The invention relates to a method for layerwise production of a tangible object according to the preamble of claim 1. The invention also relates to a system for layerwise production of a tangible object.
Such a method is known. For example it is known from DE10256672A1 that the liquid reservoir has a transparent bottom plate whose upper side has a separation layer. In the space above the bottom plate there is a carrier plate which can be moved up and down. During its movement, the carrier plate can reach positions ranging from under the liquid level to above it. A firstly formed solid layer of the tangible object is adhered to the underside of the carrier plate by selectively solidifying the liquid. Consecutively formed solid layers are each adhered to a previously formed solid layer, respectively.
Each time after solidification of a new layer, the carrier plate together with the earlier solidified layers adhered thereon are moved upwards in order to separate the last formed solid layer from the separation layer of the bottom plate. Each time after such separation, the separated solid layer is moved to a predetermined position at a distance from the separation layer of the bottom plate for letting the liquid flow-in between the separated solid layer and the separation layer of the bottom plate. By solidifying a predetermined area of a layer containing the flown-in liquid, a successive solid layer of the tangible object is obtained.
A drawback of the known method is, that during each method cycle the time required for said separation and for the liquid to flow-in between the separated solid layer and the separation layer of the bottom plate is relatively long. This restricts the speed of the production process.
Note that this restriction in production speed is especially severe for objects having strongly varying cross-sections. This is explained as follows. The upward separation movement of the carrier plate requires an external force to be exerted on the carrier plate. This external force results in an increase of internal stresses in the tangible object being produced. If these stresses become too high, the object can deform, deteriorate or break. Hence, for the known method, the maximum permissible internal stress level in the tangible object restricts the maximum permissible level of external forces to be applied, and hence restricts the production speed. Since vertical tensile stresses in objects with varying cross-sections can become locally very high, the restriction in production speed is especially severe for such objects.
It is an object of the invention to enable a faster production of a tangible object.
Therefore, according to a first aspect of the invention, a method according to claim 1 is provided.
In this method according to the first aspect of the invention, for at least one of said method cycles, said solidifying and said separating are carried out such that solidifying of certain parts of the layer takes place simultaneously with separating of other, already solidified parts of the layer. Favourable effects of such simultaneous solidifying and separating are elucidated as follows.
At first, the simultaneous solidifying and separating provides a speed gain of the process in itself. That is, the start of separating a layer does not have to wait until all parts of the layer have been solidified. Hence, there is little or no downtime of the separating means. Also, there is little or no downtime of the solidifying means.
Secondly, the separating of the layer is carried out more gradually in that it is performed part by part, instead of the whole layer at once. This means that, as compared to known methods, external forces to be exerted for the separation movement, and therefore the internal stresses in the tangible object, do not need to be that high anymore for a given separation speed. In fact, such external forces can be increased relative to known methods, without violating a maximum permissible internal stress level in the tangible object. In this respect, a further gain in production speed can be obtained.
Furthermore, according to a second aspect of the invention, a system according to claim 9 is provided.
Specific embodiments of the invention are set forth in the dependent claims.
These and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter.
Further details, aspects and embodiments of the invention will be described, by way of example only, with reference to the drawings.
Each of the examples of
Hence, each of the examples of
a liquid reservoir for containing a liquid therein;
a construction shape for being in contact with the liquid in the liquid reservoir;
solidifying means for solidifying a predetermined area of a layer of the liquid, said liquid layer adjoining the construction shape, so as to obtain a solid layer of the tangible object, the solid layer thus having a predetermined shape;
separating means for separating said solid layer from said construction shape;
moving means for moving, relative to one another, the separated solid layer and the construction shape to a predetermined position relative to one another for similar solidifying a predetermined area of a successive such liquid layer containing liquid flown-in between the separated solid layer and the construction shape, so as to obtain a successive such solid layer adhered to the solid layer;
wherein the system is arranged for carrying out said solidifying and said separating such that solidifying of certain parts of the layer takes place simultaneously with separating of other, already solidified parts of the layer.
In each of the examples of
In each of the examples of
In each of the examples of
Such application of such flexible layer can easily and effectively be incorporated in many different methods and systems for layerwise production of tangible objects.
Furthermore, in each of the examples of
Such application of such guiding means is an easy and effective way of carrying out the bending of the flexible layer.
In the example of
Such sliding contact allows for a large area of said pressing contact, which is for example favourable for keeping the time-dependently varying contacting parts of the liquid contacting side of the flexible layer flat in conditions when the liquid in the reservoir would exert relatively large pressure on these contacting parts.
In the examples of
Such rolling contact reduces the wear of the flexible layer.
In the example of
This allows for a compact way of realizing the construction shape with rolling guiding means.
In the example of
This allows for an alternative way of realizing the construction shape with rolling guiding means.
In the examples of
Reference is now made to
The system 1 comprises a liquid reservoir 2 which, in the shown example, is filled with a liquid 3 upto a liquid level 4. The system 1 further comprises a construction shape 6 which is positioned below the liquid level 4 in the liquid reservoir 2. In the shown example the reservoir 2 comprises a bottom platform 7 and the construction shape 6 comprises, located above platform 7, a flexible layer 8.
The system 1 further comprises solidifying means 9 for solidifying a predetermined area of a layer 10 of the liquid 3, said liquid layer 10 adjoining the construction shape 6, so as to obtain a solid layer 14 of the tangible object 5, the solid layer thus having a predetermined shape.
In the shown example, the solidifying means 9 is situated below the bottom platform 7. To enable the light or other radiation 15 of the solidifying means 9 to enter the liquid reservoir 2, the bottom platform 7 and the flexible layer 8 of the construction shape 6 are transparent to the radiation 15.
As will be explained somewhat further below, the system 1 further comprises separating means for separating said solid layer 14 from said construction shape 6.
The system 1 further comprises moving means for moving, relative to one another, the separated solid layer 14 and the construction shape 6 to a predetermined position relative to one another for similar solidifying a predetermined area of a successive such liquid layer containing liquid 3 flown-inbetween the separated solid layer 14 and the construction shape 6, so as to obtain a successive such solid layer adhered to the solid layer 14.
In the shown example, the moving means comprises a carrier plate 20 located above the construction shape 6. As indicated by double-arrow 25 in
Each time after solidification and separation of a new layer, the carrier plate together with the solidified layers adhered thereon are moved upwards. Hence, the method for layerwise production of a tangible object is a cyclic method, wherein the described steps of solidifying, separating and positioning together are comprised in a single cycle of the method.
The system is arranged for carrying out said solidifying and said separating such that solidifying of certain parts of the layer takes place simultaneously with separating of other, already solidified parts of the layer. This is explained as follows.
The separating means for separating said layer 14 from said construction shape 6 simultaneously with the solidifying of a predetermined area of the layer 14 is explained as follows.
The flexible layer 8 has a liquid contacting side for being in contact with the liquid 3. Inbetween the flexible layer 8 on the one hand and the bottom platform 7 on the other hand, there is situated a guiding means 81 of the construction shape 6. Upper parts in
In the shown example, the platform 7 is transparent to the radiation 15, while the guiding means 81 contains a passageway for the radiation 15. Alternatively, the guiding means 81 can also be transparent to the radiation 15 instead of having a passageway therefor.
As an example it is now assumed that, in the course of time during the performing of a method cycle, the guiding means 81 and the solidifying means 9 are synchronously moving in the right-hand direction of arrow 73 in
Reference is now made to
A difference with the embodiment of
In the examples of
A further difference with the embodiment of
A difference between the examples of
For the embodiments of
Note, that in the example of
Reference is now made to
The solidification that the solid layer 214 has undergone, has been carried out by moving the object 5 relative to the construction shape 206 in a kind of rotative manner indicated by double arrow 275. To further illustrate this,
For this embodiment, the application of the said nonmatching shapes results in improved separation, since the liquid 3 will quickly fill up the expanding interspace between the solid layer 214 and the construction shape 206.
Reference is now made to
The solidification that the solid layer 314 has undergone, has been carried out by moving the construction shape 306 relative to the object 5 in a kind of rotative manner indicated by double arrow 375. To further illustrate this,
Again, also for this embodiment, the application of the said nonmatching shapes results in improved separation, since the liquid 3 will quickly fill up the expanding interspace between the solid layer 314 and the construction shape 306.
In the foregoing specification, the invention has been described with reference to specific examples of embodiments of the invention. It will, however, be evident that various modifications and changes may be made therein without departing from the broader spirit and scope of the invention as set forth in the appended claims. For example, the liquid reservoir may be higher or lower than shown in the
In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. The word ‘comprising’ does not exclude the presence of other elements or steps than those listed in a claim. Furthermore, the words ‘a’ and ‘an’ shall not be construed as limited to ‘only one’, but instead are used to mean ‘at least one’, and do not exclude a plurality. The mere fact that certain measures are recited in mutually different claims does not indicate that a combination of these measures cannot be used to advantage.
Number | Date | Country | Kind |
---|---|---|---|
06076434.7 | Jul 2006 | EP | regional |
Number | Date | Country | |
---|---|---|---|
Parent | 12374165 | Oct 2009 | US |
Child | 14083136 | US |