IP Library Granted Patent US 11,938,560
Granted Patent B2
US 11,938,560 · App. 17/839,853 · Granted Mar 26, 2024

Systems and methods for measuring radiated thermal energy during an additive manufacturing operation

Inventors: R. Bruce Madigan (Butte, MT); Lars Jacquemetton (Santa Fe, NM); Glenn Wikle (Santa Fe, NM); Mark J. Cola (Santa Fe, NM); Vivek R. Dave (Concord, NH); Darren Beckett (Corrales, NM); Alberto M. Castro (Santa Fe, NM)
Assignee: DIVERGENT TECHNOLOGIES, INC.
B23K26/032B22F12/90B23K15/0086B23K26/342B23K26/70B23K31/125B29C64/393B33Y10/00B33Y50/00B33Y50/02B22F10/28B22F10/31B22F2203/11B23K2101/001
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Quick Facts
Patent No.
US 11,938,560
App. No.
17/839,853
Granted
Mar 26, 2024
Kind
B2
Abstract

This disclosure describes various methods and apparatus for characterizing an additive manufacturing process. A method for characterizing the additive manufacturing process can include generating scans of an energy source across a build plane; measuring an amount of energy radiated from the build plane during each of the scans using an optical sensor; determining an area of the build plane traversed during the scans; determining a thermal energy density for the area of the build plane traversed by the scans based upon the amount of energy radiated and the area of the build plane traversed by the scans; mapping the thermal energy density to one or more location of the build plane; determining that the thermal energy density is characterized by a density outside a range of density values; and thereafter, adjusting subsequent scans of the energy source across or proximate the one or more locations of the build plane.

Claims (37)

1. An additive manufacturing method comprising:

depositing a layer of build material on a build plane;

dividing at least a portion of the build plane into a plurality of grid regions, each grid region having a respective area;

generating a plurality of scans across a grid region of the plurality of grid regions using an energy source to fuse the layer of build material within the grid region;

detecting, using a sensor, energy emitted from the build plane while the energy source fuses the layer of build material; and

determining a thermal energy density of the grid region of the plurality of grid regions from the energy detected by the sensor and the respective area of the grid region.

2. The additive manufacturing method of claim 1 wherein the thermal energy density is determined from energy emitted from the grid region of the plurality of grid regions during the fusing and the area of the grid region.

3. The additive manufacturing method of claim 1 wherein the sensor is a photodiode.

4. The additive manufacturing method of claim 1 wherein the build material comprises a metallic powder.

5. The additive manufacturing method of claim 1 wherein the energy source comprises a laser.

6. The additive manufacturing method of claim 1 wherein the determined thermal energy density is compared to a threshold value and wherein the grid region is identified as potentially defective when the determined thermal energy density exceeds the threshold value.

7. An additive manufacturing method comprising:

depositing a layer of build material on a build plane;

dividing at least a portion of the build plane into a plurality of grid regions, each grid region having a respective area;

fusing, using an energy source, the build material within each of the plurality of grid regions;

detecting, using a sensor, energy emitted while the energy source fuses the build material; and

determining a thermal energy density for each grid region of the plurality of grid regions based on the detected energy and the respective area of each grid region.

8. The additive manufacturing method of claim 7 wherein the determined thermal energy density for each grid region of the plurality of grid regions is determined from energy emitted from each respective grid region during the fusing divided by the respective area of each respective grid region.

9. The additive manufacturing method of claim 7 wherein the sensor is a photodiode.

10. The additive manufacturing method of claim 7 wherein the layer of build material comprises a metallic powder.

11. The additive manufacturing method of claim 7 wherein the fusing of the build material comprises melting the build material with the energy source.

12. The additive manufacturing method of claim 7 wherein the determined thermal energy density for each grid region of the plurality of grid regions is compared to a threshold value.

13. The additive manufacturing method of claim 7 wherein the depositing the layer is performed by a recoater arm that spreads a layer of powder.

14. An additive manufacturing system comprising:

a build material disposed across a build plane;

an energy source arranged to fuse at least a portion of the build material;

a sensor arranged to detect energy emitted from the build plane; and

a processor configured to:

divide at least a portion of the build plane into a plurality of grid regions;

receive data from the sensor while the build material is fused by the energy source;

determine an area of each grid region of the plurality of grid regions; and

calculate a thermal energy density of each grid region of the plurality of grid regions, wherein the thermal energy density is calculated based on the data received from the sensor and the area of each grid region of the plurality of grid regions.

15. The additive manufacturing system of claim 14 wherein the energy source fuses the build material in each grid region of the plurality of grid regions by generating a plurality of scans in each grid region of the plurality of grid regions, wherein each scan of the plurality of scans comprises a turn on of the energy source, a movement of the energy source and a turn off of the energy source.

16. The additive manufacturing system of claim 15 wherein the processor is further configured to sum data generated by the sensor for each scan of the plurality of scans within each grid region of the plurality of grid regions.

17. The additive manufacturing system of claim 14 wherein the build material comprises a metallic powder.

18. The additive manufacturing system of claim 14 wherein the energy source comprises a laser.

19. The additive manufacturing system of claim 14 wherein the processor is further configured to compare the calculated thermal energy density of each grid region of the plurality of grid regions to a threshold value.

Assignments (6)
SECURITY INTEREST Recorded Sep 3, 2025
From: ROCHEFORT MANAGEMENT LLC
To: ACQUIOM AGENCY SERVICES LLC
Reel/Frame 073006/0590 →
SECURITY INTEREST Recorded Jan 30, 2025
From: DIVERGENT TECHNOLOGIES, INC.; CZV, INC.
To: ROCHEFORT MANAGEMENT LLC
Reel/Frame 070074/0290 →
RELEASE OF SECURITY INTEREST Recorded Jan 29, 2025
From: WESTERN ALLIANCE BANK
To: DIVERGENT TECHNOLOGIES, INC.
Reel/Frame 070048/0543 →
SECURITY INTEREST Recorded May 30, 2024
From: DIVERGENT TECHNOLOGIES, INC.
To: WESTERN ALLIANCE BANK
Reel/Frame 067569/0171 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 24, 2024
From: SIGMA LABS, INC.
To: DIVERGENT TECHNOLOGIES, INC.
Reel/Frame 066365/0316 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2022
From: MADIGAN, R. BRUCE; JACQUEMETTON, LARS; WIKLE, GLENN; COLA, MARK J.; DAVE, VIVEK R.; BECKETT, DARREN; CASTRO, ALBERTO M.
To: SIGMA LABS, INC.
Reel/Frame 060861/0991 →
Continuity (6)
Continuation 16574388 · Sep 18, 2019
Continuation 16052488 · Aug 1, 2018
Provisional Application 62540016 · Aug 1, 2017
Provisional Application 62633487 · Feb 21, 2018
Provisional Application 62643457 · Mar 15, 2018
Related Publication 20220388249A1 · Dec 8, 2022
Cited By (1)
US 12,337,523