EXTRUSION PROCESS AND ASSOCIATED DEVICE
20190246684 ยท 2019-08-15
Inventors
Cpc classification
A23P20/20
HUMAN NECESSITIES
A47J27/002
HUMAN NECESSITIES
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
A23P2020/253
HUMAN NECESSITIES
International classification
Abstract
Process for the production of a three-dimensional item by extrusion of a string of dough, comprising a step of providing a viscoelastic food dough inside an extruder comprising a cylindrical tubular body and a piston, an extrusion step by advancing the piston inside the cylindrical tubular body, and a step of interrupting extrusion of the dough by stopping the advancing movement of said piston; a dispensing device comprising such a cylindrical tubular body and such a piston, as well as a printer for the production of an item printed by means of a 3D printing procedure comprising such an extruder, are also described.
Claims
1. A process for the production of a three-dimensional item by extrusion and deposition of a string of dough, comprising the following steps: a) providing an extruder comprising a cylindrical tubular body having a first end closed by a bottom having a nozzle and a second end, and a piston comprising a rod and a piston head that can be removably coupled to one another; b) feeding a viscoelastic food dough into said cylindrical tubular body; c) providing said piston inside the side wall of said cylindrical tubular body, said piston head being in contact with said side wall of said cylindrical tubular body and freely slidable inside said cylindrical tubular body, and said viscoelastic food dough being entirely contained between said piston head and said bottom; d) extruding said viscoelastic food dough by progressively advancing said rod and said piston head, said piston head being coupled with said rod and pushed by it, inside said cylindrical tubular body towards said bottom of the cylindrical tubular body along a sliding path, resulting in the supply at a preset speed of a continuous string of dough from said nozzle; e) interrupting the extrusion of said viscoelastic food dough by stopping the progress of said rod at a specific position along said sliding path and by immediate movement of said rod towards said second end, in order to decouple said rod from said piston head and let said piston head be pushed by said viscoelastic dough towards said second end of the cylindrical tubular body.
2. The process according to claim 1, wherein, during said step e) of interrupting the extrusion of said viscoelastic food dough, said rod is retracted towards said second end by a preset distance.
3. The process according to claim 1, wherein said step e) of interrupting the extrusion of said viscoelastic food dough is followed by an additional step of starting again the extrusion of said viscoelastic food dough, bringing said rod back into said specific position along said sliding path, thus restarting the supply of a continuous string of dough from said nozzle.
4. The process according to claim 1, wherein the progress of said rod inside said cylindrical tubular body towards said bottom and the movement of said rod towards said second end are controlled by means of a control system of the extruder.
5. The process according to claim 4, wherein, during said step e) of interrupting extrusion of said viscoelastic food dough, said specific position of said rod along said sliding path corresponds to a preset position previously saved by said control system of the extruder or said specific position of said rod along said sliding path is recorded by said control system of the extruder at the time when said rod is separated from said piston head.
6. The process according to claim 1, wherein said continuous string of dough, extruded during step d), undergoes a treatment of partial surface drying after deposition thereof.
7. The process according to claim 6, wherein said partial surface drying is carried out by application of a flow of air.
8. The process according to claim 7, wherein said flow of air is at a temperature of between 60 C. and 90 C.
9. The process according to claim 8, wherein said flow of air is at 80 C.
10. The process according to claim 1, wherein said viscoelastic food dough is a dough based on food meal.
11. The process according to claim 10, wherein said dough based on food meal is suitable for the production of pasta.
12. The process according to claim 1, for the production of a three-dimensional item printed by a 3D-printing procedure.
13. The process according to claim 12 for the production of pasta printed by a 3D-printing procedure.
14. An extruder comprising a cylindrical tubular body, having a first end closed by a bottom having a nozzle and a second end, and a piston, comprising a rod and a piston head, said rod and said piston being able to be removably coupled to one another, said piston being able to be inserted through said second end inside the side wall of said cylindrical tubular body, so that said piston head is in contact with said side wall of said cylindrical tubular body and is freely slidable inside said cylindrical tubular body.
15. The extruder according to claim 14, comprising coupling means for the removably coupling of said rod and said piston head,
16. The extruder according to claim 15, wherein said coupling means are engaging means, magnetic coupling means or electromagnetic coupling means.
17. The extruder according to claim 14, wherein said piston head further comprises a venting valve suitable to put in fluid communication between the space of the cylindrical tubular body, comprised between said piston head and said bottom, and the space of the cylindrical tubular body, comprised between said piston head and said second end, said venting valve working in open mode or closed mode.
18. A printer for the production of an item printed by means of a 3D-printing procedure, comprising an extruder according to claim 14.
19. The printer for the production of an item printed by means of a 3D-printing procedure according to claim 18, comprising a control system able to control the progress of said rod in said cylindrical tubular body towards said bottom and the movement of said rod towards said second end.
20. The printer for the production of an item printed by means of a 3D-printing procedure according to claim 19, comprising a load cell for measuring the force applied to said piston head, said load cell being connected to said control system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT
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[0071] The piston 10 is designed in such a way that the advancing movement of the rod 11 towards the first end 3 results in the piston head 12 also being pushed towards said first end 3, coupled with said first end 3, whereas the movement of the rod 11 towards the second end 4 does not cause the movement the piston head 12, since the rod 11 and the piston head 12 are not coupled to one another.
[0072] The nozzle 9 puts the space between the piston head 12 and the bottom 8 (storage reservoir 7) in fluid communication with the external environment.
[0073] In particular, the piston head 12 has an upper surface 12a and a lower surface 12b. The piston head 12 is designed to slide with a good sealing action along the side wall 2a of the cylindrical tubular body 2, substantially preventing any dough contained inside the storage reservoir 7 from spilling along the sliding surfaces, i.e. the side wall 2a of the cylindrical tubular body; for this purpose the piston head 12 can, if necessary, be provided with piston rings made of a suitable material (not shown since entirely conventional).
[0074] The piston head 12 is freely slidable inside the cylindrical tubular body 2; more precisely there is no physical constraint between the piston head 12 and the cylindrical tubular body 2; the piston head 12 can move easily in a passive manner as a result of the pressure applied on it by the overlying rod 11 and/or by the material contained in the underlying storage reservoir 7 of the cylindrical tubular body 2.
[0075] Still with reference to
[0076] At the same time,
[0077] In particular, once a viscoelastic food dough has been introduced inside the cylindrical tubular body 2 and once said piston 10 has been inserted inside the side wall 2a of the cylindrical tubular body 2 through the second end 4, so that the piston head 12 is in contact with the side wall 2a and the food dough is entirely contained between the piston head 12 and the bottom 8, an extrusion step is performed by means of a gradual advancing movement of the piston 10 inside the cylindrical tubular body 2, i.e. of the rod 11 coupled with the piston head 12, along a sliding path, which can be superimposed on an axis E in turn longitudinal with respect to the length of the cylindrical tubular body 2. During this step, the piston 10 is pushed (by an electric motor not shown since entirely conventional) from a rest position towards an end-stroke position, namely from the second end 4 of the cylindrical tubular body towards the first end 3.
[0078] The downwards movement of the piston 2, indicated by an arrow, causes gradual sliding of the piston head 12 (during this step in contact with the rod 11), which compresses, at a pressure P, the underlying viscoelastic dough towards the inner wall 2a of the cylindrical tubular body 2 and toward the bottom 8, causing the supply of a continuous strand of dough. From
[0079]
[0080] In particular,
[0081] As a result of the separation operation, the rod 11 and the piston head 12 are no longer coupled to one another; the piston head 12 is therefore free to slide inside the cylindrical tubular body 2.
[0082] The dough contained inside the storage reservoir 7, which is still under pressure, is able to expand freely upwards, pressing against the lower surface 12b of the piston head 12 which, since it is no longer constrained by the rod 11, is pushed towards the second end 4, sliding from the position h to the position k. The movement of the piston head 12 is indicated in
[0083] Since it is able to expand freely towards the second end 4, the residual dough of viscoelastic material is not expelled from the nozzle 9, when the extrusion of said viscoelastic food dough is interrupted by retracting of the rod 11.
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[0086] In particular, these magnetic coupling means comprise an electromagnet 13a, which is positioned inside the rod 11, and a magnetic plate 13b, which is positioned inside the piston head 12.