IP Library Granted Patent US 11,951,539
Granted Patent B2
US 11,951,539 · App. 17/462,804 · Granted Apr 9, 2024

Modification of metal jetting compositions and methods thereof

Inventors: Mariusz Tadeusz Mika (Raleigh, NC); Peter M. Gulvin (Webster, NY)
Assignee: ADDITIVE TECHNOLOGIES, LLC
B22D23/003B22F10/22B22F12/53B33Y10/00B33Y30/00
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Quick Facts
Patent No.
US 11,951,539
App. No.
17/462,804
Granted
Apr 9, 2024
Kind
B2
Abstract

A method for metal jetting is disclosed. The method for metal jetting includes introducing a first gas into an outer nozzle of an ejector nozzle from a first gas source introducing an additive to the first gas from a second source, combining the additive with the first gas. The method for metal jetting also includes ejecting a droplet of molten metal printing material from the ejector nozzle. The method for metal jetting includes allowing the additive to react with the droplet of molten metal printing material to form a modified molten metal printing material.

Claims (35)

1. A method for metal jetting, comprising:

introducing a first gas into an outer nozzle of an ejector nozzle from a first gas source;

introducing an additive to the first gas from a second source and into an additive inlet external to and coupled to the ejector nozzle;

combining the additive with the first gas;

ejecting a droplet of molten metal printing material from the ejector nozzle;

allowing the additive to react with the droplet of molten metal printing material; and

modifying a composition of the molten printing material with the additive during ejection to form a modified molten metal printing material.

2. The method for metal jetting of claim 1 , wherein the first gas comprises an inert gas.

3. The method for metal jetting of claim 1 , wherein introducing an additive to the first gas further comprises introducing a second gas from a second gas source.

4. The method for metal jetting of claim 3 , wherein the second gas comprises an inert gas.

5. The method for metal jetting of claim 3 , wherein the second gas comprises carbon monoxide.

6. The method for metal jetting of claim 1 , wherein introducing an additive to the first gas from a second source further comprises aerosolizing a liquid to form an aerosolized liquid.

7. The method for metal jetting of claim 6 , wherein the aerosolized liquid comprises a sodium chloride solution.

8. The method for metal jetting of claim 6 , wherein introducing an additive to the first gas from a second source further comprises combining the aerosolized liquid with a second gas from a second gas source.

9. The method for metal jetting of claim 1 , wherein introducing an additive to the first gas from a second source further comprises:

combining a powder with a second gas from a second gas source to suspend the powder in the second gas; and

introducing the combined powder and second gas to the first gas.

10. The method for metal jetting of claim 9 , wherein the powder comprises a water soluble powder.

11. The method for metal jetting of claim 9 , wherein the powder comprises a ferromagnetic material.

12. The method for metal jetting of claim 11 , wherein the ferromagnetic material further comprises iron.

13. The method for metal jetting of claim 9 , wherein the powder comprises nickel, platinum, palladium, or a combination thereof.

14. The method for metal jetting of claim 1 , wherein introducing an additive to the first gas from a second source further comprises heating a solid to form a vaporized solid.

15. The method for metal jetting of claim 14 , wherein introducing an additive to the first gas from a second source further comprises combining the vaporized solid with a second gas from a second gas source.

16. The method for metal jetting of claim 14 , wherein the vaporized solid comprises a grain refiner.

17. The method for metal jetting of claim 14 , wherein the vaporized solid comprises strontium.

18. The method for metal jetting of claim 14 , wherein the vaporized solid comprises calcium.

19. A method for metal jetting, comprising:

introducing a first inert gas into an outer nozzle of an ejector nozzle from a first gas source;

combining a powder with a second inert gas from a second inert gas source to suspend the powder in the second inert gas;

combining the powder suspended in the second inert gas with the first inert gas;

ejecting a droplet of molten metal printing material from the ejector nozzle;

introducing the powder suspended in the second inert gas and the first inert gas to the molten metal printing material via an additive inlet external to and coupled to the ejector nozzle;

allowing the combination of the first inert gas and the powder suspended in the second inert gas to react with the droplet of molten metal printing material; and

modifying a composition of the molten printing material with the powder during ejection to form a modified molten metal printing material; and

depositing a droplet of the modified molten metal printing material onto a substrate or a solid printing material.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2023
From: XEROX CORPORATION
To: ELEM ADDITIVE LLC
Reel/Frame 065427/0862 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2023
From: ELEM ADDITIVE LLC
To: ADDITIVE TECHNOLOGIES, LLC DBA ADDITEC
Reel/Frame 065428/0001 →
RELEASE OF SECURITY INTEREST IN PATENTS AT R/F 062740/0214 Recorded May 18, 2023
From: CITIBANK, N.A., AS AGENT
To: XEROX CORPORATION
Reel/Frame 063694/0122 →
SECURITY INTEREST Recorded Nov 10, 2022
From: XEROX CORPORATION
To: CITIBANK, N.A., AS AGENT
Reel/Frame 062740/0214 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2021
From: MIKA, MARIUSZ TADEUSZ; GULVIN, PETER M.
To: XEROX CORPORATION
Reel/Frame 057343/0908 →
Continuity (1)
Related Publication 20230066534A1 · Mar 2, 2023