[0001] The present invention relates to a packaging device, particularly for foodstuffs
or technical materials.
[0002] Vacuum-forming machines with a bell-shaped chamber are currently known which comprise
a vacuum pump connected to a chamber, also known as vacuum chamber, and inside which
a preformed pouch, open on three sides, is usually placed; a foodstuff is placed inside
the pouch.
[0003] Therefore, in these conventional machines the preformed pouch already contains the
foodstuff when it is inserted in the vacuum chamber, then vacuum is formed inside
the chamber and thermal bonding is carried out at the free side of the preformed pouch.
[0004] This conventional technology entails the need to use preformed pouches, whose size
is therefore comparable to the size of the product; considerable manual labor is also
required.
[0005] Accordingly, there are operating steps which extend the time required to achieve
vacuum packaging of the product; moreover, if packaging occurs in a controlled atmosphere,
most of the gas is wasted, since it is diffused not only in the pouch but mostly inside
the vacuum chamber.
[0006] EP-603.704 is also known in which foodstuffs are packaged by using a plastic film
which is guided through a folding station in order to obtain a double layer and is
then thermally bonded so as to form pockets.
[0007] The pockets are provided with the intended size or capacity before being filled and
sealed.
[0008] Thermal bonding and formation are followed by filling, closure and cutting of the
resulting pockets or pouches: this solution, however, is complicated, in that it entails
a plurality of separate stations for performing the individual operations to which
the plastic film must be subjected sequentially.
[0009] Hot or cold formation of the plastic film is furthermore provided for, in addition
to filling, by means of a nozzle, with liquid products, flours or finely granulated
products, and therefore it is not possible to use the solution described for solid
products having preset volumes, such as sliced ham and the like, meat, cheeses divided
into portions, trays containing foodstuffs and non-food products.
[0010] Moreover, in the conventional described solution, in order to close the pocket or
pouch it is necessary to make it pass through various operating steps, with the consequent
need for optimum centering of the pouch at each station so as to allow the optimum
intended treatment.
[0011] The aim of the present invention is to solve the above-described problems, by eliminating
the drawbacks of the cited prior art and thus by providing a device which allows the
vacuum or compensated-vacuum packaging of technical products or foodstuffs such as
sliced ham or the like, meat, cheeses divided into portions, and trays containing
food and non-food products.
[0012] Within the scope of this aim, an important object of the present invention is to
provide a device which allows to package said products quickly and with limited personnel
intervention.
[0013] Another important object of the present invention is to provide a product packaging
device which has a reduced operating cycle with short execution times.
[0014] Another important object of the present invention is to provide a device in which
said packaging can occur at a very low cost for each individual package.
[0015] Another important object of the present invention is to provide a device which also
allows to use shrink-wrap films, optionally with the possibility to use a reduced
amount of gas which is sufficient only for the package that contains the product.
[0016] Another object of the present invention is to provide a device which is also reliable
and safe in use.
[0017] This aim, these objects and others which will become apparent hereinafter are achieved
by a packaging device, particularly for foodstuffs or technical materials, which comprises
a bell-shaped vacuum chamber, characterized in that at least one single-folded film
can be placed in said bell-shaped vacuum chamber, said product or material being insertable
from an open longitudinal side of said film, said bell-shaped vacuum chamber containing
a first transverse thermal bonding bar, which is laterally adjacent to a cutting blade,
and a second thermal bonding bar, said first and second bars being L-shaped, at least
one nozzle for vacuum and/or for introducing gas or mixtures being provided so as
to face one of said longitudinal open sides.
[0018] Further characteristics and advantages of the present invention will become apparent
from the following detailed description of two particular embodiments thereof, illustrated
only by way of non-limitative example in the accompanying drawings, wherein:
figure 1 is a partially sectional side view of the components of the device;
figure 2 is a top view of the device;
figure 3 is a view of the arrangement of the nozzle;
figure 4 is a different view of the nozzle;
figure 5 is a partially sectional side view of the components of a second embodiment;
figure 6 is a perspective view of the components of the device of figure 5;
figure 7 is a schematic plan view of the components of the device of figure 5;
figure 8 is a sectional view, taken along a plane which lies transversely to the advancement
of the film at the bell-shaped vacuum chamber of the device of figure 5.
[0019] With reference to the above figures, the reference numeral 1 designates the packaging
device particularly for technical materials or foodstuffs, which are designated by
the reference numeral 2.
[0020] The device 1 comprises a bell-shaped vacuum chamber, designated by the reference
numeral 3, which is substantially constituted by a lower container 4 and by a closeable
upper cover 5; suitable first strips or gaskets 6 for airtightness are provided perimetrically
with respect to the container 4 and the cover 5.
[0021] The device uses a single-folded film 7, which as such has a first longitudinal side
8 which is closed and a second longitudinal side 9 which is open.
[0022] A first thermal bonding bar 11 is arranged transversely inside the bell-shaped vacuum
chamber 3 at its inlet 10; a substantially L-shaped cutting blade 12 is arranged laterally
to said first thermal bonding bar 11, and a first wing 13 of the blade is parallel
to the first thermal bonding bar 11, whilst the second wing 14 is arranged at right
angles to the first wing in the direction of the advancement of the single-folded
film 7.
[0023] A likewise L-shaped second thermal bonding bar 15 is provided adjacent to the cutting
blade 12 and forms a third wing 16, which is adjacent and parallel to the first wing
13, and a fourth wing 17, which is adjacent and parallel to the second wing 14.
[0024] The first thermal bonding bar 11, the second thermal bonding bar 15 and the cutting
blade 12 are advantageously but not necessarily associated with a same support 50
which is movable inside the bell-shaped vacuum chamber and work in abutment against
suitable contrast elements 51 which are associated inside the cover 5.
[0025] The bell-shaped vacuum chamber 3 also contains at least one nozzle 18 which allows
to produce vacuum and/or to inject gas or mixtures either at the second open longitudinal
side 9 of the single-folded film or at the fourth transverse side 20 which is adjacent
to the lateral inlet 10 of the bell-shaped vacuum chamber.
[0026] The solution shown in figure 2 uses a nozzle 18 which has a lens-shaped cross-section
and is inserted hermetically from the lateral inlet 10 of the bell-shaped chamber
by means of a suitable piston 31.
[0027] Once vacuum or vacuum plus gas has been formed, the piston 31 causes the nozzle to
retract in order to allow activation of the first and second thermal bonding bars
11,15 and of the cutting blade 12 so as to obtain a closed package 21.
[0028] In this case, there is provided a presser 32 which can move inside the bell-shaped
chamber 3 and provides a seal because of the presence, at one of its ends, of a second
strip or gasket 33 which works in contrast with a third strip or gasket 34 arranged
inside the cover 5.
[0029] Preferably, the vacuum and/or the controlled atmosphere are produced in the bell-shaped
chamber and inside the package 21 across a first path 35 and a second separate path
36, each whereof has a sensor 36a and 36b which detects and controls internal pressure.
[0030] In the solution shown in figure 5 there is provided only the support 50 for the first
and second thermal bonding bars and the cutting blade, whilst the nozzle 18 is arranged
at the second longitudinal side 9.
[0031] Use of the device is therefore as follows: assuming that the system is already in
a steady-state operating condition, the third transverse side 19 of the single-folded
film 7, which is adjacent to the lateral exit 30 in the bell-shaped vacuum chamber,
is already partially sealed along its vertical extension; the operator then places
the product 2 to be packaged inside the single-folded film through the second longitudinal
side 9, which is open.
[0032] It is then sufficient to place inside the bell-shaped vacuum chamber the product
contained in the single-folded film; thereafter, by lowering the upper closeable cover
5, the vacuum or vacuum-gas cycle begins.
[0033] Differently from the solution of figure 1, in the solution of figure 5 there is a
cost improvement thanks to the fact that the nozzle 18 is laterally adjacent to the
second open longitudinal side 9 of the single-folded film: if gas is introduced, use
of the gas is limited only to the volume of the single-folded film which, being placed
inside the bell-shaped vacuum chamber, assumes a pocket-like configuration, since
the fourth transverse side 20 is clamped between the strips 6.
[0034] At the end of the vacuum or vacuum-gas cycle, the nozzle, which advantageously has
a lens-shaped cross-section, injects gas or mixtures, if required; then the first
thermal bonding bar 11 is activated, forming the third closed transverse side 19 of
the next container or package 21 that can be obtained; then the second thermal bonding
bar 15 is activated, closing both the fourth transverse side 20 and the second longitudinal
side 9.
[0035] During this cycle, the product is not moved inside the bell-shaped chamber.
[0036] A closed package 21 is then obtained by activating the cutting blade 12.
[0037] It is thus possible to open the bell-shaped chamber, remove the resulting package
and start a new cycle.
[0038] It has thus been shown that the invention has achieved the intended aim and objects,
a device having been provided which, by using a single-folded film, allows to obtain
a vacuum or controlled-atmosphere package even with shrink-wrap films by means of
an operating sequence that occurs only at the bell-shaped vacuum chamber, without
the need to handle the product, allowing to package solid products such as sliced
ham or the like, meat, cheeses divided into portions and trays containing both foodstuffs
and non-food products.
[0039] In the illustrated solutions, furthermore, formation and closure of the single-folded
film occur at the bell-shaped vacuum chamber, simultaneously closing a transverse
side of the next pouch, and all this occurs inside the bell-shaped vacuum chamber
and during the same cycle.
[0040] It is also possible to use only the amount of gas required for the volume of the
package that contains the product; all this allows to reduce the treatment times and
costs of each individual package.
[0041] The invention is of course susceptible of numerous modifications and variations,
all of which are within the scope of the same inventive concept.
[0042] The materials and the dimensions that constitute the individual components may also
of course be the most pertinent according to specific requirements.
[0043] Where technical features mentioned in any claim are followed by reference signs,
those reference signs have been included for the sole purpose of increasing the intelligibility
of the claims and accordingly, such reference signs do not have any limiting effect
on the interpretation of each element identified by way of example by such reference
signs.
1. A packaging device, particularly for foodstuffs or technical materials, comprising
a bell-shaped vacuum chamber, characterized in that at least one single-folded film
can be placed in said bell-shaped vacuum chamber, said product or material being insertable
from an open longitudinal side of said film, said bell-shaped vacuum chamber containing
a first transverse thermal bonding bar, which is laterally adjacent to a cutting blade,
and a second thermal bonding bar, said bars being L-shaped, at least one nozzle for
vacuum and/or for introducing gas or mixtures being provided so as to face one of
said longitudinal open sides.
2. A device according to claim 1, comprising a bell-shaped vacuum chamber constituted
by a lower container and an upper closeable cover, both of which are perimetrically
provided with first sealing strips or gaskets, characterized in that at least one
single-folded film can be placed inside said vacuum chamber and has a first longitudinal
side which is closed and a second longitudinal side which is open.
3. A device according to claim 1, characterized in that it comprises means for closing
the three open sides of said at least one single-folded film so as to form at least
one closed pouch or container.
4. A device according to claims 1 and 3, characterized in that said means are constituted
by at least a first thermal bonding bar, a second thermal bonding bar and a cutting
blade.
5. A device according to claims 1 and 4, characterized in that at the inlet side of said
at least one single-folded film there is provided, inside said bell-shaped vacuum
chamber, said first thermal bonding bar, which is arranged along an axis that runs
transversely to the insertion axis of said single-folded film.
6. A device according to claims 1 and 5, characterized in that said substantially L-shaped
cutting blade is adjacent to said first thermal bonding bar.
7. A device according to claims 1 and 6, characterized in that said cutting blade has
a first wing which is adjacent to said first thermal bonding bar and a second wing
which is arranged at right angles thereto.
8. A device according to claims 1 and 7, characterized in that said second L-shaped thermal
bonding bar is adjacent to said cutting blade.
9. A device according to claims 1 and 8, characterized in that said second thermal bonding
bar has a third wing, which is adjacent to said first wing of said cutting blade,
and a fourth wing, which is adjacent to said second wing of said cutting blade.
10. A device according to one or more of the preceding claims, characterized in that the
steps for producing vacuum and/or introducing gas or mixtures, for the thermal bonding
and cutting of said at least one single-folded film occur whilst keeping said product
in the same position.
11. A device according to one or more of the preceding claims, characterized in that said
first thermal bonding bar forms, at the end of each cycle, a third transverse side
which is closed or partially closed for said at least one single-folded film.
12. A device according to one or more of the preceding claims, characterized in that said
second welding bar produces, at said third and fourth wings, the complete closure
of the sides of said at least one single-folded film so as to obtain a closed package.
13. A device according to one or more of the preceding claims, characterized in that said
product can be inserted at said second open longitudinal side of said at least one
single-folded film and in that the product and the film in combination can then be
inserted in said bell-shaped vacuum chamber, which can then be closed again.
14. A device according to claims 1 and 13, characterized in that it produces vacuum at
least inside said at least one single-folded film contained in said bell-shaped vacuum
chamber and then optionally injects gas or mixtures.
15. A device according to claims 1 and 14, characterized in that said first thermal bonding
bar, said cutting blade and said second thermal bonding bar are activated subsequently
so as to obtain said package.
16. A device according to one or more of the preceding claims, characterized in that it
comprises a first path and optionally a second path for forming vacuum and/or injecting
gas or mixtures, each path having a sensor for detecting and controlling the pressure
inside said bell-shaped chamber and/or said single-folded film.
17. A device according to one or more of the preceding claims, characterized in that said
first and second thermal bonding bars and said cutting blade are associated with at
least one support which can move inside said chamber and interact with suitable contrast
elements associated inside said cover.
18. A device according to one or more of the preceding claims, characterized in that said
nozzle is hermetically inserted in, and extracted from, said bell-shaped chamber by
means of a suitable piston.
19. A device according to claims 1 and 18, characterized in that said seal is ensured
by a presser which can move inside said bell-shaped chamber and has, at one of its
ends, a second strip or gasket which acts in contrast with a third strip or gasket
arranged inside said cover.
20. A device according to claims 1, 14 and 18, characterized in that said nozzle is arranged
at said second open longitudinal side of said single-folded film.
21. A device according to claims 1, 14 and 18, characterized in that said nozzle is arranged
at said fourth transverse side of said single-folded film, which is adjacent to the
lateral inlet of said bell-shaped chamber.