BENDING MACHINE FOR BENDING WORKPIECES, IN PARTICULAR A PRESS BRAKE
20240082901 · 2024-03-14
Assignee
Inventors
Cpc classification
B21D5/02
PERFORMING OPERATIONS; TRANSPORTING
B30B15/026
PERFORMING OPERATIONS; TRANSPORTING
B21D5/0272
PERFORMING OPERATIONS; TRANSPORTING
B21D5/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A bending machine for bending workpieces is disclosed. The bending machine includes a lower beam and an upper beam for forming a workpiece by bending along a bending line. A tool holder for receiving bending tools is provided on the lower beam and each end of the tool holder is associated with a recessed region which is formed in the lower beam overlapping with the respective end. The lower beam includes a central element and at least one side element arranged adjacent to one another in the thickness direction of the lower beam. Recessed regions are provided in the central element and/or in the width direction adjacent to the central element. The lower beam also includes a central region in which, during a bending operation of a workpiece, a force is introduced via the tool holder both into the central element and into the at least one side element.
Claims
1. A bending machine for bending workpieces, in particular a press brake, with a lower beam and an upper beam, for forming a workpiece by bending along a bending line which extends in a width direction of the bending machine, wherein a tool holder for receiving bending tools is provided on the lower beam, and each end of the tool holder lying in the width direction is associated with a recessed region which is formed in the lower beam overlapping with the respective end of the tool holder, wherein: the lower beam comprises a, in particular plate-shaped, central element and at least one, in particular plate-shaped, side element, which are arranged adjacent to one another in the thickness direction of the lower beam, wherein the recessed regions are provided in the central element and/or in the width direction adjacent to the central element; the lower beam includes a central region below a central portion of the tool holder in the width direction, wherein during a bending operation of a workpiece a force is introduced via the tool holder in the central region both into the central element as well as into the at least one side element; the lower beam comprises, for each end of the tool holder, a free region which extends beneath the tool holder originating from the respective end of the tool holder and comprises that region of the recessed region associated with the respective end which lies beneath the tool holder; the central element and the at least one side element are arranged in a respective free region in such a manner that in the respective free region, during a bending operation of a workpiece, at least initially, a force is introduced exclusively into the central element.
2. The bending machine according to claim 1, wherein the central portion of the tool holder is symmetrically arranged between its ends the width direction and/or occupies at least 50% of the total length of the tool holder in the width direction.
3. The bending machine according to claim 1, wherein a respective free region adjoins the central region of the lower beam on each side in the width direction.
4. The bending machine according to claim 1, wherein the recessed regions comprise one or more cleared regions in which no material of the central element is located.
5. The bending machine according to claim 1, wherein at least one recessed region and preferably each recessed region as seen in a plan view of the lower beam extends downwardly from a portion located at an upper edge of the central element and at which no tool holder arranged and extends into a free region of the lower beam.
6. The bending machine according to claim 1, wherein the central element is mechanically connected to the at least one side element in the central region, wherein the mechanical connection is in particular a substance-to-substance bonded connection, preferably a welded connection, and/or wherein the mechanical connection preferably extends along the total length of the central region in the width direction and/or wherein the mechanical connection is preferably formed at an upper edge of the central element.
7. The bending machine according to claim 1, wherein the at least one side element is formed by two side elements between which the central element located.
8. The bending machine according to claim 1, wherein the tool holder rests in its central portion both on an upper edge of the central element and on an upper edge of the at least one side element.
9. The bending machine according to claim 1, wherein the tool holder rests in a respective free region on an upper edge of the central element, wherein in the respective free region an upper edge of the at least one side element is spaced apart from the tool holder.
10. The bending machine according to claim 1, wherein one or more limiting means are formed in a respective free region order to limit the deformation of the central element during a bending operation of a workpiece.
11. The bending machine according to claim 10, wherein at least one limiting means and preferably each limiting means comprises a stop element which is arranged with a play, preferably from 0.05 mm to 5.0 mm and more preferably from 0.1 mm to 1 mm, in an opening in the central element, wherein the amount of play determines the amount of deformation of the central element up to its limitation.
12. The bending machine according to claim 10, wherein at least one limiting means and preferably each limiting means comprises an adjusting means, by means of which the amount of deformation of the central element up to its limitation can be adjusted manually and/or by means of actuators.
13. The bending machine according to claim 12, wherein the adjusting means comprises an eccentric, by means of which the amount of deformation of the central element can be adjusted up to its limitation by rotation of the eccentric.
14. The bending machine according to claim 1, wherein the opposite edges of the lower beam in the width direction are mechanically connected to a component of a frame of the bending machine.
15. The bending machine according to claim 1, wherein the lower beam is arranged adjacent, in its thickness direction, to a frame plate which has an opening feeding the workpieces to be bent into the bending machine, wherein there is preferably a mechanical connection between the lower beam and the frame plate.
Description
BRIEF SUMMARY OF THE INVENTION
[0031] An exemplary embodiment of the invention is described in detail below with reference to the accompanying figures.
[0032] In the figures:
[0033]
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION OF THE INVENTION
[0038] In the following, an embodiment of the invention is described based on a bending machine in the form of a press brake. A perspective view of this press brake is shown in
[0039] The bending machine 1 comprises a frame 2 which includes, among other things, two side stands 3, 3 and a front frame plate 4 and a rear frame plate 4. The structure of the frame can be seen very clearly from the perspective view of
[0040] As can be seen from
[0041] To move the upper beam 11, hydraulic actuators 9 known per se are used, which are provided in the upper region of the bending machine and are not described in detail. A large part of the actuators is supported by the reinforcement plate 7 shown in
[0042] To effect the desired bending of the fed metal sheet for the corresponding bending operation, lower tools (not shown) are used on the upper side of the lower beam 12 and upper tools (not shown) on the lower side of the upper beam 11. The lower tools form a so-called die into which a corresponding punch, formed by the upper tools, is pressed via the hydraulic actuators 9 by moving down the upper beam 11, thereby causing the bending of the metal sheet lying in between. As can be seen from
[0043] The lower beam 12 comprises three plate-shaped elements 13, 14 and 14 arranged parallel to one another in the x-direction. This plate-shaped structure of the lower beam 12 can be seen in
[0044]
[0045] Along the width direction, the lower beam 12 includes a central region B1 and two free regions B2 adjacent thereto. The position and length of the central region B1 corresponds to the position and length of the central portion 15a of the tool holder 15 in the width direction. In contrast, in the width direction, the position and length of each free region B2 corresponds to the position and length of an overlying edge portion 15b of the tool holder 15. The functions of the individual regions B1 and B2 are described in more detail below.
[0046] The tool holder 15 is mechanically connected in a rigid manner to the upper edge 13a of the central element 13 on the lower side, e.g. via a weld connection. The upper edge of the two side elements 14, 14 extends parallel to and at the same height as the upper edge 13a of the central element 13 only in the central portion 15a of the tool holder 15. This portion of the upper edge of the side elements is designated with reference sign 14a in
[0047] The portions of the upper edge 14a of the respective side elements 14, 14 are adjoined on each side of the region B1 by sloping, downwardly extending portions of the upper edge 14b, which in turn merge into straight horizontal portions of the upper edge 14c arranged at a distance from the portion of the upper edge 13a of the central element 13 above them. Here, the portions of the upper edge 14b and 14c are located in the free regions B2 of the lower beam 12. As a result of the fact that the portions of the upper edge 14c of the side elements 14, 14 are arranged lower than the portion of the upper edge of the central element 13 above them, only an introduction of force into the central element 13 is effected in the free regions B2 at the beginning of the bending operation. To the left and right of the portions of the upper edge 14c are lower horizontal portions of the upper edge of the central element 13 and the side elements 14, 14. In each of the two lower portions of the upper edge of the central element 13, an opened portion 13b is provided to form an upper end of a recessed region 16 formed as a corresponding clearance in the central element 13.
[0048] As shown in
[0049] The two free regions B2 of the lower beam 12 are characterized by the fact that, on the one hand, their geometrical moment of inertia is reduced by the recessed regions 16 and, on the other hand, in these regions the central element 13 and the side elements 14 do not have a substance-to-substance bonded, force-fitting or form-fitting connection to one another that prevents deformation of the central element 13 relative to the side elements 14, 14. In contrast to this, the central element 13 and the side elements 14, 14 in the present example are welded together at their upper edges 13a and 14a in the region 131. The corresponding weld seams are indicated by thick lines in
[0050] The increased geometrical moment of inertia in the central region B1 counteracts deformation of the lower beam in this region when a force is introduced during a bending operation. Such a deformation is undesirable as it has a negative effect on the bending result of the corresponding workpiece. In contrast, in the free regions B2 the corresponding bending force is only introduced into the central element 13, which can bend due to the reduction in bending stiffness caused by the recessed regions 16. Specifically, a deformation of the leg of the central element 13 is achieved, which is located above the recessed region 16 and in which the limiting means 17 is also positioned. The deformation of the free regions B2 counteracts the effect that, during a bending operation, the lower beam without portions with reduced bending stiffness would deform less in the edge region than in the centre.
[0051] The combination of reinforcing the lower beam in the central region B1 and reducing the bending stiffness in the free regions B2 can ensure a more uniform bending of the workpiece overall. In particular, the force is introduced symmetrically along the tool holder 15, thereby ensuring a significantly improved relative deformation of the tool holder 15, which leads to a better bending result.
[0052]
[0053] The extent of the adjusting means 17b in the vertical direction is selected such that there is a play, preferably from 0.05 mm to 5.0 mm and more preferably from 0.1 mm to 1 mm, between the upper flat portion and the opposite upper side of the opening 19 in the central element 13. Due to this play, it is possible to flexibly deform the leg of the central element 13, which is located above the recessed region 16, during a bending operation. The amount of play determines the maximum deformation and, in this sense, limits the amount of deformation.
[0054] In a modified embodiment of
[0055] Instead of or in addition to manual rotation of the bolt, actuators can also be provided to rotate the bolt or limiting means 17 in a suitable manner. These actuators are only schematically indicated by a dashed rectangle in
[0056] The embodiments of the invention described in the foregoing provide a number of advantages. In particular, by combining a reinforced central region of a lower beam with less rigid free regions at its edge, a uniform rectilinear deformation of the upper edge of the lower beam can be achieved during a bending operation, resulting in significantly better bending results. To this end, a plate-shaped structure of the lower beam consisting of a central element and adjoining side elements is used. During a bending operation, this structure ensures that force is introduced into the central region of the lower beam via both the central element and the side elements, whereas in the free regions only the central element is used for force introduction.