BACKGROUND OF THE INVENTION
[0001] Strips of material are used for manufacture of diapers and other absorbent products.
The strips are cut on the manufacturing line at longitudinally spaced transverse cut
lines to divide the strip into individual sheet elements each used in the manufacture
of a respective absorbent product. Generally these strips are also die cut to provide
different widths for shaping of the products to better match the body of the user
and for better aesthetics. Most current processes of this type die cut the elements
from a single strip of the material having a width at least equal to the maximum required
width and discard the waste at the sides formed by cutting away the side portions
to the narrower scalloped width. Attempts are made to recycle the waste portions,
generally by grinding and returning the materials to the strip manufacturer. However,
recent developments have increased the complexity of the materials thus increasing
the cost and making recycling more difficult. There is therefore pressure to reduce
the amount of waste.
[0002] It has been previously proposed to slit longitudinally a web of the required materials
into a plurality of side by side strips which have varying width. The shaping is arranged
so that the strips have the wider portion of one adjacent to the narrower portion
of the next and vice-versa. This eliminates or at least reduces the amount of waste
relative to an arrangement in which all sheet elements are cut individually from a
respective strip of constant width.
[0003] However the packaging of such continuous strips is problematic as the strip of elements
are of varied width so that the location of the side edges varies. One proposal is
to form the strip into a single roll or pad which is wound spirally. Another proposal
is to wind the strip in a traverse package. Neither package structure is stable since
the side edges of one wound layer do not directly overlie the side edges of the next
leaving overhanging portions and feathered edges.
[0004] Previously packages of a continuous strip of material have been formed using a technique
known as "festooning" in which the strip is folded back and forth to lay a series
of strip portions back and forth with each portion being folded relative to the next
about a line transverse to the strip. The technique of festooning has been available
for many years and is used in packaging many different types of materials but particularly
material of a fibrous nature such as fabric, non-woven strips and the like. In this
technique, the strip is conventionally guided into a receptacle such as a cardboard
box while a first reciprocating movement causes portions of the strip to be laid across
the receptacle and folded back and forth and a second reciprocating movement causes
the positions of the portions to be traversed relative to the receptacle transversely
to the portions. Normally the receptacle comprises a rigid rectangular container at
least partly of cardboard having a base and four upstanding sides.
[0005] Festooning can be used for packaging the strips of varying width but this technique
has significant disadvantages which inhibit the effectiveness of the product when
removed and processed. In particular the fold lines which are essential to the process
will interfere with the absorbency or other performance of the material when such
fold lines occur at a central area of the sheet element.
[0006] US-A-5,956,926 discloses a method according to the preamble of claim 1.
SUMMARY OF THE INVENTION
[0007] It is the object of the present invention to provide an improved method of forming
a package from a ship of material.
[0008] According to the aspect of the invention there is provided a method of forming a
package of a strip of sheet material comprising the features recited in claim 1.
[0009] Preferred features are described in the dependent claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] One embodiment of the invention and some Examples which are not part of the invention
will now be described in conjunction with the accompanying drawings in which:
Figure 1 is a schematic isometric view of a package of a continuous strip (not part
of the present invention), the package including a plurality of layers of the strip
and being shown with the flexible packaging material omitted for convenience of illustration.
Figure 2 is a top plan view of the package of Figure 1, with the flexible packaging
material included.
Figure 3 is an end elevational view of an apparatus and method for forming the package
of Figure 1.
Figure 4 is a top plan view of the apparatus of Figure 5.
Figure 5 is a top plan view of the platform of the apparatus of figure 4 showing the
strips in spread arrangement for folding side by side.
Figure 6 is a top plan view of a package structure formed employing the method of
the invention.
Figure 7 is an isometric view of a package of the type according to figure 6 showing
the spliced connections of each strip to the next but for convenience of illustration
the strips are shown of constant width.
Figure 8 is a schematic side elevational view of a manufacturing line for cutting
the strip into sheets.
Figure 9 is a top plan view of the line of figure 8.
[0011] In the drawings like characters of reference indicate corresponding parts in the
different figures.
DETAILED DESCRIPTION
[0012] As shown in Figures 1 and 2, the package comprises a generally rectangular body 10
formed from a strip 11 of a material to be packaged and generally this material will
be of a fibrous nature formed by woven or non-woven material although this is not
essential to the package structure. Many materials of various thicknesses can be packaged
using the festooning technique provided they can accept the creasing necessary at
the end of each portion.
[0013] The package body is formed of a plurality of side by side stacks of the strip where
each stack comprises a plurality of folded strip portions of the strip which are laid
on top of one another. Thus as shown in Figure 1 the portions are folded back and
forth at respective end fold lines 25 and 26 so that the fold lines lie in a common
vertical plane defining the ends 15 and 16 of the stack. Each portion of the strip
lies directly on top of the previous portion so that side edges 27 and 28 of the portions
of the strip define a first set of lines in the common plane at right angles to the
strip portions which contain all the side edges 27 of the stack and similarly, the
side edges 28 of the strips of the stacks define a second set of lines in the common
plane at right angles to the strip portions which contain all the side edges 28 of
the stack.
[0014] Thus the package is formed by stacking the portions each on top of the next from
a bottom portion 29 up to a top portion 30 to form the stack. The package is thus
formed from the plurality of stacks 12 each of which has a length equal to that of
the other stacks and therefore equal to that of the package and the stacks are formed
up to a common height which is therefore equal to the height of the package. The package
10 is formed from a plurality of individual stacks 12 arranged side by side. In figure
1 there are shown only three such stacks for convenience of illustration whereas in
figure 2 there are shown six such stacks arranged side by side forming a complete
package structure. Each stack is formed from a folded strip which is continuous through
the stack. Each stack has a top end 13, a bottom end 14, two ends 15 and 16 which
are opposed and two sides 17 and 18 which are opposed.
[0015] It will of course be appreciated that the dimensions of the package can be varied
in according to the requirements so that the number of stacks can be increased or
decreased, the length and height of each stack can be varied to increase the number
of folded strip portions and to increase the length of the folded strip portions.
[0016] As best shown in figure 2 in the plan view of the strips, the strips of each stack
are folded back and forth from the fold lines 25 to the fold lines 26 to form a folded
strip portion having a length equal to the distance between the fold lines.
[0017] As described hereinafter, the strips are cut so that they have a varying width between
the side edges 27 and 28 of the strip. In the example shown the strips are of a simple
form in which the width varies periodically between narrow sections 32 and wider sections
33. More complex width variations can be employed in other examples.
[0018] In the example shown, the strip is intended for manufacturing diapers or similar
products which are formed each from a respective sheet element cut from the length
of the strip. Each sheet element in the example shown has an intended cut line 34
at the wider section 33 and a second intended cut line 35 also at the wider section
33 so that the narrower section 32 is located between the intended cut lines.
[0019] It will be appreciated that in the package structure as shown, no cutting of the
strips in the transverse direction has yet occurred and the cut lines 34 and 35 are
in effect imaginary lines. Their position can however be determined by the design
of the sheet elements and the position along the length of the strip which forms the
beginning and end of the sheet elements. The sheet elements are in effect thus arranged
end to end so that each is separated from the next simply by cutting along the intended
cut line.
[0020] The strip has a varying characteristic along its length which determines the position
of the sheet elements on the strip and therefore determines the positions of the intended
cut lines. In the example shown the varying characteristic is the varying width. Other
characteristics such as additional materials or varying thickness can be used.
[0021] It will be noted therefore from figure 2 that each folded strip portion of each of
the package bodies is defined by an exact whole number of sheet elements. In the example
shown the number of sheet elements is three but this can of course be varied from
a minimum of one up to a maximum which depends solely upon to maximum allowable size
of the transportable package structure. In most cases it is preferred that the folded
strip portion will contain more than one sheet element since the sheet elements are
often of the order of six inches (15.2cm) to two feet (61 cm) in length and the required
package structure will be generally significantly larger than this and certainly of
the order of four feet (122 cm) in length.
[0022] In the example shown, the design of the wider and narrower portions of the strip
is arranged such that no waste is formed when the slitting action occurs and the wider
portions match exactly with the narrower portions of the next strips. However it is
possible in some examples that there will not be an exact match between the wider
portions of one strip and the narrower portions of the next adjacent strip so that
some waste pieces will be formed by cutting out of the structure and discarding of
those waste pieces.
[0023] Thus as shown in figure 2, the strip portions will nest each exactly along side the
next with the narrower portions of one receiving the wider portions of the next. In
a situation where the wider portions do not exactly match the narrower portions, there
will still be some nesting effect even though there may be spaces left between the
folded strip portions.
[0024] The fact that each folded strip portion contains an exact whole number of sheet elements
ensures that the cut lines occur directly at the fold lines. Thus there are no fold
lines across the strip in any part of the sheet elements after the sheet elements
are cut along the cut lines. This is desirable in that the absence of fold lines in
the material of the sheet elements will avoid compromising the performance or absorbency
of the sheet element in the main body of the sheet element.
[0025] Furthermore, the fact that the folded strip portion contains a whole number of the
sheet elements and the sheet elements are identical ensures that the side edges of
the each folded strip portion lie directly on top of the side edges of the previously
laid folded strip portions. There are no overhanging or feathered edge portions therefore
and all parts of the strip are fully contained within the stack. The stack is therefore
in effect a solid structure having a constant density across its width. When compressed
therefore the stack can form a very rigid structure with no possibility of damaging
the side edges of the strip or of interleaving any material between the side edges
of the strip.
[0026] In the examples shown in figure 2, in order to provide the nesting effect, because
all of the package bodies are in effect identical with the fold lines arranged across
the wider part of the strip, it is necessary to off set each stack relative to the
next in a direction longitudinal of the strip. This is in contrast to the gist of
the invention. Thus each stack is off set by one half of the length of the sheet element.
Thus for example the fold line 25A of the sheet element 12A is off set from the fold
line 25 of the sheet element 12 by a distance equal to one half of the length of the
sheet element from the fold line 25A to the cut line 34. However the nesting effect
of the stack provides an integral package structure when these are brought together
and wrapped by the packaging material as described hereinafter.
[0027] As shown in figure 6, with the method of the invention, an arrangement can be provided
in which the position of the fold lines relative to the sheet elements is of less
importance and it is possible to accept a fold line 35A at a position along the length
of the sheet element different from the intended cut line 35. Thus there is no necessity
to offset the stacks longitudinally since the fold lines 35A at alternate ones of
the stacks are arranged at the narrower parts 32 of the strip. Thus the fold lines
are aligned but the sheet elements are longitudinally offset. In such a manner, the
package structure can be directly rectangular apart from the outside edges which are
shaped to follow the side edges of the outermost package bodies.
[0028] The package is wrapped by a flexible packaging material preferably of heat sealable
non-permeable plastics which encompasses the whole of the package as indicated at
40 (not shown in figure 1). The packaging material forms a sealed package which allows
air to be extracted from the package and this vacuum action can be used with physical
compression D from the top and bottom 13 and 14 of the package so as to compress the
package to a reduced height in a vacuum packaging system. The amount of compression
can be determined so as to minimize the volume of the package without interfering
with the required loft of the product when withdrawn from the package. In this way
the package structure avoids the necessity for rigid sides of a box or similar container
so the package structure is stable due to the compression of the layers to reduce
the height of the layers and due to the pressure of each layer against the sides of
the next adjacent layers.
[0029] Compression of the package is only possible in the direction D which is at right
angles to the surfaces of the portions of the strip. This acts to compress the height
of the stacks so that the thickness of each strip portion in the direction D is reduced
by that compression. Compression along the portions or at right angles to the stacks
is not possible since this will act to distort the strip. Mechanical compression therefore
of the package in the direction D thus reduces the dimension of the package in that
direction allowing the air to be withdrawn from the flexible packaging material 40
causing the packaging material to be pulled down onto the package to maintain it in
its compressed condition and to apply pressures tending to hold the stacks in intimate
contact.
[0030] The strip of each layer is connected to the next by a traverse or spliced portion
of the strip which extends from one stack to the next so as to form a continuous strip
through the full length of the package. The technique for connecting the strip of
each stack to the next layer is shown in figure 7. In figures 1 to 6, the spliced
portion is simply omitted for convenience of illustration. Thus in figure 7 four stacks
200, 201, 202 and 203 are shown. The strip of each stack is continuous from a top
strip portion 205 to a bottom strip portion 206. The connection is effected by a tail
portion 208 which extends from the bottom portion 206 beyond one end of the stack.
The portion 208 extends along the end of the stack at 216 and includes a twist 215
with fold lines 213 and 214 to form a portion 217 extending along the end of the next
adjacent stack. The portion 217 is connected by a splice 211 to the top portion 205
of the next adjacent stack. Other splicing arrangements are possible.
[0031] Turning now to Figures 3, 4 and 5, a technique for forming the package structure
is shown in more detail. A web 50 is supplied on a master roll 51 and is unwound from
the master roll by a feeding and guide system 52 including two nip roller pairs 53
and 54. A slitting system 55 is mounted transversely to the web for dividing the web
into a plurality of parallel side by side strips. This can be provided by a slitter
bar which carries a plurality of slitter knives at transversely spaced positions so
as to slit the web into a plurality of strips 57 which are carried forwardly by the
guide system 52 so that they are maintained in the common plane of the web and are
maintained edge to edge. However, preferably the slitting system comprises a die cutting
roller 56 which rolls on a platen 56A so as to cut the strips into the wider and narrower
portions described hereinbefore.
[0032] In order to form the package structure shown in figures 1 and 2 where the fold lines
are arranged at the wider parts of the strip, it is necessary to spread the strips
apart to take up the position shown in figure 5 and also to longitudinally off set
the strips so that the wider portions 33 are aligned across the web and the narrower
portions 32 are also aligned across the web. This movement is effected in a zone generally
indicated at 90 which occurs between the rollers 54 and a guide roller 58. In this
zone 90, the strips 57 are split apart by a suitable guide system well known to one
skill in the art and alternate ones of the strips are passed over a diverting roller
91 which increases the path length by a distance equal to one half of the length of
a sheet element so as the strips pass through the guide rollers 58 they are aligned
into the position shown in figure 5.
[0033] The strips 57 are fed over a guide roller 58 into a folding system generally indicated
at 59 located underneath the feed roller 58. The folding system 59 comprises a support
table 60 having a width sufficient to receive the full width of the web 50 when stretched
out as shown in figure 5, that is the strips in side by side arrangement. The support
table 60 has a length sufficient to receive the portions of the folded strips in the
structure as previously described. The table 60 is mounted upon a jacking system 61
which is shown only schematically and acts to raise and lower the table so that the
table is gradually lowered as the strips are folded onto the table.
[0034] The folding system further includes a pair of folding bars 62 and 63 which act to
fold the strips back and forth across the table 60. The folding bar 62 is mounted
on an actuating cylinder 64 and similarly the folding bar 63 is mounted on an actuating
cylinder 65. In Figure 3, the folding bar 63 is shown in the retracted position and
the folding bar 62 is shown in the extended position. The folding bars move alternately
between these positions so that the folding bar 62 is firstly retracted and then the
folding bar 63 is extended so as to move the strips across the table to form the overlying
portions of the strip previously described. The folding bars 62 and 63 extend across
the full width of the web so as to engage all of the strips simultaneously and to
move those strips simultaneously into the folded positions. The strips thus remain
in the above described position as they are being folded. The folding bars 62 and
63 may be in the form of rollers to allow the material to pass over the bar without
friction while the material is being pushed by the bar to the required position on
the table. The mounting system for supporting the cylinders is not shown for convenience
of illustration and this will of course be well apparent to one skilled in the art.
[0035] The folding system further includes a pair of creasing jaws 66 and 67 each arranged
at the end of the stroke of a respective one of the folding bars. The creasing jaws
also extend across the full width of the web and comprise a pair of jaw elements 68
and 69 which can be moved from an open position as indicated on the left and a closed
creasing position as indicated on the right. The jaws are moved between these positions
by an actuating cylinder 70 timed in relation to the operation of the cylinder 64
and 65. In addition to the opening and closing movement, the creasing jaws also move
inwardly and outwardly in a horizontal direction relative to the table so as to release
each fold or crease line after it is formed to allow that layer and the fold at the
end of the layer to be dropped onto the previous layers and to move downwardly with
the table 60. Thus as illustrated, the creasing jaw 66 at the completion of the crease
moves outwardly away from the crease or fold line and at the same time opens slightly
to release the fold between the two portions to drop downwardly onto the underlying
portions. The jaws then open and move back inwardly ready to receive the portion of
the strips wrapped around the folding bar and to grasp those as they are released
from the folding bar as shown at the creasing jaw 67 in Figure 5. This compound motion
can be effected by suitable mechanical linkage operated by the actuating cylinder
70, this arrangement again being well apparent to one skilled in this art.
[0036] The strips are therefore simultaneously laid down in portions folded back and forth
on top of one another to simultaneously form a plurality of the stacks of the package
structure. Each stack is thus formed by a single respective one of the strips. The
strip is continuous throughout the stack. In order to provide a continuous strip,
one or more master rolls may be spliced into the supply with the splice being formed
across the width of the web so that each slit strip also acts to slit through the
splice.
[0037] The back and forth folding of the strips into the stacks is continued until sufficient
of the portions are applied to the stack to complete the stack in accordance with
the required dimensions of the stack.
[0038] A modified method not part of the invention for manufacturing the package of the
structure as shown in Figures 1 and 2 uses basically the steps shown in Figures 3,
4 and 5 but instead of using the slitter system 55 uses the cutting method shown in
and described in e.g. US-A-5956 926 in which a folded web is cut using a band knife
across the folded structure. Such an arrangement will form a package structure in
which the individual package bodies are fully nested with the fold lines aligned so
that is not possible to manufacture such a structure in which the fold lines are all
located at the intended cut lines of the sheet elements.
[0039] In a yet further modified method for manufacturing the package also not part of the
invention, each individual strip separated from the slitting system 55 can be transported
to an individual folding head where the strip is folded back and forth as previously
describe to form individual package bodies. When the individual package bodies are
so formed, they can be collated and nested on a suitable collation platform for subsequent
compression and wrapping as previously described.
[0040] A marker 56B is located adjacent the folding system 59 for applying a machine readable
marking 56C on the strip in registration with the intended cutting lines for dividing
each sheet element from the next. The markings shown as a chain dot line in figures
2 and 6 can comprise an ink jet marking, possibly in the form of a dot or square,
visible both to the eye and to the machine or in some cases just to the machine. The
marking may or may not be located directly at the cut line depending upon the location
of the machine reader relative to the cutting blade and in the example shown, the
marking is located in advance of the intended cut line. The marking may extend only
across a short part of the width of the strip. It will be appreciated that as the
markings are registered with respective ones of the cut lines, each marking is offset
from its associated cut line by the same distance. In an arrangement in which only
the fold lines are marked by the ink jet marking, there will be only one marking on
each strip portion. In an arrangement in which the number of sheet elements on each
strip portion is a whole number greater than one, each intended cut line can be marked
and therefore there will be a plurality of markings on each strip portion.
[0041] Turning now to figures 8 and 9, there is shown schematically the unfolding and cutting
line for using the strip and separating the strip into the separate sheet elements.
Thus the package is indicated at 10 and the strip is withdrawn from the package over
a guide member 80 for directing into an operating line 81. A cutting device 82 is
operated by a control unit 83 which receives registration information from the markings
56C as read by a reader 84. Thus the markings are located at a position to operate
the control device to effect cutting at the intended cut line.
[0042] As explained previously, some of the cut lines are located at the fold lines. Depending
upon tolerances, the cut may not be effected directly at the fold line but may deviate
slightly therefrom. As the sheet elements are often intended to be stitched or otherwise
formed into a final product, with edges of the sheet element thus being formed into
edges of the final product, the cut line can deviate from the fold line by a small
amount provided the fold line does not end up in a central area 85 of the final product,
indicated by dash lines 86, 87. That is the fold lines are arranged sufficiently close
to an end of the sheet elements to avoid compromising the performance of the sheet
elements.
1. A method of forming a package (10) from a strip (11) of material,
comprising the step of folding the strip (11) repeatedly back and forth to form a
stack (12), wherein the folded strip portions of the stack (12) are so arranged as
to form a plurality of first fold lines (26) arranged at one (15) of two opposed ends
of the stack (12) and a plurality of second fold lines (25) arranged at the other
end (16) of the stack (12),
wherein the width of the strip (11) varies along its length,
and wherein the folded strip portions of the stack (12) are superimposed with the
side edges (27, 28) thereof directly aligned such that the areas of maximum width
of the folded strip portions are superimposed, and the areas of minimum width of the
folded strip portions are superimposed,
characterized in that
the above step is carried out a plurality of times to form a package of a plurality of stacks (12) arranged side by side in a
common package structure with alternate stacks having the first and second fold lines thereof offset from the
first and second fold lines of the next adjacent stacks in a direction longitudinal
to and relative to the strip portions of the stacks such that the fold lines (26) at one end (15) of all the stacks (12) are aligned so as
to lie in a first common plane at one end of the package, and the fold lines (25)
at the other end (16) of all the stacks (12) are aligned so as to lie in a second
common plane at the other end of the package, so that the stacks (12) are not longitudinally
offset with respect to one another,
wherein the stacks are nested such that areas of minimum width of each stack (12)
lie alongside areas of maximum width of an adjacent stack (12).
2. The method according to claim 1, wherein the strip (11) in each stack (12) is continuous
from an end connecting portion (205) at one end of the stack to an end connecting
portion (208) at an opposed end of the stack and including splicing one end connecting
portion (208) of the strip (11) from each stack (12) to an end connecting portion
(205) of the strip (11) of an adjacent stack (12) by a splice connecting portion (211)
of the strip (11) so as to form the strip (11) that is continuous along its length
through the package.
3. The method according to claim 2, including arranging the stacks substantially upright
with a bottom (14) and a top (13), two sides (17,18) parallel to the edges (27,28)
of the strips of the stacks, and the two ends (15,16) containing the fold lines of
the stacks, and connecting the end connecting portion (208) of the bottom of one stack
(12) to the end connecting portion (205) of the top of an adjacent stack (12) to form
the splice connecting portion (211) which extends along one end of the stack (12).
4. The method according to claim 1, including compressing the package (10) downwardly
(D) so as to decrease the height of the stacks (12) from a rest height to a compressed
height, and engaging the package by packaging material (40) which maintains the compression.
5. The method according to claim 4, wherein the compression is sufficient to reduce the
thickness of each strip portion of said stacks (12).
6. The method according to anyone of the preceding claims, wherein the strip provided
is fibrous.
7. The method according to claim_ 4, including wrapping the package by a flexible packaging material to form a closed
bag, withdrawing air, and sealing the bag against ingress of air.
1. Verfahren zum Ausbilden eines Pakets (10) aus einem Streifen (11) eines Materials,
bei welchem Verfahren der Streifen (11) wiederholt rückwärts und vorwärts gefaltet
wird, um einen Stapel (12) zu bilden, wobei die gefalteten Streifenbereiche des Stapels
(12) so angeordnet sind, dass sie mehrere erste Faltelinien (26) bilden, die an einem
(15) von zwei gegenüberliegenden Enden des Stapels (12) angeordnet sind, und mehrere
zweite Faltelinien (25), die an dem anderen Ende (16) des Stapels (12) angeordnet
sind,
wobei die Breite des Streifens (11) über seine Länge hinweg variiert,
und wobei die gefalteten Streifenbereiche des Stapels (12) einander überlagert werden,
während die Seitenkanten (27, 28) des Stapels (12) direkt ausgerichtet sind, so dass
die Bereiche maximaler Breite der gefalteten Streifenbereiche einander überlagert
sind und die Bereiche mit minimaler Breite der gefalteten Streifenbereiche überlagert
sind,
dadurch gekennzeichnet, dass
der oben beschriebene Schritt mehrfach ausgeführt wird, um ein Paket aus mehreren
Stapeln (12) zu bilden, die Seite an Seite in einer gemeinsamen Paketstruktur angeordnet
sind, wobei bei abwechselnden Stapeln die ersten und zweiten Faltelinien eines Stapels
bezüglich den ersten und zweiten Faltelinien des nächsten benachbarten Stapels in
einer Richtung längs und relativ zu den Streifenbereichen der Stapel versetzt sind,
so dass die Faltelinien (26) an einem Ende (15) aller Stapel (12) ausgerichtet sind,
so dass sie in einer ersten gemeinsamen Ebene an einem Ende des Pakets liegen, und
die Faltelinien (25) an dem anderen Ende (16) aller Stapel (12) so ausgerichtet sind,
dass sie in einer zweiten gemeinsamen Ebene an dem anderen Ende des Pakets liegen,
so dass die Stapel (12) in Längsrichtung bezüglich einander nicht versetzt sind,
wobei die Stapel ineinander geschachtelt sind, so dass die Bereiche minimaler Breite
jedes Stapels (12) entlang den Bereichen maximaler Breite eines benachbarten Stapels
(12) liegen.
2. Verfahren nach Anspruch 1, bei welchem der Streifen (11) in jedem Stapel (12) von
einem Endverbindungsbereich (205) an einem Ende des Stapels zu einem Endverbindungsbereich
(208) an einem gegenüberliegenden Ende des Stapels kontinuierlich ist, und ein Endverbindungsbereich
(208) des Streifens (11) von jedem Stapel (12) aus mit einem Endverbindungsbereich
(205) des Streifens (11) eines benachbarten Stapels (12) mittels eines Spleißverbindungsbereichs
(211) des Streifens (11) verspleißt wird, um so den Streifen (11) zu bilden, der entlang
seiner Länge durch das Paket hindurch kontinuierlich ist.
3. Verfahren nach Anspruch 2, bei welchem die Stapel im Wesentlichen aufrecht mit einem
Boden (14) und einer Oberseite (13), zwei Seiten (17, 18) parallel zu den Kanten (27,
28) der Streifen der Stapel und den beiden Enden (15, 16), die die Faltelinien der
Stapel beinhalten, angeordnet werden und der Endverbindungsbereich (208) des Bodens
eines Stapels (12) mit dem Endverbindungsbereich (205) der Oberseite eines benachbarten
Stapels (12) verbunden wird, um den Spleißverbindungsbereich (211) zu bilden, der
sich entlang eines Endes des Stapels (12) erstreckt.
4. Verfahren nach Anspruch 1, bei welchem das Paket (10) niedergedrückt (D) wird, um
so die Höhe der Stapel (12) von einer Ruhehöhe auf eine komprimierte Höhe zu vermindern,
und das Pakets mittels Verpackungsmaterial (40) in Eingriff genommen wird, das die
Komprimierung aufrecht erhält.
5. Verfahren nach Anspruch 4, bei welchem die Komprimierung ausreicht, um die Dicke jedes
Streifenbereichs der Stapel (12) zu vermindern.
6. Verfahren nach einem der vorangehenden Ansprüche, bei welchem der Streifen fasrig
ist.
7. Verfahren nach Anspruch 4, bei welchem das Paket mittels eines flexiblen Verpackungsmaterials
eingewickelt wird, um einen geschlossenen Beutel zu bilden, Luft herausgezogen wird
und der Beutel gegen den Eintritt von Luft verschlossen wird.
1. Procédé de formation d'un emballage (10) à partir d'une bande (11) de matériau,
comprenant l'étape de pliage de la bande (11) de manière répétée en arrière et en
avant pour former une pile (12), dans laquelle les parties de bande pliées de la pile
(12) sont agencées de telle sorte de former une pluralité de premières lignes pliées
(26) agencées au niveau de l'une (15) de deux extrémités opposées de la pile (12)
et une pluralité de deuxièmes lignes pliées (25) agencées au niveau de l'autre extrémité
(16) de la pile (12),
dans lequel la largeur de la bande (11) varie le long de sa longueur,
et dans lequel les parties de bande pliées de la pile (12) sont superposées aux rebords
latéraux (27, 28) de celle-ci directement alignés de telle sorte que les zones de
largeur maximale des parties de bande pliées sont superposées, et les zones de largeur
minimale des parties de bande pliées sont superposées,
caractérisé en ce que
l'étape ci-dessus est exécutée une pluralité de fois pour former un emballage d'une
pluralité de piles (12) agencées côte à côte dans une structure d'emballage commune
avec des pile alternées ayant les premières et deuxièmes lignes pliées de celles-ci
décalées des premières et deuxièmes lignes pliées des piles adjacentes suivantes dans
une direction longitudinale à et par rapport aux parties de bande des piles de telle
sorte que les lignes pliées (26) à une extrémité (15) de l'ensemble des piles (12)
sont alignées de façon à se situer dans un premier plan commun à une extrémité de
l'emballage, et les lignes pliées (25) à l'autre extrémité (16) de l'ensemble des
piles (12) sont alignées de façon à se situer dans un deuxième plan commun à l'autre
extrémité de l'emballage, de sorte que les piles (12) ne sont pas décalées longitudinalement
les unes par rapport aux autres,
dans lequel les piles sont emboîtées de telle sorte que les zones de largeur minimale
de chaque pile (12) se situent le long de zones de largeur maximale d'une pile adjacente
(12).
2. Procédé selon la revendication 1, dans lequel la bande (11) dans chaque pile (12)
est continue depuis une partie de connexion à une extrémité (205) à une extrémité
de la pile jusqu'à une partie de connexion à une extrémité (208) à une extrémité opposée
de la pile et incluant le collage d'une partie de connexion à une extrémité (208)
de la bande (11) depuis chaque pile (12) à une partie de connexion à une extrémité
(205) de la bande (11) d'une pile adjacente (12) par une partie de connexion de collage
(211) de la bande (11) de façon à former la bande (11) qui est continue le long de
sa longueur à travers l'emballage.
3. Procédé selon la revendication 2, incluant l'arrangement des piles sensiblement vertical
avec un bas (14) et un haut (13), deux côtés (17, 18) parallèles aux rebords (27,
28) des bandes des piles, et les deux extrémités (15, 16) contenant les lignes pliées
des piles, et connectant la partie de connexion à une extrémité (208) du bas d'une
pile (12) à la partie de connexion à une extrémité (205) du haut d'une pile adjacente
(12) pour former la partie de connexion de collage (211) qui s'étend le long d'une
extrémité de la pile (12).
4. Procédé selon la revendication 1, incluant la compression de l'emballage (10) vers
le bas (D) de façon à diminuer la hauteur des piles (12) depuis une hauteur au repos
jusqu'à une hauteur compressée, et la mise en prise de l'emballage par un matériau
d'emballage (40) qui maintient la compression.
5. Procédé selon la revendication 4, dans lequel la compression est suffisante pour réduire
l'épaisseur de chaque partie de bande desdites piles (12).
6. Procédé selon l'une quelconque des revendications précédentes, dans lequel la bande
prévue est fibreuse.
7. Procédé selon la revendication 4, incluant l'enroulement de l'emballage par un matériau
d'emballage flexible pour former un sachet fermé, le retrait de l'air, et la fermeture
étanche du sachet contre l'entrée d'air.