IP Library › Granted Patent US 11,660,807
Granted Patent B2
US 11,660,807 · App. 17/404,966 · Granted May 30, 2023

Method for build separation from a curing interface in an additive manufacturing process

Inventors: Christopher Prucha (San Francisco, CA); Joel Ong (San Francisco, CA)
Assignee: Stratasys, Inc.
B29C64/124B29C64/227B29C64/232B29C64/245B29C64/364B29C64/393B33Y50/02B29C37/0075B33Y10/00B33Y30/00B33Y40/00
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Quick Facts
Patent No.
US 11,660,807
App. No.
17/404,966
Granted
May 30, 2023
Kind
B2
Abstract

A layer-by layer method for additive manufacturing that includes: photocuring a first volume of resin to form a layer of a build at an upper surface of a separation membrane laminated over a build window; injecting a fluid into an interstitial region between the separation membrane and the build window; retracting the build from the build window; evacuating the fluid from the interstitial region; and photocuring a second volume of liquid resin to form a subsequent layer of the build between an upper surface of a separation membrane and the previous layer of the build.

Claims (78)

1. A method for additive manufacturing by a bottom-up additive manufacturing system comprising a build window and a separation membrane, the method comprising:

during a first advancement phase, advancing a build platform toward the separation membrane;

during a first photocuring phase:

modifying pressure within an interstitial region between the separation membrane and the build window to laminate the separation membrane against the build window; and

photocuring a first volume of a resin between the separation membrane, laminated against the build window, and the build platform to form a first layer of a build;

injecting a fluid into the interstitial region to inflate the separation membrane;

retracting the build platform from the build window to peel the separation membrane from the first layer of the build;

during a second advancement phase succeeding the first advancement phase, advancing the build platform toward the separation membrane; and

during a second photocuring phase:

modifying pressure within the interstitial region to laminate the separation membrane against the build window; and

photocuring a second volume of the resin between the separation membrane, laminated against the build window, and the first layer of the build to form a second layer of the build;

wherein the separation membrane defines:

a perimeter extending along a first plane; and

a build region inset from the perimeter, wherein the build region:

extends along a second plane parallel to and vertically offset from the first plane when laminated against the build window; and

extends along a third plane parallel to and vertically offset from the first plane and the second plane prior to lamination of the build region against the build window;

wherein the second plane is arranged below the first plane; and

wherein the third plane is arranged above the second plane.

2. The method of claim 1 :

further comprising, during the first advancement phase, maintaining the separation membrane offset from the build window along a width of the separation membrane; and

wherein modifying pressure within the interstitial region during the first photocuring phase comprises extracting fluid from the interstitial region to draw the separation membrane into first contact with the build window.

3. The method of claim 1 :

further comprising, during the first advancement phase, maintaining the separation membrane offset from the build window along a width of the separation membrane; and

wherein modifying pressure within the interstitial region during the first photocuring phase comprises extracting fluid from the interstitial region to draw the build region of the separation membrane into first contact with the build window.

4. The method of claim 3 :

further comprising, during the second advancement phase, maintaining the separation membrane offset from the build window along the width of the separation membrane; and

wherein modifying pressure within the interstitial region during the second photocuring phase comprises extracting fluid from the interstitial region to draw the build region of the separation membrane into initial contact with the build window, the build region of the separation membrane encompassing the first layer of the build.

5. A method for additive manufacturing by a bottom-up additive manufacturing system comprising a build tray defining a tray aperture, a build window, and a separation membrane spanning the tray aperture, the method comprising:

during a first photocuring phase:

modifying pressure within an interstitial region between the separation membrane and the build window to laminate the separation membrane against the build window; and

photocuring a first volume of a resin to form a first layer of a build at a surface of the separation membrane laminated against the build window;

injecting a fluid into the interstitial region to inflate the separation membrane;

retracting the first layer of the build from the build window to peel the separation membrane from the first layer of the build; and

during a second photocuring phase:

modifying pressure within the interstitial region to laminate the separation membrane against the build window; and

photocuring a second volume of the resin to form a second layer of the build between the surface of the separation membrane, laminated against the build window, and the first layer of the build,

wherein the separation membrane defines:

a perimeter extending along a first plane; and

a build region inset from the perimeter, wherein the build region:

extends along a second plane parallel to and vertically offset from the first plane when laminated against the build window; and

extends along a third plane parallel to and vertically offset from the first plane and the second plane prior to lamination of the build region against the build window;

wherein the second plane is arranged below the first plane; and

wherein the third plane is arranged above the second plane.

6. The method of claim 5 , further comprising:

during a first advancement phase preceding the first photocuring phase, advancing a build platform toward the separation membrane; and

during a second advancement phase succeeding the first advancement phase and preceding the second photocuring phase, advancing the build platform toward the separation membrane.

7. The method of claim 6 , further comprising, during the first advancement phase, modifying pressure within the interstitial region to laminate the separation membrane against the build window.

8. The method of claim 5 , wherein during the first photocuring phase, the build window is aligned with a projection area of a projection system, the projection area less than a total area of the build window.

9. The method of claim 5 , further comprising, after retracting the first layer of the build from the build window, modifying pressure within the interstitial region to peel the separation membrane from the first layer of the build.

10. The method of claim 5 , further comprising, while retracting the first layer of the build from the build window, modifying pressure within the interstitial region to peel the separation membrane from the first layer of the build.

11. The method of claim 5 , wherein retracting the first layer of the build from the build window comprises retracting the first layer of the build from the build window while injecting the fluid into the interstitial region.

12. The method of claim 5 , wherein retracting the first layer of the build from the build window comprises, in response to detecting inflation of the separation membrane from the build window, retracting the first layer of the build from the build window.

13. A method for additive manufacturing by a bottom-up additive manufacturing system comprising a build window and a separation membrane, the method comprising:

during a first advancement phase, advancing a build platform toward the separation membrane;

during a first photocuring phase:

modifying pressure within an interstitial region between the separation membrane and the build window to laminate the separation membrane against the build window; and

photocuring a first volume of a resin to form a first layer of a build between a surface of the separation membrane, laminated against the build window, and the build platform;

during a retraction phase:

pressurizing the interstitial region; and

retracting the first layer of the build from the build window;

during a second advancement phase, advancing the build platform toward the separation membrane; and

during a second photocuring phase:

modifying pressure within the interstitial region to laminate the separation membrane against the build window; and

photocuring a second volume of the resin to form a second layer of the build between the surface of the separation membrane, laminated against the build window, and the first layer of the build,

wherein the separation membrane defines:

a perimeter extending along a first plane; and

a build region inset from the perimeter, wherein the build region:

extends along a second plane parallel to and vertically offset from the first plane when laminated against the build window; and

extends along a third plane parallel to and vertically offset from the first plane and the second plane prior to lamination of the build region against the build window;

wherein the second plane is arranged below the first plane; and

wherein the third plane is arranged above the second plane.

14. The method of claim 13 , further comprising, during the second photocuring phase, pressurizing a build chamber containing a gaseous environment above the resin.

15. The method of claim 14 , wherein during the second photocuring phase, modifying pressure within the interstitial region to laminate the separation membrane against the build window comprises generating a first negative pressure gradient across the separation membrane by depressurizing the interstitial region relative to the pressurized build chamber.

16. The method of claim 13 , wherein retracting the first layer of the build from the build window comprises retracting the first layer of the build from the build window while pressurizing the interstitial region.

17. The method of claim 13 , wherein retracting the first layer of the build from the build window comprises retracting the first layer of the build from the build window to peel the separation membrane from the first layer of the build.

18. The method of claim 13 , wherein modifying pressure within the interstitial region to laminate the separation membrane against the build window during the first photocuring phase and second photocuring phases comprises, during the first photocuring phase and the second photocuring phase, drawing a vacuum within the interstitial region to laminate the separation membrane against the build window.

19. The method claim 18 , wherein pressurizing the interstitial region comprises releasing the vacuum within the interstitial region.

20. The method of claim 13 , wherein modifying pressure within the interstitial region to laminate the separation membrane against the build window during the first photocuring phase and second photocuring phases comprises, during the first photocuring phase and second photocuring phases, reducing pressure within the interstitial region to laminate the separation membrane against the build window.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2023
From: PRUCHA, CHRISTOPHER; ONG, JOEL
To: ORIGIN LABORATORIES, INC.
Reel/Frame 063274/0466 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2023
From: ORIGIN LABORATORIES, INC.
To: STRATASYS, INC.
Reel/Frame 063274/0542 →
Continuity (7)
Continuation 16941464 · Jul 28, 2020
Continuation 16900560 · Jun 12, 2020
Continuation 16672410 · Nov 1, 2019
Continuation 16672415 · Nov 1, 2019
Provisional Application 62754411 · Nov 1, 2018
Provisional Application 62754430 · Nov 1, 2018
Related Publication 20210370585A1 · Dec 2, 2021