Process for breaking out an inner shape in a glass sheet
10519059 ยท 2019-12-31
Assignee
Inventors
Cpc classification
C03B33/04
CHEMISTRY; METALLURGY
C03B33/033
CHEMISTRY; METALLURGY
International classification
Abstract
A break-out process includes scoring a cutting line in the surface of the glass using a cutting tool, which cutting line delimits the outer contour of the inner shape and the inner contour of a peripheral shape; bringing the peripheral shape of the glass sheet into contact with a bearing system along the outer contour of the inner shape; the use of a deformation system for deforming one of the inner shape and of the peripheral shape by convex bending toward the side opposite the cutting line. The differential deformation between the inner shape and the peripheral shape is sufficient to break out the inner shape along the cutting line and create the distance needed for the contactless extraction of the inner shape relative to the peripheral shape. The extraction is carried out while maintaining the convex bending.
Claims
1. A process for breaking out an inner shape in a glass sheet intended to form a glazing, comprising: scoring a cutting line in a surface of the glass sheet using a cutting tool, which cutting line delimits an outer contour of said inner shape and an inner contour of a peripheral shape; bringing the peripheral shape of the glass sheet into contact with a bearing system along the outer contour of the inner shape; deforming, with a deformation system, one of the inner shape and of the peripheral shape by convex bending of said one of the inner shape and of the peripheral shape toward a side opposite the cutting line, said convex bending creating a differential deformation between the inner shape and the peripheral shape that is sufficient to break out the inner shape along the cutting line and separate the inner shape from the peripheral shape so that a distance needed for a contactless extraction of the inner shape relative to the peripheral shape is created, and after separating the inner shape from the outer shape, maintaining the convex bending of said one of the inner shape and of the peripheral shape and extracting the inner shape relative to the peripheral shape by moving the inner shape relative to the peripheral shape while maintaining the convex bending to carry out a contactless extraction of the inner shape from the outer shape.
2. The process as claimed in claim 1, further comprising utilizing a holding system that counters the effect of the deformation system in the other of the inner shape and of the peripheral shape.
3. The process as claimed in claim 1, wherein the bearing system extends over an entire outer contour of the inner shape, inside, opposite or outside relative to the cutting line.
4. The process as claimed in claim 1, wherein the bearing system comprises two bearing members.
5. The process as claimed in claim 4, wherein the two bearing members are positioned one around the other.
6. The process as claimed in claim 1, wherein the glass sheet includes a first main surface and a second main surface, which is opposite the first main surface, wherein the surface of the glass sheet in which the cutting line is scored is the first main surface, wherein the bearing system comprises at least one seal, which is applied against the second main surface, for forming at least one first low-pressure zone against at least one of the inner shape and of the peripheral shape.
7. The process as claimed in claim 6, wherein a low-pressure zone is a zone of convex bending deformation of said one of the inner shape and of the peripheral shape, the deformation system being a suction system.
8. The process as claimed in claim 6, further comprising countering an effect of the deformation in the other of the inner shape and of the peripheral shape utilizing a suction system, the suction system forming a holding zone of low-pressure that counters the deformation of said other of the inner shape and of the peripheral shape.
9. The process as claimed in claim 1, wherein the bearing system is suitable for being used for bearing against said other of the inner shape and of the peripheral shape during the breaking-out of the inner shape.
10. The process as claimed in claim 1, wherein the deformation system comprises a convex counter-form suitable for pressing said one of the inner shape and of the peripheral shape in convex bending.
Description
(1) The invention will be better understood on reading the following description, given solely by way of nonlimiting example, with reference to the following figures:
(2)
(3)
(4)
(5)
(6)
(7) It should be noted that, throughout the text, the term inner shape is understood to mean a shape, the contour of which is a closed line and which is on the inside with respect to the peripheral contour of the glass sheet.
(8) It should also be noted that the glass sheet to be cut is typically a blank. In order to produce a blank, generally glass sheets of rectangular or trapezoidal shape, which are referred to as blanks, are firstly cut from jumbo or lehr-end size glass sheets. These are glass sheets having a shape which is a convex polygon containing the final glazing to be produced while leaving around the entire perimeter a trim sufficient for carrying out the optional breaking-off of the edges. As a variant, it is a ready-to-shape glass sheet, i.e. the shape of which corresponds substantially to the final shape of the glazing. It is however, generally, a glass sheet of any suitable type, even if it is preferably a flat glass sheet.
(9) It should also be noted that the jumbo and lehr-end size glass sheets are glass sheets obtained on the line for manufacturing a ribbon of float glass.
(10) The scoring of the cutting line is, for example, carried out using a glass-cutting wheel 8 or any other suitable cutting instrument, such as for example a laser. The cutting line 2 is a crack intended to enable the breaking along this line during the break-out step. It is therefore a partial cut, i.e. only over a portion of the thickness of the glass sheet. This is what a cutting line is understood to mean throughout the text.
(11)
(12) The peripheral shape 10 is itself maintained in its initial state, the deformation thereof by bending being prevented (or only limited) by a suitable holding means, such as a suction means, associated with a bearing means that bears the peripheral shape, as explained in greater detail below.
(13) The differential bending of the inner shape 6 relative to the outer shape 10, simultaneously over the whole of the contour of the inner shape, achieves the break-out and makes it possible to separate the edges of the inner shape from the inner contour of the peripheral shape, which facilitates the extraction of the inner shape.
(14) The extraction of the inner shape 6 is for example carried out in a direction opposite to that of the bending, as illustrated by
(15)
(16) In the example from
(17) The glass sheet is then transferred by any suitable means to a break-out station, more particularly to a support table 12 that forms bearing means for the glass sheet.
(18) In the three examples from
(19) As a variant however, in particular as illustrated by the example from
(20) The inner seal 14 makes it possible to create a zone of low pressure (P.sup.) between the peripheral shape 10 and the support table 12, thus acting as convex bending means (see
(21) Owing to the additional presence of the outer seal 16, a partial vacuum (P.sup.) may be created in the zone opposite the peripheral shape 10, so as to keep the peripheral shape flat, i.e. form a holding means that counters the bending deformation by the deformation means applied to the inner shape 6. A suction device (not represented) is also incorporated into the support table 12 for this purpose.
(22) The outer seal is however optional should the peripheral shape 10 be held mechanically, for example by applying a flat counter-form to the peripheral shape (variant not represented).
(23) It should also be noted that, as a variant that is not represented, no means for keeping flat, in opposition to the convex bending deformation, is provided, in particular should the peripheral shape be of large size and the effect of gravity on the peripheral shape (or the effect of gravity on the inner shape in the second embodiment) be sufficient to obtain the desired differential deformation between the inner shape 6 and the peripheral shape 10.
(24) In
(25) In the second example from
(26) The peripheral shape is still kept flat by suction.
(27) In the third example from
(28) The extraction then takes place by suction of the inner shape onto the convex counter-form 18 that was used for the break-out, thus forming a means for maintaining the bending.
(29) In the second embodiment illustrated by
(30) In this example, the deformation means for the break-out is a suction means, the support table 12 forming, between the two seals 14, 16, a low-pressure zone sufficient to deform the peripheral shape 10. The inner shape 6 is itself subjected to a sufficient low-pressure zone for the holding thereof in opposition to the bending deformation.
(31) The extraction of the inner shape is carried out, for example, by a suction table, whilst the convex bending of the peripheral shape 10 is maintained by suction.
(32) It should be noted that, as a variant, in both embodiments, the bending could be carried out upward, for example if the glass sheet was held in the air by suction. The cutting line 2 would in this case be on the underside of the glass sheet.
(33) The machine illustrated schematically in