IP Library › Granted Patent US 11,718,020
Granted Patent B2
US 11,718,020 · App. 17/759,433 · Granted Aug 8, 2023

Platform, systems, and devices for 3D printing

Inventors: Juan Francisco Llamazares Vegh (San Francisco, CA); Ignacio Hector Campanelli (San Francisco, CA); Gaston Oscar Corti (San Francisco, CA); Emiliano Hoss (San Francisco, CA)
Assignee: STAMM VEGH CORPORATION
B29C64/135B29C64/245B29C64/268B29C64/277G06T17/20B29C64/236B33Y10/00B33Y30/00
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Quick Facts
Patent No.
US 11,718,020
App. No.
17/759,433
Granted
Aug 8, 2023
Kind
B2
Abstract

Described are 3D printing platforms comprising stereolithographic 3D printing devices utilizing a static optical assembly and procedural modeling applications representing 3D scenes as signed distance function. Described are also structures such as bioreactors that can be printed using such platforms, as well as characteristics and used thereof.

Claims (59)

1. A stereolithographic 3D printing device comprising:

a) a static optical assembly comprising:

i. a light engine configured to project a luxbeam comprising a plurality of pixels along a Z axis;

ii. at least one collimation lens configured to collimate the luxbeam;

iii. a microlens array (MLA) configured to focus the collimated luxbeam to a final beam of smaller diameter, wherein each pixel of the luxbeam is subdivided into a plurality of sub-pixels to multiply resolution of the final beam;

iv. a microdiaphragm array (MDA) configured to reduce noise and cross-talk between lenses of the MLA;

v. at least one projection lens; and

vi. a movable stage configured to translate one or more of the at least one projection lenses in a X-Y plane;

wherein the distances along the Z axis between the light engine, the collimation lens, the MLA, the at least one projection lens, and the movable stage of the static optical assembly are fixed;

b) a printing vat comprising a printing stage movable on the Z axis; and

c) control circuitry configured to control at least the light engine, the movable stage, and the printing stage to achieve stereolithographic 3D printing.

2. The 3D printing device of claim 1 , wherein the light engine comprises a UV projector or a deep UV projector.

3. The 3D printing device of claim 2 , wherein the light engine has an operating wavelength between 370 nm and 415 nm.

4. The 3D printing device of claim 3 , wherein the light engine has an operating wavelength of about 405 nm.

5. The 3D printing device of claim 3 , wherein the light engine has an operating wavelength of about 380 nm.

6. The 3D printing device of claim 1 , wherein the light engine is a first light engine configured to project a first operating wavelength and the 3D printing device further comprises a second light engine configured to project a second operating wavelength.

7. The 3D printing device of claim 6 , wherein the second light engine operates in parallel to the first light engine and the second operating wavelength is selected to inhibit polymerization of a photocurable resin in the printing vat.

8. The 3D printing device of claim 1 , wherein the light engine comprises a digital micromirror device (DMD).

9. The 3D printing device of claim 8 , wherein the DMD has a resolution of about 2560 pixels by about 1600 pixels.

10. The 3D printing device of claim 1 , wherein the light engine comprises a Liquid Crystal on Silico (LCoS) device.

11. The 3D printing device of claim 10 , wherein the LCoS device has a resolution of about 4096 pixels by about 2400 pixels.

12. The 3D printing device of claim 1 , wherein the light engine has a light generating area of about 90 mm by about 50 mm.

13. The 3D printing device of claim 1 , wherein the light engine has a light generating area of about 140 mm by about 90 mm.

14. The 3D printing device of claim 1 , comprising a system of collimation lenses.

15. The 3D printing device of claim 14 , wherein the system of collimation lenses comprises 2 to 6 collimation lenses.

16. The 3D printing device of claim 1 , wherein the movable stage comprises a piezoelectric mechanism configured to translate the one or more of the at least one projection lenses in the X-Y plane.

17. The 3D printing device of claim 16 , wherein the piezoelectric mechanism translates the one or more of the at least one projection lenses in the X-Y plane with nanometer resolution.

18. The 3D printing device of claim 16 , wherein the stage has a translation range of at least 50 μm on the X axis and at least 50 μm on the Y axis.

19. The 3D printing device of claim 18 , wherein the stage has a translation range of about 100 μm on the X axis and about 100 μm on the Y axis.

20. The 3D printing device of claim 16 , wherein the stage has a translation resolution of less than or equal to a length of the sub-pixels.

21. The 3D printing device of claim 1 , wherein the MLA comprises a biconvex array, a biconcave array, a monoconvex array, a monoconcave array, or a combination thereof.

22. The 3D printing device of claim 21 , wherein the MLA comprises a monolithic biconvex array.

23. The 3D printing device of claim 21 , wherein the MLA comprises a planar substrate and a plurality of microlenses on each of the two largest facing sides of the substrate plane.

24. The 3D printing device of claim 23 , wherein the planar substrate is borosilicate or etched glass and the plurality of microlenses are polymeric or glass.

25. The 3D printing device of claim 23 , wherein the MDA is positioned between the planar substrate and one of the pluralities of microlenses of the MLA.

26. The 3D printing device of claim 1 , comprising a plurality of MDAs.

27. The 3D printing device of claim 1 , wherein the MDA has a diaphragm aperture size of 10 μm to 15 μm.

28. The 3D printing device of claim 1 , wherein the MLA subdivides each pixel of the luxbeam into between 4 and 7498 sub-pixels.

29. The 3D printing device of claim 28 , wherein the MLA subdivides each pixel of the luxbeam into between 4 and 100 sub-pixels.

30. The 3D printing device of claim 29 , wherein the MLA subdivides each pixel of the luxbeam into 9 sub-pixels.

31. The 3D printing device of claim 29 , wherein the MLA subdivides each pixel of the luxbeam into 25 sub-pixels.

32. The 3D printing device of claim 29 , wherein the MLA subdivides each pixel of the luxbeam into 49 sub-pixels.

33. The 3D printing device of claim 1 , wherein the at least one projection lens expands the final printing area.

34. The 3D printing device of claim 1 , wherein the at least one projection lens reduces the final printing area.

35. The 3D printing device of claim 1 , wherein the final printing area is at least 2× the light generating area of the light engine.

36. The 3D printing device of claim 1 , wherein the final printing area is at least 4× the light generating area of the light engine.

37. The 3D printing device of claim 1 , wherein the control circuitry is configured to control at least the light engine, the movable stage, and the printing stage to achieve stereolithographic 3D printing in a semi-continuous, substantially continuous, or continuous pattern.

38. The 3D printing device of claim 37 , wherein the control circuitry is configured to control the printing stage to move at a predefined constant velocity on the Z axis.

39. The 3D printing device of claim 37 , wherein the control circuitry is configured to control the movable stage to translate the one or more of the at least one projection lenses in the X-Y plane to scan the luxbeam in a predefined pattern.

40. The 3D printing device of claim 39 , wherein the predefined pattern comprises a spiral pattern.

41. The 3D printing device of claim 39 , wherein the predefined pattern comprises a continuous space filling curve.

42. The 3D printing device of claim 41 , wherein the predefined pattern comprises a Sierpinski curve.

43. The 3D printing device of claim 37 , wherein the control circuitry is configured to control at least the light engine, the movable stage, and the printing stage to achieve stereolithographic 3D printing of a porous structure comprising gyroid geometry spatially distributed in a periodic manner.

44. The 3D printing device of claim 1 , further comprising a robotic gantry configured to scroll the static optical assembly in the X-Y plane relative to the printing vat.

45. The 3D printing device of claim 44 , wherein the control circuitry is further configured to control the robotic gantry.

46. The 3D printing device of claim 1 , wherein the control circuitry is configured to control the printing stage to achieve bottom-up stereolithographic 3D printing.

47. The 3D printing device of claim 1 , wherein the control circuitry is configured to control the printing stage to achieve top-down stereolithographic 3D printing.

48. The 3D printing device of claim 1 , wherein the printing vat comprises a multiphase light-curable resin.

49. The 3D printing device of claim 1 , wherein the printing vat comprises a sterile light-curable resin.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE NAME OF INVENTOR JUAN FRANCISCO LLAMAZARES VEGH ON THE ASSIGNMENT DOCUMENT PREVIOUSLY RECORDED AT REEL: 060954 FRAME: 0346. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jun 6, 2023
From: LLAMAZARES VEGH, JUAN FRANCISCO; CAMPANELLI, IGNACIO HECTOR; CORTI, GASTON OSCAR; HOSS, EMILIANO
To: STAMM VEGH CORPORATION
Reel/Frame 063882/0261 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2022
From: LLAMAZARES, JUAN FRANCISCO; CAMPANELLI, IGNACIO HECTOR; CORTI, GASTON OSCAR; HOSS, EMILIANO
To: STAMM VEGH CORPORATION
Reel/Frame 060954/0346 →
Continuity (3)
Provisional Application 63010405 · Apr 15, 2020
Provisional Application 62969434 · Feb 3, 2020
Related Publication 20230116685A1 · Apr 13, 2023
Cited By (2)
US 12,331,274 US 12,636,594