IP Library Patent Application 13362470
Patent Application
App. No. 13/362,470

REAL TIME CAP FLATTENING DURING HEAT TREAT

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Quick Facts
Patent No.
US None
App. No.
13/362,470
Abstract

An additive manufacturing process includes the steps of measuring a parameter of a part supported within a workspace after a heat treat or other stress relieving process. The measured parameter being a part characteristic that is desired to be within a desired range prior to proceeding with an additional fabrication process. The process further includes the step of applying at least one additional layer on the part based on the measured parameter to adjust the measured parameter to within the desired range.

Claims (27)

1 . An additive manufacturing process comprising:

measuring a parameter of a part supported within a workspace, the measured parameter required to be within a desired range prior to proceeding with an additional fabrication process; and

applying at least one additional layer on the part based on the measured parameter to adjust the measured parameter to within the desired range.

2 . The additive manufacturing process as recited in claim 1 , wherein the measured parameter comprises a surface flatness of a top surface of the part.

3 . The additive manufacturing process as recited in claim 1 , including measuring a flatness of the part with a laser profilometer.

4 . The additive manufacturing process as recited in claim 1 , including measuring a flatness of the part with a measurement device including three-dimensional optics.

5 . The additive manufacturing process as recited in claim 1 , including the step of defining a topography of a top surface of the part based on the measured parameter and defining a pattern of material application based on the defined topography.

6 . The additive manufacturing process as recited in claim 1 , including applying a powder metal material over a portion of a top surface of the part to generate a top surface with a flatness within the desired range.

7 . The additive manufacturing process as recited in claim 1 , including the step of measuring the measured parameter throughout a stress relieving process.

8 . The additive manufacturing process as recited in claim 1 , including the step of continuing an additive manufacturing process responsive to the measured parameter being within the desired range.

9 . An additive manufacturing device comprising:

a workspace defining an area for part fabrication;

a material application device for spreading a powder within the workspace;

an energy transmitting device for generating a molten area of powder for forming a layer of a part;

a measurement device mounted within the workspace for measuring a parameter of the part; and

a controller governing application of material to the part to adjust the parameter to within a desired range based on measurements of the parameter by the measurement device.

10 . The additive manufacturing device as recited in claim 9 , wherein the measurement device comprises a laser profilometer.

11 . The additive manufacturing device as recited in claim 9 , wherein the measurement device includes three-dimensional optics.

12 . The additive manufacturing device as recited in claim 9 , wherein the parameter comprises a flatness of a top surface of the part.

13 . The additive manufacturing device as recited in claim 9 , wherein the controller defines a topography of a top surface of the part based on measurements taken by the measurement device.

14 . The additive manufacturing device as recited in claim 13 , wherein the controller defines a material application pattern based on the defined topography of the top surface of the part.

15 . The additive manufacturing device as recited in claim 9 , including elements supported within the chamber for stress relieving the part, and the measurement device provides for continued measurement of the parameter during the process of stress relieving the part.

16 . A powder bed additive manufacturing process comprising:

monitoring a geometry of an upper surface of a part during a heat treat operation;

determining an out of tolerance condition of the geometry;

generating a topography of the upper surface in response to determining the out of tolerance condition; and

iteratively fusing material with the upper surface in layers based on the topography, thereby flattening the upper surface.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Aug 5, 2016
From: U.S. BANK NATIONAL ASSOCIATION
To: AEROJET ROCKETDYNE OF DE, INC. (F/K/A PRATT & WHITNEY ROCKETDYNE, INC.)
Reel/Frame 039597/0890 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 10, 2013
From: PRATT & WHITNEY ROCKETDYNE, INC.
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 030774/0529 →
SECURITY AGREEMENT Recorded Jun 21, 2013
From: PRATT & WHITNEY ROCKETDYNE, INC.
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 030656/0615 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 6, 2012
From: KEREMES, JOHN J.; HAYNES, JEFFREY D.; GAO, YOUPING; MATEJCZYK, DANIEL EDWARD; LANDAU, JOEL G.
To: PRATT & WHITNEY ROCKETDYNE, INC.
Reel/Frame 027811/0724 →