IP Library Granted Patent US 12,246,488
Granted Patent B2
US 12,246,488 · App. 17/876,259 · Granted Mar 11, 2025

Dynamic optical assembly for laser-based additive manufacturing

Inventors: James A. DeMuth (Woburn, MA); Erik Toomre (Los Altos, CA); Francis L. Leard (Sudbury, MA); Kourosh Kamshad (Hudson, NH); Heiner Fees (Bietigheim-Bissingen, DE); Eugene M. Berdichevsky (Oakland, CA)
Assignee: Seurat Technologies, Inc.
B29C64/264B22F3/24B22F10/00B22F10/28B22F10/34B22F10/36B22F10/70B22F12/00B22F12/226B22F12/30B22F12/33B22F12/38B22F12/44B22F12/70B22F12/88B22F12/90B23K15/0093B23K15/06B23K26/032B23K26/0846B23K26/1224B23K26/123B23K26/127B23K26/142B23K26/144B23K26/16B23K26/36B23K26/702B23K26/703B23K26/704B23K37/0426B29C64/153B29C64/268B29C64/386B33Y10/00B33Y40/00B33Y50/02B33Y70/00B33Y80/00G02B7/14G02B7/16G02B7/1827G02B15/04G02B15/10G02B19/0028G02B26/0816G02F1/0136G02F1/133362G02F1/135H01S5/005B22F2003/247B22F2003/248B22F10/10B22F10/32B22F10/47B22F10/50B22F10/64B22F10/73B22F12/17B22F12/20B22F12/222B22F12/41B22F12/45B22F12/53B22F2998/10B22F2999/00B23K15/0006B23K15/0013B23K15/002B23K15/0026B23K15/0086B23K26/0006B23K26/03B23K26/082B23K26/083B23K26/342B23K37/0408B23K2101/001B23K2101/008B23K2101/02B23K2101/24B23K2103/00B23K2103/42B23K2103/50B25J11/00B28B1/001B29K2105/251B33Y30/00B33Y99/00G02B19/0047G02B27/0068G02B27/0905G02B27/108G02B27/141G02B27/283G02B27/286G05B17/02G05B2219/49023G07C3/146H01S5/4012Y02P10/25Y02P80/40
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Quick Facts
Patent No.
US 12,246,488
App. No.
17/876,259
Filed
Jul 28, 2022
Granted
Mar 11, 2025
Kind
B2
Art Unit
1741
USPC
264/308
Abstract

A method and an apparatus of a powder bed fusion additive manufacturing system that enables a quick change in the optical beam delivery size and intensity across locations of a print surface for different powdered materials while ensuring high availability of the system. A dynamic optical assembly containing a set of lens assemblies of different magnification ratios and a mechanical assembly may change the magnification ratios as needed. The dynamic optical assembly may include a transitional and rotational position control of the optics to minimize variations of the optical beam sizes across the print surface.

Claims (56)

1. A method of a three-dimensional print job, comprising:

obtaining information regarding an image distance associated with an intensity and a pixel size of an incident light on a location of a top surface of a powder bed during a three-dimensional (3D) print job;

performing a plurality of rotations of one or more intermediate mirrors mounted on one or more sets of compensating gantries and one or more final mirrors mounted on a build platform gantry to direct the incident light from a precursor mirror on the top surface of the powder bed; and

performing a plurality of translational movements of the one or more sets of compensating gantries and the build platform gantry to control a distance of the incident light from the precursor mirror to the location of the top surface of the powder bed to substantially preserve an image resolution at the location of the top surface of the powder bed.

2. The method of claim 1 , further comprising configuring one of a plurality of lens assemblies to provide the incident light at a magnification ratio, wherein the plurality of lens assemblies comprise a plurality of first sets of optical lenses and a plurality of second sets of optical lenses, and wherein the plurality of second sets of optical lenses are swappable from the plurality of lens assemblies.

3. The method of claim 2 , wherein configuring of the one of the plurality of lens assemblies to provide the incident light having the magnification ratio comprises:

selecting the one of the plurality of lens assemblies to allow the incident light to pass through;

removing a corresponding set of the plurality of seconds sets of optical lenses of the one of the lens assemblies;

swapping the corresponding set of the plurality of second sets of optical lenses of the one of the plurality of lens assemblies; and

rotating the plurality of lens assemblies as a whole with respect to a longitudinal axis of the lens assemblies.

4. The method of claim 1 , further comprising performing a plurality of translations of the one or more intermediate mirrors mounted on the one or more sets of compensating gantries.

5. The method of claim 1 , further comprising performing the plurality of translational movements in only one translational direction.

6. The method of claim 1 , further comprising performing the plurality of translational movements in a first direction and a second direction that is perpendicular to the second direction.

7. The method of claim 1 , wherein the build platform gantry is configured to translate the one or more final mirrors in a first direction and a second direction; and

wherein the one or more sets of compensating gantries are offset from the powder bed in a plane parallel to the first direction and the second direction.

8. The method of claim 7 , wherein the one or more sets of compensating gantries comprise:

a first rail oriented parallel to the first direction; and

a first intermediate mirror slidably mounted to the first rail and configured to direct light from the precursor mirror to the one or more final mirrors; and

wherein performing the plurality of translational movements comprises translating the first intermediate mirror along the first rail.

9. The method of claim 7 , wherein the one or more sets of compensating gantries comprise:

first and second rails oriented parallel to the second direction;

a third rail oriented parallel to the first direction and slidably mounted to the first and second rails; and

a first intermediate mirror slidably mounted to the third rail and configured to direct light from the precursor mirror to the one or more final mirrors; and

wherein performing the plurality of translational movements comprises translating the first intermediate mirror along the third rail and translating the third rail along the first and second rails.

10. An additive manufacturing system comprising:

a powder bed;

a build platform gantry positioned over the powder bed;

a one or more final mirrors mounted to the build platform gantry;

a precursor mirror;

one or more compensating gantries;

one or more intermediate mirrors mounted to the one or more compensating gantries;

an energy source configured to direct a patterned light beam at the precursor mirror; and

a processing device programmed to:

obtain information regarding an image distance associated with an intensity and a pixel size of the patterned light beam on a location of a top surface of a powder bed during a three-dimensional (3D) print job;

perform a plurality of rotations of the one or more intermediate mirrors and the one or more final mirrors to direct the patterned light beam from the precursor mirror onto the location of the location of the top surface of the powder bed; and

perform a plurality of translational movements of the one or more compensating gantries and the build platform gantry to control a distance traversed by the patterned light beam from the precursor mirror to the location of the top surface of the powder bed to substantially preserve an image resolution of the patterned light beam at a desired location.

11. The additive manufacturing system of claim 10 , further comprising a plurality of lens assemblies comprising a plurality of first sets of optical lenses and a plurality of second sets of optical lenses, and wherein the plurality of second sets of optical lenses are swappable from the plurality of lens assemblies.

12. The additive manufacturing system of claim 11 , wherein the processing device is further programmed to:

select the of the plurality of lens assemblies to allow the patterned light beam to pass through;

remove a corresponding set of the plurality of seconds sets of optical lenses of the one of the plurality of lens assemblies;

swap the corresponding set of the plurality second sets of optical lenses of the one of the plurality of lens assemblies; and

rotate the plurality of lens assemblies as a whole with respect to a longitudinal axis of the plurality of lens assemblies.

13. The additive manufacturing system of claim 10 , wherein the processing device is further programmed to perform a plurality of translations of the one or more intermediate mirrors mounted on the one or more compensating gantries.

14. The additive manufacturing system of claim 10 , wherein the processing device is further programmed to perform the plurality of translational movements in only one translational direction.

15. The additive manufacturing system of claim 10 , wherein the processing device is further programmed to perform the plurality of translational movements in a first direction and a second direction that is perpendicular to the second direction.

16. The additive manufacturing system of claim 10 , wherein the build platform gantry is configured to translate the one or more final mirrors in a first direction and a second direction; and

wherein the one or more compensating gantries are offset from the powder bed in a plane parallel to the first direction and the second direction.

17. The additive manufacturing system of claim 16 , wherein the one or more compensating gantries comprise:

a first rail oriented parallel to the first direction; and

a first intermediate mirror slidably mounted to the first rail and configured to direct light from the precursor mirror to the one or more final mirrors; and

wherein performing the plurality of translational movements comprises translating the first intermediate mirror along the first rail.

18. The additive manufacturing system of claim 16 , wherein the one or more compensating gantries comprise:

first and second rails oriented parallel to the second direction;

a third rail oriented parallel to the first direction and slidably mounted to the first and second rails; and

a first intermediate mirror slidably mounted to the third rail and configured to direct light from the precursor mirror to the one or more final mirrors; and

wherein the processing device is further programmed to perform the plurality of translational movements comprises translating the first intermediate mirror along the third rail and translating the third rail along the first and second rails.

Assignments (2)
SECURITY INTEREST Recorded Dec 9, 2025
From: SEURAT TECHNOLOGIES, INC.
To: FIRST-CITIZENS BANK & TRUST COMPANY
Reel/Frame 073909/0977 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2022
From: DEMUTH, JAMES A.; TOOMRE, ERIK; LEARD, FRANCIS L.; KAMSHAD, KOUROSH; FEES, HEINER; BERDICHEVSKY, EUGENE
To: SEURAT TECHNOLOGIES, INC.
Reel/Frame 060662/0114 →
Continuity (25)
Continuation 15337610 · Oct 28, 2016
Provisional Application 62248776 · Oct 30, 2015
Provisional Application 62248968 · Oct 30, 2015
Provisional Application 62248829 · Oct 30, 2015
Provisional Application 62248765 · Oct 30, 2015
Provisional Application 62248787 · Oct 30, 2015
Provisional Application 62248758 · Oct 30, 2015
Provisional Application 62248821 · Oct 30, 2015
Provisional Application 62248795 · Oct 30, 2015
Provisional Application 62248966 · Oct 30, 2015
Provisional Application 62248833 · Oct 30, 2015
Provisional Application 62248835 · Oct 30, 2015
Provisional Application 62248780 · Oct 30, 2015
Provisional Application 62248783 · Oct 30, 2015
Provisional Application 62248791 · Oct 30, 2015
Provisional Application 62248980 · Oct 30, 2015
Provisional Application 62248839 · Oct 30, 2015
Provisional Application 62248969 · Oct 30, 2015
Provisional Application 62248799 · Oct 30, 2015
Provisional Application 62248848 · Oct 30, 2015
Provisional Application 62248841 · Oct 30, 2015
Provisional Application 62248989 · Oct 30, 2015
Provisional Application 62248770 · Oct 30, 2015
Provisional Application 62248847 · Oct 30, 2015
Related Publication 20220362894A1 · Nov 17, 2022
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