Automatic cam slicing mechanism and use method
Through the symmetrically designed double-slicing section and sharpening and blunt-removing component, the uneven problem caused by single-sided slices is solved, and the workpiece is uniformly subjected to uniform stress, efficient cutting stability, smooth and consistent cutting surfaces, and long service life of the blade is achieved.
Patent Information
- Application Number
- CN202411355239.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2044-09-27
AI Technical Summary
The single-sided slice design of existing automated cam slicers leads to uneven slices, rough surfaces, and uneven force on the blade, affecting cutting stability and efficiency.
The double-slicing part and sharpening and deblunt assembly are symmetrically designed. The two slices act on the upper and lower sides of the workpiece at the same time, and the blade edge is polished by the sharpening and deblunt assembly to ensure the even distribution of cutting force and the sharpening and sharpness of the blade.
It achieves uniform stress on the workpiece, reduces deformation and vibration, improves cutting efficiency and accuracy, extends the life of the blade, and ensures smooth and consistent cutting surfaces.
Smart Images

Figure CN119237815B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of automation equipment, and more particularly to an automated cam slicing mechanism. Background Art
[0002] The automated cam slicing mechanism is a device used to achieve mechanical motion conversion, converting rotary motion into linear motion. The motion law can be precisely controlled according to actual needs, thereby realizing various actions and operations in the automated production process.
[0003] Prior art (Chinese utility model patent publication number CN214023786U) discloses an automatic cam slicing device. This device uses a cam to drive the cutter for continuous cutting, improving work efficiency and achieving workpiece slicing. Existing cam slicers use a single-sided slicing design. Although slicing can be achieved, all the load is concentrated on one side during single-sided slicing. Since only one side of the slice acts on the workpiece, uneven slicing, rough surfaces, and burrs may occur, affecting the quality and performance of the slices. At the same time, the cutting force of single-sided slicing is mainly concentrated on a single blade. This can lead to uneven cutting force distribution, causing the blade to bear greater pressure during the cutting process, which may affect cutting stability and efficiency. Summary of the Invention
[0004] In view of the problems existing in the prior art, the object of the present invention is to provide an automated cam slicing mechanism and a method of use.
[0005] To solve the above problems, the present invention adopts the following technical solutions.
[0006] An automated cam slicing mechanism comprises a vertical plate, wherein one side of the vertical plate is symmetrically connected to two cam motion parts, and the cam motion part comprises two slide rails symmetrically fixed to one side of the vertical plate, a slide seat slidably connected to the slide rails, a connecting rod rotatably connected to one side of the slide seat, and a cam block rotatably connected to the other end of the connecting rod;
[0007] The vertical plate is internally connected to a power assembly connected to the two cam blocks and driving the two cam moving parts to move, and the power assembly includes a transmission rod 1 and a transmission rod 2 rotatably connected to the vertical plate, a sprocket 1 fixed to the outside of the transmission rod 1, a sprocket 2 rotatably connected to the inside of the vertical plate, a chain belt connecting the sprocket 1 and the sprocket 2, a gear 2 fixed to the outside of the transmission rod 2, a gear 1 rotatably connected to the inside of the vertical plate and meshing with the gear 2, and one side of the gear 1 is fixed to one side of the sprocket 2, a motor 1 is fixed to one side of the vertical plate, two ends of the transmission rod 1 are respectively fixed to the output shaft of the motor 1 and one side of one of the cam blocks 1, and one end of the transmission rod 2 is fixed to one side of the other cam block 1;
[0008] One side of each of the two slides is connected to a slicing portion, and the slicing portion includes a seat body fixed to one side of the slide and a blade arranged inside the seat body.
[0009] Furthermore, two positioning plates are symmetrically fixed to one side of the vertical plate, and through holes are provided inside the two positioning plates. The inner walls of the two through holes are connected to bearings, and one end of the transmission rod 1 and the transmission rod 2 pass through the inner ring of the bearing and are respectively fixed to one side of the two cam blocks 1, and the outer walls of the transmission rod 1 and the transmission rod 2 are fixed to the inner wall of the inner ring of the bearing.
[0010] Furthermore, a movable groove 1 is opened inside the two seat bodies, and a cylinder 1 is fixedly connected to the inner wall of the movable groove 1. A knife seat is slidably connected to the inner wall of the movable groove 1, and the telescopic end of the cylinder 1 is fixedly connected to one side of the knife seat. One end of the two blades is respectively fixed in the two knife seats.
[0011] Furthermore, two movable grooves 2 are symmetrically provided inside the two seat bodies, and a sharpening and blunting component is connected to the inside of the movable groove 2. The sharpening and blunting component includes a frame connected to the inner wall of the movable groove 2, a cylinder 2 fixed to one side of the frame, a movable seat 1 slidingly connected to the inside of the frame, a cavity provided inside the movable seat 1, a cover plate fixed to one side of the movable seat 1, a sharpening part slidingly connected in the cavity, and a driving component connected to the inside of the cavity for driving the sharpening part to reciprocate in the cavity. The telescopic end of the cylinder 2 passes through the frame and is fixed to one side of the movable seat 1.
[0012] Furthermore, the knife sharpening part includes a movable seat 2 movably connected in the cavity and a grinding stone 1 and a grinding stone 2 connected inside the movable seat 2.
[0013] Furthermore, the driving assembly includes a cam block 2 rotatably connected to the inner wall of the cavity, a connecting rod 2 rotatably connected to one side of the cam block, two slide rails symmetrically fixed to the inner wall of the cavity, a connecting end fixed to one side of the movable seat 2, and one side of the connecting end is rotatably connected to the other end of the connecting rod 2, the movable seat 2 is slidably connected to the two slide rails 2, the outer surface of one side of the movable seat 1 is fixed with a motor 2, and the output shaft of the motor 2 passes through the movable seat 1 and is fixed to one side of the cam block 2.
[0014] Furthermore, the movable seat two is also connected to a shift unit for adjusting the position of grinding stone one and grinding stone two, and the shift unit includes a base fixedly connected to one side of grinding stone one, a cylinder three fixedly connected to the movable seat two, two movable grooves four symmetrically opened inside the movable seat two and a avoidance groove connected to the two movable grooves four, two sliders symmetrically fixed to both sides of grinding stone two and slidingly connected to the two movable grooves four respectively, a screw rod two rotatably connected to one of the movable grooves four and screwed in one of the sliders, and a guide rod two fixed in the other movable groove four and movably inserted in the other slider, a motor three is fixed to the outer surface of one side of the movable seat two, and the output shaft of the motor three passes through the movable seat two and is fixed to the screw rod two, and the telescopic end of the cylinder three is fixed to one side of the base.
[0015] Furthermore, two guide holes are symmetrically provided inside the base, and two guide rods 1 are movably inserted into the two guide holes, and one end of the two guide rods is fixedly connected to the inner wall of the movable seat 2.
[0016] Furthermore, two movable grooves three are symmetrically opened on the inner wall of the movable groove two, and the two movable grooves three are connected with a wear contact adjustment part, and the wear contact adjustment part includes two slides two movably connected in the two movable grooves three and symmetrically fixed on both sides of the frame body, a screw rod three rotatably connected in one of the movable grooves three and screwed in one of the slides two, and a guide rod three fixed in the other movable groove three and movably inserted in the other slide two, and one end of the screw rod three passes through the seat body and extends outward.
[0017] A method for using an automated cam slicing mechanism comprises the following steps:
[0018] S1. Motor 1 drives transmission rod 1 and one of cam blocks 1 to rotate. The rotation of transmission rod 1 also drives sprocket 2 and gear 1 through sprocket 1 and chain belt. The rotation of gear 1 drives gear 2 and transmission rod 2 to rotate. The rotation of transmission rod 2 drives the other cam block 1 to rotate. The rotation of the two cam blocks drives one end of two connecting rods 1 to move. Connecting rod 1 can drive slide 1 to perform longitudinal reciprocating motion on slide rail 1, so that the two slides 1 move toward or away from each other. When the two slides 1 move relative to each other, the distance between the two bases and the two blades decreases. The two blades contact the upper and lower sides of the product and slice the product.
[0019] S2. When the power assembly stops working, the cylinder 1 contracts to drive the knife seat and the blade to move, so that a part of the blade is retracted into the movable groove 1 and the cutting edge of the blade is left outside. The cylinder 2 is controlled to extend to move the movable seat 1 inside the frame. After the movable seat 1 is extended from the movable groove 2, the grindstone 1 can contact one side of the blade cutting edge. The motor 2 is controlled to drive the cam block 2 to rotate. The rotation of the cam block 2 drives the movable seat 2 to reciprocate inside the movable seat 1 through the connecting rod 2, so that the grindstone 1 grinds one side of the blade cutting edge.
[0020] S3. After the blade edge is polished by the pair of grinding stones, the driving assembly stops working, the control cylinder three works to retract and drive the grinding stone one to move, the guide rod pair guides the grinding stone one to move, so that the grinding stone one enters the avoidance groove and is stored in the movable seat two, the motor three works to drive the screw rod two to rotate, the screw rod two rotates to drive the slider to move in the movable groove four, so that the grinding stone two moves toward the original position of the grinding stone one, when the grinding stone two moves into place, the grinding stone two contacts one side of the blade edge, the driving assembly starts working, and the blade edge is finely polished with the grinding stone two of different mesh sizes;
[0021] S4. Rotating the screw rod 3 can move the slide 2 in the movable groove 3 to adjust the distance between the frame and the blade, so as to prevent the grinding stone 1 and the grinding stone 2 from being unable to contact the blade edge after being worn.
[0022] Compared with the prior art, the present invention has the following beneficial effects:
[0023] (1) This solution sets two slicing parts symmetrically. The two slicing parts with upper and lower symmetrical design can act on the upper and lower sides of the workpiece at the same time, so that the workpiece is evenly distributed when subjected to external force, and the cutting force is more evenly distributed, which improves the cutting stability and makes more full use of the cutting force. At the same time, the two slicing parts can cover a larger cutting area at the same time, thereby significantly improving the cutting efficiency, avoiding deformation or damage caused by excessive force on one side, reducing the deviation of the slicing position, and also helping to improve the dynamic performance of the mechanism, reduce the impact and vibration caused by rapid reciprocating motion, make the mechanism run more smoothly, and improve the accuracy of slicing.
[0024] (2) This solution provides a sharpening and deblunting component, which can grind the cutting edge of the cutting blade to ensure that the cutting edge of the blade is always in the best condition, reduce the resistance during the cutting process, and thus obtain a smoother and more precise section, improve the accuracy of slicing while reducing the error during the slicing process, improve the quality and consistency of the product, and extend the service life of the blade.
[0025] (3) This solution sets a shift unit, and can adjust the positions of grinding stone one and grinding stone two through cylinder three and motor three, so that grinding stone two moves to the position of grinding stone one. There is no need to manually replace the grinding stone, which reduces the time for replacing the grinding stone and improves the continuity and efficiency of the grinding operation. Grinding stones of different mesh sizes can be seamlessly connected to ensure a smooth and uninterrupted grinding process. Grinding the blade of the cutting blade with grinding stones of different mesh sizes can improve the sharpness and smoothness of the blade, reduce the resistance and friction during cutting, thereby obtaining higher slicing accuracy, reducing damage to the blade, and maintaining the integrity and sharpness of the blade. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1It is a schematic diagram of the overall structure of the present invention;
[0027] Figure 2 This is a schematic diagram of the power assembly structure of the present invention;
[0028] Figure 3 is a cross-sectional view of the seat body of the present invention;
[0029] Figure 4 This is a schematic structural diagram of the sharpening and deblunting assembly of the present invention;
[0030] Figure 5 This is a schematic diagram of the structure of the drive assembly of the present invention;
[0031] Figure 6 This is a schematic structural diagram of the motor 2 of the present invention;
[0032] Figure 7 Schematic diagram of the structure of the shift unit of the present invention;
[0033] Figure 8 This is a schematic structural diagram of the avoidance groove, movable groove four and screw rod two of the present invention;
[0034] Figure 9 It is a schematic diagram of the structure of the slider and the guide rod of the present invention.
[0035] Description of the numbers in the figure:
[0036] 1. Vertical plate; 2. Cam motion unit; 21. Slide rail 1; 22. Slide seat 1; 23. Connecting rod 1; 24. Cam block 1; 25. Positioning plate; 3. Power assembly; 31. Motor 1; 32. Transmission rod 1; 33. Sprocket 1; 34. Chain belt; 35. Sprocket 2; 36. Gear 1; 37. Gear 2; 38. Transmission rod 2; 4. Slicing unit; 41. Base; 42. Blade; 43. Cylinder 1; 44. Movable slot 1; 45. Blade holder; 46. Movable slot 2; 461. Movable slot 3; 47. Sharpening and deblunting assembly; 471. Frame; 472. Cylinder 2; 473. Movable Movable seat one; 474, cavity; 475, cover plate; 48, drive assembly; 481, motor two; 482, cam block two; 483, connecting rod two; 484, slide rail two; 485, connection end; 49, grinding part; 491, movable seat two; 492, grinding stone one; 493, grinding stone two; 494, avoidance groove; 5, shift unit; 51, cylinder three; 52, guide rod one; 53, base; 54, slider; 55, movable groove four; 56, screw rod two; 57, motor three; 58, guide rod two; 6, wear contact adjustment part; 61, slide seat two; 62, guide rod three; 63, screw rod three. DETAILED DESCRIPTION
[0037] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0038] See also Figures 1 to 9 An automated cam slicing mechanism includes a vertical plate 1, two cam moving parts 2 symmetrically connected to one side of the vertical plate 1, and the cam moving part 2 includes two slide rails 21 symmetrically fixed to one side of the vertical plate 1, a slide seat 22 slidably connected to the slide rails 21, a connecting rod 23 rotatably connected to one side of the slide seat 22, and a cam block 24 rotatably connected to the other end of the connecting rod 23;
[0039] The vertical plate 1 is internally connected to a power assembly 3 connected to the two cam blocks 24 and driving the two cam moving parts 2 to move, and the power assembly 3 includes a transmission rod 1 32 and a transmission rod 2 38 rotatably connected to the vertical plate 1, a sprocket 1 33 fixed to the outside of the transmission rod 1 32, a sprocket 2 35 rotatably connected to the vertical plate 1, a chain belt 34 connecting the sprocket 1 33 and the sprocket 2 35, a gear 2 37 fixed to the outside of the transmission rod 2 38, a gear 1 36 rotatably connected to the vertical plate 1 and meshing with the gear 2 37, and one side of the gear 1 36 is fixed to one side of the sprocket 2 35, a motor 1 31 is fixed to one side of the vertical plate 1, two ends of the transmission rod 1 32 are respectively fixed to the output shaft of the motor 1 31 and one side of one of the cam blocks 24, and one end of the transmission rod 2 38 is fixed to one side of the other cam block 24;
[0040] A slicing portion 4 is connected to one side of each of the two slides 22 , and the slicing portion 4 includes a seat body 41 fixed to one side of the slide 22 and a blade 42 arranged inside the seat body 41 .
[0041] Two positioning plates 25 are symmetrically fixed to one side of the vertical plate 1, and through holes are provided inside the two positioning plates 25. The inner walls of the two through holes are connected to bearings. One end of the transmission rod 1 32 and the transmission rod 2 38 pass through the inner ring of the bearing and are respectively fixed to one side of the two cam blocks 1 24, and the outer walls of the transmission rod 1 32 and the transmission rod 2 38 are fixed to the inner wall of the inner ring of the bearing.
[0042] By adopting the above technical solution, the workpiece is transported to between the two blades 42, the control motor 1 31 is operated to drive the transmission rod 1 32 to rotate, the transmission rod 1 32 rotates to drive the sprocket 1 33 to rotate, the sprocket 1 33 rotates through the chain belt 34 to drive the sprocket 2 35, gear 1 36, gear 2 37 and transmission rod 2 38 to rotate, the transmission rod 1 32 and the transmission rod 2 38 rotate synchronously to drive the two cam blocks 1 24 to rotate, the two cam blocks 1 24 rotate to drive one end of the two connecting rods 1 23 to move, and the slide 1 22 can be driven longitudinally on the slide rail 1 21 through the connecting rod 1 23. The reciprocating motion causes the two slides 22 to move toward or away from each other. When the two slides 22 move relative to each other, the distance between the two base bodies 41 and the two blades 42 becomes smaller. The two blades 42 contact the upper and lower sides of the product and slice the product. The two blades 42 act on the upper and lower sides of the workpiece at the same time, so that the workpiece is evenly distributed when subjected to external force, avoiding deformation or damage caused by excessive force on one side, reducing slicing position deviation, and also helping to improve the dynamic performance of the mechanism, reduce the impact and vibration caused by rapid reciprocating motion, make the mechanism run more smoothly, and improve the accuracy of slicing.
[0043] like Figure 3 - Figure 6 As shown, a movable groove 44 is provided inside the two base bodies 41, and a cylinder 43 is fixedly connected to the inner wall of the movable groove 44. A knife seat 45 is slidably connected to the inner wall of the movable groove 44, and the telescopic end of the cylinder 43 is fixedly connected to one side of the knife seat 45. One end of the two blades 42 is fixedly connected to the two knife seats 45 respectively.
[0044] Two movable grooves 2 46 are symmetrically provided inside the two base bodies 41, and a sharpening and blunting assembly 47 is connected to the inside of the movable groove 2 46. The sharpening and blunting assembly 47 includes a frame 471 connected to the inner wall of the movable groove 2 46, a cylinder 2 472 fixed to one side of the frame 471, a movable seat 1 473 slidingly connected to the inside of the frame 471, a cavity 474 provided inside the movable seat 1 473, a cover 475 fixed to one side of the movable seat 1 473, a sharpening part 49 slidingly connected in the cavity 474, and a driving assembly 48 connected to the inside of the cavity 474 for driving the sharpening part 49 to reciprocate in the cavity 474. The telescopic end of the cylinder 2 472 passes through the frame 471 and is fixed to one side of the movable seat 1 473.
[0045] The sharpening portion 49 includes a movable seat 491 movably connected to the cavity 474 and a grinding stone 1 492 and a grinding stone 2 493 connected to the inside of the movable seat 491 .
[0046] The driving assembly 48 includes a cam block 2 482 rotatably connected to the inner wall of the cavity 474, a connecting rod 2 483 rotatably connected to the side of the cam block 1 24, two slide rails 2 484 symmetrically fixed to the inner wall of the cavity 474, and a connecting end 485 fixed to one side of the movable seat 2 491, and one side of the connecting end 485 is rotatably connected to the other end of the connecting rod 2 483, the movable seat 2 491 is slidably connected to the two slide rails 2 484, the outer surface of one side of the movable seat 1 473 is fixed with a motor 2 481, and the output shaft of the motor 2 481 passes through the movable seat 1 473 and is fixed to one side of the cam block 2 482.
[0047] By adopting the above technical solution, the cylinder 1 43 works and contracts to drive the knife seat 45 and the blade 42 to move, so that part of the blade 42 is retracted into the movable groove 1 44 and the cutting edge of the blade 42 is left outside, the control cylinder 2 472 works and extends and makes the movable seat 1 473 move inside the frame 471, after the movable seat 1 473 extends from the movable groove 2 46, the grindstone 1 492 can contact one side of the cutting edge of the blade 42, the control motor 2 481 works to drive the cam block 2 482 to rotate, and the rotation of the cam block 2 482 drives the movable seat 2 491 to reciprocate inside the movable seat 1 473 through the connecting rod 2 483, so that the grindstone 1 492 grinds one side of the cutting edge of the blade 42, ensuring that the cutting edge of the blade 42 is always in the best condition, reducing the resistance during the cutting process, thereby obtaining a smoother and more precise section, improving the slicing accuracy while reducing the error during the slicing process, improving the quality and consistency of the product, and extending the service life of the blade 42.
[0048] like Figure 7 - Figure 9 As shown, the movable seat 2 491 is also connected to a shift unit 5 for adjusting the position of the grinding stone 1 492 and the grinding stone 2 493, and the shift unit 5 includes a base 53 fixed to one side of the grinding stone 1 492, a cylinder 3 51 fixed to the movable seat 2 491, two movable grooves 4 55 symmetrically opened inside the movable seat 2 491 and a avoidance groove 494 connected to the two movable grooves 4 55, two sliders 54 symmetrically fixed to both sides of the grinding stone 2 493 and respectively slidably connected to the two movable grooves 4 55, a screw rod 2 56 rotatably connected to one of the movable grooves 4 55 and screwed into one of the sliders 54, and a guide rod 2 58 fixed in the other movable groove 4 55 and movably inserted into the other slider 54, a motor 3 57 is fixed to the outer surface of one side of the movable seat 2 491, and the output shaft of the motor 3 57 passes through the movable seat 2 491 and is fixed to the screw rod 2 56, and the telescopic end of the cylinder 3 51 is fixed to one side of the base 53.
[0049] Two guide holes are symmetrically provided inside the base 53 , and two guide rods 52 are movably inserted into the two guide holes. One end of the two guide rods is fixedly connected to the inner wall of the movable seat 491 .
[0050] By adopting the above technical solution, after the grinding of the blade 42 is completed by the grinding stone 1 492, the driving component 48 stops working, the control cylinder 3 51 works and contracts to drive the grinding stone 1 492 to move, the guide rod 1 52 guides the movement of the grinding stone 1 492, so that the grinding stone 1 492 enters the avoidance groove 494 and is received into the movable seat 2 491, the motor 3 57 works to drive the screw rod 2 56 to rotate, the screw rod 2 56 rotates to drive the slider 54 to move in the movable groove 4 55, so that the grinding stone 2 493 moves toward the original position of the grinding stone 1 492, and when the grinding stone 2 493 moves into place, the grinding stone 2 493 and the movable seat 2 491 are connected. When one side of the cutting edge of the blade 42 is in contact, the drive assembly 48 starts working and uses grindstones 493 of different mesh sizes to fine-grind the cutting edge of the blade 42. On the one hand, it can replace manual labor to realize the automatic operation of changing grindstones, thereby improving the continuity and efficiency of the grinding operation. Grindstones of different mesh sizes can be seamlessly connected to ensure a smooth and uninterrupted grinding process. On the other hand, grinding the edge of the cutting blade 42 with grindstones of different mesh sizes can improve the sharpness and smoothness of the blade 42, reduce resistance and friction during cutting, thereby obtaining higher slicing accuracy, reducing damage to the blade, and maintaining the integrity and sharpness of the blade.
[0051] like Figure 3 and Figure 4 As shown, two movable grooves three 461 are symmetrically opened on the inner wall of the movable groove two 46, and the two movable grooves three 461 are connected with a wear contact adjustment part 6, and the wear contact adjustment part 6 includes two slides two 61 movably connected in the two movable grooves three 461 and symmetrically fixed on both sides of the frame 471, a screw rod three 63 rotatably connected in one of the movable grooves three 461 and screwed in one of the slides two 61, and a guide rod three 62 fixed in the other movable groove three 461 and movably inserted in the other slide two 61, and one end of the screw rod three 63 passes through the seat body 41 and extends outward.
[0052] By adopting the above technical solution, rotating the screw rod three 63 can make the slide seat two 61 move in the movable groove three 461, and adjust the distance between the frame 471 and the blade 42 to avoid the grinding stone one 492 and the grinding stone two 493 from being unable to contact the cutting edge of the blade 42 after being worn. After the grinding stone one 492 and the grinding stone two 493 have been grinding the blade 42 for a long time, wear areas will appear on the grinding stone one 492 and the grinding stone two 493. If the positions of the grinding stone one 492 and the grinding stone two 493 are not adjusted, the grinding stone one 492 and the grinding stone two 493 will not be able to contact the blade 42 and grinding cannot be achieved. This design can also make full use of the grinding stone one 492 and the grinding stone two 493 to avoid waste. At the same time, it can also adjust the pressure of the grinding stone one 492 and the grinding stone two 493 on the blade 42. Appropriate pressure can ensure that the blade is evenly and carefully processed during the grinding process, thereby maintaining the sharpness of the blade and improving the grinding efficiency.
[0053] Instructions for use: S1. The motor 31 drives the transmission rod 32 and one of the cam blocks 24 to rotate. The rotation of the transmission rod 32 also drives the sprocket 33 and the chain belt 34 to drive the sprocket 2 35 and the gear 1 36 to rotate. The rotation of the gear 36 drives the gear 2 37 and the transmission rod 2 38 to rotate. The rotation of the transmission rod 2 38 drives the other cam block 24 to rotate. The rotation of the two cam blocks 24 drives one end of the two connecting rods 23 to move. The connecting rod 23 can drive the slide 22 to perform longitudinal reciprocating motion on the slide rail 21, so that the two slides 22 move toward or away from each other. When the two slides 22 move relative to each other, the distance between the two bases 41 and the two blades 42 becomes smaller. The two blades 42 contact the upper and lower sides of the product and slice the product.
[0054] S2. When the power assembly 3 stops working, the cylinder 1 43 contracts to drive the knife seat 45 and the blade 42 to move, so that a part of the blade 42 is retracted into the movable groove 1 44 and the cutting edge of the blade 42 is left outside. The cylinder 2 472 is controlled to extend to move the movable seat 1 473 inside the frame 471. After the movable seat 1 473 extends from the movable groove 2 46, the grindstone 1 492 can contact one side of the cutting edge of the blade 42. The motor 2 481 is controlled to drive the cam block 2 482 to rotate. The rotation of the cam block 482 drives the movable seat 2 491 to reciprocate inside the movable seat 1 473 through the connecting rod 2 483, so that the grindstone 1 492 grinds one side of the cutting edge of the blade 42.
[0055] S3. After the grinding of the blade 42 edge by the grinding stone 1 492 is completed, the driving assembly 48 stops working, and the control cylinder 3 51 works and contracts to drive the grinding stone 1 492 to move, and the guide rod 1 52 guides the movement of the grinding stone 1 492, so that the grinding stone 1 492 enters the avoidance groove 494 and is received into the movable seat 2 491. The motor 3 57 works to drive the screw rod 2 56 to rotate, and the screw rod 2 56 rotates to drive the slider 54 to move in the movable groove 4 55, so that the grinding stone 2 493 moves toward the original position of the grinding stone 1 492. When the grinding stone 2 493 moves into place, the grinding stone 2 493 contacts one side of the blade 42 edge, and the power assembly 3 starts working to fine-grind the blade 42 edge with the grinding stone 2 493 of different mesh sizes;
[0056] S4. Rotating the screw rod 3 63 can move the slide 2 61 in the movable groove 3 461 to adjust the distance between the frame 471 and the blade 42 to prevent the grinding stone 1 492 and the grinding stone 2 493 from being unable to contact the cutting edge of the blade 42 after being worn.
[0057] The above description is merely a preferred embodiment of the present invention; however, the scope of protection of the present invention is not limited thereto. Any person skilled in the art who, within the technical scope disclosed by the present invention, makes equivalent substitutions or modifications based on the technical solutions and improved concepts of the present invention shall be covered by the scope of protection of the present invention.
Claims
1. An automated cam slicing mechanism, comprising a vertical plate (1), characterized in that: Two cam motion parts (2) are symmetrically connected to one side of the vertical plate (1), and the cam motion part (2) includes two slide rails (21) symmetrically fixed to one side of the vertical plate (1), a slide seat (22) slidably connected to the slide rails (21), a connecting rod (23) rotatably connected to one side of the slide seat (22), and a cam block (24) rotatably connected to the other end of the connecting rod (23); The vertical plate (1) is internally connected to a power assembly (3) connected to the two cam blocks (24) and driving the two cam moving parts (2) to move, and the power assembly (3) includes a transmission rod (32) and a transmission rod (38) rotatably connected to the vertical plate (1), a sprocket (33) fixed to the outside of the transmission rod (32), a sprocket (35) rotatably connected to the vertical plate (1), a chain belt (34) connecting the sprocket (33) and the sprocket (35), and a chain belt (34) fixed to the transmission rod (38). 38) external gear 2 (37), gear 1 (36) rotatably connected to the interior of the vertical plate (1) and meshing with gear 2 (37), and one side of gear 1 (36) is fixedly connected to one side of sprocket 2 (35), one side of the vertical plate (1) is fixedly connected to motor 1 (31), both ends of the transmission rod 1 (32) are respectively fixedly connected to the output shaft of motor 1 (31) and one side of one cam block 1 (24), and one end of the transmission rod 2 (38) is fixedly connected to one side of the other cam block 1 (24); One side of each of the two slides (22) is connected to a slicing portion (4), and the slicing portion (4) comprises a seat body (41) fixed to one side of the slide (22) and a blade (42) arranged inside the seat body (41); Two movable grooves (46) are symmetrically provided inside the two base bodies (41), and a sharpening and blunting assembly (47) is connected inside the movable groove (46). The sharpening and blunting assembly (47) includes a frame (471) connected to the inner wall of the movable groove (46), a cylinder (472) fixed to one side of the frame (471), a movable seat (473) slidably connected inside the frame (471), a cavity (474) provided inside the movable seat (473), a cover (475) fixed to one side of the movable seat (473), a sharpening portion (49) slidably connected in the cavity (474), and a driving assembly (48) connected inside the cavity (474) for driving the sharpening portion (49) to reciprocate in the cavity (474). The telescopic end of the cylinder (472) passes through the frame (471) and is fixed to one side of the movable seat (473). The sharpening portion (49) includes a movable seat (491) movably connected to the cavity (474) and a first grinding stone (492) and a second grinding stone (493) connected to the interior of the movable seat (491); The movable seat 2 (491) is also connected to a displacement unit (5) for adjusting the position of the grinding stone 1 (492) and the grinding stone 2 (493), and the displacement unit (5) includes a base (53) fixed to one side of the grinding stone 1 (492), a cylinder 3 (51) fixed to the inside of the movable seat 2 (491), two movable grooves 4 (55) symmetrically opened in the inside of the movable seat 2 (491) and a avoidance groove (494) connected to the two movable grooves 4 (55), and a symmetrically fixed on both sides of the grinding stone 2 (493) and respectively slidably connected to the two movable grooves 4. (55), two sliders (54) in the movable seat (55), a screw rod (56) rotatably connected to one of the movable slots (55) and screwed in one of the sliders (54), a guide rod (58) fixed in the other movable slot (55) and movably inserted in the other slider (54), a motor (57) is fixed to the outer surface of one side of the movable seat (491), and the output shaft of the motor (57) passes through the movable seat (491) and is fixed to the screw rod (56), and the telescopic end of the cylinder (51) is fixed to one side of the base (53); Two guide holes are symmetrically provided inside the base (53), and two guide rods (52) are movably inserted into the two guide holes, and one end of the two guide rods is fixedly connected to the inner wall of the movable seat (491); The inner wall of the movable groove 2 (46) is symmetrically provided with two movable grooves 3 (461), and the two movable grooves 3 (461) are connected with a wear contact adjustment part (6), the wear contact adjustment part (6) includes two slides 2 (61) movably connected in the two movable grooves 3 (461) and symmetrically fixed on both sides of the frame (471), a screw rod 3 (63) rotatably connected in one of the movable grooves 3 (461) and screwed in one of the slides 2 (61), and a guide rod 3 (62) fixed in the other movable groove 3 (461) and movably inserted in the other slide 2 (61), and one end of the screw rod 3 (63) passes through the seat body (41) and extends outward.
2. The automatic cam slicing mechanism according to claim 1, characterized in that: Two positioning plates (25) are symmetrically fixed to one side of the vertical plate (1), and through holes are provided inside the two positioning plates (25). The inner walls of the two through holes are connected to bearings. One end of the transmission rod 1 (32) and the transmission rod 2 (38) pass through the inner ring of the bearing and are fixed to one side of the two cam blocks 1 (24) respectively, and the outer walls of the transmission rod 1 (32) and the transmission rod 2 (38) are fixed to the inner wall of the inner ring of the bearing.
3. The automatic cam slicing mechanism according to claim 2, characterized in that: A movable groove (44) is provided inside each of the two base bodies (41), and a cylinder (43) is fixedly connected to the inner wall of the movable groove (44). A knife seat (45) is slidably connected to the inner wall of the movable groove (44), and the telescopic end of the cylinder (43) is fixedly connected to one side of the knife seat (45). One end of the two blades (42) is fixedly connected to the two knife seats (45) respectively.
4. The automatic cam slicing mechanism according to claim 3, characterized in that: The driving assembly (48) includes a cam block 2 (482) rotatably connected to the inner wall of the cavity (474), a connecting rod 2 (483) rotatably connected to the side of the cam block 1 (24), two slide rails 2 (484) symmetrically fixed to the inner wall of the cavity (474), and a connecting end (485) fixed to one side of the movable seat 2 (491), and one side of the connecting end (485) is rotatably connected to the other end of the connecting rod 2 (483), the movable seat 2 (491) is slidably connected to the two slide rails 2 (484), the outer surface of one side of the movable seat 1 (473) is fixed with a motor 2 (481), and the output shaft of the motor 2 (481) passes through the movable seat 1 (473) and is fixed to one side of the cam block 2 (482).
5. A method for using an automated cam slicing mechanism, the method being applicable to the automated cam slicing mechanism according to claim 4, characterized in that: The following steps are involved: S1. The motor 1 (31) drives the transmission rod 1 (32) and one of the cam blocks 1 (24) to rotate. The transmission rod 1 (32) rotates and drives the sprocket 2 (35) and the gear 1 (36) to rotate through the sprocket 1 (33) and the chain belt (34). The gear 1 (36) rotates and drives the gear 2 (37) and the transmission rod 2 (38). The transmission rod 2 (38) rotates and drives the other cam block 1 (24). The two cam blocks 1 (24) rotate and drive one end of the two connecting rods 1 (23) to move. The connecting rod 1 (23) can drive the slide 1 (22) to perform longitudinal reciprocating motion on the slide rail 1 (21), so that the two slides 1 (22) move toward or away from each other. When the two slides 1 (22) move relative to each other, the distance between the two base bodies (41) and the two blades (42) becomes smaller. The two blades (42) contact the upper and lower sides of the product and slice the product. S2. When the power assembly (3) stops working, the cylinder 1 (43) works to retract and drive the knife seat (45) and the blade (42) to move, so that a part of the blade (42) is retracted into the movable groove 1 (44) and the cutting edge of the blade (42) is left outside, the cylinder 2 (472) is controlled to work to extend and move the movable seat 1 (473) inside the frame (471), after the movable seat 1 (473) extends from the movable groove 2 (46), the grinding stone 1 (492) can contact one side of the cutting edge of the blade (42), the motor 2 (481) is controlled to work to drive the cam block 2 (482) to rotate, and the cam block 2 (482) rotates and drives the movable seat 2 (491) to reciprocate inside the movable seat 1 (473) through the connecting rod 2 (483), so that the grinding stone 1 (492) grinds one side of the cutting edge of the blade (42); S3. After the grinding of the blade (42) is completed by the grinding stone (492), the driving assembly (48) stops working, the control cylinder (51) works to shrink and drive the grinding stone (492) to move, the guide rod (52) guides the movement of the grinding stone (492), so that the grinding stone (492) enters the avoidance groove (494) and is received inside the movable seat (491), the motor (57) works to drive the screw rod (56) to rotate, the screw rod (56) rotates and drives the slider (54) to move in the movable groove (55), so that the grinding stone (493) moves toward the original position of the grinding stone (492), when the grinding stone (493) moves to the position, the grinding stone (493) contacts one side of the blade (42), and the driving assembly (48) starts working, and the grinding stone (493) with different mesh sizes is used to finely grind the blade (42); S4, rotating the screw rod three (63) can make the slide seat two (61) move in the movable groove three (461), adjust the distance between the frame (471) and the blade (42), and prevent the grinding stone one (492) and the grinding stone two (493) from being unable to contact the cutting edge of the blade (42) after being worn.
Citation Information
Patent Citations
Automatic cam slicing device
CN214023786U
Cam cutting mechanism
CN218080654U
Blade storage unit and method for operating same
EP3663044A1