AU5199000A - Glass panel - Google Patents

Glass panel Download PDF

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Publication number
AU5199000A
AU5199000A AU51990/00A AU5199000A AU5199000A AU 5199000 A AU5199000 A AU 5199000A AU 51990/00 A AU51990/00 A AU 51990/00A AU 5199000 A AU5199000 A AU 5199000A AU 5199000 A AU5199000 A AU 5199000A
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AU
Australia
Prior art keywords
glass
solder
bands
sheets
solder glass
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
AU51990/00A
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AU759410B2 (en
Inventor
Richard E. Collins
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SYDNEY THE, University of
Original Assignee
Sydney The, University of
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Filing date
Publication date
Priority claimed from AUPQ0902A external-priority patent/AUPQ090299A0/en
Application filed by Sydney The, University of filed Critical Sydney The, University of
Priority to AU51990/00A priority Critical patent/AU759410B2/en
Publication of AU5199000A publication Critical patent/AU5199000A/en
Application granted granted Critical
Publication of AU759410B2 publication Critical patent/AU759410B2/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Description

WO00/77336 PCT/AUOO/00637 GLASS PANEL Field of the Invention The present invention relates broadly to glass panels which comprise spaced-apart edge sealed glass sheets. The 5 present invention will be described herein with reference to vacuum glazing, however, it will be appreciated that the present invention does have broader applications including, for example, in automobile windows, glass panel displays or solar collector panels. 10 Background of the Invention Hermetic seals which are suitable for use in vacuum glazing typically involve the use of solder glass, which is also referred to as glass frit. The term "solder glass" refers to a glass which melts and softens at a lower 15 temperature than the glass sheets of the glazing, but which has a coefficient of thermal expansion which closely matches that of the glass sheets. As such, a suitable solder glass will depend upon the glass used for the glass sheets of the vacuum glazing. A typical example of glass 20 used for vacuum glazing is soda lime glass. The use of solder glass has the advantage that, unlike other solders such as metal solder, it is "compatible" with the glass sheets. For example, bonds between the solder glass and the glass sheets can be formed by inter 25 diffusion. At the same time, the solder glass is impermeable so that a low pressure within the internal volume of vacuum glazing can be maintained indefinitely for all practical purposes. To form an hermetic seal between two glass sheets of a 30 vacuum glazing, solder glass, normally in the form of a viscous liquid paste containing solder glass powder, is provided around the edges of the glass sheets, which are positioned in a spaced apart relationship, e.g. by way of support pillars placed between the sheets. The entire 35 structure is then heated to a temperature at which the solder glass melts and whilst in its molten state, flows by WO00/77336 PCT/AUOO/00637 2 capillary action between the spaced apart sheets and diffuses into the atomic structure of the respective glass surfaces, forming a strong and leak free joint between them. 5 Although the temperature at which the edge seal process occurs is less than that at which the glass sheets soften and melt, it is in general necessary for the temperature at which the sealing process occurs to be such that the glass sheets are quite close to the point at which 10 softening and distortion occur. In other words the influence of the heating on the glass sheets cannot be ignored for all purposes. As an example, the temperatures necessary to form the seal with the process described above can result in a 15 significant relaxation of internal stresses in the glass sheets. Treatment of the glass sheets at such temperatures for that purpose is commonly referred to as annealing. Although the annealing may result in the removal of unwanted stresses in the glass sheets for some 20 applications, for other applications the removal of residual stresses during the formation of the solder glass seal is undesirable. As an example, it is often required that the glass in windows and doors should be tempered or heat strengthened. Tempered glass contains internal 25 stresses which need to be retained to maintain the increased strength of the glass sheet. Since a significant stress relaxation in the glass sheets cannot be avoided during the forming of the hermetic edge seal made from solder glass as described above, it has 30 up until now been impossible to manufacture vacuum glazing which incorporates an hermetic edge seal made from solder glass and which utilise (fully) heat strengthened glass. Summary of the Invention The present invention may be defined broadly as 35 providing a method of constructing a glass panel which comprises two confronting edge sealed glass sheets. The WO00/77336 PCT/AUOO/00637 3 method comprises the steps of providing a solder glass band around the margin of one surface of each glass sheet; forming, at a first temperature, an hermetic bond between the solder glass band and the associated surface of each 5 glass sheet; positioning the glass sheets in spaced-apart confronting relationship; forming, at a second temperature which is lower than the first temperature, an hermetic seal between the two solder glass bands whilst maintaining the spaced apart relationship between the glass sheets. 10 In one embodiment, the step of forming the hermetic seal between the solder glass bands comprises fusing together the two solder glass bands to form an hermetic bond directly between those bands. Alternatively, the step of forming the hermetic seal 15 between the two solder glass bands comprises interposing solder glass between the two solder glass bands and fusing the solder glass with the two solder glass bands. The temperature and time for forming the hermetic bond between the solder glass band and at least one of the glass 20 sheets is preferably selected such that tempering of the glass sheet will be effected. Support pillars may be used to maintain the glass sheets in the spaced apart relationship. The method does have an application in vacuum glazing, 25 in which case the method further comprises the step of evacuating the hermetically sealed space between the two glass sheets. Preferably, the step of providing the marginal solder glass bands comprises depositing a liquid paste comprising 30 solder glass powder onto the surfaces. The solder glass may alternatively be deposited using different techniques, including deposition by a screen printing process or deposition as a pre-formed film or tape. 35 During the forming of the hermetic seal between the two solder glass bands, a spacing between the glass sheets WO00/77336 PCT/AUOO/00637 4 may change compared to the situation when the glass sheets are positioned in the spaced-apart confronting relationship. The glass sheets may be flat or curved and may be of 5 any circumferential shape. The present invention may also be defined in terms of a glass panel which comprises two confronting edge sealed glass sheets, in which the edge sealing is being effected by the above defined method. 10 Preferred forms of the invention will now be described, by way of example only, with reference to the accompanying drawings. Brief Description of the Drawings Figure 1 is a schematic drawing illustrating a method 15 of forming a glass panel embodying the present invention. Figure 2 is a schematic drawing illustrating another method of forming a glass panel embodying the present invention. Detailed Description of the Preferred Embodiments 20 We seek to manufacture a glass panel comprising two confronting edge sealed glass sheets. In Figure 1(a) liquid solder glass 10 is deposited as marginal bands on the surfaces of two glass sheets 12, 14. In Figure 1(b) the glass sheets 12, 14 are then tempered to establish the 25 necessary stresses within the glass sheets 12, 14 for heat strengthening the same. During the tempering process, the solder glass 10 melts and forms an hermetic bond to the surface of the glass sheets 12, 14. This bond is achieved by interdiffusion of the atoms of the solder glass 10 and 30 the glass sheets 12, 14, typically over a distance of approximately 0.1 pm. As the temperature is decreased at the end of the tempering process, the solder glass solidifies. The two tempered glass sheets are then assembled into 35 a configuration illustrated in Figure 1(c), with the bands of solidified solder glass 10 being positioned on top of WO00/77336 PCT/AU00/00637 5 each other. In the configuration illustrated in Figure 1(c), an array of support pillars 16 has been provided on the bottom glass sheet 14. The sum of the thicknesses of the two bands of solidified solder glass 10 is slightly 5 greater than the height of the support pillars 16. During a second heating process, the bands of solidified solder glass 10 are softened and melted sufficiently to form a hermetic seal between them. At the required temperature, the solder glass 10 softens sufficiently that it deforms, 10 permitting the upper glass sheet 12 to move towards glass sheet 14 until it contacts the support pillars 16, as illustrated in Figure 1(d). After cooling down from the second heating process, a hermetic seal 18 exists between the edges of the glass sheets 12, 14 around their 15 periphery. The second heating process occurs at a lower temperature, and for a shorter time, than is necessary to produce the hermetic bond between the solder glass 10 and the glass sheets 12, 14 during the first heating process (Fig. 1(b)), with the temperature of the second heating 20 process being sufficiently low to avoid a significant relaxation of the stresses within the glass sheets 12, 14 to maintain their heat-strengthened property. The bands of solidified solder glass 10 melt and fuse into a non-porous material during the second heating process, 25 and fuse to each other at a lower temperature than that required for significant interdiffusion to occur between the atoms of the bands of solder glass 10 and the glass sheets 12, 14. For glass sheets made from soda lime glass, the solder 30 glass used would for example have a "conventional" specification of being fusible with soda lime glass at 450 480 2 C for one hour, or at higher temperatures for a shorter time. The tempering process will be chosen to cover those specifications. However, the second heating process, i.e. 35 the fusing of the bands of solder glass 10, can be performed at 440 0 C, preferably 350 0 C for one hour, thereby WO00/77336 PCT/AUOO/00637 6 avoiding a significant stress relaxation in the tempered glass sheets during the second heating process. Turning now to Figure 2 (a), in an alternative embodiment marginal bands of solder glass 20, 22 are 5 deposited on to glass sheets 24, 26, respectively, with the band of solder glass 22 on one of the sheets 26 being wider than the other. The glass sheet 26 is dimensioned to exceed a width of the glass sheet 24 at any point around the periphery of glass sheet 24. 10 Both sheets 24, 26 are then tempered and during the tempering process, hermetic bonds are formed between the bands of solder glass 20, 22 and the glass sheets 24, 26, respectively (see Figure 2(b)). The sheets 24, 26 are then assembled into a 15 configuration as illustrated in Figure 2 (c), with the bottom sheet 26 protruding the upper sheet 24 at any point around the circumference of glass sheet 24. In the configuration illustrated in Figure 2(c), an array of support pillars 28 is provided between the glass sheets 24, 20 26 with a combined thickness of the bands of solder glass 20, 22 being slightly less than a height of the support pillars 28. Next, a further band of solder glass 30 in a liquid paste form is deposited around the periphery of the upper 25 glass sheet 24, on top of the band of solder glass 22, as illustrated in Figure 2(d). The entire structure is then subjected to a second heating process during which the band of solder glass 30 is softened and melted to fuse both to itself to form an 30 impermeable layer, and to each of the bands of solder glass 20, 22 (Figure 2(e)). This melting and fusing operation takes place at a substantially lower temperature, and over a shorter time, than is necessary to form a hermetic bond between the solder glass 20, 22 and the glass sheets 24, 26 35 directly (Figure 2(b)).
WO00/77336 PCT/AUOO/00637 7 In this embodiment, the final separation of the glass sheets 24, 26 is "automatically" controlled to be equal to the height of the support pillars 16, without having to allow for sufficient deformation of the bands of the solder 5 glass 10 to ensure "complete" lowering of the upper sheet 14 as described for the other embodiment (see Figure 1). It will be appreciated by a person skilled in the art that numerous variations and/or modifications may be made to the present invention as shown in the specific 10 embodiments without departing from the spirit or scope of the invention as broadly described. The present embodiments are, therefore, to be considered in all respects to be illustrative and not restrictive. For example, the further solder glass band used for 15 forming an hermetic seal between the pre-deposited bands of solder glass on both glass sheets does not necessarily require one of the glass sheets to be larger than the other. Rather, the further solder glass band may be deposited "directly" on the peripheral side of equally 20 dimensioned glass sheets in the area between the glass sheets. As another example, the further solder glass can be the same solder glass as used for the pre-deposited solder glass bands, or may be a different solder glass with 25 different specifications.

Claims (13)

1. A method of constructing a glass panel which comprises two confronting edge sealed glass sheets, the method comprises the steps of: 5 - providing a solder glass band around the margin of one surface of each glass sheet; - forming, at a first temperature, an hermetic bond between the solder glass band and the associated surface of each glass sheet; 10 - positioning the glass sheets in spaced-apart confronting relationship; - forming, at a second temperature which is lower than the first temperature, an hermetic seal between the two solder glass bands whilst maintaining the spaced 15 apart relationship between the glass sheets.
2. A method as claimed in claim 1, wherein the step of forming the hermetic seal between the solder glass bands comprises fusing together the two solder glass bands to form an hermetic bond directly between those bands. 20
3. A method as claimed in claim 1, wherein the step of forming the hermetic seal between the two solder glass bands comprises interposing solder glass between the two solder glass bands and fusing the solder glass with the two solder glass bands. 25
4. A method as claimed in any one of the preceding claims, wherein the temperature and time for forming the hermetic bond between the solder glass band and at least one of the glass sheets is selected such that tempering of the glass sheet will be effected. 30
5. A method as claimed in any one of the preceding claims, wherein support pillars are used to maintain the glass sheets in the spaced apart relationship.
6. A method as claimed in any one of the preceding claims, wherein the method further comprises the step of 35 evacuating the hermetically sealed space between the two glass sheets. WO00/77336 PCT/AUOO/00637 9
7. A method as claimed in any one of the preceding claims, wherein the step of providing the marginal solder glass bands comprises depositing a liquid paste comprising solder glass powder onto the surfaces. 5
8. A method as claimed in any one of claims 1 to 6, wherein the solder glass is deposited by a screen printing process.
9. A method as claimed in any one of claims 1 to 6, wherein the solder glass is deposited as a pre-formed film 10 or tape.
10. A method as claimed in any one of the preceding claims, wherein, during the forming of the hermetic seal between the two solder glass bands, a spacing between the glass sheets changes compared to the situation when the 15 glass sheets are positioned in the spaced-apart confronting relationship.
11. A method as claimed in any one of the preceding claims, wherein the glass sheets are flat.
12. A method as claimed in any one of claims 1 to 10, 20 wherein the glass sheets are curved.
13. A glass panel which comprises two confronting edge sealed glass sheets, in which the edge sealing is being effected by the method defined in any one of the preceding claims. 25
AU51990/00A 1999-06-10 2000-06-07 Glass panel Ceased AU759410B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU51990/00A AU759410B2 (en) 1999-06-10 2000-06-07 Glass panel

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
AUPQ0902A AUPQ090299A0 (en) 1999-06-10 1999-06-10 Glass panel
AUPQ0902 1999-06-10
PCT/AU2000/000637 WO2000077336A1 (en) 1999-06-10 2000-06-07 Glass panel
AU51990/00A AU759410B2 (en) 1999-06-10 2000-06-07 Glass panel

Publications (2)

Publication Number Publication Date
AU5199000A true AU5199000A (en) 2001-01-02
AU759410B2 AU759410B2 (en) 2003-04-17

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Application Number Title Priority Date Filing Date
AU51990/00A Ceased AU759410B2 (en) 1999-06-10 2000-06-07 Glass panel

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Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4045200A (en) * 1975-01-02 1977-08-30 Owens-Illinois, Inc. Method of forming glass substrates with pre-attached sealing media
JPH1121149A (en) * 1997-06-30 1999-01-26 Central Glass Co Ltd Low-pressure double layer glass panel and its manufacture

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AU759410B2 (en) 2003-04-17

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