IP Library › Granted Patent US 10,583,485
Granted Patent B2
US 10,583,485 · App. 15/404,316 · Granted Mar 10, 2020

System and method for controlling an energy beam of an additive manufacturing system

Inventors: Brett E. Griffith (Kansas City, MO); Christopher L. Boucher (Kansas City, MO)
Assignee: Honeywell Federal Manufacturing & Technologies, LLC
B22F3/1055B33Y10/00B33Y30/00B33Y50/02G05B19/4099B22F2003/1056B22F2003/1057B29C64/135G05B2219/49007Y02P10/295
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Quick Facts
Patent No.
US 10,583,485
App. No.
15/404,316
Granted
Mar 10, 2020
Kind
B2
Abstract

An additive manufacturing system includes an energy beam generator that generates an energy beam to melt and fuse raw materials for a part and a computing device that controls operation of the energy beam generator. The computing device includes a memory element that stores or access a three-dimensional model of the part, and a processing element that receives at least a portion of the three-dimensional model and controls a parameter of the energy beam generator according to a gradient function so as to apply a variable amount of heat to the raw material that forms an overhang on the part.

Claims (16)

1. An additive manufacturing system comprising:

an energy beam generator that generates an energy beam to melt and fuse raw materials for a part; and

a computing device for controlling operation of the energy beam generator, the computing device comprising—

a memory element configured to store or access a three-dimensional model of the part, the three-dimensional model defining at least one overhang of the part,

a processing element in electronic communication with the memory element, the processing element configured to receive at least a portion of the three-dimensional model and control a parameter of the energy beam generator according to a gradient function so as to apply a variable amount of heat to the raw material that forms the overhang,

wherein the processing element is further configured to determine energy beam paths across the raw material; calculate a power output of the energy beam generator for the paths; and calculate a scan speed for the energy beam generator for the paths,

wherein the parameter of the energy beam generator that is controlled according to the gradient function is both the output power and the scan speed of the energy beam generator, and

wherein the processing element is configured to calculate the output power for the energy beam generator with a first gradient function such that the output power is at a user-selected lower output power level over most of the raw material that forms the overhang and ramps up to a relatively higher output power level approximate a boundary of the overhang, and wherein the processing element calculates the scan speed for the energy beam generator with a second gradient function such that the scan speed is set to a user-selected faster scan speed over most of the raw material that forms the overhang and ramps down to a relatively slower scan speed approximate a boundary of the overhang.

2. The additive manufacturing system of claim 1 , wherein the processing element is further configured to communicate the output power and the scan speed of the energy beam generator for multiple lines in the energy beam paths.

3. An additive manufacturing system comprising:

an energy beam generator configured to generate an energy beam to melt and fuse raw materials for a part; and

a computing device for controlling operation of the energy beam generator, the computing device comprising—a memory element configured to store or access a three-dimensional model of the part, the three-dimensional model defining at least one overhang of the part, and

a processing element in electronic communication with the memory element, the processing element configured to receive at least a portion of the three-dimensional model and control an output power and scan speed of the energy beam generator according to a plurality of gradient functions so as to apply a variable amount of heat to the raw material that forms the overhang,

wherein the processing element is configured to calculate the output power for the energy beam generator with a first gradient function such that the output power is at a user-selected lower output power level over most of the raw material that forms the overhang and ramps up to a relatively higher output power level approximate a boundary of the overhang, and wherein the processing element calculates the scan speed for the energy beam generator with a second gradient function such that the scan speed is set to a user-selected faster scan speed over most of the raw material that forms the overhang and ramps down to a relatively slower scan speed approximate a boundary of the overhang.

4. The additive manufacturing system of claim 3 , wherein the processing element is further configured to determine energy beam paths across the raw material; calculate a power output of the energy beam generator for the paths; and calculate a scan speed for the energy beam generator for the paths.

5. The additive manufacturing system of claim 3 wherein the processing element is further configured to communicate the output power and the scan speed of the energy beam generator for multiple lines in the energy beam paths.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2017
From: GRIFFITH, BRETT E.; BOUCHER, CHRISTOPHER L.
To: HONEYWELL FEDERAL MANUFACTURING & TECHNOLOGIES, LLC
Reel/Frame 040953/0429 →
Continuity (1)
Related Publication 20180193918A1 · Jul 12, 2018