The present invention relates to a method and unit for flexing a flat blank for producing a rigid package.
The present invention may be used in the packing of cigarettes, and in particular for producing a rigid, hinged-lid packet, to which the following description refers purely by way of example.
A rigid, hinged-lid cigarette packet comprises a cup-shaped bottom shell or container and a top lid joined to each other by a hinge. When the lid is in a closed position closing the cup-shaped bottom container, the packet is parallelepiped-shaped and defined laterally by two parallel, opposite (respectively front and rear) major lateral walls, and by two parallel, opposite minor lateral walls; and, between the major lateral walls and the minor lateral walls, are defined four longitudinal edges, which may be square, bevelled, or rounded (as described, for example, in Patent EP-A-0205766).
A rigid, hinged-lid packet of the type described above is normally produced from a flat, substantially rectangular cardboard blank having a number of preformed longitudinal and transverse fold lines, along which the blank is folded to form the packet.
In some cases, the longitudinal edges of the finished rigid packets fall short of the desired shape, and the lateral walls (particularly the major lateral walls) are not perfectly flat, on account of the tendency of the folded blank to spring back to its original flat shape. Such defects are particularly evident when the longitudinal edges are other than square, i.e. are rounded or bevelled. To reduce springback of the blank, it has therefore been proposed to equip packing machines with flexing units, which perform a pre-folding operation to flex the blanks along the fold lines.
One example of a flexing unit is given in Patent EP-B1-0391118, which describes a packing machine comprising a linear conveyor for feeding the blanks to a folding wheel; and fixed flexing guides located on opposite sides of the linear conveyor to fold portions of, and so flex, each blank. At the end of the fixed guides, each blank springs back to a substantially flat shape, and is then fed to the folding wheel. The flexing guides, however, are fairly bulky, can make maintenance of the conveyor fairly difficult, fail to provide for precise flexing, and, above all, subject the blanks to damage by friction.
Another example of a flexing unit is given in Patent US-A1-4708704, which relates to a packing machine in which a blank is fed to a flexing station located upstream from a packing line and having movable folding members for folding portions of the blank along respective longitudinal fold lines and against respective contoured spindles. The blank is then allowed to spring back to the flat shape before being fed to the packing line. Apart from being fairly complicated and bulky, the flexing station described above has the major drawback of requiring that the blank remain stationary in the same position for a given length of time, and as such involves major complications for use on a continuous packing machine.
By way of an alternative to flexing the blank, it has been proposed, as for example in Patent EP-B1-0205894, to shape the blank in a die negatively reproducing the desired shape of the finished packet. More specifically, the blank is fed into alignment with the die, and is made to adhere to the inner walls of the die by a contoured mating die. Tests show, however, that flexing the blanks provides for better quality packets than die-shaping.
It is an object of the present invention to provide a method and unit for flexing a flat blank for producing a rigid package, which eliminate the aforementioned drawbacks, while at the same time being cheap and easy to implement.
According to the present invention, there is provided a method of flexing a flat blank having preformed fold lines; the flat blank being fed by a seat on a conveyor along a first path through a flexing station; and the method being characterized in that, at the flexing station, a rigid folding body is rolled over the seat to fold the blank against the seat and about the preformed fold lines.
According to the present invention, there is provided a unit for flexing a flat blank having preformed fold lines; the unit comprising a flexing station, a seat for housing the flat blank, and a conveyor for feeding the seat along a first path through the flexing station; and the unit being characterized by comprising, at the flexing station, a rigid folding body, and an actuating device for rolling the folding body over the seat to fold the blank against the seat and about the preformed fold lines.
A number of non-limiting embodiments of the present invention will be described by way of example with reference to the accompanying drawings, in which:
Number 1 in
When lid 4 is in the closed position, packet 2 is parallelepiped-shaped, and comprises a lateral surface; and two identical, facing, parallel, flat end walls 5 (only one shown in
As shown in
Blank 1 comprises two groups of preformed longitudinal fold lines 8′, along which blank 1 is folded to define rounded longitudinal edges 8; and a number of preformed transverse fold lines 9′, along which blank 1 is folded to define transverse edges 9. Between the two groups of longitudinal fold lines 8′, transverse fold lines 9′ define a number of panels 5′ and 6′ defining end walls 5 and major lateral walls 6 of packet 2 respectively; and each panel 6′ has two wings 7′ located on opposite sides of panel 6′, separated from respective panel 6′ by the two groups of longitudinal fold lines 8′, and defining minor lateral walls 7 of packet 2.
Each seat 12 comprises a suction cup 14 for engaging a surface of relative blank 1 by suction, and for retaining blank 1 in a given position as seat 12 travels along path P1. Each seat 12 also comprises two folding spindles 15 located on opposite sides of seat 12, so as to face the two groups of longitudinal fold lines 8′ of blank 1 engaged by seat 12; and each folding spindle 15 is fixed rigidly to relative seat 12, and has a top end shaped according to the shape and size of the longitudinal edge 8 to be produced when blank 1 is eventually folded. In the
Flexing station 13 has a drum 16 which rotates preferably continuously and at constant speed about a respective central axis 17 parallel to the axis of wheel 11; and a rigid, substantially U-shaped folding body 18 is fixed to the periphery of drum 16, comprises a contoured surface 19, and is fed by drum 16 along an endless circular path P2.
As a seat 12 together with a respective blank 1 travels through flexing station 13, rotation of drum 16 causes surface 19 of folding body 18 to roll over seat 12 to fold blank 1 against folding spindles 15 and about longitudinal fold lines 8′. More specifically, surface 19 of folding body 18 is shaped to wrap blank 1 partly about) each folding spindle 15.
On leaving flexing station 13, blank 1 is allowed to spring back to its original flat shape; and wheel 11 then feeds the substantially flat blank 1 in known manner to a known packing line (not shown) where it is folded to form a corresponding packet 2.
In the embodiments shown, each seat 12 is maintained in a fixed position with respect to wheel 11 at flexing station 13, so that path P1 is arc-shaped. In an alternative embodiment, however, seat 12 may be moved with respect to wheel 11 (typically, oscillated under control of a cam system) at flexing station 13. It is important to note that each seat 12 may be fitted to wheel 11 to oscillate, under control of a cam system, to receive and release blank 1, and may be locked in position as it travels through flexing station 13.
Similarly, in the embodiments shown, folding body 18 is fitted rigidly to drum 16, so that path P2 is circular. In an alternative embodiment, however, folding body 18 may be moved with respect to drum 16 (typically, oscillated under control of a cam system).
Though the accompanying drawings relate to producing a packet 2 of cigarettes with rounded longitudinal edges 8, the teachings of the present invention obviously also apply to any type of square-edged, bevelled-edged, or so-called “pillow” packet 2 (of the type described in Patent Applications EP-0941943-A1, WO-0043289-A1, or WO-03026984-A1), and, obviously, spindles 15 must be shaped according to the shape of the edges to be produced. In the embodiment shown in the accompanying drawings, blank 1 is advanced by respective seat 12 with longitudinal fold lines 8′ perpendicular to path P1, and with transverse fold lines 9′ parallel to path P1, so as to flex blank 1 along longitudinal fold lines 8′. To be flexed along transverse fold lines 9′, blank 1 must be advanced by respective seat 12 with transverse fold lines 9′ perpendicular to path P1, and with longitudinal fold lines 8′ parallel to path P1.
In a further embodiment, spindles 15 and/or folding body 18 may be heated electrically to increase the temperature of longitudinal fold lines 8′ of blank 1 as they are being folded, and so make blank 1 easier to fold by locally reducing its mechanical resistance.
In the embodiments shown, the two spindles 15 of each seat 12 are physically separate, but could obviously be supported by a common member, and in particular could be formed by appropriately shaping the lateral edges of the member.
Flexing unit 10 as described above may obviously be used to advantage in any application requiring flexing of a flat blank prior to folding the blank to form a respective rigid package. For example, flexing unit 10 as described above may be used on a packing machine for producing rigid packages for confectionary (sweets, chocolates, chewing gum), food products, costume jewelry, toys, or stationery.
Number | Date | Country | Kind |
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BO2003A000576 | Oct 2003 | IT | national |