US20110219844A1 - Press brake with automatically variable length bending tool - Google Patents
Press brake with automatically variable length bending tool Download PDFInfo
- Publication number
- US20110219844A1 US20110219844A1 US13/045,952 US201113045952A US2011219844A1 US 20110219844 A1 US20110219844 A1 US 20110219844A1 US 201113045952 A US201113045952 A US 201113045952A US 2011219844 A1 US2011219844 A1 US 2011219844A1
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- United States
- Prior art keywords
- segment
- segments
- metal sheet
- press brake
- longitudinal
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Classifications
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- 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
- B21D37/00—Tools as parts of machines covered by this subclass
- B21D37/02—Die constructions enabling assembly of the die parts in different ways
-
- 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
- B21D5/0218—Length adjustment of the punch
Definitions
- the present invention relates to a press brake with automatically variable length bending tool.
- Press brakes adapted to bend metal sheets by exerting a pressure by means of a specific tool are known in the prior art.
- the metal sheets to be bent may have folded ends and different lengths.
- the bending tool must be manually varied to adapt it to the various lengths of the metal sheets.
- a press brake for metal sheets comprising a tool for bending the metal sheet, said tool comprising a die and pressure means opposite to said die and adapted to pressing the metal sheet against the die to determine the bending of the metal sheet, said pressure means comprising a plurality of first segments aligned along the bending direction of the metal sheet and adapted to press said metal sheet against said die and said press brake comprises control means adapted to change the longitudinal dimension of said pressure means, said control means being adapted to individually drive each first segment for its longitudinal sliding along the bending direction of the metal sheet so that the longitudinal dimension of the pressure means corresponds to the longitudinal dimension of the fold to effectuate on the metal sheet, said pressure means comprising a plurality of second segments, said control means being adapted to individually drive each second segment for inserting it between said first segments so that the second segment is aligned to the first segments along the bending direction of the metal sheet and so that the longitudinal dimension of the pressure means comprising at least one first segment and at least one second segment corresponds to the
- FIG. 1 shows a press brake with automatically variable length bending tool in accordance with the present invention
- FIGS. 2-5 show front views of the press brake in FIG. 1 , in which the bending tool takes different lengths according to the length of the metal sheet to be bent;
- FIGS. 6-8 show first segments of the bending tool in FIG. 1 ;
- FIGS. 9-10 show second segments of the bending tool in FIG. 1 with a device for the insertion between the first segments
- FIGS. 11-14 show various steps of inserting a second segment between the first segments of the bending tool in FIG. 1 ;
- FIGS. 15-19 show various steps for removing the bending tool in FIG. 1 from a metal sheet with edges folded inwards due to folds previously made in sequence on the sheet sides adjacent to the side being bent.
- FIGS. 1-19 show a press brake 1 with a variable length bending tool 10 according to the present invention.
- the bending tool 10 of press brake 1 comprises a fixed length die 11 arranged on the lower part 2 of the press brake along a longitudinal axis A and pressure means 12 arranged on the upper part 3 of press brake 1 and opposite to die 11 .
- the pressure means 12 are adapted to press the metal sheet 9 against die 11 to make a bend on the metal sheet itself; the bending direction of the sheet coincides with the longitudinal axis A.
- the pressure means 12 are associated with a device 100 for changing the length thereof, i.e. the longitudinal dimension thereof, so as to make it either slightly smaller than or equal to the longitudinal dimension of the metal sheet to be bent, i.e. so that the longitudinal dimension of the pressure means 12 corresponds to the longitudinal dimension of the fold to be made on the metal sheet 9 .
- Pressure means 12 comprise a plurality of segments 13 sliding along an upper longitudinal guide 25 and shown in greater detail in FIGS. 6 and 7 ; in particular, guide 25 is hollow and each segment 13 is held in position on guide 25 by the presence of an upper part 26 inserted into the hollow guide 25 .
- Each segment 13 comprises a groove 130 so as to have one end 16 which may be arranged within a U-shaped fold of the edge of metal sheet 9 to be bent.
- Each segment 13 preferably comprises a flat section 17 on the opposite side of groove 130 for approaching to the next, adjacent segment 13 of the plurality of segments 13 .
- Each segment 13 comprises a longitudinal through hole 18 for engaging one of the half guides or longitudinal bars 14 ′, 14 ′′, arranged one after the other in the bending direction of the metal sheet and longitudinally movable, and an actuator 19 , which cooperate for the sliding of segment 13 along guide 25 .
- the control device 100 comprises a processing unit 200 , arranged on the body of press brake 1 or spaced therefrom, set by a user and adapted to control means 15 and actuators 19 ; each actuator 19 is individually controlled by the processing unit 200 connected to the actuator by means of wires. Unit 200 may control either all the actuators 19 of segments 13 at the same time or only one or some of them adapted to engage one of bars 14 ′, 14 ′′ for sliding on guide 25 .
- each actuator 19 comprises a piston which is movable by means of a cylinder (not shown in the figures) and may be inserted into one of the holes 20 on bar 14 ′, 14 ′′.
- the bar itself may be longitudinally moved so as to longitudinally slide one of or all segments 13 ( FIG. 8 ); movement means 15 controlled again by the central unit 200 allow to longitudinally move the bars 14 ′, 14 ′′.
- Bars 14 ′, 14 ′′ are preferably interrupted in the longitudinal direction by a central empty space 30 . All elements 13 have equal length D and size.
- the pressure means 12 comprise another plurality of segments 21 ; the length of each segment 21 is different from the other segments 21 of the plurality, i.e. segments 21 have different lengths D 1 , D 2 . . . Dn.
- a single segment 21 or several segments 21 may be inserted between segments 13 ; in particular, the insertion of one of or more segments 21 occurs in the central space 30 of the plurality of segments 13 .
- Each segment 21 is either shorter or longer than each segment 13 .
- One or more segments 21 are inserted between part or all of segments 13 , if the metal sheet to be bent, in particular the part of the metal sheet to be bent, has a length L which is not a whole multiple of the length D of segment 13 , i.e.
- L n*D+e, where “n” is an integer and “e” is a real number complementary to length L.
- Each segment 21 has a cross section of the lower part equal to the cross section of the lower part of segments 13 and is inserted into space 30 so as to be longitudinally aligned with the other segments 13 .
- Each segment 21 is connected to movement means 40 which allow it to be inserted into the central space 30 or moved away from the central space 30 .
- the movement means 40 controlled by the unit 200 and better seen in FIGS. 9 and 10 , comprise a plate 42 connected to the upper part 3 of press brake 1 , a motorized rotation joint 44 and a motorized translation joint 41 , 43 ; plate 42 slides along longitudinal guides 48 integral with the upper part 3 of press brake 1 .
- the translation joint 41 , 43 comprises an arm 41 connected to plate 42 by means of the rotation joint 44 and a second motorized arm 43 , slidingly connected to the first arm 41 and connected to segment 21 ; both the motorized rotation joint 44 and the motorized translation joint 41 , 43 are controlled by the central unit 200 .
- Arm 41 may rotate on a plane transversal to the bending direction of the metal sheet, and arm 43 may translate either downwards or upwards along arm 41 .
- the movement means 40 shown on the front of the press brake may also be arranged on the back of the same press brake.
- FIGS. 11-14 show the various steps in which a segment 21 is inserted between the segments 13 in the central space 30 .
- the central unit 200 controls a downward sliding movement of arm 43 on arm 41 with a downward translation of segment 21 ( FIG. 12 ), a following rotation of arm 41 of a plane transversal to the bending direction of the metal sheet until segment 41 is placed inside space 30 , underneath the segments 13 ( FIG. 13 ), and finally an upward translation of segment 21 by means of the sliding movement of arm 43 again on arm 41 until the upper end of segment 21 is arranged within the hollow guide 25 and abuts against the upper inner part of the hollow guide itself ( FIG. 14 ).
- Movement means 40 , movement means 15 and actuators 19 belong to device 100 , which is adapted to change the length, i.e. the longitudinal dimension, of the pressure means 12 .
- device 100 is adapted to change the length of the pressure means 12 in accordance with the length of the metal sheet 9 , thus allowing whether inserting one or more segments 21 or not, and providing for moving some segments 13 in the longitudinal direction from the central part 50 where the metal sheet 9 to be bent is arranged.
- the pressure means 12 comprise eighteen segments 13 of length D and three segments 21 of different lengths D 1 , D 2 and D 3 , different combinations are possible according to the length of the metal sheet 9 to be bent, as shown in FIGS. 2-5 .
- segment 21 having length D 2 is firstly inserted, by the movement means 40 controlled by central unit 200 , into the central space 30 between the segments 13 of length D equally arranged across segment 21 , i.e. nine on one side and nine on the other side with respect to segment 21 .
- Segments 13 then move towards the segment 21 arranged in the central space 30 until segments 13 are adjacent to segment 21 , so that there are no interruptions of the pressure means 12 for bending the metal sheet; said movement is implemented by controlling all actuators 19 of segments 13 for the connection to bars 14 ′, 14 ′′ and the following longitudinal movement of bars 14 ′, 14 ′′ towards the central space 30 by means of the movement means 15 controlled by the central unit 200 .
- the problem of extracting the bending tool arises because of problems of geometrical fitting.
- segment 21 having length D 3 is inserted, by means of the movement means 40 controlled by the control unit 200 , into the central space 30 between segments 13 of length D equally arranged across segment 21 . Only six segments 13 then move towards the segment 21 arranged in the central space 30 , i.e.
- the metal sheet 9 is then inserted, as usual in the working position, under the bending tool so as to obtain a metal sheet 90 with length L 90 and U-folded edges.
- the bending tool is released once the U shaped edges have been made ( FIG. 15 ); the pressure means 12 are vertically lifted to create a distance Z between the lower part of the pressure means 12 and the metal sheet 90 ( FIG. 16 ).
- Segment 21 having length D 2 is then moved away from the central space 30 by the movement means 40 controlled by unit 200 .
- Arm 43 thus slides downwards on arm 41 with a downward translation of segment 21 ( FIG. 17 ), a following rotation of arm 41 on a plane transversal to the bending direction of the metal sheet until segment 21 is moved away from space 30 ( FIG. 18 ), and finally an upward translation of segment 21 again by means of sliding arm 43 on arm 41 to return segment 21 to the initial position in FIG. 10 .
- Six segments 13 then move towards the central space 30 , i.e. three segments carried by bar 14 ′ and three segments carried by bar 14 ′′, until the length of the pressure means given by the six segments 13 is shorter than the distance between the opposite ends of the folded edges of the metal sheet 90 .
- Said movement is implemented by controlling the actuators 19 of the only six segments 13 for the connection to bars 14 ′, 14 ′′ and the following longitudinal movement of bars 14 ′, 14 ′′ towards the central space 30 by means of the movement means 15 controlled by the central unit 200 ( FIGS. 18 , 19 ).
- An alternative release mode consists in only moving forward and slightly rotating sheet 90 so as to determine a diagonal space sufficient to extract the pressure means 12 in the length composition used for bending.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Bending Of Plates, Rods, And Pipes (AREA)
- Shaping Of Tube Ends By Bending Or Straightening (AREA)
Abstract
A press brake for metal sheets is described, comprising a tool for bending the metal sheet; the tool comprising a die and pressure means opposite to said die and adapted to press the metal sheet against the die to determine the bending of the metal sheet. The pressure means comprise a plurality of first segments aligned along the bending direction of the metal sheet and adapted to press said metal sheet against the die. The press brake comprises control means adapted to change the longitudinal dimension of the pressure means; the control means are adapted to individually drive each first segment for its longitudinal sliding along the bending direction of the metal sheet, so that the longitudinal dimension of the pressure means corresponds to the longitudinal dimension of the fold to be carried out on the metal sheet.
Description
- The present invention relates to a press brake with automatically variable length bending tool.
- Press brakes adapted to bend metal sheets by exerting a pressure by means of a specific tool are known in the prior art. The metal sheets to be bent may have folded ends and different lengths. The bending tool must be manually varied to adapt it to the various lengths of the metal sheets.
- It is the object of the present invention to provide a press brake with automatically variable length bending tool so as to adapt the tool to the different lengths of the metal sheet.
- In accordance with the present invention, said object is achieved by a press brake for metal sheets comprising a tool for bending the metal sheet, said tool comprising a die and pressure means opposite to said die and adapted to pressing the metal sheet against the die to determine the bending of the metal sheet, said pressure means comprising a plurality of first segments aligned along the bending direction of the metal sheet and adapted to press said metal sheet against said die and said press brake comprises control means adapted to change the longitudinal dimension of said pressure means, said control means being adapted to individually drive each first segment for its longitudinal sliding along the bending direction of the metal sheet so that the longitudinal dimension of the pressure means corresponds to the longitudinal dimension of the fold to effectuate on the metal sheet, said pressure means comprising a plurality of second segments, said control means being adapted to individually drive each second segment for inserting it between said first segments so that the second segment is aligned to the first segments along the bending direction of the metal sheet and so that the longitudinal dimension of the pressure means comprising at least one first segment and at least one second segment corresponds to the longitudinal dimension of the fold to effectuate on the metal sheet, characterized in that said control means comprises first means adapted to determine the insertion of at least one second segment between two first segments by means of a movement transversal to the bending direction of the metal sheet, said first means comprise movement means configured to carry out a combination of a rotation movement and a translation movement of said at least one second segment for inserting said at least one second segment between two first segments.
- The features and advantages of the present invention will be apparent from the following detailed description of a practical embodiment thereof, shown by way of non-limitative example in the accompanying drawings.
- In the drawings:
-
FIG. 1 shows a press brake with automatically variable length bending tool in accordance with the present invention; -
FIGS. 2-5 show front views of the press brake inFIG. 1 , in which the bending tool takes different lengths according to the length of the metal sheet to be bent; -
FIGS. 6-8 show first segments of the bending tool inFIG. 1 ; -
FIGS. 9-10 show second segments of the bending tool inFIG. 1 with a device for the insertion between the first segments; -
FIGS. 11-14 show various steps of inserting a second segment between the first segments of the bending tool inFIG. 1 ; -
FIGS. 15-19 show various steps for removing the bending tool inFIG. 1 from a metal sheet with edges folded inwards due to folds previously made in sequence on the sheet sides adjacent to the side being bent. -
FIGS. 1-19 show apress brake 1 with a variablelength bending tool 10 according to the present invention. Thebending tool 10 ofpress brake 1 comprises a fixed length die 11 arranged on thelower part 2 of the press brake along a longitudinal axis A and pressure means 12 arranged on theupper part 3 ofpress brake 1 and opposite to die 11. The pressure means 12 are adapted to press themetal sheet 9 against die 11 to make a bend on the metal sheet itself; the bending direction of the sheet coincides with the longitudinal axis A. - The pressure means 12 are associated with a
device 100 for changing the length thereof, i.e. the longitudinal dimension thereof, so as to make it either slightly smaller than or equal to the longitudinal dimension of the metal sheet to be bent, i.e. so that the longitudinal dimension of the pressure means 12 corresponds to the longitudinal dimension of the fold to be made on themetal sheet 9. Pressure means 12 comprise a plurality ofsegments 13 sliding along an upperlongitudinal guide 25 and shown in greater detail inFIGS. 6 and 7 ; in particular,guide 25 is hollow and eachsegment 13 is held in position onguide 25 by the presence of anupper part 26 inserted into thehollow guide 25. Eachsegment 13 comprises agroove 130 so as to have oneend 16 which may be arranged within a U-shaped fold of the edge ofmetal sheet 9 to be bent. Eachsegment 13 preferably comprises aflat section 17 on the opposite side ofgroove 130 for approaching to the next,adjacent segment 13 of the plurality ofsegments 13. -
Device 100 is adapted to drive the longitudinal sliding ofsegments 13 alongguide 25. Eachsegment 13 comprises a longitudinal throughhole 18 for engaging one of the half guides orlongitudinal bars 14′, 14″, arranged one after the other in the bending direction of the metal sheet and longitudinally movable, and anactuator 19, which cooperate for the sliding ofsegment 13 alongguide 25. - The
control device 100 comprises aprocessing unit 200, arranged on the body ofpress brake 1 or spaced therefrom, set by a user and adapted tocontrol means 15 andactuators 19; eachactuator 19 is individually controlled by theprocessing unit 200 connected to the actuator by means of wires.Unit 200 may control either all theactuators 19 ofsegments 13 at the same time or only one or some of them adapted to engage one ofbars 14′, 14″ for sliding onguide 25. In particular, eachactuator 19 comprises a piston which is movable by means of a cylinder (not shown in the figures) and may be inserted into one of theholes 20 onbar 14′, 14″. Oncesegment 13 has been blocked onbar 14′, 14″, the bar itself may be longitudinally moved so as to longitudinally slide one of or all segments 13 (FIG. 8 ); movement means 15 controlled again by thecentral unit 200 allow to longitudinally move thebars 14′, 14″. -
Bars 14′, 14″ are preferably interrupted in the longitudinal direction by a centralempty space 30. Allelements 13 have equal length D and size. - The pressure means 12 comprise another plurality of
segments 21; the length of eachsegment 21 is different from theother segments 21 of the plurality,i.e. segments 21 have different lengths D1, D2 . . . Dn. Asingle segment 21 orseveral segments 21 may be inserted betweensegments 13; in particular, the insertion of one of ormore segments 21 occurs in thecentral space 30 of the plurality ofsegments 13. Eachsegment 21 is either shorter or longer than eachsegment 13. One ormore segments 21 are inserted between part or all ofsegments 13, if the metal sheet to be bent, in particular the part of the metal sheet to be bent, has a length L which is not a whole multiple of the length D ofsegment 13, i.e. L=n*D+e, where “n” is an integer and “e” is a real number complementary to length L. In such as case, one ormore elements 21 should be inserted to cover the missing distance “e”; e.g. for a metal sheet of length L1, L1=n1*D+Dx where “n1” is an integer and “Dx” is the length of a specially madesegment 21. - Each
segment 21 has a cross section of the lower part equal to the cross section of the lower part ofsegments 13 and is inserted intospace 30 so as to be longitudinally aligned with theother segments 13. - Each
segment 21 is connected to movement means 40 which allow it to be inserted into thecentral space 30 or moved away from thecentral space 30. The movement means 40, controlled by theunit 200 and better seen inFIGS. 9 and 10 , comprise aplate 42 connected to theupper part 3 ofpress brake 1, amotorized rotation joint 44 and amotorized translation joint plate 42 slides alonglongitudinal guides 48 integral with theupper part 3 ofpress brake 1. Thetranslation joint arm 41 connected toplate 42 by means of therotation joint 44 and a secondmotorized arm 43, slidingly connected to thefirst arm 41 and connected tosegment 21; both themotorized rotation joint 44 and themotorized translation joint central unit 200.Arm 41 may rotate on a plane transversal to the bending direction of the metal sheet, andarm 43 may translate either downwards or upwards alongarm 41. The movement means 40 shown on the front of the press brake may also be arranged on the back of the same press brake. -
FIGS. 11-14 show the various steps in which asegment 21 is inserted between thesegments 13 in thecentral space 30. Starting from a condition in whichsegment 21 is spaced apart from space 30 (FIG. 11 ), thecentral unit 200 controls a downward sliding movement ofarm 43 onarm 41 with a downward translation of segment 21 (FIG. 12 ), a following rotation ofarm 41 of a plane transversal to the bending direction of the metal sheet untilsegment 41 is placed insidespace 30, underneath the segments 13 (FIG. 13 ), and finally an upward translation ofsegment 21 by means of the sliding movement ofarm 43 again onarm 41 until the upper end ofsegment 21 is arranged within thehollow guide 25 and abuts against the upper inner part of the hollow guide itself (FIG. 14 ). The insertion position ofsegment 21 inspace 30 being reached, with the upper part inserted into thehollow guide 25 and aligned withsegments 13, is indicated by aspecific sensor 27 arranged on the inner wall of thehollow guide 25 on which theupper part 26 ofsegment 21 abuts. - Movement means 40, movement means 15 and
actuators 19 belong todevice 100, which is adapted to change the length, i.e. the longitudinal dimension, of the pressure means 12. In particular,device 100 is adapted to change the length of the pressure means 12 in accordance with the length of themetal sheet 9, thus allowing whether inserting one ormore segments 21 or not, and providing for moving somesegments 13 in the longitudinal direction from thecentral part 50 where themetal sheet 9 to be bent is arranged. - For example, considering that the pressure means 12 comprise eighteen
segments 13 of length D and threesegments 21 of different lengths D1, D2 and D3, different combinations are possible according to the length of themetal sheet 9 to be bent, as shown inFIGS. 2-5 . - For example, if the length of the metal sheet, i.e. the part of metal sheet to be bent, is L1=18*D+D2, the situation shown in
FIG. 2 will occur, in whichsegment 21 having length D2 is firstly inserted, by the movement means 40 controlled bycentral unit 200, into thecentral space 30 between thesegments 13 of length D equally arranged acrosssegment 21, i.e. nine on one side and nine on the other side with respect tosegment 21.Segments 13 then move towards thesegment 21 arranged in thecentral space 30 untilsegments 13 are adjacent tosegment 21, so that there are no interruptions of the pressure means 12 for bending the metal sheet; said movement is implemented by controlling allactuators 19 ofsegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by thecentral unit 200. - If the length of the metal sheet, i.e. the part of the metal sheet to be bent, is L2=10*D+D2, the situation shown in
FIG. 3 will occur, in whichsegment 21 having length D2 is firstly inserted, by the movement means 40 controlled by thecentral unit 200, into thecentral space 30 betweensegments 13 of length D equally acrosssegment 21. Only tensegments 13 then move towards thesegment 21 arranged in thecentral space 30, i.e. five segments carried bybar 14′ and five segments carried bybar 14″, untilsegments 13 are adjacent tosegment 21, so that there are no interruptions of the pressure means 12 for bending the metal sheet; said movement is implemented by controllingactuators 19 of the only tensegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by thecentral unit 200. Thereby,side interruptions segments 13 which are especially useful in the case ofmetal sheets 9 with folded edges. - If the length of the metal sheet, i.e. the part of the metal sheet to be bent, is L3=3*D+D2, the situation shown in
FIG. 4 will occur, in whichsegment 21 having length D2 is firstly inserted, by means of the movement means 40 controlled by thecentral unit 200, into thecentral space 30 betweensegments 13 of length D equally arranged acrosssegment 21. Only threesegments 13 then move towardssegment 21 arranged in thecentral space 30, i.e. two segments carried bybar 14′ and a segment carried bybar 14″, untilsegments 13 are adjacent tosegment 21; said movement is implemented by controllingactuators 19 of the only threesegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by thecentral unit 200. Theside interruptions segments 13. - If the length of the metal sheet, i.e. the part of the metal sheet to be bent, is L4=2*D+D1 the situation shown in
FIG. 5 will occur, in whichplate 42 firstly longitudinally translates on theupper part 3 ofpress brake 1 to reach thecentral space 30 and thensegment 21 having length D1 is inserted by the movement means 40, controlled by thecentral unit 200, into thecentral space 30 between thesegments 13 of length D equally arranged acrosssegment 21. Only twosegments 13 then move towards thesegment 21 arranged in thecentral space 30, i.e. one segment carried bybar 14′ and one segment carried bybar 14″, until thesegments 13 are adjacent tosegment 21; said movement is implemented by controlling theactuators 19 of the only twosegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by thecentral unit 200. Theside interruptions segments 13. - If the length of the
metal sheet 9, i.e. the part of the metal sheet to be bent, is L5=n5*D, i.e. the length of the metal sheet is an exact multiple of the length D ofsegment 13, only thenecessary segments 13 will be moved, i.e. six segments if n5=6, towards thecentral space 30, i.e. three segments carried bybar 14′ and three segments carried bybar 14″, until thesegments 13 carried by abar 14′, 14″ are adjacent to the segments carried by theother bar 14′, 14″ to totally cover thecentral space 30; said movement is implemented by controlling theactuators 19 of the only sixsegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by thecentral unit 200. Theside interruptions segments 13. - If the edges of the metal sheet to be bent have a sequence of U-shaped profile folds on the previously bent adjacent sides, as shown in
FIG. 15 , the problem of extracting the bending tool arises because of problems of geometrical fitting. Firstly, the same operations as the previous cases are carried out, i.e. considering a length of themetal sheet 9 L9=6*D+D2,segment 21 having length D3 is inserted, by means of the movement means 40 controlled by thecontrol unit 200, into thecentral space 30 betweensegments 13 of length D equally arranged acrosssegment 21. Only sixsegments 13 then move towards thesegment 21 arranged in thecentral space 30, i.e. threesegments 13 carried bybar 14′ and three segments carried bybar 14″, until the six segments are adjacent tosegment 21, so that there are no interruptions of the pressure means 12 for bending themetal sheet 9; said movement is implemented by controlling theactuators 19 of the only sixsegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by thecentral unit 200. Thereby,side interruptions segments 13. - The
metal sheet 9 is then inserted, as usual in the working position, under the bending tool so as to obtain ametal sheet 90 with length L90 and U-folded edges. - The bending tool is released once the U shaped edges have been made (
FIG. 15 ); the pressure means 12 are vertically lifted to create a distance Z between the lower part of the pressure means 12 and the metal sheet 90 (FIG. 16 ). -
Segment 21 having length D2 is then moved away from thecentral space 30 by the movement means 40 controlled byunit 200.Arm 43 thus slides downwards onarm 41 with a downward translation of segment 21 (FIG. 17 ), a following rotation ofarm 41 on a plane transversal to the bending direction of the metal sheet untilsegment 21 is moved away from space 30 (FIG. 18 ), and finally an upward translation ofsegment 21 again by means of slidingarm 43 onarm 41 to returnsegment 21 to the initial position inFIG. 10 . - Six
segments 13 then move towards thecentral space 30, i.e. three segments carried bybar 14′ and three segments carried bybar 14″, until the length of the pressure means given by the sixsegments 13 is shorter than the distance between the opposite ends of the folded edges of themetal sheet 90. Said movement is implemented by controlling theactuators 19 of the only sixsegments 13 for the connection tobars 14′, 14″ and the following longitudinal movement ofbars 14′, 14″ towards thecentral space 30 by means of the movement means 15 controlled by the central unit 200 (FIGS. 18 , 19). - The
metal sheet 90 may thus be removed (FIG. 19 ). An alternative release mode consists in only moving forward and slightly rotatingsheet 90 so as to determine a diagonal space sufficient to extract the pressure means 12 in the length composition used for bending.
Claims (10)
1. Press brake for metal sheets comprising a tool for bending the metal sheet, said tool comprising a die and pressure means opposite to said die and adapted to pressing the metal sheet against the die to determine the bending of the metal sheet, said pressure means comprising a plurality of first segments aligned along the bending direction of the metal sheet and adapted to press said metal sheet against said die and said press brake comprises control means adapted to change the longitudinal dimension of said pressure means, said control means being adapted to individually drive each first segment for its longitudinal sliding along the bending direction of the metal sheet so that the longitudinal dimension of the pressure means corresponds to the longitudinal dimension of the fold to effectuate on the metal sheet, said pressure means comprising a plurality of second segments, said control means being adapted to individually drive each second segment for inserting it between said first segments so that the second segment is aligned to the first segments along the bending direction of the metal sheet and so that the longitudinal dimension of the pressure means comprising at least one first segment and at least one second segment corresponds to the longitudinal dimension of the fold to effectuate on the metal sheet, characterized in that said control means comprises first means adapted to determine the insertion of at least one second segment between two first segments by means of a movement transversal to the bending direction of the metal sheet, said first means comprise movement means configured to carry out a combination of a rotation movement and a translation movement of said at least one second segment for inserting said at least one second segment between two first segments.
2. Press brake according to claim 1 , wherein all the first segments have the same longitudinal dimension.
3. Press brake according to claim 1 , wherein each second segment has a longitudinal dimension lower or higher than each first segment.
4. Press brake according to claim 1 , wherein said first means comprise a plate longitudinally sliding on a fixed part of the press brake and movement means for each second segment, said movement means comprising a rotation motorized joint and a motorized translation joint connected with the second segment.
5. Press brake according to claim 4 , wherein said fixed part of the press brake is located above said first segments and in that said pressure means comprises a hollow guide for the arrangement of said first segments and in that said motorized translation joint comprises a first arm and a second arm sliding connected with the first arm and carrying at an end said second segment, said movement means determining said insertion of at least one second segment between two first segments by sliding directed downward of the second arm on the first arm, by rotation of the first arm by means of a rotation of the rotation joint and sliding directed upward of the second arm on the first arm for inserting said second segment inside the hollow guide of the pressure means.
6. Press brake according to claim 1 , wherein said control means comprise two longitudinal bars arranged one successive the other along the bending direction of the metal sheet and second means adapted to longitudinally move said two longitudinal bars, each first segment comprising a longitudinal through hole for engagement with one of said two longitudinal bars and an actuator, said actuator being adapted to block the first segment at one of the two longitudinal bars for the longitudinal sliding of the same first segment.
7. Press brake according to claim 6 , wherein said two longitudinal bars are spaced by a empty space for the insertion of at least one second segment between said at least two first segments belong to two bars, said control means being adapted to control two bars and the relative actuators for the longitudinal movement of said at least two first segments toward the at least one inserted second segment until said at least two first segments are adjacent to the at least one inserted second segment so that interruptions of the pressure means along the bending line of the metal sheet are not present.
8. Press brake according to claim 1 , wherein each one of said first segments comprises an end adapted to engage with the edges of the metal sheet which are bent in U shape.
9. Press brake according to claim 6 , wherein each one of said first segments comprises an end adapted to engage with the edges of the metal sheet which are bent in U shape, and said control means, in the case wherein the metal sheet has edges bent in U shape, are adapted to control the first means so as to go the at least one second segment away from said space between two first segments, said control means being adapted to successively control said two longitudinal bars and the actuators relative to the at least two first segments for longitudinally moving said at least two first segments toward the space which is left empty by the at least one second segment so as to allow the removal of the metal sheet with edges bent in U shape.
10. Press brake according to claim 1 , wherein said control means are adapted to place said first segments and said second segments adjacent to each other along the bending direction of the metal sheet.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
ITMI2010A000405A IT1398744B1 (en) | 2010-03-12 | 2010-03-12 | PRESSOPIEGA WITH BENDING TOOL WITH VARIABLE LENGTH AUTOMATICALLY. |
ITMI2010A000405 | 2010-03-12 |
Publications (1)
Publication Number | Publication Date |
---|---|
US20110219844A1 true US20110219844A1 (en) | 2011-09-15 |
Family
ID=43040959
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US13/045,952 Abandoned US20110219844A1 (en) | 2010-03-12 | 2011-03-11 | Press brake with automatically variable length bending tool |
Country Status (3)
Country | Link |
---|---|
US (1) | US20110219844A1 (en) |
EP (1) | EP2364789B1 (en) |
IT (1) | IT1398744B1 (en) |
Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20180361451A1 (en) * | 2015-06-16 | 2018-12-20 | Zeiser Engineering Uab | Automated press brake or bending machine for bending metal sheet material and method for bending metal sheet material with such an automated press brake or bending machine |
CN111687245A (en) * | 2020-06-08 | 2020-09-22 | 青岛艾特智能装备有限公司 | Flexible bending center pressing cutter mechanism |
CN111804771A (en) * | 2020-07-21 | 2020-10-23 | 亚铁智能装备技术(东莞)有限公司 | Bending method based on asymmetric workpiece of bending machine |
CN112059019A (en) * | 2020-09-25 | 2020-12-11 | 安徽鲲鹏装备模具制造有限公司 | Efficient stepless adjustable mould strip assembly and working method thereof |
CN113738067A (en) * | 2021-08-06 | 2021-12-03 | 上海典跃建材科技有限公司 | Prefabricated terrazzo shallow open ditch skirting line |
CN115156343A (en) * | 2022-04-20 | 2022-10-11 | 青岛艾特云智能自动化装备有限公司 | Cutter pressing device capable of automatically arranging cutters and having avoiding function |
CN119489120A (en) * | 2025-01-17 | 2025-02-21 | 江苏亚威机床股份有限公司 | Middle avoiding servo deflection compensation compaction die structure |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
AT510969B1 (en) * | 2011-04-29 | 2012-08-15 | Trumpf Maschinen Austria Gmbh | TOOL HOLDER FOR ABKANTPRESSE |
AT514788B1 (en) * | 2013-09-10 | 2015-05-15 | Trumpf Maschinen Austria Gmbh | Bending tool from several tool elements |
FI3330015T3 (en) * | 2014-02-10 | 2023-09-21 | Salvagnini Italia Spa | Sheet metal bending machine |
AT518260B1 (en) | 2016-02-17 | 2017-09-15 | Trumpf Maschinen Austria Gmbh & Co Kg | press brake |
JP2020192575A (en) * | 2019-05-28 | 2020-12-03 | 株式会社吉野機械製作所 | Press machine |
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US4188815A (en) * | 1977-10-14 | 1980-02-19 | Kabushiki Kiasha Komatsu Seisakusho | Die changing apparatus for a bending brake |
US6843760B2 (en) * | 1999-01-13 | 2005-01-18 | Amada Company, Limited | Bending press system |
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CH668035A5 (en) * | 1986-09-19 | 1988-11-30 | Beyeler Machines Sa | Folding press with die or matrix replacement system - has arms on rear mobile supports having pins which engage with holes in dies and matrices |
JP2521742B2 (en) * | 1987-02-20 | 1996-08-07 | 株式会社 アマダ | Folding machine |
NL8800453A (en) * | 1988-02-23 | 1989-09-18 | Liet Cornelis Hendricus | Sheet metal stamping-press clamp - has operating lever to lock punch mechanism |
JP3476213B2 (en) * | 1993-04-27 | 2003-12-10 | 日清紡績株式会社 | Press brake mold length changing device |
JPH07100540A (en) * | 1993-10-06 | 1995-04-18 | Komatsu Ltd | Die changing device of press brake |
JPH07275941A (en) * | 1994-04-06 | 1995-10-24 | Amada Co Ltd | Device for exchanging dies in press brake |
-
2010
- 2010-03-12 IT ITMI2010A000405A patent/IT1398744B1/en active
-
2011
- 2011-03-08 EP EP11157289.7A patent/EP2364789B1/en not_active Not-in-force
- 2011-03-11 US US13/045,952 patent/US20110219844A1/en not_active Abandoned
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4188815A (en) * | 1977-10-14 | 1980-02-19 | Kabushiki Kiasha Komatsu Seisakusho | Die changing apparatus for a bending brake |
US6843760B2 (en) * | 1999-01-13 | 2005-01-18 | Amada Company, Limited | Bending press system |
Cited By (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20180361451A1 (en) * | 2015-06-16 | 2018-12-20 | Zeiser Engineering Uab | Automated press brake or bending machine for bending metal sheet material and method for bending metal sheet material with such an automated press brake or bending machine |
US11141768B2 (en) * | 2015-06-16 | 2021-10-12 | Zeiser Engineering Uab | Automated press brake or bending machine for bending metal sheet material and method for bending metal sheet material with such an automated press brake or bending machine |
CN111687245A (en) * | 2020-06-08 | 2020-09-22 | 青岛艾特智能装备有限公司 | Flexible bending center pressing cutter mechanism |
CN111804771A (en) * | 2020-07-21 | 2020-10-23 | 亚铁智能装备技术(东莞)有限公司 | Bending method based on asymmetric workpiece of bending machine |
CN112059019A (en) * | 2020-09-25 | 2020-12-11 | 安徽鲲鹏装备模具制造有限公司 | Efficient stepless adjustable mould strip assembly and working method thereof |
CN113738067A (en) * | 2021-08-06 | 2021-12-03 | 上海典跃建材科技有限公司 | Prefabricated terrazzo shallow open ditch skirting line |
CN115156343A (en) * | 2022-04-20 | 2022-10-11 | 青岛艾特云智能自动化装备有限公司 | Cutter pressing device capable of automatically arranging cutters and having avoiding function |
CN119489120A (en) * | 2025-01-17 | 2025-02-21 | 江苏亚威机床股份有限公司 | Middle avoiding servo deflection compensation compaction die structure |
Also Published As
Publication number | Publication date |
---|---|
EP2364789A1 (en) | 2011-09-14 |
ITMI20100405A1 (en) | 2011-09-13 |
IT1398744B1 (en) | 2013-03-18 |
EP2364789B1 (en) | 2013-06-19 |
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Legal Events
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Owner name: SALVAGNINI ITALIA S.P.A., ITALY Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:BATTHEU, CLAUDE;REEL/FRAME:025945/0747 Effective date: 20110302 |
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STCB | Information on status: application discontinuation |
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