IP Library Patent Application 16276592
Patent Application
App. No. 16/276,592

APPARATUS FOR ADDITIVELY MANUFACTURING THREE-DIMENSIONAL OBJECTS

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Quick Facts
Patent No.
US None
App. No.
16/276,592
Abstract

Apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective irradiation and consolidation of layers of a build material ( 3 ) which can be consolidated by means of an energy source.

Claims (14)

1 . Apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective irradiation and consolidation of layers of a build material ( 3 ) which can be consolidated by means of an energy source, which apparatus ( 1 ) comprises an application unit ( 4 ) that is adapted to layerwise apply build material ( 3 ) in an available build plane ( 6 ) that extends between two build plane edges ( 7 , 8 ), characterized in that the application unit ( 4 ) is adapted to apply at least one layer ( 11 - 15 ) of build material ( 3 ) along an application path ( 16 ) in a sub-part ( 17 ) of the available build plane ( 6 ), wherein the application path ( 16 ) starts at a starting point and ends at an endpoint ( 18 ) between the build plane edges ( 7 , 8 ).

2 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) is adapted to apply build material ( 3 ) in the available build plane ( 6 ) along the application path ( 16 ) that is defined by at least one irradiation region in which build material ( 3 ) is to be irradiated via an irradiation device ( 20 ) to additively build the three-dimensional object ( 2 ), wherein the application path ( 16 ) is smaller than a maximum application path ( 9 ) extending over the entire available build plane ( 6 ).

3 . Apparatus according to claim 1 , characterized by a control unit ( 25 ) that is adapted to generate or receive irradiation data defining the position of at least one irradiation region of the object ( 2 ) relative to the available build plane ( 6 ), wherein the irradiation device ( 20 ) is adapted to generate the at least one irradiation region based on the irradiation data.

4 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) is adapted to apply build material ( 3 ) along the application path ( 16 ) defined by at least one dimension and/or position of the irradiation region in the layer ( 11 - 15 ) of build material ( 3 ) to be applied in the corresponding application step.

5 . Apparatus according to claim 1 , characterized in that the irradiation device ( 20 ) is adapted to generate at least one irradiation region in a position relative to the available build plane ( 6 ) dependent on the geometrical shape of the object ( 2 ), in particular dependent on a geometrical distribution of the object ( 2 ), preferably dependent on the center of mass of the object ( 2 ).

6 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) is adapted to partially apply layers ( 11 - 15 ) of build material ( 3 ) along the application path ( 16 ) for a defined number of succeeding layers.

7 . Apparatus according to claim 6 , characterized in that the application unit ( 4 ) is adapted to generate or receive the number of succeeding layers, wherein the number of succeeding layers depends on a size of the sub-part ( 17 ), in particular a length of an application path ( 16 ) and/or a dimension of the available build plane ( 6 ), preferably perpendicular to an application direction ( 27 ), and/or a chemical and/or physical parameter of the build material ( 3 ) and/or a layer thickness ( 22 ).

8 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) is adapted to perform at least one application step for filling the build chamber ( 26 ), preferably over the entire available build plane ( 6 ), in particular to the level of the previously applied layer ( 11 - 15 ), preferably after every defined number of succeeding layers.

9 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) is adapted to selectively control a dose factor relating to an amount of build material ( 3 ) that is provided for each application step, in particular dependent on the length of the application path ( 16 ) or a size of the sub-part ( 17 ).

10 . Apparatus according to claim 1 , characterized in that the irradiation device ( 20 ) is adapted to generate the irradiation region in an area of the available build plane ( 6 ) neighboring a dose plane ( 10 ) of the apparatus ( 1 ), preferably as close as possible.

11 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) is adapted to define or receive a safety distance for the application path ( 16 ) that extends the application path ( 16 ) in application direction ( 27 ).

12 . Apparatus according to claim 1 , characterized in that the application unit ( 4 ) comprises at least one application element ( 5 ) that is moveable across the available build plane ( 27 ), in particular a coater blade that is adapted to convey build material ( 3 ) from a dose plane ( 10 ) to the available build plane ( 6 ) or a build material dispenser that is adapted to dispense build material ( 3 ) onto the available build plane ( 6 ).

13 . Application unit ( 4 ) for an apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective irradiation and consolidation of layers of a build material ( 3 ) which can be consolidated by means of an energy source, which application unit ( 4 ) is adapted to layerwise apply build material ( 3 ) in an available build plane ( 6 ) that extends between two build plane edges ( 7 , 8 ), characterized in that the application unit ( 4 ) is adapted to apply at least one layer ( 11 - 15 ) of build material ( 3 ) along an application path ( 16 ) in a sub-part ( 17 ) of the available build plane ( 6 ), wherein the application path ( 16 ) starts at a starting point and ends at an endpoint ( 18 ) between the build plane edges ( 7 , 8 ).

14 . Method for operating at least one apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ) by means of successive layerwise selective irradiation and consolidation of layers of a build material ( 3 ) which can be consolidated by means of an energy source, wherein build material ( 3 ) is applied in an available build plane ( 6 ) that extends between two build plane edges ( 7 , 8 ), characterized in that at least one layer ( 11 - 15 ) of build material ( 3 ) is applied along an application path ( 16 ) in a sub-part ( 17 ) of an available build plane ( 6 ), wherein the application path ( 16 ) starts at a starting point and ends at an endpoint ( 18 ) between two build plane edges ( 7 , 8 ).

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 Feb 15, 2019
From: WERNER, JÜRGEN
To: CL SCHUTZRECHTSVERWALTUNGS GMBH
Reel/Frame 048356/0928 →