IP Library Patent Application 16189210
Patent Application
App. No. 16/189,210

METHOD FOR DETERMINING POSITION DATA FOR AN APPARATUS FOR ADDITIVELY MANUFACTURING THREE-DIMENSIONAL OBJECTS

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Quick Facts
Patent No.
US None
App. No.
16/189,210
Abstract

Method for determining position data for an apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective consolidation of layers ( 17 - 19, 21 - 23 ) of a build material ( 3 ) arranged in a build plane ( 4 ) essentially extending in x- and y-direction, which build material ( 3 ) can be consolidated by means of an energy source, wherein the build material ( 3 ) is carried by a carrying element ( 9 ) of a carrying unit ( 8 ), wherein the carrying element ( 9 ) is essentially movable in z-direction, wherein the z-direction is essentially perpendicular to the x- and y-direction, wherein position data relating to an x- and/or y-position of the carrying element ( 9 ) are determined for at least one z-position.

Claims (19)

1 . Method for determining position data for an apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective consolidation of layers ( 17 - 19 , 21 - 23 ) of a build material ( 3 ) arranged in a build plane ( 4 ) essentially extending in x- and y-direction, which build material ( 3 ) can be consolidated by means of an energy source, wherein the build material ( 3 ) is carried by a carrying element ( 9 ) of a carrying unit ( 8 ), wherein the carrying element ( 9 ) is essentially movable in z-direction, wherein the z-direction is essentially perpendicular to the x- and y-direction, characterized in that position data relating to an x- and/or y-position of the carrying element ( 9 ) are determined for at least one z-position.

2 . Method according to claim 1 , characterized in that position data are determined for at least two z-positions, in particular for a plurality of z-position, preferably distributed along a movement range, in particular an entire movement range, of the carrying element ( 9 ) in z-direction.

3 . Method according to claim 1 , characterized in that calibration data are generated relating to a deviation of the carrying element ( 9 ) from a nominal position in x- and/or y-direction for at least one z-position.

4 . Method according to claim 1 , characterized in that an irradiation device ( 7 ), in particular the position of an irradiation pattern for the corresponding layer relative to the carrying element ( 9 ), is controlled dependent on the calibration data and/or the position data.

5 . Method according to claim 1 , characterized in that the position data and/or the calibration data are stored for the corresponding z-position, in particular for the corresponding carrying element ( 9 ).

6 . Method according to claim 1 , characterized in that the position data are determined in advance to and/or during an additive manufacturing process.

7 . Method according to claim 1 , characterized in that the x- and/or y-position of the carrying element ( 9 ) is determined via an optical and/or a mechanical determination, in particular via the determination of a measurement structure ( 16 ) arranged on the bottom of the carrying element ( 9 ).

8 . Method according to claim 1 , characterized in that the position data relate to a determined, in particular measured, x- and/or y- position and/or an absolute x- and/or y- position of the carrying element ( 9 ) and/or a deviation thereof for at least one z-position.

9 . Method according to claim 1 , characterized in that the position data relate to a distortion and/or an angular deviation of the carrying element ( 9 ) about a main axis of the carrying element ( 9 ), essentially arranged in z-direction.

10 . Method according to claim 1 , characterized in that the following steps are performed:

a calibration object ( 20 ) is manufactured extending over a defined part of the movement range, in particular the entire movement range, of the carrying element ( 9 )

at least one geometrical parameter of the calibration object ( 20 ) is determined

the at least one determined geometrical parameter is compared with at least one corresponding nominal geometrical parameter

position data and/or calibration data are generated based on the comparison result.

11 . Method according to claim 1 , characterized in that the geometrical parameter is or comprises a position in x- and/or y-direction of the calibration object, in particular of a surface of the calibration object ( 20 ), for the corresponding z-position.

12 . Method according to claim 1 , characterized in that the method is performed using at least one build module for an apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ).

13 . Method according to claim 1 , characterized in that the position data and/or the calibration data are stored for multiple build modules, wherein the irradiation device ( 7 ) of the apparatus ( 1 ) in which a build module is used, is controlled dependent on the corresponding position data and/or calibration data.

14 . Method for operating at least one apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective consolidation of layers ( 17 - 19 , 21 - 23 ) of a build material ( 3 ) arranged in a build plane ( 4 ) essentially extending in x- and y-direction, which build material ( 3 ) can be consolidated by means of an energy source, wherein the build material ( 3 ) is carried by a carrying element ( 9 ) of a carrying unit ( 8 ), wherein the carrying element ( 9 ) is essentially movable in z-direction, wherein the z-direction is essentially perpendicular to the x- and y-direction, characterized in that position data relating to an x- and/or y- position of the carrying element ( 9 ) are determined for at least one z-position.

15 . Apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective consolidation of layers ( 17 - 19 , 21 - 23 ) of a build material ( 3 ) arranged in a build plane ( 4 ) essentially extending in x- and y-direction, which build material ( 3 ) can be consolidated by means of an energy source, wherein the build material ( 3 ) is carried by a carrying element ( 9 ) of a carrying unit ( 8 ) of the apparatus ( 1 ), wherein the carrying element ( 9 ) is essentially movable in z-direction, wherein the z-direction is essentially perpendicular to the x- and y-direction, comprising a calibration unit ( 13 ) adapted to determine position data relating to an x- and/or y- position of the carrying element ( 9 ) for at least one z-position.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded Feb 28, 2020
From: CL SCHUTZRECHTSVERWALTUNGS GMBH; CONCEPT LASER GMBH
To: CONCEPT LASER GMBH
Reel/Frame 052048/0799 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2018
From: HOFMANN, ALEXANDER; RÖBLITZ, CARSTEN
To: CL SCHUTZRECHTSVERWALTUNGS GMBH
Reel/Frame 047491/0674 →