IP Library Patent Application 16189585
Patent Application
App. No. 16/189,585

APPARATUS FOR ADDITIVELY MANUFACTURING THREE-DIMENSIONAL OBJECTS

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Quick Facts
Patent No.
US None
App. No.
16/189,585
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 beam ( 5 ), wherein a determination device ( 6 ) is provided that is adapted to determine at least one parameter relating to a focal position ( 7 ) of the energy beam ( 5 ) and/or a deviation from a nominal focal position, wherein the determination is based on an angular deviation of at least one part of the energy beam ( 5 ) relative to a nominal angle.

Claims (15)

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 ( 5 ), characterized by a determination device ( 6 ) adapted to determine at least one parameter relating to a focal position ( 7 ) of the energy beam ( 5 ) and/or a deviation from a nominal focal position, wherein the determination is based on an angular deviation of at least one part of the energy beam ( 5 ) relative to a nominal angle.

2 . Apparatus according to claim 1 , characterized in that the determination device ( 6 ) is adapted to translate a focal position ( 7 ) of the energy beam ( 5 ) and/or a deviation from a nominal focal position into an angle and/or an angular deviation from a nominal angle.

3 . Apparatus according to claim 1 , characterized by a beam splitter ( 12 ) adapted to split a sub-part ( 13 ) off the energy beam ( 5 ) and guide the sub-part ( 13 ) towards the determination device ( 6 ), in particular the detector ( 14 ).

4 . Apparatus according to claim 1 , characterized in that the beam splitter ( 12 ) is built as a cover glass ( 11 ), in particular an inclined cover glass ( 11 ), through which the energy beam ( 5 ) is guided into a process chamber ( 10 ) of the apparatus ( 1 ).

5 . Apparatus according to claim 1 characterized by a refractive element ( 22 ), in particular a wedge plate, adapted to guide the sub-part ( 13 ) of the energy beam ( 5 ) and adapted to increase an angular deviation of the sub-part ( 13 ) of the energy beam ( 5 ).

6 . Apparatus according to claim 1 characterized by a focusing element ( 23 ) adapted to image the sub-part ( 13 ) onto a detector ( 14 ).

7 . Apparatus according to claim 1 characterized by an optical filtering element ( 25 ), in particular an aperture, adapted to filter at least one part of the sub-part ( 13 ).

8 . Apparatus according to claim 1 characterized in that the determination device ( 6 ) is adapted to perform the determination of the at least one parameter relating to the focal position ( 7 ) and/or the deviation from a nominal focal position based on a determination of a spot size (d, d′, d″) of the sub-part ( 13 ) of the energy beam ( 5 ) on the detector ( 14 ), in particular a ratio of the spot size (d, d′, d″) of the sub-part ( 13 ) with a reference spot size.

9 . Apparatus according to claim 1 characterized in that the detector ( 14 ) is built as or comprises a high repetition rate detector.

10 . Apparatus according to claim 1 characterized in that the detector ( 14 ) may be built as or comprise at least two PSD-sensors, preferably an arrangement of multiple PSD-sensors and/or a line sensor.

11 . Apparatus according to claim 1 characterized in that the determination device ( 6 ) is adapted to perform a power measurement of the energy beam ( 5 ).

12 . Apparatus according to claim 1 characterized in that the apparatus ( 1 ) comprises a control unit, in particular an irradiation device, adapted to control the energy beam ( 5 ), wherein the determination device ( 6 ) is adapted to generate calibration data for controlling the energy beam ( 5 ), in particular for calibrating the focal position ( 7 ) of the energy beam ( 5 ).

13 . Apparatus according to claim 1 characterized in that the apparatus ( 1 ) is adapted to control the energy beam ( 5 ) in a closed loop.

14 . Determination device ( 6 ) for an apparatus ( 1 ) for additively manufacturing three-dimensional objects ( 2 ), in particular an apparatus ( 1 ) according to claim 1 , which apparatus ( 1 ) is adapted to generate an energy beam ( 5 ) characterized in that the determination device ( 6 ) is adapted to determine at least one parameter relating to a focal position ( 7 ) of the energy beam ( 5 ) and/or a deviation from a nominal focal position, wherein the determination is based on an angular deviation of at least one part of the energy beam ( 5 ) relative to a nominal angle.

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 ( 5 ), characterized in that at least one parameter relating to a focal position ( 7 ) of the energy beam ( 5 ) and/or a deviation from a nominal focal position is determined via a determination device ( 6 ), wherein the determination is based on an angular deviation of at least one part of the energy beam ( 5 ) relative to a nominal angle.

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: HUNZE, STEPHAN
To: CL SCHUTZRECHTSVERWALTUNGS GMBH
Reel/Frame 047491/0701 →