IP Library Granted Patent US 10,960,466
Granted Patent B2
US 10,960,466 · App. 15/337,507 · Granted Mar 30, 2021

Polarization combining system in 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 Berdichevsky (Oakland, CA)
Assignee: SEURAT TECHNOLOGIES, INC.
B22F3/1055B22F3/24B23K15/002B23K15/0006B23K15/0013B23K15/0026B23K15/0086B23K15/0093B23K15/06B23K26/0006B23K26/03B23K26/032B23K26/082B23K26/083B23K26/0846B23K26/123B23K26/127B23K26/1224B23K26/142B23K26/144B23K26/16B23K26/342B23K26/36B23K26/702B23K26/703B23K26/704B23K37/0408B23K37/0426B25J11/00B28B1/001B29C64/264B29C64/268B29C64/386B33Y10/00B33Y30/00B33Y40/00B33Y50/02B33Y70/00B33Y80/00B33Y99/00G02B7/14G02B7/16G02B7/1827G02B15/04G02B15/10G02B19/0028G02B19/0047G02B26/0816G02B27/0068G02B27/141G02F1/0136G02F1/135G02F1/133362G05B17/02H01S5/005H01S5/4012B22F2003/1056B22F2003/1057B22F2003/1058B22F2003/1059B22F2003/247B22F2003/248B22F2998/10B22F2999/00B23K2101/001B23K2101/008B23K2101/02B23K2101/24B23K2103/00B23K2103/42B23K2103/50B29K2105/251G02B27/0905G02B27/283G02B27/286G05B2219/49023G07C3/146Y02P10/295Y02P80/40
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Quick Facts
Patent No.
US 10,960,466
App. No.
15/337,507
Filed
Oct 28, 2016
Granted
Mar 30, 2021
Kind
B2
Art Unit
2872
USPC
359/240
Abstract

A method and an apparatus pertaining to polarization combining in additive manufacturing may involve emitting two or more beams of light with a first intensity. Each of the two or more beams of light may be polarized and may have a majority polarization state and a minority polarization state. A respective polarization pattern may be applied on the majority polarization state of each of the two or more beams of light. The two or more beams of light may be combined to provide a single beam of light.

Claims (53)

1. A method, comprising:

emitting two or more beams of light with a first intensity, each of the two or more beams of light being polarized and having a majority polarization state and a minority polarization state;

applying a respective polarization pattern on the majority polarization state of each of the two or more beams of light without applying a polarization pattern on the minority polarization state of each of the two or more beams of light by directing the minority polarization of each of the two or more beams of light to a beam dump; and

combining the two or more beams of light to provide a single beam of light with a second intensity greater than the first intensity.

2. The method of claim 1 , wherein the majority polarization state and the minority polarization state of the two or more beams of light are respectively patterned by a mask or a light rejection device, and wherein the two or more beams of light are combined because of the different polarization states.

3. The method of claim 1 , wherein light not in a majority polarization state is rejected before applying the respective majority polarization pattern.

4. The method of claim 1 , wherein the applying of the respective polarization pattern on the majority polarization state of each of the two or more beams of light comprises applying, by a respective one of two or more optically addressed light valves or two or more liquid crystal display devices, the respective polarization pattern on the majority polarization state of each of the two or more beams of light.

5. A method, comprising:

emitting one or more beams of light, each of the one or more beams of light being polarized;

splitting each of the two or more beams of light into two split beams each corresponding to a majority polarization state or a minority polarization state, respectively;

spatially stacking the split beam of each of the two or more beams of light corresponding to the majority polarization state to provide a first beam of light corresponding to the majority polarization state;

spatially stacking the split beam of each of the two or more beams of light corresponding to the minority polarization state to provide a second beam of light corresponding to the minority polarization state;

applying a majority polarization pattern on the first beam of light;

applying a minority polarization pattern on the second beam of light; and

combining the patterned first and second beams of light to provide a single beam of light,

wherein the spatially stacking of the split beam of each of the two or more beams of light corresponding to the majority polarization state to provide the first beam of light corresponding to the majority polarization state comprises:

spatially stacking two or more split beams of the two or more beams of light corresponding to the majority polarization state; and

homogenizing the spatially stacked two or more split beams to provide the first beam of light, and

wherein the spatially stacking of the split beam of each of the two or more beams of light corresponding to the minority polarization state to provide the second beam of light corresponding to the minority polarization state comprises:

spatially stacking two or more split beams of the two or more beams of light corresponding to the minority polarization state; and

homogenizing the spatially stacked two or more split beams to provide the second beam of light.

6. The method of claim 5 , wherein light not in the majority polarization state is rejected before applying the respective majority polarization pattern.

7. The method of claim 5 , wherein the applying of the majority polarization pattern on the first beam of light comprises applying the majority polarization pattern by an optically addressed light valve or a liquid crystal display device corresponding to the majority polarization state, and wherein the applying of the minority polarization pattern on the second beam of light comprises applying the minority polarization pattern by an optically addressed light valve or a liquid crystal display device corresponding to the minority polarization state.

8. The method of claim 5 , wherein the splitting of each of the two or more beams of light into two split beams each corresponding to the majority polarization state or the minority polarization state, respectively, comprises:

spatially stacking the two or more beams of light prior to the splitting; and

splitting each of the spatially combined two or more beams of light into the two split beams each corresponding to the majority polarization state or the minority polarization state, respectively.

9. An apparatus, comprising:

two or more light sources configured to emit two or more beams of light with a first intensity, each of the two or more beams of light being polarized and having a majority polarization state and a minority polarization state;

two or more spatial light modulators each configured to apply a respective polarization pattern on the majority polarization state of each of the two or more beams of light without applying a polarization pattern on the minority polarization state of each of the two or more beams of light by directing the minority polarization of each of the two or more beams of light to a beam dump; and

an optical sub-assembly configured to combine the two or more beams of light to provide a single beam of light with a second intensity.

10. The apparatus of claim 9 , wherein the second intensity is greater than the first intensity.

11. The apparatus of claim 9 , wherein the two or more light sources comprise at least a solid state laser or at least a semiconductor laser.

12. The apparatus of claim 9 , wherein the two or more spatial light modulators comprise at least a mask or a light blocking device, and wherein the optical sub-assembly is configured to combine the two or more beams of light because of the different polarization states.

13. The apparatus of claim 9 , wherein the optical sub-assembly is configured to combine the majority polarization state and the minority polarization state of the two or more beams of light because of the different polarization states, and wherein the two or more spatial light modulators comprise at least a mask or a light blocking device configured to pattern each of the two or more beams of light after the combining.

14. The apparatus of claim 9 , wherein the two or more spatial light modulators comprise two or more optically addressed light valves or two or more liquid crystal display devices configured to apply the respective polarization pattern on the majority polarization state of each of the two or more beams of light.

15. The apparatus of claim 9 , wherein the optical sub-assembly is further configured to perform operations comprising:

splitting each of the two or more beams of light into two split beams each corresponding to the majority polarization state or the minority polarization state, respectively;

spatially stacking the split beam of each of the two or more beams of light corresponding to the majority polarization state to provide a first beam of light corresponding to the majority polarization state;

spatially stacking the split beam of each of the two or more beams of light corresponding to the minority polarization state to provide a second beam of light corresponding to the minority polarization state; and

combining the patterned first and second beams of light to provide the single beam of light.

16. The apparatus of claim 15 , wherein the two or more spatial light modulators comprise:

a first optically addressed light valve or a first liquid crystal display device configured to apply a majority polarization pattern on the first beam of light; and

a second optically addressed light valve or a second liquid crystal display device configured to apply a minority polarization pattern on the second beam of light.

17. The apparatus of claim 15 , wherein:

in spatially stacking the split beam of each of the two or more beams of light corresponding to the majority polarization state to provide the first beam of light corresponding to the majority polarization state, the optical sub-assembly is configured to perform operations comprising:

spatially stacking, by a first set of mirrors of the optical sub-assembly, two or more split beams of the two or more beams of light corresponding to the majority polarization state; and

homogenizing, by a first homogenizer of the optical sub-assembly, the spatially stacked two or more split beams to provide the first beam of light; and

in spatially stacking the split beam of each of the two or more beams of light corresponding to the minority polarization state to provide the second beam of light corresponding to the minority polarization state, the optical sub-assembly is configured to perform operations comprising:

spatially stacking, by a second set of mirrors of the optical sub-assembly, two or more split beams of the two or more beams of light corresponding to the minority polarization state; and

homogenizing, by a second homogenizer of the optical sub-assembly, the spatially stacked two or more split beams to provide the second beam of light.

18. The apparatus of claim 15 , wherein, in splitting each of the two or more beams of light into two split beams each corresponding to the majority polarization state or the minority polarization state, respectively, the optical sub-assembly is configured to perform operations comprising:

spatially stacking, by a set of mirrors of the optical sub-assembly, the two or more beams of light prior to the splitting; and

splitting, by a set of polarizers of the optical sub-assembly, each of the spatially combined two or more beams of light into the two split beams each corresponding to the majority polarization state or the minority polarization state, respectively.

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 Oct 28, 2016
From: DEMUTH, JAMES A.; TOOMRE, ERIK; LEARD, FRANCIS L.; KAMSHAD, KOUROSH; FEES, HEINER; BERDICHEVSKY, EUGENE
To: SEURAT TECHNOLOGIES, INC.
Reel/Frame 040160/0832 →
Continuity (24)
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Provisional Application 62248847 · Oct 30, 2015
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