IP Library Patent Application 18922224
Patent Application
App. No. 18/922,224

METHODS AND SYSTEMS FOR QUALITY INFERENCE AND CONTROL FOR ADDITIVE MANUFACTURING PROCESSES

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Quick Facts
Patent No.
US None
App. No.
18/922,224
Abstract

This disclosure describes an additive manufacturing method that includes monitoring a temperature of a portion of a build plane during an additive manufacturing operation using a temperature sensor as a heat source passes through the portion of the build plane; detecting a peak temperature associated with one or more passes of the heat source through the portion of the build plane; determining a threshold temperature by reducing the peak temperature by a predetermined amount; identifying a time interval during which the monitored temperature exceeds the threshold temperature; identifying, using the time interval, a change in manufacturing conditions likely to result in a manufacturing defect; and changing a process parameter of the heat source in response to the change in manufacturing conditions.

Claims (29)

1 . An additive manufacturing method comprising:

monitoring a temperature of a portion of a layer during an additive manufacturing operation as a heat source passes across the portion of the layer; and

determining a cooling rate of the portion of the layer, wherein the cooling rate is based on the monitored temperature.

2 . The additive manufacturing method of claim 1 , wherein the layer includes a build plane.

3 . The additive manufacturing method of claim 1 , wherein the monitored temperature includes a peak temperature.

4 . The additive manufacturing method of claim 3 , wherein when the peak temperature is identified in response to the monitored temperature exceeding a predetermined threshold temperature.

5 . The additive manufacturing method of claim 1 , wherein the cooling rate is based at least in part on a peak temperature.

6 . The additive manufacturing method of claim 1 , wherein a time associated with the cooling rate is determined from a cooling rate fit line that approximates the cooling rate.

7 . The additive manufacturing method of claim 1 , wherein the monitoring is performed using a pyrometer.

8 . The additive manufacturing method of claim 7 , wherein the pyrometer is an “on axis” pyrometer that is aligned with optics used by the heat source.

9 . An additive manufacturing system comprising:

a heat source;

an optical sensor arranged to receive optical emissions from a portion of a layer of material during an additive manufacturing operation in which the portion of the layer of material is heated by the heat source; and

at least one processor arranged to collect data from the optical sensor, the at least one processor being further configured to:

convert the collected data to temperature data indicative of a temperature of the portion of the layer of material; and

determine a cooling rate of the portion of the layer, wherein the cooling rate is based on the temperature data.

10 . The additive manufacturing system of claim 9 , wherein the layer includes a build plane.

11 . The additive manufacturing system of claim 9 , wherein the temperature data includes a peak temperature.

12 . The additive manufacturing system of claim 11 , wherein the peak temperature is identified in response to the temperature data exceeding a predetermined threshold temperature.

13 . The additive manufacturing system of claim 9 , wherein the cooling rate is based on a peak temperature.

14 . The additive manufacturing system of claim 9 , wherein a time associated with the cooling rate is determined from a cooling rate fit line that approximates the cooling rate.

15 . The additive manufacturing system of claim 9 , wherein the optical sensor is an “on axis” sensor that is aligned with optics used by the heat source.

16 . An additive manufacturing method comprising:

monitoring optical emissions emitted by a portion of a layer of build material during an additive manufacturing operation as a heat source passes across the portion of the layer; and

determining a cooling rate of the portion of the layer, wherein the cooling rate is based on the monitored optical emissions.

17 . The additive manufacturing method of claim 16 , wherein the layer includes a build plane.

18 . The additive manufacturing method of claim 16 , wherein the optical emissions are converted to temperature data and wherein a peak of the temperature data is identified.

19 . The additive manufacturing method of claim 18 , wherein the peak of the temperature data is identified in response to the temperature data exceeding a predetermined threshold temperature.

20 . The additive manufacturing method of claim 16 , wherein a time associated with the cooling rate is determined from a cooling rate fit line that approximates the cooling rate.

Assignments (4)
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 5, 2024
From: JACQUEMETTON, LARS; DAVE, VIVEK R.; COLA, MARK J.; WIKLE, GLENN; MADIGAN, R. BRUCE
To: SIGMA LABS, INC.
Reel/Frame 069148/0164 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 5, 2024
From: SIGMA LABS, INC.
To: DIVERGENT TECHNOLOGIES, INC.
Reel/Frame 069310/0348 →