The technique of additive processes or additive manufacturing, also designated by stereolithography, generally comprises the following steps in order to obtain ceramic green pieces:
Then, in order to obtain the finished piece, the green piece is cleaned in order to remove the non-cured composition; the cleaned green piece is debinded; and the cleaned and debinded green piece is sintered in order to obtain the finished piece.
The same operations are performed in the case of a metallic material.
The manufacturing of green pieces made of a ceramic material or a metallic material having particular shapes may present difficulties.
(1) Currently, once they are built, the pieces are located within a non-cured paste block, which requires to search for the solid piece which is located within a sticky paste, and then to wash the piece, for example, by spraying it with a chemical product in order to remove this sticky paste.
(2) The pieces to be built may have at least one cantilevered part which should be supported during its building. Reference can be made to
(3) The pieces to be manufactured may have passages p of three-dimensional geometry, as it is the case for the piece P of
The Applicant Company searched for a solution to these problems and found that the building of the piece inside a shell or hull made of a sacrificial material—which is constituted only by the organic part of a ceramic or metallic photocurable composition, allows :
Furthermore, the invention offers the complementary advantage that the amount of material to be used for the shell or hull can be optimized by providing the proper amount, without excess.
Thus, the present invention first relates to a method for manufacturing at least one piece made of at least one material selected from the ceramic materials and the metallic materials using the technique of additive manufacturing, said one or more pieces being formed in the green state, and then subjected to debinding and sintering operations, said method comprising the following steps:
characterized by the fact that it comprises the following steps:
The ceramic materials are the powdered sinterable ceramic materials selected in particular from alumina (Al2O3), zirconia (ZrO2), zirconia-reinforced alumina, alumina-reinforced zirconia, zircon (ZrSiO4), silica (SiO2), hydroxyapatite, silica zircon (ZrSiO4+SiO2), silicon nitride, tricalcium phosphate (TCP), aluminum nitride, silicon carbide, cordierite and mullite.
The metallic materials are the powdered sinterable metallic materials selected in particular from pure metals, such as Al, Cu, Mg, Si, Ti, Zn, Sn, Ni . . . , their alloys, and the mixtures of pure metals and alloys thereof.
The recesses can have to be formed in the entire thickness of a cured layer of SOM or with a height lower than the height of a layer. They also can have to be formed with a height higher than the thickness of a layer, for example, with a height equal to the height of several layers being previously spread.
When the one or more pieces to be manufactured comprise hollow parts, the latter should lead to the outer surface of the piece so that the SOM can be released during the debinding.
The method according to the invention can be applied to the manufacturing of several identical pieces, which will be trapped in a same block of SOM.
A pasty SOM can be used, which is spread in a layer by scraping, or a suspended SOM can be used, which is applied by dipping the tray in a bath of said suspension in order to form, each time, the layer of SOM to be cured, and scraping the layer thus formed.
In the case where the piece(s) to be manufactured comprise(s) at least one lateral part which should be supported during the building, advantageously a computer model of the shape of the SOM in cured state was built beforehand, by computer-aided design, this shape being such that the manufactured piece(s) is (are) supported during their building.
In order to form the recess(es), a mechanical machining can be performed. A laser machining can also be performed, in particular under the conditions of setting the laser power between 1 and 3 watts and the laser displacement speed between 1 and 100 millimeters per second.
Also, at each machining step, it is possible to blow and suck the debris, particularly at the same time as said machining is conducted.
The CPC or MPC can be applied within the one or more recesses by a dispensing nozzle.
The curing by laser irradiation of each layer of SOM and the curing by laser irradiation of the layers of CPC or MPC located within the recesses under the conditions of setting the laser power between 70 and 700 milliwatts and a laser displacement speed between 1,000 and 6,000 millimeters per second, can be conducted.
The debinding can be conducted at a temperature between 50 and 800° C., especially between 100 and 700° C.
The present invention also relates to a machine for manufacturing at least one piece made of at least one material selected from the ceramic materials and the metallic materials by the method using the technique of additive manufacturing such as defined above, characterized in that it comprises:
Such a machine, able to apply into layers a SOM under the form of a paste, can comprise a gantry having at least one scraping blade and being able to move on the frame above the working surface such that the free edge of the scraping blade(s) is able to spread the layers of SOM paste on the working surface, or the SOM being supplied by at least one dispensing nozzle movable in front of at least one scraping blade which spreads the SOM into an uniform layer when passing thereon.
Such a machine, able to apply into layers a SOM under the form of a suspension, can comprise a tank to be filled with said suspension, in which the working tray is able to be lowered step by step in order to form thereon, at each step, a layer to be irradiated, as well as a recoater in order to ensure that the suspension is dispensed on the entire surface to be irradiated.
The means for supplying at least one CPC or MPC on the working surface can be constituted by at least one dispensing nozzle movable above a corresponding recess in order to apply the corresponding composition therein.
According to a first embodiment, the or at least one of the nozzles can be supplied with SOM or CPC or MPC by a hose connected to a tank, in particular a piston supply tank.
According to a second embodiment, the or at least one of the nozzles can be supplied with SOM or CPC or MPC by a cartridge which forms the upper part of it, which contains a stock of SOM or CPC or MPC and which is refillable from a supply tank that can be mounted on the machine, or which when empty is replaceable by a full cartridge, wherein this replacement can be ensured by a robotic arm.
The or at least one of the nozzles can be movably mounted
In order to better illustrate the subject-matter of the present invention, a particular embodiment of it will be described below, for indicative and non-limiting purposes, with reference to the appended drawings.
In the drawings:
When referring to
When referring to
The scraping device 2, slidably mounted on the frame 4 of the machine, comprises a gantry 5 carrying, at the front part thereof, a scraping blade 6 having a horizontal scraping edge and which moves forwards when referring to
The front vertical wall of the gantry 5 has a horizontal slide 7 along which two nozzles 8, 9 can move along the horizontal axis y, perpendicular to the axis x, one (8) for depositing a photocurable sacrificial organic material and the other (9) for depositing a ceramic photocurable composition.
In
A layer of sacrificial organic material 11 is deposited on the working surface of the working tray 3 by moving the scraping device 2 along the axis x and the nozzle 8 along the axis y.
By forward movement, the scraping device 2 has leveled the layer of sacrificial organic material 11 by moving the blade 6.
The scraping device 2 has been returned to the initial position thereof and raised.
The layer 11 thus deposited is caused to polymerize by applying the laser beam, the galvanometric head 10 being in use.
A laser machining of the cured layer 11 is performed in order to form therein a recess 12, this laser machining operation being performed by blowing and sucking the debris together with lasing.
Using the second nozzle 9, a photocurable ceramic composition 13 has been deposited within the recess, which composition is polymerized by applying the laser beam (the galvanometric head 10 being in use).
The formation of a cured layer of sacrificial organic material and ceramic material has been described, both being photocured.
The piece being searched is built layer after layer of photocured sacrificial organic material, the recesses intended to be filled with photocurable ceramic material being drilled in at least one layer of previously-cured sacrificial organic material, the depths of the recesses and the locations thereof on the layers of sacrificial organic material being selected in order to ensure the formation of the ceramic piece being searched.
Number | Date | Country | Kind |
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1770870 | Aug 2017 | FR | national |
This application is a divisional of U.S. application Ser. No. 15/999,028 filed Aug. 20, 2018 which claims priority to FR Application No. 1770870 filed Aug. 18, 2017. Each of the previously noted applications is hereby incorporated by reference in their entirety. The present invention relates to a method and a machine for producing green pieces made of at least one material selected from the ceramic materials and the metallic materials using the technique of additive processes, said green pieces being then subjected to debinding and sintering operations in order to obtain finished pieces.
Number | Date | Country | |
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Parent | 15999028 | Aug 2018 | US |
Child | 17444695 | US |