Method and device for layer-wise production of patterns
10099426 ยท 2018-10-16
Assignee
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/00
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/00
PERFORMING OPERATIONS; TRANSPORTING
B29K2105/251
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B22F12/60
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B29C64/153
PERFORMING OPERATIONS; TRANSPORTING
B29C64/165
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C67/08
PERFORMING OPERATIONS; TRANSPORTING
B29C64/153
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y70/00
PERFORMING OPERATIONS; TRANSPORTING
B29C67/00
PERFORMING OPERATIONS; TRANSPORTING
B22F3/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/165
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to apparatus, devices and methods for conveying particulate material during the manufacture of patterns in layers, wherein powder is conveyed out of a reservoir into a spreader unit having an ejection system.
Claims
1. An apparatus for the manufacture of a three-dimensional object in layers comprising i) a device for conveying a particulate material during the manufacture of the object in layers, wherein the devise comprises a) a reservoir, b) a spreader unit, c) a particulate material conveying component, and d) a build platform on which the object is built; wherein the particulate material conveying component conveys the particulate material from the reservoir to the spreader unit; the spreader unit is adapted for spreading the particulate material onto the build platform as a layer of the particulate material, and the device includes an ejection system for filling the spreader unit with the particulate material, the ejection system including a first component having a pattern of openings and a second component having the same pattern of openings, wherein the first component moves relative to the second component for shifting the patterns of openings between an aligned configuration and a sealed configuration.
2. An apparatus for the manufacture of a three-dimensional object in layers comprising: i) a device for conveying a particulate material during the manufacture of the object in layers, wherein the devise comprises a) a reservoir, b) a spreader unit, c) a particulate material conveying component, and d) a build platform on which the object is built; wherein the particulate material conveying component conveys the particulate material from the reservoir to the spreader unit; the spreader unit is adapted for spreading the particulate material onto the build platform and the device includes an ejection system for filling the spreader unit with the particulate material, the ejection system including a first component having a pattern of openings and a second component having the same pattern of openings, wherein the first component moves relative to the second component for shifting the patterns of openings between an aligned configuration and a sealed configuration; wherein the first component and the second component are tubes having spaced apart openings along a bottom length of the tubes.
3. The apparatus of claim 1, wherein the particulate material conveying component includes a screw conveyor.
4. The apparatus of claim 3, wherein the screw conveyor runs horizontally above the spreader unit.
5. The apparatus of claim 4, wherein the screw conveyor extends the length of the spreader unit.
6. The apparatus of claim 1, wherein the reservoir is arranged below the spreader unit in a vertical direction, at least during a filling process.
7. The apparatus of claim 1, wherein the apparatus includes a recirculation system for reintroducing particulate material back into the spreader after being ejected from the ejection system.
8. The apparatus according to claim 7, wherein provision is furthermore made for a junction for introducing new particulate material into the reservoir.
9. A method of constructing a three-dimensional article in layers with a device for conveying a particulate material during the manufacture of the article in layers, wherein the devise includes a reservoir, a spreader unit, a particulate material conveying component, and a build platform on which the object is built; the method comprising the following steps: conveying a particulate material from the reservoir to the spreader unit with the particulate material conveying component; filling the spreader unit with the particulate material using an ejection system; and spreading the particulate material onto the build platform as a layer of the particulate material with the spreader unit; wherein the ejection system includes a first component having a pattern of openings and a second component having the same pattern of openings, wherein the first component moves relative to the second component for shifting the patterns of openings between an aligned configuration and a sealed configuration.
10. The method of claim 9, wherein the particulate material conveying component includes a screw conveyor and the method includes moving the first and/or the second component of the ejection system for sealing a bottom of the ejection system; and rotating the screw conveyor for filling the spreader while the bottom of the ejection system is sealed.
11. The method of claim 9, wherein the method includes opening a bottom of the ejection system only after the particulate material is distributed throughout an entire length of the spreader.
12. The method of claim 9, wherein the first component and the second component are tubes having spaced apart openings along a bottom length of the tubes, and the method includes rotating one of the tubes for aligning the openings.
13. The apparatus of claim 1, wherein the pattern of openings includes a plurality of openings.
14. The apparatus of claim 13, wherein gravity forces the particulate material through the plurality of openings.
15. The apparatus of claim 2, wherein the particulate material conveying component includes a screw conveyor.
16. The apparatus of claim 15, wherein the screw conveyor runs horizontally above the spreader unit and extends the length of the spreader unit.
17. The apparatus of claim 16, wherein the reservoir is arranged below the spreader unit in a vertical direction, at least during a filling process.
18. The apparatus of claim 17, wherein the apparatus includes a recirculation system for reintroducing particulate material back into the spreader after being ejected from the ejection system, wherein provision is furthermore made for a junction for introducing new particulate material into the reservoir.
19. The apparatus of claim 6, wherein the reservoir is arranged below the spreader unit in a vertical direction, at least during a filling process; and the apparatus includes a recirculation system for reintroducing particulate material back into the spreader after being ejected from the ejection system, wherein provision is furthermore made for a junction for introducing new particulate material into the reservoir.
Description
DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(12) According to the present invention, a closed conveying system thus refers to a system, in the case of which a conveying to the spreader device system takes place and from there also back into the reservoir, if applicable.
(13) According to a preferred embodiment of the present invention, the conveying of powder could take place via screw conveyors.
(14) Apart from this or in addition thereto, it would also be possible for the conveying of powder to take place via low pressure.
(15) A conveying via low pressure can be advantageous in particular when the conveying is to take place in a conveying system, which is closed off from the environment.
(16) In the case of the method according to the invention, it can furthermore be advantageous when the conveying of powder of the conveying circuit takes place via an individual conveying system. The different conveying systems must then possibly not be coordinated.
(17) However, it is also possible for the conveying of powder of the conveying circuit to take place via a plurality of conveying systems in the case of the method according to the invention.
(18) The conveying of the particulate material out of the reservoir into the spreader system and back to the reservoir can take place via all possible conceivable individual or a plurality of conveying methods in the case of a method according to the invention. In addition to screw conveyors and low pressure, this could be conveyor belts and/or conveyor cages, for example.
(19) According to the present invention, it can furthermore also be advantageous when the conveying of powder out of the reservoir into the spreader system takes place via an ejection system.
(20) Such an embodiment of the present invention has thus proven to be particularly advantageous, because an even filling can take place in the spreader system due to the use of the ejection device.
(21) According to a preferred embodiment, it can be advantageous in the case of the method according to the invention when the conveying circuit also conveys excess powder material back into the reservoir after the spreading process. If applicable, this excess particulate material from the coating method could also be cleaned before it is conveyed back to the reservoir. A conveying could thus take place through a screen, for example.
(22) The objective of the present invention is further solved by means of a device for conveying particulate material during manufacture of patterns in layers encompassing a reservoir, a spreader unit and a powder conveying system, wherein at least the reservoir and the spreader unit are contained in a closed conveying circuit.
(23) According to a preferred embodiment of the device according to the invention, provision is furthermore made for an ejection system. Such an ejection system can be suitable to attain a particularly even level distribution of the particulate material in the spreader system.
(24) It can be advantageous in particular with reference to the machine geometry when the reservoir in the case of the device according to the invention is arranged below the spreader unit in vertical direction, thus viewed in the direction at right angles to the coating direction, at least during a filling process.
(25) It can furthermore be advantageous for the device according to the invention when the powder conveying system encompasses at least one conveyor belt.
(26) In addition, it would also be possible, however, for the device as a powder conveying system to encompass screw conveyors and/or a suction device for the low pressure conveying.
(27) In the event that the device according to the invention encompasses an ejection system according to a preferred embodiment, it may be advantageous for the ejection system to encompass two covers comprising slits.
(28) In addition, it is also possible for the device to be provided in such a manner that the ejection system encompasses two tubes located within one another and comprising boreholes or slits, which are arranged so as to be offset.
(29) In the event a junction for introducing new powder material into the reservoir is provided according to the invention, the refilling of particulate material into the reservoir is possibly particularly simple and clean.
(30) To elaborate in more detail, the invention will be described in more detail below by means of preferred exemplary embodiments with reference to the drawing.
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(32) The method according to the invention and the device according to the invention are to be explained in the following in an exemplary manner for the use during the assembling of casting patterns in layers from particulate material, binding material and hardener in the case of a rapid-prototyping method.
(33) In the case of an assembling method of a component, which is described with reference to
(34) The selective application of hardener onto areas, which are to be hardened, then takes place between the set-up of the individual layers.
(35) At the onset of the coating process, the spreader system 4 is moved from a starting position across the workpiece platform. This is illustrated in
(36) The spreader system 4 now moves across the build platform 9 at a constant speed. It thereby releases particulate material 2 in precisely the correct quantity and creates thin layers 5 of the particulate material 2 on the build platform 9. This is shown in
(37) The spreader system 4 is subsequently moved back into the starting position and can be newly filled from a particulate reservoir 1 via a filling device by opening the ejection slider 3. This is shown in
(38) The filling of the spreader system 4 via a circuit system according to the invention is illustrated in
(39) As can be seen from the figure, the particulate material 2 is conveyed out of a reservoir 17, which is located below the level of the movement plane of the spreader device and below the machine table 8, via a first conveying system 12 to a level above the spreader device 4 for this purpose. This means that the reservoir is arranged below the spreader unit in vertical direction, thus viewed in the direction at right angles to the coating direction at least during a filling process.
(40) The particulate material according to the shown preferred embodiment is realized via a shiftable ejection system 15 via a further conveying system 13 (separately or part of the first system). Excess powder is guided back again into the reservoir or into the reservoir chamber 17, respectively, via a bypass system 16.
(41) In the case of the illustrated preferred embodiment of the invention, the component parts of the device, comprising conveying devices 12, 13, reservoir 17, ejection system 15, bypass 16 and spreader device 4 are arranged in a vertical plane parallel to the spreader device in response to the filling process. The advantage of this configuration lies in that excess powder or leakage can flow directly back into the reservoir.
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(43) As is shown in
(44) In the event that screw conveyors are used, it can be advantageous two separate systems 12, 13 are provided. A first screw conveyor takes over the transport of the powder to a level above the spreader device 4. Curved or beveled systems provide advantageous powder absorption from the reservoir 17, are particularly suitable. A second screw conveyor runs horizontally above the spreader device 4. It takes over the transport to the spreader device 4 and to the bypass 16.
(45) For filling, the spreader device 4 moves into a position below the filling system. The coating reservoir is thereby preferably embodied in a funnel-shaped manner. As is illustrated in
(46) An ejection system 15 according to the present invention can be operated in all conceivable manners. As an example, two different systems are to be described herein with reference to
(47) For example, an ejection device 15 can be opened according to a method, which is known from the state of the art, in response to a filled transport system and the available powder can thus be shaken off. The conveying device is thereby not active. In the case of this method, a defined powder quantity is refilled into the spreader device. This is illustrated in
(48) According to a preferred embodiment of the present invention, the spreader device can be filled in that the ejection device 15 is opened and the conveying system 12, 13 is activated. As is illustrated in
(49) An advantage of such a level filling is that, in connection with the circuit system, the filling can take place without a sensor. Due to the fact that a resupply can on principle take place without any disadvantages for any amount of time in the case of a completely filled spreader device, no particular actions must be taken to protect all involved aggregates. The fill level can be secured via a simple preselection of the filling period.
(50) A further advantage lies in the even filling across the length of the spreader device.
(51) In many cases, the fill level can change across the length during the building process due to uneven powder outflow out of the spreader device. An even refilling can be guaranteed in the case of each refilling by means of the level filling.
(52) According to a preferred embodiment of the invention shown in
(53) The embodiment of such a system can be as a rectangular tube, for example, wherein the underside encompasses a hole pattern. An additional displaceable disk comprising a hole pattern completes the system.
(54) An embodiment of the ejection system, in the case of which the described hole patterns are realized on two tubes 31, 32, which run into one another, is particularly preferred. Such an embodiment can be seen in
(55) A tube cover system comprising a screw conveyor 21 in the interior is furthermore particularly preferred. The above-described level filling can be realized in a particularly advantageous manner by means of such a system.
(56) The afore-described systems can be activated in different manners. According to a preferred embodiment, pneumatic electromagnetic and hydraulic actuators 33 are suitable. See
(57) In addition, provision can be made in the powder circuit for a connection for fresh powder. This is illustrated in
(58) The advantage as compared to the simple refilling into the reservoir 6 lies in the constructively possible lower dust exposure for the user.
(59) A system, in the case of which closed powder kegs 36 are placed onto a connecting spigot comprising a funnel tube 14 and supply the system with fresh powder is particularly preferred.
(60) As is illustrated in
(61) The method according to the invention thus uses a powder circuit for filling purposes, which makes it possible to fulfill the posed demands. Powder loss can be avoided by means of the embodiment of the powder conveyance in a circuit-like manner. A return of excess powder makes it possible to fill the spreader device carriage at high speed to an even level. A refilling device, which provides for a low-dust refilling, can be used at the circuit. On the one hand, this benefits the safety and the comfort of the user and, on the other hand, the explosion protection requirements.