Systems and methods for preventing oxygen inhibition of a light-initiated polymerization reaction in a 3D printing system using inert gas
11203154 · 2021-12-21
Assignee
Inventors
- Michael Zenou (Hashmonaim, IL)
- Ziv Gilan (Kfar-harif, IL)
- Daniel Liptz (Jerusalem, IL)
- Yuval Shai (Hashmonaim, IL)
Cpc classification
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B29C35/0805
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/10
PERFORMING OPERATIONS; TRANSPORTING
B29C59/04
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/371
PERFORMING OPERATIONS; TRANSPORTING
B29C35/0288
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C59/04
PERFORMING OPERATIONS; TRANSPORTING
B29C35/08
PERFORMING OPERATIONS; TRANSPORTING
B29C35/02
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Systems and methods that prevent oxygen inhibition of a light-initiated polymerization reaction by purging the oxygen from reaction surfaces using inert gas flow. In some embodiments, oxygen is purged using a gas diffusion system that introduces, via a diffuser, an inert gas into a workspace between a UV light source and a UV curable layer of a workpiece. The diffuser may be made of a transparent or diffuse material to allow UV light to pass through it, and includes an array of micro-holes for the gas to pass through towards the workpiece. The inert gas flow may be heated to maintain a desired and uniform reaction temperature.
Claims
1. A system for preventing oxygen inhibition of a light-initiated polymerization reaction at ambient conditions used by a three-dimensional (3D) printing system, said system comprising; an ultraviolet (UV) light source; a UV curing space for accepting a workpiece having a layer of UV curable material; means for purging oxygen from the UV curing space to facilitate, within the UV curing space, UV curing of the UV curable material at times when the UV light source emits UV light onto the layer of UV curable material, wherein the means for purging oxygen include a gas diffusion system for introducing an inert gas into a workspace between the UV light source and the layer of UV curable material of the workpiece; and a UV-transparent cover separating the UV light source and the workspace, wherein the gas diffusion system and the UV-transparent cover are arranged relative to one another so as to permit an inert gas flowing from one or more gas inlets of the gas diffusion system to flow out through a UV-transparent diffuser of the gas diffusion system towards the workspace, wherein the UV-transparent diffuser has a plurality of micro-holes, and wherein UV-transparent bridges of the gas diffusion system are arranged over said micro-holes so as to be positioned between respective entrances to the micro-holes and the UV-transparent cover.
2. The system of claim 1, further comprising a gas pressure homogenizer for ensuring a constant pressure throughout the system.
3. The system of claim 1, wherein the micro-holes are sized and spaced relative to one another so as to optimize a distribution of the inert gas and a distribution of the UV light throughout the workspace.
4. The system of claim 3, wherein the micro-holes are spaced relative to one another in an array so that the inert gas is approximately evenly distributed throughout the workspace and sized equally so that the UV light is approximately evenly distributed within the workspace.
5. The system of claim 1, wherein the micro-holes are spaced relative to one another in an array so that the gas is approximately evenly distributed throughout the workspace and the UV light is approximately evenly distributed within the workspace.
6. The system of claim 1, wherein the temperature of the inert gas is controlled to create a uniform reaction temperature.
7. A method for preventing oxygen inhibition of a light-initiated polymerization reaction at ambient conditions used by a three-dimensional (3D) printing system, said method comprising: periodically emitting an ultraviolet (UV) light from a UV light source into a UV curing space, in which a workpiece having a layer of UV curable photopolymer is disposed, to facilitate, within the UV curing space, UV curing of the UV curable photopolymer; and purging oxygen from the UV curing space at times when the UV light source emits the UV light onto the layer of UV curable photopolymer, wherein the purging of the oxygen from the UV curing space comprises introducing, via a gas diffusion system, an inert gas into a workspace between the UV light source and the layer of UV curable photopolymer of the workpiece, and wherein the inert gas is introduced via one or more gas inlets of the gas diffusion system and through a plurality of micro-holes of a UV-transparent diffuser of the gas diffusion system separating the UV light source and the workspace towards the workspace.
8. The method of claim 7, wherein the UV light from the UV light source is passed through UV-transparent bridges of the gas diffusion system arranged over said micro-holes of said UV-transparent diffuser towards the layer of UV curable photopolymer of the workpiece.
9. The method of claim 7, wherein the inert gas is approximately evenly distributed throughout the workspace via the micro-holes.
10. The method of claim 7, wherein the inert gas temperature is controlled to create a uniform reaction temperature.
11. The method of claim 7, wherein said inert gas is introduced with a pressure sufficient to purge oxygen from a region adjacent to the UV-transparent diffuser.
12. The method of claim 11, further comprising curing of the layer of UV curable material and after the layer of UV curable material has been cured, (i) repositioning the workpiece for deposition of a next layer of UV curable photopolymer and (ii) reducing a pressure of the inert gas in the region adjacent to the UV-transparent diffuser.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) Before describing the invention in detail, it is helpful to present an overview. Referring to the sequence of images shown in
(8) Embodiments of the invention provide systems and methods for preventing oxygen inhibition of a light-initiated polymerization reaction at ambient conditions. Referring now to
(9) The diffuser 30 is made of a transparent or diffuse material to allow UV light to pass through it onto a workpiece 34, and in particular onto a layer of UV curable material 36 disposed thereon. The diffuser 30 consists of an array of micro-holes 38. The small diameter of the micro holes allows for a closed-packed array thereof so that the gas is evenly distributed throughout the curing area 40. The small diameter of the micro-holes 38 also means that a larger area of the surface of the diffuser 30 is free of holes, making its optical properties more homogenous. This ensures more even light distribution. Of course, other arrangements and sizing of the micro-holes may be employed so as to optimize gas distribution and light distribution throughout the curing area. The micro-holes 38 are covered with “bridges” 42 of the material of which the diffuser is made. This ensures that all light passing through the diffuser must pass through some region of the transparent material. This further improves the light distribution.
(10) Referring now to
(11) In some embodiments, the temperature of the feed gas may be controlled (e.g., through heating provided prior to gas inlets 28 and/or within the gas diffusion system 22) to create a uniform reaction temperature in the vicinity of workpiece 34 (e.g., within a space within which curing of the layer of UV curable material 36 disposed on the surface of the workpiece 34 will take place). For example, the inert gas may be heated prior to its introduction into the gas diffusion system 22 so as to maintain a desired and uniform reaction temperature within the vicinity of the surface of workpiece 34 on which the layer of UV curable material 36 is disposed.
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(14) Returning to
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(16) Thus, systems that prevent oxygen inhibition of a light-initiated polymerization reactions by purging the oxygen from reaction surfaces using inert gas flow have been described.