm to 2 mm.",
"3. The vacuum chuck of claim 1, wherein the depth of each elongate groove is from 1 mm to 10 mm.",
"4. The vacuum chuck of claim 1, wherein the forming surface comprises a steel alloy, a stainless steel alloy, an aluminum alloy, a magnesium alloy, or a resin material.",
"5. The vacuum chuck of claim 1, wherein the vacuum chuck comprises a resin material.",
"6. The vacuum chuck of claim 1, wherein the forming surface comprises a film layer, wherein the plurality of elongate grooves are cut into the film layer, and wherein the vacuum chuck comprises a plurality of ports providing fluid communication between the plurality of elongate grooves and the at least one conduit.",
"7. The vacuum chuck of claim 6, wherein the film layer has a thickness of 50 μm to 1 mm.",
"8. The vacuum chuck of claim 1, further comprising a channel extending around a perimeter of the forming surface and a gasket disposed within the channel.",
"9. The vacuum chuck of claim 1, wherein the first set of elongate grooves extends across at least 90% of the curved region.",
"10. The vacuum chuck of claim 1, wherein the plurality of elongate grooves comprises a first set of elongate grooves and a second set of elongate grooves, wherein the at least one conduit comprises a first conduit in fluid communication with the first set of elongate grooves and a second conduit in fluid communication with the second set of elongate grooves, and wherein a different level of vacuum can be drawn through the first set of elongate grooves than through the second set of elongate grooves.",
"11. The vacuum chuck of claim 1, wherein the length of each elongate groove extends parallel to the longitudinal axis.",
"12. A method, comprising: bending a glass sheet over a forming surface: wherein the glass sheet comprises a first major surface and a second major surface, wherein the second major surface opposes the first major surface, and wherein the first major surface and the second major surface define a thickness of the glass sheet; wherein the forming surface comprises a curved region and a plurality of elongate grooves, wherein the curved region defines a first radius of curvature, wherein the first radius of curvature is from 200 mm to 5000 mm, wherein each elongate groove of the plurality of elongate grooves is spaced apart from an adjacent elongate groove by 4 mm to 10 mm, wherein the plurality of elongate grooves cover from 20% to 40% of the forming surface; and wherein the second major surface of the glass sheet conforms to the curved region of the forming surface; and drawing a vacuum through the plurality of elongate grooves to hold the glass sheet against the forming surface.",
"13. A vacuum chuck, comprising: a resin body comprising a forming surface, wherein the forming surface defines a curvature having a first radius of curvature, wherein the first radius of curvature is from 200 mm to 5000 mm; a plurality of elongate grooves formed into the forming surface, wherein each elongate groove of the plurality of elongate grooves is spaced apart from an adjacent elongate groove by 4 mm to 10 mm, wherein the plurality of elongate grooves cover from 20% to 40% of the forming surface; at least one conduit formed in the resin body, wherein the plurality of elongate grooves are in fluid communication with the at least one conduit and wherein the at least one conduit is configured for connection to a vacuum source; and a gasket extending around a periphery of the forming surface, wherein the gasket is seated within a channel formed into the forming surface.",
"14. The vacuum chuck of claim 13, wherein the resin body comprises at least one of a polyurethane, an epoxy, a phenolic resin, a polyester, a polyamide, an acetal, a polyetherimide, a polyetheretherketone, or a polyphenylene sulfide.",
"15. The vacuum chuck of claim 13, wherein each elongate groove comprises a width of from 1 mm to 2 mm.",
"16. The vacuum chuck of claim 13, wherein each elongate groove comprises a depth of from 1 mm to 10 mm.",
"17. The vacuum chuck of claim 13, wherein the plurality of elongate grooves arranged substantially parallel to a longitudinal axis of the resin body."
],
"description_excerpt": "The disclosure relates to a vacuum chuck and a method of forming a curved glass article using same and, more particularly, to a vacuum chuck having a plurality of elongate groves, connected by a cross conduit, that are configured to hold a glass sheet in a cold-bent configuration. Vehicle interiors include curved surfaces and can incorporate displays in such curved surfaces. The materials used to form such curved surfaces are typically limited to polymers, which do not exhibit the durability and optical performance as glass. As such, curved glass sheets are desirable, especially when used as covers for displays. Existing methods of forming such curved glass sheets, such as thermal forming, have drawbacks including high cost, optical distortion, and surface marking. Additionally, to meet manufacturing demands, several forming apparatuses are needed for each processing line, and because of the number of forming apparatuses needed, the forming apparatuses are preferably relatively inexpensive to manufacture and use. Accordingly, Applicant has identified a need for vehicle interior systems that can incorporate a curved glass sheet in a cost-effective manner and without problems typically associated with glass thermal forming processes.\n\nAccording to an aspect, embodiments of the disclosure relate to a vacuum chuck. The vacuum chuck includes a forming surface having a first longitudinal end, a second longitudinal end, and a curved region. The first longitudinal end and the second longitudinal end define a longitudinal axis, and the curved region defines a radius of curvature along the longitudinal axis.",
"cpc": [
"C03B 23/0357",
"B25B 11/005",
"C03B 23/0093",
"C03B 23/023"
],
"ipc": [
"B25B 11/00",
"C03B 23/035"
],
"assignees": [
"CORNING INC"
],
"inventors": [
"FRISKE MARK STEPHEN",
"KNOWLES PETER",
"Schweiger Christopher Mark",
"TIMMONS CHRISTOPHER LEE"
],
"filing_date": "2021-03-15",
"publication_date": "2024-10-01",
"grant_date": "2024-10-01",
"priority_date": "2020-03-18",
"application_number": "US-202117201605-A",
"family_id": "74871254",
"citations": [
"CN104395252A",
"CN109822444A",
"CN110520293A",
"CN217025764U",
"EP2566658B1",
"JP2013188993A",
"KR101678986B1",
"US10138546B2",
"US2013323415A1",
"US2015217420A1",
"US2017121210A1",
"US2017274626A1",
"US2018319144A1",
"US2019010603A1",
"US2019077262A1",
"US2019344405A1",
"US2023409136A1",
"US6032997A",
"US9938179B2",
"WO2012118612A1",
"WO2014130331A1",
"WO2019055652A1"
]
}
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