[0001] This invention relates to a carton blank, a carton formed from the blank and a method
of making a carton. Cartons are usually made of paperboard coated on both sides with
a thermoplastic film, such as polyethylene. A blank of this material is formed into
a sleeve, for example of square cross-section, and panels, at respective ends of the
sleeve, are then folded inwardly to form the carton top and bottom. Overlapping edge
portions of these panels are heated and subjected to pressure in order to weld seams
together to seal the carton top and bottom.
[0002] Cartons typically contain liquid food products, such as milk, fruit juice, and soft
drinks. Some foods are produced in a form intended to have a long shelf-life. The
carton manufacturer is therefore required to provide cartons which are relatively
free from microbial contamination, such as fungicidal spores and bacteria. These could
otherwise initiate decomposition of the food, thereby shortening its potential shelf-life.
Microbes may reside in paperboard and they become trapped between the thermoplastic
films when the paperboard is coated. If the coated paperboard is then cut and folded
so that a "raw edge" of the paperboard can come into direct contact with the contents
of the carton, microbial contamination may occur.
[0003] A further problem, which is faced by carton manufacturers and the food industry,
is to make reliable hermetic seals so that cartons, filled with a product, do not
leak as a result of subsequent handling. In a typical carton, top and bottom panels
are creased and folded to form a gable top and a flat base. This is achieved by machines
which are loaded with sleeves formed from blanks that are then conveyed, one at a
time, between several work stations, where respective operations are performed. A
work sequence may include, for example, (a) initial sleeve formation, then, in the
machine (b) forming the carton bottom and and making an hermetic seal, (c) attaching
a pouring spout to one of the panels which will form a gable top, (d) filling the
carton, and (e) forming the carton top and making the final hermetic seal. Each step,
in the sequence, must be performed repeatably and reliably to make hermetic seals.
The food industry, for example, is highly competitive and there is hence a demand
for machines which can operate at ever increasing speed so as to fill and seal a greater
number of cartons within a given time. High speed machines are carefully designed
and operated to ensure that hermetic seals are repeatably and accurately made. On
occasion, however, wear and tear or some other factor may create conditions where
folds and seams are not made entirely as they should and slight discrepancies may
affect the integrity of the hermetic seals. Accordingly, any way of simplifying the
design or handling of cartons is of extreme benefit to manufacturers.
[0004] Machines are designed, to form, fill and seal cartons, but cartons are also designed
to suit the characteristics of machines. Certain features of cartons, such as the
size and position of creases, the way in which panels are folded, the position of
fitments (such as pouring spouts) and the way information is printed on the carton,
will vary in accordance with differences in automated forming and filling techniques.
For example, a ridge sealing the carton top may run either parallel with, or perpendicularly
to the seam which seals the carton bottom. A fitment may need to be attached to either
one of the sloping side panels in a carton top. In either or both of these cases,
it is important to consider the orientation of the carton as it proceeds from one
work station to another, to ensure that the carton is correctly presented or offered
up to a tool which performs a certain task. Moreover, the carton may be designed to
avoid, as far as possible, the need for a device to rotate the carton into a different
orientation before the operation, at a work station, can be performed. In the case
of twin-track machines, which are used to double production speed, carton blanks need
to be provided which are mirror-images of one another, so that "right-handed" cartons
are supplied on one track, whilst "left-handed" cartons are supplied on the other
track. (The abbreviations are RH and LH will be henceforth used to indicate such orientations.)
However, there is then the disadvantage that both RH and LH cartons need to be manufactured.
There is also the problem of mis-loading and/or loss of phase if RH and LH cartons
do not alternate on a transport path. If an operator replenishes an LH track with
RH cartons, this will stop and/or jam the machine. It must then be switched off and
serviced to remove the damaged carton, thereby disrupting work and causing a loss
of production. This will also occur if, for some reason, two LH or RH cartons are
accidentally fed in sequence.
[0005] The bottom of a typical paperboard carton comprises confronting flat panels and inwardly
creased panels. The creased panels enable the flat panels to be folded towards each
other so that an edge portion of one flat panel overlaps a corresponding edge portion
of the other flat panel to form a flat bottom. Heat and pressure are applied to the
overlapping portions to form a seam. In order to avoid the problem of a "raw edge"
a so-called "J-fold" may be employed in a small flap in the edge portions of one of
the flat panels as disclosed in EP-A-0112553 (this is explained in more detail below).
However, at least in a twin track machine, for example, the J-fold must be orientated
with respect to other features of the carton, and it is necessary to reverse the order
in which the flat panels overlap each other in the twin-tracks, and both RH and LH
cartons are then required.
[0006] The invention seeks to avoid the above-mentioned problems, particularly when forming
and sealing a carton bottom, and to provide a carton which can, at least on most occasions,
be made from a common blank.
[0007] According to one aspect of the invention, we provide a carton formed from a blank
which is formed into a sleeve having respective panels which are formed into a carton
top and a carton bottom, the carton bottom being formed by confronting flat panels
and confronting inwardly creased panels, the creased panels enabling the flat panels
to be folded towards one another, so that an edge portion of one flat panel overlaps
the corresponding edge portion of the other flat panel, whereby portions of the panels,
including said overlapping edge portions, can be welded together to seal the carton
bottom hermetically, characterised in that slits are made in substantially corresponding
positions in the edge portions of both of the confronting flat panels to define respective
flaps; the flaps being positioned so that when the edge portions are made to overlap,
either one of the flaps is folded down and the other flap overlies the folded flap;
the flap to be folded down being selected with regard to the intended orientation
of the carton prior to sealing the carton bottom and forming a folded edge on the
inside of the carton extending between the creased panels.
[0008] The invention also extends to a method of forming a carton, and to the carton blank,
as mainly claimed in claims 4 and 8.
[0009] Although the invention is not confined to the use of twin track machines, a particular
advantage of these flaps is that a common design of carton blank can be used to provide
sleeves to feed both RH and LH tracks of a twin track machine. Although the flat panels
will be caused to overlap differently in the RH and LH tracks, either one of the flaps
can be folded down to avoid a "raw edge" on the inside surface of the carton bottom
(normally bridged by the apices of triangular portions formed by the inwardly creased
and folded panels). As a common design of carton blank can be used, there will be
no need to print two different orientations of design on the carton blanks for use
in the RH and LH tracks.
[0010] A further advantage occurs in the case where fitments, such as screw top pouring
spouts, are applied to cartons. In a single track machine, it is possible to install
a mechanism on either side of the track to apply a fitment. In twin track machines,
space is a limiting factor between the tracks and fitments need to be applied on the
outside of each track. This necessitates the use of both RH and LH cartons. However,
the flaps of the invention avoid the need for such mirror-image cartons. Although
a carton in one track will be rotated through 180° with respect to a carton in the
other track, either one of the flaps can be folded down so that the other flap overlies
it before the bottom panels are subjected to heat and pressure to make the seal.
[0011] Preferably, one of the flaps is slightly smaller than the other, so that the opposite
edges of the smaller flap are spaced inwardly from the corresponding side edges of
the larger flap. This ensures that a better seal is made when the carton bottom is
welded. There is no need to space the top edge of one flap inwardly from the top edge
of the other flap, because the top edge of the folded flap will effectively draw back
due to the fold, i.e. one flap is folded and the other is not in the sealed carton
bottom. However, one top edge could be spaced inwardly from the other, if required.
[0012] The invention can be applied to cartons of various designs, as long as the bottom
is formed by confronting flat panels and confronting creased panels or their equivalent.
[0013] The flaps provide a very simple solution but a surprisingly good result. It is not
obvious to make slits in the edge portions of both confronting flat panels, because
this would apparently increase the risk of leakage. In the "single-J" design of the
prior art carton, the flap in the edge portion of one panel is tucked under and almost
totally enveloped by the edge portion of the opposite panel. The single pair of slits
is therefore totally covered by the marginal edge portion of 'top' panel. This total
coverage is apparently lost by making pairs of slits in the edge portions of both
of the confronting flap panels.
[0014] In the invention, the slits are in substantially corresponding positions in the confronting
flat panels and this would apparently increase the risk of leakage. Surprisingly,
this has not been found to occur in practice and the integrity of the seal is good.
The seal integrity is further improved by making one flap slightly smaller than the
other because, with a carton made from plastics coated paperboard for example, the
molten plastics can flow over the edge of the smaller flap and onto the marginal regions
of the larger flap, not covered by the smaller flap, when the carton bottom is welded.
[0015] Carton and machine manufacturers have made several attempts, in the past, to overcome
the kind of orientation problems mentioned above but, despite the long-term existence
of the well-known single "J fold" in the industry, no solution was advanced which
depends on using a double contacting flap construction as taught by this invention.
[0016] The above-mentioned problems will be better understood with regard to the following
description of certain prior art cartons. This, and a description of a preferred embodiment
of the invention, will be given with reference to the accompanying drawings, in which:-
Fig. 1 is a perspective view of a typical prior art paperboard carton;
Figs. 2 and 3 are perspective views of the bottom of the carton shown in Fig. 1 and
respectively showing early and late closing stages;
Figs. 4,5 and 6,7 are similar pairs of perspective views of a prior art carton bottom
with a single J-fold and a carton bottom of an embodiment of the invention respectively;
Figs. 8,9 and 10 are respectively a plan view looking down from the inside, a plan
view from the underside and a section on line X-X of the prior art carton bottom shown
in Figs. 1-3;
Figs. 11,12 and 13 are similar view of the carton bottom shown in Figs. 4,5;
Figs. 14,15 and 16 are also similar view of the carton bottom, embodying the invention,
shown in Figs. 6,7; Fig. 17 being a section on line BB; flaps folded one way;
Figs. 18,19 and 20 are again similar view of the carton bottom shown in Figs. 6,7;
Fig. 21 being a section on line BB; flaps folded the other way;
Fig. 22 shows the flaps superimposed to indicate their relative sizes; and
Fig. 23 shows the underside of the carton with die stake marks.
[0017] Referring to Figs. 1-3, a paperboard carton 1 is made from a blank formed into a
sleeve 2 of square cross-section. The carton has a gable top made from confronting,
sloping flat panels 3a,3b and confronting, inwardly creased panels 4a,4b (4b is not
visible). Upper edge portions of these panels meet at a vertical ridge 5, which is
welded, by the application of heat and pressure, to close the carton top after it
has been filled. Fitments can be applied to cartons, such as tear-off flaps and screw-top
pouring spouts. Carton 1 has a pouring spout 6, located in a hole in panel 3a. Spout
6, which is screw-threaded, has a flange welded to panel 3a, and a screw top 7 as
a removable closure.
[0018] The carton bottom 8 is flat and its basic method of construction is schematically
illustrated in Figs. 2 and 3. Confronting flat panels 9a,9b can be folded towards
one another due to the "concertina" action of confronting creased panels 10a,10b.
Creases, shown in the drawing and well-known in the art, facilitate folding. Folding
is effected by machinery (not shown nor described) also well-known in the art. Fig.
3 shows a stage at which folding is almost complete and where edge portions, 9c,9d
of panels 9a,9b respectively, overlap one another so that they can then be welded
together. A central part of this overlap covers triangular parts of the creased folds
in panels 10a,10b. As the welding technique is generally well-known in the art, it
will not be described in detail. However, it is noted that the creases, folds, shape
and position of the panels is such that the paperboard is deformed and welded in such
a way as to seal off cut edges of paperboard as far as possible (except as described
with references to Figs 8-10) so that any liquid in the carton does not come into
contact with such cut edges.
[0019] Referring to Fig. 8, which is a plan view, in section, of the prior art carton bottom
8, the triangular portions 11 can be seen looking down inside the carton. One of the
overlapping edges 12, i.e. of panel 9b, can also be seen and it is slightly displaced
from an axis through each triangular apex. As the paperboard is coated on both of
its major surfaces with a plastic film 13, the paperboard 14 is sandwiched between
the films 13. Hence, when the sheet material is cut, a cut or "raw" edge of paperboard
remains. Due to the way in which the carton bottom is formed, a raw edge 12 extends
between the triangular portions 11, although other raw edges (hidden beneath triangular
portions 11) can be sealed off due to their positions and the deformability of the
paperboard when the carton bottom is sealed. As edge 12 of panel 9b is a raw edge,
it can contaminate the contents of the carton (as also shown in section XX of Fig.
10). Fig. 9 is a plan view of the underside of the prior art carton bottom 8, showing
the other raw edge 15, of panel 9a, but this is of no consequence because it is on
the outside of the carton. Fig. 9 also shows a crimping pattern 16 (which varies from
one design of carton to another), which assists in making an hermetic seal when the
carton bottom is welded. In the section shown in Fig. 10, the panels are depicted
prior to welding so as to illustrate more clearly how edge portions 9c,9d overlap.
The "gaps" would be closed by welding.
[0020] Figs. 4,5 and 11-13 are similar perspective, plan and sectional views of the bottom
of another prior art carton having a so-called "J fold". This J fold is defined by
a small flap 17 which is folded back after making parallel slits in edge portion 9d
of panel 9b. The flap 17 is tucked under edge portion 9c of panel 9a in the closing
stage, shown in Fig. 5. As the flap 17 forms a folded edge or J fold 17c, this folded
edge, and not the raw edge 12 is visible in the interior sectioned plan view of Fig.
11. This "J" fold is made by folding back flap 17 as can be seen in section YY of
Fig. 13. The folded edge 17c is nearer the apices of triangular portions 11 as shown
in Fig. 11. The leading edge of flap 17 has been purposely shown projecting slightly
beyond overlapping edge portion 9c in Fig. 12, to facilitate description. When the
overlap is welded, a U-shaped bulge 18 tends to be formed in panel 9a, as shown in
Fig. 12, due to the presence of the folded flap. A stake or crimping pattern (not
shown) may also be used to improve the integrity of the seal.
[0021] J-type folds have been known for many years in the carton industry, as a means for
solving the "raw edge" problem. However, the industry has only applied the flap 17
to the underlying edge portion (9d) of the overlap, and this construction is prone
to the "orientation" problem described above, which involves the need for RH and LH
cartons because a common carton blank cannot be used to serve (e.g.) a twin track
machine. Various prior attempts made to overcome this problem have not met with success.
[0022] A carton bottom, according to the preferred embodiment of the invention, is illustrated
in Fig. 6,7 and 14-22.
[0023] As shown in Fig. 6, flaps 17a,17b are provided in both edge portions 9c,9d of panels
9a,9b. These flaps 17a,17b are formed by making substantially corresponding pairs
of parallel slits in the edge portions 9c,9d. These flaps are illustrated as bent
outwardly in Fig. 6, from respective creases 17c, running parallel to the edges of
panels 9a,9b, for the purpose of explanation. The creases 17c facilitate the folding
of one or other flap, as will be explained below.
[0024] In the closing stage shown in Fig. 7, one of the flaps 17a is folded back and the
other flap 17b overlies the folded flap 17a so that their inner surfaces are brought
into contact with one another, when the edge portions 9c,9d are made to overlap. In
the carton orientation shown in Fig. 7, the folded flap 17a is in the underlying edge
portion of panel 9b. The unfolded flap 17b, in the edge portion of panel 9a, merely
overlies the folded flap 17a. The carton bottom is then welded to provide an hermetic
seal.
[0025] Whilst the flaps 17 can have corresponding shape and dimensions, it is preferred
to make one flap slightly smaller than the other to improve the seal around the raw
edges of the flaps. In this case, one flap slightly overlaps the other so that when
heat is applied the plastics coating melts and runs over the edges of the smaller
flap and onto the overlapping margin of the larger flap. Fig. 22 shows the relative
shapes of a larger flap 17a and a smaller flap 17b (behind the larger flap and represented
by broken lines). The side edges of flap 17a are spaced by small margins 20 from the
side edges of flap 17b; the length of the slits 21 in each marginal portion 9c,9d
being the same. When one or other flap 17a,17b is folded, its top edge will draw back
from the top edge of the unfolded flap.
[0026] Fig. 23 shows die stake marks 25,26 on the underside of the carton to ensure that
possible leak paths are blocked. These die stake marks are made by conventional machines
known to those skilled in the art.
[0027] Although one flap is preferably larger than the other, it is not large enough to
prevent its passage through the smaller cut out of the smaller flap if it is folded
over the small flap, rather than in the other direction. A typical "overlap" between
larger and smaller flaps would leave a margin 20 of about 0.5-1.0 mm around each side
edge. Rectangular flaps are preferred but they could be square or other shapes (e.g.
trapezoidal).
[0028] Figs. 14-17 show different views of a carton bottom with flaps 17a,17b folded in
one direction (.e. to suit a carton having one form of LH or RH orientation. Figs.
18-21 show similar views of the same carton bottom with flaps 17a,17b folded in the
opposite direction.
[0029] Fig. 14 is a plan view, looking down inside the carton, showing the flap panels 9a,9b
and triangular portions 11 formed by the inwardly creased panels 10a,10b. The fold
17c is above a median line bisecting the apices of the triangular portions 11. The
edge portion 9c of panel 9a lies over the edge portion 9d of panel 9b (note also the
position of the overlap 23 which is used in forming the blank into a sleeve), as shown
in the underside view of Fig. 15. The sections on lines AA and BB respectively in
Figs. 16 and 17 respectively show the relative positions of the flaps 17a,17b and
the overlapping panels 9a,9b. The side portions of these flaps are sealed against
the triangular portion 11 as will be apparent from Fig. 14. The leading edge portion
17d of the larger (upper) flap 17a also overlaps the raw edge 17e of the small (lower)
flap 17b. This has been exaggerated for clarity. As the paperboard is deformable,
the flaps 17a,17b (shown in Fig. 16) obscure the overlapping edge portions 9c,9d which
can be seen in Fig. 17.
[0030] Figs. 18-22 are similar to those in Figs. 14-17, except that the smaller flap 17b
has been folded over the larger flap 17a, and the edge portion 9d of panel 9b overlies
the edge portion 9c of flap 9a. Also the carton bottom is rotated through 180° (see
position of the overlap 23).
[0031] When the carton blank is fed through a machine to form the carton, at the stage when
the carton bottom is formed, one or other flap 17a,17b is bent backwardly, to form
a fold, whilst the other flap is then introduced over the folded flap prior to sealing.
The way in which the flaps are folded may vary to suit different machines.
[0032] A carton embodying the invention can be made from a common design of blank, because
the carton bottom can arrive, at a work station, in either a forward, or reverse orientation
and either of the flaps 17a,17b can be folded before the various portions are welded.
1. A carton (1) formed from a blank which is formed into a sleeve (2) having respective
panels which are formed into a carton top and a carton bottom (8), the carton bottom
(8) being formed by confronting flat panels (9a,9b) and confronting inwardly creased
panels (11), the creased panels (11) enabling the flat panels (9a,9b) to be folded
towards one another, so that an edge portion of one flat panel (9b) overlaps the corresponding
edge portion of the other flat panel (9a), whereby portions of the panels, including
said overlapping edge portions, can be welded together to seal the carton bottom hermetically,
characterised in that slits (21) are made in substantially corresponding positions
in the edge portions of both of the confronting flat panels (9a,9b) to define respective
flaps (17a,17b); the flaps (17a,17b) being positioned so that when the edge portions
(9c,9d) are made to overlap, either one of the flaps (17a,17b) is folded down and
the other flap (17b or 17a) overlies the folded flap (17a or 17b); the flap to be
folded down being selected with regard to the intended orientation of the carton prior
to sealing the carton bottom (8) and forming a folded edge (17c) on the inside of
the carton extending between the creased panels (11).
2. A carton according to Claim 1 wherein the flaps (17a,17b) have identical shapes and
dimensions.
3. A carton according to Claim 1 wherein one of the flaps (17a,17b) is slightly smaller
than the other, so that at least opposite side edge portions of the smaller flap is
spaced inwardly from the side edge portions of the larger flap.
4. A method of making a carton (1) including the steps of:
(a) making a blank from sheet material,
(b) forming the blank into a sleeve (2),
(c) forming one end of the sleeve (2), having confronting flat panels (9a,9b) and
confronting inwardly creased panels (11), into a carton bottom (8), the creased panels
(11) enabling the flat panels (9a,9b) to be folded towards one another, so that an
edge portion of one flat panel overlaps the corresponding edge portion of the other
flat panel,
(d) welding the overlapping edge portions together to seal the carton bottom (8) hermetically,
characterised by making slits (21) in the edge portion of both of the flat panels
(9b,9b) so as to define flaps (17a,17b), causing said edge portions to overlap, after
folding either one or the other of said flaps (17a,17b) beneath the other flap (17b,17a)
before said welding which seals the carton bottom (8) so that a folded edge (17c)
extends on the inside of the carton between the creased panels (11).
5. A method according to Claim 4 wherein either one of the flaps is folded through approximately
180° to underlie the other flap.
6. A method according to Claim 4 wherein either one of the flaps forms a fold and the
other flap is introduced over the folded flap before welding the carton bottom.
7. A method according to any one of Claims 4-6, when used in a twin track machine for
forming filling and sealing cartons and wherein the machine is loaded with carton
sleeves which are of a common design, which are then formed into cartons according
to claim 1.
8. A carton blank formed of paperboard which is cut and creased for forming into a carton
(1) according to claim 1, 2 or 3, the blank having panels for forming four side walls
of the carton and an overlapping joining flap, a carton top and a carton bottom (8),
with the carton bottom (8) being formed of two creased panels (11) and two flat panels
(9a,9b) foldably connected to bottom edges of respective side wall panels, characterised
in that each of the two flat panels (9a,9b) has spaced slits (21) formed in corresponding
positions in edge portions thereof to define respective flaps (17a,17b) in the flat
panels (9a,9b) which flaps (17a,17b) are further defined by fold lines (17c) connecting
the flaps to their respective flat panel edge portions whereby, in the carton formed
from the blank, either one of said flat panels (9a,9b) can form the inner panel of
the carton bottom with its respective flap (17a or 17b) being folded back outwardly
to define a folded edge (17c) extending on the inside of the carton between the creased
panels, and the other flap (17b or 17a) will overlie the folded back flap (17a or
17b).
1. Eine von einem Zuschnitt gebildete Schachtel, welcher Zuschnitt in eine Manschette
(2) geformt wird, die jeweilige Wände aufweist, die zu einem Schachteloberteil und
einem Schachtelboden (8) geformt werden, wobei der Schachtelboden (8) durch gegenüberliegende
ebene Wände (9a, 9b) und gegenüberliegende, nach innen geknickte Wände (11) gebildet
wird, und die geknickten Wände (11) es ermöglichen, die ebenen Wände (9a, 9b) aufeinander
zu falten, sodaß ein Randbereich einer ebenen Wand (9b) den entsprechenden Randbereich
der anderen ebenen Wand (9a) überlappt, wobei Bereiche der Wände, die die überlappenden
Randbereiche beinhalten, zusammengeschweißt werden können, um den Schachtelboden hermetisch
abzudichten, dadurch gekennzeichnet, daß Schlitze (21) an im wesentlichen entsprechenden Positionen in den Randbereichen
von beiden gegenüberliegenden ebenen Wänden (9a, 9b) hergestellt werden, um jeweilige
Laschen (17a, 17b) zu definieren; wobei die Laschen (17a, 17b) so angeordnet sind,
daß wenn die Randbereiche zum Überlappen gebracht werden, irgendeine der Laschen (17a,
17b) nach unten gefaltet wird und die andere Lasche (17b oder 17a) die gefaltete Lasche
(17a oder 17b) überdeckt; und wobei die nach unten zu faltende Lasche unter Berücksichtigung
der beabsichtigten Orientierung der Schachtel vor dem Abdichten des Schachtelbodens
(8) und dem Ausbilden des gefalteten Randes (17c) auf der Innenseite der Schachtel,
der sich zwischen den geknickten Wänden (11) erstreckt, ausgewählt wird.
2. Eine Schachtel nach Anspruch 1, wobei die Laschen (17a, 17b) identische Formen und
Abmessungen aufweisen.
3. Eine Schachtel nach Anspruch 1, wobei eine der Laschen (17a, 17b) geringfügig kleiner
als die andere ist, so daß zumindest gegenüberliegende Seitenrandbereiche der kleineren
Lasche von den Seitenrandbereichen der größeren Lasche nach innen beabstandet sind.
4. Ein Verfahren zur Herstellung einer Schachtel (1) beinhaltend die Schritte:
(a) Herstellen eines Zuschnitts aus einem Flachmaterial,
(b) Formen des Zuschnitts in eine Manschette (2),
(c) Formen eines Endes der Manschette (2) mit gegenüberliegenden, ebenen Wänden (9a,
9b) und gegenüberliegenden, nach innen geknickten Wänden (11) in einen Schachtelboden
(8), wobei es die geknickten Wände (11) ermöglichen, die ebenen Wände (9a, 9b) aufeinander
zu falten, sodaß ein Randbereich einer ebenen Wand den entsprechenden Randbereich
der anderen ebenen Wand überlappt,
(d) Zusammenschweißen der überlappenden Randbereiche, um den Schachtelboden (8) hermetisch
abzudichten,
gekennzeichnet durch Herstellen von Schlitzen (21) in den Randbereichen der beiden ebenen Wände (9b, 9b),
um so die Laschen (17a, 17b) zu definieren, Bewirken des Überlappens der Randbereiche
nach dem Falten entweder einer oder der anderen der Laschen (17a, 17b) unter die andere
Lasche (17b, 17a) vor dem Schweißen, das den Schachtelboden (8) derart schweißt, daß
ein gefalteter Rand (17c) sich auf der Innenseite der Schachtel zwischen den geknickten
Wänden (11) erstreckt.
5. Ein Verfahren nach Anspruch 4, wobei irgendeine der Laschen über ungefähr 180° gefaltet
wird, um der anderen Lasche unterzuliegen.
6. Ein Verfahren nach Anspruch 4, wobei vor dem Schweißen des Schachtelbodens irgendeine
der Laschen eine Falte bildet und die andere Lasche oberhalb der gefalteten Lasche
eingebracht wird.
7. Ein Verfahren nach einem der Ansprüche 4-6, bei Verwendung einer Zwillingsbahn-Anlage
zum Bilden, Füllen und Abdichten von Schachteln und wobei die Maschine mit Schachtelmanschetten
beaufschlagt wird, die in einem gemeinsamen Design gehalten sind, die danach in Schachteln
nach Anspruch 1 geformt werden.
8. Ein aus Pappe geformter Schachtelzuschnitt, der zur Bildung einer Schachtel (1) nach
Anspruch 1, 2 oder 3 geschnitten und gefalzt wird, wobei der Zuschnitt Wände zur Bildung
von vier Seitenwänden der Schachtel und einer überlappenden Verbindungslasche, eines
Schachteloberteils und eines Schachtelbodens (8) aufweist, wobei der Schachtelboden
(8) aus zwei geknickten Wänden (11) und zwei ebenen Wänden (9a, 9b) gebildet ist,
die mit Bodenrändern von jeweiligen Seitenwänden faltbar verbunden sind, dadurch gekennzeichnet, daß jede der zwei ebenen Wände (9a, 9b) beabstandete Schlitze (21) aufweist, die
in jeweiligen Positionen in Randbereichen von diesen ausgebildet sind, um jeweilige
Laschen (17a, 17b) in den ebenen Wänden (9a, 9b) zu definieren, welche Laschen (17a,
17b) weiters durch Faltlinien (17c) definiert sind, welche die Laschen mit ihren entsprechenden
ebenen Wandrandbereichen verbinden, wobei in der aus dem Zuschnitt gebildeten Schachtel
irgendeine der ebenen Wände (9a, 9b) die innere Wand des Schachtelbodens bilden kann,
die mit ihrer jeweiligen Lasche (17a oder 17b) nach außen zurückgefaltet wird, um
einen, im Inneren der Schachtel zwischen den geknickten Wänden sich erstreckenden,
gefalteten Rand (17c) zu definieren, und die andere Lasche (17a oder 17b) die zurückgefaltete
Lasche (17a oder 17b) überdecken wird.
1. Carton (1) formé à partir d'un flan qui est formé en un manchon (2) ayant des panneaux
respectifs qui sont formés en un dessus de carton et un fond de carton (8), le fond
de carton (8) étant formé en mettant face à face des panneaux plats (9a, 9b) et en
mettant face à face des panneaux plissés vers l'intérieur (11), les panneaux plissés
(11) permettant aux parmeaux plats (9a, 9b) d'être pliés l'un vers l'autre, de sorte
qu'une partie de bord d'un panneau plat (9b) chevauche la partie de bord correspondante
de l'autre panneau plat (9a), des parties des panneaux, incluant lesdites parties
de bord en chevauchement, pouvant être ainsi soudées ensemble afin de sceller hermétiquement
le fond de carton, caractérisé en ce que des fentes (21) sont réalisées dans des parties
sensiblement correspondantes dans les parties de bord des deux panneaux plats face
à face (9a, 9b) afin de définir des rabats respectifs (17a, 17b); les rabats (17a,
17b) étant positionnés de sorte que, lorsque les parties de bord (9c, 9d) sont amenées
à se chevaucher, l'un des rabats (17a, 17b) est replié vers le bas et l'autre rabat
(17b ou 17a) chevauche le rabat (17a ou 17b) plié; le rabat devant être replié vers
le bas étant choisi par rapport à l'orientation prévue du carton avant scellage du
fond de carton (8) et formage d'un bord plié (17c) sur l'intérieur du carton s'étendant
entre les panneaux plissés (11).
2. Carton selon la revendication 1, dans lequel les rabats (17a, 17b) ont des formes
et des dimensions identiques.
3. Carton selon la revendication 1, dans lequel un des rabats (17a, 17b) est légèrement
plus petit que l'autre, de sorte qu'au moins des parties de bord latéral opposées
du rabat le plus petit sont espacées vers l'intérieur des parties de bord latéral
du rabat plus grand.
4. Procédé de fabrication d'un carton (1) comprenant les étapes consistant à :
(a) fabriquer un flan à partir d'une matière en feuille,
(b) former le flan en un manchon (2),
(c) former une extrémité du manchon (2), ayant des panneaux plats face à face (9a,
9b) et des panneaux plissés vers l'intérieur face à face (11), en un fond de carton
(8), les panneaux plissés (11) permettant aux panneaux plats (9a, 9b) d'être pliés
l'un vers l'autre, de sorte qu'une partie de bord d'un panneau plat chevauche la partie
de bord correspondante de l'autre panneau plat,
(d) souder ensemble les parties de bord en chevauchement afin de sceller hermétiquement
le fond de carton (8),
caractérisé par la réalisation de fentes (21) dans la partie de bord des deux panneaux
plats (9a, 9b) de façon à définir des rabats (17a, 17b), le fait d'amener lesdites
parties de bord à se chevaucher, après pliage de l'un ou l'autre desdits rabats (17a,
17b) sous l'autre rabat (17b, 17a) avant ledit soudage qui scelle le fond de carton
(8) de sorte qu'un bord plié (17c) s'étend sur l'intérieur du carton entre les panneaux
plissés (11).
5. Procédé selon la revendication 4, dans lequel l'un des rabats est plié sur approximativement
180° afin de se trouver sous l'autre rabat.
6. Procédé selon la revendication 4, dans lequel l'un des rabats forme un pli et l'autre
rabat est introduit au-dessus du rabat plié avant soudage du fond de carton.
7. Procédé selon l'une quelconque des revendications 4 à 6, lorsqu'il est utilisé dans
une machine à deux voies afin de réaliser le remplissage et le scellage de cartons
et dans lequel la machine est chargée avec des manchons en carton qui sont d'une conception
commune, qui sont alors formés en cartons selon la revendication 1.
8. Flan de carton formé en carton qui est découpé et plissé afin de former un carton
(1) selon la revendication 1, 2 ou 3, le flan ayant des panneaux destinés à former
quatre parois latérales du carton et un rabat de jonction en chevauchement, un dessus
de carton et un fond de carton (8), avec le fond de carton (8) qui est formé avec
deux panneaux plissés (11) et deux panneaux plats (9a, 9b) reliés par pliage aux bords
inférieurs des panneaux de paroi latérale respectifs, caractérisé en ce que chacun
des deux panneaux plats (9a, 9b) possède des fentes opposées (21) formées dans des
positions correspondantes dans des parties de bord afin de définir des rabats (17a,
17b) respectifs dans les panneaux plats (9a, 9b), lesquels rabats (17a, 17b) sont
en outre définis par des lignes de pliage (17c) reliant les rabats à leurs parties
de bord de panneau plat respectives de sorte que, dans le carton formé à partir du
flan, l'un desdits panneaux plats (9a, 9b) peut former le panneau intérieur du fond
de carton avec son rabat (17a ou 17b) respectif qui est replié vers l'extérieur afin
de définir un bord plié (17c) s'étendant vers l'intérieur du carton entre les panneaux
plissés, et l'autre rabat (17b ou 17a) chevauche le rabat replié (17a ou 17b).