ADDITIVE MANUFACTURING APPARATUS WITH PURGED LIGHT ENGINE
20220266514 · 2022-08-25
Inventors
- Anant Chimmalgi (Los Altos, CA, US)
- Ariel M. Herrmann (San Francisco, CA)
- Jordan Christopher Fidler (Millbrae, CA, US)
- Sean Patrick Wheeler (San Jose, CA, US)
- Alexander Portnoy (Los Gatos, CA, US)
- Fabian Cheah (San Mateo, CA, US)
- Xinyu Gu (San Mateo, CA)
- Angelo Menotti (Union City, CA, US)
Cpc classification
B29C64/277
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/371
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An additive manufacturing apparatus (10) includes (a) a light polymerizable resin unit comprising a surface on which a light polymerizable resin can be supported; (b) a light engine (17) configured to illuminate a region of the light polymerizable resin unit; (c) a carrier platform on which an object can be produced; (d) a drive assembly operatively associated with the carrier platform for advancing said carrier platform (12) and said light polymerizable resin unit away from one another as said object is produced; (e) a purge chamber (300) surrounding at least a portion of said light engine (17); and (f) a purge gas in said purge chamber, or a purge gas supply operatively associated with said purge chamber (300).
Claims
1. An additive manufacturing apparatus, comprising: (a) a light polymerizable resin unit comprising a surface on which a light polymerizable resin can be supported; (b) a light engine configured to illuminate a region of the light polymerizable resin unit; (c) a carrier platform on which an object can be produced; (d) a drive assembly operatively associated with the carrier platform for advancing said carrier platform and said light polymerizable resin unit away from one another as said object is produced; (e) a purge chamber surrounding at least a portion of said light engine; and (f) a purge gas in said purge chamber, or a purge gas supply operatively associated with said purge chamber.
2. The additive manufacturing apparatus of claim 1, wherein said light engine comprises optical components configured to direct light from the light engine to the light polymerizable resin unit, said purge chamber surrounding at least some of said optical components.
3. The additive manufacturing apparatus of claim 2, wherein said optical components comprise a prism, and said purge chamber surrounds said prism.
4. The additive manufacturing apparatus of claim 3, wherein said optical components further comprise one or more micromirrors configured to direct light, and said purge chamber surrounds said one or more micromirrors.
5. The additive manufacturing apparatus of claim 4, wherein said purge chamber comprises a sealed chamber having an atmosphere of an inert gas.
6. The additive manufacturing apparatus of claim 4, wherein said purge chamber is operatively associated with said purge gas supply.
7. The additive manufacturing apparatus of claim 6, wherein said purge gas supply comprises a clean dry gas.
8. The additive manufacturing apparatus of claim 7, wherein said gas supply comprises a gas source and one or more filters configured to purify a gas from the gas source.
9. The additive manufacturing apparatus of claim 8, further comprising pneumatically actuated components, wherein said gas source is further configured to power said pneumatically actuated components in said additive manufacturing apparatus.
10. The additive manufacturing apparatus of claim 9, wherein said drive assembly comprises said pneumatically actuated components.
11. The additive manufacturing apparatus, claim 9 further comprising a manifold configured to direct a gas flow from said gas source to said pneumatically actuated components or said purge gas chamber or both said pneumatically actuated components and said purge gas chamber.
12. The additive manufacturing apparatus of claim 1, wherein said light polymerizable resin unit surface comprises a light transmissive window, said light engine being positioned below said light transmissive window, and said carrier platform being positioned above said light transmissive window.
Description
DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
DETAILED DESCRIPTION
[0018] The present invention is now described more fully hereinafter with reference to the accompanying drawings, in which embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather these embodiments are provided so that this disclosure will be thorough and complete and will fully convey the scope of the invention to those skilled in the art.
[0019] As used herein, the term “and/or” includes any and all possible combinations of one or more of the associated listed items, as well as the lack of combinations when interpreted in the alternative (“or”).
[0020] High speed additive manufacturing apparatus are known and include those that implement the family of methods sometimes referred to as as continuous liquid interface production (CLIP). CLIP is known and described in, for example, U.S. Pat. Nos. 9,211,678; 9,205,601; 9,216,546; and others; in J. Tumbleston et al., Continuous liquid interface production of 3D Objects, Science 347, 1349-1352 (2015); and in R. Janusziewcz et al., Layerless fabrication with continuous liquid interface production, Proc. Natl. Acad. Sci. USA 113, 11703-11708 (Oct. 18, 2016). Other examples of methods and apparatus for carrying out particular embodiments of CLIP include, but are not limited to: Batchelder et al., US Patent Application Pub. No. US 2017/0129169 (May 11, 2017); Sun and Lichkus, US Patent Application Pub. No. US 2016/0288376 (Oct. 6, 2016); Willis et al., US Patent Application Pub. No. US 2015/0360419 (Dec. 17, 2015); Lin et al., US Patent Application Pub. No. US 2015/0331402 (Nov. 19, 2015); D. Castanon, US Patent Application Pub. No. US 2017/0129167 (May 11, 2017). B. Feller, US Pat App. Pub. No. US 2018/0243976 (published Aug. 30, 2018); M. Panzer and J. Tumbleston, US Pat App Pub. No. US 2018/0126630 (published May 10, 2018); and K. Willis and B. Adzima, US Pat App Pub. No. US 2018/0290374 (Oct. 11, 2018).
[0021] As illustrated in
[0022] As shown in
[0023] In some embodiments, a purge chamber surrounds at least a portion of the light engine. For example, the purge chamber may surround the micromirror and/or prism 130. The purge chamber may be a sealed chamber having an atmosphere of an inert gas such as nitrogen or argon or the purge chamber may be operatively associated with a purge gas supply. The purge gas supply may be a clean dry gas, such as clean dry air. The gas supply may be a gas source and one or more filters configured to purify the gas from the as source. For example, micro mist separators from SMC Pneumatics (AFD20-40, AFD Mist Separator, AMH850-20D micro mist separator), may be used.
[0024] In particular embodiments, the additive manufacturing apparatus may include pneumatically actuated components, such as drive assembly components, and the gas source may be used to power the pneumatically actuated components in the additive manufacturing apparatus in addition to being used to provide a purge gas to the optical components.
[0025] Embodiments according to the present invention may include “bottom up” or “top down” stereolithography techniques.
[0026] As shown in
[0027] In some embodiments, an additive manufacturing apparatus in which the light engine, or at least the prism or DMD prism of the light engine, is purged with a clean or inert gas, improves the performance and reduces periodic maintenance requirements for that apparatus.
[0028] The foregoing is illustrative of the present invention, and is not to be construed as limiting thereof. The invention is defined by the following claims, with equivalents of the claims to be included therein.