Cutting Assembly for Trimming Pieces of Meat, Processing System Including Such a Cutting Assembly, and Corresponding Methods of Operating and Use Associated Thereto
20200236953 · 2020-07-30
Inventors
- Antoine Wells Campagna (St-Anselme, Québec, CA)
- Kevin Bergeron (St-Anselme, Québec, CA)
- Alexandre Lemieux (St-Anselme, Québec, CA)
Cpc classification
A22B5/0041
HUMAN NECESSITIES
A22C17/0086
HUMAN NECESSITIES
A22C17/002
HUMAN NECESSITIES
International classification
Abstract
A cutting assembly and corresponding workpiece processing for cutting a workpiece, the cutting assembly including a first cutting tool adapted to cut the workpiece along a first cutting plane, and a second cutting tool adapted to cut the workpiece along a second cutting plane, the first and second cutting planes defining an inner angle therebetween, the cutting assembly being adapted to cut the workpiece along the first and second cutting planes in a single operation.
Claims
1. A cutting assembly (10) for cutting a workpiece (20), the cutting assembly (10) comprising: a first cutting tool (12) adapted to cut the workpiece (20) along a first cutting plane (13); and a second cutting tool (14) adapted to cut the workpiece (20) along a second cutting plane (15); the first and second cutting planes (13,15) defining an inner angle (18) therebetween, the cutting assembly (10) being adapted to cut the workpiece (20) along said first and second cutting planes (13,15) in a single operation.
2. The cutting assembly according to claim 1, further comprising a manipulator system (30) and a support frame (40), the support frame being rotatably connected to the manipulator system (30), and wherein the cutting tools (12,14) are operatively connected to the support frame (40).
3. The cutting assembly according to claim 2, wherein the manipulator system (30) is adapted to axially move the support frame (40) in order to position the cutting tools (12,14) over the workpiece (20) in a desired location.
4. The cutting assembly according to any one of claims 1 to 3, wherein at least one of the first and second cutting tools (12,14) is independently movable with respect to the other one of the cutting tools (12,14).
5. The cutting assembly according to any one of claims 1 to 4, wherein the first cutting plane (13) is substantially vertical, and the second cutting plane (15) is angled relatively to the first cutting plane (13) for defining a bevel (22) along the workpiece (20), and wherein moving the cutting tools (12, 14) closer to the workpiece (20) adjusts the size of the bevel (22).
6. The cutting assembly according to any one of claims 1 to 5, wherein the first cutting tool defines a first axis, and wherein rotating the second cutting about the first axis adjusts the size of the bevel.
7. The cutting assembly according to any one of claims 1 to 6, wherein the inner angle (18) is a first inner angle (18) and wherein the cutting assembly (10) further comprises a third cutting tool (16) operatively connected to the support frame (40) and being adapted to cut the workpiece (20) along a third cutting plane (17), the third cutting plane (17) and first cutting plane (13) defining a second inner angle (19) therebetween.
8. The cutting assembly according to claim 7, wherein the first and second inner angles (18,19) are between about 1 degree and 179 degrees.
9. The cutting assembly according to claim 7, wherein the first and second inner angles (18,19) are between about 1 degree and about 90 degrees.
10. The cutting assembly according to claim 7, wherein the first and second inner angles (18,19) are between about 30 and 60 degrees.
11. The cutting assembly according to claim 7, wherein the first and second inner angles (18,19) are about 45 degrees.
12. The cutting assembly according to any one of claims 7 to 11, wherein the second inner angle (19) is generally a mirror of the first inner angle (18).
13. The cutting assembly according to any one of claims 2 to 12, wherein the support frame (40) is rotatable to change the orientation of each cutting plane (13,15,17) with respect to the workpiece (20).
14. The cutting assembly according to any one of claims 1 to 13, wherein the cutting tools (12,14,16) are offset with respect to one another along a direction to avoid contact with each other.
15. The cutting assembly according to any one of claims 2 to 14, wherein the manipulator system (30) comprises an elongated bridge (32) extending over the workpiece (20), and wherein the support frame (40) is adapted to move along the elongated bridge.
16. The cutting assembly according to any one of claims 2 to 15, wherein the manipulator system (30) comprises a robotic arm (34), and wherein the support frame (40) is rotatably connected at one end thereof.
17. The cutting assembly according to any one of claims 1 to 16, wherein at least one of the cutting tools (12,14,16) is one of a waterjet, a circular saw, a cutting blade, a laser, an ultrasonic knife, an ultrasonic saw and a reciprocating saw.
18. The cutting assembly according to any one of claims 1 to 17, wherein the cutting tools (12,14,16) are independently operational from one another.
19. The cutting assembly according to any one of claims 1 to 18, wherein the workpiece (20) is a piece of meat.
20. The cutting assembly according to any one of claims 1 to 19, wherein the workpiece (20) is a pork belly.
21. A workpiece processing system (1) for processing a given workpiece (20), the system (1) comprising: a conveying assembly (3) adapted to convey the workpiece (20) along a predetermined path; and a cutting assembly (10) provided about the conveying assembly (3), the cutting assembly (10) comprising: a first cutting tool (12) adapted to cut the workpiece (20) along a first cutting plane (13); and a second cutting tool (14) adapted to cut the workpiece (20) along a second cutting plane (15), the first and second cutting planes (13,15) defining an inner angle (18) therebetween, the cutting assembly (10) being adapted to cut the workpiece (20) along the first and second cutting planes (13,15) in a single operation.
22. The workpiece processing system (1) according to claim 21, wherein the cutting assembly (10) comprises a manipulator system (30) and a support frame (40), the support frame being rotatably connected to the manipulator system (30), and wherein the cutting tools (12,14) are operatively connected to the support frame (40).
23. The workpiece processing system (1) according to claim 21 or 22, further comprising a guidance system (5) provided about the conveying assembly (3) and being operatively connected to the manipulator system for controlling the movements of the manipulator system (30).
24. The workpiece processing system according to any one of claims 21 to 23, wherein at least one of the first and second cutting tools (12,14) is independently movable with respect to the other one of the cutting tools (12,14).
25. The workpiece processing system according to any one claims 22 to 24, wherein the manipulator system (30) is adapted to displace the support frame (40) in order to position the cutting tools (12,14) above the predetermined path and over the workpiece (20).
26. The workpiece processing system according to any one of claims 21 to 25, wherein the first cutting plane (13) is substantially vertical, and the second cutting plane (15) is angled relatively to the first cutting plane (13) for defining a bevel (22) along the workpiece (20), and wherein moving the cutting tools (12, 14) closer to the workpiece (20) adjusts the size of the bevel (22).
27. The workpiece processing system according to any one of claims 21 to 26, wherein the first cutting tool defines a first axis, and wherein rotating the second cutting about the first axis adjusts the size of the bevel.
28. The workpiece processing system according to any one of claims 21 to 27, wherein the support frame (40) is rotatable to change the orientation of the cutting planes with respect to the workpiece (20).
29. The workpiece processing system according to any one of claims 21 to 28, wherein the cutting assembly (10) further comprises a third cutting tool operatively connected to the support frame and being adapted to cut the workpiece (20) along a third cutting plane (17).
30. The workpiece processing system according to claim 29, wherein the inner angle is a first inner angle, and the third cutting plane is angled with respect to the first cutting plane, defining a second inner angle therebetween.
31. The workpiece processing system according to claim 30, wherein the first and second inner angles are between about 1 degree and 179 degrees.
32. The workpiece processing system according to claim 30, wherein the first and second inner angles are between about 1 degree and 90 degrees.
33. The workpiece processing system according to claim 30, wherein the first and second inner angles are between about 30 and 60 degrees.
34. The workpiece processing system according to claim 30, wherein the first and second inner angles are about 45 degrees.
35. The workpiece processing system according to any one of claims 30 to 34, wherein the second inner angle is a mirror of the first inner angle.
36. The workpiece processing system according to any one of claims 28 to 35, wherein the cutting tools are offset with respect to one another along a direction to avoid contact with each other.
37. The workpiece processing system according to any one of claims 21 to 36, wherein the manipulator system is an elongated bridge adapted to move the support frame therealong.
38. The workpiece processing system according to claim 37, wherein the elongated bridge is fixedly attached about the conveying assembly.
39. The workpiece processing system according to any one of claims 21 to 38, wherein the manipulator system (30) comprises a robotic arm (34), and wherein the support frame (40) is rotatably connected at one end thereof.
40. The workpiece processing system according to any one of claims 21 to 39, wherein at least one of the cutting tools (12,14,16) is one of a waterjet, a circular saw, a cutting blade, a laser, an ultrasonic knife, an ultrasonic saw and a reciprocating saw.
41. The workpiece processing system according to any one of claims 21 to 40, wherein the cutting tools (12,14,16) are independently operational from one another.
42. The workpiece processing system according to any one of claims 21 to 41, wherein the workpiece (20) is a piece of meat.
43. The workpiece processing system according to any one of claims 21 to 42, wherein the workpiece (20) is a pork belly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
[0054]
[0055]
[0056]
[0057]
[0058]
[0059]
[0060]
[0061]
[0062]
[0063]
[0064]
[0065]
[0066]
[0067]
[0068]
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078]
[0079]
[0080]
[0081]
[0082]
[0083]
[0084]
[0085]
[0086]
[0087]
[0088]
[0089]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0090] In the following description, the same numerical references refer to similar elements. Furthermore, for sake of simplicity and clarity, namely as to not unduly burden the figures with several reference numbers, only some figures have been provided with reference numbers, and components and features illustrated in other figures can be easily inferred therefrom. The embodiments, geometrical configurations, materials mentioned and/or dimensions (expressed in inches, and/or centimeters, for example) shown in the figures are preferred, for exemplification purposes only.
[0091] Moreover, although the cutting assembly described herein was primarily designed as an apparatus for trimming pork bellies, it may be used for various types of applications, and with various other types of objects, and in other fields, as apparent to a person skilled in the art. For this reason, expressions such as workpiece, piece of meat, pork belly, meat cut, etc., used herein should not be taken as to limit the scope of the present disclosure and include all other kinds of objects and/or fields with which the cutting assembly could be used and may be useful, as apparent to a person skilled in the art.
[0092] Moreover, in the context of the present disclosure, the expressions double-angled, double-edged, dual-edged, etc., as well as any other equivalent expressions and/or compound words thereof known in the art will be used interchangeably, as apparent to a person skilled in the art. This applies also for any other mutually equivalent expressions, such as, for example a) cutting, trimming, carving, cleaving, sectioning, shaving, slashing, removing, etc.; b) cutter, cutting tool, cutting apparatus, cutting device, knife, jet, etc., as well as for any other mutually equivalent expressions, pertaining to the aforementioned expressions and/or to any other structural and/or functional aspects described herein, as also apparent to a person skilled in the art. Also in the context of the present description, expressions such as can, may, might, will, could, should, would, etc., may also be used interchangeably, whenever appropriate, as also apparent to a person skilled in the art.
[0093] Furthermore, in the context of the present description, it will be considered that all elongated objects have an implicit longitudinal axis or centerline, such as the longitudinal axis of a conveyor belt, for example, or the centerline of a piece of meat (e.g., pork belly). As such, there is a transversal axis being substantially perpendicular for each longitudinal axis, etc.). Furthermore, expressions such as connected and connectable, or mounted and mountable, may be interchangeable, in that a system with corresponding components/assemblies meant to be assembled and fully operational for processing meat is also disclosed and/or meant herein.
[0094] Moreover, components of the cutting assembly, associated accessory(ies)/component(s)/part(s) thereof and/or steps of the method(s) described herein could be modified, simplified, altered, omitted, and/or interchanged, without departing from the scope of the present disclosure, depending on the particular applications which the cutting assembly is intended for, and the desired end results, as briefly exemplified herein and as also apparent to a person skilled in the art.
[0095] Additionally, although the preferred embodiments described below, and as illustrated in the accompanying drawings, may comprise various components, and although the preferred embodiments of the cutting assembly, accessory(ies), component(s), part(s) and/or associated method(s) (ex. operating, manufacturing, use, etc.) may consist of certain preferred steps and components as explained herein, not all of these steps and components are essential and thus should not be taken in their restrictive sense. It should be apparent that other suitable steps, components and cooperation thereinbetween, may be used for the present cutting assembly (as well as corresponding components thereof, etc.) and corresponding method(s), as will be briefly explained hereinafter and as can be easily inferred herefrom by a person skilled in the art.
[0096] Broadly described, the cutting assembly can be used as part of a processing system for trimming/cutting meat, such as pork bellies for example, and/or the like. More specifically, the cutting assembly can be operated to perform double-angled cuts along pork bellies in a single operation (for example, two cuts being done simultaneously, or at the very least, without having to flip the workpiece, etc.).
LIST OF NUMERICAL REFERENCES FOR SOME OF THE CORRESPONDING POSSIBLE COMPONENTS ILLUSTRATED IN THE ACCOMPANYING DRAWINGS
[0097] 1. workpiece processing system [0098] 3. conveying assembly [0099] 5. guidance system [0100] 10. cutting assembly [0101] 12. first cutting tool [0102] 13. first cutting plane [0103] 13a. first axis [0104] 14. second cutting tool [0105] 15. second cutting plane [0106] 16. third cutting tool [0107] 17. third cutting plane [0108] 18. inner angle (ex. first inner angle) [0109] 19. second inner angle [0110] 20. workpiece/pork belly [0111] 22. bevel [0112] 30. manipulator system [0113] 32. elongated bridge [0114] 34. robotic arm [0115] 40. support frame
Cutting Assembly
[0116] Referring to
[0117] As mentioned above, the cutting assembly can be operated to create multiple edges on a material to cut, such as the aforementioned pork bellies, in a single operation. In this embodiment, the first cutting plane can be substantially vertical for cutting the side of the pork bellies, while the second cutting plane can be angled relatively to the first cutting plane. As such, the second cutting tool can be adapted to create a bevel along the length of the pork belly. Creating the bevel at the same time as the side cut (i.e., vertical cut) provides the advantage of being more accurate, as compared to traditional operations where the bellies are flipped and/or transferred on different conveyors, which can alter product shape. Additionally, having multiple cutting tools mounted on a single cutting assembly advantageously requires less manipulator system, less parts, less working envelope space and smaller cycle time. As such, the cutting assembly can perform the cuts illustrated in
[0118] Referring more specifically to
[0119] In some embodiments, the cutting tools can be positioned at an angle of about 45 degrees relative to each other. However, when the cutting assembly is in a standby position, the cutters can be positioned at about 22.5 and about 22.5 degrees from the vertical normal of the conveyor belt, as shown in
[0120] In some embodiments, the cutting assembly can trim one side of the belly with a double-angled cut and trim the opposite side of the following belly on the conveyor belt with minimal movement of the cutting tools. For example, the cutting assembly can be rotated by about 22.5 degrees, from the standby position, to cut one side (see
[0121] The cutting assembly can perform a straight end cut by either keeping both cutters activated or using only one as the cutting tools are moved across the conveyor. It should thus be understood that the cutting tools can be independently operated during operation of the cutting assembly. The cutting assembly can alternatively perform a double-angled cut on the side of the belly, rotate the cutters 90 degrees about the axis normal to the conveyor belt plane, and then perform a subsequent double-angled cut on at least one end of the belly. This operation is not doable without a robot manipulator and/or complex x-y motion with an additional rotary actuator and/or another appropriate manipulator system.
[0122] As mentioned above, the robot manipulator can modulate the depth of the beveled cut by adjusting the distance between the cutting assembly (i.e., the cutting tools) and the conveyor belt as illustrated in
[0123] Furthermore, the cutting tools can be independently activated using high-pressure valves which can provide flexibility to activate only one waterjet or both jets. For example, both waterjets can be simultaneously operated using one or more valves. Alternatively, one of the two cutting tools can be continuously operational while the other one can be activated/deactivated using the valve, or both cutting tools can be continuously operational with the cutting assembly having no valves. In some embodiments, the valves controlling the cutters can be remotely installed to reduce the weight of the cutting assembly and facilitate movement thereof. This type of control could be useful in order to create a vertical cut on one end of the belly and multiple edges on the sides, for example.
[0124] It should be apparent to a person skilled in the art that performing a double-angled trim can provide the following benefits: [0125] the double cut maximizes yield by leaving more meat on the final product while keeping end product dimensional attributes; [0126] the double cut improves quality of final product over a single bevel by providing thicker edges while still providing a bevel; [0127] the double cuts can be created with two or more independent cutters which are used in a single operation (i.e. simultaneously, in cooperation, etc.) to create a final beveled edge; and [0128] the double-angled edge is created in a single operation compared to traditional operation, which takes much less space.
[0129] As described above, two cutting tools or more can be used on a single manipulator system, such as the robot manipulator illustrated in
[0130] In various embodiments, the cutting tools can be adjusted/moved in order to adjust the angle therebetween via one or more mechanisms. In a possible embodiment, at least one cutting tool can be movable independently from the other. As such, the cutting tools can be moved vertically or pivoted about one another to adjust the depth of the cuts, as illustrated in
[0131] In a possible embodiment, the manipulator system (i.e. robot manipulator) can be provided with instructions/information via a guidance system. The guidance system can be adapted to scan the workpiece (i.e., the pork belly) in order to determine the location of said workpiece upon the conveying assembly (i.e. conveyor belt), and acquire information such as geometry, topology, and much more. Furthermore, additional measurements, such as belly fat thickness, can be obtained by previous measuring system(s) and/or additional vision system(s) to dynamically adjust the bevels. Internal measurements acquired by an x-ray system, or other similar machine/system, could also be used for example. In this possible embodiment, the guidance system can transfer information to the cutting assembly, more particularly to the robot manipulator, to position the cutting tools appropriately to cut and/or trim the pork belly.
[0132] In the exemplary embodiment of
[0133] The operation of the two cutting assemblies can be as follows (illustrated in
[0138] In this embodiment, the conveying assembly can be in constant motion, therefore eliminating the need to stop, and/or go backwards, and allow the cutting assembly time to perform any type of cuts, such as a single bevel, vertical, double-angled, and/or not performing a cut on more than one side of the workpiece, depending on product specifications.
[0139] Now referring to
[0140] In another embodiment, illustrated in
[0144] In this exemplary embodiment, the first and second cutting assemblies are adapted to trim the sides of the pork bellies in a manner similar to the method described hereinabove and illustrated in
[0145] Now referring to
[0146] A second example consists of trimming meat around at least one bone, such as a pork ham for example. The waterjets of the cutting assembly (or any other suitable cutters) can be provided with a larger angle which would reduce meat left on the bone. This exemplary application is illustrated in
[0147] The above examples can provide the following benefits: [0148] maximizing yields by removing more from a bone-in productthe same operation done manually would be very labor and time consuminghistorically, this operation is done with a single vertical cut only; [0149] a single cutting assembly with multiple cutters reduces cycle time and machine floor space.
[0150] Furthermore, in alternate embodiments, the cutting assembly can include three, four or five cutters operated via the robotic manipulator as illustrated in
[0151] The embodiments of
[0152] As for the embodiments of
[0153] In the embodiments described herein, the angle of the cutting tools can be adjusted with respect to the support frame, said adjustments can be done manually or dynamically during operation of the cutters. Furthermore, the aforementioned cutting assemblies can include any suitable number of valves in order to operate the cutting tools, or in some cases can alternatively have no valves.
[0154] Referring back to
[0155] In some embodiments, the cutting assembly can include one, two or three valves to operate one or more of the waterjet cutters but can alternatively include no valves. Each inner angle of the cutting tools can be dynamically adjusted along with the height thereof upon the support frame. It should be understood that the cutting assemblies having two, three or more cutting tools can be adapted for use with an x-y cutting table, or displaced by other types of manipulator system.
[0156] In alternate embodiments, as illustrated in
[0157] Now referring to
[0158] The cutting assembly can be adapted to be used within a processing system configured to process pieces of meat such as pork bellies. The processing system can include one or more cutting tools, one or more robotic manipulators, one or more elongated bridges, one or more x-y cutting tables and/or any other similar cutting assemblies, manipulator system or combination thereof. The aforementioned individual cutting tools can be adapted to perform vertical cuts, single bevels and/or a combination thereof, such as the embodiments illustrated in
[0159] It should be understood that the cutting assemblies, or individual cutting tools, can operate sequentially, thus performing separate cutting operations, such as in the embodiments illustrated in
[0160] As may now better be appreciated, the above-described cutting assembly, and corresponding components, provide substantial improvements over known prior art in that, by virtue of its design and components, as explained herein, and the particular configuration of the cutting assembly and/or component(s)/accessory(ies) thereof according to the present system, it enables to carry out trimming operations of a workpiece along different cutting planes in a single operation, and thus in a more efficient, more precise, more accurate, more reliable, more adjustable, more versatile, more adaptable, more impactful, more strategic, and/or more desirable manner (e.g., depending on the circumstances, and the intended results, etc.), compared to what is possible with respect to other known conventional cutting assemblies/tools and/or methods.
[0161] Indeed, as previously explained, and depending on the different possible embodiments, the present system advantageously enables to: a) create a double-angled-edge in a single operation; b) reduce operation and cycle times; c) increase accuracy of cuts and maximize yield, thus increasing quality of end product; d) reduce equipment, working envelop space and maintenance costs; e) reduce initial investment, f) etc.
[0162] Of course, and as can be readily understood by a person skilled in the art, the cutting assembly should not be limited by the possible embodiments set forth in the examples, but should be given the broadest interpretation consistent with the description as a whole.