IP Library › Granted Patent US 11,186,679
Granted Patent B2
US 11,186,679 · App. 15/737,579 · Granted Nov 30, 2021

Water dispersible polymer for use in additive manufacturing

Inventor: William R. Priedeman, Jr. (Long Lake, MN)
Assignee: Stratasys, Inc.
C08G63/6886B29C64/118B29C64/40B33Y30/00B33Y70/00C08G18/0828C08G18/3855C08G69/42C08J5/00C08J11/06G03G9/08755G03G9/08766G03G15/1625G03G15/224B29K2081/00B29K2995/0062C08J2300/22C08J2355/02C08J2367/02C08J2367/04C08J2369/00C08J2377/06C08J2467/02C08J2477/06G03G2215/1695
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Quick Facts
Patent No.
US 11,186,679
App. No.
15/737,579
Granted
Nov 30, 2021
Kind
B2
Abstract

A water dispersible sulfopolymer for use as a material in the layer-wise additive manufacture of a 3D part made of a non water dispersible polymer wherein the water dispersible polymer is a reaction product of a metal sulfo monomer, the water dispersible sulfo-polymer being dispersible in water resulting in separation of the water dispersible polymer from the 3D part made of the non water dispersible polymer.

Claims (28)

1. A method of additive manufacturing a support structure for use with a part made of a non water dispersible polymer, the method comprising:

printing the part and the support structure with a layer-by-layer manner, wherein the support structure comprising a water dispersible sulfo polymer comprising a reaction product of a sulfur monomer and the reaction product is at least one selected from the group consisting of a sulfo-polyamide, a sulfo-polyesteramide, and a sulfo-polyurethane with approximately 18 to 35% sulfoisophthalic monomer, and the water dispersible polymer comprising a polymer having a glass transition temperature within ±20° C. of the glass transition temperature of the non water dispersible polymer; and

separating the non water dispersible polymer from the water dispersible polymer by subjecting the water dispersible polymer to water.

2. The method of claim 1 and wherein the support structure further comprises the reaction product of the sulfur monomer and the water dispersible polymer comprises the polymer having a heat deflection temperature within ±15° C. of the heat deflection temperature of the non water dispersible polymer.

3. The method of claim 1 wherein the water dispersible polymer has a charge density of at least approximately 0.4 meq./g, such that the water dispersible polymer is dispersible in water resulting in separation of the water dispersible polymer from the part comprising the non water dispersible polymer.

4. The method of claim 3 wherein the charge density is between approximately 0.4 meq/g and 0.9 meq./g.

5. The method of claim 1 , wherein the water dispersible polymer comprises approximately 25 to 35% sulfoisophthalic monomer.

6. A method of printing a 3D part, the method comprising:

heating a filament of a non water dispersible polymer to a molten state in a liquefier of a print head, the non water dispersible polymer having a first glass transition temperature;

extruding the non water dispersible polymer in a series of road to form a plurality of layers to print the 3D part;

heating a filament of a water dispersible sulfo polymer comprising a reaction product of a sulfur monomer and the reaction product is at least one selected from the group consisting of a sulfo-polyamide, a sulfo-polyesteramide, and a sulfo-polyurethane, with approximately 18 to 35% sulfoisophthalic monomer and the water dispersible polymer comprising a polymer having a second glass transition temperature within ±20° C. of the first glass transition temperature of the non water dispersible polymer;

extruding the water dispersible sulfo polymer in a series of roads and layers to provide support the 3D part being printed such that the 3D part retains a selected shape during the printing process; and

removing the water dispersible sulfo polymer from the 3D part by submerging the water dispersible sulfo polymer and the 3D part in tap water.

7. The method of claim 6 and wherein the support structure further comprises the reaction product of the sulfur monomer and the water dispersible polymer comprises the polymer having a heat deflection temperature within ±15° C. of the heat deflection temperature of the non water dispersible polymer.

8. The method of claim 6 wherein the water dispersible polymer has a charge density of at least approximately 0.4 meq./g, such that the water dispersible polymer is dispersible in water resulting in separation of the water dispersible polymer from the part comprising the non water dispersible polymer.

9. The method of claim 8 wherein the charge density is between approximately 0.4 meq/g and 0.9 meq./g.

10. The method of claim 6 , wherein the water dispersible polymer comprises approximately 25 to 35% sulfoisophthalic monomer.

11. A method of printing a 3D part, the method comprising:

heating a filament of a non water dispersible polymer to a molten state in a liquefier of a print head, the non water dispersible polymer having a first glass transition temperature;

extruding the non water dispersible polymer in a series of road to form a plurality of layers to print the 3D part;

heating a filament of a water dispersible sulfo polymer comprising a reaction product of a sulfur monomer and the reaction product is at least one selected from the group consisting of a sulfo-polyamide, a sulfo-polyesteramide, and a sulfo-polyurethane, with approximately 18 to 35% sulfoisophthalic monomer and the water dispersible polymer comprising a polymer having a second glass transition temperature within ±20° C. of the first glass transition temperature of the non water dispersible polymer; and

extruding the water dispersible sulfo polymer in a series of roads and layers to provide support the 3D part being printed such that the 3D part retains a selected shape during the printing process.

12. The method of claim 11 and further comprising:

removing the water dispersible sulfo polymer from the 3D part by submerging the water dispersible sulfo polyer and the 3D part in tap water at room temperature.

13. The method of claim 11 and wherein the support structure further comprises the reaction product of the sulfur monomer and the water dispersible polymer comprises the polymer having a heat deflection temperature within ±15° C. of the heat deflection temperature of the non water dispersible polymer.

14. The method of claim 11 wherein the water dispersible polymer has a charge density of at least approximately 0.4 meq./g, such that the water dispersible polymer is dispersible in water resulting in separation of the water dispersible polymer from the part comprising the non water dispersible polymer.

15. The method of claim 14 wherein the charge density is between approximately 0.4 meq/g and 0.9 meq./g.

16. The method of claim 11 wherein the water dispersible polymer comprises approximately 25 to 35% sulfoisophthalic monomer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 18, 2017
From: PRIEDEMAN, WILLIAM R., JR.
To: STRATASYS, INC.
Reel/Frame 044424/0183 →
Continuity (2)
Provisional Application 62182159 · Jun 19, 2015
Related Publication 20180179332A1 · Jun 28, 2018