ASYMMETRIC LAMINATED GLASS AND MANUFACTURING METHOD THEREFOR AND USE THEREOF
20250353280 ยท 2025-11-20
Inventors
- Jun Lin (Fuzhou City, Fujian Province, CN)
- Zhe Wang (Fuzhou City, Fujian Province, CN)
- Li Wang (Fuzhou City, Fujian Province, CN)
Cpc classification
B32B1/00
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10036
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10119
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10899
PERFORMING OPERATIONS; TRANSPORTING
B32B37/12
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B17/10889
PERFORMING OPERATIONS; TRANSPORTING
C03C21/002
CHEMISTRY; METALLURGY
International classification
B32B1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Asymmetric laminated glass and a manufacturing method therefor and a use thereof. The asymmetric laminated glass comprises outer panel glass and inner panel glass, wherein the thickness of the outer panel glass is greater than that of the inner panel glass; at least 90% of surface regions of a second surface of the outer panel glass and of a third surface of the inner panel glass are both curved surfaces having constant Gaussian curvature; the second surface of the outer panel glass has main curvature K2z and auxiliary curvature K2f in the region, and the third surface of the inner panel glass has main curvature K3z and auxiliary curvature K3f in the region; and the following relational expressions are satisfied: K2f>K3f and 0.7(K3zK3f)/(K2zK2f)1.3. By means of a curvature matching design, the width of an edge optical distortion region of the asymmetric laminated glass is controlled within 50 mm.
Claims
1. An asymmetric laminated glass, comprising: an outer glass panel; an inner glass panel; and an intermediate layer disposed between the outer glass panel and the inner glass panel, a thickness of the outer glass panel being greater than that of the inner glass panel, the outer glass panel has a first surface and the second surface, and the inner glass panel has the third surface and a fourth surface, the first surface is an outer surface of the outer glass panel, the second surface is an inner surface of the outer glass panel, the third surface is an inner surface of the inner glass panel, and the fourth surface is an outer surface of the inner glass panel, wherein a surface region of at least 90% or more in each of a second surface of the outer glass panel and a third surface of the inner glass panel is a curved surface with constant Gaussian curvature, the second surface of the outer glass panel has a major curvature K2z and a minor curvature K2f in the region, the third surface of the inner glass panel has a major curvature K3z and a minor curvature K3f in the region, and K2f>K3f and 0.7(K3zK3f)/(K2zK2f)1.3 are satisfied; wherein the major curvature and the minor curvature of the second surface of the outer glass panel respectively satisfy
2. The asymmetric laminated glass according to claim 1, wherein the outer glass panel and the inner glass panel are not simultaneously formed.
3. The asymmetric laminated glass according to claim 1, wherein the thickness of the outer glass panel is greater than or equal to 1.6 mm, and the thickness of the inner glass panel is less than or equal to 1.2 mm.
4. The asymmetric laminated glass according to claim 3, wherein a nominal thickness of the outer glass panel is ranged from 1.6 mm to 5.0 mm, and a nominal thickness of the inner glass panel is ranged from 0.1 mm to 1.2 mm.
5. The asymmetric laminated glass according to claim 1, wherein the outer glass panel and the inner glass panel are separately thermoformed, including the outer glass panel and the inner glass panel being separately thermoformed on the same device in batches, or being separately thermoformed on different devices.
6. The asymmetric laminated glass according to claim 1, wherein the outer glass panel and the inner glass panel are of the same or different glass selected from soda-lime silicate glass, aluminosilicate glass, lithium aluminosilicate glass, or lithium aluminoborosilicate glass.
7. (canceled)
8. The asymmetric laminated glass according to claim 1, wherein the value of (K3zK3f)/(K2zK2f) satisfies 0.8(K3zK3f)/(K2zK2f)1.1.
9. The asymmetric laminated glass according to claim 8, wherein the value of (K3zK3f)/(K2zK2f) satisfies 0.9(K3zK3f)/(K2zK2f)1.0.
10. The asymmetric laminated glass according to claim 1, wherein a surface region of at least 95% or more in the second surface of the outer glass panel and the third surface of the inner glass panel is a curved surface with constant Gaussian curvature.
11. The asymmetric laminated glass according to claim 10, wherein a surface region of at least 99% or more in the second surface of the outer glass panel and the third surface of the inner glass panel is a curved surface with constant Gaussian curvature.
12. The asymmetric laminated glass according to claim 1, wherein a value of a product S2S3 of an area ratio S2 of the curved surface with constant Gaussian curvature in the second surface of the outer glass panel and an area ratio S3 of the curved surface with constant Gaussian curvature in the third surface of the inner glass panel is not less than 0.81.
13. The asymmetric laminated glass according to claim 12, wherein the value of the product S2S3 of the area ratio S2 of the curved surface with constant Gaussian curvature in the second surface of the outer glass panel and the area ratio S3 of the curved surface with constant Gaussian curvature in the third surface of the inner glass panel is not less than 0.9.
14. The asymmetric laminated glass according to claim 13, wherein the value of the product S2S3 of the area ratio S2 of the curved surface with constant Gaussian curvature in the second surface of the outer glass panel and the area ratio S3 of the curved surface with constant Gaussian curvature in the third surface of the inner glass panel is not less than 0.95.
15. The asymmetric laminated glass according to claim 1, wherein a width of an edge optical distortion region of the asymmetric laminated glass is less than or equal to 50 mm.
16. A method for manufacturing the asymmetric laminated glass according to claim 1, the method comprising: (1) forming the outer glass panel, a surface region of at least 90% or more in the second surface of the outer glass panel being a curved surface with constant Gaussian curvature, and measuring the major curvature K2z and the minor curvature K2f of the second surface of the outer glass panel in the region; (2) determining the major curvature K3z and the minor curvature K3f of the third surface of the inner glass panel in the region according to expressions K2f >K3f and 0.7(K3zK3f)/(K2zK2f)1.3; (3) forming the inner glass panel based on parameters determined in step (2), making a surface region of at least 90% or more in the third surface of the inner glass panel a curved surface with constant Gaussian curvature, and then performing ion exchange strengthening on the inner glass panel; and (4) sandwiching an adhesive between the inner glass panel and the outer glass panel to bond the inner glass panel and the outer glass panel together, thereby obtaining the asymmetric laminated glass.
17. Use of the asymmetric laminated glass according to claim 1 as window glass for front and rear doors of a motor vehicle, sunroof glass of a motor vehicle, front and rear windshield glass of a motor vehicle, or window glass of a rail transit vehicle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] In order to illustrate examples of the present invention or technical solutions in the related art more clearly, the drawings needed to be used in the examples will be briefly introduced below. Obviously, the drawings in the following description are some examples in the present invention. Those having ordinary skills in the art can obtain other drawings based on these drawings without exerting creative work.
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[0050] Main reference numerals in
[0051] 1: Outer glass panel; 2: Intermediate layer; 3: Inner glass panel; 11: First surface; 12: Second surface; 32: Third surface; 31: Fourth surface.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0052] It should be noted that the term include and any variation thereof in the specification, claims, and the above drawings of the present invention are intended to cover non-exclusive inclusions, for example, a process, a method, a system, a product, or a device including a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to the process, the method, the product, or the device.
[0053] The range disclosed in the present invention is given in a form of a lower limit and an upper limit. There can be one or more lower limits, and one or more upper limits, respectively. A given range is defined by selecting a lower limit and an upper limit. The selected lower limit and upper limit define boundaries of a particular range. All ranges defined in this way are combinable, that is, any lower limit can be combined with any upper limit to form a range. For example, for a particular parameter, a range of 60 to 120 and 80 to 110 is listed, and it is understood that a range of 60 to 110 and 80 to 120 is also expected. In addition, if 1 and 2 are listed as minimum range values, and 3, 4, and 5 are listed as maximum range values, the following ranges of 1 to 3, 1 to 4, 1 to 5, 2 to 3, 2 to 4, and 2 to 5 are all expected.
[0054] In the present invention, unless otherwise specified, a numerical range a to b represents an abbreviation of any real number combination between a and b, where a and b are both real numbers. For example, a numerical range 0 to 5 means that all real numbers between 0 to 5 are listed in the present invention, and 0 to 5 is merely an abbreviation of these numerical combinations.
[0055] In the present invention, unless otherwise specified, all embodiments and preferred embodiments described in the present invention can be combined with each other to form a new technical solution.
[0056] In the present invention, unless otherwise specified, all technical features and preferred features described in the present invention can be combined with each other to form a new technical solution.
[0057] In order to make objects, technical solutions, and advantages of the present invention clearer, the present invention is further described in detail below with reference to attached tables, drawings, and examples. The following described examples are some, not all, of examples of the present invention, and are merely used to describe the present invention, and should not be regarded as limiting the scope of the present invention. Based on the examples in the present invention, all other examples obtained by those having ordinary skills in the art without creative work fall within the protection scope of the present invention. If specific conditions are not specified in the examples, the examples are carried out according to normal conditions or conditions recommended by a manufacturer. If a manufacturer is not specified for a reagent or an instrument used, the reagent or the instrument is a normal product that can be purchased commercially.
[0058] In an example of the present invention, the test of a width of an edge optical distortion (vertical stripe optical distortion) region of an asymmetric laminated glass is performed with reference to 3.2.8.2 Side Window Glass Deformation/Optical distortion in GMW3136-2011-02 Automobile Safety Glass. The schematic diagram of a test device is shown in
[0059] A slide projector (according to ECE R43, optical distortion/optical deformation test) is used to project a striped grating (according to the zebra grating slide in DIN 52305) onto a white screen 8 meters away from the slide projector. The zebra grating should provide black vertical stripes. When correctly focused, a width of a black stripe is 12 mm. [0060] 2) The asymmetric laminated glass is placed on a bracket parallel to the light, and the center of the glass is 4 meters away from the slide projector and the screen. During the test, the glass is placed on a bracket tilted 20 relative to a vertical line (so that an angle between the glass and a center line of a vehicle is 20) and rotated to a position where a longitudinal axis forms an angle of 30 with the light beam. The positioning makes an inner surface of the glass closest to the projector. [0061] 3) Requirements: All stripes/lines must be continuous. The maximum deformation of black grid lines on the screen caused by the glass cannot exceed 5 mm. The deformation cannot exceed 4 mm in any 25 cm.sup.2 square area. The position of the glass should be rotated during the test to measure the point with the largest stripe deformation. [0062] 4) The range of a certain width of an edge of the glass is not included in the optical distortion investigation. Depending on the specific product structure, an exclusion region of door glass may have different requirements. In the present invention, an exclusion region of an asymmetric product has a width of 50 mm, and the schematic diagram of the exclusion region is shown in
EXAMPLES 1 TO 35
[0063] The examples provide a series of asymmetric laminated glass. The schematic structural diagram of the asymmetric laminated glass is shown in
[0064] The outer glass panel 1 has a first surface 11 and a second surface 12, and the inner glass panel 3 has a third surface 32 and a fourth surface 31. In a state where the asymmetric laminated glass is installed in a vehicle, from the outside to the inside of the vehicle, the first surface 11, the second surface 12, the third surface 32 and the fourth surface 31 are disposed in this order. As can be seen from
[0065] A surface region of at least 90% or more in the second surface of the outer glass panel and the third surface of the inner glass panel is a curved surface with constant Gaussian curvature, the second surface of the outer glass panel has a major curvature K2z and a minor curvature K2f in the region, the third surface of the inner glass panel has a major curvature K3z and a minor curvature K3f in the region, and K2f>K3f and 0.7(K3zK3f)/(K2zK2f)1.3 are satisfied.
[0066] A method for manufacturing the asymmetric laminated glass provided in Examples 1 to 35 includes: [0067] (1) forming the outer glass panel, a surface region of at least 90% or more in the second surface of the outer glass panel being a curved surface with constant Gaussian curvature, and measuring the major curvature K2z and the minor curvature K2f of the second surface of the outer glass panel in the curved surface region with constant Gaussian curvature; [0068] (2) determining the major curvature K3z and the minor curvature K3f of the third surface of the inner glass panel in the curved surface region with constant Gaussian curvature according to the expressions K2f>K3f and 0.7(K3zK3f)/(K2zK2f)1.3; [0069] (3) forming the inner glass panel based on parameters determined in step (2), making a surface region of at least 90% or more in the third surface of the inner glass panel a curved surface with constant Gaussian curvature, and then performing ion exchange strengthening on the inner glass panel; and [0070] (4) sandwiching an adhesive between the inner glass panel and the outer glass panel to bond the inner glass panel and the outer glass panel together, thereby obtaining the asymmetric laminated glass.
[0071] Here, for the asymmetric laminated glass provided in Examples 1 to 35, thickness data of the outer glass panel and the inner glass panel, data of the proportion of the curved surfaces with constant Gaussian curvature in the second surface of the outer glass panel and the third surface of the inner glass panel, data of the major curvature K2z and the minor curvature K2f of the second surface of the outer glass panel in the region, data of the major curvature K3z and the minor curvature K3f of the third surface of the inner glass panel in the region, and data of the width of the edge optical distortion region of the asymmetric laminated glass are shown in Tables 1 and 2 below.
Comparative Examples 1 to 7
[0072] The comparative examples provide a series of asymmetric laminated glass. Each of the asymmetric laminated glass includes an outer glass panel and an inner glass panel which are not simultaneously formed, and an intermediate layer disposed between the outer glass panel and the inner glass panel. A thickness of the outer glass panel is greater than that of the inner glass panel.
[0073] Part of a surface region in a second surface of the outer glass panel and a third surface of the inner glass panel is a curved surface with constant Gaussian curvature, the second surface of the outer glass panel has a major curvature K2z and a minor curvature K2f in the region, and the third surface of the inner glass panel has a major curvature K3z and a minor curvature K3f in the region.
[0074] In the asymmetric laminated glass provided in Comparative Examples 1 to 7, thickness data of the outer glass panel and the inner glass panel, ratio data of the curved surfaces with constant Gaussian curvature in the second surface of the outer glass panel and the third surface of the inner glass panel, data of the major curvature K2z and the minor curvature K2f of the second surface of the outer glass panel in the region, data of the major curvature K3z and the minor curvature K3f of the third surface of the inner glass panel in the region, and data of the width of the edge optical distortion region of the asymmetric laminated glass are shown in Tables 1 and 2 below.
[0075] A method for manufacturing the asymmetric laminated glass provided in Comparative Examples 1 to 7 includes: [0076] (1) forming the outer glass panel, determining an area ratio of the curved surface with constant Gaussian curvature in the second surface of the outer glass panel according to the data in Table 1, and measuring the major curvature K2z and the minor curvature K2f of the second surface of the outer glass panel in the curved surface region with constant Gaussian curvature; [0077] (2) determining the major curvature K3z and the minor curvature K3f of the third surface of the inner glass panel in the curved surface region with constant Gaussian curvature based on the experimental data in Table 1 below; [0078] (3) forming the inner glass panel based on parameters determined in step (2) and determining an area ratio of the curved surface with constant Gaussian curvature in the third surface of the inner glass panel based on the data in Table 1 below, and then performing ion exchange strengthening on the inner glass panel; and [0079] (4) sandwiching an adhesive between the inner glass panel and the outer glass panel to bond the inner glass panel and the outer glass panel together, thereby obtaining the asymmetric laminated glass.
TABLE-US-00001 TABLE 2 Outer glass panel Number thickness/mm S2/% K2z/mm.sup.1 K2f/mm.sup.1 Example 1 1.6 90 5 10.sup.4 1 10.sup.4 Example 2 1.6 90 5 10.sup.4 1 10.sup.4 Example 3 1.6 90 6 10.sup.4 1 10.sup.4 Example 4 1.6 90 4 10.sup.4 5 10.sup.5 Example 5 1.6 95 3 10.sup.4 5 10.sup.5 Comparative Example 1 1.6 90 5 10.sup.4 1 10.sup.4 Example 6 2.1 90 5 10.sup.4 1 10.sup.4 Example 7 2.1 90 5 10.sup.4 1 10.sup.4 Example 8 2.1 90 6 10.sup.4 1 10.sup.4 Example 9 2.1 95 3 10.sup.4 5 10.sup.5 Example 10 2.1 90 4 10.sup.4 5 10.sup.5 Comparative Example 2 2.1 80 5 10.sup.4 1 10.sup.4 Example 11 2.1 90 5 10.sup.4 1 10.sup.4 Example 12 2.1 90 5 10.sup.4 1 10.sup.4 Example 13 2.1 90 6 10.sup.4 1 10.sup.4 Example 14 2.1 99 3 10.sup.4 5 10.sup.5 Example 15 2.1 90 4 10.sup.4 5 10.sup.5 Comparative Example 3 2.1 90 5 10.sup.4 1 10.sup.4 Example 16 3.0 90 5 10.sup.4 1 10.sup.4 Example 17 3.0 90 5 10.sup.4 1 10.sup.4 Example 18 3.0 90 6 10.sup.4 1 10.sup.4 Example 19 3.0 95 3 10.sup.4 5 10.sup.5 Example 20 3.0 90 4 10.sup.4 5 10.sup.5 Comparative Example 4 3.0 99 3 10.sup.4 5 10.sup.5 Example 21 3.0 90 5 10.sup.4 1 10.sup.4 Example 22 3.0 90 5 10.sup.4 1 10.sup.4 Example 23 3.0 90 6 10.sup.4 1 10.sup.4 Example 24 3.0 99 3 10.sup.4 5 10.sup.5 Example 25 3.0 90 4 10.sup.4 5 10.sup.5 Comparative Example 5 3.0 90 4 10.sup.4 5 10.sup.5 Example 26 3.5 90 5 10.sup.4 1 10.sup.4 Example 27 3.5 90 5 10.sup.4 1 10.sup.4 Example 28 3.5 90 6 10.sup.4 1 10.sup.4 Example 29 3.5 95 3 10.sup.4 5 10.sup.5 Example 30 3.5 90 4 10.sup.4 5 10.sup.5 Comparative Example 6 3.5 90 5 10.sup.4 1 10.sup.4 Example 31 3.5 90 5 10.sup.4 1 10.sup.4 Example 32 3.5 90 5 10.sup.4 1 10.sup.4 Example 33 3.5 90 6 10.sup.4 1 10.sup.4 Example 34 3.5 99 3 10.sup.4 5 10.sup.5 Example 35 3.5 90 4 10.sup.4 5 10.sup.5 Comparative Example 7 3.5 99 3 10.sup.4 5 10.sup.5
TABLE-US-00002 TABLE 2 Edge (K3z optical Inner glass K3f)/ distortion panel K3z/ K3f/ (K2z region Number thickness/mm S3/% mm.sup.1 mm.sup.1 S2 S3 K2f) width/mm Example 1 0.7 95 6 10.sup.4 6 10.sup.5 0.855 0.72 42 Example 2 0.7 95 5 10.sup.4 8 10.sup.5 0.855 0.8 31 Example 3 0.7 95 9 10.sup.4 6 10.sup.5 0.855 0.9 20 Example 4 0.7 95 5 10.sup.4 4 10.sup.5 0.855 1 12 Example 5 0.7 98 6 10.sup.4 3 10.sup.5 0.931 1.2 30 Comparative 0.7 95 6 10.sup.4 4 10.sup.5 0.855 0.48 80 Example 1 Example 6 0.7 95 6 10.sup.4 6 10.sup.5 0.855 0.72 43 Example 7 0.7 95 5 10.sup.4 8 10.sup.5 0.855 0.8 30 Example 8 0.7 95 9 10.sup.4 6 10.sup.5 0.855 0.9 21 Example 9 0.7 98 5 10.sup.4 3 10.sup.5 0.931 1 11 Example 10 0.7 95 6 10.sup.4 4 10.sup.5 0.855 1.2 31 Comparative 0.7 95 6 10.sup.4 6 10.sup.5 0.76 0.72 57 Example 2 Example 11 1.1 95 6 10.sup.4 6 10.sup.5 0.855 0.72 38 Example 12 1.1 95 5 10.sup.4 8 10.sup.5 0.855 0.8 28 Example 13 1.1 95 9 10.sup.4 6 10.sup.5 0.855 0.9 20 Example 14 1.1 99 5 10.sup.4 3 10.sup.5 0.9801 1 10 Example 15 1.1 95 6 10.sup.4 4 10.sup.5 0.855 1.2 29 Comparative 1.1 80 6 10.sup.4 6 10.sup.4 0.72 0.72 55 Example 3 Example 16 0.7 95 6 10.sup.4 6 10.sup.5 0.855 0.72 41 Example 17 0.7 95 5 10.sup.4 8 10.sup.5 0.855 0.8 32 Example 18 0.7 95 9 10.sup.4 6 10.sup.5 0.855 0.9 22 Example 19 0.7 98 5 10.sup.4 3 10.sup.5 0.931 1 11 Example 20 0.7 95 6 10.sup.4 4 10.sup.5 0.855 1.2 29 Comparative 0.7 99 3 10.sup.4 3 10.sup.5 0.9801 0.6 52 Example 4 Example 21 1.1 95 6 10.sup.4 6 10.sup.5 0.855 0.72 39 Example 22 1.1 95 5 10.sup.4 8 10.sup.5 0.855 0.8 28 Example 23 1.1 95 9 10.sup.4 6 10.sup.5 0.855 0.9 19 Example 24 1.1 99 5 10.sup.4 3 10.sup.5 0.9801 1 9 Example 25 1.1 95 6 10.sup.4 4 10.sup.5 0.855 1.2 30 Comparative 1.1 95 7 10.sup.4 4 10.sup.5 0.855 1.4 62 Example 5 Example 26 0.7 95 6 10.sup.4 6 10.sup.5 0.855 0.72 42 Example 27 0.7 95 5 10.sup.4 8 10.sup.5 0.855 0.8 34 Example 28 0.7 95 9 10.sup.4 6 10.sup.5 0.855 0.9 23 Example 29 0.7 98 5 10.sup.4 3 10.sup.5 0.931 1 12 Example 30 0.7 95 6 10.sup.4 4 10.sup.5 0.855 1.2 32 Comparative 0.7 95 9 10.sup.4 8 10.sup.5 0.855 1.44 63 Example 6 Example 31 1.1 95 6 10.sup.4 6 10.sup.5 0.855 0.72 38 Example 32 1.1 95 5 10.sup.4 8 10.sup.5 0.855 0.8 29 Example 33 1.1 95 9 10.sup.4 6 10.sup.5 0.855 0.9 20 Example 34 1.1 99 5 10.sup.4 3 10.sup.5 0.9801 1 10 Example 35 1.1 95 5 10.sup.4 4 10.sup.5 0.855 1.2 30 Comparative 1.1 99 4 10.sup.4 6 10.sup.5 0.9801 1.6 80 Example 7
[0080] The outer glass panel used in Examples 1 to 35 and Comparative Examples 1 to 7 is soda-lime silicate glass, and the inner glass panel is aluminosilicate glass. The composition of oxides of the soda-lime silicate glass and the aluminosilicate glass are shown in Table 3 below, in terms of mass percentage.
TABLE-US-00003 TABLE 3 Composition material Soda-lime silicate glass Aluminosilicate glass SiO.sub.2/wt 65% to 75% 55% to 65% Na.sub.2O/wt 10% to 20% 8% to 18% CaO/wt 5% to 15% 0% to 2% MgO/wt 0% to 5% 0% to 5% K.sub.2O/wt 0% to 3% 0% to 10% Al.sub.2O.sub.3/wt 0% to 5% 8% to 22% Fe.sub.2O.sub.3/wt 0% to 3% 0% to 3% ZrO.sub.2/wt 0% to 1% 0% to 2% B.sub.2O.sub.3/wt 0% to 2% 0% to 5%
[0081] Note: In the present invention, a curvature test method includes the following. First, the glass is placed on a suitable support frame (a multi-point or ring support frame that conforms to the actual profile of the glass) to be in a free state, then a three-dimensional coordinate measurement system is used to measure spatial points of the surface of the solid glass and establish a three-dimensional curved surface, and finally, the major curvature and minor curvature can be quickly checked on commonly used three-dimensional software (such as Catia, PROE or UG).
[0082] It can be seen from the above Tables 1 and 2 that Example 1 and Comparative Example 1 have the same curvature change trend, that is, compared with the major curvature and minor curvature of the outer glass panel, the major curvature of the inner glass panel is larger and the minor curvature is smaller, and both satisfy K2f>K3f. However, in Comparative Example 1, the value of (K3zK3f)/(K2zK2f) is smaller, which is only 0.48 and does not satisfy 0.7(K3zK3f)/(K2zK2f) 1.3, so that the width of the edge optical distortion region of the asymmetric laminated glass provided in Comparative Example 1 exceeds the standard (>50 mm).
[0083] By comparing the experimental data of Example 6 and Comparative Example 2 in Tables 1 and 2, it can also be seen that compared with Example 6, the curved surface with constant Gaussian curvature of the second surface of the outer glass panel in Comparative Example 2 accounts for only 80%, and the value of S2S3 is only 0.76, which is less than 0.81 and is not within the range required by the present invention. Even if the curvatures of the curved surface regions with constant Gaussian curvature in the second surface of the outer glass panel and the third surface of the inner glass panel simultaneously satisfy K2f>K3f and 0.7(K3zK3f)/(K2zK2f)1.3, the width of the edge optical distortion region of the asymmetric laminated glass provided in Comparative Example 2 still exceeds the standard (>50 mm).
[0084] By comparing the experimental data of Example 11 and Comparative Example 3 in Tables 1 and 2, it can also be seen that compared with Example 11, the curved surface with constant Gaussian curvature of the third surface of the inner glass panel in Comparative Example 3 accounts for only 80%, and the value of S2S3 is only 0.72, which is less than 0.81 and is not within the range required by the present invention. Even if the curvatures of the curved surface regions with constant Gaussian curvature in the second surface of the outer glass panel and the third surface of the inner glass panel simultaneously satisfy K2f>K3f and 0.7(K3zK3f)/(K2zK2f)1.3, the width of the edge optical distortion region of the asymmetric laminated glass provided in Comparative Example 3 still exceeds the standard (>50 mm).
[0085] By comparing the experimental data of Example 19 and Comparative Example 4in Tables 1 and 2, it can also be seen that compared with Example 19, the value of (K3zK3f)/(K2zK2f) in Comparative Example 4 is lower, which is only 0.6 and is not within the range required by the present invention. At this time, even if the ratios of the curved surfaces with constant Gaussian curvature in the second surface of the outer glass panel and the third surface of the inner glass panel are both up to 99%, and the value of S2S3 is up to 0.9801, the width of the edge optical distortion region of the asymmetric laminated glass provided in Comparative Example 4 still exceeds the standard (>50 mm).
[0086] It can be seen from the above Tables 1 and 2 that Example 25 and Comparative Example 5, as well as Example 26 and Comparative Example 6, have the same curvature change trend, the ratio of the curved surface with constant Gaussian curvature, and the value of S2S3. That is, compared with the major curvature and the minor curvature of the outer glass panel, the major curvature of the inner glass panel is larger, the minor curvature is smaller, and both satisfy K2f>K3f. However, in Comparative Examples 5 and 6, the values of (K3zK3f)/(K2zK2f) are both larger, which are 1.4 and 1.44, respectively, and do not satisfy 0.7(K3zK3f)/(K2zK2f)1.3, so that the width of the edge optical distortion region of the asymmetric laminated glass provided in Comparative Examples 5 and 6 exceeds the standard (>50 mm).
[0087] By comparing the experimental data of Example 34 and Comparative Example 7 in Tables 1 and 2, it can also be seen that compared with Example 34, the value of (K3zK3f)/(K2zK2f) in Comparative Example 7 is larger, which is 1.6 and is not within the range required by the present invention. At this time, even if the ratios of the curved surfaces with constant Gaussian curvature in the second surface of the outer glass panel and the third surface of the inner glass panel are both up to 99%, and the value of S2S3 is up to 0.9801, the width of the edge optical distortion region of the asymmetric laminated glass provided in Comparative Example 7 still exceeds the standard (>50 mm).
[0088] By comparing the experimental data of Comparative Examples 1 and 4 in Table 1 and Table 2, it can also be seen that when the value of (K3zK3f)/(K2zK2f) is small, the smaller the value, the larger the width of the edge optical distortion region of the asymmetric laminated glass.
[0089] By comparing the experimental data of Comparative Examples 5 and 7 in Table 1 and Table 2, it can also be seen that when the value of (K3zK3f)/(K2K2f) is large, the larger the value, the larger the width of the edge optical distortion region of the asymmetric laminated glass.
[0090] In addition, taking an asymmetric laminated glass formed by the combination of an outer glass panel with a thickness of 3.5 mm (the material is soda-lime silicate glass as shown in Table 3) and an inner glass panel with a thickness of 1.1 mm (the material is aluminosilicate glass as shown in Table 3) as an example, graphs showing a relation between the width (or optical distortion width) of the edge optical distortion region of the asymmetric laminated glass and the value of (K3zK3f)/(K2zK2f) under different ratios of the curved surface with constant Gaussian curvature are drawn, as shown in
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[0093]
[0094] It can be seen from
[0095] In addition, according to the test method provided above, the width of the edge optical distortion (vertical stripe optical distortion) region of the asymmetric laminated glass provided in Example 33, Example 35, Comparative Example 6 and Comparative Example 7 of the present invention was tested, and the obtained measured optical distortion diagrams are shown in
[0096]
[0097] In summary, the examples of the present invention control the width of the edge optical distortion region of the asymmetric laminated glass within 50 mm through the curvature matching design of the outer glass panel and the inner glass panel, and can improve the feasibility of manufacturing the thinner inner glass panel by thermoforming at the same time, that is, reduce the difficulty of manufacturing the inner glass panel.
[0098] The above is merely specific examples of the present invention, and cannot be used to limit the scope of the invention. Therefore, replacement of equivalent components or equivalent changes and modifications made according to the protection scope of the patent of the present invention should still fall within the scope of the present patent. In addition, the technical features of the present invention can be freely combined with each other, the technical features and the technical inventions can be freely combined with each other, and the technical inventions can be freely combined with each other.