IP Library Granted Patent US 10,226,817
Granted Patent B2
US 10,226,817 · App. 14/995,183 · Granted Mar 12, 2019

Material qualification system and methodology

Inventors: Vivek R. Dave (Concord, NH); Mark J. Cola (Santa Fe, NM)
Assignee: SIGMA LABS, INC.
B22F3/1055B29C64/386B22F2003/1057B33Y10/00B33Y30/00B33Y50/02Y02P10/295
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Quick Facts
Patent No.
US 10,226,817
App. No.
14/995,183
Granted
Mar 12, 2019
Kind
B2
Abstract

Various ways in which material property variations of raw materials used in additive manufacturing can be identified and accounted for are described. In some embodiments, the raw material can take the form of powdered metal. The powdered metal can have any number of variations including the following: particle size variation, contamination, particle composition and particle shape. Prior to utilizing the powders in an additive manufacturing operation, the powders can be inspected for variations. Variations and inconsistencies in the powder can also be identified by monitoring an additive manufacturing with one or more sensors. In some embodiments, the additive manufacturing process can be adjusted in real-time to adjust for inconsistencies in the powdered metal.

Claims (36)

1. An additive manufacturing system, comprising:

a heat source configured to direct energy towards a layer of powder arranged on a powder bed;

an optical sensing system configured to measure energy radiated from a portion of the layer of powder receiving energy from the heat source; and

a controller configured to:

receive sensor data from the optical sensing system during an additive manufacturing operation using a first batch of powder with a test pattern and standardized system parameters to produce a first part;

compare readings taken by the optical sensing system to readings taken by the optical sensing system during a previous additive manufacturing operation that used a second batch of powder with the test pattern and the standardized system parameters to produce a second part; and

determine one or more powder characteristics of the first batch of powder from the comparison of the readings.

2. The additive manufacturing system of claim 1 , wherein the optical sensing system comprises a pyrometer.

3. The additive manufacturing system of claim 1 , wherein in response to the controller identifying differences when comparing the sensor data associated with the first batch of powder to the sensor data associated with the second batch of powder, the controller is further configured to determine whether the differences are a result of unexpected variations of the powder characteristics of the first batch of powder.

4. The additive manufacturing system of claim 3 , wherein the controller only identifies differences when the differences exceed a predetermined threshold.

5. The additive manufacturing system of claim 1 , wherein the readings taken from the optical sensing system comprise peak temperature of the portion of the layer of powder receiving energy from the heat source.

6. An additive manufacturing method, comprising:

using a first batch of powder in an additive manufacturing operation;

carrying out the additive manufacturing operation to produce a first part using a test pattern and standardized parameter settings,

monitoring the additive machining operation with one or more sensors configured to measure energy radiated during the additive machining operation;

comparing data recorded by the one or more sensors to data recorded during a previous additive machining operation that produced a second part using a second batch of powder with the test pattern and the standardized parameter settings, wherein the second part has a desired results during additive manufacturing operations; and

determining one or more powder characteristics of the first batch of powder from the comparison of the data.

7. The additive manufacturing method of claim 6 , wherein the powder characteristics comprise an average diameter of particles making up the first batch of powder.

8. The additive manufacturing method of claim 6 , wherein monitoring the additive manufacturing operation comprises measuring heating and cooling rates of the first batch of powder.

9. The additive manufacturing method of claim 6 , wherein monitoring the additive manufacturing operation comprises measuring peak temperature of the first batch of powder for each layer of the first part.

10. The additive manufacturing method of claim 6 , wherein the second part is a calibration part having a plurality of features having varied geometries configured to test various material properties of the first batch of powder.

11. An additive manufacturing method, comprising:

using a first portion of a first batch of powder in an additive manufacturing operation;

carrying out a first additive manufacturing operation to produce a first part using a test pattern and standardized parameter settings;

monitoring the additive machining operation with one or more sensors configured to measure energy radiated during the additive machining operation;

comparing data recorded by the one or more sensors to data recorded during a second additive machining operation that produced a second part using a second batch of powder with the test pattern and the standardized parameter settings;

determining one or more powder characteristics of the first batch of powder from the comparison of the data;

adjusting parameters of a third additive manufacturing operation in accordance with the one or more powder characteristics; and

performing the third additive manufacturing operation with a second portion of the first batch of powder using the adjusted parameters to produce a third part.

12. The additive manufacturing method of claim 11 , wherein determining the powder characteristics of the first batch of powder is carried out by a controller in communication with a thermographic sensor.

13. The additive manufacturing method of claim 12 , wherein the controller is configured to calculate peak temperature of a portion of each layer while the first part is being manufactured using temperature data provided by the thermographic sensor.

14. The additive manufacturing method of claim 11 , wherein the first batch of powder comprises portions of the second batch of powder recovered from the second additive manufacturing operation, and wherein determining one or more powder characteristics of the first batch of powder comprises verifying that the recovered portions of the second batch of powder meets particle size distribution requirements.

15. The additive manufacturing method of claim 14 , further comprising:

processing the recovered portions of the second batch of powder to reduce variations in particle size.

16. The additive manufacturing method of claim 14 , further comprising:

conducting in-process checks and verification of the recovered portions of the second batch of powder during the third additive manufacturing operation.

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 Jun 14, 2018
From: DAVE, VIVEK R.; COLA, MARK J.
To: SIGMA LABS, INC.
Reel/Frame 046088/0662 →
Continuity (4)
Continuation PCTUS2016013303 · Jan 13, 2016
Provisional Application 62103034 · Jan 13, 2015
Provisional Application 62235232 · Sep 30, 2015
Related Publication 20160199911A1 · Jul 14, 2016
Cited By (3)
US 12,292,384 US 12,499,176 US 12,643,110