IP Library Granted Patent US 11,027,494
Granted Patent B2
US 11,027,494 · App. 16/189,562 · Granted Jun 8, 2021

Device and method for calibrating an irradiation system of an apparatus for producing a three-dimensional work piece

Inventors: Christopher Stengel (Luebeck, DE); Daniel Alberts (Luebeck, DE); Dieter Schwarze (Luebeck, DE); Toni Adam Krol (Luebeck, DE)
Assignee: SLM Solutions Group AG
B29C64/393B22F10/20B29C64/153B29C64/20B29C64/268B29C64/371B29C64/386B33Y10/00B33Y30/00B33Y50/00G01B11/24G05B19/4097G06T7/13G06T7/73B22F7/008B22F7/02B22F10/30B22F2203/03B22F2203/11B22F2207/20B33Y40/00B33Y50/02Y02P10/25
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Quick Facts
Patent No.
US 11,027,494
App. No.
16/189,562
Granted
Jun 8, 2021
Kind
B2
Abstract

A device ( 48 ) for calibrating an irradiation system ( 18 ) of an apparatus ( 10 ) for producing a three-dimensional work piece comprises a control unit ( 50 ) adapted to control the irradiation system ( 18 ) so as to irradiate a radiation beam ( 22; 22 a, 22 b ) onto an irradiation plane ( 52 ) according to a calibration pattern. The device ( 48 ) further comprises a sensor arrangement ( 56 ) adapted to be arranged in the irradiation plane ( 52 ) and to output signals to the control unit ( 50 ) in response to being irradiated with the radiation beam ( 22; 22 a, 22 b ) according to the calibration pattern. The control unit ( 50 ) further is adapted to generate a digital image of an actual irradiation pattern produced by the radiation beans ( 22; 22 a, 22 b ) incident on the sensor arrangement ( 56 ) based on the signals output by the sensor arrangement ( 56 ), to compare the digital image of the actual irradiation pattern with a digital image of a reference pattern so as to determine a deviation between the actual irradiation pattern and the reference pattern, and to calibrate the irradiation system ( 18 ) based on the determined deviation between the actual irradiation pattern and the reference pattern.

Claims (43)

1. An apparatus for associating a position in a construction data set with a position in a building section of the apparatus, comprising:

a building section for generating a three-dimensional work piece, configured to receive a base element comprising a boundary surface;

an irradiation unit configured to generate a radiation beam and to scan the radiation beam over a predefined scanning field, wherein the predefined scanning field comprises at least part of the boundary surface of the base element;

a detecting unit configured to detect time-dependent electromagnetic radiation intensity of electromagnetic radiation emitted at a spot position of the radiation beam while the radiation beam is scanned over the scanning field; and

a controller configured to:

associate the detected electromagnetic radiation intensity with position information indicative of a current position of the radiation beam;

determine a position of the boundary surface of the base element with regard to the scanning field, based on intensity variations of the detected time-dependent electromagnetic radiation intensity and based on the position information, such that abrupt intensity variations over time are identified as corresponding to edges of the boundary surface;

associate a position in a construction data set with a position in the building section, based on the determined position of the boundary surface; and

associate a position of an additive boundary surface of an additive element defined by the construction data set with the determined position of the boundary surface of the base element.

2. The apparatus of claim 1 , wherein the detecting unit is configured to detect the electromagnetic radiation intensity in dependence of the spot position of the radiation beam and to output the position information.

3. The apparatus of claim 2 , wherein the apparatus is configured to produce the additive element onto the base element, the additive boundary surface of the additive element matching the boundary surface of the base element by considering an association between the position in the construction data set and the position in the building section.

4. The apparatus of claim 3 , wherein the controller is configured to generate a two-dimensional image, based on the detected electromagnetic radiation intensity and the associated position information;

identify edges of the boundary surface of the base element in the two-dimensional image by using image processing; and

determine the position of the boundary surface of the base element with regard to the scanning field, based on the identified edges.

5. The apparatus of claim 1 , wherein the controller is configured to determine the position information based on radiation position information input into the irradiation unit.

6. The apparatus of claim 1 , wherein the apparatus is configured to produce the additive element onto the base element, the additive boundary surface of the additive element matching the boundary surface of the base element by considering an association between the position in the construction data set and the position in the building section.

7. The apparatus of claim 6 , wherein the apparatus is configured to generate the additive element onto the base element by powder bed fusion using the irradiation unit.

8. The apparatus of claim 1 , wherein the controller is configured to generate a two-dimensional image, based on the detected electromagnetic radiation intensity and the associated position information;

identify edges of the boundary surface of the base element in the two-dimensional image by using image processing; and

determine the position of the boundary surface of the base element with regard to the scanning field, based on the identified edges.

9. A method for associating a position in a construction data set with a position in a building section of an apparatus, comprising:

positioning a base element in a building section for generating a three-dimensional work piece, the base element comprising a boundary surface;

generating a radiation beam and scanning the radiation beam over a predefined scanning field, wherein the predefined scanning field comprises at least part of the boundary surface of the base element;

detecting time-dependent electromagnetic radiation intensity of electromagnetic radiation emitted at a spot position of the radiation beam while the radiation beam is scanned over the scanning field;

associating the detected electromagnetic radiation intensity with position information indicative of a current position of the radiation beam;

determining a position of the boundary surface of the base element with regard to the scanning field, based on intensity variations of the detected time-dependent electromagnetic radiation intensity and based on the position information, such that abrupt intensity variations over time are identified as corresponding to edges of the boundary surface;

associating a position in a construction data set with a position in the building section, based on the determined position of the boundary surface; and

associating a position of an additive boundary surface of an additive element defined by the construction data set with the determined position of the boundary surface of the base element.

10. The method of claim 9 , wherein the radiation beam has an intensity so low that a material structure of the base element is not affected.

11. The method of claim 10 , wherein the radiation beam is scanned over the predefined scanning field in a pattern comprising a plurality of irradiation vectors parallel to each other.

12. The method of claim 11 , further comprising:

producing the additive element onto the base element, the additive boundary surface of the additive element matching the boundary surface of the base element by considering an association between the position in the construction data set and the position in the building section.

13. The method of claim 12 , wherein the additive element is generated onto the base element by powder bed fusion using the irradiation unit.

14. The method of claim 10 , further comprising:

producing the additive element onto the base element, the additive boundary surface of the additive element matching the boundary surface of the base element by considering an association between the position in the construction data set and the position in the building section.

15. The method of claim 10 , wherein the additive element is generated onto the base element by powder bed fusion using the irradiation unit.

16. The method of claim 9 , wherein the radiation beam is scanned over the predefined scanning field in a pattern comprising a plurality of irradiation vectors parallel to each other.

17. The method of claim 16 , further comprising:

producing the additive element onto the base element, the additive boundary surface of the additive element matching the boundary surface of the base element by considering an association between the position in the construction data set and the position in the building section.

18. The method of claim 16 , wherein the additive element is generated onto the base element by powder bed fusion using the irradiation unit.

19. The method of claim 9 , further comprising:

producing the additive element onto the base element, the additive boundary surface of the additive element matching the boundary surface of the base element by considering an association between the position in the construction data set and the position in the building section.

20. The method of claim 9 , wherein the additive element is generated onto the base element by powder bed fusion using the irradiation unit.

Assignments (2)
MERGER Recorded Jan 3, 2024
From: SLM SOLUTIONS GROUP AG
To: NIKON SLM SOLUTIONS AG
Reel/Frame 066207/0173 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 31, 2020
From: STENGEL, CHRISTOPHER; ALBERTS, DANIEL; SCHWARZE, DIETER; KROL, TONI ADAM
To: SLM SOLUTIONS GROUP AG
Reel/Frame 052274/0905 →
Priority Claims (1)
EP 16169572 · May 13, 2016 · regional
Continuity (2)
Continuation PCTEP2017056957 · Mar 23, 2017
Related Publication 20190077086A1 · Mar 14, 2019