The present invention relates to a device for cutting sheet metal comprising a first and a second circular blade. It can be used in particular in connection with sheet metal bending machines, in which it cuts off the sheet metal to be bent before bending.
Devices for cutting sheet metal with two circular blades are already known in connection with sheet metal bending machines. In particular depending on the thickness of the sheet metal to be cut, it is necessary to adjust the relative position of the blade edges of the two circular blades relative to one another in order to achieve a qualitatively good cutting result. The parameters to be set are, firstly, the so-called cutting clearance by which the first blade edge is spaced apart from the second blade edge in the direction of the axis of rotation of the first circular blade, and secondly, the so-called immersion depth by which the first blade edge and the second blade edge radially overlap each other in a direction perpendicular to the axes of rotation of the circular blades.
In the known devices for cutting sheet metal, a first setting device for manually setting the cutting clearance and a second setting device for manually setting the immersion depth are provided. In this case, the setting of the cutting clearance and immersion depth parameters takes place independently of one another. In practice, this repeatedly results in poor cutting results, since the correlation between cutting clearance on the one hand and immersion depth on the other hand, which is required for a specific sheet metal thickness, is not set correctly. In addition, the independent operation of two setting devices represents a comparatively high set-up effort.
The problem addressed by the present invention is therefore that of providing a device for cutting sheet metal with two circular blades which ensures that high-quality cutting results are achieved and, at the same time, is associated with the lowest possible set-up effort.
This problem is solved by means of a device with the features of claim 1. Further embodiments of the present invention result from the dependent claims.
According to the invention, a device for cutting sheet metal is proposed, comprising a first circular blade having a first blade edge and a second circular blade having a second blade edge, the sheet metal to be cut being located between the first circular blade and the second circular blade during cutting. The first circular blade is rotatably mounted about a first axis of rotation and the second circular blade is rotatably mounted about a second axis of rotation which runs parallel to the first axis of rotation. Both circular blades preferably roll passively about their relevant axis of rotation during the cutting process. A relative position of the first circular blade relative to the second circular blade can be adjusted. The relative position is defined on the one hand by a cutting clearance by which the first blade edge is axially spaced apart from the second blade edge in the direction of the first axis of rotation, and on the other hand by an immersion depth by which the first blade edge and the second blade edge radially overlap each other in a direction perpendicular to the axes of rotation. To adjust the aforementioned relative position, there is a positive coupling between the cutting clearance on the one hand and the immersion depth on the other hand such that, when a specific cutting clearance is set, a predetermined immersion depth is inevitably set and vice versa.
The positive coupling according to the invention is designed in such a way that each cutting clearance predetermined by a specific sheet metal thickness is assigned the immersion depth that matches the particular sheet metal thickness and vice versa. It is thereby achieved that only the cutting clearance parameter or the immersion depth parameter has to be set on the device according to the invention. The other parameter in question, either immersion depth or cutting clearance, is inevitably or automatically set. Since the correlation between the cutting clearance on the one hand and the immersion depth on the other hand is always taken into account for a specific sheet metal thickness, high-quality cutting results are always achieved with the device according to the invention. An incorrect setting of the required correlation between cutting clearance and immersion depth can no longer occur.
In the device according to the invention, the correlation between cutting clearance and immersion depth can be set, for example, by means of a CNC (computerised numerical control) controller. For example, it is possible to only input, into an input unit, the sheet metal thickness of the sheet metal to be cut if the correlation information which indicates what value the cutting clearance and immersion depth parameters should have for different sheet metal thicknesses that can be selected is stored in the CNC controller.
A mechanical positive coupling in the sense of the present invention can advantageously be achieved in that the first circular blade is rotatably mounted on a linearly movable eccentric element having an eccentric axis. The first axis of rotation has an eccentric offset relative to the eccentric axis. The eccentric element is provided with a thread which is concentric with the eccentric axis for linear movement of the eccentric element, wherein the thread can support itself against a counter thread of a housing of the device according to the invention. By rotating the eccentric element relative to the housing, the eccentric element can be moved linearly in order to set a specific cutting clearance. This inevitably involves rotating or pivoting the first axis of rotation about the eccentric axis, as a result of which a predetermined immersion depth is also set.
The geometric design of the eccentric offset on the one hand and the pitch of the thread on the other hand determines the correlation to be implemented by the positive coupling according to the invention between the cutting clearance and immersion depth parameters. The setting of a specific cutting clearance or a specific immersion depth always results in the optimal correlation of the cutting clearance and immersion depth for the predetermined sheet metal thickness.
The thread on the eccentric element, which supports itself against the housing of the device, is preferably an external thread. In a particularly advantageous manner, both a specific cutting clearance and the immersion depth associated with it can be set with the aid of a single servo motor which rotates the eccentric element. For this purpose, the servo motor can be in rotary connection with the eccentric element either permanently or only temporarily in order to adjust the relative position of the circular blades.
An embodiment of the device according to the invention is described below by way of example with reference to the accompanying drawings, in which:
A device according to the invention can be used in particular in connection with sheet metal bending machines. In this case, the device is used to cut off the sheet metal to be subsequently bent by the sheet metal bending machine and can be mounted in a linearly movable manner, for example on a motor-driven slide. With the help of the slide, the device for cutting the sheet metal is moved linearly along the intended cutting line. The two circular blades of the device are not actively driven in rotation, but rather passively rotate about their relevant axis of rotation solely due to the cutting reaction forces which act during the cutting process caused by the linear movement of the device along the cutting line.
The device for cutting sheet metal has a housing (not shown), in which there is a first circular blade 1 and a second circular blade 2, which are shown in
The upper, first circular blade 1 in
The eccentric element 7 has a circumferential sliding bearing surface 10, with which it is rotatably mounted about an eccentric axis 8 and, in the longitudinal direction of the eccentric axis 8, is axially displaceably mounted in a bearing seat of the housing (not shown in
The first circular blade 1 is rotatable about a first axis of rotation 3 relative to the eccentric element 7 and relative to the housing of the device. As can be seen in
The first circular blade 1 has an annular, first blade edge 5, while the second circular blade 2 is provided with an annular, second blade edge 6. The lowest point of the blade edge 5 in
In
In
The immersion depth ET and the cutting clearance SL form parameters which are to be set in an optimal correlation to one another depending on the thickness of the sheet metal to be cut and, where necessary, on the material composition of the sheet metal to be cut. During the cutting process, the sheet metal (not shown) to be cut is located between the blade edges 5 and 6, and the circular blades 1 and 2 passively roll about their axes of rotation 3 and 4.
The relative position of the circular blades 1 and 2 shown in
By rotating the eccentric element 7 by 90° in the viewing direction of
Since the thread 9 supports itself, during the aforementioned rotation of the eccentric element 7, against a counter thread of the housing (not shown) of the device, the eccentric element 7 together with the first circular blade 1 moves to the right in
This axial movement of the circular blade 1 or the blade edge 5 to the right along the eccentric axis 8 is overlaid by a movement of the circular blade 1 or the blade edge 5 in
Starting from the position shown in
In
During the further rotary movement of the eccentric element 7 by 90°, it has moved again to the right by a quarter of the pitch of the thread 9 in accordance with the direction of displacement VR in
At the same time, the axis of rotation 3 of the circular blade 1 has rotated a further 90° on the circular path about the eccentric axis 8, so that the circular blade 1 or the blade edge 5 in
The blade edges 5 and 6 overlap one another in such a way that in
If the eccentric element 7 is rotated, when viewed in
Of course, any intermediate relative positions of the circular blades 1 and 2 can be set which do not correspond to the relative positions shown by way of example in
The rotation of the eccentric element 7 about the eccentric axis 8 takes place with the aid of a single servo motor which, with a drive element (not shown), can at least temporarily engage in the end face of the eccentric element 7 seen in
The size of the eccentric offset EV, the size of the pitch of the thread 9 and the geometric relative starting position of the circular blades 1 and 2, which is shown in
1 First circular blade
2 Second circular blade
3 First axis of rotation
4 Second axis of rotation
5 First blade edge
6 Second blade edge
7 Eccentric element
8 Eccentric axis
9 Thread of the eccentric element 7
10 Sliding bearing surface
11 First tangential plane
12 Second tangential plane
13 Position pin
ET Immersion depth
EV Eccentric offset
SL Cutting clearance
TE Separating plane between eccentric element 7 and circular blade 1
VR Direction of displacement of the eccentric element 7
Number | Date | Country | Kind |
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10 2018 217 906.9 | Oct 2018 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/078251 | 10/17/2019 | WO | 00 |