Method and apparatus for pinning the edges of an extruded mass
12011864 ยท 2024-06-18
Inventors
Cpc classification
B29C48/917
PERFORMING OPERATIONS; TRANSPORTING
B29C48/305
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C48/305
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for pinning the edges of an extruded polymeric mass and an edge-pinning group are described.
Claims
1. An edge-pinning group (13) in a machine for extrusion of plastic film, comprising: a first and a second supports (18,18), each bearing at least one electrode (19), and aa first and a second nozzle (20,21), wherein said first and said second support are positioned in the edge-pinning group (13) with respect to an extrusion direction Y of a machine and with respect to an extrusion surface (S), passing through or containing the extrusion direction Y of the machine, as follows: with respect to the extrusion direction Y, the first nozzle (21) is positioned upstream of the second nozzle (20), said second nozzle (20) being positioned upstream and in line with the first support (18), and said second support (18) being positioned parallel to or downstream of the first support (18); and with respect to a centerline of the extrusion surface (S), the second support (18) is positioned externally with respect to the first support (18), said first support (18) being positioned parallel to the second nozzle (20), which is positioned externally with respect to the first nozzle (21).
2. The edge-pinning group according to claim 1, wherein said first and said second nozzle (20,21) are configured for being supplied with compressed air or with air coming from an independent blower.
3. The edge-pinning group according to claim 1, wherein the second support (18) is positioned externally with respect to the first support (18) and is in line with the first support (18), with respect to the centerline of the extrusion surface (S).
4. An edge-pinning group (13) in a machine for extrusion of a plastic film, comprising: a first and a second support (18,18), each bearing at least one electrode (19), and a first and a second nozzle (20,21), wherein the first and the second support and the first and the second nozzle are positioned in the edge-pinning group with respect to an extrusion direction Y of the machine, as follows: with respect to the extrusion direction Y, the first nozzle (21) is positioned upstream of the second nozzle (20), said second nozzle (20) being positioned upstream and in line with the first support (18), and said second support (18) being positioned in parallel or downstream of the first support (18); the first nozzle (21) is configured for partially pre-cooling an area (16) of an extruded melt (10) before the extruded melt touches a surface of a rotating cylinder (11), to remove heat; the second nozzle (20) is configured for pre-cooling an edge area of the extruded melt (10) affected by an electrostatic discharge of the one or more electrodes (19) positioned on the first support (18), before the extruded melt comes into contact with the rotating cylinder (11); the first support (18) is configured for electrostatically charging an edge area (15) of the extruded melt (10) cooled by the second nozzle (20) to facilitate an adhesion of the extruded melt to the surface of the rotating cylinder (11) and consequently ensure a desired heat exchange between the extruded melt and the rotating cylinder; and the second support (18) is configured for blocking an external edge area (15) of the extruded melt (10), which is thus caused to adhere to the rotating cylinder (11) avoiding a formation of peduncles.
5. A machine for a extrusion of plastic film comprising: at least one edge-pinning group according to claim 1.
6. A machine for extrusion of plastic film (10) comprising: an extrusion die (12); a rotating cylinder operating as a chill-roll (11); and at least one edge-pinning group (13), wherein said edge-pinning group (13) comprises: a first and a second support (18,18), each support (18,18) bearing at least one electrode (19), and a first and a second nozzle (20,21), and wherein the first and the second support and the first and the second nozzle are positioned in the edge-pinning group (13) with respect to an extrusion direction Y of the machine and with respect to a surface (R) of the rotating cylinder (11), as follows: with respect to the direction Y, the first nozzle (21) is positioned upstream of the second nozzle (20), said second nozzle (20) being positioned upstream and in line with the first support (18), and said second support (18) being positioned in parallel or downstream of the first support (18); and with respect to a centerline of the surface (R) of the rotating cylinder (11), the second support (18) is positioned externally with respect to the first support (18), said first support (18) being positioned parallel to the second nozzle (20), which positioned externally with respect to the first nozzle (21).
Description
(1) The structural and functional characteristics of the present invention and its advantages with respect to the known art will appear even more evident from the following description, referring to the attached schematic drawings, which show an embodiment example of the invention itself. In the drawings:
(2)
(3)
(4)
(5)
(6) With reference to the figures, in particular,
(7) The precise spatial positioning of the elements constituting the invention is best exemplified in the following
(8)
(9) In particular, following the axis Y, it can be seen that the first element present is the nozzle 21, which partially pre-cools the area of extruded melt 10 which, with reference to the centre line of the extrusion surface (S), corresponds to the area 16 indicated in
(10) This area of the melt, in the absence of this pre-cooling, would tend to slide towards the centre of the chill-roll, generating the above-mentioned area 16 having a reduced thickness; through the action of the nozzle 21, on the other hand, the formation of this area 16 having a reduced thickness can be completely avoided, decreasing its potential by removing heat, thus prefiguring the formation of a film with a constant thickness (except of course for the area 15 affected by the neck-in).
(11) The position of this nozzle 21 appears even clearer by looking at
(12) The second element present in spatial order, again following the axis Y, is the nozzle 20, whose action allows the partial pre-cooling of the edge area of the melt 10 (said area having a width (b) 15 of the same) affected by the electrostatic discharge of the electrodes before it comes into contact with the chill-roll, allowing better control even in the case of high velocities and reduced thicknesses and thus avoiding said draw-down-resonance phenomena.
(13) From
(14)
(15) Continuing along the axis Y, the next element encountered is the support 18, bearing at least one electrode 19, which, as already indicated, is perfectly aligned with the nozzle 20; its positioning with respect to the centre line of the extrusion surface (S) is therefore also identified by the area having a width (b) 15, previously mentioned.
(16) The function of this support is, as already mentioned, that of classic edge-pinning devices, i.e. it must electrostatically charge a portion of the melt as small as possible in order to favour its adhesion to the surface of the chill-roll and consequently ensure the correct heat exchange between the two elements. This portion corresponds to the area having a width (b), 15, previously defined.
(17) Subsequently, again following the axis Y, there is the support 18, which is preferably, but not exclusively, positioned further downstream with respect to the support 18 in the extrusion direction Y, but above all it is displaced with respect to the centre line of the extrusion surface (S), in the area having a width (a) 15 towards the variable edge of the melt 10.
(18) As indicated above, the extent of the width of the area (a) 15 is subject to even major and significant variations based on the type of polymer and the process conditions.
(19) The action of this support 18, also equipped with at least one electrode 19, is essentially that of blocking the variable portion of melt corresponding to the area having a width (a) 15, which is thus caused to adhere to the chill-roll, avoiding the formation of the peduncle shown in
(20) The various elements forming part of the invention can obviously be supported in the most varied ways, i.e. by means of micrometrically or electrically adjustable supports (to ensure the repeatability of positioning), just as the relative positions between the various elements can, indeed must, be able to be regulated within a range wide enough to take into account the production requirements.
(21) The constructive forms of the relative supports, besides being able to acquire the most varied physiognomies, have not been schematized for the sake of simplicity of display and specifically because they change in shape and size.
(22) The essential elements are obviously all the elements forming the edge-pinning system according to the present invention and the interaction between the same, fundamental for ensuring the correct functioning of the invention.
(23) The protection scope of the present invention is therefore defined by the enclosed claims.