Sheet glass product fabrication with growth-limited glass bump spacers
10358386 ยท 2019-07-23
Assignee
Inventors
- Richard Robert Grzybowski (Corning, NY, US)
- Daniel Ralph Harvey (Beaver Dams, NY, US)
- Alexander Mikhailovich Streltsov (Corning, NY)
Cpc classification
E06B3/66347
FIXED CONSTRUCTIONS
E06B3/66333
FIXED CONSTRUCTIONS
E06B3/677
FIXED CONSTRUCTIONS
Y02B80/22
GENERAL 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
Y02A30/249
GENERAL 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
E06B3/66304
FIXED CONSTRUCTIONS
International classification
C03C23/00
CHEMISTRY; METALLURGY
E06B3/66
FIXED CONSTRUCTIONS
E06B3/677
FIXED CONSTRUCTIONS
Abstract
Methods of forming a sheet glass product comprising a plurality of growth-limited glass bump spacers. According to the methods, a glass pane of the sheet glass product is irradiated with laser radiation to locally heat the glass pane at a plurality of spacer localities and induce growth of a plurality of glass bump spacers in the glass pane. The growth of the plurality of glass bump spacers is limited by utilizing a growth-limiting plate comprising a scattering surface portion. The scattering surface portion of the growth-limiting plate mitigates damage to the growth-limiting plate and may also mitigate damage to the glass pane. Vacuum insulated glass products and systems for forming a growth-limited sheet glass product are also provided.
Claims
1. A vacuum insulated glass product comprising opposing glass panes and an edge seal, wherein: the opposing glass panes are disposed in a spaced relation opposite and substantially parallel to each other to define an interior region there between; the edge seal is disposed about a periphery of the glass panes to hermetically seal the interior region defined between the opposing glass panes; at least one of the glass panes comprises a plurality of glass bump spacers integrally formed therein; the glass bump spacers extend across the interior region defined between the opposing glass panes and each comprise a glass contact surface against which a face of one of the opposing glass panes rests; and the glass contact surface of at least one of the glass hump spacers comprises a glass scattering surface portion that is integrally formed with the glass contact surface and the at least one of the glass bump spacer and configured for significant scattering of ultraviolet or infrared laser light.
2. The product as claimed in claim 1 wherein the glass scattering surface portion of the at least one glass bump spacer is configured for significant scattering of UV laser radiation.
3. The product as claimed in claim 1 wherein the glass scattering surface portion of the at least one glass bump spacer is configured for significant scattering of laser radiation between about 340 nm and about 380 nm.
4. The product as claimed in claim 1 wherein the glass scattering surface portion of the at least one glass bump spacer is for significant scattering of IR laser radiation.
5. The product as claimed in claim 1 wherein the glass scattering surface portion of the at least one glass bump spacer is configured for significant scattering of laser radiation between about 800 nm and about 1600 nm.
6. The product as claimed in claim 1 wherein the vacuum insulated glass product comprises more than one pair of opposing glass panes.
7. The product as claimed in claim 1 wherein: the glass bump spacers are integrally formed in only one of the opposing glass panes; and the other of the opposing glass panes rests against the glass contact surfaces of the glass bump spacers.
8. The product as claimed in claim 1 wherein: the glass bump spacers are integrally formed in both of the opposing glass panes; and both of the opposing glass panes rest against respective glass contact surfaces of the glass bump spacers.
9. The product as claimed in claim 1 wherein the glass scattering surface portion of the at least one glass bump spacer comprises roughened glass.
10. The product as claimed in claim 1 wherein the glass scattering surface portion is arranged only on the plurality of glass bump spacers.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The following detailed description of specific embodiments of the present disclosure can be best understood when read in conjunction with the following drawings, where like structure is indicated with like reference numerals and in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) Although the concepts disclosed herein will enjoy applicability to any application where an evacuated or non-evacuated spacing is to be maintained between two opposing glass panes, for the purposes of illustration, reference is initially made to the VIG product 10 illustrated in
(7) The illustrated VIG product 10 further includes a plurality of glass-bump spacers 50 that are integrally formed in one or both of the glass panes 20. Although the size, scale, geometry, and general shape of contemplated glass bump spacers 50 can vary without departing from the scope of the present disclosure,
(8) As is noted above, the disclosure of US Patent Application Pub. No. 2010/0107525 presents a variety of suitable methods of forming glass bump spacers 50 in a glass pane. Generally, referring to
(9) More specifically, a portion of the laser radiation 70 is absorbed as it passes through the glass pane 20. This absorption serves to locally heat the glass pane, forming a limited expansion zone within the glass pane 20. It is worth noting that glass within the aforementioned expansion zone will, in many cases, melt and flow, as opposed to simply expanding. Since the expansion zone is constrained by unheated, and therefore unexpanded, regions of glass surrounding the expansion zone, the glass within the expansion zone is compelled to relieve internal stresses by melting, flowing, expanding, or otherwise growing upward, thereby forming a glass bump spacer 50. The spacer 50 can be fixed by rapidly cooling the heated region of the glass pane 20. In one contemplated embodiment, this fixing is accomplished by merely terminating the laser irradiation. Referring further to
(10) Referring to
(11) As is illustrated in
(12) More specifically, according to the embodiment of the present disclosure illustrated in
(13) Referring collectively to
(14) For example, and not by way of limitation, the growth-limiting plate 80 may comprise a borosilicate or fused silica glass plate and the scattering surface portion may be presented as a ground surface portion of the plate. Alternatively, the scattering surface portion may be presented by providing an optically engineered scattering surface on the growth-limiting plate 80, which surface may be applied to or integrally formed in a surface of the growth-limiting plate 80. Examples of optically engineered scattering surfaces include, but are not limited to, mechanically ground, etched, or leeched surfaces. In instances where the present disclosure refers to a particular structure as a plate, it is noted that the plate need not be a uniform, sheet-like structure. Rather, for the purposes of defining and describing concepts of the present disclosure, it is noted that a plate may comprise any structure that presents a continuous or discontinuous, regular or irregular, flat or curved face.
(15) In some contemplated embodiments of the present disclosure, the glass pane is irradiated with UV laser radiation to induce growth of the plurality of glass bump spacers 50 in the glass pane 20 and the scattering surface portion 85 of the growth-limiting surface is configured for significant scattering of UV laser radiation. Contemplated UV wavelengths for effective growth and scattering lie between about 340 nm and about 380 nm. In other contemplated embodiments of the present disclosure, the glass pane is irradiated with IR laser radiation to induce growth of the plurality of glass bump spacers 50 in the glass pane 20 and the scattering surface portion 85 of the growth-limiting surface is configured for significant scattering of IR laser radiation. Contemplated IR wavelengths for effective growth and scattering lie between about 800 nm and about 1600 nm.
(16) For the purposes of describing and defining the present disclosure, it is noted that recitations herein of at least one component, element, etc., should not be used to create an inference that the alternative use of the articles a or an should be limited to a single component, element, etc. It is noted that recitations herein of a component of the present disclosure being configured in a particular way, to embody a particular property, or to function in a particular manner, are structural recitations, as opposed to recitations of intended use. More specifically, the references herein to the manner in which a component is configured denotes an existing physical condition of the component and, as such, is to be taken as a definite recitation of the structural characteristics of the component.
(17) It is noted that terms like preferably, commonly, and typically, when utilized herein, are not utilized to limit the scope of the claimed disclosure or to imply that certain features are critical, essential, or even important to the structure or function of the claims. Rather, these terms are merely intended to identify particular aspects of an embodiment of the present disclosure or to emphasize alternative or additional features that may or may not be utilized in a particular embodiment of the present disclosure.
(18) For the purposes of describing and defining the present embodiments it is noted that the terms substantially, approximately, and about are utilized herein to represent the inherent degree of uncertainty that may be attributed to any quantitative comparison, value, measurement, or other representation. The terms substantially, approximately, and about are also utilized herein to represent the degree by which a quantitative representation may vary from a stated reference without resulting in a change in the basic function of the subject matter at issue.
(19) Having described the subject matter of the present disclosure in detail and by reference to specific embodiments thereof, it is noted that the various details disclosed herein should not be taken to imply that these details relate to elements that are essential components of the various embodiments described herein, even in cases where a particular element is illustrated in each of the drawings that accompany the present description. Rather, the claims appended hereto should be taken as the sole representation of the breadth of the present disclosure and the corresponding scope of the various embodiments described herein. Further, it will be apparent that modifications and variations are possible without departing from the scope of the disclosure defined in the appended claims. More specifically, although some aspects of the present disclosure are identified herein as preferred or particularly advantageous, it is contemplated that the present disclosure is not necessarily limited to these aspects.
(20) It is noted that one or more of the following claims utilize the term wherein as a transitional phrase. It is noted that this term is introduced in the claims as an open-ended transitional phrase that is used to introduce a recitation of a series of characteristics of the structure and should be interpreted in like manner as the more commonly used open-ended preamble term comprising.