IP Library Granted Patent US 11,148,354
Granted Patent B2
US 11,148,354 · App. 16/434,997 · Granted Oct 19, 2021

Process and apparatus for fabrication of three dimensional objects

Inventor: Eugene Giller (Wellesley, MA)
Assignee: Rize, Inc.
B29C64/112B29C35/0805B29C37/0067B29C64/118B29C64/124B29C64/129B29C64/135B29C64/165B29C64/40B33Y10/00B33Y30/00B33Y70/00B29C2035/0822B29C2035/0827B29C2035/0855B29C2035/0861B29K2071/00B29K2073/00B29K2075/00B29K2995/002Y10T428/24802Y10T428/24901Y10T428/24917
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Quick Facts
Patent No.
US 11,148,354
App. No.
16/434,997
Granted
Oct 19, 2021
Kind
B2
Abstract

A fabrication process and apparatus for producing three-dimensional objects by depositing a first polymer layer, printing a first ink layer on to the first polymer layer, depositing a second polymer layer on to the first ink layer, and printing a second ink layer on to the second polymer layer. The deposition and printing steps may be repeated until a three-dimensional object is formed. The inks used to form at least one of the first and second ink layers may include dyes or pigments so that the three-dimensional object may be a colored three-dimensional object.

Claims (43)

1. A three-dimensional fabrication method, comprising:

(a) depositing, by an extruder assembly, a first polymer layer;

(b) printing, by an ink printing apparatus including a print head and an ink delivery system, a first ink layer on to the first polymer layer;

(c) repeating steps (a) and (b) to form a three-dimensional object;

printing, by the ink printing apparatus, a target pattern onto a layer of the three-dimensional object;

scanning, by an optical sensor, the target pattern; and

aligning the extruder assembly with the target pattern.

2. The three-dimensional fabrication method of claim 1 , wherein at least one of the first ink layer and the first polymer layer is treated with a heat source, an energy source, or a combination of a heat source and an energy.

3. The three-dimensional fabrication method of claim 2 , wherein the energy source is an electromagnetic energy source.

4. The three-dimensional fabrication method of claim 3 , wherein the electromagnetic energy source is selected from the group consisting of infrared, near infrared, visible, radiofrequency, microwave, and combinations thereof.

5. The three-dimensional fabrication method of claim 2 , wherein the heat source is selected from the group consisting of conduction, radiation, and combinations thereof.

6. The three-dimensional fabrication method of claim 2 , wherein the heat source, the energy source, or the combination of a heat source and an energy source is applied during fabrication of the three-dimensional object.

7. The three-dimensional fabrication method of claim 2 , wherein the heat source, the energy source, or the combination of a heat source and an energy source is applied to the fabricated three-dimensional object.

8. The three-dimensional fabrication method of claim 1 , further comprising depositing a second polymer layer on to the first ink layer and printing a second ink layer on to the second polymer layer during fabrication of the three-dimensional object, wherein at least one of the second ink layer and the second polymer layer is treated with a heat source, an energy source, or a combination of a heat source and an energy source.

9. The three-dimensional fabrication method of claim 8 , wherein at least one of the first ink layer and the second ink layer includes an ink comprising at least one of infrared absorbers, near infrared absorbers, visible energy absorbers, microwave absorbers, or radiofrequency absorbers.

10. The three-dimensional fabrication method of claim 8 , wherein at least one of the first ink layer and the second ink layer includes an ink comprising plasticizers.

11. A three-dimensional fabrication method, comprising:

(a) depositing, by an extruder assembly, a first polymer layer;

(b) printing, by an ink printing apparatus including a print head and an ink delivery system, a first ink layer on to the first polymer layer;

(c) depositing a second polymer layer on to the first ink layer;

(d) printing a second ink layer on to the second polymer layer;

(e) repeating steps (a)-(d) to form a three-dimensional object;

printing, by the ink printing apparatus, a target pattern onto a layer of the three-dimensional object;

scanning, by an optical sensor, the target pattern; and

aligning the extruder assembly with the target pattern.

12. The three-dimensional fabrication method of claim 11 , wherein at least one of the first ink layer and the first polymer layer is treated with a heat source, an energy source, or a combination of a heat source and an energy.

13. The three-dimensional fabrication method of claim 12 , wherein the energy source is an electromagnetic energy source.

14. The three-dimensional fabrication method of claim 13 , wherein the electromagnetic energy source is selected from the group consisting of infrared, near infrared, visible, radiofrequency, microwave, and combinations thereof.

15. The three-dimensional fabrication method of claim 12 , wherein the heat source is selected from the group consisting of conduction, radiation, and combinations thereof.

16. The three-dimensional fabrication method of claim 12 , wherein the heat source, the energy source, or the combination of a heat source and an energy source is applied during fabrication of the three-dimensional object.

17. The three-dimensional fabrication method of claim 12 , wherein the heat source, the energy source, or the combination of a heat source and an energy source is applied to the fabricated three-dimensional object.

18. The three-dimensional fabrication method of claim 11 , wherein at least one of the first ink layer and the second ink layer includes an ink comprising at least one of infrared absorbers, near infrared absorbers, visible energy absorbers, microwave absorbers, or radiofrequency absorbers.

19. A three-dimensional fabrication method, comprising:

(a) extruding, by an extruder assembly, a first polymer layer;

(b) printing, by an ink printing apparatus including a print head and an ink delivery system, a first ink layer on to the first polymer layer;

(c) repeating steps (a)-(b) to form a three-dimensional object;

printing, by the ink printing apparatus, a target pattern onto a layer of the three-dimensional object;

scanning, by an optical sensor, the target pattern; and

aligning the extruder assembly with the target pattern.

20. The three-dimensional fabrication method of claim 19 , wherein at least one of the first ink layer and the first polymer layer is treated with a heat source, an energy source, or a combination of a heat source and an energy.

21. The three-dimensional fabrication method of claim 20 , further comprising extruding a second polymer layer on to the first ink layer and printing a second ink layer on to the second polymer layer during fabrication of the three-dimensional object, wherein at least one of the second ink layer and the second polymer layer is treated with a heat source, an energy source, or a combination of a heat source and an energy source.

22. The three-dimensional fabrication method of claim 21 , wherein at least one of the first ink layer and the second ink layer includes an ink comprising at least one of infrared absorbers, near infrared absorbers, visible energy absorbers, microwave absorbers, or radiofrequency absorbers.

23. The three-dimensional fabrication method of claim 21 , wherein the heat source, the energy source, or the combination of a heat source and an energy source is applied during fabrication of the three-dimensional object or to the fabricated three-dimensional object.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 4, 2025
From: RAISA MILKIN & EUGENE GILLER 2017 TRUST
To: PALITRA LLC
Reel/Frame 072164/0962 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2022
From: RIZE INC.
To: RAISA MILKIN & EUGENE GILLER 2017 TRUST
Reel/Frame 061512/0048 →
Continuity (6)
Continuation 15991448 · May 29, 2018
Continuation 14965470 · Dec 10, 2015
Continuation 13881554
Provisional Application 61451350 · Mar 10, 2011
Provisional Application 61407401 · Oct 27, 2010
Related Publication 20190291338A1 · Sep 26, 2019