Technical Field
[0001] The present invention relates to a machine for forming boxes, of the type now known
as a "quadrangular" machine, in particular for producing packing boxes from paper
or cardboard blanks.
Background Art
[0002] Prior art box production devices substantially consist of machines which fold a blank
to form the lateral walls of a box and of sealing heads which seal together the corners
formed between the initially open lateral walls of the box.
[0003] The box corners are usually sealed by sealing heads with "V"-shaped pressers extending
parallel with the lateral walls of the box. Said pressers are fed along the bisecting
lines of the base of the box until they make contact with the end portions of the
lateral walls, so that they are placed over the corner of the box.
[0004] The sealing heads then apply heat-sealing strips or tapes to the corners in contact
and, by means of the pressers, join said strips to the corners, making the lateral
walls of the box integral with one another.
[0005] The prior art devices briefly described above can automatically produce quadrangular
boxes for which the bisecting line of the basic corners, and therefore the approach
direction, is always at 45°.
[0006] However, if the lateral walls of the box form different angles, these machines cannot
apply the sealing tape correctly without radically changing sealing head assembly
on the worktable so that the sealing head operating direction coincides with the bisecting
line of the corner of the box to be formed.
[0007] GB 325741 describes a quadrangular machine in which the opposite sealing heads can be rotated
about a shared axis, so that it is easy to change the size, that is to say, vary the
dimensions of the box, and/or pass from a square shape to a rectangular shape and
vice versa.
[0008] EP 1609585 describes a machine with sealing heads able to oscillate relative to an axis in order
to vary the approach direction. In this solution, the sealing heads are mounted in
pairs on opposite parallel sliding cross-members, angled according to a first direction
and able to move relative to one another in a perpendicular direction.
[0009] US 2641973 describes a machine with sealing heads arranged in pairs, in such a way that each
pair of heads can be slided in perpendicular directions.
[0010] The sealing heads are adjusted by moving the cross-members and therefore the sealing
heads along the cross-members to position the pressers at the corners of the boxes,
then making the heads oscillate until the desired approach angle is found.
[0011] However, this solution is relatively complex due to the adjustments involved, and
at the same time rigid, since the pairs of sealing heads are constrained to move in
a dependent way along the shared cross-members.
[0012] Consequently, with this solution it is, for example, impossible to form the box if
the box plan extension does not have at least one pair of parallel sides, that is
to say, if the pressers must be positioned independently of one another along the
cross-members.
Disclosure of the Invention
[0013] In this context, the technical purpose of the present invention is to propose a quadrangular
machine which is free of the above-mentioned disadvantages.
[0014] In particular, the present invention has for an aim to provide a machine for producing
boxes which allows the production of boxes with any plan extension and preferably
boxes with more than four sides.
[0015] The technical purpose indicated and the aims specified are substantially achieved
by a machine for producing boxes comprising the technical features described in one
or more of the claims 1 - 14 herein.
Brief Description of the Drawings
[0016] Further features and advantages of the present invention are more apparent in the
detailed description below, with reference to a preferred, non-limiting, embodiment
of the invention, illustrated in the accompanying drawings, in which:
Figure 1 is a plan view of a machine for producing boxes in accordance with the present
invention, with some parts cut away to better illustrate others;
Figure 2 is a side view of the machine of Figure 1;
Figures 3a and 3b are plan views of two different embodiments of a detail of a machine
in accordance with the invention;
Figure 4 is a side view of the machine of Figure 3a;
Figures 5a and 5b are schematic plan views of machines for forming boxes respectively
having an octagonal and irregular quadrilateral shape;
Figure 6 is a detail of formed box extracting means;
Figures 7a - 7c illustrate blanks for automatically forming boxes with a plan that
respectively has a pentagonal, hexagonal and octagonal shape;
Figure 8 is a schematic illustration of the step of folding an octagonal blank with
a machine in accordance with the invention;
Figure 9 illustrates an octagonal box produced with the machine in accordance with
the invention;
Figure 10 illustrates a blank in accordance with the invention for automatically forming
boxes with an octagonal plan;
Figure 11 is a schematic illustration of the step of folding the octagonal blank of
Figure 10;
Figure 12 illustrates an octagonal box produced starting with the blank of Figure
10.
Detailed Description of the Preferred Embodiments of the Invention
[0017] With reference to the accompany Figures 1 - 9, a machine 1 is described, in particular
designed for producing boxes which are not quadrangular.
[0018] The machine 1 comprises a base frame 2 and at least one turret 3, but usually a plurality
of turrets, associated with the frame 2.
[0019] Each turret 3 comprises a sealing head 4, or presser, designed to stably join the
corners of a box being formed by applying a heat-sealed or glued material tape to
the corner.
[0020] Each sealing head 4 preferably has an angular profile with an amplitude that differs
according to the angle of the corner formed by the lateral walls of the box.
[0021] For example, to form quadrangular boxes the head 4 opening will be 90°, whilst for
boxes with a regular hexagonal plan the opening will be 120°.
[0022] For this reason, the sealing heads 4 may be removably associated with the turret
3, so that, depending on the angle formed by the corner of the box to be formed, the
most suitable sealing heads 4 can be mounted on the turrets 3.
[0023] An example of this advantage is given in Figures 5a, 5b, in which the amplitude of
the different corners to be sealed varies noticeably, so that the turrets 3 can be
equipped with pressers having a different angle, if necessary contained in a change-over
magazine accessible manually or of the automatic type.
[0024] The machine 1 also comprises means 5 for feeding a blank (schematically illustrated
in Figure 2) acting on the base frame 2 to feed a blank to a start of forming table
30 in a position between the sealing heads 4.
[0025] It should be noticed that the term blank, in the context of this invention, refers
to a sheet of paper or plastic material 31 comprising a plurality of pre-creasing
lines 32 along which the blank is folded to create the box being formed.
[0026] The means 5 preferably comprise a stepping elevator 50 with a pick up mechanism (of
the known type) which picks up blanks 31 one after another from the elevator 50 and
feeds them to a conveyor belt 51 which in turn places the blanks on the table 30.
[0027] As is schematically indicated in Figure 2, the machine also comprises a counter-mould
10 having the same shape and size as the base wall 34 of the box to be produced and
vertically movable driven by an actuator 33.
[0028] During the box folding step, performed in the conventional way, the counter-mould
10 performs a downstroke until it is positioned over a base section 34 of the blank
on the table 30, and drags down the blank until it is positioned on a box forming
table 6 below the table 30 and around which the various turrets 3 are located.
[0029] During this step, the blanks are folded by the combined action of the counter-mould
10 and folder elements 7, schematically illustrated in Figure 4, positioned at and
outside the sides of the base section of the box so as to intercept the downstroke
of the sides 35 and fold them against the mould 10.
[0030] Once the box 36 is on the forming table 6, with the sides drawn near the counter-mould
10 (Figure 4), the box closing or sealing step begins, carried out in the known way
as the turret 3 sealing heads 4 place strips 52 of heat-sealed or glued material along
the open corners 49.
[0031] In accordance with the invention, and in particular with reference to Figures 3a,
3b, 4, 5a and 5b, the machine 1 also comprises a turret holder unit 13 associated
with each turret 3 and comprising a "cross carriage" type mechanism consisting of
two slides 38, 39 which can slide relative to one another.
[0032] Each turret holder unit 13 can therefore slide in an adjustable way along two directions
B, C perpendicular to one another (respectively horizontal/vertical with reference
to Figure 5a) relative to the base frame 2 and the position of the mould 10, so that
they adapt to the dimensions of the box to be formed and to the positions occupied
by the vertices of the corners 49 of the box to be sealed.
[0033] In the preferred embodiment described, each turret holder unit 13 is mounted on a
cross-member 53 moved by screws 75 and in a direction C along guides 54 fixed on the
frame 2.
[0034] With this solution each unit 13 slides in the direction C together with the respective
cross-member 53 (first controlled movement), and can also be moved independently in
directions B, C (second controlled movement) relative to the position of the cross-member
53, thanks to the slides 38, 39.
[0035] In the example described there is a shared cross-member for pairs of two units 13
positioned on the same side of the frame 2, but independent cross-members 53 may also
be used for each unit 13.
[0036] In more detail, the second independent movement of the units 13 is controlled by
respective first guide means 14, for example worm screws angled in the direction B
and acting on the slide 38 and associated with the cross-member 53 so that the first
slide 38 can slide in an adjustable way on linear prismatic guides located on the
cross-member 53.
[0037] Again in direction B there are means for adjusting the position of the slide 38 relative
to the cross-member 53.
[0038] In the case described (for example, Figure 5a) said means consist of a movable adjusting
screw 14' integral with the screw 14 and engaging in a bushing 77 integral with the
slide 38 (movement B).
[0039] The movement in direction C is adjusted by second guide means 15, for example a worm
screw angled in the direction C, associated with the slide 38 and engaging with the
slide 39 in such a way that the second slide 39 can slide in an adjustable way on
linear prismatic guides 40 located on the slide 38, for movement of the slides 38
and 39 relative to one another in direction C.
[0040] The rotation of the screws 14, 15, 75 and the movement of the cross-members 53 can
be adjusted and controlled automatically or manually with each size change-over for
the boxes being produced, depending on the selected machine operating mode.
[0041] On the whole, each unit 13 is therefore capable of two movements in direction B,
one approach movement controlled by the screw 14 and one adjusting movement controlled
by the screw 14', and two movements in direction C, one approach movement controlled
by movement of the cross-members 53 and one additional adjusting movement controlled
by the screw 15.
[0042] According to the invention there is also the possibility of adjusting not just the
position in directions B and C, but also the angular position of one or more of the
turrets 3.
[0043] For this purpose, with reference to Figure 3b, a turret 3 is rotatably connected
on the unit 13 relative to the position of the counter-mould 10 and therefore of the
box 36, so that it can define a plurality of directions A1 - An for the sealing head
4 to approach the box being formed, as is schematically illustrated in Figure 3.
[0044] In the example embodiment described, the turrets 3 have pins 41 which engage with
circular slots 42 made in the upper surface of the slide 39 and positioned in a circle
preferably with a centre R coinciding with the vertex of the sealing head 4 profile.
[0045] In this way, the sealing head 4 of each rotary turret may be adjusted and angled
according to one of the approach directions A, guaranteeing that the machine 1 can
produce boxes with corners having different amplitudes and orientation, depending
on the shape of the box base wall.
[0046] The sealing head 4 may also be able to slide relative to the turret 3 along each
approach direction A to perform the operating stroke.
[0047] More particularly, each turret 3 comprises an actuator cylinder 12 on which the sealing
head 4 is removably connected. Said actuator 12 therefore allows the sealing head
4 to slide along the approach direction relative to which the turret 3 is angled,
to guarantee that the sealing head 4 makes contact with the corner to be sealed, applying
the necessary pressure on the heat-sealing tape.
[0048] Each turret 3 also comprises means 18 for feeding sealing tapes to each sealing head
4.
[0049] The feed means 18 are of the known type consisting for example of wheels 60 positioned
on each turret 3 and continuously feeding a measured length of sealing tape 43 between
the sealing head 4 and the corner of the box to be sealed in combination with a pressure
wheel 61.
[0050] Advantageously, each sealing head may have independent feed means, allowing them
to feed different lengths of sealing tape for corners of different heights on the
same box.
[0051] In the preferred embodiment, said tape is applied by heat-sealing the tape on the
corner of the box by heating the sealing head 4.
[0052] However, other embodiments are possible, for example a tape comprising a surface
on which there is a layer of adhesive material which is activated by the heat produced
by the sealing head 4.
[0053] With reference to Figure 6, the machine 1 also comprises means 20 for extracting
the formed box, that is to say the box with the sealed corners, acting on the box
to move it away from the forming table 6.
[0054] The extracting means 20 comprise an extractor element which intercepts the box to
move it away from the forming table 6.
[0055] More particularly, the element 20 advantageously comprises a suction cup 21 at one
end of a rod 22 guided by vertical guides 47 and moved vertically by a drive unit
46.
[0056] In operation, once the walls 35 of the blank 31 have been lifted by the contact elements
7 against the mould 10, the box being formed has its base 36 on the operating table
6, and the open corners 49 positioned at a distance from the centre O of the base
36 equal to a generic value b, c, respectively in directions B and C.
[0057] Figures 5a and 5b show this step from above.
[0058] Therefore, to seal the open corners 49 the heads 4 must be moved immediately next
to the coordinates (b, c) point.
[0059] According to the invention, this movement occurs with an approach motion consisting
of a first movement of the cross-members 53 in direction C, then independent adjustment
in directions C, B of each turret 3 by the adjusting means 14, 40 acting on the slides
38, 39.
[0060] Figure 5b shows the advantage gained from independent adjustment of all of the units
13, allowing sealing of boxes with any irregular plan (for example without axes of
symmetry), in which the amplitude of the coordinates (b, c) of the corners 49 to be
sealed may be significantly different from one another, both for quadrangular and
generically polygonal boxes.
[0061] Once the heads 4 have been drawn near the corners to be sealed 49, the head 4 actuators
12 can perform the operating stroke in direction A and seal the open corners with
the heat-sealing tapes.
[0062] Advantageously, in the embodiment in Figure 3b, it is also possible to adjust the
angular orientation of the head 4, so that the direction A of the operating stroke
coincides with the bisecting line of the corner 49 and improve the uniformity of the
pressure applied by the head 4 on the sides adjacent to the corner 49.
[0063] In a different embodiment, the angular orientation of the heads 4 is given not by
an adjustment, but by the preset position of one or more heads, angled without the
possibility of oscillating so as to make the direction A of the operating stroke coincide
with the best bisecting line of the corner 49 for sealing a predetermined corner of
the box. In this case, for sealing polygonal boxes a set of one or more heads 4 may
be installed, set up to have operating directions with different angles and corresponding
to the geometry of the box to be formed.
[0064] Finally, once the box has been sealed, the suction cup 21 makes contact with the
base wall of the box 36 and stably connects with it to allow the formed box to be
moved from the forming table 6 to an extraction table 45, so that another blank 31
can be fed and a new box formed.
[0065] With reference to Figures 7a - 7c, blanks 31 are described for the production in
quadrangular automatic machines of boxes with more than four sides.
[0066] Each blank 31 consists of a single body comprising a polygonal base 34 and a number
of individual walls 35/35' overall equal to the number of sides of the base 34.
[0067] In conventional quadrilateral geometry, each wall 35 of the blank 31 is joined to
the base 34 by a fold line 32 in such a way that once the blank has been folded in
the quadrangular machine, the sealing heads can seal the four open corners 49 to obtain
a box closed at all its corners, on the base and lateral.
[0068] The blanks of the invention, illustrated by way of example in Figures 7a - 7c, have
at least one side 55 of the base 34 free, and at least one wall 35' joined both to
the base 34 by a first fold line 32 and to at least a second wall 35 by a second fold
line 56 converging with and at a right angle to the line 32, so as to constitute at
least one multiple part 57.
[0069] In the example in Figure 7a, the blank 31 has a pentagonal base 34 joined by two
fold lines 32 to two multiple walls 57 consisting respectively of two and three adjacent
walls 35/35'.
[0070] In the example in Figure 7b, the blank has a hexagonal base 34, joined by two fold
lines 32 to two symmetrically opposite multiple walls 57, both consisting of three
adjacent walls 35/35'.
[0071] In the example in Figure 7c, the blank has an octagonal base 34, joined by two fold
lines 32 to two multiple walls 57 joined to two opposite sides of the base 34 and
each consisting of three adjacent walls 35/35'. In this case the blank is completed
by two single walls 35 joined to the opposite sides of the base 34 at right angles
to the sides joined to the multiple walls.
[0072] In all of the cases described, and in the other configurations possible, the number
of multiple walls 57 is determined in such a way that folding the blank 31 on the
counter-mould 10 results in the formation of a box with a number of open corners 49
less than or equal to four and therefore suitable for sealing in a quadrangular machine.
[0073] Advantageously, using a machine in accordance with the invention the independence
of the sealing head movements makes it easy for the sealing heads to approach the
open corners 49, whatever the polygonal geometry of the box.
[0074] Figure 8 is a schematic illustration of the folding step immediately before sealing
of the corners of an octagonal blank with a machine in accordance with the invention.
[0075] In this case, the folding means comprise a contact profile 7 at a first wall 35'
for folding the wall 35' on a side 70 of the counter-mould 10 during its downstroke,
and additional contact profiles 72 acting at the walls 35 which are open at an angle.
[0076] The contact 7 preferably consists of a bar positioned above folding profiles 72 in
turn consisting of curved tubular elements with a stretch 73 acting in the vertical
direction on the wall 35 and a second stretch 74 acting in a direction at a right
angle to the angled side 71 of the mould 10.
[0077] In operation, during the mould 10 downstroke the walls 35' encounter the bar 7, beginning
to fold towards the side 70, until the walls 35 encounter the stretch 73 and then
the stretch 74 of the profile 72 and are drawn near the angled sides 71 of the mould.
[0078] As the box downstroke continues, the walls 35' on axes at a right angle to the walls
35' already folded by the bars 7 encounter second bars 7' positioned at a lower level
and which, in a known way, fold the remaining walls 35' against corresponding sides
70' of the mould 10, completing box closure so that the heads 4 can seal the open
corners of the box.
[0079] Figure 8 illustrates the case of an octagonal box, but it shall be understood that
the same solution may be applied to boxes with more than four sides, in which the
sides of the base form included angles a with different amplitude.
[0080] Figures 10 - 12 illustrate a polygonal blank in accordance with the invention, in
detail an octagonal blank 81, and a polygonal box 88 obtained from the blank.
[0081] The blank 81 comprises a base 80 and peripheral sections 82 positioned at corresponding
sides 83 of the base 80 intended to constitute the walls of the box 88 when lifted.
[0082] In particular, at least two sections 82 are joined to sides 83 which are adjacent
to the same included side 86, and each lateral section 82 consists of a central portion
84 joined to the side 83 and lateral portions 85 which can be opened by turning relative
to the central section 84 and are smaller than the included side 86, preferably half
the size of it.
[0083] Figure 11 provides a schematic illustration of the blank folding step, in which the
folders 7 lift the sections 82, folding them relative to the sides 83, to form the
box 88.
[0084] During this step, the lateral portions 85 are folded relative to the portion 84 so
as to drawn near one another along intermediate lines M of the wall of the box 88,
that is to say, not coinciding with the corner of the box, and preferably coinciding
with the median line of the wall.
[0085] During box formation, along the line M a seal S is applied, for example a heat-sealed
strip of the type already described, using sealing heads 4 with a 180° flat pressure
profile, that is to say, suitable for appropriately pressing the sealing strip S on
the walls of the box rather than at the corners.
[0086] Advantageously, in the example described, the blank is a regular octagon, therefore
the heads 4 can have a shared approach direction L passing through a centre C of the
base so as to apply a balanced stress on the structure of the machine which supports
it during the sealing step.
[0087] However, in the case of different geometries, octagonal, hexagonal or other, the
lines L may also not pass through the geometric centre C of the box.
[0088] In the example described there are also four seals S on corresponding opposite walls
of an octagonal box and positioned along two approach directions L at a right angle
to one another.
[0089] A method according to the invention for producing packing boxes with a polygonal
plan having a base and lateral sections which can be folded relative to the base,
comprises:
- a step of folding the lateral sections to constitute the walls of the box when lifted,
- a step of sealing the lateral walls to one another, in which at least one seal is
made along a lifted intermediate line of at least one wall.
[0090] The method preferably involves making at least two seals positioned at the ends of
one or more shared lines (L), at right angles to one another if necessary.
[0091] It must be emphasised that production of the octagonal box formed in this way may
advantageously be carried out using a conventional quadrangular machine equipped with
flat profile pressers 4.
[0092] The invention is described above with reference to a preferred embodiment, although
it shall be understood that equivalent modifications may be made without it thereby
departing from the scope of the inventive concept.
1. A machine for forming boxes (36) starting from hat blanks (31) consisting of a base
with multiple sides (34) and the same number of lateral faces (35) joined to the base
by creasing lines (32), the machine comprising a counter-mould (10) having the same
shape in plan view as the base (34) and folder elements (7, 7') for folding the lateral
faces (35) on the counter-mould (10) forming one or more box (36) open corners (49),
and also comprising a plurality of turrets (3) movable relative to the counter-mould
(10), each turret having a sealing head (4) for applying a sealing tape on said open
corner, wherein each turret (3) can move independently of the movement of at least
one other turret (3) relative to the counter-mould (10) along at least two directions
(B, C) perpendicular to one another, the machine being characterised in that
each turret (3) is mounted on a cross-member (53) which can slide relative to the
counter-mould in a direction (C), independent cross-members (53) being provided for
each turret (3), so that each turret (3) can move independently of the movement of
every other turret (3) relative to the counter-mould (10) along at least two directions
(B, C) perpendicular to one another.
2. The machine according to claim 1 wherein one or more of the turrets (3) can rotate
about its vertical axis of rotation relative to the counter-mould (10) so that it
can define a plurality of sealing head (4) approach directions (A) to the corner (49)
of the box being formed (36).
3. The machine according to claim 2 wherein each turret (3) is supported by a turret
holder unit (13) movable in a first direction (B) by first adjusting means (14') along
a cross-member (53) in turn comprising second guide means (54) and adjusting means
(75) acting in a second direction (C) perpendicular to the direction (B) for moving
the turret holder unit (13) in an adjustable way along the two directions (B, C).
4. The machine according to claim 3 wherein each turret holder unit (13) constitutes
a cross carriage structure comprising a first slide (38) movable in the first direction
(B) relative to the cross-member (53) and a second slide (39) able to slide relative
to the first in the direction at a right angle to it (C).
5. The machine according to claim 4 wherein the second slide (39) has additional guide
means (40) and adjusting means (15) for the position relative to the first slide (38)
in at least one direction (B, C).
6. The machine according to any of the foregoing claims wherein at least one turret (3)
can rotate relative to the counter-mould (10) by means of pins (41) engaging with
circular slots (42) made in the upper surface of the slide (39).
7. The machine according to any of the foregoing claims wherein each sealing head (4)
is slidably connected to the respective turret (3) along the approach direction (A)
to the box being formed.
8. The machine according to any of the foregoing claims, comprising means (18) for feeding
a blank, acting on the base frame (2) for feeding a blank between the sealing heads
(4).
9. The machine according to any of the foregoing claims, comprising a box forming table
(6) integral with the base frame (2) and controlled by the blank feed means (5).
10. The machine according to any of the foregoing claims wherein the blank folding means
(7) operate on the box forming table (6).
11. The machine according to any of the foregoing claims wherein the sealing heads (4)
are removably associated with the respective turrets (3).
12. The machine according to any of the foregoing claims wherein each turret (3) comprises
independent means (18) for feeding sealing tapes to the sealing head (4), for sealing
and closing the corners (49) of the box being formed.
13. The machine according to any of the foregoing claims, comprising means (20) for extracting
the formed box, operating on the box to move the formed box away from the forming
table (6), wherein the extracting means (20) comprise a suction cup extractor element
for intercepting the formed box and moving it away from the forming table (6).
14. The machine according to any of the foregoing claims wherein there is a magazine for
sealing heads (4) having different angles relative to the vertical, for closing erect
box corners (49) having walls at an angle to a horizontal axis.
1. Maschine zur Herstellung von Schachteln (36), ausgehend von flachen Zuschnitten (31),
die aus einer Basis mit mehreren Seiten (34) und derselben Anzahl von Seitenflächen
(35) bestehen, die mit der Basis durch Rilllinien (32) vereint sind, wobei die Maschine
ein Gegenformwerkzeug (10), aufweisend in der Draufsicht dieselbe Gestalt wie die
Basis (34), und Falzelemente (7, 7') zum Falzen der Seitenflächen (35) auf dem Gegenformwerkzeug
(10), welches eine oder mehrere offene Ecken (49) einer Schachtel (36) herstellt,
umfasst, und ferner umfassend eine Vielzahl von Revolvern (3), die gegenüber dem Gegenformwerkzeug
(10) beweglich sind, wobei jeder Revolver einen Versiegelungskopf (4) zum Auftragen
eines Versiegelungsstreifens auf die offene Ecke aufweist, wobei sich jeder Revolver
(3) unabhängig von der Bewegung von mindestens einem anderen Revolver (3) gegenüber
dem Gegenformwerkzeug (10) entlang mindestens zweier Richtungen (B, C), die lotrecht
zueinander sind, bewegen kann, wobei die Maschine dadurch gekennzeichnet ist, dass jeder Revolver (3) auf einem Querträger (53) montiert ist, der gegenüber dem Gegenformwerkzeug
in eine Richtung (C) gleiten kann,
wobei für jeden Revolver (3) unabhängige Querträger (53) bereitgestellt sind, sodass
sich jeder Revolver (3) unabhängig von der Bewegung aller anderen Revolver (3) gegenüber
dem Gegenformwerkzeug (10) entlang von mindestens zwei Richtungen (B, C), die lotrecht
zueinander sind, bewegen kann.
2. Maschine nach Anspruch 1, wobei einer oder mehrere der Revolver (3) gegenüber dem
Gegenformwerkzeug (10) um seine vertikale Rotationsachse rotieren kann, sodass er
eine Vielzahl von Richtungen (A) der Annäherung der Versiegelungsköpfe (4) zur Ecke
(49) der in der Herstellung befindlichen Schachtel (36) definieren kann.
3. Maschine nach Anspruch 2, wobei jeder Revolver (3) von einer Revolverhalteeinheit
(13) getragen wird, die durch erste Einstellmittel (14') in eine erste Richtung (B)
entlang einem Querträger (53) beweglich ist, der wiederum zweite Führungsmittel (54)
und Einstellmittel (75) umfasst, die in eine zweite Richtung (C) wirken, die lotrecht
zur Richtung (B) ist, um die Revolverhalteeinheit (13) auf einstellbare Art entlang
der zwei Richtungen (B, C) zu bewegen.
4. Maschine nach Anspruch 3, wobei jede Revolverhalteeinheit (13) eine Querschlittenstruktur
bildet, umfassend ein erstes Gleitstück (38), das in die erste Richtung (B) gegenüber
dem Querträger (53) beweglich ist, und ein zweites Gleitstück (39), das dazu fähig
ist, gegenüber dem ersten in der Richtung orthogonal zu ihm (C) zu gleiten.
5. Maschine nach Anspruch 4, wobei das zweite Gleitstück (39) zusätzliche Führungsmittel
(40) und Mittel (15) zum Einstellen der Position gegenüber dem ersten Gleitstück (38)
in mindestens eine Richtung (B, C) aufweist.
6. Maschine nach einem der vorangehenden Ansprüche, wobei mindestens ein Revolver (3)
gegenüber dem Gegenformwerkzeug (10) mithilfe von Stiften (41) rotieren kann, die
in kreisförmige Schlitze (42) eingreifen, die in der Oberfläche des Gleitstücks (39)
ausgebildet sind.
7. Maschine nach einem der vorangehenden Ansprüche, wobei jeder Versiegelungskopf (4)
mit dem entsprechenden Revolver (3) entlang der Richtung (A) der Annäherung zur in
der Herstellung befindlichen Schachtel gleitfähig verbunden ist.
8. Maschine nach einem der vorangehenden Ansprüche, umfassend Mittel (18) zum Zuführen
eines Zuschnitts, die auf den Basisrahmen (2) einwirken, um zwischen den Versiegelungsköpfen
(4) einen Zuschnitt zuzuführen.
9. Maschine nach einem der vorangehenden Ansprüche, umfassend einen Schachtelherstellungstisch
(6), der in den Basisrahmen (2) integriert ist und von den Zuschnittzuführmitteln
(5) gesteuert wird.
10. Maschine nach einem der vorangehenden Ansprüche, wobei die Zuschnittfalzmittel (7)
auf dem Schachtelherstellungstisch (6) arbeiten.
11. Maschine nach einem der vorangehenden Ansprüche, wobei die Versiegelungsköpfe (4)
abnehmbar an die entsprechenden Revolver (3) angeschlossen sind.
12. Maschine nach einem der vorangehenden Ansprüche, wobei jeder Revolver (3) unabhängige
Mittel (18) zum Zuführen von Versiegelungsstreifen zum Versiegelungskopf (4) umfasst,
um die Ecken (49) der in der Herstellung befindlichen Schachtel zu versiegeln und
zu verschließen.
13. Maschine nach einem der vorangehenden Ansprüche, umfassend Mittel (20) zur Herausnahme
der hergestellten Schachtel, die auf der Schachtel arbeiten, um die hergestellte Schachtel
vom Herstellungstisch (6) wegzubewegen, wobei die Herausnahmemittel (20) ein Saugnapfherausnehmerelement
umfassen, um die hergestellte Schachtel festzuhalten und sie vom Herstellungstisch
(6) wegzubewegen.
14. Maschine nach einem der vorangehenden Ansprüche, wobei ein Magazin für Versiegelungsköpfe
(4) vorhanden ist, die gegenüber der Vertikalen verschiedene Winkel aufweisen, um
aufrechte Schachtelecken (49) zu schließen, die zu einer Horizontalachse geneigte
Wände aufweisen.
1. Machine destinée à former des boîtes (36) débutant à partir de découpes plates (31)
consistant en une base composée de plusieurs côtés (34) et du même nombre de faces
latérales (35) unies à la base par des lignes de pliage (32), la machine comprenant
un contre-moule (10) ayant la même forme, dans une vue en plan, que la base (34) et
des éléments plieurs (7, 7') servant à plier sur le contre-moule (10) les faces latérales
(35) formant les angles ouverts (49) d'une ou plusieurs boîtes (36), et comprenant
aussi une pluralité de tourelles (3) pouvant se déplacer par rapport au contre-moule
(10), chaque tourelle ayant une tête de scellage (4) servant à appliquer un ruban
adhésif sur ledit angle ouvert, dans laquelle chaque tourelle (3) peut se déplacer
indépendamment du mouvement d'au moins une autre tourelle (3) par rapport au contre-moule
(10) le long d'au moins deux directions (B, C) perpendiculaires l'une à l'autre, la
machine étant caractérisée en ce que chaque tourelle (3) est montée sur une traverse (53) pouvant coulisser par rapport
au contre-moule dans une direction (C),
des traverses indépendantes (53) étant prévues pour chaque tourelle (3), de sorte
que chaque tourelle (3) peut se déplacer indépendamment du mouvement de toutes les
autres tourelles (3) par rapport au contre-moule (10) le long d'au moins deux directions
(B, C) perpendiculaires l'une à l'autre.
2. Machine selon la revendication 1, dans laquelle une ou plusieurs des tourelles (3)
peuvent tourner autour de leur axe vertical de rotation par rapport au contre-moule
(10) de manière à pouvoir définir une pluralité de directions d'approche (A) de la
tête de scellage (4) par rapport à l'angle (49) de la boîte en formation (36).
3. Machine selon la revendication 2, dans laquelle chaque tourelle (3) est supportée
par une unité de support de tourelles (13) pouvant se déplacer dans une première direction
(B) par des premiers moyens de réglage (14') le long d'une traverse (53) comprenant
à son tour des seconds moyens de guidage (54) et des moyens de réglage (75) agissant
dans une seconde direction (C) perpendiculaire à la direction (B) pour déplacer l'unité
de support de tourelles (13) de façon réglable le long des deux directions (B, C).
4. Machine selon la revendication 3, dans laquelle chaque unité de support de tourelles
(13) constitue une structure de chariots croisés comprenant une première glissière
(38) pouvant se déplacer dans la première direction (B) par rapport à la traverse
(53) et une seconde glissière (39) pouvant glisser par rapport à la première dans
la direction perpendiculaire à cette dernière (C).
5. Machine selon la revendication 4, dans laquelle la seconde glissière (39) possède
des moyens de guidage (40) et des moyens de réglage (15) supplémentaires de la position
par rapport à la première glissière (38) dans au moins une direction (B, C).
6. Machine selon l'une quelconque des revendications précédentes, dans laquelle au moins
une tourelle (3) peut tourner par rapport au contre-moule (10) au moyen de goujons
(41) se mettant en prise avec des fentes circulaires (42) réalisées dans la surface
supérieure de la glissière (39).
7. Machine selon l'une quelconque des revendications précédentes, dans laquelle chaque
tête de scellage (4) est reliée de façon coulissante à la tourelle correspondante
(3) le long de la direction d'approche (A) par rapport à la boîte en formation.
8. Machine selon l'une quelconque des revendications précédentes, comprenant des moyens
(18) servant à alimenter une ébauche, agissant sur le châssis de base (2) pour alimenter
une ébauche entre les têtes de scellage (4).
9. Machine selon l'une quelconque des revendications précédentes, comprenant une table
(6) de mise en forme d'une boîte, solidaire du châssis de base (2) et commandée par
les moyens d'alimentation en ébauches (5).
10. Machine selon l'une quelconque des revendications précédentes, dans laquelle les moyens
de pliage de l'ébauche (7) agissent sur la table (6) de mise en forme de la boîte.
11. Machine selon l'une quelconque des revendications précédentes, dans laquelle les têtes
de scellage (4) sont associées de façon amovible aux tourelles correspondantes (3).
12. Machine selon l'une quelconque des revendications précédentes, dans laquelle chaque
tourelle (3) comprend des moyens indépendants (18) servant à alimenter en rubans adhésifs
la tête de scellage (4), afin de sceller et refermer les angles (49) de la boîte en
formation.
13. Machine selon l'une quelconque des revendications précédentes, comprenant des moyens
(20) servant à extraire la boîte formée, agissant sur la boîte pour éloigner la boîte
formée de la table de mise en forme (6), dans laquelle les moyens d'extraction (20)
comprennent un élément extracteur à ventouse pour intercepter la boîte formée et l'éloigner
de la table (6) de mise en forme.
14. Machine selon l'une quelconque des revendications précédentes, dans laquelle se trouve
un chargeur de têtes de scellage (4), disposant d'angles différents par rapport à
la verticale, servant à fermer les angles droits (49) des boîtes ayant les parois
inclinées par rapport à un axe horizontal.