IP Library Granted Patent US 8,878,094
Granted Patent B2
US 8,878,094 · App. 10/525,938 · Granted Nov 4, 2014

Part-geometry independent real time closed loop weld pool temperature control system for multi-layer DMD process

Inventor: Vijayavel Bagavath-Singh (Rochester Hills, MI)
Assignee: DM3D Technology, LLC
B23K15/0086B23K26/032B22F3/1055
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Quick Facts
Patent No.
US 8,878,094
App. No.
10/525,938
Granted
Nov 4, 2014
Kind
B2
Abstract

In a direct metal deposition system which builds up a metallic overlay on a substrate by moving the substrate relative to a laser in a metallic powder feed, the laser power is adjusted for successive layers by sensing the weld pool in a plurality of selected points in each layer and adjusting the power during successive layers to maintain a weld pool that corresponds to those achieved during deposition of a lower optimal layer. This compensates for heating of the substrate resulting from the deposition which tends to increase the pool size or temperature in the higher layers.

Claims (25)

1. A method of forming a metal section on a metal substrate by depositing a plurality of superimposed layers comprising the steps of:

utilizing a laser generating a heating beam and a powdered metal source operative to feed metal powder into the beam and moving the substrate relative to the beam under numerical control over a programmed path to provide advancing melt pool layers;

providing a first melt pool layer and not sensing parameters of the first melt pool layer for reducing an effect of thermal conduction by the metal substrate upon sensed parameters and providing a second melt pool layer over the first melt pool layer and sensing parameters of the second melt pool layer at a plurality of selected coordinates during the generation of a plurality of metallic layers;

storing the sensed parameters of the second melt pool layer at each of the selected coordinates; and

processing the stored parameters to determine an appropriate laser power for use during the deposition of a melt pool layer applied subsequent to the second melt pool layer and adjusting the power of the heating beam based upon the sensed parameters of the second melt pool layer to account for heat retained by the metal substrate.

2. The method of claim 1 wherein processing the stored parameters comprises comparing a matrix of the sensed parameters stored during formation of the last layer deposited with the matrix of the sensed parameters of an earlier deposited layer to determine an appropriate laser power for use during the deposition of the next layer.

3. The method of claim 2 wherein the earlier deposited layer constitutes the second layer deposited over the substrate.

4. The method of claim 1 wherein the sensed parameters of the pool comprise the dimensions of the pool.

5. The method of claim 1 wherein the sensed parameters of the pool comprise the optical intensity of the pool.

6. The method of claim 1 wherein the sensed parameters of the pool comprise the dimensions of the pool and the optical intensity of the pool.

7. The method of claim 1 wherein the sensed parameters of the melt pool comprise the temperature of the melt pool.

8. A method of forming a metal section on a metal substrate by depositing a plurality of superimposed layers comprising the steps of:

utilizing a power source generating a heating beam and a metal source operative to feed metal powder into the beam and moving the substrate relative to the beam over the section to provide an advancing first layer of a melt pool;

providing a second layer of a melt pool over the first layer of the melt pool and sensing parameters of the second layer of the melt pool at a plurality of selected coordinates while not sensing parameters of the first melt pool layer for reducing an effect of thermal conduction by the metal substrate upon sensed parameters during the generation of a plurality of metallic layers;

storing the sensed parameters of the second layer of the melt pool at each of the coordinates; and processing the stored parameters to determine an appropriate laser power for use during deposition of a subsequent layers of a melt pool, and adjusting laser power used to provide the subsequent layers of the melt pool based upon sensed parameters of a previous layer of the melt pool.

9. The method of claim 8 wherein the power source is a laser.

10. The method of claim 8 wherein the power source is an electron beam.

11. The method of claim 8 wherein the power beam level is maintained at a constant during generation of each layer.

12. A method of forming a metal section on a metal substrate by depositing a plurality of superimposed layers comprising the steps of:

utilizing a heating beam and a powdered metal source operative to feed metal powder into the beam and moving the substrate relative to the beam under numerical control over a programmed path to provide an advancing melt pool;

depositing a first layer of a melt pool in contact with the substrate using a first heating beam power;

depositing a second layer of a melt pool over the first layer of the melt pool using the same heating beam power as used to deposit the first layer of the melt pool, not sensing parameters of the first melt pool layer for reducing an effect of thermal conduction by the metal substrate upon the sensed parameters and sensing parameters of the second layer of the melt pool at a plurality of selected coordinates during the generation of the second layer of the melt pool;

depositing a third layer of a melt pool while adjusting the power of the heating beam based upon sensed parameters of the second layer of the melt pool and sensed parameters of the third layer of the melt pool; and

using stored parameters of the melt pool during generation of the second and third layer of the melt pool to determine an appropriate heating beam power for use during deposition of subsequent layers of the melt pool.

13. The method of claim 12 whereas each subsequent layer is deposited, the parameters of the melt pool are sensed at said plurality of selected coordinates and are used, along with previously stored sensed parameters, to determine the heating beam power for subsequent layers.

Assignments (3)
NUNC PRO TUNC ASSIGNMENT Recorded Dec 17, 2013
From: THE POM GROUP, INC.
To: DM3D TECHNOLOGY, LLC
Reel/Frame 031800/0341 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE NAME PREVIOUSLY RECORDED ON REEL 017143 FRAME 0347. ASSIGNOR(S) HEREBY CONFIRMS THE CORRECTION OF ASSIGNEE NAME FROM THE P.O.M. GROUP TO THE POM GROUP, INC.. Recorded Dec 2, 2013
From: BAGAVATH-SINGH, VIJAYAVEL
To: THE POM GROUP, INC.
Reel/Frame 031747/0093 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 27, 2005
From: BAGAVATH-SINGH, VIJAYAVEL
To: P.O.M. GROUP, THE
Reel/Frame 017143/0347 →
Continuity (2)
Provisional Application 60406366 · Aug 28, 2002
Related Publication 20060032840A1 · Feb 16, 2006