Side shift force control
09884430 ยท 2018-02-06
Inventors
- Patrick Steven Rucker (Vancouver, WA, US)
- Darcy Winter (Moore, OK, US)
- Md M Haque (Edmond, OK, US)
- Wolfram Ploetz (Camas, WA, US)
- Brady Johnson (Kalama, WA, US)
- Daniel E. Tooke (Boring, OR, US)
- Michael Jost (Edmond, OK, US)
Cpc classification
B26D7/08
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/7855
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T83/7834
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B26D5/02
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/7838
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B26D5/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The device pertains to providing side shift force control using load cell force feedback in the web slitting industry. Further included is a removable means of providing the load cell force feedback without integrating the load cell with the side shift mechanism. This provides for easy maintenance of the blade cartridge and specifically the cutting blade.
Claims
1. An apparatus comprising: a body; a paddle pivotally attached to said body; a plunger linearly guided by said body for applying a force to said paddle; a load cell mounted onto said paddle for converting the amount of said force applied to said paddle to an electronic signal; a side shift mechanism including a blade, attached to said body and in contact with said paddle for converting said force into a side shift force for laterally positioning said blade; said side shift mechanism additionally includes; a blade cartridge a pusher, vertically guided in said blade cartridge in contact with said paddle for receiving said force; and a cam pivotally attached to said blade cartridge and in contact with said pusher for laterally translating said blade.
2. The apparatus of claim 1 wherein said side shift mechanism includes: parallelogram four bar linkage in contact with said cam for translating said blade as said cam pivots; and a spring for biasing said parallelogram four bar linkage against said cam.
3. An apparatus comprising: a body; a paddle pivotally attached to said body; a plunger linearly guided by said body for applying a force to said paddle; a load cell mounted onto said paddle for converting the amount of said force applied to said paddle to an electronic signal; a side shift mechanism including a blade, attached to said body and in contact with said paddle for converting said force into a side shift force for positioning said blade; a gripping mechanism for attaching said side shift mechanism to said body; wherein said load cell comprises; a full bridge device including two strain gauges a first strain gauge positioned on the top and a second strain gauge positioned on the bottom of said paddle such that both compression and tension on the paddle is included in a load cell signal.
4. The apparatus of claim 3 wherein said gripping mechanism comprises: a lever located on said body; a wedge pivotally attached to said lever and guided linearly by said body; a spring in communication with said wedge such that said lever is biased against said body; a gripper in communication with said wedge such that said wedge presses said gripper against said body causing friction to hold a side shift mechanism in position.
5. The apparatus of claim 3 wherein said side shift mechanism includes: blade cartridge housing; a pusher, vertically guided in said blade cartridge housing in contact with said paddle for receiving said force; and a cam pivotally attached to said blade cartridge housing and in contact with said pusher for laterally translating said blade.
6. The apparatus of claim 5 wherein said side shift mechanism includes: parallelogram four bar linkage in contact with said cam for translating said blade as said cam pivots; and a spring for biasing said parallelogram four bar linkage against said cam.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
(21) In most applications of the invention, the invention is a component of a knife holder 100 shown in
(22) Also shown in
(23) The cartridge actuator 1 consists of a vertical actuator 3 and a side shift actuator 4. Both of these actuators are driven by motors.
(24) A side shift actuator 4 is also attached to the dovetail member 19. The dovetail member 19 provides a threaded hole 19A which receives a threaded shaft 34 using the threaded shaft threads 34A. This combination of dovetail member 19 and threaded shaft 34 is a single embodiment of a body which can be used to provide support for other members of the side shift actuator 4. Unlike the motor 74B of the vertical actuator 3, a side shift motor 74A is attached to the opposite end of the threaded shaft 34. This side shift motor 74A is similar to the motor 74B used in the vertical actuator 3, it is used to control the position and force of the side shift actuator 4. In this embodiment the side shift motor 74A is a stepper motor but could be a servo motor with an encoder. This side shift motor 74A turns a screw 69 which is threaded engaged with a follower 71. This follower 71 includes an axial groove 71A which is engaged by a pin or set screw 35 this prevents the follower 71 from rotating so the follower 71 is driven axially. In one embodiment the follower 71 pushes on spring 67 which in turn pushes on plunger 68. A screw 72 is provided for establishing an initial deflection of the spring 67. This deflection determines how hard the plunger 68 can push prior to deflecting the spring 67 and establishes a preload force between the follower 71 and the plunger 68. In this way the combination of follower 71, spring 67 and plunger 68 acts as a rigid member until sufficient force is applied to deflect the spring 67. In another embodiment, not shown, the follower 71 pushes directly against the plunger 68 this embodiment and spring 67 is eliminated. This allows for more rigid blade support which can be better in some situations.
(25) Also shown, is a hardened ball 70 which is not required but has been found to reduce wear on the plunger 68.
(26) Additionally, a paddle 27 is pivotally attached to the dovetail member 19 by pin 32 as shown in
(27) Referring now, to
(28) The blade guide 88 also has two pivot features A and F, these features engage corresponding features A on the arm member 123 and a similar feature located on the guard member 94 (this feature is not shown). This causes the blade guide 88 to translate when the arm member 123 and guard member 94 rotate.
(29)
(30) To retract the blade 134 from the anvil 400, the motor 74A reverses direction allowing springs 50 and 50A to push the blade guide 88 to the right. This in turn pivots the cam 89 in the counterclockwise direction and pushes the pusher 127 vertically up against the paddle.
(31) The blade 134 is connected to the blade guide 88 by bearings 118 A and 118 B. The bearings allow the blade 134 and supporting shaft 133 to rotate due to pressure from the anvil 400. As the anvil 400 and the blade 134 rotate the web 300 is cut due to the overlap H.
(32) So now that the actuation of the blade 134 against the anvil 400 is understood, an embodiment includes providing a load cell 73B including strain gauges 73 and 73A on the paddle 27, see
(33) As mentioned above the blade cartridge 2 and the blade cartridge actuator 1 can be easily separated as shown in
(34) By rotating the lever 21 as shown in
(35) To get the maximum benefit of the use the load cell 73B, a controller 500 is included for controlling the amount of side shift force applied to the anvil 400. This controller 500 is shown in
(36) The load cell 73B includes the strain gauges 73 and 73A and the separating material 73C which separates the two strain gauges 73 and 73A. A typical load cell interface 504 is shown in
(37) Another advantage of this particular circuit embodiment is an increase in total signal range due to the geometry. The paddle 27 is loaded such that the strain gauge 73 is in tension while the strain gauge 73B is in compression. This causes strain gauge 73 to increase in resistance as strain gauge 73A decreases in resistance. The net result is a larger voltage signal V present at the controller. The voltage signal V is proportional to the amount of bending on the paddle which is directly proportional to the force 1003 being transmitted to the side shift mechanism 5. Of course, the load cell 73A would work just as well if the strain gauge 73 is loaded in compression and strain gauge 73B is loaded in tension. In other words the strain gauges 73 and 73B are loaded in opposite senses or direction.
(38) The controller 500 needs to understand how to determine the side shift force given the voltage signal V. To determine this relationship a calibration scheme 3000 has been provided, refer to calibration flow chart of
(39) In this position springs 50 and 50A shown in
(40) The calibration scheme 3000 now continues to step 3005 where the controller 500 saves the side shift motor 74A position and the load cell 73B signal voltage V to memory 502. Next at step 3006, the controller equates the signal voltage V with a known force 1003. This force is pre-established and saved in the controller memory 502 during manufacturing of the device. At step 3007 the controller 500 stores this signal voltage V (now referred to as calibration value) and the side shift motor 74A position.
(41) During installation the knife holder 100 needs to be positioned relative to the anvil 400 such that with the side shift mechanism 5 in the half stroke extended position, the blade 134 and the anvil 400 are just touching. This allows for better control of the force between the blade 134 and the anvil 400.
(42) First the controller 500 positions the vertical actuator 3 into an extended position using the motor drive means 501 and motor 73B. Then the controller 500 positions the side shift actuator 4 in a half extended position using the motor drive means 501 and motor 73A. The embodiment is now ready to start the slitting force control scheme 2000 shown in
(43) During the slitting operation, the controller uses the voltage signal V from the load cell 73B to determine where the motor 74A should position the paddle 27 using the force control scheme 2000 shown in
(44) To determine if the force error is within a reasonable absolute value one needs to consider the update frequency of the force control scheme 2000. It this particular value is to large wide fluctuations in the side shift force will result. On the other hand if this value is to small the control scheme will produce small vibrations and increase power consumption. This can cause some components to overheat and fail prematurely. This absolute value is determined experimentally by simply trying various values until a good compromise has been determined.
(45) The inventor submits the above embodiment of the invention with the expressed understanding that this embodiment is simply one possible way of applying the invention and is not to be used to limit the claims.