Inspection System And Method For Analysing Defects
20190128819 · 2019-05-02
Inventors
- Arian Zeppenfeld (Olpe, DE)
- Günter Klappert (Kreuztal, DE)
- Jost Friedrich (Hilchenbach, DE)
- Volker Loth (Freudenberg, DE)
Cpc classification
G01B11/04
PHYSICS
B07C5/10
PERFORMING OPERATIONS; TRANSPORTING
G01B2210/52
PHYSICS
B07C1/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a method for analysing defects in transformer laminations using an inspection system, and to an inspection system (24), wherein the inspection system comprises a detection unit (26), a conveyance device (27) and a processing device, wherein the detection unit includes an optical detecting device (31), wherein the conveyance device is used to continuously transport a plurality of transformer laminations (25) relative to the detecting device, wherein the detecting device is arranged transversely, preferably orthogonally, to a direction of movement of a transformer lamination, wherein a velocity of movement of a transformer lamination relative to the detecting device is measured via a measurement device (40) of the detection unit, wherein an image of a contour of a transformer lamination is captured with the detecting device, wherein images of a transformer lamination are assembled into a combined image of the transformer lamination via the processing device while considering the velocity of movement of the transformer lamination, wherein a shape of the transformer lamination is determined on the basis of the combined image via the processing device.
Claims
1. A method for analysing defects in transformer laminations with an inspection system, wherein the inspection system comprises a detection unit, a conveyance device and a processing device, wherein the detection unit includes an optical detecting device, wherein the conveyance device is used to continuously transport a plurality of transformer laminations relative to the detecting device, wherein the detecting device is arranged transversely, preferably orthogonally, to a direction of movement of a transformer lamination, wherein a velocity of movement of a transformer lamination relative to the detecting device is measured via a measurement device of the detection unit, an image of a contour of a transformer lamination is captured with the detecting device, images of a transformer lamination are assembled into a combined image of the transformer lamination via the processing device while considering the velocity of movement of the transformer lamination, and a shape of the transformer lamination is determined on the basis of the combined image via the processing device.
2. The method according to claim 1, wherein a dimension and/or a contour of the transformer lamination is/are determined on the basis of the combined image by means of image processing.
3. The method according to claim 1, wherein the processing device associates the captured image with a position of the transformer lamination measured by the measurement device in the direction of movement relative to the detecting device at the capture time.
4. The method according to claim 3, wherein the processing device stores an image data set of the image and a measurement data set of the position in a component data set of the transformer lamination.
5. The method according to claim 4, wherein the processing device allocates a consistent time stamp to the image data set of the image and the measurement data set of the position.
6. The method according to claim 4, wherein the processing device can detect an individual optical marker of the transformer lamination within the image data set of the image and can assign the same to the component data set.
7. The method according to claim 1, characterized in that wherein the processing device determines a placement sequence for a plurality of transformer laminations for producing a transformer core on the basis of the shape of the transformer laminations.
8. The method according to claim 1, wherein a position sensor and/or a distance sensor of the measurement device is used to measure a position, a distance of completed movement and/or the velocity of movement of the transformer lamination directly at the transformer lamination.
9. The method according to claim 1, wherein the processing device processes measurement data from a position sensor and/or distance sensor placed before the detecting device in the direction of movement and subsequently from a position sensor and/or distance sensor placed after the detecting device in the direction of movement.
10. The method according to claim 1, wherein a difference between a velocity of movement measured at one end of the transformer lamination and a velocity of movement measured at an opposite end of the transformer lamination is considered by the processing device in the determination of the shape, preferably while also considering the time of a change of the velocity of movement.
11. The method according to claim 1, wherein a temperature of the transformer lamination and/or the conveyance device is measured and considered along with a respective expansion coefficient for the determination of the shape by the processing device.
12. The method according to claim 1, wherein a belt tension and/or a friction coefficient of a conveyor belt of the conveyance device is measured and considered for the determination of the shape by the processing device.
13. The method according to claim 1, wherein a calibration of the inspection system is conducted via an inspection of a transformer lamination with a known shape.
14. An inspection system for analysing defects in transformer laminations, wherein the inspection system comprises a detection unit, a conveyance device and a processing device, wherein the detection unit includes an optical detecting device, wherein the conveyance device is used to continuously transport a plurality of transformer laminations relative to the detecting device, wherein the detecting device is arranged transversely, preferably orthogonally, to a direction of movement of a transformer lamination, wherein a velocity of movement of a transformer lamination relative to the detecting device is measured via a measurement device of the detection unit, an image of a contour of a transformer lamination is captured with the detecting device, images of a transformer lamination are assembled into a combined image of the transformer lamination via the processing device while considering the velocity of movement of the transformer lamination, and a shape of the transformer lamination is determined on the basis of the combined image via the processing device.
15. The inspection system according to claim 14, wherein the optical detecting device includes a line scan camera, wherein a line scan image of the contour of a transformer lamination can be captured with the line scan camera.
16. The inspection system according to claim 14, wherein the optical detecting device includes a projection device, wherein the projection device can be designed as a lighting device, which can be used to project light onto the transformer lamination.
17. The inspection system according to claim 14, wherein the measurement device includes a position sensor and/or a distance sensor to measure a position, a distance of completed movement and/or the velocity of movement of a transformer lamination directly at the transformer lamination.
18. The inspection system according claim 14, the conveyance device is designed with one conveyor belt, two conveyor belts or with transport trolleys.
19. The inspection system according to claim 18, wherein the measurement device includes a position sensor and/or a distance sensor to measure a position, a distance of completed movement and/or the transport velocity of a conveyor belt or a transport trolley.
20. The inspection system according to claim 19, wherein at least one position sensor and/or distance sensor, respectively, can be arranged before and after the detecting device in the direction of movement.
21. The inspection system according to claim 18, wherein the conveyor belt is designed with magnets for increasing the friction coefficient of the conveyor belt.
22. The inspection system according to claim 18, wherein the conveyor belt is designed with a gearing, which can engage with a drive wheel of the conveyor belt.
23. The inspection system according to claim 18, wherein the conveyor belt includes a centring device for aligning the transformer laminations on the conveyor belt.
24. The inspection system according to claim 18, wherein the transport trolleys are designed with vacuum cups and/or magnets for holding the transformer laminations, wherein the transport trolleys can be moveable via a linear drive of the conveyance device.
25. The inspection system according to claim 14, wherein the measurement device includes a temperature sensor for detecting a temperature of a transformer lamination and/or the conveyance device.
Description
[0034] In the following, preferred embodiments of the invention are explained in more detail with reference to the attached drawings.
[0035] The drawings show:
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[0044] VIII-VIII from
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[0057] The transformer laminations shown in
[0058] An overall view of
[0059] The conveyance device 27 is designed from a continuous conveyor belt 34, wherein the conveyor belt 34 is designed with a gearing 35, which engages with at least one of the drive wheels 36, 37, 38 and 39. Furthermore, a measurement device 40 of the detecting device 26 is provided, which can be used to measure a velocity of movement of a transformer lamination 25 relative to the optical detecting device 31. The measurement device 40 in particular comprises two distance sensors 41 for measuring a distance of completed movement of a transformer lamination 25. Furthermore, the measurement device 40 comprises two position sensors 42, which serve to detect a transformer lamination 25. The belt tension of the conveyor belt 34 is measured via the sensors 43 of the measurement device 40. Encoders 44 serve to detect a velocity of movement of the conveyor belt 34 by counting the gearing 35. In addition, the measurement device 40 comprises temperature sensors 45 for measuring an actual temperature of the transformer lamination 25. A sensor 46 is provided on the conveyor belt 34 for measuring or inspecting a surface 47 of the conveyor belt 34.
[0060] The optical detecting device 31 is arranged in the centre between the drive wheels 37 at a relative spacing a, wherein the distance sensors 41 also are arranged in an identical relative spacing b from the drive wheels 37. An overall length L of the transformer lamination 25 is not larger than the lengths 2a+2b. Thus, the transformer lamination 25 always is detected by one of the distance sensors 41. The distance sensors 41 can be optical or mechanical sensors, wherein the distance sensors 41 can then also each include a wheel 48, which is only indicated as an example here.
[0061] The processing device 28 here comprises an image processing unit 49 and a measurement processing unit 50, which can be connected to an SPS system 51 of a machine for producing transformer cores. Furthermore, a database 52 for processing component data sets of the respective transformer laminations 25 can be coupled with the SPS system 51.
[0062] A centring device 53 is designed for arranging the transformer laminations 25 on the conveyor belt 34, wherein said centring device can be positioned at the sliding panels 54 of the conveyance device 27, ensuring an essentially straight entry of the transformer laminations 25 into the optical detecting device 31.
[0063] An overall view of
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