IP Library › Granted Patent US 11,661,644
Granted Patent B2
US 11,661,644 · App. 16/451,430 · Granted May 30, 2023

Apparatus and method for direct writing of single crystal super alloys and metals

Inventors: William Thomas Carter (Galway, NY); Todd Jay Rockstroh (Maineville, OH); Douglas Gerard Konitzer (West Chester, OH)
Assignee: General Electric Company
C22F1/10B22F5/04B22F10/20B23K26/0006B23K26/034B23K26/144B23K26/1464B23K26/342B23K26/703B33Y10/00B33Y30/00B33Y50/02B33Y80/00B22F10/30B22F2999/00B23K2101/001B23K2103/08F01D5/18F01D5/28F01D9/02F05D2220/32F05D2230/30F05D2260/20F05D2300/175Y02P10/25
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Quick Facts
Patent No.
US 11,661,644
App. No.
16/451,430
Granted
May 30, 2023
Kind
B2
Abstract

Methods for direct writing of single crystal super alloys and metals are provided. The method can include: heating a substrate positioned on a base plate to a predetermined temperature using a first heater; using a laser to form a melt pool on a surface of the substrate; introducing a superalloy powder to the melt pool; measuring the temperature of the melt pool; receiving the temperature measured at a controller; and using an auxiliary heat source in communication with the controller to adjust the temperature of the melt pool. The predetermined temperature is below the substrate's melting point. The laser and the base plate are movable relative to each other, with the laser being used for direct metal deposition. An apparatus is also generally provided for direct writing of single crystal super alloys and metals.

Claims (49)

1. A method for direct writing of single crystal super alloys and metals, the method comprising:

heating a substrate to a predetermined temperature using a first heater, wherein the predetermined temperature is below the substrate's melting point;

using a first laser to form a melt pool on a surface of the substrate, wherein the substrate is positioned on a base plate, and wherein the first laser and the base plate are movable relative to each other, the first laser being used for direct metal deposition;

introducing a superalloy powder to the melt pool;

measuring the temperature of the melt pool;

receiving the temperature measured at a controller; and

using a second laser in communication with the controller to adjust the temperature of the melt pool.

2. The method of claim 1 , wherein the temperature measured is lower than the predetermined temperature, and wherein using the second laser to adjust the temperature of the melt pool comprises:

increasing power to the second laser.

3. The method of claim 1 , wherein the temperature measured is higher than the predetermined temperature, and wherein using the second laser to adjust the temperature of the melt pool comprises:

decreasing power to the second laser.

4. The method of claim 1 , further comprising:

using a cooling source in communication with the controller to adjust the temperature of the melt pool.

5. The method of claim 4 , wherein the cooling source is a cooling gas in communication with the controller to cool at an opposite side of the substrate from the surface such that a thermal gradient is controlled through the second laser and the cooling source.

6. The method of claim 5 , wherein the temperature measured is lower than the predetermined temperature, and wherein using the cooling source to adjust the temperature of the melt pool comprises:

decreasing a gas flow of the cooling gas to the melt pool.

7. The method of claim 5 , wherein the temperature measured is higher than the predetermined temperature, and wherein using the cooling source to adjust the temperature of the melt pool comprises:

increasing a gas flow of the cooling gas to the melt pool.

8. A method for direct writing of single crystal super alloys and metals, the method comprising:

heating a substrate to a predetermined temperature using a first heater, wherein the predetermined temperature is below the substrate's melting point;

using a first laser to form a melt pool on a surface of the substrate, wherein the substrate is positioned on a base plate, and wherein the first laser and the base plate are movable relative to each other, the first laser being used for direct metal deposition;

introducing a superalloy powder to the melt pool;

measuring the temperature of the melt pool;

receiving the temperature measured at a controller;

using a second laser in communication with the controller to adjust the temperature of the melt pool; and

using a cooling source in communication with the controller to adjust the temperature of the substrate.

9. The method of claim 8 , wherein the cooling source is a cooling gas in communication with the controller to cool at an opposite side of the substrate from the surface such that a thermal gradient is controlled through the second laser and the cooling source.

10. The method of claim 9 , wherein the temperature measured is lower than the predetermined temperature, and wherein using the cooling source to adjust the temperature of the substrate comprises:

decreasing a gas flow of the cooling gas to the substrate.

11. The method of claim 9 , wherein the temperature measured is higher than the predetermined temperature, and wherein using the cooling source to adjust the temperature of the substrate comprises:

increasing a gas flow of the cooling gas to the substrate.

12. The method of claim 8 , wherein the cooling source is a furnace, and wherein the substrate is positioned within the furnace.

13. The method of claim 12 , wherein the temperature measured is lower than the predetermined temperature, and wherein using the cooling source to adjust the temperature of the substrate comprises:

increasing the temperature of the furnace.

14. The method of claim 12 , wherein the temperature measured is higher than the predetermined temperature, and wherein using the cooling source to adjust the temperature of the substrate comprises:

decreasing the temperature of the furnace.

15. An apparatus for direct writing of single crystal super alloys and metals comprising:

a first laser having a power output;

a base plate configured for holding a substrate thereon;

a direct metal deposition (DMD) head configured to supply a stream of superalloy powder onto the substrate, the DMD head also configured to control a location of the first laser;

an induction heating source positioned to heat the substrate on the base plate to a predetermined temperature;

a second laser positioned to heat the substrate on the base plate;

a cooling means; and

a controller for controlling the second laser and the cooling means, wherein the controller is responsive to a measured temperature of at least one of a melt pool on the substrate and the substrate.

16. The apparatus as in claim 15 , comprising the cooling means, wherein the cooling means comprises a gas source having a variable flow rate controlled by a valve in communication with the controller.

17. The apparatus as in claim 15 , comprising the cooling means, wherein the cooling means comprises a furnace into which the substrate is positioned.

18. The apparatus as in claim 15 , further comprising:

a pyrometer configured to measure the temperature of the at least one of the melt pool on the substrate or the superalloy powder, wherein the pyrometer is in communication with the controller.

19. The apparatus as in claim 15 , wherein the induction heating source is a heating coil.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2019
From: CARTER, WILLIAM THOMAS; ROCKSTROH, TODD JAY; KONITZER, DOUGLAS GERARD
To: GENERAL ELECTRIC COMPANY
Reel/Frame 049578/0418 →
Continuity (2)
Continuation 14830759 · Aug 20, 2015
Related Publication 20190323111A1 · Oct 24, 2019