Asymmetrical glass laminates having a TPU interlayer and related methods
12162246 ยท 2024-12-10
Assignee
Inventors
- James Gregory Couillard (Ithaca, NY, US)
- Michael Aaron McDonald (Painted Post, NY, US)
- Paul George Rickerl (Endicott, NY, US)
Cpc classification
E06B3/66
FIXED CONSTRUCTIONS
B32B17/10055
PERFORMING OPERATIONS; TRANSPORTING
C03C27/10
CHEMISTRY; METALLURGY
E06B3/6775
FIXED CONSTRUCTIONS
B32B17/10036
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10119
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B17/101
PERFORMING OPERATIONS; TRANSPORTING
International classification
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Various embodiments for a laminate glass article and related methods are provided. The laminated glass article includes a first glass layer and a second glass layer with a TPU interlayer positioned therebetween.
Claims
1. A laminate glass article, comprising: a first layer of a first transparent or translucent material, the first layer having a first coefficient of thermal expansion (CTE) measured over a range of from 0-300 C.; a second layer of a second transparent or translucent material, the second layer having a second CTE; and an interlayer between the first layer and the second layer, wherein the interlayer is adhered between the first layer and the second layer and comprises an interlayer thickness, wherein the first layer is a soda lime silicate glass and the second layer is an alkaline earth boro-aluminosilicate glass, wherein the first layer has a thickness from at least 2 mm to no greater than 3 mm, wherein the second layer has a thickness from 0.3 mm to 1 mm, wherein the laminate glass article has dimensions of at least 1100 mm900 mm and each of a long-edge bow and a diagonal bow of no greater than 1.5 mm when measured in accordance with ASTM C1172 in an as-laminated condition, wherein the interlayer comprises thermoplastic urethane and is configured with a Young's modulus (E) of not greater than 7 MPa to not less than 2 MPa, wherein the interlayer thickness ranges from at least 1.5 mm to no greater than 2.5 mm, and wherein the thickness of the laminate glass article ranges from 5 mm to 7 mm.
2. The article of claim 1, wherein the first CTE is greater than the second CTE.
3. The article of claim 1, wherein the first CTE is 2.5 times greater than the second CTE.
4. The article of claim 1, wherein the first CTE is greater than 7510.sup.7/ C.
5. The article of claim 1, wherein the second CTE is less than 6010.sup.7/ C.
6. The article of claim 1, wherein the thickness of the first layer is greater than the thickness of the second layer.
7. The article of claim 1, wherein the interlayer comprises a thickness of no greater than 2.3 mm.
8. The laminate glass article of claim 1, wherein the laminate glass article has dimensions of at least 5 (1524 mm)10 (2540 mm).
9. A window, comprising: a laminate glass article, and a frame retaining the laminate glass article, wherein the laminate glass article comprises: a first layer of a first transparent or translucent material, the first layer having a first coefficient of thermal expansion (CTE) measured over a range of from 0-300 C.; a second layer of a second transparent or translucent material, the second layer having a second CTE; and an interlayer between the first layer and the second layer, wherein the interlayer is adhered between the first layer and the second layer and comprises an interlayer thickness, wherein the first layer is a soda lime silicate glass and the second layer is an alkaline earth boro-aluminosilicate glass, wherein the first layer has a thickness from at least 2 mm to no greater than 3 mm, wherein the second layer has a thickness from 0.3 mm to 1 mm, wherein the laminate glass article has dimensions of at least 1100 mm900 mm and each of a long-edge bow and a diagonal bow of no greater than 1.5 mm when measured in accordance with ASTM C1172 in an as laminated condition, wherein the interlayer comprises thermoplastic urethane and is configured with a Young's modulus (E) of not greater than 7 MPa to not less than 2 MPa, wherein the interlayer thickness ranges from at least 1.5 mm to no greater than 2.5 mm, and wherein the thickness of the laminate glass article ranges from 5 mm to 7 mm.
10. The laminate glass article of claim 9, wherein the laminate glass article has dimensions of at least 5 (1524 mm)10 (2540 mm).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features, aspects and advantages of the present disclosure are better understood when the following detailed description of the disclosure is read with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
(11) In the following detailed description, for purposes of explanation and not limitation, example embodiments disclosing specific details are set forth to provide a thorough understanding of various principles of the present disclosure. However, it will be apparent to one having ordinary skill in the art, having had the benefit of the present disclosure, that the present disclosure may be practiced in other embodiments that depart from the specific details disclosed herein. Moreover, descriptions of well-known devices, methods and materials may be omitted so as not to obscure the description of various principles of the present disclosure. Finally, wherever applicable, like reference numerals refer to like elements.
(12) Referring to
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Example: Evaluation of Laminate Construction and Bow Measurement
(21) In order to evaluate the interlayer configuration's effect on bow mitigation, an experiment was performed where two (2) laminates were constructed and bow in the resulting laminate was measured in two directions: (1) in the diagonal across the laminate and (2) along the long edge of the laminate.
(22) An embodiment having TPU as the interlayer was evaluated against a Control having polyvinyl butyral (PVB) as the interlayer. The experiment utilized uniform thicknesses for various components: the first layer (soda lime glass) had a thickness of 2.1 mm, the second layer (an alkaline earth boro-aluminosilicate glass) had a thickness of 0.7 mm; and the respective interlayer having an equal thickness (embodiment vs. control).
(23) The same method of lamination was utilized to process all samples, in that the interlayer was positioned between the two layers of glass. Air was removed via vacuum (other acceptable methods of air removal include nip rolling). Then, the interlayer was cured at elevated temperature.
(24) The resulting laminates, each had the same dimension of 1100900 mm, were evaluated for bow (1) in the diagonal across the laminate and (2) along the long edge of the laminate.
(25) Bow was measured in accordance with ASTM C1172. More specifically, each sample was placed in a free-standing vertical position, with the longest edge resting on blocks at the quarter points. With the laminate in this position, a straightedge is then placed across the concave surface, parallel to and within 1 in. (25.4 mm) of the edge, and the maximum deviation was measured with a dial indicator (long edge bow). With the laminate in this position, a straightedge is then placed across the concave surface, from generally opposing corners across the diagonal of the sample, and the maximum deviation was measured with a dial indicator (diagonal bow).
(26) The table below provides the resulting bow measurements for each of the laminates.
(27) TABLE-US-00001 % Bow Post-Lam decrease Interlayer Second Long vs. Control First layer Type/ layer Post-Lam Edge (avg. bow Sample Thickness, Thickness Thickness, Diagonal Bow reduction vs. Description mm (mm) (mm) Bow (mm) (mm) control) Control 2.1 PVB/ 0.7 4.58 4.23 Control, N/A (non-invention) 2.29 Embodiment 2.1 TPU 2.29 0.7 0.84 0.80 81.4%
(28) As shown in the table above, the embodiment significantly outperformed the control. Under identical processing conditions, the embodiment demonstrated over five times less bow compared with an approximately equal thickness of PVB. In evaluating the average bow, the bow was calculated to be over an 80% decrease from that of the control, a significant improvement.
(29) Many variations and modifications may be made to the above-described embodiments of the disclosure without departing substantially from the spirit and various principles of the disclosure. All such modifications and variations are intended to be included herein within the scope of this disclosure and protected by the following claims
REFERENCE NUMBERS
(30) Window 110 (e.g. also called an insulating glazing unit) Frame 108 Seal member(s) 118 First pane 148 Second pane 128 Third pane 136 Fourth pane 138 Air gap 1 150 Air gap 2 152 Air gap 3 154 Laminate 100 First glass layer 102 (e.g. high CTE, thicker, SLG) First side of first glass layer 104 Second side of first glass layer 106 Second glass layer 112 (e.g. low CTE, thinner, non-SLG) First side of second glass layer 114 Second side of second glass layer 116 interlayer 120 TPU layer 122 First side of first TPU layer 124 Second side of first TPU layer 126