IP Library › Granted Patent US 12,605,767
Granted Patent B2
US 12,605,767 · App. 18/414,746 · Granted Apr 21, 2026

Additive manufacturing system assessment and control adjustment

Inventors: Steven M. Storck (Catonsville, MD); Mary E. Daffron (Columbia, MD); Vincent R. Pagan (Ellicott City, MD); Brendan P. Croom (Baltimore, MD); Ari M. Lax (Silver Spring, MD)
Assignee: The Johns Hopkins University
B22F10/366B22F10/28B22F12/41B33Y30/00B33Y50/02
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Quick Facts
Patent No.
US 12,605,767
App. No.
18/414,746
Granted
Apr 21, 2026
Kind
B2
Abstract

A method for adjusting laser control parameters of a laser additive manufacturing system for construction of a part is provided. The method may include performing a laser scan of a building surface, and detecting spectral and intensity response information indicative of at least a temperature at the building surface. The method may also include correlating the spectral and intensity response information with spatial positioning of the laser during the laser scan to generate spatially-correlated spectral and intensity response information. Additionally, the method may include generating a spatial adjustment mask based on the spatially-correlated spectral and intensity response information and a target spatial intensity profile, applying the spatial adjustment mask to spatially-defined laser control parameters, and controlling the laser to perform an additive manufacturing build operation performed in accordance with the target spatial intensity profile due to application of the spatial adjustment mask to construct the part.

Claims (56)

1 . A method for adjusting laser control parameters of a laser additive manufacturing system for construction of a part, the method comprising:

controlling a laser of the laser additive manufacturing system to perform a laser scan of a building surface;

detecting, by a sensor, spectral and intensity response information from the laser scan of the build surface, wherein the spectral and intensity response information is indicative of at least a temperature at the building surface during the laser scan;

correlating the spectral and intensity response information with spatial positioning of the laser during the laser scan to generate spatially-correlated spectral and intensity response information;

generating a spatial adjustment mask based on the spatially-correlated spectral and intensity response information and a target spatial intensity profile;

applying, by control circuitry, the spatial adjustment mask to spatially-defined laser control parameters; and

controlling the laser to perform an additive manufacturing build operation to construct the part, the additive manufacturing build operation being performed in accordance with the target spatial intensity profile due to application of the spatial adjustment mask.

2 . The method of claim 1 , wherein the build surface is a surface of a build plate.

3 . The method of claim 1 , wherein the build surface comprises a surface of a layer of construction material.

4 . The method of claim 1 , wherein the build surface is a surface of a build plate;

wherein the laser scan is a first laser scan, the spectral and intensity response information is first spectral and intensity response information, and the spatially-correlated spectral and intensity response information is spatially-correlated first spectral and intensity response information;

wherein the method further comprises:

controlling the laser to form a layer of construction material on the build plate;

controlling the laser to perform a second laser scan of the layer of construction material;

detecting, by the sensor during the second laser scan, second spectral and intensity response information of the layer of construction material, wherein the second spectral and intensity response information is indicative of at least a temperature at a surface of the layer of construction material during the second laser scan; and

correlating the second spectral and intensity response information with spatial positioning of the laser during the second laser scan to generate spatially-correlated second spectral and intensity response information;

wherein generating the spatial adjustment mask is based on the spatially-correlated first spectral and intensity response information, the spatially-correlated second spectral and intensity response information, and the target spatial intensity profile.

5 . The method of claim 1 , wherein the target spatial intensity profile comprises uniform energy coupling across a build area during the additive manufacturing build operation.

6 . The method of claim 1 , wherein the target spatial intensity profile comprises non-uniform, spatially tailored energy coupling across a build area during the additive manufacturing build operation.

7 . The method of claim 1 , wherein the sensor is configured to capture the spectral and intensity response information within a plurality of electromagnetic spectrum wavelength bands, wherein one of the electromagnetic spectrum wavelength bands includes visible wavelengths and one of the electromagnetic spectrum wavelength bands includes infrared wavelengths.

8 . The method of claim 1 , wherein the laser scan of the building surface maintains an applied temperature below a melt temperature for the building surface.

9 . The method of claim 1 further comprising comparing the spatial adjustment mask to a maintenance threshold and triggering an alert in response to the spatial adjustment mask exceeding the maintenance threshold.

10 . The method of claim 1 , wherein the detecting by the sensor is performed on a common axis with output of the laser.

11 . The method of claim 1 , wherein the sensor comprises a silicon photomultiplier (SiPM) detector.

12 . The method of claim 1 , wherein the laser is directed through an f-theta lens.

13 . A laser additive manufacturing system comprising:

a laser generator configured to generate a laser;

a laser movement assembly configured to direct a position of the laser;

a sensor configured to detect spectral and intensity response information associated with operation of the laser; and

control circuitry configured to:

control the laser to perform a laser scan of a building surface;

receive, from the sensor, the spectral and intensity response information captured during the laser scan of the build surface, wherein the spectral and intensity response information is indicative of at least a temperature at the building surface during the laser scan;

correlate the spectral and intensity response information with spatial positioning of the laser during the laser scan to generate spatially-correlated spectral and intensity response information;

generate a spatial adjustment mask based on the spatially-correlated spectral and intensity response information and a target spatial intensity profile;

apply the spatial adjustment mask to spatially-defined laser control parameters; and

control the laser to perform an additive manufacturing build operation to construct a part, the additive manufacturing build operation being performed in accordance with the target spatial intensity profile due to application of the spatial adjustment mask.

14 . The laser additive manufacturing system of claim 13 , wherein the build surface is a surface of a build plate or a surface of a layer of construction material.

15 . The laser additive manufacturing system of claim 13 , wherein the build surface is a surface of a build plate;

wherein the laser scan is a first laser scan, the spectral and intensity response information is first spectral and intensity response information, and the spatially-correlated spectral and intensity response information is spatially-correlated first spectral and intensity response information;

wherein control circuitry is further configured to:

control the laser to form a layer of construction material on the build plate;

control the laser to perform a second laser scan of the layer of construction material;

receive, from the sensor, second spectral and intensity response information of the layer of construction material captured during the second laser scan, wherein the second spectral and intensity response information is indicative of at least a temperature at a surface of the layer of construction material during the second laser scan; and

correlate the second spectral and intensity response information with spatial positioning of the laser during the second laser scan to generate spatially-correlated second spectral and intensity response information;

wherein the control circuitry is further configured to generate the spatial adjustment mask is based on the spatially-correlated first spectral and intensity response information, the spatially-correlated second spectral and intensity response information, and the target spatial intensity profile.

16 . The laser additive manufacturing system of claim 13 , wherein the target spatial intensity profile comprises uniform energy coupling across a build area during the additive manufacturing build operation.

17 . The laser additive manufacturing system of claim 13 , wherein the target spatial intensity profile comprises non-uniform, spatially tailored energy coupling across a build area during the additive manufacturing build operation.

18 . The laser additive manufacturing system of claim 13 , wherein the sensor is configured to capture the spectral and intensity response information within a plurality of electromagnetic spectrum wavelength bands, wherein one of the electromagnetic spectrum wavelength bands includes visible wavelengths and one of the electromagnetic spectrum wavelength bands includes infrared wavelengths.

19 . The laser additive manufacturing system of claim 13 , wherein the control circuitry is further configured to compare the spatial adjustment mask to a maintenance threshold and trigger an alert in response to the spatial adjustment mask exceeding the maintenance threshold.

20 . An apparatus comprising laser control circuitry for implementation within a laser additive manufacturing system, the laser control circuitry being configured to:

control a laser to perform a laser scan of a building surface;

receive, from a sensor, spectral and intensity response information captured during the laser scan of the build surface, wherein the spectral and intensity response information is indicative of at least a temperature at the building surface during the laser scan;

correlate the spectral and intensity response information with spatial positioning of the laser during the laser scan to generate spatially-correlated spectral and intensity response information;

generate a spatial adjustment mask based on the spatially-correlated spectral and intensity response information and a target spatial intensity profile;

apply the spatial adjustment mask to spatially-defined laser control parameters; and

control the laser to perform an additive manufacturing build operation to construct a part, the additive manufacturing build operation being performed in accordance with the target spatial intensity profile due to application of the spatial adjustment mask.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 2, 2024
From: STORCK, STEVEN M.; DAFFRON, MARY E.; PAGAN, VINCENT R.; CROOM, BRENDAN P.; LAX, ARI M.
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 066335/0286 →
Continuity (2)
Provisional Application 63485639 · Feb 17, 2023
Related Publication 20240408675A1 · Dec 12, 2024
References Cited (5)
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US 20230234137A1 · Reutzel · 2023 [cited by examiner]
Benedikt Brandau et al., “Angular dependence of coaxial and quasi-coaxial monitoring systems for process radiation analysis in laser materials processing,” Optics and Lasers in Engineering 155, 107050, 2022, pp. 1-14. [cited by applicant]