Field of the art
[0001] The present invention concerns a method for manufacturing lightweight blocks or profiles,
whether it be from the reutilisation of scraps of corrugated cardboard or, optionally,
other corrugated cardboard waste materials, such as powder and chips, generated by
corrugated cardboard manufacturing and/or handling companies, or from cutting up into
pieces new or reused corrugated cardboard sheets. The present invention also concerns
a facility for implementing said method, and the obtained products.
Background of the invention
[0002] Corrugated cardboard is generally made of a number of alternate flat paper layers
and corrugated paper layers, the two outer layers always being flat. The one or more
corrugated inner paper layers form an internal fluted structure that confers to the
corrugated cardboard great mechanical resistance, in addition to other interesting
physical properties.
[0003] In cardboard manufacturing and/or handling companies, corrugated cardboard scraps
and other waste materials are produced, for example, as a result of cutting, die-cutting,
sanding and bending processes, among other operations, on corrugated cardboard sheets.
The scraps of corrugated cardboard that are considered to be useful for the present
invention are those corrugated cardboard scraps that preserve their mechanical properties.
This includes both leftover scraps of corrugated cardboard, coming from cardboard
manufacturing and/or handling companies, that preserve their mechanical properties
but not their formal or aesthetic quality, whereby they are unable for their normal
exploitation and marketing, and corrugated cardboard scraps obtained by cutting up
into pieces new corrugated cardboard sheets.
EP0927614 shows an example of a preparing process of cardboard or similar agglomerates, the
basic product of which is cardboard or paper having a recyclable nature.
[0004] The percentage of scraps and other waste materials in a factory of corrugated cardboard
is very high. Traditionally, the scraps of corrugated cardboard, together with defective
corrugated cardboard sheets, are recycled by shredding and wetting them until a mush
is formed from which recycled paper or cardboard can be manufactured. Nevertheless,
this recycling process is expensive and energetically inefficient relative to the
reutilisation method proposed by the present invention, since the latter makes unnecessary
some of the processes for obtaining the mush, as well as the use of chemicals to bleach
the paper or cardboard used in some recycled paper or cardboard applications.
[0005] Document
ES 1007170 U discloses an automatic paper and cardboard baling press that comprises a tunnel-like
structure that is fed with paper and cardboard scraps in bulk from a hopper and through
an opening on the upper surface of the tunnel. A hydraulic group actuates a rod attached
to a pushing piston guided along the tunnel, which pushes the scraps of paper or cardboard
into the tunnel, shaping a block that is pressure-compacted against a flap that shuts
off an outlet. The pressing tunnel includes lateral and upper pressers that condition
the block to be bundled by a needle through-guide shaping a paper or cardboard bale
or bundle of a predetermined size, which is removed through the outlet once the flap
is opened.
[0006] Since the purpose of the press described in the aforementioned document
ES 1007170 U is to compact the corrugated cardboard scraps until their volume is reduced to a
minimum in order to facilitate the transport and storage thereof, for example until
the time of turning them into mush for their recycling, the pressure used in the press
is high enough to crush the inner flutes of the corrugated cardboard and expel the
air contained therein, which has the shortcoming of eliminating the strength characteristics
of corrugated cardboard and producing a very heavy bale. In addition, since there
are no adhesive elements, once the bale is untied, it comes apart, because the compacted
scraps that form it become separated.
Disclosure of the invention
[0007] According to a first aspect, the present invention provides a method for manufacturing
lightweight blocks or profiles that comprises, first of all, the step of mixing and
agglomerating scraps of corrugated cardboard with a bonding agent until an isotropic
agglomerate is formed, the physical characteristics of which do not depend on the
direction. The cardboard scraps used have a predetermined maximum size, which to a
large extent ensures the presence of the flutes that form the internal structure of
the corrugated cardboard. In addition, the degree of humidity of the isotropic agglomerate
is controlled so that it is low enough to ensure that the paper that the corrugated
cardboard is made of will not go soft to the extent of losing its mechanical resistance.
[0008] Next, the method of the present invention comprises the step of compacting said isotropic
agglomerate by applying a pressure low enough not to crush the flutes in the internal
structure of the corrugated cardboard until compacted blocks or profiles are formed,
and, finally, drying said compacted blocks or profiles by applying heat until lightweight
blocks or profiles are obtained that can be used directly or can be subsequently machined
to confer on them specific configurations for particular uses.
[0009] Since, throughout the entire process, the corrugated cardboard scraps maintain the
mechanical resistance provided by the flutes of their internal structure, and the
scraps are randomly oriented in all directions, the lightweight blocks and profiles
obtained through the method of the present invention are extremely lightweight and
mechanically resistant, and they have high capacity of thermal isolation and interesting
acoustic properties. In addition, due to the fact that the scraps in the mix are randomly
oriented in all directions, the lightweight blocks and profiles are isotropic, since
they present the same physical properties, for example mechanical resistance to stress,
compression, torsion, bending and shear, rigidity or flexibility, elasticity, isolation
capacity, acoustic properties, etc., in every point of the body and in all directions.
[0010] The lightweight blocks or profiles of the present invention will be more or less
rigid or more or less flexible depending on the type of bonding agent used to make
the agglomerate. For example, a bonding agent that includes a rubber- or polyurethane-based
adhesive or an epoxy adhesive will provide relatively flexible and/or elastic lightweight
blocks or profiles, whereas a bonding agent that includes an adhesive based, for example,
on acrylic products will provide relatively rigid lightweight blocks or profiles.
[0011] The corrugated cardboard scraps used can be leftover scraps coming from a corrugated
cardboard manufacturing and/or handling facility or they can be expressly formed from
the cutting up into pieces of new or used corrugated cardboard sheets. When, in the
method of the present invention, one wishes to reuse scraps of corrugated cardboard
exceeding the predetermined maximum size, the method comprises the previous step of
shredding the scraps of corrugated cardboard until they are cut down to said predetermined
maximum size before proceeding to mix and agglomerate them.
[0012] Another advantage of the method of the present invention is that it allows reusing
scraps of corrugated cardboard that otherwise would be wasted or recycled to form
new cardboard, with much higher power consumption. Optionally, the method of the present
invention comprises adding to the mixture, in addition to the scraps of corrugated
cardboard, powder, chips and other corrugated cardboard particles generated in corrugated
cardboard manufacturing and/or handling processes as a material to be mixed and agglomerated
together with the bonding agent.
[0013] Preferably, the agglomerate includes scraps of corrugated cardboard of several sizes.
In a merely illustrative example, 50% or more by weight of the scraps have a maximum
size of 3 × 3 cm, and a small percentage of the scraps, for example from 5% to 10%
by weight, can have larger sizes, with a maximum dimension, for example, of up to
20 or 30 cm. This way, medium-sized and small scraps fill the gaps between the larger
scraps, and the powder, the chips and other corrugated cardboard particles fill the
gaps between the medium-sized and small scraps.
[0014] In general, the bonding agent comprises an adhesive product and a solvent liquid,
which can be water or another solvent. By controlling the amount of solvent relative
to the amount of adhesive product and the weight of the corrugated cardboard scraps
employed in the agglomerate, a mushy bonding agent and a controlled degree of humidity
are achieved so as not to soften the paper that the corrugated cardboard is made of.
When water is used in the process of formation of the agglomerate, the water can be
water coming from a supply network or recycled water coming from a cardboard manufacturing
and/or handling company that has integrated the method and/or the facility of the
present invention.
[0015] Similarly, as for the heat to be applied in the drying step, the present invention
envisages the use of residual heat from a boiler in the corrugated cardboard factory
or residual heat recovered from some corrugated cardboard manufacturing or handling
process in addition to or instead of other heat sources, such as electrical resistors,
gas burners or burners of petroleum derivatives, with considerable energy savings
and a reduction of pollutant emissions.
[0016] The method of the present invention comprises compacting the agglomerate in a mould,
whereby compacted blocks are obtained, which, once dried, form separate lightweight
blocks, or compacting the agglomerate in an extruder, whereby compacted profiles are
obtained, which, once dried, form long lightweight profiles, which are preferably
cut to pieces in an additional step before drying. Both the lightweight blocks and
the lightweight profiles can be used directly or can be subsequently machined.
[0017] In addition to the type of bonding agent, there are other factors that also influence
the physical properties of the lightweight blocks or profiles obtained, such as, for
example, the type or types of cardboard used, the size or sizes of the scraps, the
percentage of the different components used in the agglomerate, that is, the percentage
of corrugated cardboard scraps, the percentage of other corrugated cardboard waste
materials, the percentage of adhesive, the percentage of solvent, etc., relative to
the total volume or weight of the wet or dry agglomerate, and the thermal treatment
applied in the drying of the agglomerate, that is, the time-temperature curve in the
drying oven, among others.
[0018] According to a second aspect, the present invention provides a facility for implementing
a method for manufacturing said lightweight blocks or profiles. The facility comprises
at least one mixer provided with means for mixing and agglomerating scraps of corrugated
cardboard of a predetermined maximum size with a bonding agent until an isotropic
agglomerate is formed, at least one compactor provided with means for compacting said
agglomerate by applying a compacting pressure until compacted blocks or profiles are
formed, and at least one drying oven provided with means for applying heat to said
compacted blocks or profiles until they are dry, thereby obtaining lightweight blocks
or profiles.
[0019] The mixer of the present invention includes means, such as, for example, a humidity
probe, to control the degree of humidity of the isotropic agglomerate to a degree
low enough so as not to destroy the mechanical resistance of the paper that the corrugated
cardboard is made of, and the compactor comprises means, such as a pressure limiter,
to control said compacting pressure so as not to crush the flutes of the internal
structure of the corrugated cardboard. This way, the scraps of corrugated cardboard
preserve their lightness and mechanical properties in the obtained lightweight blocks
or profiles.
[0020] Optionally, when the corrugated cardboard scraps to be reused exceed the predetermined
maximum size, the facility of the present invention further comprises at least one
shredder provided with means for shredding the scraps of corrugated cardboard until
they are cut down to said predetermined maximum size before they are fed to said mixer.
The mixer can be a linear mixer or a planetary mixer, or the facility can combine
mixers of both types. The compactor can be an extruder provided with a die to form
continuous or long compacted profiles or a mould compactor provided with a mould to
form separate compacted blocks, or the facility can combine compactors of both types.
[0021] Optionally, the facility can also include a separator for separating corrugated cardboard
scraps according to their size. For example, a vibrating bed is capable of separating
scraps of corrugated cardboard according to their weight and to the frequency and/or
amplitude of the vibration. En this case, the corrugated cardboard scraps to be used
for the obtainment of the products of the present invention will have a range of sizes
selected between a predetermined maximum size and a predetermined minimum size.
[0022] In general, when the facility includes an extruder, a saw found at the outlet thereof
is arranged to cut the continuous or long compacted profiles into separate profile
pieces of an appropriate length to fit in the drying oven. Nevertheless, the drying
oven can alternatively be a continuous drying oven that the compacted continuous profile
coming from the extruder would go through in order to produce a continuous lightweight
profile that would be cut into pieces of the desired length by means of a saw arranged
downstream of the drying oven.
[0023] According to a third aspect, the present invention provides a product obtained from
scraps of corrugated cardboard. The product comprises at least one body formed by
an isotropic agglomerate of scraps of corrugated cardboard of a predetermined maximum
size joined to each other by an adhesive product, wherein said scraps of corrugated
cardboard in said isotropic agglomerate have an internal structure provided with flutes
formed by at least one corrugated sheet of paper. In an embodiment, the product has
the shape of a profile with a constant cross-section obtained by extrusion. In other
embodiments, the product can have multiple configurations obtained by moulding. In
yet further embodiments, the product can even have complex configurations obtained
by machining starting from an initial body obtained by moulding or extrusion.
[0024] By virtue of the excellent physical properties of the material made from corrugated
cardboard scraps, the products of the present invention have multiple applications
in fields such as transportation, packaging, decoration, soundproofing, thermal isolation,
etc.
Brief description of the drawings
[0025] The above and other features and advantages will be more apparent from the following
description of exemplary embodiments with reference to the attached drawings, in which:
Fig. 1 is a schematic layout arrangement of a facility according to an embodiment
of the second aspect of the present invention, which is useful for implementing the
method of the first aspect of the present invention;
Figs. 2 and 3 are perspective views of products according to different embodiments
of the third aspect of the present invention obtained by moulding;
Fig. 4 is a perspective view of a product in the shape of a profile with a constant
cross-section according to another embodiment of the third aspect of the present invention
obtained by extrusion;
Figs. 5 and 6 are top and bottom perspective views, respectively, of a product in
the shape of a pallet according to yet another embodiment of the third aspect of the
present invention;
Figs. 7 and 8 are top and bottom perspective views, respectively, of a product in
the shape of a shipping box according to another embodiment of the third aspect of
the present invention; and
Figs. 9 and 10 are top and bottom perspective views, respectively, of a product in
the shape of a case or coffin according to another further embodiment of the third
aspect of the present invention.
Detailed description of embodiments
[0026] Referring first to Fig. 1, there is shown a facility for implementing a method for
manufacturing lightweight blocks or profiles according to an embodiment of the present
invention. Preferably, the facility is located adjacent to a corrugated cardboard
manufacturing and/or handling plant and it comprises a couple of raw material storing
silos 60, 61 where corrugated cardboard waste materials coming from the plant are
stored. The first silo 60 receives corrugated cardboard scraps of various sizes through
a first in-feed conveyor 62 and the second silo 61 receives corrugated cardboard powder
and other corrugated cardboard particles through a second in-feed conveyor 63.
[0027] Next, the facility comprises a couple of mixers 80, 81, and the corrugated cardboard
scraps from the first silo 60 and the corrugated cardboard powder and other corrugated
cardboard particles from the second silo 61 are selectively loaded into the mixers
80, 81 through conveyors 64, 65, 66, which can be pneumatic conveyors or other types
of conveyors. Before feeding them to the mixers, the corrugated cardboard scraps from
the first silo 60 go through a shredder 70 provided with means to shred the corrugated
cardboard scraps until they are cut down to a predetermined maximum size, where, for
example, at least 50% by weight of the scraps have a maximum size of approximately
3 × 3 cm.
[0028] The mixers 80, 81 include means for mixing and agglomerating corrugated cardboard
scraps of said predetermined maximum size, the corrugated cardboard powder and the
other corrugated cardboard particles with a bonding agent until an isotropic agglomerate
is formed, wherein the corrugated cardboard scraps are randomly oriented in all directions.
[0029] One of the mixers can be, for example, a linear mixer 80 and the other can be a planetary
mixer 81. The linear mixer 80 is of a continuous production type and it comprises,
for example, a container wherein two parallel axes provided with blades are arranged
that, while rotating in opposite directions, keep on mixing the components fed through
its top in one end and keep on pushing the agglomerated mix until it leaves the other
end through a hatch. The planetary mixer 81 is of a batch production type and it comprises
a container closed with a lid wherein a planetary gear reduction box is installed
that causes blades to rotate that keep on mixing the components.
[0030] The mixers 80, 81 are configured in such a way that, when they mix the agglomerate
components, they will not crush the corrugated cardboard scraps, so that the flutes
constituting their internal structure remain whole.
[0031] The bonding agent includes an adhesive product dissolved in a solvent liquid, and
the mixers 80, 81 further include means, such as a humidity probe, for controlling
the degree of humidity in said isotropic agglomerate so that the paper that the corrugated
cardboard is made of will not go soft, thereby preserving its mechanical resistance.
The adjustment of the degree of humidity is effected, for example, measuring out the
proportions of the solid and liquid components in the agglomerated mix.
[0032] A number of intermediate conveyors 67, 68, 69 carry the still wet agglomerate coming
from the mixers 80, 81 to a couple of compactors 90, 91 provided with means for compacting
the isotropic agglomerate by applying a compacting pressure. For example, one of the
compactors is an extruder 90 provided with a chamber wherein a worm gear or the like
actuated by an electric motor pushes the agglomerate through a die in order to form
continuous or long compacted profiles, whereas the other is a mould compactor 91 provided
with a mould and a pusher actuated by a dynamic fluid cylinder that compresses the
agglomerate into the mould so as to form separate compacted blocks.
[0033] Both compactors 90, 91 include means for controlling the compacting pressure, for
example adjusting the torque of the electric motor used to move the worm gear or the
pressure of the dynamic fluid used to move the pusher so as not to crush the flutes
of the internal structure of the corrugated cardboard when forming the compacted blocks
or profiles. Optionally, the compaction can be carried out with the provision of heat
if deemed necessary. As a result of the compaction, the agglomerate generally loses
liquid, which can be again recycled back to the mixers.
[0034] The relatively humid compacted blocks and compacted profiles coming from the compactors
90, 91 are conducted to respective drying ovens 100 by means of corresponding belt
conveyors 71, 72. Since the compacted profiles produced by extruder 90 are continuous
or have a long length, the facility includes a saw 110 arranged to cut said continuous
or long compacted profiles into separate pieces of an appropriate length to fit in
the corresponding drying oven 100.
[0035] The drying ovens 100 are provided with means for applying heat to the compacted blocks
or profiles until they are dry, that is, until their degree of humidity is reduced
to a predetermined minimum, whereby lightweight blocks and lightweight profiles are
obtained that are transported by means of an out-feed conveyor 73. The heat source
for the drying ovens 100 can be, for example, electrical resistors, gas burners or
burners of petroleum derivatives, and additionally or alternatively it is possible
to use the residual heat from a boiler in the corrugated cardboard factory or residual
heat recovered from some corrugated cardboard manufacturing or handling process.
[0036] The lightweight blocks and lightweight profiles obtained can be utilised directly
or after they have been subsequently machined. In case of opting for subsequent machining,
the facility includes one or more machine tools (not shown), such as, for example,
millers, lathes, groovers, drills, borers and computerised numerical control machining
centres, which might receive the lightweight blocks and profiles from the out-feed
conveyor 73. The machine tools can be adapted to the great ease of machining offered
by the product of the present invention.
[0037] The corrugated cardboard powder, chips and other particles produced in the machining
operations are preferably sucked up and/or collected and conveyed towards the raw
material storing silos 60, 61 to be used again in the formation of lightweight blocks
and/or profiles.
[0038] This way, the embodiment of the facility according to the second aspect of the present
invention described in relation to Fig. 1 allows for implementing the method for manufacturing
lightweight blocks and profiles according to the first aspect of the present invention,
which, in brief, comprises the steps of mixing and agglomerating scraps of corrugated
cardboard of a predetermined maximum size with a bonding agent until forming an isotropic
agglomerate, controlling the degree of humidity of said isotropic agglomerate in order
not to destroy the mechanical resistance of the paper that the corrugated cardboard
is made of, compacting said agglomerate until compacted blocks or profiles are formed
by applying a controlled compacting pressure so as not to crush the flutes of the
internal structure of the corrugated cardboard, and drying said compacted blocks or
profiles by applying heat until lightweight blocks or profiles are obtained.
[0039] Figures 2 to 10 show different examples of products 1-6 according to the third aspect
of the present invention that are obtained by the method and/or the facility of the
present invention. All the products obtained have the common feature of at least one
body formed by an isotropic agglomerate of reutilised scraps of corrugated cardboard
of a predetermined maximum size joined to each other through an adhesive product,
wherein said scraps of corrugated cardboard in said isotropic agglomerate are randomly
oriented in all directions and have an internal structure provided with flutes formed
by at least one corrugated sheet of paper. For example, 50% or more by weight of the
scraps have a maximum size of 3 × 3 cm.
[0040] Consequently, the physical characteristics of the products according to the present
invention are extraordinary lightness, surprising mechanical properties, interesting
acoustic properties and high thermal isolation capacity.
[0041] Figures 2, 3 and 4 show different products 1, 2, 3 obtained directly at the exit
of the drying ovens 100 that are suitable to be used as is, or they can be subsequently
configured through machining to adapt them to specific uses.
[0042] The first product 1, shown in Fig. 2, is a lightweight block in the shape of a parallelepiped
with six flat faces 1a that can be obtained both from a compacted profile formed by
the extruder 90 and from a compacted block formed by the mould compactor 91 in the
facility of Fig. 1. Obviously, the parallelepiped might have different proportions
from those shown in Fig. 2, so that the first product 1 might alternatively have the
shape of a relatively thin plate, an elongated bar with square or rectangular cross-section,
a cube, etc.
[0043] The second product 2, shown in Fig. 3, is a lightweight block that has a complex
shape suitable to be obtained from a compacted block formed by the mould compactor
91 in the facility of Fig. 1. The second product 2 has an essentially cubic shape
with a widely rounded edge 2a, and it presents in one of its faces a square cross-section
cavity 2b.
[0044] The third product 3, shown in Fig. 4, is a lightweight profile 3a having a constant
cross-section in the shape of "H", which can be obtained from a compacted profile
formed by the extruder 90 in the facility of Fig. 1. It will be understood that, alternatively,
through the utilisation of different dies, the extruder 90 will be able to produce
profiles of a large variety of cross-sections, including profiles with a closed cross-section.
[0045] The first, second and third products 1, 2, 3 can have multiple uses, for example
as a filler, as buffers for the packaging of fragile products in boxes and the like,
as a thermal isolation material, as an acoustic conditioning material, etc.
[0046] Figures 5 to 10 show different products 4, 5, 6 obtained from lightweight blocks
similar to those described above in relation to Figs. 1 and 2, obviously initially
provided with adequate proportions, and subsequently conformed by machining.
[0047] The fourth product 4, shown in Figs. 5 and 6, is a pallet comprising a flattened
body that defines a platform 4a on its top and several crossing grooves 4b on its
bottom, which are sized to receive the forks of a forklift or the like from any of
the four sides of the pallet. The body is obtained from a lightweight block similar
to that of Fig. 2 and the grooves 4b are machined by means of a groover.
[0048] The fifth product 5, shown in Figs. 7 and 8, is a shipping box made up by a first
body 5a defining a container and a second body 5b forming a lid for said container.
The first body 5a has an essentially cubic shape with a large cavity 5c in its top,
a perimetric step 5d around said cavity 5c and a pallet structure 5e in its bottom,
whereas the second body 5b has the shape of a plate whose dimensions match those of
the first body 5a, with an undercut 5f in its bottom face fitting in said perimetric
step 5d of the first body 5a.
[0049] The first and second bodies 5a, 5b of the fifth product 5 are obtained from respective
lightweight blocks similar to that of Fig. 2, such that the cavity 5c and the undercut
5f are moulded surfaces, whereas the perimetric step 5d and the pallet structure 5e
are machined by means of a groover or a computerised numerical control machining centre.
[0050] The sixth product 6, shown in Figs. 9 and 10, is a case or coffin made up by a first
body 6a defining a first container part and a second body 6b forming a second container
part. The first and second bodies 6a, 6b have the shape of respective parallelepipedic
plates having similar dimensions. The first body 6a has a first complex configuration
cavity 6d in its bottom face, specifically adapted to the contours of a part of the
object to be contained, and the second body 6b has a second complex configuration
cavity 6c in its top face specifically adapted to the contours of another part of
the object to be contained. In addition, the second body 6b has grooves 6e formed
in its bottom face configuring a pallet structure. Lugs 6f protruding from the top
face of the second body 6b are inserted into corresponding holes 6g formed in the
lower face of the first body 6a when both first and second bodies 6a, 6b are coupled.
[0051] The first and second bodies 6a, 6b of the sixth product 6 are obtained from respective
lightweight blocks similar to that of Fig. 2, and the first and second cavities 6c,
6d with complex configurations, the grooves 6e and the holes 6g are machined by means
of a miller, a groover or a drill, respectively, or preferably, by means of a computerised
numerical control machining centre. The lugs 6f are preferably additional elements
inserted into corresponding holes, although they might optionally be obtained by machining.
[0052] A person skilled in the art will be able to introduce modifications and variations
to the embodiments shown and described without departing from the scope of the present
invention as defined in the attached claims.
1. A method for manufacturing lightweight blocks or profiles comprises the steps of:
mixing and agglomerating scraps of corrugated cardboard of a predetermined maximum
size with a bonding agent until an isotropic agglomerate is formed, and controlling
the degree of humidity of said isotropic agglomerate in order not to destroy the mechanical
resistance of the paper that the corrugated cardboard is made of;
compacting said agglomerate until compacted blocks or profiles are formed by applying
a controlled compacting pressure so as not to crush flutes in the internal structure
of the corrugated cardboard; and
drying said compacted blocks or profiles by applying heat until lightweight blocks
or profiles are obtained.
2. The method according to claim 1 characterised in that it comprises the step of shredding the scraps of corrugated cardboard until they
are cut down to said predetermined maximum size before said mixing and agglomerating
step.
3. The method according to claims 1 or 2 characterised in that it comprises adding corrugated cardboard powder and other corrugated cardboard particles
to the scraps of corrugated cardboard and the bonding agent in said mixing and agglomerating
step.
4. The method according to claims 1, 2 or 3 characterised in that said bonding agent comprises at least one adhesive product and one solvent liquid.
5. The method according to claims 1 or 2 characterised in that at least 50% by weight of the scraps of corrugated cardboard in the agglomerate have
a maximum size of approximately 3 × 3 cm, and 5% to 10% by weight of the scraps of
corrugated cardboard in the agglomerate have a maximum dimension from 3 to 30 cm.
6. The method according to any one of the preceding claims characterised in that it comprises compacting the agglomerate in a mould until compacted blocks are obtained
that, once dried, will result in lightweight blocks, or in an extruder until compacted
profiles are obtained that, once dried, will result in lightweight profiles.
7. The method according to claim 6 characterised in that it comprises the additional step of machining said lightweight blocks or lightweight
profiles.
8. A facility for implementing a method for manufacturing lightweight blocks or profiles
comprising:
at least one mixer (80) provided with means for mixing and agglomerating scraps of
corrugated cardboard of a predetermined maximum size with a bonding agent until an
isotropic agglomerate is formed, and means for controlling the degree of humidity
in said isotropic agglomerate in order not to destroy the mechanical resistance of
the paper that the corrugated cardboard is made of;
at least one compactor (90, 91) provided with means for compacting said isotropic
agglomerate by applying a compacting pressure, and means for controlling said compacting
pressure so as not to crush flutes in the internal structure of the corrugated cardboard
until compacted blocks or profiles are formed; and
at least one drying oven (100) provided with means for applying heat to said compacted
blocks or profiles until drying them, thereby obtaining lightweight blocks or profiles.
9. The facility according to claim 8 characterised in that it further comprises at least one shredder (70) provided with means for shredding
the scraps of corrugated cardboard until they are cut down to said predetermined maximum
size before they are fed to said mixer (80).
10. The facility according to claim 9 characterised in that it further comprises at least one vibrating bed provided with means for separating
scraps of corrugated cardboard according to their weight.
11. The facility according to claim 8 characterised in that said compactor (90, 91) is selected between an extruder (90) provided with a die
to form continuous or long compacted profiles and a mould compactor (91) provided
with a mould to form separate compacted blocks.
12. A product obtained from scraps of corrugated cardboard comprising at least one body
formed by an isotropic agglomerate of scraps of corrugated cardboard of a predetermined
maximum size joined to each other through an adhesive product, wherein said scraps
of corrugated cardboard in said isotropic agglomerate have an internal structure provided
with flutes formed by at least one corrugated sheet of paper.
13. The product according to claim 12 characterised in that said body has one or more moulded surfaces.
14. The product according to claim 12 characterised in that said body has the shape of a profile with a constant cross-section.
15. The product according to any one of claims 12 to 14 characterised in that said body has one or more machined surfaces that provide a complex configuration.
1. Verfahren zur Herstellung von leichten Blöcken oder Profilen, umfassend folgende Schritte:
das Mischen und das Agglomerieren von Wellpappeschnitzeln mit einer vorgegebenen maximalen
Größe mit einem Bindemittel bis ein isotropes Agglomerat gebildet wird, und das Regulieren
des Feuchtigkeitsgrads des genannten isotropen Agglomerats, um die mechanische Festigkeit
des Papiers, aus welchem die Wellpappe besteht, nicht zu zerstören;
das Verdichten des genannten Agglomerats bis verdichtete Blöcke oder Profile gebildet
werden, unter Anwendung eines regulierten Verdichtungsdrucks, um die Wellen in der
inneren Struktur der Wellpappe nicht zu zerdrücken; und
das Trocknen der genannten verdichteten Blöcke oder Profile unter Anwendung von Hitze
bis leichte Blöcke oder Profile erhalten werden.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass es den Schritt des Zerkleinerns der Wellpappeschnitzel bis sie bis zu der genannten
vorgegebenen maximalen Größe geschnitten werden, vor dem genannten Schritt des Mischens
und Agglomerierens umfasst.
3. Verfahren nach den Ansprüchen 1 oder 2, dadurch gekennzeichnet, dass es das Hinzufügen von Wellpappepulver und anderen Wellpappepartikeln zu den Wellpappeschnitzeln
und von Bindemittel in dem genannten Schritt des Mischens und Agglomerierens umfasst.
4. Verfahren nach den Ansprüchen 1, 2 oder 3, dadurch gekennzeichnet, dass das genannte Bindemittel mindestens ein haftendes Produkt und eine Lösungsmittel-Flüssigkeit
umfasst.
5. Verfahren nach den Ansprüchen 1 oder 2, dadurch gekennzeichnet, dass mindestens 50 Gew.-% der Wellpappeschnitzel in dem Agglomerat eine maximale Größe
von ca. 3 x 3 cm aufweist, und 5% bis 10 Gew.-% der Wellpappeschnitzel in dem Agglomerat
eine maximale Abmessung von 3 bis 30 cm aufweisen.
6. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass es das Verdichten des Agglomerats in einer Form bis die verdichteten Blöcke erhalten
werden umfasst, welche, wenn sie trocken sind, leichte Blöcke ergeben werden, oder
in einer Strangpresse bis verdichtete Profile erhalten werden, welche, wenn sie trocken
sind, leichte Profile ergeben werden.
7. Verfahren nach Anspruch 6, dadurch gekennzeichnet, dass es den zusätzlichen Schritt der Bearbeitung der genannten leichten Blöcke oder leichten
Profile umfasst.
8. Anlage zur Ausführung eines Verfahrens zur Herstellung von leichten Blöcken oder Profilen,
umfassend:
mindestens einen Mischer (80) versehen mit Mitteln für das Mischen und Agglomerieren
von Wellpappeschnitzeln mit einer vorgegebenen maximalen Größe mit einem Bindemittel
bis ein isotropes Agglomerat gebildet wird, und
Mitteln für das Regulieren des Feuchtigkeitsgrads in dem genannten isotropen Agglomerat,
um die mechanische Festigkeit des Papiers, aus welchem die Wellpappe besteht, nicht
zu zerstören;
mindestens einen Verdichter (90, 91) versehen mit Mitteln für das Verdichten des genannten
isotropen Agglomerats unter Anwendung eines Verdichtungsdrucks,
und Mitteln für das Regulieren des genannten Verdichtungsdrucks, um die Wellen in
der inneren Struktur der Wellpappe nicht zu zerdrücken, bis verdichtete Blöcke oder
Profile gebildet werden; und
mindestens einen Trocknungsofen (100) versehen mit Mitteln für die Anwendung von Hitze
auf die genannten verdichteten Blöcke oder Profile bis sie trocken werden, wobei dadurch
leichte Blöcke oder Profile erhalten werden.
9. Anlage nach Anspruch 8, dadurch gekennzeichnet, dass sie zusätzlich mindestens eine Zerkleinerungseinrichtung (70) umfasst, versehen mit
Mitteln für das Zerkleinern von Wellpappeschnitzeln bis sie bis zu der genannten vorgegebenen
maximalen Größe geschnitten werden, bevor sie dem genannten Mischer (80) zugeführt
werden.
10. Anlage nach Anspruch 9, dadurch gekennzeichnet, dass sie zusätzlich mindestens ein Rüttelbett umfasst, versehen mit Mitteln für die Trennung
von Wellpappeschnitzeln nach deren Gewicht.
11. Anlage nach Anspruch 8, dadurch gekennzeichnet, dass der genannte Verdichter (90, 91) aus einer Strangpresse (90) versehen mit einer Düse
um durchgehende oder lange verdichtete Profile zu bilden und einem Formverdichter
(91) versehen mit einer Form um gesonderte verdichtete Blöcke zu bilden, ausgewählt
wird.
12. Produkt erhalten aus Wellpappeschnitzeln, umfassend mindestens einen Körper, welcher
aus einem isotropen Agglomerat aus Wellpappeschnitzeln mit einer vorgegebenen maximalen
Größe, die durch ein haftendes Produkt aneinander gefügt sind, gebildet ist, wobei
die genannten Wellpappeschnitzel in dem genannten isotropen Agglomerat eine innere
Struktur aufweisen, versehen mit Wellen, welche aus mindestens einem gewellten Papierbogen
gebildet ist.
13. Produkt nach Anspruch 12, dadurch gekennzeichnet, dass der genannte Körper eine oder mehrere geformten Oberflächen aufweist.
14. Produkt nach Anspruch 12, dadurch gekennzeichnet, dass der genannte Körper die Gestalt eines Profils mit konstantem Querschnitt aufweist.
15. Produkt nach einem der Ansprüche 12 bis 14, dadurch gekennzeichnet, dass der genannte Körper eine oder mehrere bearbeitete Oberflächen aufweist, welche eine
komplexe Ausbildung bereitstellen.
1. Une méthode pour la fabrication de blocs ou de profils légers comportant les étapes
suivantes:
mélanger et agglomérer des bouts de carton ondulé ayant une taille maximale prédéterminée
au moyen d'un agent liant jusqu'à former un aggloméré isotrope et contrôler le degré
d'humidité de cet aggloméré isotrope afin de ne pas détruire la résistance mécanique
du papier dont le carton ondulé est fait;
compacter cet aggloméré jusqu'à former des blocks ou profils compactés en appliquant
une pression de compactage contrôlée de sorte à ne pas écraser les cannelures de la
structure interne du carton ondulé; et
sécher ces blocks ou profils compactés en appliquant de la chaleur jusqu'à obtenir
des blocs ou profils légers.
2. La méthode conformément à la revendication 1, caractérisée en ce qu'elle comporte l'étape de déchiquetage des bouts de carton ondulé jusqu'à les réduire
à cette taille maximale prédéterminée avant ladite étape de mélange et d'agglomération.
3. La méthode conformément à la revendication 1 ou 2, caractérisée en ce qu'elle comporte l'addition de poudre de carton ondulé et autres particules de carton
ondulé aux bouts de carton ondulé et l'agent liant dans cette étape de mélange et
d'agglomération.
4. La méthode conformément à la revendication 1, 2 ou 3 caractérisée en ce que cet agent liant comporte au moins un produit adhésif et un liquide solvant.
5. La méthode conformément à la revendication 1 ou 2, caractérisée en ce qu'au moins 50% du poids des bouts de carton ondulé de l'aggloméré ont une taille maximale
d'aux alentours de 3 x 3 cm, et 5% à 10% du poids des bouts de carton ondulé de l'aggloméré
ont une taille maximale de 3 à 30 cm.
6. La méthode conformément à une quelconque des revendications précédentes, caractérisée en ce qu'elle comporte le compactage de l'aggloméré dans un moule jusqu'à obtenir des blocs
compactés qui, une fois sec, deviendront des blocs légers ou dans une extrudeuse jusqu'à
obtenir des profils compactés qui, une fois secs, deviendront des profils légers.
7. La méthode conformément à la revendication 6, caractérisée en ce qu'elle comporte l'étape complémentaire d'usinage de ces blocs légers ou profils légers.
8. Une installation pour la mise en oeuvre d'une méthode pour fabriquer des blocs ou
de profils légers comportant:
au moins un malaxeur (80) pourvu de moyens pour mélanger et agglomérer des bouts de
carton ondulé ayant une taille maximale prédéterminée avec un agent liant jusqu'à
former un aggloméré isotrope et des moyens pour contrôler le degré d'humidité de cet
aggloméré isotrope afin de ne pas détruire la résistance mécanique du papier dont
est fait le carton ondulé;
au moins un compacteur (90, 91) pourvu de moyens pour compacter cet aggloméré isotrope
en appliquant une pression de compactage et des moyens pour contrôler cette pression
de compactage de sorte à ne pas écraser les cannelures de la structure intérieure
du carton ondulé jusqu'à ce que des blocs ou des profils compactés sont formés; et
au moins un four de séchage (100) pourvu de moyens pour appliquer de la chaleur à
ces blocs ou profils compactés jusqu'à les sécher, en obtenant ainsi des blocs ou
profils légers.
9. L'installation conformément à la revendication 8, caractérisée en ce qu'elle comprend en plus, au moins une déchiqueteuse (70) pourvue de moyens pour déchiqueter
les bouts de carton ondulé jusqu'à les réduire à cette taille maximale prédéterminée
avant d'en alimenter ce malaxeur (80).
10. L'installation conformément à la revendication 9 caractérisée en ce qu'elle comporte au moins un lit vibrant pourvu de moyens pour séparer les bouts de carton
ondulé selon leur poids.
11. L'installation conformément à la revendication 8 caractérisée en ce que ce compacteur (90, 91) est sélectionné entre une extrudeuse (90) pourvue d'une matrice
pour former des profils compactés continus ou longs et un compacteur à moule (91)
pourvu d'un moule pour former des blocs compactés séparés.
12. Un produit obtenu de bouts de carton ondulé comportant au moins un corps formé par
un aggloméré isotrope de bouts de carton ondulé ayant une taille prédéterminée, unis
les uns aux autres au moyen d'un produit adhésif, dans lequel ces bouts de carton
ondulé de cet aggloméré isotrope possèdent une structure interne pourvue de cannelures
formées par au moins une feuille en papier ondulé.
13. Le produit conformément à la revendication 12, caractérisé en ce que ce corps possède une ou plusieurs surfaces moulées.
14. Le produit conformément à la revendication 12, caractérisé en ce que ce corps a la forme d'un profil ayant une coupe transversale constante.
15. Le produit conformément à une quelconque des revendications 12 à 14, caractérisé en ce que ce corps possède une ou plusieurs surfaces usinées offrant une configuration complexe.