EP0655302B1 - Web slitting machine - Google Patents
Web slitting machine Download PDFInfo
- Publication number
- EP0655302B1 EP0655302B1 EP95200073A EP95200073A EP0655302B1 EP 0655302 B1 EP0655302 B1 EP 0655302B1 EP 95200073 A EP95200073 A EP 95200073A EP 95200073 A EP95200073 A EP 95200073A EP 0655302 B1 EP0655302 B1 EP 0655302B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- blade
- side shifting
- web
- shifting means
- knife
- 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.)
- Expired - Lifetime
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Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D7/00—Details of apparatus for cutting, cutting-out, stamping-out, punching, perforating, or severing by means other than cutting
- B26D7/26—Means for mounting or adjusting the cutting member; Means for adjusting the stroke of the cutting member
- B26D7/2614—Means for mounting the cutting member
- B26D7/2621—Means for mounting the cutting member for circular cutters
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D5/00—Arrangements for operating and controlling machines or devices for cutting, cutting-out, stamping-out, punching, perforating, or severing by means other than cutting
- B26D5/02—Means for moving the cutting member into its operative position for cutting
- B26D5/04—Means for moving the cutting member into its operative position for cutting by fluid pressure
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B26—HAND CUTTING TOOLS; CUTTING; SEVERING
- B26D—CUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
- B26D7/00—Details of apparatus for cutting, cutting-out, stamping-out, punching, perforating, or severing by means other than cutting
- B26D7/26—Means for mounting or adjusting the cutting member; Means for adjusting the stroke of the cutting member
- B26D7/2628—Means for adjusting the position of the cutting member
- B26D7/2635—Means for adjusting the position of the cutting member for circular cutters
Definitions
- the following invention relates to a web slitting machine of the type used for cutting a continuous web of material, and a method of adjusting an upper blade assembly of such a machine.
- Web slitters are cutting machines commonly employed to cut an endless web, such as a continuous roll of material, into strips.
- Typical machines of this type include an upper blade portion which overlaps with a lower knife to provide a scissors-like action for cutting a continuous roll as it is pulled between the blade and the knife.
- the blade is usually a nonpowered rotary cutting disk suspended from a carriage which is attached to a transverse bar.
- a plurality of web slitters may be connected to the same bar to create parallel strips of various widths.
- the lower knife may be a blade supported from underneath the roll or may be a roller or drum having a sharpened edge. Together the lower knife and the upper blade create a shearing action against the web as it unwinds from a roll and is pulled through the web slitter by a rewind or take-up roll.
- the cant angle is the angular relationship between the upper blade and the lower knife in the plane of the blade about a vertical axis. This angle must be maintained so that the wear and deformation between the two cutting edges are kept to a minimum.
- the cant angle should also be adjustable to compensate for various blade-to-web orientations as well as various types of web material. Rotation of the upper blade about the aforementioned vertical axis results in deviations From the desired cant angle and various approaches have been tried to correct this problem.
- the problem with all of the aforementioned devices is that the means for holding the blade in a predetermined cant angle position is not strong enough to maintain the angle when the web slitter is subjected to the force of the moving web. Moreover, springs and screws which may be easily adjusted are also subject to tampering.
- the use of a replaceable tapered block as shown in Markowski alleviates the problem of tampering; however, the block bears against but a small flattened portion of the blade-supporting shaft. Moreover, the pressure holding the tapered block is maintained by a clamp tightened by a knob acting on a threaded shaft. If the shaft becomes loose, the blade will wobble.
- Some web slitters mount a blade holder along a track to provide for easy replacement of the blade.
- An example of this construction is shown in Colombo, U.S. -A-4,741,234.
- the track mounting of Colombo is integral to the upper carriage assembly and provides no adjustability for the cant angle.
- the blade holder portion is not reversible on the track. Reversibility would be a desirable feature since it is sometimes necessary to mount the carriage for left-hand as well as right-hand operation.
- Another design aspect of conventional web slitters is that many include pneumatic actuation features for locking the web slitter to a transverse bar, for lowering the blade into a cutting position, and for laterally shifting the blade towards and away from the knife. These functions are usually performed in a predetermined sequence, which may limit the flexibility of any pneumatic control system that may be employed.
- An example is shown in Cavagna U.S.-A-4,540,394, in which the actuation of the pneumatic control which locks the upper carriage to a transverse bar also simultaneously lowers a piston supporting the lower blade assembly. With such a system it is not possible either to unlock the carriage from the transverse bar without raising the blade, or to lock the carriage to the transverse bar without lowering the blade. There may exist situations, however, in which it would be desirable to be able to raise the blade without unlocking the carriage, or where it would be desirable to have the blade lowered but have the ability to move the carriage along the transverse bar.
- a plurality of web slitters of the type described herein may be mounted on a transverse bar and may be positioned along the bar at various locations to define the width of strips to be cut from the web.
- the knob is inconveniently placed, however, and is, for that reason, awkward to use.
- the sideways movement tends to cause "crabbing" as the web slitter will experience a tilting moment about its horizontal axis as the carriage moves transversely.
- Web slitters which include a side shift feature as described above also encounter the problem that when the blade shifts, it must contact the lower knife with pressure sufficient to maintain the blade against the lower knife in a good cutting relationship, but not have so much pressure so as to cause the blade to tilt. This requires some guesswork as to where to clamp the carriage portion along the transverse bar.
- This problem is inherent in the Johnstone '156 device and in a device shown in the Gilmore '330 patent, both of which include pneumatic side shifting actuators which automatically shift the blade laterally upon completion of the downstroke.
- a desirable feature in such devices would be a mechanism permitting optimum adjustment of the force of the blade against the lower knife.
- the blade portion of a conventional web slitter is a nondriven freely rotating disk.
- the disks are clamped with screws or the like to a hub and must periodically be replaced when they become dull. This can be a dangerous operation because the operator must usually grasp the blade along its edge to stop it from rotating while a blade retainer or clamp is removed.
- a desirable feature would be one that prevented blade rotation while it was being replaced.
- FIG. 1 is a front view of a pair of web slitting machines and their cooperating lower knives mounted on respective transverse supports.
- FIG. 2 is a side view of the upper carriage assembly of a web slitting machine.
- FIG. 3 is a front view of the upper carriage assembly of FIG. 2.
- FIG. 4 is a partial cutaway view showing a quick dump valve taken along line 4-4 of FIG. 2.
- FIG. 5 is a cutaway view taken along line 5-5 of FIG. 3.
- FIG. 6 is a side view of a locking pin shown in the lower portion of FIG. 3.
- FIG. 7 is a cutaway view taken along line 7-7 of FIG. 6.
- FIG. 8 is a side cutaway view of the upper carriage assembly of the web slitting machine shown in FIG. 2.
- FIG. 9 is a schematic diagram of a pneumatic control circuit used to control various functions of the web slitting machine of FIG. 1.
- FIG. 10 is a side view of the blade holder assembly of the web slitting machine of FIG. 1.
- FIG. 11 is a reverse side view taken from the opposite side of the blade holder assembly shown in FIG. 10.
- FIG. 12 is a cutaway view taken along line 12-12 of FIG. 11.
- FIG. 13 is a partial cutaway view taken along line 13-13 of FIG. 11.
- FIG. 14 is a front view of a piston which is slideably mounted within the upper carriage portion of the web slitter as shown in FIG. 8.
- FIG. 15 is a cutaway view taken along line 15-15 of FIG. 13.
- FIG. 16 is a front view of a lower blade holder assembly of an alternative design to the blade holder assembly of FIG. 10.
- FIG. 17 is a side view of the lower blade holder assembly of FIG. 16.
- the web slitter 10 includes an upper carriage portion 16 which is slideably movable along the transverse bar 14, and a lower blade holder portion 18 which includes a freely rotating disk-shaped blade 20.
- the edge of the blade 20 overlaps with a lower knife 22 positioned on a supporting sleeve 24.
- the lower knife 22 may be in the form of a drum or roller which has a sharpened edge so that together the blade 20 and the lower knife 22 present a scissors like action to a continuous web of material which is pulled through the blade 20 and the knife 22 by a drum or take-up reel.
- the web slitter 12 is in all respects similar to the web slitter 10 and the width of the strips cut in the continuous web of material may be determined by the transverse location of one web slitter relative to another. There may, of course, be as many such cutting machines located on the transverse bar 14 and the sleeve 24 as desired.
- the upper carriage portion 16 of web slitter 10 includes a brake shoe 26 which engages a dovetail shaped projection 15 of the transverse bar 14.
- the brake shoe 26 may be operated pneumatically or by turning rotary brake knob 28.
- the transverse position of the carriage assembly 16 along the transverse bar 14 is adjusted by turning transverse control knob 30 which is connected to a shaft 32 (see FIG. 8) which terminates in a pinion gear 34.
- the pinion gear 34 meshes with the teeth of a rack 36 formed in the lower portion of transverse bar 14.
- the transverse position-adjusting knob 30 is located on the front of the upper carriage assembly 16 to provide easy accessibility for this adjustment by the operator, and the shaft 32 extends substantially through the web slitter 10 underneath the bar 14 permitting the slitter to be lifted while the knob 30 is turned. Transverse adjustments may then be made without imparting a moment which would cause tilting or crabbing.
- the upper carriage assembly 16 is connected to the lower blade holder assembly 18 by a dovetail shaped guide key 38 which is selectively removable from the upper carriage assembly 16 by a locking pin 40.
- the pin 40 has a handle 42 which permits it to be rotated 90 degrees so that the pin may be removed thus permitting removal of the guide key 38.
- the guide key 38 may be milled to provide various cant angles for the blade 20, and includes a dovetail shaped bar 21 which forms a slideable connecting link between the upper carriage assembly 16 and the lower blade holder assembly 18. Milling the bar 21 to differing tolerances along its sides provides variations in the cant angle of the blade because the lower blade holder assembly 18 includes a dovetail shaped guide channel 44 (refer to FIG. 12) which snugly engages the dovetail bar 21.
- the weight of the lower blade holder assembly is borne by the outwardly flaring portions of the bar 38, thus forming the major structural connection beween the upper carriage assembly 16 and the lower blade holder assembly 18.
- An added feature of this construction is that the blade holder assembly 18 may be reversed relative to the upper carriage assembly 16 by merely sliding the blade holder assembly 16 off of the bar 21, rotating it 180 degrees, and sliding it back on thus permitting either right-hand or left-hand orientation.
- the lower blade holder assembly 18 is raised or lowered by a reciprocating shaft as will be explained below.
- the stroke of the shaft is adjusted by a stroke stop nut 46 in conjunction with a locking nut 48. Both the stop nut 46 and the locking nut 48 are threadingly mounted on stroke stop rod 50.
- a rotary control knob 52 provides mode control for the pneumatic systems which power the locking of the upper carriage assembly 16 to the transverse bar 14, the lowering of the blade holder assembly 18 towards the lower knife 22, and the shifting of the rotary blade 20 laterally towards the lower knife 22. These functions are also explained in more detail below.
- the stroke stop rod 50 is threaded into the top of a piston 54 which slides within a cylinder 56.
- the piston 54 includes a piston rod 58 of substantially square cross section which bears against rod guide bushings 60a and 60b (refer to FIG. 5).
- the rod guide bushings 60a and 60b comprise a pair of L-shaped plates which have rectangular legs extending into the cylinder 56 to slideably engage the piston rod 58.
- the bushings 60a and 60b are screwed together in abutting relationship by bolts 62 through slightly oversized holes (not shown) which permits the bushings 60a and 60b to be pressed together to snugly engage the piston rod 58 before the bolts 62 are tightened down.
- the rod guide bushings 60a and 60b prevent the piston rod 58 from rotating, thus preserving the rather fine cant angle tolerance which is determined by the milling of the dovetail bar 21 of guide key 38.
- the rotary control knob 52 controls the supply of compressed air to the top of piston 54 which pushes the piston down against the return bias force imparted by a spring 64 which is wound about stroke stop rod 50.
- the compressed air is supplied to the upper carriage assembly 16 from a source 104 (refer to FIG. 9) where it is connected through a set of valves generally indicated at 66 to a conduit 68 bored through the body of the upper carriage assembly 16 and terminating at the top of cylinder 56.
- the brake shoe 26 is raised and lowered by a piston 74 which slides vertically within brake cylinder 76.
- the piston 74 may also be lowered by manually tightening rotary brake knob 28 which causes a threaded bolt 78 to bear against the top of the piston 74.
- the piston 54 includes a pair of legs 78a and 78b with a center aperture 80 lined with bushings 100a and 100b which permits the insertion of the locking pin 40.
- the piston 54 includes a slot 82 through which the shaft 32 extends.
- the legs 78a and 78b include stop tabs 84a and 84b which prevent the lower blade holder assembly from sliding off of the guide key 38 once it is locked into place by the pin 40.
- the locking pin 40 includes a round shaft 86 which has a cam portion 88 (refer to FIGS. 6 and 7). When the handle 42 of the pin 40 is pointing downwards the cam portion 88 of the shaft 86 also extends downwardly.
- the guide key 38 is an assembly which includes a spring 90 bearing against a movable bushing 92. The spring 90 and the movable bushing 92 are held within a cylindrical extension portion 94 by a retaining washer 96.
- the cylindrical extension 94 includes an aperture (not shown) which lines up with aperture 80 to permit insertion of the locking pin 40.
- the locking pin 40 is inserted with the handle 42 turned 90 degrees to the side from its position shown in FIG. 3. Moving the cammed surface 88 to the side allows the round shaft to enter the aperture 80 and to depress a projecting insert 98 from the top part of the guide key 38 forcing it down and compressing the spring 90 against the bushing 92.
- the handle 42 may be turned to the "down" position presenting the cammed surface to the insert 98.
- the spring 90 bears against the bushing 92 and draws the guide key upwardly against the bottom of the piston 54.
- the projection 98 then prevents the pin from slipping out of the aperture 80, and the spring 90 provides a force tending to draw the guide key 38 up against the legs 78a and 78b of the piston 54.
- the pneumatic circuit for the web slitter 10 is shown in FIG. 9.
- the rotary control knob 52 is part of a set of ganged valves 66. Rotating the control knob 52 connects a selected valve pair to pneumatic lines 112 and 114, respectively.
- a position valves 65a and 65b are coupled to lines 112 and 114, respectively.
- B position valves 67a and 67b will be coupled to lines 112 and 114
- in the C position valves 69a and 69b will be coupled to the same lines.
- Lines 112 and 114 are connected to input-output line 110 which is, in turn, connected to a valve 106 which is controlled by solenoid 108.
- a source of pneumatic pressure 104 is connected to valve 106.
- the output of the selected one of the valves 65b, 67b or 69b is connected to the brake cylinder 76.
- Pressure in cylinder 76 forces brake piston 74 in a downward direction locking the brake shoe 26 against the transverse support rod 14.
- Line 112 is connected from the selected one of valves 65a, 67a or 69a to cylinder 56. Pneumatic pressure in the cylinder 56 lowers the piston 54 which in turn lowers the blade holder assembly 18 into engagement with the lower knife (not shown in FIG. 9).
- pneumatic pressure will first lock the brake shoe 26.
- the pressure on pilot line 116 will cause valve 118 to close.
- pressure flows through an orifice 120 into the cylinder 56 and begins to lower the piston 54, pushing against the bias spring 64.
- the nut 46 depresses the plunger 70 closing a valve 122.
- the pressure from the valve 122 is sensed on a pilot line 124 and closes a quick dump valve 126.
- the output of the quick dump valve 126 enters a cylinder 128 on the lower blade holder assembly 18 and depresses a piston 130 against a bias spring 132 thus causing the blade 20 to engage the lower knife 22 (not shown in FIG. 9).
- valves 67a and 67b will be engaged. This will result in the locking of the brake shoe 26 without the lowering of the blade holder assembly 18.
- valves 69a and 69b will be engaged which will result in the lowering of blade holder assembly 18 without the locking of the brake shoe 26.
- the quick dump valve 126 is shown in FIG. 4.
- a bore 121 is filled with a plug 119 which includes a central aperture 117.
- the plug 119 presses against a flexible poppet 115 pushing it against an internal bore 113.
- Air from the cylinder 128 enters a recess 111 formed by a relieved portion 109 of the plug 119 through an inlet (not shown).
- air enters internal bore 113 flattening the poppet 115 against the relieved portion of the plug 119 permitting air to flow into the recess 111 and thence to the cylinder 128.
- pressure from the cylinder 128 forces the poppet 115 into the bore 113 thus permitting air to flow to the outside through aperture 117.
- the blade 20 is clamped to a hub assembly 136 by a retaining ring 138.
- the hub assembly 136 includes a rotating hub 140 which rotates on bearings 142 about a stationary member 144.
- a blade guard 146 shields all but the lower protruding portion of the blade 20.
- the hub assembly 136 is connected to a piston 130 by screws 137.
- the piston 130 moves within a cylinder 128 and is biased to a retracted position by a spring 132.
- Pneumatic pressure enters the cylinder 128 through a bore 148 forcing the piston 130 to bottom out against the bottom of the cylinder 128 compressing the spring 132. This provides a lateral side shifting mechanism which brings the blade 20 into engagement with the lower knife 22.
- An adjustment feature is provided which permits the blade 20 to be positioned against the lower knife 22 at an optimum pressure exerted by the side shift piston 130.
- a push button 150 lowers a stop 152 into the cylinder 128 which stops the progress of the piston 130 exactly midway through its stroke.
- the rotary control knob 52 is placed in the C position which lowers the blade holder assembly 18 without locking the upper carriage 16 to the transverse bar 14.
- the blade 20 may then be moved laterally into contact with the lower knife 22, and the brake shoe 26 may be manually locked (or the control knob may be turned to the A position pneumatically locking the brake).
- the spring loaded push button 150 may then be released. This will allow the piston 130 to bottom out against cylinder 128 pressing the blade 20 against the lower knife 22 with a force which is exactly equal to the force applied by the side shift piston 130 at half stroke. This is about 40 PSI which is optimum for this type of application.
- a safety feature is provided which permits easy replacement of the blade 20 without the attendant risk of an operator's being cut.
- the retaining ring 138 is held in place by three bolts 154.
- the retaining ring 138 includes three oversize holes 156 so that when the bolts 154 are loosened and the retaining ring is twisted counterclockwise, the holes 156 will clear the bolts 154 and the retaining ring may be removed. This permits the blade 20 to be removed from the hub 140.
- the hub 140 is freely rotating and it would ordinarily be necessary for an operator to hold the blade steady with his fingers in order to remove the retaining ring 138. Referring to FIG.
- the blade holder assembly 18 includes a stationary housing 19 which includes a push button 158 which is aligned so that a shaft 160 engages a small recess 162 in the hub 140. This acts as a rotary stop and prevents the hub 140 from rotating while the blade 20 is being replaced.
- FIGS. 16 and 17 An alternative design for a lower blade holder assembly is shown in FIGS. 16 and 17.
- the lower blade holder assembly 200 includes a hub assembly 202 connected to a housing 204 which houses the side shift mechanism (not shown).
- the side shift mechanism contained within the housing 204 may be essentially identical to that shown in FIG. 12 and described above.
- the housing 204 and its associated hub assembly 202 is suspended from an upper connecting portion 206, which includes a dovetail-shaped channel 208, on a pair of links 210 and 212.
- the links 210 and 212 are configured as a parallelogram which pivots about bolts 214a, 214b, 216a and 216b.
- the bolt 216a connects with a rod 218 (refer to FIG.
- a bolt 220a secures a link 222 at the top and the link 222 is secured to the housing 204 by bolt 220b.
- the fourth link is not shown, but is in all respects the same as link 212.
- a torsion spring to 224 is wound about the rod 218 and bears against a cross member 226. The cross member 226 is secured between the link 212 and the fourth link so that the torsion spring 224 tends to push the parallelogram linkage in the direction of the arrow at the bottom of FIG. 16 thus urging the blade against the lower knife (not shown in FIG. 16). This permits the lower housing 204 and the hub assembly 202 to move laterally without tilting the blade.
- a high speed moving web may cause the blade to oscillate or wobble.
- the parallelogram linkage biased by the torsion spring 224 provides a restoring force which can respond quickly to this high speed phenomenon so that parallelism in the slits between adjacent web slitters is not lost.
- the torsion spring 224 is wound about the bar 218 with a relatively large number of turns so that the restoring force is essentially independent of lateral displacement, thus keeping the force relatively constant even when a fault in the web material shifts the blade to the side temporarily.
- the response of the spring is much quicker than the response of the pneumatic side shift mechanism and provides a distinct advantage in the stability of the system when dealing with a web moving at high speed.
- the links 210 and 212 may include small complementary protrusions which act as stops to halt the movement of the housing 204 and hub assembly 202.
- the stops interact as the links 210 and 222 move closer together preventing any further movement.
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Abstract
Description
- The following invention relates to a web slitting machine of the type used for cutting a continuous web of material, and a method of adjusting an upper blade assembly of such a machine.
- Web slitters are cutting machines commonly employed to cut an endless web, such as a continuous roll of material, into strips. Typical machines of this type include an upper blade portion which overlaps with a lower knife to provide a scissors-like action for cutting a continuous roll as it is pulled between the blade and the knife. The blade is usually a nonpowered rotary cutting disk suspended from a carriage which is attached to a transverse bar. A plurality of web slitters may be connected to the same bar to create parallel strips of various widths. The lower knife may be a blade supported from underneath the roll or may be a roller or drum having a sharpened edge. Together the lower knife and the upper blade create a shearing action against the web as it unwinds from a roll and is pulled through the web slitter by a rewind or take-up roll.
- It is important in the design of such machines that the shear or cant angle between the upper blade and lower knife be precisely maintained. The cant angle is the angular relationship between the upper blade and the lower knife in the plane of the blade about a vertical axis. This angle must be maintained so that the wear and deformation between the two cutting edges are kept to a minimum. The cant angle should also be adjustable to compensate for various blade-to-web orientations as well as various types of web material. Rotation of the upper blade about the aforementioned vertical axis results in deviations From the desired cant angle and various approaches have been tried to correct this problem.
- One such approach is shown in Markowski U.S. -A-3,143,024. In the Markowski device, the upper blade is supported on a shaft which is clamped to a support assembly connected to a transverse bar. The shaft includes a milled surface which is held against a tapered block to create the desired cant angle, and the tapered block may be replaced for other blocks of different dimensions, thereby providing adjustability. Another approach is to use a clamp and a knife shaft which are replaceable, so that various cant angles may be obtained by substitution of these parts, an example of which is shown in Waterhouse U.S.-A-3,186,282. Various types of screw adjustments are shown in Printz, et al., U.S.-A-3,185,010, Johnstone U.S.-A-3,892,156 and Aykut U.S.-A-4,257,299, and differential springs are used for setting the cant angle in Noffke, et al., U.S.-A-4,438,673.
- Document US-A-4 257 299 discloses a method and web slitter according to the preambles of claims 1 and 2.
- The problem with all of the aforementioned devices is that the means for holding the blade in a predetermined cant angle position is not strong enough to maintain the angle when the web slitter is subjected to the force of the moving web. Moreover, springs and screws which may be easily adjusted are also subject to tampering. The use of a replaceable tapered block as shown in Markowski alleviates the problem of tampering; however, the block bears against but a small flattened portion of the blade-supporting shaft. Moreover, the pressure holding the tapered block is maintained by a clamp tightened by a knob acting on a threaded shaft. If the shaft becomes loose, the blade will wobble.
- Some web slitters mount a blade holder along a track to provide for easy replacement of the blade. An example of this construction is shown in Colombo, U.S. -A-4,741,234. The track mounting of Colombo, however, is integral to the upper carriage assembly and provides no adjustability for the cant angle. Moreover the blade holder portion is not reversible on the track. Reversibility would be a desirable feature since it is sometimes necessary to mount the carriage for left-hand as well as right-hand operation.
- It is critical to the maintaining of proper alignment of the blade and lower knife that the blade-supporting shaft does not rotate. Most shafts are round, but some attempts have been made to keep the shaft from rotating by milling portions of it to a flat shape and providing a bearing pressing against the flattened portion to prevent rotation. An example is shown in the Cavagna EP-
A-0 113 668. Other approaches include a keyed shaft as shown in the Johnstone '156 patent and a trangular-oval piston shown in Wingen, U.S.-A-3,434,695. The problem with these shapes is that they are either expensive to manufacture, or do not provide sufficient rigidity to keep the shaft from rotating. - Another design aspect of conventional web slitters is that many include pneumatic actuation features for locking the web slitter to a transverse bar, for lowering the blade into a cutting position, and for laterally shifting the blade towards and away from the knife. These functions are usually performed in a predetermined sequence, which may limit the flexibility of any pneumatic control system that may be employed. An example is shown in Cavagna U.S.-A-4,540,394, in which the actuation of the pneumatic control which locks the upper carriage to a transverse bar also simultaneously lowers a piston supporting the lower blade assembly. With such a system it is not possible either to unlock the carriage from the transverse bar without raising the blade, or to lock the carriage to the transverse bar without lowering the blade. There may exist situations, however, in which it would be desirable to be able to raise the blade without unlocking the carriage, or where it would be desirable to have the blade lowered but have the ability to move the carriage along the transverse bar.
- As mentioned above, a plurality of web slitters of the type described herein may be mounted on a transverse bar and may be positioned along the bar at various locations to define the width of strips to be cut from the web. An arrangement for setting the desired transverse location along the bar using a top mounted knob driving a pinion which interacts with a rack on the bar shown in the "System Helios" web slitter manufactured by Tidland Corporation of Camas, Washington. The knob is inconveniently placed, however, and is, for that reason, awkward to use. Also, the sideways movement tends to cause "crabbing" as the web slitter will experience a tilting moment about its horizontal axis as the carriage moves transversely.
- Many conventional web slitters include a pneumatic side shift feature which moves the blade laterally into contact with the lower knife. This usually occurs after the blade has been lowered. Examples are shown in the U.S.-A-3,892,156 and US-A-3,380,330. No provision is made, however, in either of these two devices for quickly retracting the blade laterally before the blade is raised. The problem that can occur when the blade is raised without sideways retraction, is that it may scrape across the edge of the lower knife which can cause chipping or dulling.
- Web slitters which include a side shift feature as described above also encounter the problem that when the blade shifts, it must contact the lower knife with pressure sufficient to maintain the blade against the lower knife in a good cutting relationship, but not have so much pressure so as to cause the blade to tilt. This requires some guesswork as to where to clamp the carriage portion along the transverse bar. This problem is inherent in the Johnstone '156 device and in a device shown in the Gilmore '330 patent, both of which include pneumatic side shifting actuators which automatically shift the blade laterally upon completion of the downstroke. A desirable feature in such devices would be a mechanism permitting optimum adjustment of the force of the blade against the lower knife.
- Continuous web material which is forced through a gang of web slitters is not always uniform. It frequently contains irregularities which may have a tendency to force the blade away from the lower knife, notwithstanding the pneumatic pressure imparted by the side shifting mechanism. When the web travels at high speed, this becomes a problem since the friction in the piston and cylinder arrangement used in the side shift mechanism prevents it from reacting quickly enough to prevent oscillations of the blade. Thus, it would be desirable to provide a fast-acting biasing or shock absorbing means for high speed moving webs to damp blade oscillation and to create a restoring force that will maintain the blade in proper contact with the lower knife.
- The blade portion of a conventional web slitter is a nondriven freely rotating disk. The disks are clamped with screws or the like to a hub and must periodically be replaced when they become dull. This can be a dangerous operation because the operator must usually grasp the blade along its edge to stop it from rotating while a blade retainer or clamp is removed. A desirable feature would be one that prevented blade rotation while it was being replaced.
- According to the invention there is provided a web slitter as defined in claim 2.
- Further according to the present invention there is provided a method of adjusting the transverse position of an upper blade assembly of a web slitting machine relative to a lower knife as defined in claim 1.
- The invention will be more readily understood upon consideration of the following detailed description of a preferred embodiment of the invention, taken in conjunction with the accompanying drawings.
- FIG. 1 is a front view of a pair of web slitting machines and their cooperating lower knives mounted on respective transverse supports.
- FIG. 2 is a side view of the upper carriage assembly of a web slitting machine.
- FIG. 3 is a front view of the upper carriage assembly of FIG. 2.
- FIG. 4 is a partial cutaway view showing a quick dump valve taken along line 4-4 of FIG. 2.
- FIG. 5 is a cutaway view taken along line 5-5 of FIG. 3.
- FIG. 6 is a side view of a locking pin shown in the lower portion of FIG. 3.
- FIG. 7 is a cutaway view taken along line 7-7 of FIG. 6.
- FIG. 8 is a side cutaway view of the upper carriage assembly of the web slitting machine shown in FIG. 2.
- FIG. 9 is a schematic diagram of a pneumatic control circuit used to control various functions of the web slitting machine of FIG. 1.
- FIG. 10 is a side view of the blade holder assembly of the web slitting machine of FIG. 1.
- FIG. 11 is a reverse side view taken from the opposite side of the blade holder assembly shown in FIG. 10.
- FIG. 12 is a cutaway view taken along line 12-12 of FIG. 11.
- FIG. 13 is a partial cutaway view taken along line 13-13 of FIG. 11.
- FIG. 14 is a front view of a piston which is slideably mounted within the upper carriage portion of the web slitter as shown in FIG. 8.
- FIG. 15 is a cutaway view taken along line 15-15 of FIG. 13.
- FIG. 16 is a front view of a lower blade holder assembly of an alternative design to the blade holder assembly of FIG. 10.
- FIG. 17 is a side view of the lower blade holder assembly of FIG. 16.
- Referring to FIG. 1 a pair of
10 and 12 are mounted on aweb slitting machines transverse bar 14. Theweb slitter 10 includes anupper carriage portion 16 which is slideably movable along thetransverse bar 14, and a lowerblade holder portion 18 which includes a freely rotating disk-shapedblade 20. The edge of theblade 20 overlaps with alower knife 22 positioned on a supportingsleeve 24. Thelower knife 22 may be in the form of a drum or roller which has a sharpened edge so that together theblade 20 and thelower knife 22 present a scissors like action to a continuous web of material which is pulled through theblade 20 and theknife 22 by a drum or take-up reel. Theweb slitter 12 is in all respects similar to theweb slitter 10 and the width of the strips cut in the continuous web of material may be determined by the transverse location of one web slitter relative to another. There may, of course, be as many such cutting machines located on thetransverse bar 14 and thesleeve 24 as desired. - Referring to FIG. 2, the
upper carriage portion 16 ofweb slitter 10 includes abrake shoe 26 which engages a dovetail shapedprojection 15 of thetransverse bar 14. Thebrake shoe 26 may be operated pneumatically or by turningrotary brake knob 28. The transverse position of thecarriage assembly 16 along thetransverse bar 14 is adjusted by turningtransverse control knob 30 which is connected to a shaft 32 (see FIG. 8) which terminates in apinion gear 34. Thepinion gear 34 meshes with the teeth of arack 36 formed in the lower portion oftransverse bar 14. The transverse position-adjustingknob 30 is located on the front of theupper carriage assembly 16 to provide easy accessibility for this adjustment by the operator, and theshaft 32 extends substantially through theweb slitter 10 underneath thebar 14 permitting the slitter to be lifted while theknob 30 is turned. Transverse adjustments may then be made without imparting a moment which would cause tilting or crabbing. - The
upper carriage assembly 16 is connected to the lowerblade holder assembly 18 by a dovetail shaped guide key 38 which is selectively removable from theupper carriage assembly 16 by a lockingpin 40. Thepin 40 has ahandle 42 which permits it to be rotated 90 degrees so that the pin may be removed thus permitting removal of theguide key 38. Theguide key 38 may be milled to provide various cant angles for theblade 20, and includes a dovetail shapedbar 21 which forms a slideable connecting link between theupper carriage assembly 16 and the lowerblade holder assembly 18. Milling thebar 21 to differing tolerances along its sides provides variations in the cant angle of the blade because the lowerblade holder assembly 18 includes a dovetail shaped guide channel 44 (refer to FIG. 12) which snugly engages thedovetail bar 21. In addition, the weight of the lower blade holder assembly is borne by the outwardly flaring portions of thebar 38, thus forming the major structural connection beween theupper carriage assembly 16 and the lowerblade holder assembly 18. An added feature of this construction is that theblade holder assembly 18 may be reversed relative to theupper carriage assembly 16 by merely sliding theblade holder assembly 16 off of thebar 21, rotating it 180 degrees, and sliding it back on thus permitting either right-hand or left-hand orientation. - The lower
blade holder assembly 18 is raised or lowered by a reciprocating shaft as will be explained below. The stroke of the shaft is adjusted by astroke stop nut 46 in conjunction with a lockingnut 48. Both thestop nut 46 and the lockingnut 48 are threadingly mounted onstroke stop rod 50. - A
rotary control knob 52 provides mode control for the pneumatic systems which power the locking of theupper carriage assembly 16 to thetransverse bar 14, the lowering of theblade holder assembly 18 towards thelower knife 22, and the shifting of therotary blade 20 laterally towards thelower knife 22. These functions are also explained in more detail below. - Referring to FIG. 8, the
stroke stop rod 50 is threaded into the top of apiston 54 which slides within acylinder 56. Thepiston 54 includes apiston rod 58 of substantially square cross section which bears against 60a and 60b (refer to FIG. 5). Therod guide bushings 60a and 60b comprise a pair of L-shaped plates which have rectangular legs extending into therod guide bushings cylinder 56 to slideably engage thepiston rod 58. The 60a and 60b are screwed together in abutting relationship bybushings bolts 62 through slightly oversized holes (not shown) which permits the 60a and 60b to be pressed together to snugly engage thebushings piston rod 58 before thebolts 62 are tightened down. Thus tightened, the 60a and 60b prevent therod guide bushings piston rod 58 from rotating, thus preserving the rather fine cant angle tolerance which is determined by the milling of thedovetail bar 21 ofguide key 38. - The
rotary control knob 52 controls the supply of compressed air to the top ofpiston 54 which pushes the piston down against the return bias force imparted by aspring 64 which is wound aboutstroke stop rod 50. The compressed air is supplied to theupper carriage assembly 16 from a source 104 (refer to FIG. 9) where it is connected through a set of valves generally indicated at 66 to aconduit 68 bored through the body of theupper carriage assembly 16 and terminating at the top ofcylinder 56. As compressed air forces thepiston 54 downwardly, thestop nut 46 approaches aplunger 70, and when thestop nut 46 bottoms against theplunger 70, depressing it against aspring 72, a valve is opened which supplies compressed air to a side shifting mechanism (explained in more detail below) in the lowerblade holder assembly 18. - The
brake shoe 26 is raised and lowered by apiston 74 which slides vertically withinbrake cylinder 76. Thepiston 74 may also be lowered by manually tighteningrotary brake knob 28 which causes a threadedbolt 78 to bear against the top of thepiston 74. - Referring to FIG. 8 and FIG. 14 the
piston 54 includes a pair of 78a and 78b with alegs center aperture 80 lined with 100a and 100b which permits the insertion of the lockingbushings pin 40. Thepiston 54 includes aslot 82 through which theshaft 32 extends. The 78a and 78b includelegs 84a and 84b which prevent the lower blade holder assembly from sliding off of the guide key 38 once it is locked into place by thestop tabs pin 40. - The locking
pin 40 includes around shaft 86 which has a cam portion 88 (refer to FIGS. 6 and 7). When thehandle 42 of thepin 40 is pointing downwards thecam portion 88 of theshaft 86 also extends downwardly. Theguide key 38 is an assembly which includes aspring 90 bearing against amovable bushing 92. Thespring 90 and themovable bushing 92 are held within acylindrical extension portion 94 by a retainingwasher 96. Thecylindrical extension 94 includes an aperture (not shown) which lines up withaperture 80 to permit insertion of the lockingpin 40. - The locking
pin 40 is inserted with thehandle 42 turned 90 degrees to the side from its position shown in FIG. 3. Moving thecammed surface 88 to the side allows the round shaft to enter theaperture 80 and to depress a projectinginsert 98 from the top part of theguide key 38 forcing it down and compressing thespring 90 against thebushing 92. Once thepin 40 is inserted, thehandle 42 may be turned to the "down" position presenting the cammed surface to theinsert 98. Thespring 90 bears against thebushing 92 and draws the guide key upwardly against the bottom of thepiston 54. Theprojection 98 then prevents the pin from slipping out of theaperture 80, and thespring 90 provides a force tending to draw the guide key 38 up against the 78a and 78b of thelegs piston 54. - The pneumatic circuit for the
web slitter 10 is shown in FIG. 9. Therotary control knob 52 is part of a set of gangedvalves 66. Rotating thecontrol knob 52 connects a selected valve pair to 112 and 114, respectively. For example, in thepneumatic lines 65a and 65b are coupled toA position valves 112 and 114, respectively. In thelines 67a and 67b will be coupled toB position valves 112 and 114, and in thelines 69a and 69b will be coupled to the same lines.C position valves 112 and 114 are connected to input-Lines output line 110 which is, in turn, connected to avalve 106 which is controlled bysolenoid 108. A source ofpneumatic pressure 104 is connected tovalve 106. The output of the selected one of the 65b, 67b or 69b is connected to thevalves brake cylinder 76. Pressure incylinder 76forces brake piston 74 in a downward direction locking thebrake shoe 26 against thetransverse support rod 14.Line 112 is connected from the selected one of 65a, 67a or 69a tovalves cylinder 56. Pneumatic pressure in thecylinder 56 lowers thepiston 54 which in turn lowers theblade holder assembly 18 into engagement with the lower knife (not shown in FIG. 9). - With the
rotary control knob 52 in position A, as shown in FIG. 9, pneumatic pressure will first lock thebrake shoe 26. As thepiston 74 bottoms out incylinder 76, the pressure onpilot line 116 will causevalve 118 to close. At this point, pressure flows through anorifice 120 into thecylinder 56 and begins to lower thepiston 54, pushing against thebias spring 64. When thepiston 54 bottoms out, thenut 46 depresses theplunger 70 closing avalve 122. The pressure from thevalve 122 is sensed on apilot line 124 and closes aquick dump valve 126. The output of thequick dump valve 126 enters acylinder 128 on the lowerblade holder assembly 18 and depresses apiston 130 against abias spring 132 thus causing theblade 20 to engage the lower knife 22 (not shown in FIG. 9). - In the A position of
rotary control knob 52, thebrake shoe 26 is locked and subsequently, after a delay caused by the action oforifice 120 andvalve 118, thepiston 54 is lowered. Thus the locking of thebrake shoe 26 and the lowering of the piston takes place sequentially with thebrake shoe 26 being locked first. - In the
67a and 67b will be engaged. This will result in the locking of theB position valves brake shoe 26 without the lowering of theblade holder assembly 18. In 69a and 69b will be engaged which will result in the lowering ofposition C valves blade holder assembly 18 without the locking of thebrake shoe 26. - When the
solenoid 108releases valve 106 and removes pressure from the system, the reverse bias on thequick dump valve 126 caused by apilot line 134, and the absence of any pressure on thepilot line 124, will cause thequick dump valve 126 to open immediately, venting thecylinder 128. This allows thespring 132 to retract theblade 20 from engagement with thelower knife 22 immediately, that is, before thespring 64 has had a chance to raisepiston 54. Quickly retracting theblade 20 in this manner prevents it from scraping against thelower knife 22 as thepiston 54 is raised which would otherwise damage or possibly chip theblade 20. - The
quick dump valve 126 is shown in FIG. 4. Abore 121 is filled with aplug 119 which includes acentral aperture 117. Theplug 119 presses against aflexible poppet 115 pushing it against aninternal bore 113. Air from thecylinder 128 enters a recess 111 formed by a relieved portion 109 of theplug 119 through an inlet (not shown). When thecylinder 128 is actuated, air entersinternal bore 113 flattening thepoppet 115 against the relieved portion of theplug 119 permitting air to flow into the recess 111 and thence to thecylinder 128. When pressure is removed frombore 113, pressure from thecylinder 128 forces thepoppet 115 into thebore 113 thus permitting air to flow to the outside throughaperture 117. - Referring to FIGS. 10, 11 and 12 the
blade 20 is clamped to ahub assembly 136 by a retainingring 138. Thehub assembly 136 includes arotating hub 140 which rotates onbearings 142 about astationary member 144. Ablade guard 146 shields all but the lower protruding portion of theblade 20. Thehub assembly 136 is connected to apiston 130 byscrews 137. Thepiston 130 moves within acylinder 128 and is biased to a retracted position by aspring 132. Pneumatic pressure enters thecylinder 128 through abore 148 forcing thepiston 130 to bottom out against the bottom of thecylinder 128 compressing thespring 132. This provides a lateral side shifting mechanism which brings theblade 20 into engagement with thelower knife 22. - An adjustment feature is provided which permits the
blade 20 to be positioned against thelower knife 22 at an optimum pressure exerted by theside shift piston 130. Apush button 150 lowers astop 152 into thecylinder 128 which stops the progress of thepiston 130 exactly midway through its stroke. To make the adjustment, therotary control knob 52 is placed in the C position which lowers theblade holder assembly 18 without locking theupper carriage 16 to thetransverse bar 14. Theblade 20 may then be moved laterally into contact with thelower knife 22, and thebrake shoe 26 may be manually locked (or the control knob may be turned to the A position pneumatically locking the brake). The spring loadedpush button 150 may then be released. This will allow thepiston 130 to bottom out againstcylinder 128 pressing theblade 20 against thelower knife 22 with a force which is exactly equal to the force applied by theside shift piston 130 at half stroke. This is about 40 PSI which is optimum for this type of application. - A safety feature is provided which permits easy replacement of the
blade 20 without the attendant risk of an operator's being cut. Referring to FIG. 10, the retainingring 138 is held in place by threebolts 154. The retainingring 138 includes threeoversize holes 156 so that when thebolts 154 are loosened and the retaining ring is twisted counterclockwise, theholes 156 will clear thebolts 154 and the retaining ring may be removed. This permits theblade 20 to be removed from thehub 140. Thehub 140, however, is freely rotating and it would ordinarily be necessary for an operator to hold the blade steady with his fingers in order to remove the retainingring 138. Referring to FIG. 11, theblade holder assembly 18 includes astationary housing 19 which includes apush button 158 which is aligned so that ashaft 160 engages asmall recess 162 in thehub 140. This acts as a rotary stop and prevents thehub 140 from rotating while theblade 20 is being replaced. - An alternative design for a lower blade holder assembly is shown in FIGS. 16 and 17. The lower
blade holder assembly 200 includes ahub assembly 202 connected to ahousing 204 which houses the side shift mechanism (not shown). The side shift mechanism contained within thehousing 204 may be essentially identical to that shown in FIG. 12 and described above. Thehousing 204 and its associatedhub assembly 202 is suspended from an upper connectingportion 206, which includes a dovetail-shapedchannel 208, on a pair of 210 and 212. Thelinks 210 and 212 are configured as a parallelogram which pivots aboutlinks 214a, 214b, 216a and 216b. The bolt 216a connects with a rod 218 (refer to FIG. 17) which is held in place by abolts corresponding bolt 220a on the other side of thesupport portion 206. The parallelogram linkage is repeated on the other side of thesupport 206, a portion of which is shown in FIG. 17. Abolt 220a secures alink 222 at the top and thelink 222 is secured to thehousing 204 bybolt 220b. The fourth link is not shown, but is in all respects the same aslink 212. A torsion spring to 224 is wound about therod 218 and bears against across member 226. Thecross member 226 is secured between thelink 212 and the fourth link so that thetorsion spring 224 tends to push the parallelogram linkage in the direction of the arrow at the bottom of FIG. 16 thus urging the blade against the lower knife (not shown in FIG. 16). This permits thelower housing 204 and thehub assembly 202 to move laterally without tilting the blade. - In actual operation a high speed moving web may cause the blade to oscillate or wobble. The parallelogram linkage biased by the
torsion spring 224 provides a restoring force which can respond quickly to this high speed phenomenon so that parallelism in the slits between adjacent web slitters is not lost. Thetorsion spring 224 is wound about thebar 218 with a relatively large number of turns so that the restoring force is essentially independent of lateral displacement, thus keeping the force relatively constant even when a fault in the web material shifts the blade to the side temporarily. The response of the spring is much quicker than the response of the pneumatic side shift mechanism and provides a distinct advantage in the stability of the system when dealing with a web moving at high speed. - If desired, the
links 210 and 212 (and their opposite members link 222 and the link not shown) may include small complementary protrusions which act as stops to halt the movement of thehousing 204 andhub assembly 202. The stops interact as the 210 and 222 move closer together preventing any further movement.links
Claims (2)
- A method of adjusting the transverse position of an upper blade assembly (16) of a web slitting machine relative to a lower knife (22) of said web slitting machine, comprising the steps of:in which step (c) is characterised by actuating said side shifting means (128, 130) by an operation which includes placing a stop (152) within a cylinder (128) included in said side shifting means to impede a pneumatically actuated side shaft piston (130) at the midpoint of its stroke.(a) providing a web slitter having an upper blade assembly interacting with a lower knife (22) for cutting a moving web of material, said upper blade assembly (16,18) including a side shifting means for moving a cutting blade (20) into and out of engagement with said lower knife (22), said side shifting means including spring means (132) for biasing said side shifting means towards a non-engaged position, said side shifting means further including pneumatic actuating means (128, 130) for urging said side shifting means to engage said cutting blade (20) with said lower knife (22);(b) lowering said cutting blade portion (20) of said machine from a retracted position to a depth suitable for engaging said lower knife;(c) actuating side shifting means (128, 130) in said machine to shift said blade (20) transversely toward said knife (22) for a distance of half of its normal stroke;(d) moving said upper blade assembly (16) along a transverse support member (14) until an edge of said blade (20) makes contact with said knife (22); and(e) tightening said upper blade assembly (16) to said transverse support member,
- A web slitter having a rotary cutting blade (20) interacting with a knife member (22) in scissor-like fashion for cutting a continuous web of material, comprising:whereby said side shifting means is pneumatically powered and includes a cylinder (128) having a piston (130) movable therein carrying said blade (20), and in that said stop means comprises a manually actuated stop (152) insertable into said cylinder (128) for impeding the progress of said piston (130) at the midpoint of its stroke.(a) a web slitter having an upper blade assembly interacting with a lower knife (22) for cutting a moving web of material, said upper blade assembly (16,18) including a side shifting means for moving a cutting blade (20) into and out of engagement with said lower knife (22), said side shifting means including spring means (132) for biasing said side shifting means towards a non-engaged position, said side shifting means further including pneumatic actuating means (128, 130) for urging said side shifting means to engage said cutting blade (20) with said lower knife (22);(b) side shifting means for moving said blade (20) laterally between a knife-engaging position and a non-engaging retracted position; characterised by(c) stop adjust means (150) for halting the movement of said blade (20) midway between said engaged and retracted positions when said side shifting means is actuated to move said blade from said retracted position into said knife-engaging position,
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US29329889A | 1989-01-03 | 1989-01-03 | |
| US293298 | 1989-01-03 | ||
| EP90300001A EP0377484B1 (en) | 1989-01-03 | 1990-01-02 | Web slitting machine |
Related Parent Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP90300001A Division EP0377484B1 (en) | 1989-01-03 | 1990-01-02 | Web slitting machine |
| EP90300001.6 Division | 1990-01-02 |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP0655302A2 EP0655302A2 (en) | 1995-05-31 |
| EP0655302A3 EP0655302A3 (en) | 1996-12-27 |
| EP0655302B1 true EP0655302B1 (en) | 2002-04-10 |
Family
ID=23128522
Family Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP90300001A Expired - Lifetime EP0377484B1 (en) | 1989-01-03 | 1990-01-02 | Web slitting machine |
| EP95200073A Expired - Lifetime EP0655302B1 (en) | 1989-01-03 | 1990-01-02 | Web slitting machine |
Family Applications Before (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP90300001A Expired - Lifetime EP0377484B1 (en) | 1989-01-03 | 1990-01-02 | Web slitting machine |
Country Status (4)
| Country | Link |
|---|---|
| EP (2) | EP0377484B1 (en) |
| JP (1) | JP2993688B2 (en) |
| AT (1) | ATE145167T1 (en) |
| DE (2) | DE69029097T2 (en) |
Families Citing this family (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE19850043A1 (en) * | 1998-10-30 | 2000-05-04 | Bilstein Spezialfab Wilhelm | Cutting device for slitting material webs with detachable cutter head |
| DE20015168U1 (en) * | 2000-09-02 | 2002-01-17 | Wilhelm Bilstein KG Spezialfabrik für Maschinenmesser und Kompressorventile, 51491 Overath | Knife holder with shock absorber for a device for longitudinally dividing a material web |
| EP1974877A1 (en) * | 2007-03-26 | 2008-10-01 | Espo S.R.L. | Cutting assembly for cutting machines of sheet material |
| US7918630B2 (en) * | 2007-08-15 | 2011-04-05 | Barnes Austen B | Material cutting machine and method |
| DE102015005559B4 (en) * | 2015-04-29 | 2023-07-27 | Jörg von Seggern Maschinenbau GmbH | Cutting device with at least two upper knives for cutting out a strip of film |
| CN105398869A (en) * | 2015-12-15 | 2016-03-16 | 无锡宝南机器制造有限公司 | Rotary cut-off knife angle adjusting mechanism for digital book and periodical page folding machine |
| CN109023909B (en) * | 2018-10-26 | 2024-03-12 | 应城市天润产业用布有限责任公司 | A self-locking device for trimming |
| CN117401496A (en) * | 2023-09-18 | 2024-01-16 | 广东仕诚塑料机械有限公司 | A trimming recovery device |
| CN120422295B (en) * | 2025-07-01 | 2025-10-21 | 常州市悦腾机械有限公司 | A slitting tool mechanism capable of closing the knife safely and quickly |
Family Cites Families (17)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB239715A (en) * | 1924-10-03 | 1925-09-17 | Wilfred Walker | Improvements relating to rotary knives for slitting paper and other thin sheet material |
| US3143024A (en) * | 1960-01-26 | 1964-08-04 | Beloit Eastern Corp | Rotatable cutter tool pair with cutter disc angularly positioned |
| DE1156635B (en) * | 1961-08-09 | 1963-10-31 | Karl Rud Dienes Fabrikationsge | Pressure fluid operated knife holder for slitter rewinder |
| US3186282A (en) * | 1962-08-16 | 1965-06-01 | Dominion Eng Works Ltd | Slitter for paper winder or rewinder |
| US3380330A (en) * | 1965-11-23 | 1968-04-30 | Beloit Eastern Corp | Top slitter adjustment |
| DE2255275C2 (en) * | 1972-11-11 | 1974-12-05 | Jagenberg-Werke Ag, 4000 Duesseldorf | Device for longitudinal cutting of material webs, in particular paper webs |
| US3983771A (en) * | 1975-11-28 | 1976-10-05 | Ppg Industries, Inc. | Apparatus for precise subdivision of glass sheets |
| JPS5917594Y2 (en) * | 1979-07-25 | 1984-05-22 | 明産株式会社 | Slitter upper blade mechanism with detachable knife holder |
| DE3146116C2 (en) * | 1981-11-20 | 1985-10-10 | Dr. Otto C. Strecker Kg, 6102 Pfungstadt | Knife holder for slitter |
| US4467896A (en) * | 1983-06-17 | 1984-08-28 | Black & Decker Inc. | Locking mechanism for a rotary power machine |
| IT1169683B (en) * | 1983-11-08 | 1987-06-03 | Cavagna Elio Srl | IMPROVEMENT OF CUTTING GROUPS THAT CAN BE USED IN THE FIELD OF THE PAPERBOARD AND OF THE TYPE INCLUDING AT LEAST A ROTARY CIRCULAR KNIFE AND AGAINST KNIFE SYSTEM, FOR THE SELECTIVE RECISION OF MATERIAL TAPED IN STRIPS OF PREDETERMINED WIDTH |
| JPS6087616U (en) * | 1983-11-19 | 1985-06-15 | 川崎重工業株式会社 | Side trimmer knife attachment device |
| DE3422570A1 (en) * | 1984-06-18 | 1985-12-19 | Wilhelm Bilstein Spezialfabrik für Rundmesser und Plattenventile, 5063 Overath | Blade holder for a shear blade on reel slitting machines |
| IT1185210B (en) * | 1985-07-09 | 1987-11-04 | Antonio Paolo Colombo | PRESSURE CUTTING UNIT, WITH CIRCULAR KNIFE |
| IT1198196B (en) * | 1986-11-28 | 1988-12-21 | Pirelli | DEVICE SUITABLE FOR CUTTING OR TRIMMING EDGES OF RUBBERIZED FABRICS, EQUIPPED WITH TRANSVERSAL REINFORCEMENT ELEMENTS, FITTED WITH ONE OF THE SAID REINFORCEMENT ELEMENTS |
| IT1203458B (en) * | 1987-04-08 | 1989-02-15 | Elio Cavagna | COMPLEX FOR THE SELECTIVE OR SIMULTANEOUS TRANSLATION OF THE POSITIONING OF CIRCULAR PREFERENCE KNIVES AND KNIVES IN A MACHINE SUITABLE FOR THE CUTTING AND / OR CUTTING OF MATERIAL PREFERABLY BUT NOT CRITICALLY PAPER |
| DE8909371U1 (en) * | 1989-08-03 | 1989-10-19 | Bonnet, Werner, 7140 Ludwigsburg | Perforator |
-
1989
- 1989-12-29 JP JP1344976A patent/JP2993688B2/en not_active Expired - Fee Related
-
1990
- 1990-01-02 EP EP90300001A patent/EP0377484B1/en not_active Expired - Lifetime
- 1990-01-02 EP EP95200073A patent/EP0655302B1/en not_active Expired - Lifetime
- 1990-01-02 DE DE69029097T patent/DE69029097T2/en not_active Expired - Fee Related
- 1990-01-02 AT AT90300001T patent/ATE145167T1/en not_active IP Right Cessation
- 1990-01-02 DE DE69033943T patent/DE69033943T2/en not_active Expired - Fee Related
Also Published As
| Publication number | Publication date |
|---|---|
| EP0655302A2 (en) | 1995-05-31 |
| JP2993688B2 (en) | 1999-12-20 |
| DE69033943D1 (en) | 2002-05-16 |
| DE69029097D1 (en) | 1996-12-19 |
| EP0377484A2 (en) | 1990-07-11 |
| ATE145167T1 (en) | 1996-11-15 |
| EP0655302A3 (en) | 1996-12-27 |
| DE69029097T2 (en) | 1997-03-06 |
| EP0377484A3 (en) | 1991-09-18 |
| DE69033943T2 (en) | 2002-11-14 |
| JPH02224996A (en) | 1990-09-06 |
| EP0377484B1 (en) | 1996-11-13 |
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Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
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