IP Library Granted Patent US 10,793,731
Granted Patent B2
US 10,793,731 · App. 16/094,879 · Granted Oct 6, 2020

Bead polymer made of hard phase with domains of a soft phase

Inventors: Stefan Bernhardt (Offenbach, DE); Thomas Hasskerl (Kronberg, DE); Dirk Poppe (Frankfurt am Main, DE); Stephan Wieber (Karlsruhe, DE)
Assignee: Evonik Operations GmbH
C09D11/107B29C64/165B33Y10/00B33Y70/00C08L33/12C09D11/30
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Quick Facts
Patent No.
US 10,793,731
App. No.
16/094,879
Granted
Oct 6, 2020
Kind
B2
Abstract

The present invention relates to the technical field of 3D printing, in particular in the form of the binder jetting process in which particles in a powder bed are adhesive-bonded by means of a printed adhesive to give a three-dimensional object. The particles here can be inorganic materials, e.g. sand or a metal powder, or polymeric particles, such as polymethacrylates or polyamides. To this end, polymethacrylates can by way of example take the form of suspension polymers known as bead polymers. In this context the present invention in particular relates to, as powders for 3D printing, suspension polymers which differ from the prior art in that they comprise a hard phase and an uncrosslinked soft phase.

Claims (43)

1. A binder jetting process for the production of three-dimensional objects from a powder bed, wherein the process comprises multiple repetition of the following steps:

a) application of a new powder layer on the surface of the powder bed; and

b) selective application of a binder and subsequent or simultaneous hardening of the binder in the powder bed, wherein the powder bed comprises particles, and wherein:

i) the particles comprise a PMMA suspension polymer and have an average diameter of from 30 to 110 μm;

ii) the particles have at least two different phases, wherein the glass transition temperature of the first phase, measured by differential scanning calorimetry (DSC), is below 40° C. and the glass transition temperature of the second phase, measured by DSC, is above 70° C.

2. The process of claim 1 , wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

3. The process of claim 2 , wherein the ratio of the first phase to the second phase is from 1:9 to 1:1.5.

4. The process of claim 1 , wherein the ratio of the first phase to the second phase is from 1:9 to 1:1.5.

5. The process of claim 1 , wherein the glass transition temperature of the first phase, measured by DSC, is below 30° C. and the glass transition temperature of the second phase, measured by DSC, is above 80° C.

6. A binder jetting process for the production of three-dimensional objects from a powder bed, wherein the process comprises multiple repetition of the following steps:

a) application of a new powder layer on the surface of the powder bed; and

b) selective application of a binder and subsequent or simultaneous hardening of the binder in the powder bed, wherein the powder bed comprises particles that:

i) have a diameter of from 10 to 500 μm; and

ii) have at least two different phases, wherein

the glass transition temperature of the first phase, measured by DSC, is below 30° C.;

the glass transition temperature of the second phase, measured by DSC, is above 70° C.;

at least 60% by weight of the first phase is produced from acrylates.

7. The process of claim 6 , wherein the ratio of the first phase to the second phase is from 1:9 to 1:1.5.

8. The process of claim 7 , wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

9. The process of claim 6 , wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

10. The process of claim 6 , wherein at least 60% by weight of the second phase is produced from MMA and the glass transition temperature of the second phase, measured by DSC, is above 80° C.

11. A binder jetting process for the production of three-dimensional objects from a powder bed, wherein the process comprises multiple repetition of the following steps:

a) application of a new powder layer on the surface of the powder bed; and

b) selective application of a binder and subsequent or simultaneous hardening of the binder in the powder bed, wherein the powder bed comprises particles that:

i) have a diameter of from 10 to 500 μm; and

ii) have at least two different phases, wherein

the glass transition temperature of the first phase, measured by DSC, is below 40° C.;

the glass transition temperature of the second phase, measured by DSC, is above 80° C.; and

at least 60% by weight of the second phase is produced from MMA.

12. The process of claim 11 , wherein the ratio of the first phase to the second phase is from 1:9 to 1:1.5.

13. The process of claim 12 , wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

14. The process of claim 11 , wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

15. A binder jetting process for the production of three-dimensional objects from a powder bed, wherein the process comprises multiple repetition of the following steps:

a) application of a new powder layer on the surface of the powder bed; and

b) selective application of a binder and subsequent or simultaneous hardening of the binder in the powder bed, wherein the powder bed comprises particles that:

i) have a diameter of from 10 to 500 μm;

ii) have at least two different phases, wherein the glass transition temperature of the first phase, measured by DSC, is below 40° C. and the glass transition temperature of the second phase, measured by DSC, is above 70° C.;

iii) have been produced by suspension polymerization with sequential addition of two monomer mixtures that lead to the respective phases.

16. The process of claim 15 , wherein the ratio of the first phase to the second phase is from 1:9 to 1:1.5.

17. The process of claim 16 , wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

18. The process of claim 15 wherein the particles comprise at least one initiator suitable for hardening of the binder or one catalyst or accelerator that accelerates hardening.

19. The process of claim 15 , wherein at least 60% by weight of the first phase is produced from acrylates and the glass transition temperature of the first phase, measured by DSC, is below 30° C.

20. The process of claim 15 , wherein at least 60% by weight of the second phase is produced from MMA and the glass transition temperature of the second phase, measured by DSC, is above 80° C.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2020
From: RÖHM GMBH
To: EVONIK DEGUSSA GMBH
Reel/Frame 052660/0405 →
CHANGE OF NAME Recorded May 14, 2020
From: EVONIK DEGUSSA GMBH
To: EVONIK OPERATIONS GMBH
Reel/Frame 052660/0841 →
CHANGE OF NAME Recorded May 11, 2020
From: EVONIK RÖHM GMBH
To: RÖHM GMBH
Reel/Frame 052625/0153 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 18, 2019
From: BERNHARDT, STEFAN; HASSKERL, THOMAS; POPPE, DIRK; WIEBER, STEPHAN
To: EVONIK RÖHM GMBH
Reel/Frame 048359/0632 →
Priority Claims (1)
EP 16166134 · Apr 20, 2016 · regional
Continuity (1)
Related Publication 20190127598A1 · May 2, 2019