METHOD AND MACHINING TOOL FOR CUTTING WORKPIECES AND ASSOCIATED COMPUTER PROGRAM PRODUCT
20210347081 · 2021-11-11
Inventors
Cpc classification
Y02P70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B26D5/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
B26D5/00
PERFORMING OPERATIONS; TRANSPORTING
B24C1/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method cuts a, in particular flat, workpiece by a cutting beam and a cutting fluid. A workpiece part to be cut away is consecutively cut into at least two smaller portions which fall or are lowered downwards from a surrounding remaining workpiece after they have each been cut away. The division into smaller portions and the execution of the cut for separating the first smaller portion occur such that the point at which the first-cut, first smaller portion is cut away lies within the outer contour of the workpiece part to be cut away.
Claims
1-13. (canceled)
14. A method for cutting a workpiece with a cutting beam and a cutting fluid, which comprises the steps of: successively cutting a workpiece part to be cut away into at least two smaller part portions which fall or are lowered downwards from a surrounding remaining workpiece after they have each been cut away, wherein a division into the smaller part portions and an execution of a cut for separating a first part portion of the smaller part portions takes place such that a cutaway point of the first part portion which is cut first, lies inside an outer contour of the workpiece part to be cut away.
15. The method according to claim 14, which further comprises dividing the workpiece part to be cut away by area into the first part portion and a second part portion.
16. The method according to claim 14, which further comprises dividing the workpiece part to be cut away into the first part portion and a second part portion which is surrounded on three sides by the first part portion.
17. The method according to claim 15, wherein the division into the smaller part portions and the execution of the cut for separating the first part portion take place such that a width of the second part portion is at least as large as a thickness of the workpiece.
18. The method according to claim 14, wherein the division into the smaller part portions and the execution of the cut for separating the first part portion take place such that the cutaway point of the first part portion lies in a radius about a center of gravity of the first part portion, wherein a circle area delimited by the radius takes up less than ⅓ of a total area of the first part portion.
19. The method according to claim 14, wherein the division into the smaller part portions and the execution of the cut for separating the first part portion take place such that the cutaway point of the first part portion lies in a center of gravity of the workpiece part to be cut away, in a center of gravity of the first part portion or in a region between the center of gravity of the workpiece part and the center of gravity of the first part portion.
20. The method according to claim 15, wherein the division into the smaller part portions takes place such that the second part portion has two side edges running towards one another from the outer contour of the workpiece part to the cutaway point of the first part portion.
21. The method according to claim 15, which further comprises making a separating cut between the first and second part portions without angular corners.
22. The method according to claim 15, which further comprises making a separating cut between the first and second part portions obliquely such that a lower edge of the first part portion protrudes further into the second part portion than an upper edge.
23. The method according to claim 15, wherein when the first part portion is cut away, a partial separating cut is already made between the second part portion and the remaining workpiece.
24. The method according to claim 15, which further comprises subdividing the workpiece part into several segments to be cut successively, wherein at least one of the segments is divided into the at least two smaller part portions to be cut successively.
25. The method according to claim 14, which further comprises dividing the workpiece part to be cut away by area into a larger first part portion and a smaller second part portion.
26. A machining tool, comprising: a cutting beam; a cutting fluid for separating a workpiece into at least one workpiece part and a remaining workpiece; a machining head which can be moved relative to the workpiece and from which said cutting beam and said cutting fluid emerge; and a machine controller being programmed to control a relative movement between said machining head and the workpiece, said machine controller programmed to: successively cut the workpiece part to be cut away into at least two smaller part portions which fall or are lowered downwards from a surrounding said remaining workpiece after they have each been cut away, wherein a division into the smaller part portions and an execution of a cut for separating a first part portion of the smaller part portions takes place such that a cutaway point of the first part portion which is cut first, lies inside an outer contour of the workpiece part to be cut away.
27. The machining tool according to claim 26, wherein the workpiece is a plate-shaped workpiece.
28. A non-transitory computer readable medium having computer executable instruction for performing a method for cutting a workpiece with a cutting beam and a cutting fluid when the computer executable instructions run on a machine controller of a machining tool, the method comprises the steps of: successively cutting a workpiece part to be cut away into at least two smaller part portions which fall or are lowered downwards from a surrounding remaining workpiece after they have each been cut away, wherein a division into the smaller part portions and an execution of the cut for separating a first part portion of the smaller part portions takes place such that at a cutaway point of the first part portion which is cut first, lies inside an outer contour of the workpiece part to be cut away.
Description
[0017] Further advantages and advantageous embodiments of the subject of the invention arise from the description, the claims and the drawing. Also, the features mentioned above and those presented below may be used alone or grouped in arbitrary combinations. The embodiments shown and described should not be regarded as a comprehensive list, but rather have an exemplary character for the illustration of the invention. The drawings show:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] The laser machining tool 1 is furthermore supplied with cutting gases 7, for example oxygen and nitrogen. Alternatively or additionally, compressed air or application-specific gases, such as e.g. inert gases, may be provided. The cutting gas 7 is conducted to a cutting gas nozzle 8 of the machining head 3, from which it emerges together with the laser beam 5 in the direction of the workpiece 6. The laser machining tool 1 furthermore comprises a machine controller 9 which is programmed to move the machining head 3 and its cutting gas nozzle 8 relative to the workpiece 6 following a cutting contour.
[0027] Instead of moving the machining head 3 relative to the stationary workpiece 6, the workpiece 6 may also be moved relative to a stationary machining head 3. It is also possible to superpose a movement of the machining head 3 and a movement of the workpiece 6.
[0028] A laser cutting process for cutting a workpiece part 10 away from the workpiece 6 is described below with reference to
[0029] The division into the part portions 11, 12 and the execution of the cut for separating the first part portion 11 are selected such that the cutaway point 14 of the first-cut, first part portion 11 lies inside the outer contour 15 of the workpiece part 10 to be cut away, i.e. not on the outer contour 15. Preferably, the first part portion 11 is larger in area than the second part portion 12 and surrounds the second part portion 11 on three sides. As shown as an example in
[0030] In the first method step, the first part portion 11 is cut away and drops out of the surrounding remaining workpiece 12, 13. At the moment of cutting away, i.e. at the cutaway point 14, the tilt moment acting on the first part portion 11 because of the pressure of the cutting gas 7 is reduced in comparison with a cutaway point which lies on the outer contour 15. This leads to a reduced, or in the best case no tilt movement of the first part portion 11, which can therefore fall away from the surrounding remaining part portion 12, 13 more reliably or without tilting. The second part portion (“macro joint”) 12 initially remains connected to the surrounding remaining workpiece 13. In a second method step, the second part portion 12 is then cut away from the remaining workpiece 13 and, since it is largely no longer surrounded by material but lies freely inside the opening formed in the remaining workpiece 13 in the first method step, falls down from the remaining workpiece 13 reliably and without tilting.
[0031] To ensure that at the time of cutting away, as far as possible no tilt moment or only a negligible tilt moment acts on the first part portion 11 because of the effect of the cutting gas pressure, the cutaway point 14 of the first part portion 11 lies as far as possible in a radius R around the center of gravity 16 of the first part portion 11, wherein the circle area 17 delimited by the radius R amounts to less than ⅓, preferably less than ⅕ of the total area of the first part portion 11. Preferably, the cutaway point 14 of the first part portion 11 lies in the center of gravity 18 of the workpiece part 10 to be cut away, in the center of gravity 16 of the first part portion 11, or in the region between these two centers of gravity 16, 18.
[0032] As shown further in
[0033] The second part portion 12 must be selected sufficiently large that the heat introduced into the second part portion 12 on cutting of the first part portion 11 can be dissipated to the remaining workpiece 13. Also, the second part portion 12 must be selected so wide that, until the first part portion 11 is completely cut away, it can absorb the weight of the workpiece part 10 and the cutting gas pressure without any significant bending of the second part portion 12. Therefore the width B of the second part portion 12 should be at least as large as the thickness D (
[0034] In
[0035] If however the cutting gas 7 meets the workpiece 6 eccentrically to the laser beam 5, at the time of cutting away the first part portion 11, either the cutting gas 7 meets the workpiece 6 outside the first part portion 11 or, if this is not possible, the cutaway point 14 of the first part portion 11 lies if possible in the region between the center of gravity 16 of the first part portion 11 and the contact point 20.
[0036]
[0037] The geometry of the second part portion 12 is established such that this constitutes a small as possible a risk of tilting of the cutaway first part portion 11. As shown in
[0038] As also shown in
[0039] As shown in
[0040] In particular for the case in which, as in
[0041] If the second part portion 12a of a first segment 31a (as shown in