IP Library › Granted Patent US 12,509,400
Granted Patent B2
US 12,509,400 · App. 17/296,292 · Granted Dec 30, 2025

Method for layer-wise manufacturing of a shaped body

Inventors: Hendrik John (Buchs, CH); Michael Zenou (Hashmonaim, IL); Christian Ritzberger (Grabs, CH)
Assignees: Ivoclar Vivadent AG; IO Tech Group Ltd.
C04B35/111B22F3/1021B22F10/28B28B1/001B33Y10/00C23C14/048C23C14/28B22F12/43
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,509,400
App. No.
17/296,292
Granted
Dec 30, 2025
Kind
B2
Abstract

A method for layer-wise additive manufacturing of a shaped body made up of slices of processed layers, including the steps: creating a layer of a slurry, the slurry including binder, a dispersing medium and a particulate filler material, solidifying the slurry layer, directing electromagnetic radiation to the solidified layer for processing it by debinding and/or sintering, and repeating the above-mentioned steps to successively build the shaped body. A laser induced forward transfer (LIFT) process utilizing a laser to direct laser beam pulses acts on a coating of slurry on a carrier to transfer droplets of slurry to a receptor surface to create the slurry layer which is then processed further by above-mentioned steps of solidifying, and debinding and/or sintering.

Claims (37)

1 . A method for layer-wise additive manufacturing of a shaped body made up of slices of processed layers, said method comprising the steps of:

creating a layer of a slurry, said slurry including binder, a dispersing medium and a particulate filler material,

solidifying the slurry layer,

directing electromagnetic radiation to the solidified layer for processing it by debinding and/or sintering, and

repeating the above-mentioned steps to successively build the shaped body,

wherein said step of creating a slurry layer is performed by a laser induced forward transfer (LIFT) process utilizing a laser ( 8 ) to direct laser beam ( 1 ) pulses to act on a coating ( 4 ) of slurry on a carrier ( 2 ) to transfer droplets of slurry to a receptor surface to create the slurry layer ( 11 ) which slurry layer ( 11 ) is then processed further by the steps of solidifying, and debinding and/or sintering,

wherein the carrier ( 2 ) carries a plurality of separate coating zones ( 4 , 4 ′, 4 ″) arranged next to each other, each coating zone ( 4 , 4 ′, 4 ″) containing an associated one of a plurality of slurry compositions, and

wherein a control unit is arranged to control a positioning device for positioning the carrier ( 2 ) relative to the laser ( 8 ) and the receptor surface such that for each layer of slurry being created a selected spatial distribution of slurry compositions selected from the plurality of slurry compositions in the created slurry layer is formed by selectively positioning coating zones ( 4 , 4 ′, 4 ″) to be effective in the LIFT process to achieve a desired spatial pattern of slurry compositions in the created slurry layer.

2 . The method according to claim 1 ,

wherein said step of solidifying the slurry layer ( 11 ) is performed by applying heat from a warm gas flow to act on the slurry layer.

3 . The method according to claim 1 ,

wherein said step of solidifying of the slurry layer ( 11 ) is performed by directing electromagnetic radiation to act on the slurry layer.

4 . The method according to claim 1 ,

wherein said step of directing the electromagnetic radiation is performed by controlling a laser ( 8 ) to direct a laser beam to act on the solidified layer.

5 . The method according to claim 1 ,

wherein said step of solidifying the slurry layer is performed by directing a laser beam to act on the slurry layer for heating up the slurry layer ( 11 ) to vaporize vaporizable components of the slurry.

6 . The method according to claim 5 ,

wherein the laser ( 8 ) generating the laser beam ( 1 ) for effecting solidification and the laser beam used for the LIFT process to create a new slurry layer are generated by the same laser.

7 . The method according to claim 5 ,

wherein said directing electromagnetic radiation to the solidified layer for processing it by debinding and/or sintering is performed by controlling a laser to direct a laser beam on the solidified layer,

wherein the laser beam ( 1 ) causing solidification of the slurry layer and the laser beam ( 1 ) for processing the solidified layer by debinding and/or sintering are generated by the same laser ( 8 ).

8 . The method according to claim 7 ,

wherein the laser beam ( 1 ) for processing the solidified layer by debinding and/or sintering and the laser beam used for the LIFT process to create a new slurry layer ( 11 ) are generated by the same laser ( 8 ).

9 . The method according to claim 7 ,

wherein the laser ( 8 ) generating the laser beams ( 1 ) for effecting solidifying and for effecting debinding and/or sintering are generated by the same laser ( 8 ) that is used for the LIFT process to create a new slurry layer ( 11 ).

10 . The method according to claim 1 ,

wherein the slurry further includes an energy transfer component configured for converting energy of the electromagnetic radiation into thermal energy.

11 . The method according to claim 1 ,

wherein the positioning device is configured for positioning the carrier ( 2 ) relative to the laser ( 8 ) such that the laser beam of the laser is directed onto the slurry layer without being affected by the carrier.

12 . The method according to claim 11 ,

wherein said steps of creating a slurry layer and solidifying the slurry layer are performed in an area that is larger than the region of the slice to be formed from the slurry layer ( 11 ), and

wherein debinding and/or sintering of the solidified layer is performed by directing electromagnetic radiation to act on the solidified layer in a spatially selective manner so that debinding and/or sintering takes place only within the contour of the slice to be built.

13 . The method according to claim 11 ,

wherein said step of creating a slurry layer ( 11 ) is performed by the LIFT process in a spatially selective manner such that the slurry layer is congruent with the contour of the slice to be built, and

wherein support material ( 21 ) is applied to surround the region of the slice to be built such that the shaped body to be formed is at least partially embedded in support material ( 21 ).

14 . The method according to claim 1 ,

wherein the particulate filler material of the slurry is glass-powder, glass-ceramic powder, ceramic powder or metallic powder.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2021
From: ZENOU, MICHAEL
To: IO TECH GROUP LTD.
Reel/Frame 056483/0309 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2021
From: JOHN, HENDRIK; RITZBERGER, CHRISTIAN
To: IVOCLAR VIVADENT AG
Reel/Frame 056526/0673 →
Priority Claims (1)
EP 18209300 · Nov 29, 2018 · regional
Continuity (1)
Related Publication 20220016707A1 · Jan 20, 2022
References Cited (18)
US 6177151B1 · Chrisey · 2001 [cited by examiner]
US 7137697B2 · Lehmann · 2006 [cited by applicant]
US 8047021B2 · Schweiger et al. · 2011 [cited by applicant]
US 9067359B2 · Rohner et al. · 2015 [cited by applicant]
US 9321674B2 · Ritzberger et al. · 2016 [cited by applicant]
US 10144034B2 · Zenou · 2018 [cited by applicant]
US 20020197401A1 · Auyeung et al. · 2002 [cited by applicant]
US 20030017277A1 · Young · 2003 [cited by examiner]
US 20090074987A1 · Auyeung · 2009 [cited by examiner]
US 20150294872A1 · Molpeceres Álvarez · 2015 [cited by examiner]
US 20170210142A1 · Kotler · 2017 [cited by examiner]
US 20180141235A1 · Guenster et al. · 2018 [cited by applicant]
DE 102016013317A1 · 2018 [cited by examiner]
EP 2261184A2 · 2010 [cited by applicant]
GB 2526328A · 2015 [cited by applicant]
JP 6272710B2 · 2018 [cited by applicant]
Charipar, K. et al., “Laser-induced forward transfer (LIFT) of 3D microstructures,” Journal, Laser 3D Manufacturing V, vol. 10523, pp. 1-6, 2018. [cited by applicant]
Jinno, K. et al., “Room temperature impact deposition of ceramic by laser shock wave,” Japanese Journal of Applied Physics, 57, pp. 1-6, 2018. [cited by applicant]