METHOD AND DEVICE FOR PRODUCING A SHEET METAL BLANK
20200039003 ยท 2020-02-06
Inventors
Cpc classification
B23K26/0876
PERFORMING OPERATIONS; TRANSPORTING
B23K26/361
PERFORMING OPERATIONS; TRANSPORTING
B23K26/0846
PERFORMING OPERATIONS; TRANSPORTING
B23K2101/34
PERFORMING OPERATIONS; TRANSPORTING
B23K26/0093
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K26/06
PERFORMING OPERATIONS; TRANSPORTING
B23K26/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a method to produce a metal blank with a predetermined contour, with the following steps: continuously moving the metal strip in a transport direction x; concurrently removing material from the surface of a top of a metal strip in at least one predetermined surface section by ablation by means of a first laser that is a component of a first removal device, and then concurrently cutting the metal strip along a cutting path corresponding to the contour of the metal blank by means of at least one second laser that is a component of a cutting device provided downstream of the first removal device; the surface section of an upstream metal blank being produced simultaneously with the cutting of a downstream metal blank.
Claims
1. A method to produce a metal blank (12) with a predetermined contour, with the following steps: Continuously moving the metal strip (2) in a transport direction x; Concurrently removing material from the surface of a top (O) of a metal strip (2) in at least one predetermined surface section (7, 16) by ablation by means of a first laser (6) that is a component of a first removal device, and then Concurrently cutting the metal strip (2) along a cutting path (11) corresponding to the contour of the metal blank (12) by means of at least one second laser (10) that is a component of a cutting device provided downstream of the first removal device; The surface section of an upstream metal blank being produced simultaneously with the cutting of a downstream metal blank.
2. A method according to claim 1, wherein step a) involves removing at least one first layer (13) provided on the top (O).
3. A method according to claim 1, wherein step a) involves removing a second layer interposed between the first layer (13) and a metal material (12a).
4. A method according to claim 1, wherein the surface section (7, 16) comprises a first path (7), a course of the first path (7) corresponding to at least one section of the contour of the metal blank (12), and the metal strip (2) being cut so that the cutting path (11) divides the first path (7) along the direction of its first longitudinal extension.
5. A method according to claim 1, wherein the cutting path surrounds the at least one surface section (7, 16).
6. A method according to claim 4, wherein the ratio between a first width B1 extending perpendicular to the longitudinal extension direction of the first path (7) and a second width B2 extending perpendicular to a second longitudinal extension direction of the cutting path (11) satisfies the relationship:
B1/B2=A, where A is a value in the range from 2 to 100.
7. A method according to claim 4, wherein step a) involves removing material along another surface section (7, 16) forming a second path (14) on an underside (U) of the metal strip (2), the second path (14) being essentially congruent with the first path (7) when the first path (7) is viewed from above.
8. A device for producing a metal blank (12), comprising A transport device (3) to transport a metal strip (2) in a transport direction x; A first removal device (4) for concurrent surface removal, by means of a first laser (6), of material in at least one predetermined surface section (7, 16) on a top (O) of a metal strip (2), wherein the first removal device (4) is able to remove material in the surface section to a depth of no more than 0.2 mm, and wherein a thickness of the metal strip is greater than that of the layer removed from the top (O); At least one cutting device (8) arranged downstream in a transport direction x for concurrent cutting, by means of a second laser, of the metal strip (2) along a cutting path (11) corresponding to the contour of the metal blank (12); and A controller for controlling the movements of the first laser (6) and the second laser (10) in such a way that the surface section of an upstream metal blank is produced simultaneously with the cutting of another metal blank that is downstream.
9. A device according to claim 8, wherein the transport device (3) is a roller straightening machine.
10. A device according to claim 8, wherein the first removal device (4) comprises a first movement device (5) to move a first removal tool (6) in a transport direction x and in a y-direction running perpendicular to it according to the predetermined surface section (7, 16).
11. A device according to claim 8, wherein the surface section (7, 16) is a first path (7) corresponding to at least one section of the contour of the metal blank (12), and the cutting path (11) divides the first path (7) along its first longitudinal extension direction.
12. A device according to claim 8, wherein a second removal device is provided to perform surface removal of material on an underside (U) of the metal strip (2) opposite the top (O) along another surface section (7, 16) forming a second path (14), the second path (14) being essentially congruent with the first path (7) when the first path (7) is viewed from above.
13. A device according to claim 12, wherein the second removal device comprises a second movement device to move a second removal tool in the x-direction and y-direction, according to the predetermined second path (14).
14. A device according to claim 8, wherein the second removal tool(s) is/are a first laser or grinding tool.
15. A device according to claim 8, wherein the cutting device (8) comprises at least one cutting tool (10) movable in the x- and y-direction according to the predetermined cutting path (11).
16. A device according to claim 8, wherein the movements of the second removal tool are additionally controllable with the controller.
17. A device according to claim 8, wherein a measuring device is provided to measure a travel of the metal strip (2) in the x-direction, and wherein a device is provided to transmit travel measurements measured with the measuring device to the controller.
Description
[0042] A sample embodiment of the invention is explained in detail below using the drawings. The figures are as follows:
[0043]
[0044]
[0045]
[0046]
[0047]
[0048] Downstream of the first removal device 4, a first cutting device 8 is provided, which is in turn identified by a dashed line. The cutting device 8 comprises a second bridge 9, which spans the metal strip 2 in the y-direction. The second bridge 9 can be moved back and forth in the x-direction, i.e., also opposite the transport direction x. The second bridge 9 has a cutting tool 10, e.g., a second laser, put on it, which can be moved back and forth in the y-direction. The reference number 11 designates a cutting path, which has been produced with the cutting device 10. The reference number 12 designates a first metal blank, which has been completely cut out of the metal strip 2. The contour of the first metal blank 12 is delimited by the cutting path 11. The first path 7 extends along a section of the cutting path 11.
[0049] Instead of the previously mentioned gantry device, which comprises a bridge and a carriage that can be moved back and forth on it, it is also, of course, possible to move the removal and/or cutting tools along the predetermined movement paths by means of a robot or other suitable devices, for example. The movements of the tools can also be controlled, for example, on the basis of a polar coordinate system.
[0050]
[0051]
[0052]
[0053] The device operates as follows:
[0054] The metal strip 2 unwound from the reel 1 is straightened by means of the roller straightening machine 3 and is simultaneously continuously transported in the transport direction x. In the first removal device 4, a first removal tool 6, for example a suitable first laser, is concurrently moved along a predetermined contour of the first metal blank 12 to be produced. The corresponding movements of the first bridge 5 and of the first removal tool 6 are controlled by means of a controller S. Opposite the first removal device 4 it is possible to provide a second removal device (not shown here), with which a second path 14 is removed on an underside U of the metal strip 2 opposite the top O.Not all applications require a second removal device.
[0055] After the production of the at least first path 7, the metal strip 2 is fed to the cutting device 8 that is arranged downstream. The cutting device 8 produces the cutting path 11, which corresponds to the predetermined contour of the metal blank 12 to be produced. The cutting path 11 divides the first path 7 along its longitudinal extension direction. Consequently, the protective layer 13 is already removed in the area of the cut edge before the cutting path 11 is produced. Subsequent production of the cutting path 11 by means of the cutting device 10 cannot bring any impurities into the area of the edge of cut.
[0056] According to another function of the device it is also possible, with the first removal tool 6, to remove surface sections 16 from the top O of the metal strip 2, which have the shape of a short path, a round or an oval shape. After that, the cutting device 8 that is arranged downstream can also guide the cutting path 11 so that the cutting path 11 does not cut the surface sections 16, i.e., the cutting path 16 surrounds the surface sections 16.
[0057] Although it is not shown in the figures, according to the inventive method it is obviously also possible to produce metal blanks which have a first path 7 at least sections of which are in the area of the cutting path 11, and surface sections 16 outside the cutting path 11, but within the contour. In addition, such metal blanks can also be provided with a second path 14 in the area of the cut edges, this second path 14 being opposite the first path 7.
[0058] The movements of the cutting device 10 are controlled by means of the controller similarly to how those of the first removal tool 6 are controlled. To accomplish this, it is possible to provide a measuring device (not shown in detail here), for example a drag wheel lying against the metal strip. The travel measurements made with it can be sent to the controller, allowing the movements of the first removal tool 6 and the cutting device 10 to be controlled in a suitable manner.
[0059] The inventive device and the inventive method allow rapid and efficient production of metal blanks on which material has been removed from at least sections of at least the top. The material can be, in particular, a protective layer, for example an aluminum-silicon protective layer or a zinc protective layer. Such metal blanks can be connected with another metal blank by means of welding in the area of the inventively produced surface sections. The welded connection produced is characterized by an especially small content of defects. Unwanted impurity phases within the weld seam can be avoided to the greatest possible extent.
LIST OF REFERENCE NUMBERS
[0060] 1 Reel [0061] 2 Metal strip [0062] 3 Roller straightening machine [0063] 4 First removal device [0064] 5 First bridge [0065] 6 First removal tool [0066] 7 First path [0067] 8 Cutting device [0068] 9 Second bridge [0069] 10 Cutting tool [0070] 11 Cutting path [0071] 12 First metal blank [0072] 12a Steel material [0073] 13 Protective layer [0074] 14 Second path [0075] 15 Second metal blank [0076] 16 Surface section [0077] 17 Metal part [0078] B1 First width [0079] B2 Second width [0080] O Top [0081] S Controller [0082] U Underside [0083] x Transport direction [0084] Z Axis