EP2403664A1 - Method and tool for air bending provided with an adjustable die - Google Patents
Method and tool for air bending provided with an adjustable dieInfo
- Publication number
- EP2403664A1 EP2403664A1 EP10714838A EP10714838A EP2403664A1 EP 2403664 A1 EP2403664 A1 EP 2403664A1 EP 10714838 A EP10714838 A EP 10714838A EP 10714838 A EP10714838 A EP 10714838A EP 2403664 A1 EP2403664 A1 EP 2403664A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- bending
- die
- sheet metal
- adjustment method
- adaptive adjustment
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
- 238000005452 bending Methods 0.000 title claims abstract description 383
- 238000000034 method Methods 0.000 title claims abstract description 77
- 239000002184 metal Substances 0.000 claims abstract description 95
- 238000012937 correction Methods 0.000 claims abstract description 46
- 230000003044 adaptive effect Effects 0.000 claims abstract description 20
- 230000008569 process Effects 0.000 claims description 34
- 238000001514 detection method Methods 0.000 claims description 16
- 238000003825 pressing Methods 0.000 claims description 16
- 230000009466 transformation Effects 0.000 claims description 15
- 230000008859 change Effects 0.000 claims description 13
- 238000000844 transformation Methods 0.000 claims description 12
- 238000004904 shortening Methods 0.000 claims description 7
- 238000006073 displacement reaction Methods 0.000 abstract description 6
- 210000002414 leg Anatomy 0.000 description 62
- 238000011161 development Methods 0.000 description 31
- 230000008901 benefit Effects 0.000 description 21
- 239000000463 material Substances 0.000 description 20
- 230000000694 effects Effects 0.000 description 11
- 210000003414 extremity Anatomy 0.000 description 8
- 238000005520 cutting process Methods 0.000 description 4
- 238000004519 manufacturing process Methods 0.000 description 4
- 238000012545 processing Methods 0.000 description 4
- 230000009471 action Effects 0.000 description 3
- 230000006978 adaptation Effects 0.000 description 3
- 230000015572 biosynthetic process Effects 0.000 description 3
- 230000008878 coupling Effects 0.000 description 3
- 238000010168 coupling process Methods 0.000 description 3
- 238000005859 coupling reaction Methods 0.000 description 3
- 238000013461 design Methods 0.000 description 3
- 125000006850 spacer group Chemical group 0.000 description 3
- 238000012549 training Methods 0.000 description 3
- 210000000689 upper leg Anatomy 0.000 description 3
- 230000009467 reduction Effects 0.000 description 2
- 230000009897 systematic effect Effects 0.000 description 2
- 238000010276 construction Methods 0.000 description 1
- 230000003247 decreasing effect Effects 0.000 description 1
- 238000005516 engineering process Methods 0.000 description 1
- 238000009776 industrial production Methods 0.000 description 1
- 238000005259 measurement Methods 0.000 description 1
- 238000005555 metalworking Methods 0.000 description 1
- 230000001902 propagating effect Effects 0.000 description 1
- 238000007493 shaping process Methods 0.000 description 1
- 238000003860 storage Methods 0.000 description 1
- 238000002604 ultrasonography Methods 0.000 description 1
- 238000011144 upstream manufacturing Methods 0.000 description 1
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D5/00—Bending sheet metal along straight lines, e.g. to form simple curves
- B21D5/02—Bending sheet metal along straight lines, e.g. to form simple curves on press brakes without making use of clamping means
- B21D5/0209—Tools therefor
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D5/00—Bending sheet metal along straight lines, e.g. to form simple curves
- B21D5/02—Bending sheet metal along straight lines, e.g. to form simple curves on press brakes without making use of clamping means
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D5/00—Bending sheet metal along straight lines, e.g. to form simple curves
- B21D5/02—Bending sheet metal along straight lines, e.g. to form simple curves on press brakes without making use of clamping means
- B21D5/0209—Tools therefor
- B21D5/0227—Length adjustment of the die
Definitions
- the invention relates to an adaptive adjustment method for a bending tool assembly for bending sheet metal parts.
- a sheet metal part is formed by a press beam with a bending punch along the bending line, which is formed by the line of contact of the bending punch with the sheet metal part, pressing the sheet metal part into a bending die until the desired deformation is achieved.
- the bending die is formed in a known manner such that one, running parallel to the bending line and, for example, slot-like depression has two bending edges, which are spaced by a distance w, the die width, from each other, wherein the recess, for example. U- or V- may be formed.
- the two bending edges preferably have a symmetrical distance to the bending line, in particular in each case.
- the bending punch presses the sheet metal part along the bending line into the depression, wherein the sheet is deformed by abutment against the bending edge and the contact line with the bending punch, in particular the legs of the sheet metal part will bend.
- this is formed along the bending line, which forms a radius in this cross-section of the sheet metal part, which depends essentially on the Gesenkweite, the sheet thickness, the radius of the punch and the material strength.
- the bending radii will differ at the flat side of the sheet opposite the bending line and the flat side of the sheet in contact with the bending punch.
- the radius facing the punch will be smaller than the opposite radius.
- Significant influencing factors on the achievable bending radius are the sheet thickness and the material hardness, since this can be used to determine the die width and pressing force required for the bending process.
- the so-called developed length must be determined previously, ie the distance between the sheet edge and bending line, so after the bending process the leg has the corresponding desired length.
- the bending process results in a so-called bending shortening, which is compensated for by means of a so-called correction factor by which the bending line must be displaced away from the sheet edge in order to achieve the desired limb length after bending deformation.
- US 7,454,943 shows a bending die with two Anlegwangen that can be pivoted about a pivot axis against each other.
- the two cheeks When lowering the bending punch, the two cheeks are swung open and lie down to the reshaping . Sheet metal part and thus support the bending deformation.
- the pressing force is applied by the down bending punch.
- the two Anlegwangen are preferably mechanically coupled in their movement, so that both cheeks perform a counteracting movement.
- This training can be, for example, sheet metal parts with low material strength bend, in which it would come without the support of the Anlegwangen, to no exact bending edge and thus large deviations in the bending result would be expected.
- a bending press further comprises a stop device, which is arranged in the working plane in which the sheet metal part is inserted into the bending press, in particular so normal to the direction of travel of the punch. The sheet is inserted into the bending tool and applied to the stop device.
- a stop device which is arranged in the working plane in which the sheet metal part is inserted into the bending press, in particular so normal to the direction of travel of the punch. The sheet is inserted into the bending tool and applied to the stop device.
- the stopper device is positioned at the distance x from the bending line, which corresponds to the calculated distance to reach the desired leg length. After the first bending operation and determination of a correction factor for the leg length, the stop device is offset by the determined correction value.
- the thickness can fluctuate slightly within a sheet metal batch, which poses great problems in terms of tolerances to be complied with precision bending parts, as the bending result, and thus the influence of any deviating sheet thickness, can be determined only after the bending process, where a correction is no longer possible .
- the bending result is, however, also influenced by the die width itself, since with different sheet thickness also different radii and including the strength of the material, also different pressing forces arise.
- Known methods have the disadvantage that the die width can only be changed in large steps due to high tool costs, since only one set of tools will be present, but furthermore a tool change is required in each case. With known bending methods, therefore, the influence of the Gesenkweite on the bending result, in particular on the bending radius and the associated leg length can only be minimized, a complete compensation is usually not possible.
- the object of the invention is thus to improve a bending process, in particular for bending of sheet metal parts, to the effect that fluctuations in the sheet metal part parameters, already the first workpiece with respect to the bending deformation to be formed, lie within definable tolerances.
- the object of the invention is achieved by measuring the respective current value of the sheet thickness before the bending deformation and, in the case of deviation from a desired thickness, determining a correction value for the die width and changing the die width by the determined correction value.
- unpredictable thickness variations can be corrected in advance, for example due to a batch change of the sheet used, so that a reject part due to the changing bending geometry is excluded from the outset.
- the detection of the actual thickness of the sheet metal part can now be carried out, for example, on a random basis, but in any case during a batch change. Furthermore, the detection can also be carried out before each bending operation, so that an exact correction of the influence of the sheet thickness can be made for each bending part.
- the detection can take place for example when inserting the sheet metal part in the bending tool arrangement by an upstream measuring device, or a measuring device of the bending press.
- the operator of the bending press is thus automatically informed of the correction value for adjusting the die width and can therefore possibly adjust the die width by the correction value.
- this can be done by means of an adjusting device, in which a threaded spindle acts on the two bending edges of the Beigegesenk, that by turning the spindle by means of an actuating device, the distance between the bending edges, so the die width changed.
- a thickness deviation is determined in relation to a desired thickness and, in the case of a deviation, a correction value dw for the die width is determined on the basis of a model of the bending process.
- a mathematical equation model exists to determine the bending line from which the desired sheet thickness, the desired side length of the bent part and the material hardness along which the bending punch must act on the sheet metal part in order to achieve the desired bending result with the given output parameters .
- the method lies in the fact that the bending die in its Gesenkweite is individually variable and thus an exact adaptation to the required for the current sheet thickness Gesenkweite is possible.
- the change in the Gesenkweite can now be made by means of the adjustment without requiring a retooling of the bending press is required, but in particular without that the bending die must be removed from the table joists.
- the bending tool arrangement has a stop device with a stop surface for the sheet metal part, the stop device being arranged movable parallel to a feed plane normal to the feed plane and wherein the thickness deviation dt a correction value dx is determined for a stop position and the stop surface is moved by the determined correction value.
- a second important influencing factor for the accuracy of a bending deformation, in particular for the length of the bent leg, is given by the stop position of the sheet metal part on the stop device.
- This stop position determines how far the bending line is removed from a sheet metal edge, which according to the model of the bending process, direct influence on the bent leg length, in particular the ratio of the leg lengths of a bent angle is determined by the stop position.
- Leg length a proportion dxi to the correction value dx and / or a proportion dw t to the correction value dw is determined.
- Another factor influencing bending accuracy are variations in material hardness and strength. A harder material sets the bending process a greater resistance, whereby the model bending radius along the bending line is not achieved, which in turn has a direct influence on the leg length. Since the material hardness is very difficult to determine, but mostly does not fluctuate within a material charge, the invention can be directly deduced from the determined actual leg length with known parameters for the die width and / or the stop position on the material hardness and If the actual leg length deviates from a desired leg length, a corresponding correction value can be determined.
- the highest possible throughput is advantageous for industrial production, ie, it is necessary to reduce the time required to carry out the bending deformation, without impairing the accuracy of the formed bent parts.
- the time required to prepare a press brake for the next bending process is a significant factor influencing the throughput.
- the actual leg length can be detected, for example, by means of a feeler, whereby the bending curve can be monitored directly and a correction can be made immediately, for example in the case of deviation from a predetermined bending profile which results in a deviation from a required leg length the die width is adjusted accordingly.
- the bending die will therefore be designed in this case in such a way that it can also be adjusted during a bending operation without the bending part having to be manipulated by operating personnel for this purpose. For example, to the pressing pressure et-. which can be reduced, so that the bending die is relieved and the die width can be changed.
- a further advantage is a development according to which the detection of the actual leg length is performed contactless, since thus the bending part does not have to be inserted or arranged in a measuring device, which would require additional operating actions and thus increases the processing time.
- the actual leg length can be detected, for example, by automatically detecting the bent part in its storage position for further processing by an optically acting measuring device and determining the bent leg length. If, for example, the bending press is part of a production system, the bent limb length can be determined fully automatically during transport of the bent part to the next process step and transmitted to the control of the bending press, so as to flow directly into the adjustment or correction of the die width and / or stop position.
- the contactless detection of the actual limb length can also take place during the bending process, for example by means of an optically acting detection device which is arranged on the bending press and detects the length of the bent limb in its bent end position, or possibly already during the bending process.
- the accuracy of the sheet metal part Another factor influencing the accuracy of the bent legs is given by the accuracy of the sheet metal part. For example, if an isosceles angle to bend, the original initial length of the metal strip has a very significant impact on the length of the bent legs. Therefore, according to a development before the bending deformation, a developed actual length of the sheet metal part is detected and in the event of deviation from a proportion dx 2 to the correction value dx and / or a proportion dw 2 to the correction value dw determined a desired length. Even if, for example, several bending operations are carried out on a sheet-metal part, the actually developed length must be taken into account, since otherwise a propagating error could occur without correction, which could result in significant deviations in the sheet-metal parts to be bent.
- the bending die has a first and second die part, which are spaced from each other by the Gesenkweite, wherein the first and second die part is adjusted parallel to the feed plane in their relative position to the table bar.
- the bending edges of the two die parts are spaced apart by the die width.
- the method further developed according to the invention now has the very special advantage that a variety of different die widths can be set with this bending die which can be changed in the die width.
- a refinement is advantageous according to which the die parts of the bending die are adjusted relative to each other by a drive unit in their relative position.
- first and second die part of the bending die are adjusted symmetrically to a middle line, so that the leg lengths forming by the bending process change in the same way.
- the die width is set to a, determined by the model of the bending process die width w. Since the nominal dimension of the bending mandrel to be formed and also the nominal thickness of the inserted Blechs are known, can be determined based on the bending model, the required die width and thus adjust the Gesenkweite automatically, but in particular without manual operation.
- abutment surface is moved relative to the travel plane to a stop position x determined by the model of the bending process. Due to the bending model can be determined from the desired desired dimensions of the bent part directly that position of the stop to be able to form the desired bending leg after applying the sheet metal part to the stop surface and performing the bending.
- the movement to the determined stop position x is preferably carried out by a drive means, whereby the stop position can be adjusted automatically and in particular without operating action.
- a further development according to which a bending reduction is determined with the model of the bending process has the advantage that a correction value for the stop position dx and / or for the die width dw can thus be determined even before the first bending deformation is carried out, so that the first bending transformation already starts high accuracy can be performed.
- This refinement also has the advantage that in the case of bending transformations carried out successively on a sheet metal part, whereby the sheet length is shortened for each bending deformation, the required cutting length can be determined in advance and, in particular before the bending deformation is carried out, a correction factor of the die width dw or a correction factor of the stop position dx can be determined and thus in turn the first bent bent part can be produced in high accuracy.
- the change in the Gesenkweite is also carried out during the bending process.
- This has the advantage that a deviation from a desired bending curve, as required by the bending model, can still be corrected during the course of the bending transformation.
- the B ewegungs course the bending sheet metal limb (s) being detected, for example, by means of a detection device, and a deviation from the course determined by the bending model.
- the die width and / or the orientation of the bending die can be corrected in relation to the traverse plane, so as to form a dimensionally stable bending part.
- the object of the invention is also achieved by a bending tool arrangement, wherein the bending punch has a first and second die part, which are connected to the moving plane releasably longitudinally displaceable with a table bar.
- This design has the very special advantage that, in contrast to known bending tool arrangements, the two die parts can form a freely adjustable die width and thus does not have to resort to a set of Biegegesenken as previously, for cost reasons, only a limited number of different die widths was usually available , So far, a bending deformation has usually only been carried out with the most suitable bending die, whereby a systematic deviation from the desired bending profile predetermined according to the bending model was to be expected.
- an optimally designed bending die can be provided for each bending deformation, wherein in particular a very large range of possible die widths can be formed with a bending die designed according to the invention.
- the bending tool assembly further comprises a stop device with a stop surface, wherein the stop device is movable parallel to a feed plane and wherein the feed plane is aligned normal to the traverse plane.
- a movable stop device has the particular advantage that, based on the model of the bending deformation, the stop device and thus a stop position x can be set or moved to the required value, which was determined on the basis of the bending model.
- the stop device will further comprise a drive device, so that the movement of the stop device and thus the change or adjustment of the stop position x can be performed automatically, without requiring a manual operation would be required.
- this design has the further advantage that, for example, manufacturing data relating to the bent part can be taken over by a superordinate control device and, in particular automatically, without the need for an operator, and the according to the invention bending tool assembly can be set to the corresponding part of the workpiece parameters.
- a bending deformation to be carried out with the claim further developed bending tool assembly is known as so-called folding.
- a bending leg in the free-bending process is bent as far as possible and then pressed the flared leg flat.
- the first and second die parts can be moved independently of each other, so that, for example, after carrying out the bending process, it is possible in a particularly advantageous manner to carry out both a free-bending operation and a folding operation Free bending operation with the two die parts in each case a first position, at least one die part can be moved to a second position, so that the bent part can be re-applied and formed by pressing the pressing surfaces of the first die part and the punch from the bent-sheet metal legs a fold ,
- this development has the advantage that with a much simpler constructed bending die several Biegeumform Institute or transformation types can be performed without having to prepare for the bending die by rebuilding work to be performed bending transformations.
- to carry out the second step of folding only one die part has to be moved to a second position, while the other die part can remain in its position.
- a table bar which has at least one drive device has the advantage that the bending die can be moved without manipulation of the operator, and thus, for example, the change in the die width can be changed symmetrically by displacing the first and second die parts.
- the drive device will be designed such that the drive effect causes a movement of the die parts which is preferably symmetrical to the travel plane relative to one another, whereby, however, an asymmetrical movement of the die parts is also included in the further development.
- the adjustment of the first and second die part is a development of advantage, according to which the drive device is detachably connected to the first and / or second die part.
- the drive effect of the drive device can be selectively directed to the first, the second or both die parts, so that a different and, in particular, individual adjustment of the first and / or second die part can be formed in relation to the travel plane and in relation to one another.
- great flexibility is provided with regard to the bending operations to be carried out therewith.
- a change in the die width is possible symmetrically and asymmetrically with respect to the traversing plane, which implicitly includes an optional positioning or displacement of the two die parts in relation to the traversing plane.
- Fig. 1 a) to c) a bending process according to the prior art, wherein c) shows the effects of deviating sheet thickness on the bending result;
- FIG. 2 shows a bending die according to the invention which is suitable for carrying out the method according to the invention
- FIG. 3 shows a comparison between the prior art and the beige method further developed according to the invention in the formation of a fold.
- a bending tool arrangement 1 shows a bending tool arrangement 1 according to the prior art, comprising a bending punch 2 and a bending die 3, wherein the bending punch 2 is arranged or held in a press beam 4 and wherein the bending die 3 is arranged on in a table bar 5 and with connected to this changeable fixed.
- the press bar 4 with the bending punch 2 is movable along a displacement plane 6 relative to the table bar 5 or bending die 3.
- a sheet metal part 7 is inserted into the bending tool arrangement 1, in particular applied to the bending die 3.
- Bending deformation in particular for the bulge 10 of the sheet metal legs, the sheet thickness 11, the Gesenkweite 12, the hardness of the sheet metal part 7 and the determined pressing force, as this essentially the bending radius is set, which is when force of the bending punch 2 on the sheet metal part 7 along the bending line 8 or on the bending line opposite side of the sheet metal part will form.
- the bending die has to absorb high forces during the bending deformation; in particular, the force acting on the bending punch 2 is transmitted along two contact lines 9 to the bending die 3.
- a bending die must therefore be formed from very high-strength materials in order to avoid the mechanical stress. to be able to withstand such a long time and thus to be able to ensure a corresponding dimensional stability.
- each bending die 3 having a nominal die-width 12 which can be used for a defined combination of sheet thickness, material strength and desired bending radius.
- the die width used will usually only be approximately optimally adapted for the bending process to be performed.
- a known bending die 3 can only be used for carrying out one type of bending forming, additional bending tasks for increasing the productivity are not feasible with known bending dies or usually require the formation of a complex tool assembly of individual tools.
- FIGS. 1 b and 1 c show the effects when real component parameters deviate from the ideal values on which the bending model is based.
- the sheet metal part 7 is aligned oriented so that the center line of the sheet metal part coincides with the bending line or moving plane 6 of the refilling temple, the bending punch we contact the sheet metal part exactly along this center line and reshape. If the actual sheet metal thickness 11 is equal to the desired sheet metal thickness 14 underlying the bending model, the leg lengths a 1 and a 2 13 will be the same and in particular equal to the required nominal leg length according to the bending model.
- Deviations in the sheet thickness and / or the material strength of the desired parameters of the bending model will lead to deviations in the bent sheet metal part, in particular, the leg lengths or possibly also the ratio of the leg lengths differ.
- the leg lengths or possibly also the ratio of the leg lengths differ.
- a greater bending radius will be set along the bending line 8, resulting in a greater leg length 13.
- This effect of the sheet thickness variation is shown in Figure Ic, the deviations have been clearly exaggerated for clarity. The same conditions are obtained with different material hardness, with a higher hardness due to the lower bending radius leads to a larger leg length.
- FIG. 2 shows the adaptive setting method for a bending tool arrangement on the basis of a bending tool arrangement designed according to the invention.
- the bending tool arrangement 1 in turn comprises a press beam 4 with an arranged bending punch 2, which long of a traversing plane 6 can be moved relative to a bending die 3, wherein the bending die 3 is releasably longitudinally displaceable connected to a table bar 5.
- the bending die 3 has a first 17 and second 18 die part, whose flat sides, which are preferably oriented parallel to the travel plane 6, have a spacing 12 from one another, this distance being the so-called die width w.
- the die width is formed by the distance of the contact lines 9 of the die parts.
- a stop device 19 is also provided, which has a stop surface 20, wherein the stop surface 20 and / or the stop device 19 is movable parallel to a feed plane 21.
- the feed plane 21 identifies that plane which is normal to the traverse plane 6 and also corresponds to the plane on which the sheet metal part 7 is arranged for carrying out the bending deformation.
- a drive device 22 is also present on the table bar 5, which acts via a drive means 23 on the first 17 and / or second 18 die part, wherein for example via a coupling device 24, the drive means 23 can be individually connected to the die parts.
- a multi-part drive means 23 may be present, with which the drive effect can be individually directed to the two die parts.
- the drive device 22 By means of the drive device 22, it is now possible to move the two die parts 17, 18 relative to the traversing plane, wherein in particular a symmetrical as well as asymmetrical adjustment or movement in
- the coupling 24 or the drive means 23 can now be designed, for example, such that they also form the detachable connection of the die parts 17, 18 with the table bar 5.
- the die parts are unlocked relative to the table bar 5 and in turn locked after adjustment of Gesenkweite to the desired value and thus for the next bending operation in the desired position to form the required Gesenkweite are fixed relative to the table bar.
- a guide 35 can be arranged in the table beam 5, which guides a longitudinal displacement of the die parts 17, 18 in the direction of rallel to the feed plane 21 allows, by means of locking means a fixing of the die parts in the guide 35 and the table beam is possible.
- the guide or the correspondingly complementarily formed receptacle on the die parts can, for example, also be designed in such a way that relief of the bending die allows longitudinal adjustment of the die parts; when loaded by the bending die, an automatic locking of the die parts in the guide takes place.
- adjustments of the Gesenkweite or the Gesenkposition can be carried out relative to the traversing even with an already inserted sheet metal part, as soon as the forming process starts, but in particular as soon as the punch exerts pressing force on the sheet metal part, the bending die is fixed.
- the advantage of the method according to the invention is now, in particular, that the current actual thickness 11 of the sheet metal part 7 is detected before the bending deformation is carried out and then, based on the model of the bending deformation, in the case of a deviation from a desired sheet thickness, that correction value dw determined By which the die width w 12 has to be changed in order to be able to produce a bent part with the required side length or the required ratio of the leg lengths, despite deviating sheet thickness.
- the detection of the current actual sheet thickness can for example be done by a measuring device with a set of styli, the sheet metal part 7 inserted before inserting into the bending press in the measuring device or the measuring device is applied to the sheet metal part, and so the thickness is determined.
- Transponder system are used, which is applied for example on the inserted sheet metal part 7 in the region of the deformation zone on the sheet metal part and therefore directly in the, significantly affecting the bending section, the current sheet thickness measures.
- a feeler device can also be arranged in the bending punch 2, which detects the sheet thickness when the bending stem stem is lowered but before a pressing force is applied by the bending punch to the sheet metal part.
- the measuring device is arranged on the bending press, for example on the bending punch, that the detection of the current thickness 11 of the sheet metal part 7 does not require any additional operating steps, but in the course of inserting or aligning the sheet metal part in the bending press takes place.
- the bending deformation leads to a shortening of the sheet metal strip, whereby the so-called unwound length of the sheet metal strip from the bending model is determined on the basis of the sheet metal deformation.
- thickness, the desired leg length and the Gesenkweite can be determined. If the sheet thickness deviates from the assumed target sheet thickness, this has a direct effect on the bent leg length via the shortening factor. However, since this shortening factor also depends on the die width, a deviation of the actual sheet thickness can be corrected by adjusting the Gesenkwei-, according to the inventive method that the Gesenkweite is changed according to the bending model and thus turn a bending part with the desired Thigh length is shaped.
- this has the very special advantage that thus in each case a correct leg length can be bent, since the die width is adaptively adapted to the current target thickness of the sheet metal part.
- this adaptation method can be carried out prior to each bending operation, so that continuously high-precision bent parts can be formed, wherein deviations of the sheet thickness substantially do not impair the bending result.
- a further advantage of the method according to the invention lies in the fact that also cutting tolerances can be compensated since, according to a development, the model of bending deformation also includes the determination of the unwound length.
- the stop position or the stop distance x 25 are determined.
- the stop device 19 with the abutment surface 20 is now moved to those abutment distance x 25, so that by concern of the sheet metal part 7 in the feed plane 21 of the bending tool assembly 1 and further concerns on the stop surface 20, it is ensured that under consideration or compensation of Current actual sheet thickness is bent a bent part with the correct leg length.
- the stop distance 25 can now also be adapted such that the stop position determined by the bending model or the stop distance is adjusted by a correction value dx so that a total of one bent part can be formed with one or more bending transformations, the determined Cutting tolerance and which is based on the bending model. resulting correction value dw is divided in such a way to the individual bending transformations that a total dimensionally stable bent part is formed.
- determining the current sheet thickness and corresponding adjustment of the die width 12 or by determining the current blank length of the sheet metal part 7 can by changing or adjusting the Gesenkweite 12 and / or change the abutment distance 25 deviations from a target sheet thickness or a desired cutting length be corrected to still be able to produce largely dimensionally accurate parts.
- a deviating from the target hardness of the material of the sheet metal part will also lead to a non-model compliant sequence of bending deformation, in particular, another bending radius will set, which in turn has a direct influence on the forming leg lengths.
- the forming leg length is detected and correspondingly counteracted in the event of a deviation from the bending model course, for example by the die width being adapted accordingly already during the bending operation.
- the pressing pressure is reduced so much that an adjustment of the die parts 17, 18 relative to the table bar 5 is possible without the sheet metal part 7 in the bending tool assembly 1 slips or tilting of the die parts 17, 18 between the sheet metal part 7 and / or the table bar 5 is prevented.
- the detection of the leg length during the bending deformation is preferably carried out contactless, for example by means of an optically or acoustically acting detection device that detects the course of movement of the aufbiegenden leg portion and determined by comparison with the bending model in case of deviation, a correction value for the Gesenkweite.
- FIG. 3 a to 3d show the difference of the adaptive adjustment method according to the invention in a bending tool arrangement according to the invention in comparison with the prior art on the basis of bending deformation for forming a fold.
- FIGS. 3 a and b show the prior art with a bending tool arrangement 1.
- the bending tool arrangement 1 comprises a bending punch 2 and a bending die arrangement 26 individually configured for the respective application, which is connected to the table beam via a guiding device 27.
- the bending die assembly 26 now comprises a bending die 3 with an invariably predetermined die width 12, a spacer plate 28 and a folding stopper 29.
- the individual components of the bending countershaft assembly 26 are non-positively and / or positively connected to each other by means of a connecting means 31 and in particular form a mechanically compact unit.
- the Biegegesenkan für 26 is movable between a first and second fixed predetermined position to perform in a first position, the bending deformation to form the legs and perform in a second stop position the pressing of the legs to form the fold.
- the first and second stop positions are to be set exactly to the respective bending die arrangement 26, since, due to the arrangement of the individual components of the bending die arrangement, a plurality of differently possible distances between the bending die and the fold stop will set.
- FIG. 3 a shows the first forming step in which a sheet-metal part 7 is deformed by applying it to the bending die assembly 26 and moving 32 of the bending punch 2 in the direction of the bending die 3 to form a limb 33.
- a known Biegegesenkan für usufactore 12 has a fixed geometry, in particular, the Gesenkweite 12 is fixed, so that no correction is possible to correct a deviating from the target bending geometry of the sheet metal part can.
- Figure 3 c and d show a bending deformation with the inventive method in combination with the bending tool assembly according to the invention.
- a sheet metal part 7 by moving 32 of the punch 2 to form a leg 33 is formed. Since the current thickness was detected by the sheet metal part 7 and the die width 12 was optionally changed by the correction value dw determined from a deviation of the sheet thickness from a nominal sheet thickness, a leg 33 with the required leg length is reliably bent even in the first bending part.
- the first die part 17 After performing the first bending deformation, for example, only the first die part 17 is changed in position, in particular it is moved in the direction of the traverse plane 6, so that the bending punch 2 with the rebate 34 flattens the bent leg 33 of the sheet metal part 7, wherein the sheet metal part on the Folding surface 30 of the first die part 17 ⁇ .. was created.
- the advantages of the invention training are clearly visible.
- the optimum die width which results from the bending model on the basis of the sheet thickness and the material strength, can be formed for each bending deformation; on the other hand, the die width can be correspondingly corrected for deviations of the sheet thickness from the nominal value, in order nevertheless to be able to carry out a correct bending deformation.
- the die parts of the bending arrangement according to the invention in each case one for the traversing plane 6 of Bending punch 2 preferably has parallel side surface, whereby the bending parts can be supported particularly well against the table beam 5.
- a high load capacity of the die parts can be formed by structurally simple shaping.
- known bending dies due to the V-shaped die shape, known bending dies must be designed to be particularly stable mechanically in order to prevent the risk of widening of the V-shape, and thus a deviating die width, which leads to significantly higher tool costs.
- first and second die parts may be formed identically in terms of shape and mechanical properties, thereby reducing the required different bending tool components, in particular, one can endure with one type of die part. It is also of particular advantage that the first 17 and second die part 18 can be moved individually and independently of one another in relation to the table bar 5, in which case, for example, only the first die part 17 is moved while the second die part remains in its position.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Bending Of Plates, Rods, And Pipes (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
AT3502009A AT507911B1 (en) | 2009-03-04 | 2009-03-04 | METHOD FOR LYING |
PCT/AT2010/000065 WO2010099559A1 (en) | 2009-03-04 | 2010-03-04 | Method and tool for air bending provided with an adjustable die |
Publications (2)
Publication Number | Publication Date |
---|---|
EP2403664A1 true EP2403664A1 (en) | 2012-01-11 |
EP2403664B1 EP2403664B1 (en) | 2015-09-16 |
Family
ID=42315312
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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EP10714838.9A Active EP2403664B1 (en) | 2009-03-04 | 2010-03-04 | Method for free bending with an adjustable die |
Country Status (3)
Country | Link |
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EP (1) | EP2403664B1 (en) |
AT (1) | AT507911B1 (en) |
WO (1) | WO2010099559A1 (en) |
Families Citing this family (14)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
AT510711B1 (en) * | 2011-03-11 | 2012-06-15 | Trumpf Maschinen Austria Gmbh | BENDING TOOL AND BENDING TOOL ASSEMBLY |
DE102011105743A1 (en) | 2011-06-24 | 2012-12-27 | Haco N.V. | bending die |
AT511621B1 (en) * | 2011-07-01 | 2013-04-15 | Trumpf Maschinen Austria Gmbh | FOLDING DEVICE FOR A BENDING PEG AND METHOD FOR PERFORMING A FOLDING |
AT512892B1 (en) * | 2012-10-25 | 2013-12-15 | Trumpf Maschinen Austria Gmbh | Arrangement with a bending press and a robot and method for producing a bent part |
AT513741B1 (en) | 2013-03-28 | 2014-07-15 | Trumpf Maschinen Austria Gmbh | Bending tools for pre-bending and pressing |
JP2015199122A (en) * | 2014-04-01 | 2015-11-12 | 株式会社アマダホールディングス | Press brake mold and hemming processing method |
AT517315B1 (en) * | 2015-05-28 | 2017-04-15 | Trumpf Maschinen Austria Gmbh & Co Kg | Method for adjusting a molding section of a bending tool |
AT517319B1 (en) * | 2015-05-28 | 2017-06-15 | Trumpf Maschinen Austria Gmbh & Co Kg | Bending tool for a bending press |
PL3528974T3 (en) * | 2016-10-21 | 2022-08-01 | Rolleri S.P.A | Adjustable die for a press brake |
AT519221B1 (en) | 2016-12-06 | 2018-05-15 | Trumpf Maschinen Austria Gmbh & Co Kg | Production plant with a clamping tool and method for adjusting a total length of a bending edge of the clamping tool |
CN109530493B (en) * | 2018-10-20 | 2024-01-19 | 河南环宇玻璃科技股份有限公司 | Correcting device for bus window frame section bar |
CN109500156B (en) * | 2018-12-28 | 2023-06-20 | 天津航天长征火箭制造有限公司 | Bending forming device and method for inner grid wall plate with high rib thickness ratio |
JP7486441B2 (en) * | 2021-01-20 | 2024-05-17 | 株式会社アマダ | Bending method |
CN114951365A (en) * | 2022-04-11 | 2022-08-30 | 江苏麦斯铁机械有限公司 | Oil-electricity hybrid power unit of numerical control bending machine |
Family Cites Families (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS6313620A (en) * | 1986-07-07 | 1988-01-20 | Sumitomo Metal Ind Ltd | Bending method for resin laminated metal plate |
CH680772A5 (en) * | 1989-09-11 | 1992-11-13 | Beyeler Machines Sa | |
JPH03110019A (en) * | 1989-09-21 | 1991-05-10 | Matsushita Electric Works Ltd | Bending device |
JP2813108B2 (en) * | 1993-07-02 | 1998-10-22 | 新日本製鐵株式会社 | Strip bending machine |
FR2739580B1 (en) * | 1995-10-04 | 1997-12-26 | Lorraine Laminage | METHOD AND DEVICE FOR FOLDING ALONG A GENERATOR OF A METAL BLANK WITH MULTILAYER STRUCTURE |
EP0865840A1 (en) * | 1997-03-17 | 1998-09-23 | LVD Company NV | Adjustable die assembly |
SE9703157L (en) * | 1997-09-02 | 1999-03-03 | Pullmax Ursviken Ab | Method of bending procedures |
-
2009
- 2009-03-04 AT AT3502009A patent/AT507911B1/en active
-
2010
- 2010-03-04 EP EP10714838.9A patent/EP2403664B1/en active Active
- 2010-03-04 WO PCT/AT2010/000065 patent/WO2010099559A1/en active Application Filing
Non-Patent Citations (1)
Title |
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See references of WO2010099559A1 * |
Also Published As
Publication number | Publication date |
---|---|
EP2403664B1 (en) | 2015-09-16 |
AT507911B1 (en) | 2010-11-15 |
WO2010099559A1 (en) | 2010-09-10 |
AT507911A1 (en) | 2010-09-15 |
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