IP Library Granted Patent US 11,020,822
Granted Patent B2
US 11,020,822 · App. 16/058,866 · Granted Jun 1, 2021

Active cooling of additive manufacturing process

Inventor: Jeffrey L. Riemann (Spring Valley, CA)
Assignee: Formalloy Technologies, Inc.
B23K26/342B23K26/034B23K26/14B23K26/1437B23K26/703B33Y30/00B33Y40/00B33Y50/02
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Quick Facts
Patent No.
US 11,020,822
App. No.
16/058,866
Granted
Jun 1, 2021
Kind
B2
Abstract

Aspects of the present disclosure relate to. In one example, a method of controlling an additive manufacturing machine includes: measuring a first temperature of a part being processed by the additive manufacturing machine; determining that the first measured temperature exceeds a temperature threshold; activating an auxiliary gas flow; cooling the auxiliary gas flow with a cooling system; and directing the cooled auxiliary gas flow towards the part.

Claims (52)

1. A method of controlling an additive manufacturing machine, comprising:

measuring a first temperature of a part being processed by the additive manufacturing machine;

activating an auxiliary gas flow based on determining that the measured first temperature exceeds a temperature threshold;

cooling the auxiliary gas flow with a cooling system; and

directing the cooled auxiliary gas flow towards the part via an auxiliary gas channel, wherein:

the auxiliary gas channel is formed between a first nozzle and a second nozzle of a deposition head of the additive manufacturing machine, and

the auxiliary gas channel is separate from a powder channel formed between the second nozzle and a third nozzle of the deposition head; and

at least a portion of the auxillary gas flow comprises a gas that is not present in a carrier gas flow within the powder channel of the deposition head and not present in a shield gas flow within a laser beam channel of the deposition head.

2. The method of claim 1 , wherein the additive manufacturing machine is a laser metal deposition machine.

3. The method of claim 1 , further comprising:

measuring a second temperature of the part being processed by the additive manufacturing machine; and

changing a flow rate of the cooled auxiliary gas flow from a first flow rate to a second flow rate based on the measured second temperature.

4. The method of claim 3 , further comprising:

determining a predefined parameter value based on the measured second temperature; and

changing the flow rate of the cooled auxiliary gas flow from the first flow rate to the second flow rate based on the predefined parameter value.

5. The method of claim 1 , further comprising: changing a flow rate of the cooled auxiliary gas flow from a first flow rate to a second flow rate based on a material composition of the part.

6. The method of claim 1 , further comprising:

measuring a second temperature of the part being processed by the additive manufacturing machine; and

deactivating the auxiliary gas flow based on determining that the measured second temperature is below the temperature threshold.

7. The method of claim 1 , wherein measuring the first temperature is performed with a contact-less temperature sensor of the additive manufacturing machine.

8. The method of claim 1 , wherein measuring the first temperature is performed with an infrared-based optical sensor.

9. The method of claim 1 , further comprising: deactivating the auxiliary gas flow when a directed energy source of the additive manufacturing machine is deactivated.

10. The method of claim 1 , wherein the cooling system comprises one of a refrigeration system or vortex cooler.

11. An additive manufacturing machine, comprising:

a directed energy source;

a deposition head, comprising:

an auxiliary gas channel formed between a first nozzle and a second nozzle of the deposition head; and

a powder channel, separate from the auxiliary gas channel, and formed between the second nozzle and a third nozzle of the deposition head;

a temperature sensor;

a cooling system;

a memory comprising computer-executable instructions; and

a processor configured to execute the computer-executable instructions and cause the additive manufacturing machine to:

measure a first temperature of a part being processed with the temperature sensor;

activate an auxiliary gas flow based on determining that the measured first temperature exceeds a temperature threshold;

cool the auxiliary gas flow with the cooling system; and

direct the cooled auxiliary gas flow towards the part via the auxiliary gas channel,

wherein at least a portion of the auxillary gas flow comprises a gas that is not present in a carrier gas flow within the powder channel of the disposition head and not present in a shield gas flow within a laser beam channel of the deposition head.

12. The additive manufacturing machine of claim 11 , wherein the additive manufacturing machine is a laser metal deposition machine.

13. The additive manufacturing machine of claim 11 , wherein the processor is further configured to execute the computer-executable instructions and cause the additive manufacturing machine to:

measure a second temperature of the part being processed by the additive manufacturing machine; and

change a flow rate of the cooled auxiliary gas flow from a first flow rate to a second flow rate based on the measured second temperature.

14. The additive manufacturing machine of claim 13 , wherein the processor is further configured to execute the computer-executable instructions and cause the additive manufacturing machine to:

determine a predefined parameter value based on the measured second temperature; and

change the flow rate of the cooled auxiliary gas flow from the first flow rate to the second flow rate based on the predefined parameter value.

15. The additive manufacturing machine of claim 11 , wherein the processor is further configured to execute the computer-executable instructions and cause the additive manufacturing machine to: change a flow rate of the cooled auxiliary gas flow based on a material composition of the part.

16. The additive manufacturing machine of claim 11 , wherein the processor is further configured to execute the computer-executable instructions and cause the additive manufacturing machine to:

measure a second temperature of the part being processed by the additive manufacturing machine; and

deactivate the auxiliary gas flow based on determining that the measured second temperature is below the temperature threshold.

17. The additive manufacturing machine of claim 11 , wherein the temperature sensor is a contact-less temperature sensor.

18. The additive manufacturing machine of claim 11 , wherein the temperature sensor is an infrared-based optical sensor.

19. The additive manufacturing machine of claim 11 , wherein the processor is further configured to execute the computer-executable instructions and cause the additive manufacturing machine to: deactivate the auxiliary gas flow when the directed energy source of the additive manufacturing machine is deactivated.

20. The additive manufacturing machine of claim 11 , wherein the cooling system comprises one of a refrigeration system or vortex cooler.

Assignments (2)
CHANGE OF NAME Recorded Feb 9, 2022
From: FORMALLOY, LLC
To: FORMALLOY TECHNOLOGIES, INC.
Reel/Frame 058981/0243 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 13, 2018
From: RIEMANN, JEFFREY L.
To: FORMALLOY, LLC
Reel/Frame 046625/0389 →
Continuity (2)
Provisional Application 62543811 · Aug 10, 2017
Related Publication 20190047089A1 · Feb 14, 2019