IP Library › Granted Patent US 12,158,432
Granted Patent B2
US 12,158,432 · App. 17/173,174 · Granted Dec 3, 2024

Method for multivariate testing, development, and validation of a material for an additive manufacturing device

Inventors: Joel Ong (San Francisco, CA); Christopher Prucha (San Francisco, CA); Steve Kranz (Oakland, CA); Eduardo González-Maldonado (San Francisco, CA)
Assignee: Stratasys, Inc.
G01N21/8851B33Y50/00G01N2021/8887
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Quick Facts
Patent No.
US 12,158,432
App. No.
17/173,174
Granted
Dec 3, 2024
Kind
B2
Abstract

A method includes: accessing a first selection of a first test variable; based on the selection, photocuring a first test build by varying a value of the first test variable over a first set of test regions; accessing a first set of measurements of the first test build; calculating a target range of the first test variable based on the first set of measurements; accessing a second selection of a second test variable; based on the second selection, photocuring a second test build by varying a value of the second test variable over a second set of test regions while maintaining a target value of the first test variable within the target range of the first test variable; accessing a second set of measurements of the second test build; and calculating a second target range of the second test variable based on the second set of measurements.

Claims (144)

1. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising an intralayer scaling factor;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material;

defining a positive stepped pyramid, each level of the positive stepped pyramid characterized by a positive target dimension; and

defining a negative stepped pyramid, each level of the negative stepped pyramid characterized by a negative target dimension;

photocuring a second test build based on the second test file by, for each test region in the set of test regions:

photocuring volumes of the material via exposure to electromagnetic radiation, according to the exposure intensity value and the exposure duration value characterizing the test region, to form a positive stepped pyramid of the test region; and

photocuring volumes of the material via exposure to electromagnetic radiation, according to the exposure intensity value and the exposure duration value characterizing the test region, to form a negative stepped pyramid of the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions:

a set of positive measured dimensions corresponding to positive target dimensions of levels of a positive step pyramid of the test region; and

a set of negative measured dimensions corresponding to negative target dimensions of levels of a negative step pyramid of the test region;

for each test region in the set of test regions, calculating a measured intralayer scaling factor based on the set of positive measured dimensions for the test region and the set of negative measured dimensions for the test region;

selecting a subset of satisfactory test regions based on the measured intralayer scaling factor for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

2. The method of claim 1 :

wherein receiving the first selection comprises receiving the first selection of the first material parameter comprising the intralayer scaling factor and a second material parameter comprising a warpage factor;

wherein generating the second test file comprises generating the second test file based on the first selection and the working curve of the material, the second test file defining a second set of test regions, each test region in the second set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a horizontal beam characterized by a target deflection;

wherein photocuring the second test build comprises photocuring the second test build based on the second test file by, for each test region in the second set of test regions, photocuring the horizontal beam for the test region via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

wherein accessing the second set of physical measurements of the second test build comprises accessing the second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the second set of test regions, a measured deflection of the horizontal beam;

further comprising, for each test region in the second set of test regions, calculating a measured warpage factor based on the measured deflection of the horizontal beam; and

wherein selecting the subset of satisfactory test regions comprises selecting the subset of satisfactory test regions based on the measured intralayer scaling factor for each test region in the set of test regions and the measured warpage factor for each test region in the second set of test regions.

3. The method of claim 1 :

wherein receiving the first selection comprises receiving the first selection of the first material parameter comprising the intralayer scaling factor and a second material parameter comprising a maximum overhang angle parameter;

wherein generating the second test file comprises generating the second test file based on the first selection and the working curve of the material, the second test file defining a second set of test regions, each test region in the second set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a series of overhangs, each overhang in the series of overhangs characterized by an increasing overhang angle relative a previous overhang in the series of overhangs;

wherein photocuring the second test build comprises photocuring the second test build based on the second test file by, for each test region in the second set of test regions, photocuring the series of overhangs via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

wherein accessing the second set of physical measurements of the second test build comprises accessing the second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the second set of test regions, a measured maximum overhang angle in the series of overhang angles for the test region; and

wherein selecting the subset of satisfactory test regions comprises selecting the subset of satisfactory test regions based on the measured intralayer scaling factor for each test region in the set of test regions and the measured maximum overhang angle for each test region in the second set of test regions.

4. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising an edge building characteristic;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material;

defining a positive stepped pyramid, each level of the positive stepped pyramid characterized by a positive target dimension; and

defining a negative stepped pyramid, each level of the negative stepped pyramid characterized by a negative target dimension;

photocuring a second test build based on the second test file by, for each test region in the set of test regions:

photocuring volumes of the material via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region, to form a positive stepped pyramid of the test region; and

photocuring volumes of the material via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region, to form a negative stepped pyramid of the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions:

a set of positive measured dimensions corresponding to positive target dimensions of levels of a positive step pyramid of the test region; and

a set of negative measured dimensions corresponding to negative target dimensions of levels of a negative step pyramid of the test region;

for each test region in the set of test regions, calculating a measured edge building characteristic based on the set of positive measured dimensions for the test region and the set of negative measured dimensions for the test region;

selecting a subset of satisfactory test regions based on the measured edge building characteristic for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

5. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising a warpage factor;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a horizontal beam characterized by a target deflection;

photocuring a second test build based on the second test file by, for each test region in the set of test regions, photocuring the horizontal beam for the test region via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions, a measured deflection of the horizontal beam;

for each test region in the set of test regions, calculating a measured warpage factor based on the measured deflection of the horizontal beam;

selecting a subset of satisfactory test regions based on the measured warpage factor for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

6. The method of claim 5 :

wherein receiving the first selection comprises receiving the first selection of the first material parameter comprising the warpage factor and a second material parameter comprising a maximum overhang angle parameter;

wherein generating the second test file comprises generating the second test file based on the first selection and the working curve of the material, the second test file defining a second set of test regions, each test region in the second set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a series of overhangs, each overhang in the series of overhangs characterized by an increasing overhang angle relative a previous overhang in the series of overhangs;

wherein photocuring the second test build comprises photocuring the second test build based on the second test file by, for each test region in the second set of test regions, photocuring the series of overhangs via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

wherein accessing the second set of physical measurements of the second test build comprises accessing the second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the second set of test regions, a measured maximum overhang angle in the series of overhang angles for the test region; and

wherein selecting the subset of satisfactory test regions comprises selecting the subset of satisfactory test regions based on the measured warpage factor for each test region in the set of test regions and the measured maximum overhang angle for each test region in the second set of test regions.

7. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising a surface roughness parameter;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a horizontal section of a contiguous column;

photocuring a second test build based on the second test file by, for each test region in the set of test regions, photocuring the horizontal section of the contiguous column for the test region via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions, a measured surface roughness parameter of the horizontal section of the contiguous column;

selecting a subset of satisfactory test regions based on the measured surface roughness parameter for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

8. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising a surface roughness parameter;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a set of vertical walls extending from a base section, each vertical wall defining a target thickness value;

photocuring a second test build based on the second test file by, for each test region in the set of test regions, photocuring the set of vertical walls via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions, a measured minimum wall thickness in the set of vertical walls;

selecting a subset of satisfactory test regions based on the measured minimum wall thickness for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

9. The method of claim 8 :

wherein generating the second test file comprises generating the second test file based on the first selection and the working curve of the material, the second test file defining a second set of test regions, each test region in the second set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a horizontal section of a contiguous column;

wherein photocuring the second test build comprises photocuring the second test build based on the second test file by, for each test region in the second set of test regions, photocuring the horizontal section of the contiguous column for the test region via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

wherein accessing the second set of physical measurements of the second test build comprises accessing the second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the second set of test regions, a measured surface roughness parameter of the horizontal section of the contiguous column; and

wherein selecting the subset of satisfactory test regions comprises selecting the subset of satisfactory test regions based on the measured minimum wall thickness for each test region in the set of test regions and the measured surface roughness parameter for each test region in the second set of test regions.

10. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising a tensile mechanical property;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a gage-and-shoulder tensile test specimen;

photocuring a second test build based on the second test file by, for each test region in the set of test regions, photocuring the gage-and-shoulder tensile test specimen via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions, a measured tensile mechanical property of the gage-and-shoulder test specimen for the test region;

selecting a subset of satisfactory test regions based on the measured tensile mechanical property of the gage-and-shoulder tensile specimen for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

11. The method of claim 10 :

wherein receiving the first selection comprises receiving the first selection of the first material parameter comprising the tensile mechanical property and a second material parameter comprising a surface roughness parameter;

wherein generating the second test file comprises generating the second test file based on the first selection and the working curve of the material, the second test file defining a second set of test regions, each test region in the second set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a horizontal section of a contiguous column;

wherein photocuring the second test build comprises photocuring the second test build based on the second test file by, for each test region in the second set of test regions, photocuring the horizontal section of the contiguous column for the test region via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

wherein accessing the second set of physical measurements of the second test build comprises accessing the second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the second set of test regions, a measured surface roughness parameter of the horizontal section of the contiguous column; and

wherein selecting the subset of satisfactory test regions comprises selecting the subset of satisfactory test regions based on the measured tensile mechanical property of the gage-and-shoulder tensile specimen for each test region in the set of test regions and the measured surface roughness parameter for each test region in the second set of test regions.

12. A method for evaluating a material for an additive manufacturing process comprising:

generating a cure characterization test file defining a set of test regions arranged across a build area, each test region in the set of test regions characterized by a total exposure energy value;

photocuring a cure characterization test build by, for each test region in the set of test regions of the cure characterization test file, selectively exposing the material to a quantity of exposure energy corresponding to the total exposure energy value characterizing the test region;

accessing a first set of physical measurements representing a depth of cure for each test region in the set of test regions;

calculating a working curve of the material based on the first set of physical measurements;

receiving a first selection of a first material parameter comprising a maximum overhang angle parameter;

generating a second test file based on the first selection and the working curve of the material, the second test file defining a set of test regions, each test region in the set of test regions:

characterized by an exposure intensity value and an exposure duration value corresponding to a total exposure energy value greater than a target exposure energy of the material; and

defining a series of overhangs, each overhang in the series of overhangs characterized by an increasing overhang angle relative a previous overhang in the series of overhangs;

photocuring a second test build based on the second test file by, for each test region in the set of test regions, photocuring the series of overhangs via exposure to electromagnetic radiation according to the exposure intensity value and the exposure duration value characterizing the test region;

accessing a second set of physical measurements of the second test build, the second set of physical measurements representing, for each test region in the set of test regions, a measured maximum overhang angle in the series of overhang angles for the test region;

selecting a subset of satisfactory test regions based on the measured maximum overhang angle for each test region in the set of test regions; and

calculating an exposure intensity range for the material based on the exposure intensity value characterizing each test region in the subset of satisfactory test regions.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2025
From: ONG, JOEL; PRUCHA, CHRISTOPHER; KRANZ, STEVE; GONZÁLEZ-MALDONADO, EDUARDO
To: STRATASYS, INC.
Reel/Frame 070187/0563 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 23, 2021
From: ORIGIN LABORATORIES, INC.
To: STRATASYS, INC.
Reel/Frame 055689/0483 →
Continuity (2)
Provisional Application 62972573 · Feb 10, 2020
Related Publication 20210247325A1 · Aug 12, 2021