Bending device and control method thereof

Information

  • Patent Grant
  • 6725700
  • Patent Number
    6,725,700
  • Date Filed
    Tuesday, August 6, 2002
    22 years ago
  • Date Issued
    Tuesday, April 27, 2004
    20 years ago
Abstract
The bending device 25 comprises a positioning jig 10 having a clearance opening 8 formed therein for passing an elongate material 1, fixed to a device body, and a movable bending jig 28 having a clearance opening 30 formed therein for passing the material 1, provided at a position to which the material 1 is supplied from the positioning jig 10. The bending jig 28 is attached to a dome portion 26 which is part of a rotating member 24 rotated along a spherical surface having the center on the material 1 passing through the positioning jig 10. As the rotating member 24 rotates along the spherical surface, the bending jig 28 moves along the spherical surface. As a result, the material 1 is bent by being supplied with its supply direction changed from the positioning jig 10.
Description




FIELD OF THE INVENTION




This invention relates to a bending device, and a control method thereof, for bending an elongate material by moving a bending jig having a clearance opening formed therein for passing the elongate material.




BACKGROUND OF THE INVENTION




A heretofore known bending device, as disclosed in the Unexamined Japanese Patent Publication No. 1-154824, supplies an elongate material in the axial direction of the material, and comprises a positioning jig having a clearance opening formed therein for passing the elongate material, fixed to a device body, and a bending jig arranged at a position to which the material is supplied from the positioning jig. In this bending device, the bending jig is supported to move linearly to both vertical and horizontal directions orthogonal to the longitudinal direction of material, and the material is bent into a required shape by being moved on a plane orthogonal to the longitudinal direction of material.




However, such a conventional bending device necessitates, for example, a vertical motion mechanism provided with a pair of guide rails for supporting the bending jig slidably to the vertical direction, and a horizontal motion mechanism provided with a pair of guide rails for supporting the vertical motion mechanism slidably to the horizontal direction. Consequently, a constitution of the bending device has been complex and the device itself has been large.




SUMMARY OF THE INVENTION




An object of the present invention is to provide a bending device, and a control method thereof, which is simply organized and can bend the material by moving a bending jig having a clearance opening formed therein for passing an elongate material.




To attain this and other objects, the present invention provides a bending device comprising a positioning jig, a bending jig and a rotating member. The positioning jig has a clearance opening formed therein for passing an elongate material, and is fixed to a device body. The bending jig also has a clearance opening formed therein for passing the elongate material, and is arranged at a position to which the material is supplied from the positioning jig. The rotating member allows the bending jig to rotate on and along a spherical surface having the center on the material passing through the positioning jig.




According to such a constitution, since the bending jig moves on and along the spherical surface, the material passed from the positioning jig is supplied to the bending jig with its supply direction changed, and then bending is performed. As a result, there is no need to provide a vertical motion mechanism having a pair of guide rails for supporting the bending jig slidably to the vertical direction and a horizontal motion mechanism having a pair of guide rails for supporting the vertical motion mechanism slidably to the horizontal direction. Accordingly, a simple constitution of the bending device is made possible and a compact bending device is realized.




It is advantageous if part of the rotating member is formed into a spherical shell which is held slidably between a pair of spherical convex and concave members both fixed to the device body, and the positioning jig is attached to the spherical convex member.




It is also advantageous if the rotating member is rotated by means of at least three linear drive mechanisms. Drive mechanisms using servo motors or hydraulic cylinders can be adopted as the linear drive mechanisms.




Moreover, it is advantageous, if a portion of the spherical convex and concave members is cut off.




The bending device constituted as such can prevent the bent material passed from the bending jig from interfering with the rotating member and the spherical convex and concave members.











BRIEF DESCRIPTION OF THE DRAWING FIGURES




The invention will now be described, by way of example, with reference to the accompanying drawings, in which:





FIG. 1

is a perspective view of a relevant part of a bending device according to an embodiment of the present invention;





FIG. 2

is a front view of the bending device of the embodiment;





FIG. 3

is a partial sectional view taken along the line


3





3


in

FIG. 2

;





FIG. 4

is a partial sectional view taken along the line


4





4


in

FIG. 2

;





FIG. 5

is a side view seen from a cross section taken along the line


5





5


in

FIG. 2

;





FIG. 6

is a block diagram showing a functional constitution of the bending device of the embodiment; and





FIG. 7

is a flowchart illustrating a control method of the bending device of the embodiment.











DETAILED DESCRIPTION OF THE INVENTION




A bending device


25


shown in

FIG. 1

mainly comprises linear drive mechanisms


34


,


36


,


38


, a rotating member


24


, and a bending jig


28


. One end of each linear drive mechanism


34


,


36


,


38


is fixed to a device frame


12


, and the other end of the same is coupled with the rotating member


24


. The bending jig


28


is attached to the rotating member


24


.




Referring to

FIGS. 2 and 3

, a constitution of the bending device


25


is explained according to a process flow of a material


1


. The material


1


is an elongate material and, for example, made of titanium alloy. The material


1


is coiled around a not shown bobbin. After the material


1


, reeled out from the bobbin, is straightened, it passes between a pair of rollers


4


,


6


provided on a drive mechanism


2


to be supplied in the axial direction of the material


1


.




At a position to which the material is supplied, a positioning jig


10


having a clearance opening formed therein for guiding and passing the material


1


is provided. The positioning jig


10


is attached to a spherical convex member


14


. The spherical convex member


14


is fixed to a stay


12




a


which is fixed to the device frame


12


.




The spherical convex member


14


has a spherical surface


16


formed therein, which is convex in the supply direction of the material


1


. The spherical convex member


14


is arranged so that the center “a” of the spherical surface


16


is located on the axis of the material


1


passing through the positioning jig


10


.




As shown in

FIGS. 3 and 5

, about one fourth of the spherical convex member


14


is cut off to form a cut off area


18


. The positioning jig


10


is attached to this cut off area


18


.




Ahead of the spherical convex member


14


, in the direction to which the material


1


is supplied, a spherical concave member


20


is fixed to a stay


12




b


, as shown in FIG.


3


. The stay


12




b


is fixed to the device frame


12


. On a surface of the spherical concave member


20


, opposite to the spherical surface


16


of the spherical convex member


14


, a convex spherical surface


22


is formed. The spherical surface


22


is concentric to the spherical surface


16


and has the common center “a”, as can be seen in FIG.


3


. About one fourth of the spherical concave member


20


is also cut off just like the spherical convex member


14


.




Between the convex spherical surface


16


of the spherical convex member


14


and the concave spherical surface


22


of the spherical concave member


20


, a dome portion


26


which constitutes part of the rotating member


24


is held. The dome portion


26


is formed into a spherical shell having a certain thickness. A convex surface of the spherical shell-like dome portion


26


is concentric to the spherical surface


22


, while a concave surface of the spherical shell-like dome portion


26


is concentric to the spherical surface


16


. Accordingly, it is possible for the dome portion


26


to slide between the concave spherical surface


22


of the spherical concave member


20


and the convex spherical surface


16


of the spherical convex member


14


.




The bending jig


28


is attached to a cut off area


32


of the dome portion


26


. The bending jig


28


has a clearance opening


30


formed therein for passing the material


1


.




On a circumference of a circle concentric with the axis of the material


1


, the three linear drive mechanisms


34


,


36


,


38


are arranged at an evenly spaced angle to be parallel to the axial direction of the material


1


.




The three linear drive mechanisms


34


,


36


,


38


are expandable and contractable. They can be, for example, drive mechanisms using hydraulic cylinders or servo motors.




One end of each linear drive mechanism


34


,


36


,


38


is coupled with the rotating member


24


via a ball joint


40


,


42


,


44


, respectively, while the other end of the same is coupled with the device frame


12


via a universal joint


46


,


48


,


50


, respectively. The linear drive mechanisms


34


,


36


,


38


are expanded and contracted to a direction approximately parallel to a moving direction of the material


1


.




Now, an operation of the bending device


25


of the present embodiment is described.




A pair of rollers


4


,


6


of the drive mechanism


2


are driven, and the material


1


is supplied from the drive mechanism


2


in the axial direction of the material


1


. As a result, the material


1


passes through the clearance opening


8


of the positioning jig


10


then the clearance opening


30


of the bending jig


28


.




In order to bend the material


1


into a required shape, the linear drive mechanisms


34


,


36


,


38


are separately controlled for expansion or contraction, respectively, to rotate the rotating member


24


. By rotation of the rotating member


24


, the bending jig


28


is freely moved along the spherical surfaces


16


,


22


having the common center “a.” In short, while the positioning jig


10


is fixed to the device frame


12


, the bending jig


28


is moved along the spherical surfaces


16


,


22


, and the material


1


is supplied to be bent to the bending jig


28


with its supply direction changed.




Since the bending jig


28


can be moved freely to any direction along the spherical surfaces


16


,


22


, it is possible to bend the material


1


into a required shape. In addition, since the cut off area


32


of the dome portion


26


, a cut off area of the spherical concave member


20


and the cut off area


18


of the spherical convex member


14


completely overlap with each other when looked from the axial direction of the material


1


, as shown in

FIGS. 4 and 5

, interference with the dome portion


26


, spherical concave member


20


and spherical convex member


14


can be prevented when the bent material


1


is passed from the bending jig


28


.




Hereinafter, a control method of the bending device according to the present embodiment is described by way of

FIGS. 6 and 7

.





FIG. 6

is a block diagram showing a functional constitution of the bending device of the present embodiment. In

FIG. 6

, types of the material


1


and the bending jig


28


, etc. are selected to create a work data input


71


or a FD input


72


. Here, FD denotes, for example, an external memory such as a floppy disk. The work data input


71


or FD input


72


is inputted to a panel controller


73


. An output from the panel controller


73


is inputted to a control device


74


. In a CPU


75


connected to the control device


74


, necessary calculation is performed using, if required, an external memory


75




a


, ROM


75




b


and RAM


75




c


. A result of the calculation in the CPU


75


is again inputted to the control device


74


. An output from the control device


74


is transmitted to an uncoiler


76


and the following operational portions as a command value. More particularly, the material


1


is reeled out from a bobbin by means of the uncoiler


76


, and is straightened and stretched at a predetermined speed by means of a tension


77


, to be supplied to the drive mechanism


2


. The material


1


supplied from the drive mechanism


2


at a predetermined speed by means of a feeder


78


is measured by a measuring device


79


(encoder) and passed to the positioning jig


10


. Then, three linear drive mechanisms, that is, linear drive mechanisms


80


,


81


and


82


, are expanded or contracted, to complete required bending. Lastly, the bent material


1


is cut up into respective product units in a work cut


83


.





FIG. 7

shows a control method of the bending device by means of a flowchart.




At first, a selection of a material is performed (S


102


) and then a selection of a bending jig is performed (S


104


). Results of the selections are inputted as a work data input (S


106


) to create work data (S


108


). If the work data input is incomplete, a process returns to the work data input (S


106


) till a correct work data input is made. When creation of the work data is complete, a start switch is turned on (S


110


) and bending is performed (S


112


). When the bending is complete, the bent work piece is cut up into respective product units in the work cut (S


114


), and the process ends (S


116


). Steps from bending (S


112


) to the work cut (S


114


) are repeated until the number of bending inputted upon the work data input is completed.




As described in the above, the bending device of the present invention has a simple mechanical structure which enables the bending jig to move along the spherical surface, and can freely bend the material at any direction




An embodiment of the present invention has been described, but the present invention is not limited to the above embodiment, and other modifications and variations are possible within the scope of the present invention.




For instance, three linear drive mechanisms are provided in the present embodiment. However, four or more linear drive mechanisms will enable bending by which further complicated shapes are attained




Additionally, in the present embodiment, the linear drive mechanisms are arranged parallel to the axial direction of the material. However, they do not necessarily have to be so.



Claims
  • 1. A bending device comprising:a positioning jig having a clearance opening formed therein for receiving an elongate material, and the positioning jig being fixed to a device body; a bending jig having a clearance opening formed therein for receiving the elongate material, and the bending jig being arranged at a position for receiving the elongate material supplied from the positioning jig; and a rotating member for rotating the bending jig on and along a spherical surface having a center coincident with the elongate material as the elongate material passes through the positioning jig; wherein part of the rotating member is formed into a spherical shell and slidably held between a pair of spherical convex and concave members fixed to the device body.
  • 2. The bending device according to claim 1, wherein the positioning jig is attached to the spherical convex member.
  • 3. The bending device as set froth in claim 1, wherein a portion of the rotating member is one of cut off or removed.
  • 4. The bending device according to claim 3, wherein a portion of the spherical convex member and a portion of the spherical concave member is one of cut off or removed.
  • 5. A bending device comprising:a positioning jig having a clearance opening formed therein for receiving an elongate material, and the positioning jig being fixed to a device body; a bending jig having a clearance opening formed therein for receiving the elongate material, and the bending jig being arranged at a position for receiving the elongate material supplied from the positioning jig; and a rotating member for rotating the bending jig on and along a spherical surface having a center coincident with the elongate material as the elongate material passes through the positioning jig; wherein the rotating member is rotated by at least three linear drive mechanisms.
  • 6. The bending device according to claim 5, wherein the at least three linear drive mechanisms are each a drive mechanism using one of a hydraulic cylinder or a servo motor.
  • 7. The bending device according to claim 5, wherein a portion of the rotating member is one of cut off or removed.
  • 8. The bending device according to claim 5, wherein a portion of the spherical convex member and a portion of the spherical concave member is one of cut off or removed.
  • 9. A control method of a bending device which includes:a positioning jig having a clearance opening formed therein for receiving an elongate material, and the positioning jig being fixed to a device body; a bending jig having a clearance opening formed therein for receiving the elongate material, and the bending jig being arranged at a position for receiving the elongate material supplied from the positioning jig; and a rotating member for rotating the bending jig on and along a spherical surface having a center coincident with a center of the elongate material as the elongate material passes through the positioning jig, wherein part of the rotating member is formed into a spherical shell and slidably held between a pair of spherical convex and concave members fixed to the device body; the method comprising the step of bending the elongate material, as the elongate material is supplied from the positioning jig to the bending jig, by moving the bending jig along the spherical surface and rotating the bending jig about the center.
Priority Claims (1)
Number Date Country Kind
2001-240615 Aug 2001 JP
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Number Name Date Kind
3690278 Rautavalta Sep 1972 A
3952572 Mergler et al. Apr 1976 A
4047418 Fangmeier et al. Sep 1977 A
5862698 Yogo Jan 1999 A
6662613 Ichiryu et al. Dec 2003 B2
20020170329 Ichiryu et al. Nov 2002 A1
Foreign Referenced Citations (4)
Number Date Country
199 56 796 Jun 2001 DE
01-154824 Jun 1989 JP
04197528 Jul 1992 JP
09103825 Apr 1997 JP