The invention relates to an additive manufacturing device and, in particular, a printer bed, arranged to receive a manufactured part created by such a device.
Existing additive manufacturing devices, such as a stereolithographic additive manufacturing device as disclosed in WO 2015/072921, the contents of which are incorporated herein by reference, allow large objects to be printed at high speeds using additive manufacturing processes. In many additive manufacturing processes including, but not limited to, Stereo-lithography (SLA) and Masked Stereolithography (MSLA) processes, the manufactured part is deposited to a platform of a printer bed. After the additive process is completed, it is necessary to remove the part from the platform, before it can be processed further or immediately used. The removal process of part(s) from the platform is often difficult and labour intensive because of the considerable adhesion forces bonding the part to the platform. Depending on the geometry of the printed parts, the removal process may even damage the parts, for instance, thin member parts cracking or big parts permanently deformed and remain out of shape.
In a first aspect, the invention provides an additive manufacturing device arranged to produce a part, comprising: a printer bed; a platform engaged to said printer bed, said platform arranged to receive the part on a surface of said platform; wherein said platform is arranged to at least partially disengage from said printer bed.
Accordingly, by having a platform that is at least partially separable and then providing a means of delaminating the part from the platform, the stress concentration established by the delamination allows the part to be readily removed without causing damage to the part through an excessive application of shear force to the part.
In one embodiment, the means of delamination may include deforming the platform to promote the stress concentration. In an alternative embodiment, the platform may be a single use item. In a further embodiment, the single use platform may be frangible so as to permit the platform to be fractured so as to break the platform away from the part. In a different embodiment, the printer bed may be of a highly differing coefficient of thermal expansion such that it expands/contract much more than the printed part, thus removing the part easily.
It will be convenient to further describe the present invention with respect to the accompanying drawings that illustrate possible arrangements of the invention. Other arrangements of the invention are possible and consequently, the particularity of the accompanying drawings is not to be understood as superseding the generality of the preceding description of the invention.
As mentioned, the invention seeks to solve the problem of a manufactured part(s) adhering to a platform(s) upon which the part(s) is/are produced. By having the platform(s) at least partially separable from the printer bed different techniques may be used to separate the part(s) from the platform(s), which may not be readily available as compared to the platform(s) being a unitary surface of the printer bed.
As mentioned, in one embodiment, the platform(s) may be delaminated from the part permitting the operator to secure the separated part without having to apply a shear force to the part in order to achieve separation.
To outline the underlying method of the invention, the reader's attention is drawn to
The alternative process, once the platform is removed from the printer bed, depends upon the nature of the platform itself. At step 160 the platform may be naturally planar, however for the process of 175 the platform includes a camber. On release from the printer bed, the platform adopts its natural curvature, immediately leading to the development of a stress concentration between the part and the platform. The stress concentration then assists in the delamination of the part from the platform. For the planar platform, applying the curvature to the platform may be achieved in several ways including applying axial loads to the platform so as to buckle the platform. Alternatively, a curvature may be applied to the platform such as placing the platform on a curved template, and hold the platform in place as the part is delaminated. A further alternative shown in
In this embodiment, the printer bed includes an ejector pin 225 which pushes the partially separable platform 210 upwards. It will be appreciated that the method shown in
With reference to the various methods of engaging a fully separable platform with the printer bed and its subsequent removal, we turn to
In
It will be appreciated that initiation of the separation could be achieved in a number of different ways including a ridge or projection in the platform or the printer bed 20 preventing complete engagement between the platform and printer bed, and so providing an available point to initiate the separation. For instance, the tabs may be replaced by projections or other convenient means to grip the platform.
The nature of the platform for the embodiments of
For
In a further alternative, the adhesive surface or layer may be subject to deterioration through heat or other means such as UV light, water solubility or other solvent (such as organic solvent but may also include different types of solvents made widely available). Preferably, the material of the part will be unreactive with the selected solvent. To this end, immersing the printer bed in hot water or applying a hot air jet or steam may be sufficient to break down the adhesive layer for removal of the platform. It follows that any application of heat, either as a hot bath, hot air or steam, must be balanced against preventing any damage to the part itself. It will be appreciated that several adhesives may be used for the embodiment that have deterioration or melting temperatures fractionally above ambient room temperature.
A quasi-adhesive/mechanical engagement may also be used, such as in the form of a hook-and-loop mechanism (such as Velcro™) could also be used as a reusable “adhesive”.
It will be appreciated that any of the embodiments directed to adhesive engagement may adopt either a surface application or a discrete layer on the surface. However, discrete adhesive points may also be useful, particularly around the periphery of the platform to aid in removal as compared to having to peel the platform directly from a more widely distributed layer.
A further alternative to the temperature dependent deterioration of the adhesive is the use of a binding agent such as hot melt or other means of bonding the platform to the printer bed. In this embodiment, the bonding agent may have a considerably higher rate of thermal expansion than the platform, and so delamination through differential expansion for relatively small changes in temperature may be sufficient to delaminate the part from the platform. Alternatively, it is also possible that the platform is able to expand and contract considerably more than the printed parts which stick to the platform. After the printing process is completed, the platform(s) is exposed to high temperature (for example, a hot water bath). The significant difference in the thermal expansion/contraction causes the printed parts to get removed from the platform. The opposite can also be applied, where the platform(s) is exposed to a low temperature, resulting in a similar outcome.
Before removal of the part 10 as shown in
Another embodiment of this method is to have the sliding joints similar as described above, and having it actuated sideways by pneumatic actuation or other means. When printing process is done and suction force is stopped, the sliding joints can be actuated, creating a flex to the platform. The parts will then drop from the platform.
Although particular embodiments have been described and illustrated herein, it will be appreciated by those of ordinary skill in the art that various modifications and combinations of features of the above embodiments are possible such as the removal of part(s) using the combination of pneumatic and magnetic methods. There is also a possibility that the platform can encompass the following characteristics such as shape variation, e.g. outlines (rectangular, square, circular, etc.), perforated vs. non-perforated, flat vs. naturally bent, etc, and/or having thickness variation, e.g. thin (such as 1 mm [0.04 in] or even less), or thick. The material of the platform(s) can also vary, e.g., hard and/or sturdy material such as spring steel or the like, flexible, stretchy, etc. The platform may also retain its flexibility and shape after many cycles or rounds of bending and/or stretching. The platform can feature various designs to achieve certain desired characteristic, e.g. unidirectional bending, uniform directional bending, etc.
Number | Date | Country | Kind |
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1708188.6 | May 2017 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/SG2018/050246 | 5/22/2018 | WO | 00 |