AUTOMATICALLY ADJUSTABLE SYSTEM FOR CUTTING AT VARIABLE NOTCH ANGLES
20220371216 · 2022-11-24
Assignee
Inventors
- Matti Damgaard WINTHER (Skollenborg, NO)
- Sondre HUSTVEIT (Kongsberg, NO)
- Simon KVANVIK (Kongsberg, NO)
- Thomas MALME (Kongsberg, NO)
- Satish NAIDU (Kongsberg, NO)
- Lidvar BUDAL (Hønefoss, NO)
- Ivar HOLM (Hokksund, NO)
- Knut JOHANSEN (Kongsberg, NO)
Cpc classification
G05B19/402
PHYSICS
B26D3/06
PERFORMING OPERATIONS; TRANSPORTING
B26D7/2628
PERFORMING OPERATIONS; TRANSPORTING
G05B19/182
PHYSICS
B26D5/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
B26D7/26
PERFORMING OPERATIONS; TRANSPORTING
B26D3/06
PERFORMING OPERATIONS; TRANSPORTING
B26D5/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A knife assembly for cutting a substrate during relative motion between the knife and the substrate, the assembly including a knife having a distal knife blade and a proximal knife shaft attached to a holder rotatable about a first axis perpendicular to the substrate to define a cut direction angle. The holder is also configured to rotate the knife blade about a second axis perpendicular to the first axis to form a notch angle relative to the first axis. The notch angle is preferably automatically infinitely adjustable within a range of angles. The holder may also, optionally, be configured to rotate the knife blade about a third axis perpendicular to a plane defined by the knife blade to adjust an angle of attack of the knife blade relative to the substrate.
Claims
1-33. (canceled)
34. A knife assembly for cutting a substrate during relative motion between the knife and the substrate, the assembly comprising: a knife having a distal knife blade and a proximal knife shaft attached to a holder, the holder rotatable about a first axis perpendicular to the substrate to define a cut direction angle, the holder configured to rotate the knife blade about a second axis perpendicular to the first axis to form a notch angle relative to the first axis, wherein the notch angle is infinitely adjustable within a range of angles.
35. The knife assembly of claim 34, wherein the holder is further configured to rotate the knife blade about a third axis perpendicular to a plane defined by the knife blade, wherein rotation about the third axis adjusts an angle of attack of the knife blade relative to the substrate within a desired range.
36. The knife assembly of claim 34, wherein the notch angle range of angles is symmetrical relative to the first axis from −60 to +60 degrees.
37. The knife assembly of claim 34, wherein the holder includes a worm gear assembly comprising a worm driver attached to a motor and a circumferential portion of a worm wheel, wherein the proximal end of the knife shaft is attached to the circumferential portion so that a predetermined rotation of the worm driver provides a corresponding adjustment of the notch angle.
38. The knife assembly of claim 37, wherein the knife shaft is connected to a rack having teeth intermeshed with a pinion, wherein position of the pinion provides a corresponding angle of attack.
39. The knife assembly of claim 38, wherein the worm wheel has a hollow portion in which is mounted a pinion driver connected to the pinion.
40. The knife assembly of claim 34, wherein a first relatively proximal connection point on the knife shaft connects to a linearly moveable portion of a first linear actuator and a second intermediate connection point, located between the first connection point and the distal end on the knife shaft, connects to a linearly moveable portion of a second linear actuator, wherein the first and second linear actuators are coordinated to provide adjustability of the notch angle while maintaining a second vertically translatable rotation axis of the knife lying along the first axis.
41. The knife assembly of claim 40, wherein each of the first and second linear actuators comprise a linear motor, a ball screw device, or a piezoelectric device.
42. A cutting system comprising: the knife assembly of claim 34, means for causing relative motion between the knife assembly and the substrate, and a control system for controlling a direction of the relative motion, the cut direction angle, and the notch angle.
43. The cutting system of claim 42, further comprising a control system for controlling angle of attack.
44. The cutting system of claim 42, wherein the knife assembly is adjustable in a Z direction perpendicular to the substrate.
45. The cutting system of claim 44, wherein the substrate comprises a thickness between a bottom planar surface and a top surface, and the control system is programmable to position the distal end of the knife blade relative to a thickness of the substrate and to cause relative motion between the knife assembly and the substrate operable to fully penetrate or not fully penetrate the substrate and to create zero and non-zero notch angles, including executing multiple cutting operations at a non-zero notch angle to form a V-notch in the substrate that does not fully penetrate the substrate.
46. The cutting system of claim 45, wherein the second and third axes of rotation intersect at a knife angle pivot point, the control system configured to permit selection of the knife angle pivot point at a desired distance from the substrate top surface as a non-changing reference point for kinematics relating to the knife.
47. The cutting system of claim 46, wherein the pivot point is selectable within a range including at least a first point residing on the top surface of the substrate and at least a second point residing on the bottom surface of the substrate such that a cut line in the substrate relative to the reference point is independent of the knife notch angle.
48. The cutting system of claim 42, further comprising a computer processor connected to a computer memory, the computer processor configured to read a design file residing in the computer memory, wherein the computer processor is configured to cause the control system to control operation of the knife assembly based upon information in the design file.
49. The cutting system of claim 48, wherein the design file is a 2D design file, and the control system is configured to select the cut direction angle and the direction of relative motion of the knife assembly based upon a location of lines in a 2D design file, and select values for the one of: the notch angle, the angle of attack, or a combination thereof, based upon a line property in the 2D design file.
50. The cutting system of claim 49, wherein the line property is selected from the group consisting of line type, line color, and line width.
51. The cutting system of claim 49, wherein one or more 2D design file line properties are associated with custom defined angle values and other line properties are predefined for a plurality of commonly used values.
52. The cutting system of claim 51, wherein the plurality of commonly used values include values selected from the group consisting of 0°, 15°, 22.5°, 300 and 45°.
53. The cutting system of claim 48, wherein the design file is a 3D design file, wherein the cut direction angle, the direction of relative motion, and the notch angle are derived from a 3D cut shape as defined in the 3D design file, and the angle of attack is defined by a cut surface property as represented in the 3D design file.
54. A method for cutting a substrate, comprising the steps of: (a) providing a cutting system having an adjustable knife assembly comprising a knife having a distal knife blade and a proximal knife shaft attached to a knife holder, the knife holder (i) rotatable about a first axis perpendicular to the substrate to define a cut direction angle, (ii) configured to rotate the knife blade about a second axis perpendicular to the first axis to form a notch angle relative to the first axis, wherein the notch angle is infinitely adjustable within a range of angles, (iii) adjustable in a Z direction perpendicular to the substrate, and (iv) optionally, configured to rotate the knife blade about a third axis perpendicular to a plane defined by the knife blade, wherein rotation about the third axis adjusts an angle of attack of the knife blade relative to the substrate within a desired range; and (b) causing relative motion between the knife assembly and the substrate, including automatically controlling a direction of the relative motion, the cut direction angle, and the notch angle, wherein automatically controlling the notch angle comprises automatically changing the notch angle from a first notch angle to a second notch angle using the adjustable knife assembly.
55. The method of claim 54, wherein the cutting system includes a computer processor, the method further comprising the computer processor reading information from a design file and controlling operation of the knife assembly and relative motion between the knife assembly and the substrate based upon information in the design file.
56. The method of claim 55, wherein the design file is a 2D design file, the method comprising the computer processor selecting the cut direction angle and the direction of relative motion of the knife assembly based upon a location of lines in the 2D design file, and selecting values for the notch angle and the angle of attack based upon a line property in the 2D design file.
57. The method of claim 55, wherein the design file is a 3D design file, the method comprising the computer processor selecting the cut direction angle, the direction of relative motion, and the notch angle based upon a 3D cut shape as defined in the 3D design file and the angle of attack based upon a line property represented in the 3D design file.
58. A non-transitory computer-readable medium encoded with instructions embodied in a design file readable by a computer processor for controlling a control system of a cutting system, the cutting system having an adjustable knife assembly comprising a knife having a distal knife blade and a proximal knife shaft attached to a knife holder, the knife holder (i) rotatable about a first axis perpendicular to the substrate to define a cut direction angle, (ii) configured to rotate the knife blade about a second axis perpendicular to the first axis to form a notch angle relative to the first axis, wherein the notch angle is infinitely adjustable within a range of angles, (iii) adjustable in a Z direction perpendicular to the substrate, and (iv) optionally, configured to rotate the knife blade about a third axis perpendicular to a plane defined by the knife blade, wherein rotation about the third axis adjusts an angle of attack of the knife blade relative to the substrate within a desired range, the cutting system further comprising means for causing relative motion between the knife assembly and the substrate, including automatically controlling a direction of the relative motion, the cut direction angle, and the notch angle, the instructions comprising: instructions for controlling operation of the knife assembly and relative motion between the knife assembly and the substrate based upon information in the design file, including instructions for causing the control system to automatically change the notch angle from a first notch angle to a second notch angle using the adjustable knife assembly.
59. The non-transitory computer-readable medium of claim 58, wherein the design file is a 2D design file comprising instructions corresponding to a plurality of lines, each line having one or more line properties, wherein at least one line property corresponds to a selected value for the notch angle, at least one line property corresponds to the angle of attack, or a combination thereof.
60. The non-transitory computer-readable medium of claim 59, wherein the line property is selected from the group consisting of line type, line color, and line width.
61. The non-transitory computer-readable medium of claim 59, wherein one or more line properties are associated with custom defined angle values and a plurality of other line properties are predefined for a plurality of commonly used values.
62. The non-transitory computer-readable medium of claim 61, wherein the plurality of commonly used values include values selected from the group consisting of 0°, 15°, 22.5°, 300 and 45°.
63. The non-transitory computer-readable medium of claim 58, wherein the design file is a 3D design file, wherein the cut direction angle, the direction of relative motion, and the notch angle are represented by a 3D cut shape as defined in the 3D design file, and the angle of attack is defined by a cut surface property as represented in the 3D design file.
64. A method for creating a design file for being processed by a cutting system, the method comprising creating a design file embodying instructions readable by a computer processor for controlling a control system of a cutting system, the cutting system having an adjustable knife assembly comprising a knife having a distal knife blade and a proximal knife shaft attached to a knife holder, the knife holder (i) rotatable about a first axis perpendicular to the substrate to define a cut direction angle, (ii) configured to rotate the knife blade about a second axis perpendicular to the first axis to form a notch angle relative to the first axis, wherein the notch angle is infinitely adjustable within a range of angles, (iii) adjustable in a Z direction perpendicular to the substrate, and (iv) optionally, configured to rotate the knife blade about a third axis perpendicular to a plane defined by the knife blade, wherein rotation about the third axis adjusts an angle of attack of the knife blade relative to the substrate within a desired range, the cutting system further comprising means for causing relative motion between the knife assembly and the substrate, including automatically controlling a direction of the relative motion, the cut direction angle, and the notch angle, the instructions comprising instructions for controlling operation of the knife assembly and relative motion between the knife assembly and the substrate based upon information in the design file, including instructions for causing the control system to automatically change the notch angle from a first notch angle to a second notch angle using the adjustable knife assembly.
65. The method of claim 64, comprising creating the design file as a 2D design file comprising instructions corresponding to a plurality of lines, each line having one or more line properties, wherein at least one line property corresponds to a selected value for the notch angle, at least one line property corresponds to the angle of attack, or a combination thereof.
66. The method of claim 64, comprising creating the design file as a 3D design file, wherein the cut direction angle, the direction of relative motion, and the notch angle are represented by a 3D cut shape as defined in the 3D design file, and the angle of attack is defined by a cut surface property as represented in the 3D design file.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
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[0043] In exemplary embodiments, the knife blade is preferably configured to rotate to any angular position around axis C, to enable maximum flexibility in the cut direction. The system is preferably configured to permit infinite variability of the notch angle of the knife blade in a range around axis A, e.g. +/−60°, including in a 0° (vertical) angle, thus making the knife blade suitable for both angled and perpendicular/straight line cutting. The pivot point P (at which at least axes A and B intersect) is preferably a specified distance H from the distal tip of the knife blade, typically half the thickness T of the material being processed. Such a configuration balances the reaction forces F1, F2 that the material exerts on the knife blade around the C axis, so that the moment of the reaction force is preferably zero, which improves the quality/straightness of the cut. Axis C may also coincide with the pivot point, or may be located in another location on the plane of the knife blade. Control systems for controlling the notch angle, as described further herein, may be configured to permit selection of the knife angle pivot point at a desired distance from the substrate top surface as a non-changing reference point for kinematics relating to the knife. In preferred embodiments, the pivot point may be selectable within a range including at least a first point residing on the top surface of the substrate and at least a second point residing on the bottom surface of the substrate such that a cut line in the substrate relative to the pivot point is independent of the knife notch angle. Such a location for P is depicted in
[0044] Referring now to
[0045] Preferably, the range of notch angles achievable by the system includes a symmetrical range (e.g. −60 to +60 degrees relative to the first position). Accordingly, the circumferential portion of the worm wheel depicted in
[0046] Although depicted as an enveloping (or double enveloping) worm driver 302 and partial worm wheel 304 in
[0047] Referring now to
[0048] As depicted, knife shaft 408 is shown in a first position with a zero notch angle and a second position with a non-zero notch angle. Likewise, the substrate to be cut is shown at a first relative height corresponding to the first position of the knife shaft, and a second relative height corresponding to the second position of the knife shaft, for cuts having a desired depth in the thickness t of the substrate 450. The carriages may be driven by any type of actuator known in the art (e.g. a linear motor, a ball screw device operated by a motor (not shown), or a piezoelectric device). Motorized actuators may include two motors (one per linear guide element) or a single motor and a specific gearing between the two actuators. The actuators may be controlled by a controller 420 based upon feedback from encoders 422, 424 regarding the position of each carriage 412, 414.
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[0050] In one embodiment, the knife angle of attack (i.e. rotation around axis B) may be implemented with an actuator mechanism configured to rotate the knife holder infinitely within a desired range, or by providing features in the knife holder that enable manual adjustment/mounting of the knife blade in one of a set of possible discrete positions.
[0051] In preferred embodiments, the desired angles for the knife mechanism may be defined using information embedded within a design file. In exemplary embodiments depicted in
[0052] The desired angle may also be derived from information embedded in a 3D CAD design file, where the 3D shape is translated into desired cut direction and notch angle, such as is depicted in
[0053] Applications for the disclosed system include utilization for high speed through-cutting perpendicular to material surface or angled relative to perpendicular, such as for separating product from waste. Angled cuts may be used for design/aesthetic purposes, e.g. a “passe-partout.” The automatic tool may also be utilized for making folds, such as by making two angled partial (i.e. not fully penetrating the material) cuts facing towards each other (creating a V-trace in the material) facilitates folding of thicker paper and plastic based materials. An advantage of the disclosed device as compared to prior art devices, is that the same automatic tool is suitable for all the above stated applications, without the need for any operator intervention.
[0054] An exemplary method for cutting a substrate may include the following application workflow, as depicted in
[0055] Referring now to
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[0059] As shown in more detail in
[0060] An exemplary angle of attack adjustment mechanism is shown in more detail in
[0061] Although exemplary systems are described herein for providing an automatically adjustable notch angle, the invention is not limited to the mechanisms shown, and may be implemented using any combination of elements known in the art for creating the functionality as described herein.
[0062] Aspects of the invention include features that provide several benefits including: [0063] permitting cutting of arbitrary angles between 00 and 600 (e.g. 36° cut angle to create a 72° notch for a pentagon shaped box, allowing more creative freedom for the designer; [0064] automatically adjusting the angle based on the job setup, allowing more productivity for the operator; and [0065] replacing an oscillating knife for straight line cuts at 0°, further increasing productivity because of ability to cut at significantly higher speeds.
Although the invention is illustrated and described herein with reference to specific embodiments, the invention is not intended to be limited to the details shown. Rather, various modifications may be made in the details within the scope and range of equivalents of the claims and without departing from the invention.