Glass sheet with identification code
10696587 ยท 2020-06-30
Assignee
Inventors
Cpc classification
B41M3/003
PERFORMING OPERATIONS; TRANSPORTING
B23K26/53
PERFORMING OPERATIONS; TRANSPORTING
B23K26/361
PERFORMING OPERATIONS; TRANSPORTING
B41M5/262
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K26/361
PERFORMING OPERATIONS; TRANSPORTING
C03C23/00
CHEMISTRY; METALLURGY
B23K26/00
PERFORMING OPERATIONS; TRANSPORTING
B41M5/26
PERFORMING OPERATIONS; TRANSPORTING
B41M3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A glass sheet includes a symbol marked in the interior of the glass, the symbol forming a code. The symbol is marked in at least two dimensions including the dimension of the thickness of the glass sheet, portions of the symbol being marked at various depths in the thickness of the glass sheet.
Claims
1. A glass sheet comprising a symbol marked in an interior of the glass, the symbol forming a code containing information related to said glass sheet; wherein the symbol is marked in at least two dimensions including a dimension of a thickness of the glass sheet, portions of the symbol being marked at various depths in the thickness of the glass sheet such that the symbol is readable both via a main face of the glass sheet and via an edge face of the glass sheet thereby making said information readable both via the main face and the edge face of the glass sheet, and wherein the symbol is formed of a plurality of rectilinear sections, with each rectilinear section provided at a unique depth in the thickness of the glass sheet different from a depth of each of the other rectilinear sections of the plurality of rectilinear sections, each rectilinear section including at least three adjacent marking spots marked by laser, and wherein the plurality of rectilinear sections are arranged in the interior of the glass such that each marking spot of each rectilinear section is marked in the glass without being superposed with any of the marking spots of any other rectilinear sections of the plurality of rectilinear section when the symbol is seen from both the main face of the glass sheet and from the edge face of the glass sheet.
2. The glass sheet as claimed in claim 1, wherein the various portions correspond to a sectioning of the symbol into various sections that are rectilinear and parallel.
3. The glass sheet as claimed in claim 2, wherein at least certain sections correspond to rows or columns of the symbol.
4. The glass sheet as claimed in claim 1, wherein the symbol is two-dimensional and of the Data Matrix, QR Code or analogous type.
5. The glass sheet as claimed in claim 1, wherein the symbol is parallel or perpendicular to the closest edge face of the glass sheet.
6. The glass sheet as claimed in claim 1, wherein the symbol is marked in a plane inclined relative to the edge face of the glass sheet and to the main face of the glass sheet such that the symbol is identically readable both via the main face of the glass sheet and via the edge face of the glass sheet.
7. The glass sheet as claimed in claim 6, wherein said inclined plane is at 45 to said edge face of the glass sheet and to said main face of the glass sheet.
8. A method for marking a symbol forming a code in a glass sheet, the code containing information related to said glass sheet, the method comprising: marking a first portion of the symbol at a first depth in a thickness of the glass sheet, and marking a second portion of the symbol at a second depth in the thickness of the glass sheet, said second depth being different to the first depth, the marking of the second portion being offset from the marking of the first portion in another dimension of the glass sheet so that the symbol is readable both via a main face of the glass sheet and via an edge face of the glass sheet thereby making said information readable both via the main face and the edge face of the glass sheet, wherein the symbol is formed of a plurality of rectilinear sections, with each rectilinear section provided at a unique depth in the thickness of the glass sheet different from a depth of each of the other rectilinear sections of the plurality of rectilinear sections, each rectilinear section including at least three adjacent marking spots marked by laser, and wherein the plurality of rectilinear sections are arranged in the interior of the glass such that each marking spot of each rectilinear section is marked in the glass without being superposed with any of the marking spots of any other rectilinear sections of the plurality of rectilinear section when the symbol is seen from both the main face of the glass sheet and from the edge face of the glass sheet.
9. A process for manufacturing a glazing product comprising a glass sheet as claimed in claim 1, comprising reading the code via the main face of the glass sheet, at a first moment during manufacture, and reading the code via the edge face, at a second moment during manufacture.
10. The method as claimed in claim 8, wherein the other dimension of the glass sheet is a width or a length dimension.
11. The process as claimed in claim 9, wherein the first moment is a moment when the glass sheet is not stacked with other glass sheets and the second moment is a moment when the glass sheet forms part of a stack of glass sheets.
12. The glass sheet as claimed in claim 1, wherein the symbol is formed of a plurality of elements arranged in a pattern and the symbol, when read via the main face and the edge face, has a same arrangement of said plurality of elements.
13. The glass sheet as claimed in claim 1, wherein the plurality of rectilinear sections being are marked at depths in the glass sheet that decrease or increase starting from the edge face of the glass sheet.
14. The glass sheet as claimed in claim 1, wherein the symbol is marked in said at least two dimensions so as to appear shrunk in a direction of the thickness of the glass sheet when read both via the main face and the edge face of the glass sheet.
15. The glass sheet as claimed in claim 1, wherein the symbol has a same shape when read both via the main face and the edge face of the glass sheet.
16. The glass sheet as claimed in claim 1, wherein each rectilinear section is parallel to the closest edge face.
17. The glass sheet as claimed in claim 1, wherein the information includes information related to a manufacturing site where the glass sheet has been manufactured and information related to a date of manufacturing of the glass sheet.
18. The glass sheet as claimed in claim 1, wherein the glass sheet is a soda lime glass sheet.
19. The glass sheet as claimed in claim 1, wherein the adjacent marking spots of the plurality of rectilinear sections are distributed according to a first pattern when the symbol is viewed via the main face of the glass sheet, wherein said adjacent marking spots of the plurality of rectilinear sections are also distributed according to said same first pattern when the symbol is viewed via the edge face of the glass sheet.
Description
(1) The invention will be better understood on reading the following description, given merely by way of illustrative example, which refers to the appended drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7) Throughout the text, the expression main face 4 is understood to mean one of the two main faces of the glass sheet 2 and the expression edge face one of the four edge faces 6 forming the sides of the glass sheet 2.
(8) The example symbol 8 illustrated in
(9) Specifically, as may be seen in
(10)
(11) To produce such a symbol, for each column the laser has been focused at different depths in the thickness of the glass sheet. Specifically, it is the focal point of the laser that determines the depthwise location of the marking in the glass sheet.
(12) It will also be noted that the columns have been marked stepwise i.e. at depths that gradually decrease starting from the edge face. As a variant, it may be a question of increasing depths, or even of different depths of any type suitable for reading via the edge face.
(13) As a variant, it is not the columns but the rows that are each marked at different depths.
(14) In fact, if the columns are parallel to the closest edge face, columns each marked at different depths are preferred. If it is the rows that are parallel to the closest edge face, columns each marked at different depths are preferred. If the symbol is marked in a corner, and therefore in proximity to two edge faces, the edge face from which it is easiest to read the symbol will be preferred.
(15) Furthermore, the symbol 8 is not necessarily parallel to the edge face. It is for example a question of a symbol 8 the columns of which make an angle of 45 to the edge face (i.e. obtained by a rotation of 45 in the plane of the symbol). In such a case, the symbol is for example sectioned into sections (or portions) parallel to the closest edge face of the glass sheet, these sections of the symbol being marked at different depths, i.e. the points of each section are at the same depth. Thus, generally, the symbol 8 is sectioned into various sections that are marked at various depths in the thickness of the glass sheet.
(16) As another variant, the sections are not parallel and have any suitable shape allowing the symbol to be read via the edge face.
(17) Thus, generally, a plurality of portions of the symbol are marked at various depths in the thickness of the glass sheet.
(18) Preferably, the symbol 8 is in a plane inclined at 45 to the closest edge face 6 and to a main face 4 such that it is identically readable both via the main face 4 of the glass sheet and via the edge face 6 of the glass sheet.
(19) It will also be noted that the symbol does not have to be a symbol of the Data Matrix type. It may as a variant be a question of any type of suitable two-dimensional symbol.
(20) Generally, it is a question of a symbol forming a code of any suitable type.
(21) One subject of the invention is thus a glass sheet 2 comprising a symbol marked in the interior of the glass, the symbol 8 forming a code, in which the symbol is marked in at least two dimensions including the dimension of the thickness of the glass sheet, portions of the symbol being marked at various depths in the thickness of the glass sheet.
(22) Thus, the code may be readable both via the main face and via the edge face of the glass sheet.
(23) The glass sheet 2 for example has a thickness comprised between 0.5 and 19 mm and especially between 2 and 12 mm-between 4 and 8 mm for example. However, as a variant the glass sheet may be any suitable thickness.
(24) The symbol 8 is for example marked immediately after the float glass ribbon has been cut into large glass sheets, or immediately before or even during the cutting. The glass sheet then has a width larger than 2 meters and a length larger than 5 meters.
(25) It is for example a question of soda-lime-silica glass but it may as a variant be any type of suitable glass.
(26) Generally, it is a question of a glass sheet of any suitable type.
(27) To carry out the marking of the code, a 2.5 W, 30 kHz, 10 ns pulse, (tripled YAG) pulsed UV laser scanned at 1 cm/s is for example used. By way of example, the laser is able to alter properties of the glass, such as its color or its refractive index, in locations where the points of the code must for example be colored (i.e. black points). Generally, it is a question of a laser of any type suitable for marking the bulk of the glass.
(28) The marking device is for example programmed to mark the columns at different depths and parallel to the closest edge face.
(29) The device is placed facing a main face of the glass sheet.
(30) A first column is marked at a first focal distance corresponding to a first depth.
(31) Next, a second column is marked at a larger focal distance, i.e. at a larger depth, and so on.
(32) Generally, the method used is of any type suitable for producing a symbol according to the various embodiments of the invention.
(33) If read via the edge face, in the case where the symbol is in a plane inclined at 45, the symbol will be perceived identically as via the main face.
(34) In the case where the glass sheet is of small thickness, and therefore where the angle of inclination of the symbol is small, the image seen via the edge face will be more deformed and the image seen via the main face less deformed. Reading devices will then have to be programmed to take this into account.