APPARATUS FOR ADDITIVELY MANUFACTURING THREE-DIMENSIONAL OBJECTS
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 an irradiation device ( 4 ) with at least one irradiation unit ( 5 ) is provided that comprises a common holding structure ( 6 ), in particular a common housing, holding at least two irradiation elements ( 7 ) in a defined spatial relation, wherein the at least two irradiation elements ( 7 ) are individually controllable.
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 beam, characterized by an irradiation device ( 4 ) with at least one irradiation unit ( 5 ) that comprises a common holding structure ( 6 ), in particular a common housing, holding at least two irradiation elements ( 7 ) in a defined spatial relation, wherein the at least two irradiation elements ( 7 ) are individually controllable.
2 . Apparatus according to claim 1 , characterized by at least one beam guiding unit ( 19 ) adapted to individually guide at least two energy beams ( 8 ) generated via the at least two irradiation elements ( 7 ) in a build plane ( 9 ).
3 . Apparatus according to claim 1 , characterized in that the beam guiding unit ( 19 ) is adapted to guide the at least two energy beams ( 8 ) in that the spots of the at least two energy beams ( 8 ) are separate or at least partially overlap in the build plane ( 9 ).
4 . Apparatus according to claim 1 , characterized in that the beam guiding unit ( 19 ) is adapted to guide each energy beam ( 8 ) over a defined region of the build plane ( 9 ), wherein the at least two energy beams ( 8 ) may be overlapped in an overlapping region, in particular in the entire build plane ( 9 ).
5 . Apparatus according to claim 1 , characterized in that the irradiation unit ( 5 ) comprises a common energy source ( 10 ), in particular an electrical energy source, that is adapted to provide the at least two irradiation elements ( 7 ) with energy for generating an energy beam ( 8 ).
6 . Apparatus according to claim 1 , characterized in that the common energy source ( 10 ) is adapted to individually provide energy to each irradiation element ( 7 ), wherein a control unit ( 11 ) is adapted to individually dim and/or switch each irradiation element ( 7 ).
7 . Apparatus according to claim 1 , characterized in that the irradiation unit ( 5 ) comprises a common cooling device ( 12 ), wherein the at least two irradiation elements ( 7 ) are arranged in thermal contact to the common cooling device ( 12 ).
8 . Apparatus according to claim 1 , characterized in that the common cooling device ( 12 ) comprises at least one common cooling circuit ( 14 ) and/or at least one common cooling platform ( 13 ).
9 . Apparatus according to claim 1 , characterized in that the at least two irradiation elements ( 7 ) and the common energy source ( 10 ) and/or the common cooling device ( 12 ) form an irradiation assembly.
10 . Apparatus according to claim 1 , characterized in that the irradiation device ( 4 ) comprises at least one optical fiber ( 16 ), wherein at least two energy beams ( 8 ) are coupled into the same optical fiber ( 16 ) or into different optical fibers ( 16 ).
11 . Apparatus according to claim 1 , characterized in that the irradiation unit ( 5 ) comprises an optical fiber array ( 15 ) with at least two optical fibers ( 16 ), wherein at least two energy beams ( 8 ) generated via at least two irradiation elements ( 7 ) are coupled into the same optical fiber ( 16 ) and/or at least two energy beams ( 8 ) are coupled into different optical fibers ( 16 ) of the optical fiber array ( 15 ).
12 . Apparatus according to claim 1 , characterized by at least one irradiation head ( 17 ) couplable or coupled with the at least two irradiation elements ( 7 ), wherein the at least one irradiation head ( 17 ) comprises at least one beam modifying unit ( 18 ) adapted to individually modify the beam properties of each of the energy beams ( 8 ) generated via the irradiation elements ( 7 ).
13 . Apparatus according to claim 1 , characterized in that the beam modifying unit ( 18 ) is adapted to, in particular individually, modify the spot dimensions, in particular spot shape, spot size, and/or the spot focus position relative to a build plane ( 9 ) and/or the spot position relative to a reference axis, of each of the energy beams ( 8 ).
14 . Irradiation device ( 4 ) for an apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ), in particular an apparatus ( 1 ) according to claim 1 , characterized in that the irradiation device ( 4 ) comprises at least one irradiation unit ( 5 ) that comprises a common holding structure ( 6 ), in particular a common housing, holding at least two irradiation elements ( 7 ) in a defined spatial relation, wherein the at least two irradiation elements ( 7 ) are individually controllable.
15 . 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 beam, characterized in that the apparatus ( 1 ) comprises at least one irradiation device ( 4 ) with at least one irradiation unit ( 5 ) that comprises a common holding structure ( 6 ), in particular a common housing, holding at least two irradiation elements ( 7 ) in a defined spatial relation, wherein the at least two irradiation elements ( 7 ) are individually controllable or controlled.