The present disclosure relates to a stereolithography (SLA) device and, in particular, to a 3D printing device and a formation tank of the 3D printing device, wherein the formation tank has a release film.
Stereolithography (SLA) is a 3D printing technology in which light (in most cases, ultraviolet) is radiated to liquid photosensitive resin in a formation tank so as to solidify the photosensitive resin on a formation platform. A single layer is solidified each time during formation of a desired 3D object. By moving the formation platform, a layer of photosensitive resin can be filled between the platform or a semi-finished object and the bottom of the formation tank. Then, ultraviolet is radiated to the layer of photosensitive resin to solidify it. This process is repeated for each layer of the desired 3D object until the 3D object is completely formed.
After one layer of photosensitive resin is solidified, it is removed from the bottom of the formation tank by moving the formation platform. In order to attach a semi-finished object on the formation platform and to detach the semi-finished object from the bottom of the formation tank when the platform moves, a silicon film attached on the bottom of the formation tank is used to reduce an attaching force between the photosensitive resin and the bottom of the formation tank. However, the silicon film bears a pulling force each time the photosensitive resin is pulled away from the bottom of the formation tank. As a result, the silicon film is easily detached or damaged and thereby needs to be replaced.
In view of this, the inventor studied various technologies and created an effective solution in the present disclosure.
The present disclosure provides a formation tank having a release film and a 3D printing device having the formation tank.
The present disclosure provides a formation tank. The formation tank includes a tank body and a release film. The tank body includes a bottom plate and a tank wall. One face of the bottom plate is an inner bottom surface. At least one engagement structure is formed on the inner bottom surface, the tank wall protrudes from the inner bottom surface and surrounds a periphery of the bottom plate. The release film is attached onto the inner bottom surface and is engaged with the engagement structure.
In the formation tank, the engagement structure includes a hook portion, and the release film is engaged with the hook portion. A flow-directing conical hole communicating with the engagement structure is formed on the inner bottom surface of the bottom plate, and the release film is mortise-and-tenon connected to the engagement structure through the flow-directing conical hole. The engagement structure includes a protruding block which protrudes from the inner bottom surface and is engaged with the release film. The hook portion protrudes laterally from a side surface of the protruding block. The engagement structure includes a cavity recessed into the bottom plate from the inner bottom surface, and the release film is mortise-and-tenon connected to the cavity. The hook portion can protrude from an inner sidewall surface of the cavity. The cavity is an inverted conical hole. The other face of the bottom plate is an outer bottom surface opposite to the inner bottom surface, the cavity penetrates through the bottom plate, and an outer cover plate is disposed on the outer bottom surface to cover and close a bottom of the cavity. The engagement structure enables non-planar junction of the bottom plate and the release film.
A 3D printing device is provided in the present disclosure. The 3D printing device includes a tank body, a release film and a formation platform. The tank body includes a bottom plate and a tank wall. One face of the bottom plate is an inner bottom surface. At least one engagement structure is formed on the inner bottom surface. The tank wall protrudes from the inner bottom surface and surrounds a periphery of the bottom plate. The release film is attached onto the inner bottom surface. The release film is engaged with the engagement structure. The formation platform is suspended above the bottom plate and movable to ascend or descend with respect to the inner bottom surface.
In the 3D printing device, the engagement structure includes a hook portion, and the release film is engaged with the hook portion. A flow-directing conical hole communicating with the engagement structure is formed on the inner bottom surface of the bottom plate, and the release film is mortise-and-tenon connected to the engagement structure through the flow-directing conical hole. The engagement structure includes a protruding block which protrudes from the inner bottom surface and is engaged with the release film. The hook portion protrudes laterally from a side surface of the protruding block. The engagement structure includes a cavity recessed into the bottom plate from the inner bottom surface, and the release film is mortise-and-tenon connected to the cavity. The hook portion can protrude from an inner sidewall surface of the cavity. The cavity is an inverted conical hole. The other face of the bottom plate is an outer bottom surface opposite to the inner bottom surface, the cavity penetrates through the bottom plate, and an outer cover plate is disposed on the outer bottom surface to cover and close a bottom of the cavity. The engagement structure enables non-planar junction of the bottom plate and the release film.
In the 3D printing device and the formation tank thereof, the engagement structure in the bottom plate of the formation tank is used to improve an engagement force between the bottom plate and the release film. By this way, the release film is prevented from being detached when a solidified slice of a desired 3D object is pulled away from the release film.
The disclosure will become more fully understood from the detailed description and the drawings given herein below for illustration only, and thus does not limit the disclosure, wherein:
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The release film 200 is attached on the inner bottom surface 101 of the bottom plate 100 to reduce an attaching force between the solidified slice 32 and the bottom of the formation tank 10. The release film 200 is engaged with the engagement structure 110. In detail, the release film 200 is made of silicon. In fabrication of the release film 200, liquid silicon is filled into the tank body 11 to cover the inner bottom surface 101 of the bottom plate 100 with a layer of liquid silicon. After the layer of liquid silicon is solidified, the release film 200 is formed. In the present embodiment, the engagement structure 110 includes a cavity 103 recessed into the bottom plate 100 from the inner bottom surface 101, and the release film 200 is mortise-and-tenon connected to the cavity 103 and thereby engaged with the bottom plate 100. The engagement structure 110 includes a hook portion 111, and the release film 200 is engaged with the hook portion 111. In the present embodiment, the hook portion 111 protrudes from an inner sidewall surface of the cavity 103 to decrease a diameter of a middle section of the cavity 103. To be specific, after the liquid silicon is filled into the tank body 11, the liquid silicon covers the inner bottom surface 101 of the bottom plate 100 and is filled into the engagement structure 110 to cover the hook portion 111, and the release film 200 is then engaged with the hook portion 111 after the liquid silicon is solidified.
In the present embodiment, a flow-directing conical hole 120 is recessed into the bottom plate 100 from the inner bottom surface 101. In detail, the flow-directing conical hole 120 has a cone shape, tapering downward. A tip of the flow-directing conical hole 120 communicates with the cavity 103 of the engagement structure 110. When the liquid silicon is filled into the tank body 11, the flow-directing conical hole 120 can guide the liquid silicon to fill in the cavity 103 of the engagement structure 110 and to cover the hook portion 111. As a result, the solidified release film 200 is mortise-and-tenon connected to the engagement structure 110 through the flow-directing conical hole 120.
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It is to be understood that the above descriptions are merely the preferable embodiments of the present disclosure and are not intended to limit the scope of the present disclosure. Equivalent changes and modifications made in the spirit of the present disclosure are regarded as falling within the scope of the present disclosure.
Number | Date | Country | Kind |
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201810582473.5 | Jun 2018 | CN | national |