IP Library Patent Application 15106851
Patent Application
App. No. 15/106,851

METHODS AND SYSTEMS FOR MONITORING MELT ZONES IN POLYMER THREE DIMENSIONAL PRINTING

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Patent No.
US None
App. No.
15/106,851
Abstract

Technologies are generally described for controlling fabrication of a 3D printed article by monitoring a temperature of an active growth region during a 3D printing of polymer material. A polymer material may be doped with one or more fluorescent molecules, which may be excited during a 3D printing of the polymer material. An intensity of light emitted from the fluorescent molecules may be determined to create a fluorescence intensity map, which may be converted into a temperature map in order to monitor a temperature of the active growth region, and generate one or more instructions based on the monitored temperature. One or more characteristics of the active growth region may then be modulated based on the instructions provided. Modulating characteristics of the active growth region based on the monitored temperature may allow better process control, which may be used to enhance a speed and resolution of 3D printing systems.

Claims (74)

1 . A method to monitor a temperature of an active growth region during a three-dimensional (3D) printing of a polymer material, the method comprising:

doping the polymer material with one or more fluorescent molecules;

exciting the one or more fluorescent molecules during the 3D printing of the polymer material;

determining an intensity of light emitted from the one or more fluorescent molecules to create a fluorescence intensity map; and

converting the fluorescence intensity map into a temperature map.

2 . The method of claim 1 , wherein doping the polymer material with the one or more fluorescent molecules comprises:

dissolving the one or more fluorescent molecules and the polymer material in a solvent and removing the solvent.

3 . The method of claim 1 , wherein doping the polymer material with the one or more fluorescent molecules comprises:

melt-processing the one or more fluorescent molecules with the polymer material to dissolve the one or more fluorescent molecules in the polymer material.

4 . The method of claim 1 , wherein exciting the one or more fluorescent molecules comprises:

irradiating the active growth region with an optical signal during the 3D printing of the polymer material to excite the one or more fluorescent molecules.

5 . The method of claim 4 , wherein irradiating the active growth region comprises irradiating an active growth region that includes a melt zone and one or more surrounding regions.

6 . The method of claim 1 , wherein converting the fluorescence intensity map into the temperature map comprises:

scanning the fluorescence intensity map to produce fluorescence intensity data; and

generating the temperature map using the fluorescence intensity data.

7 . The method of claim 1 , further comprising:

comparing the temperature map with a reference temperature map.

8 . The method of claim 7 , further comprising:

in response to a determination of differences between the temperature map and the reference temperature map, modulating characteristics of the active growth region.

9 . The method of claim 8 , wherein modulating the characteristics of the active growth region comprises:

modulating one or more of an applied power, a system speed, or an x-y position of the active growth region, or a temperature of the polymer material that surrounds the active growth region.

10 . A system to monitor a temperature of an active growth region during a three-dimensional (3D) printing of a polymer material, the system comprising:

a doping sub-system configured to dope the polymer material with one or more fluorescent molecules; and

an optical sub-system comprising:

a light source configured to irradiate the active growth region with an optical signal during the 3D printing of the polymer material to excite the one or more fluorescent molecules;

an optical image sensor configured to measure an intensity of light emitted from the one or more fluorescent molecules to create a fluorescence intensity map; and

one or more computing devices configured to scan the fluorescence intensity map to produce fluorescence intensity data.

11 . The system of claim 10 , further comprising:

a process control sub-system comprising:

a processor configured to:

receive the fluorescence intensity data from the one or more computing devices of the optical system at the processor;

generate a temperature map in a mapper unit of the processor using the fluorescence intensity data;

compare the temperature map with a reference temperature map in a comparator subunit of the processor; and

in response to a determination of differences between the temperature map and the reference temperature map, analyze and convert the differences into instructions in an instruction generator subunit of the processor.

12 . The system of claim 11 , wherein the instructions are transmitted to one or more sub-systems to modulate one or more of: an applied power, a system speed, an x-y position of the active growth region, and a temperature of the polymer material that surrounds the active growth region.

13 . The system of claim 10 , wherein the optical signal includes one of laser light and infrared light.

14 . The system of claim 10 , wherein the polymer material includes a filament or a powder.

15 . The system of claim 10 , wherein the polymer material is doped with the one or more fluorescent molecules at a concentration between about 10 parts per million (ppm) and 1000 ppm.

16 . The system of claim 10 , wherein the one or more fluorescent molecules include fluorophores comprising two emission bands.

17 . The system of claim 10 , wherein the optical image sensor includes one of a charge-coupled device (CCD) and a complementary metal-oxide-semiconductor (CMOS) array.

18 . The system of claim 10 , wherein the one or more computing devices include either or both:

high-speed black and white cameras; or

a filter configured to remove light irradiated from the light source.

19 . (canceled)

20 . The system of claim 10 , wherein the intensity of light emitted is measured from two emission bands of the one or more fluorescent molecules.

21 . The system of claim 20 , wherein the two emission bands are on a same fluorescent molecule of the one or more fluorescent molecules or are on two different fluorescent molecules of the one or more fluorescent molecules.

22 . The system of claim 20 , wherein the fluorescent intensity data includes ratio measurements of the intensity of the light between the two emission bands.

23 . A system to control fabrication of a three-dimensional (3D) printed article, the system comprising:

a dopant module configured to dope a polymer material with one or more fluorescent molecules;

a temperature monitor module that includes an optical system and a process control system, wherein the temperature monitor module is configured to:

monitor a temperature of an active growth region during a three-dimensional (3D) printing of the polymer material; and

generate instructions based on the temperature; and

a characteristic modulation module configured to:

modulate one or more characteristics of the active growth region based on the instructions generated by the temperature monitor module.

24 . The system of claim 23 , wherein the dopant module is configured to:

dope the polymer material by one of:

dissolve the one or more fluorescent molecules and the polymer material in a solvent and remove the solvent; and

melt-process the one or more fluorescent molecules with the polymer material to dissolve the one or more fluorescent molecules in the polymer material.

25 . The system of claim 23 , wherein the optical system is configured to:

irradiate the active growth region using a laser source to excite the one or more fluorescent molecules in the doped polymer material;

remove light irradiated from the laser source by use of a filter;

measure an intensity of the light emitted from the one or more fluorescent molecules by use of an optical image sensor;

create a fluorescence intensity map based on the intensity of the light; and

scan the fluorescence intensity map to produce fluorescence intensity data.

26 . The system of claim 23 , wherein the process control system is configured to:

receive fluorescence intensity data from the optical system;

generate a temperature map using the fluorescence intensity data;

compare the temperature map with a reference temperature map;

in response to a determination that there are differences between the temperature map and the reference temperature map, analyze and convert the differences into the instructions; and

provide the instructions to the characteristic modulation module.

27 . (canceled)

28 . The system of claim 23 , wherein the optical system comprises:

a laser source configured to photo-bleach the one or more fluorescent molecules after the temperature of the active growth region is monitored and modulations of the one or more characteristics of the active growth region are completed.

29 . A computer-readable storage medium with instructions stored thereon to monitor the temperature of the active growth region during the 3D printing of the polymer material, the instructions causing the method of claim 1 to be performed in response to execution of the instructions by one or more processors.

Assignments (4)
RELEASE OF SECURITY INTEREST IN PATENTS, RECORDED ON JANUARY 29, 2019 AT REEL 048373 FRAME 0217 Recorded Sep 22, 2025
From: CRESTLINE DIRECT FINANCE, L.P., AS COLLATERAL AGENT
To: EMPIRE TECHNOLOGY DEVELOPMENT LLC
Reel/Frame 072936/0464 →
SECURITY INTEREST Recorded Jan 29, 2019
From: EMPIRE TECHNOLOGY DEVELOPMENT LLC
To: CRESTLINE DIRECT FINANCE, L.P.
Reel/Frame 048373/0217 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 21, 2016
From: MILLER, SETH ADRIAN
To: ARDENT RESEARCH CORPORATION
Reel/Frame 038966/0811 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 21, 2016
From: ARDENT RESEARCH CORPORATION
To: EMPIRE TECHNOLOGY DEVELOPMENT LLC
Reel/Frame 038966/0917 →