IP Library Granted Patent US 10,286,603
Granted Patent B2
US 10,286,603 · App. 15/374,616 · Granted May 14, 2019

Skillful three-dimensional printing

Inventors: Benyamin Buller (Cupertino, CA); Tasso Lappas (Pasadena, CA); Erel Milshtein (Cupertino, CA); Rueben Mendelsberg (Santa Clara, CA); Kimon Symeonidis (Santa Clara, CA); Alan Rick Lappen (San Jose, CA)
Assignee: VELO3D, INC.
B29C64/307B22F3/1055B23K26/04B23K26/0869B23K26/142B23K26/144B23K26/1462B23K26/342B23K26/702B23K37/06B29B17/0005B29C64/153B29C64/188B29C64/214B29C64/35B29C64/357B29C64/386B29C64/40B33Y10/00B33Y30/00B33Y40/00B33Y50/02B33Y70/00G05B19/4099B22F2003/1056B22F2003/1058B22F2003/1059B22F2998/10B28B1/001B29K2105/251B33Y80/00G05B2219/35134G05B2219/49007Y02P10/295Y02P90/265
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Quick Facts
Patent No.
US 10,286,603
App. No.
15/374,616
Granted
May 14, 2019
Kind
B2
Abstract

The present disclosure various apparatuses, and systems for 3D printing. The present disclosure provides three-dimensional (3D) printing methods, apparatuses, software and systems for a step and repeat energy irradiation process; controlling material characteristics and/or deformation of the 3D object; reducing deformation in a printed 3D object; and planarizing a material bed.

Claims (49)

1. A method for printing a three-dimensional object, comprising:

(a) providing a material bed comprising a pre-transformed material;

(b) irradiating an exposed surface of the material bed at a first position using an energy beam during a first time period of at least one millisecond, to transform the pre-transformed material at the first position to a transformed material to form a first tile as part of the three-dimensional object, which first position is along a path-of-tiles, wherein during the first time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the first position on the exposed surface;

(c) translating the energy beam to a second position of the exposed surface along the path-of-tiles, which second position is different from the first position, wherein the energy beam is translated during an intermission without transforming the pre-transformed material along the path-of-tiles, wherein during the intermission, the energy beam irradiates a portion of the material bed that is not along the path-of-tiles; and

(d) irradiating the exposed surface of the material bed at the second position with the energy beam at the second position during a second time period of at least one millisecond, to transform the pre-transformed material at the second position to a transformed material to form a second tile as part of the three-dimensional object, wherein during the second time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the second position on the exposed surface.

2. The method of claim 1 , wherein the first time period is equal to the second time period.

3. The method of claim 1 , wherein in (c) the energy beam is translated within a time period of at least 1 millisecond.

4. The method of claim 1 , wherein a diameter of a cross section of the energy beam is at least 50 micrometers.

5. The method of claim 1 , wherein the second tile contacts the first tile.

6. The method of claim 5 , wherein the second tile at least partially overlaps the first tile.

7. The method of claim 1 , wherein the second tile at least partially overlaps the first tile.

8. The method of claim 1 , further comprising dispensing a layer of the pre-transformed material by removing an excess of pre-transformed material from the exposed surface of the material bed using a gas flow and cyclonically separating the pre-transformed material from the gas flow.

9. The method of claim 1 , wherein in (b), the energy beam that is stationary or substantially stationary comprises spatial oscillations of the energy beam that are smaller than a diameter of the energy beam.

10. The method of claim 1 , wherein the three-dimensional object comprises one or more layers with a radius of curvature of at least five centimeters.

11. The method of claim 1 , wherein the three-dimensional object has a porosity of at most 10%.

12. The method of claim 1 , wherein the second position is directly adjacent to and separated from the first position by a pre-transformed material gap.

13. The method of claim 1 , further comprising (e) translating the energy beam to a third position of the exposed surface along the path-of-tiles, which third position follows the second position along the path-of-tiles and is different from the first position and different from the second position, which energy beam is translated during an intermission without transforming the pre-transformed material along the path-of-tiles; and (f) irradiating the exposed surface of the material bed by the energy beam at the third position during a third time period to transform the pre-transformed material at the third position to a transformed material to form a third tile as part of the three-dimensional object, which third tile contacts the second tile, wherein during the third time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the third position on the exposed surface, wherein the third tile follows the second tile that follows the first tile along the path-of-tiles.

14. The method of claim 13 , wherein the first tile, second tile, and third tile are successively arranged in a single file.

15. The method of claim 14 , wherein a diameter of a cross section of the energy beam is at least 50 micrometers.

16. A method for printing a three-dimensional object, comprising:

(a) providing a material bed comprising a pre-transformed material;

(b) irradiating an exposed surface of the material bed at a first position using an energy beam during a first time period, to transform the pre-transformed material at the first position to a transformed material to form a first tile as part of the three-dimensional object, which first position is along a path-of-tiles, which energy beam has a power density of at most 8000 Watts per millimeter squared, wherein during the first time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the first position on the exposed surface;

(c) translating the energy beam to a second position of the exposed surface along the path-of-tiles, which second position is different from the first position, which energy beam is translated during an intermission without transforming the pre-transformed material along the path-of-tiles, wherein during the intermission, the energy beam irradiates a portion of the material bed that is not along the path-of-tiles; and

(d) irradiating the exposed surface of the material bed at the second position with the energy beam at the second position during a second time period to transform the pre-transformed material at the second position to a transformed material to form a second tile as part of the three-dimensional object, wherein during the second time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the second position on the exposed surface,

wherein the first time period and/or second time period is of at least one tenth (0.1) of a millisecond.

17. The method of claim 16 , wherein a diameter of a cross section of the energy beam is at least 50 micrometers.

18. The method of claim 16 , wherein in (c), the energy beam is translated within a time period of at least 1 millisecond.

19. The method of claim 16 , wherein the second tile contacts the first tile.

20. The method of claim 19 , wherein the second tile at least partially overlaps the first tile.

21. The method of claim 16 , wherein the first time period and/or the second time period is at least 1 millisecond.

22. The method of claim 16 , wherein the three-dimensional object has a porosity of at most 10%.

23. The method of claim 16 , wherein the three-dimensional object comprises one or more layers with a radius of curvature of at least five centimeters.

24. The method of claim 16 , wherein the second position is directly adjacent to and separated from the first position by a pre-transformed material gap.

25. The method of claim 16 , further comprising (e) translating the energy beam to a third position of the exposed surface along the path-of-tiles, which third position follows the second position along the path-of-tiles and is different from the first position and different from the second position, which energy beam is translated during an intermission without transforming the pre-transformed material along the path-of-tiles; and (f) irradiating the exposed surface of the material bed by the energy beam at the third position during a third time period to transform the pre-transformed material at the third position to a transformed material to form a third tile as part of the three-dimensional object, which third tile contacts the second tile, wherein during the third time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the third position on the exposed surface, wherein the third tile follows the second tile that follows the first tile along the path-of-tiles.

26. A method for printing a three-dimensional object, comprising:

(a) providing a material bed comprising a pre-transformed material;

(b) irradiating an exposed surface of the material bed at a first position using an energy beam during a first time period to transform the pre-transformed material at the first position to a transformed material to form a first tile as part of the three-dimensional object, which first position is along a path-of-tiles, wherein during the first time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the first position on the exposed surface, wherein the energy beam is defocused;

(c) translating the energy beam to a second position of the exposed surface along the path-of-tiles, which second position is different from the first position, which energy beam is translated during an intermission without transforming the pre-transformed material along the path-of-tiles, wherein during the intermission, the energy beam irradiates a portion of the material bed that is not along the path-of-tiles, wherein the energy beam is defocused; and

(d) irradiating the exposed surface of the material bed at the second position with the energy beam at the second position during a second time period to transform the pre-transformed material in the second position to a transformed material to form a second tile as part of the three-dimensional object, wherein during the second time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the second position on the exposed surface,

wherein the first time period and/or second time period is of at least one tenth (0.1) of a millisecond, wherein the energy beam is defocused.

27. The method of claim 26 , wherein a diameter of a cross section of the energy beam is at least 50 micrometers.

28. The method of claim 26 , wherein in (c), the energy beam is translated within a time period of at least 1 millisecond.

29. The method of claim 26 , wherein the second tile contacts the first tile.

30. The method of claim 29 , wherein the second tile at least partially overlaps the first tile.

31. The method of claim 26 , wherein the intermission is at least one (1) millisecond.

32. The method of claim 26 , wherein the three-dimensional object comprises one or more layers with a radius of curvature of at least five centimeters.

33. The method of claim 26 , wherein during the intermission, the energy beam provides no radiation or provides a reduced amount of radiation along the path-of-tiles, which reduced amount of radiation is insufficient to transform the pre-transformed material along the path-of-tiles.

34. The method of claim 26 , wherein the second position is directly adjacent to and separated from the first position by a pre-transformed material gap.

35. The method of claim 26 , further comprising (e) translating the energy beam to a third position of the exposed surface along the path-of-tiles, which third position that follows the second position along the path-of-tiles and is different from the first position and different from the second position, which energy beam is translated during an intermission without transforming the pre-transformed material along the path-of-tiles; and (f) irradiating the exposed surface of the material bed by the energy beam at the third position during a third time period to transform the pre-transformed material at the third position to a transformed material to form a third tile as part of the three-dimensional object, which third tile contacts the second tile, wherein during the third time period, the energy beam is stationary or substantially stationary such that it at most undergoes back and forth movement with respect to the third position on the exposed surface, wherein the third tile follows the second tile that follows the first tile along the path-of-tiles.

Assignments (7)
INTELLECTUAL PROPERTY SECURITY INTEREST ASSIGNMENT AGREEMENT Recorded Dec 12, 2024
From: HIGH TRAIL INVESTMENTS ON LLC, AS THE RESIGNING COLLATERAL AGENT
To: ARRAYED NOTES ACQUISITION CORP., AS THE SUCCESSOR COLLATERAL AGENT
Reel/Frame 069603/0977 →
RELEASE OF SECURITY INTEREST Recorded Sep 8, 2023
From: SILICON VALLEY BANK, A DIVISION OF FIRST- CITIZENS BANK & TRUST COMPANY (SUCCESSOR BY PURCHASE TO THE FEDERAL DEPOSIT INSURANCE CORPORATION AS RECEIVER FOR SILICON VALLEY BRIDGE BANK, N.A. (AS SUCCESSOR TO SILICON VALLEY BANK))
To: VELO3D, INC.
Reel/Frame 064845/0523 →
RELEASE OF SECURITY INTEREST Recorded Sep 8, 2023
From: SILICON VALLEY BANK, A DIVISION OF FIRST- CITIZENS BANK & TRUST COMPANY (SUCCESSOR BY PURCHASE TO THE FEDERAL DEPOSIT INSURANCE CORPORATION AS RECEIVER FOR SILICON VALLEY BRIDGE BANK, N.A. (AS SUCCESSOR TO SILICON VALLEY BANK))
To: VELO3D, INC.
Reel/Frame 064845/0840 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Aug 15, 2023
From: VELO3D, INC.
To: HIGH TRAIL INVESTMENTS ON LLC
Reel/Frame 064591/0634 →
SECURITY INTEREST Recorded May 17, 2021
From: VELO3D, INC.
To: SILICON VALLEY BANK, AS ADMINISTRATIVE AND COLLATERAL AGENT
Reel/Frame 056259/0341 →
SECURITY INTEREST Recorded May 17, 2021
From: VELO3D, INC.
To: SILICON VALLEY BANK, AS ADMINISTRATIVE AND COLLATERAL AGENT
Reel/Frame 056259/0328 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2017
From: BULLER, BENYAMIN; LAPPAS, TASSO; MILSHTEIN, EREL; MENDELSBERG, RUEBEN; SYMEONIDIS, KIMON; LAPPEN, ALAN RICK
To: VELO3D, INC.
Reel/Frame 041021/0222 →
Continuity (3)
Provisional Application 62265817 · Dec 10, 2015
Provisional Application 62317070 · Apr 1, 2016
Related Publication 20170165754A1 · Jun 15, 2017
Cited By (30)
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