Intelligent piece separating device capable of continuously separating pieces
By designing a continuous piece of intelligent sharding device, using a movable plate to level the edge of the puff block, and by launching components and driving components, the problem of shard failure caused by the edge of the puff block is solved, and the accurate sharding and continuous operation of the puff block is achieved.
Patent Information
- Application Number
- CN202510459215.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-04-14
AI Technical Summary
When a whole stack of sponge puffs is placed in the silo of a conventional shard machine, the edges of the puffs are easily raised, resulting in failure of sharding operations.
An intelligent sharding device that can be continuously sharded is designed, including a movable board, an integrated push-out component and a driving component. The movable plate is moved downward to flatten the puff block raised on the edge, and the pushing component uses a telescopic cylinder to push the puff block, and drives the movable plate to move up and down by driving the component to realize the continuous fragmentation of the puff block.
It effectively avoids the failure of the piece pieces caused by the upward curling of the end of the puff block, and by reducing the friction, it ensures that the piece pieces can accurately move to the upper side of the bottom plate, achieving continuous piece pieces operation.
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Figure CN119976426A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of powder puff processing, and more specifically, to an intelligent slicing device capable of continuous slicing. Background Art
[0002] Sponge puffs are common makeup tools. During their production and processing, a slicer is needed to push the stacked sponge puffs one by one into a jig for the next process. However, sheet sponge puffs are light and have high friction. When a whole stack of sponge puffs is placed in the hopper of a conventional slicer, the edge of the sponge puff will rub against the inner wall of the hopper, causing the edge of the sponge puff to warp upward. After the edge of the sponge puff warps upward, its highest point is higher than the discharge port of the hopper of the slicer, causing the sponge puff to get stuck while the slicer is pushing it out, resulting in failure of the slice operation. Summary of the invention
[0003] In order to overcome the disadvantage that when a whole stack of powder puffs is placed in a material bin of a conventional slicing machine, the edges of the powder puffs are tilted upward, resulting in failure of the slicing operation, the present invention provides an intelligent slicing device capable of continuous slicing. Technical Solution
[0004] The invention discloses an intelligent slicing device capable of continuous slicing, comprising a bottom plate, a side plate one and a side plate two; the side plate one is fixedly connected to the bottom plate; the side plate two is fixedly connected to the bottom plate; the device also comprises a movable plate one, a pushing component and a driving component; the side plate one and the side plate two are both slidably connected to a movable plate one, and the movable plate one is slidably connected to the bottom plate; the pushing component is installed on the bottom plate, and the pushing component is used for pushing out a powder puff block; the driving component is connected to the bottom plate, and the driving component is used for driving the movable plate one to move up and down.
[0005] As an improvement of the above solution, the pushing component includes a telescopic cylinder and a push plate; the telescopic cylinder is fixedly connected to the bottom plate; the telescopic end of the telescopic cylinder is fixedly connected to the push plate, and the push plate is slidably connected to the bottom plate.
[0006] As an improvement of the above scheme, the driving assembly includes a motor, a gear and a rack; a plurality of motors are fixedly connected to the base plate; a gear is fixedly connected to the output shaft of each motor; a rack is fixedly connected to each movable plate, and the rack meshes with the corresponding gear.
[0007] As an improvement of the above scheme, it also includes an auxiliary component; the auxiliary component is connected to the movable plate 1; the auxiliary component includes a protrusion and a push plate 2; each movable plate 1 is fixed with a number of protrusions; all the protrusions are commonly plugged with a push plate 2, and the push plate 2 is in contact with the movable plate 1.
[0008] As an improvement of the above solution, a chamfer is provided on the protrusion.
[0009] As an improvement of the above solution, a plurality of flanges are provided on the push plate 2.
[0010] As an improvement of the above scheme, it also includes a movable plate 2 and a linkage unit; each movable plate 1 is slidably connected to a plurality of movable plates 2; the movable plate 1 is connected to the linkage unit, and the linkage unit is used to drive the movable plate 2 to move up and down.
[0011] As an improvement of the above scheme, the linkage unit includes an elastic telescopic rod 1, an elastic telescopic rod 2, a connecting rod and a linkage block; a plurality of elastic telescopic rods 1 are fixedly connected to the bottom plate, and the telescopic end of the elastic telescopic rod 1 is fixedly connected to the corresponding movable plate 2; a plurality of elastic telescopic rods 2 are fixedly connected to each movable plate 1; a connecting rod is provided on the side of each movable plate 2, and the connecting rod is fixedly connected to the telescopic end of the corresponding elastic telescopic rod 2; a plurality of linkage blocks are fixedly connected to each connecting rod, and the linkage blocks cooperate with the corresponding movable plate 2.
[0012] As an improvement to the above solution, rounded corners are provided on the linkage block.
[0013] As an improvement to the above solution, the linkage block is made of wear-resistant material.
[0014] Compared with the prior art, the present invention has the following advantages: 1. The powder puff block with raised edges is leveled by the movable plate 1, thereby avoiding the problem of slicing failure caused by the upwardly raised end of the powder puff block. At the same time, the movable plate 1 used for leveling the powder puff block with raised edges can also be used to cooperate with the push plate 2 to push all the powder puff blocks between the side plates 1 and 2 to move downward, so that the bottom powder puff block can accurately move to the upper side of the bottom plate at this time, thereby avoiding the powder puff block from being unable to slide down to the bottom plate due to excessive friction, thereby avoiding slicing failure; Second, before the bottom puff block is pushed out, the movable plate 2 applies an upward friction force to all the puff blocks except the bottom one to counteract gravity, thereby greatly reducing the friction between the bottom puff block and the puff block above it, avoiding the problem of failure of the puff block to be pushed out due to excessive friction, thereby avoiding interference with the slicing operation. In addition, the driving force of the movable plate 2 comes from the movable plate 1, and there is no need to use additional electric controls, and the structure is ingenious.
[0015] The present invention also has the following beneficial effects: The linkage block is provided with rounded corners, so that the linkage block can slide over the lower part of the second movable plate more smoothly. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 A schematic diagram of the first viewing angle structure of the intelligent slicing device capable of continuous slicing according to the present invention is shown; Figure 2A second viewing angle structural schematic diagram of the intelligent slicing device capable of continuous slicing according to the present invention is shown; Figure 3 A schematic diagram of the structure of the drive assembly of the present invention is shown; Figure 4 A schematic diagram of the structure of the auxiliary component of the present invention is shown; Figure 5 The structure schematic diagram of the movable plate 2 of the present invention is shown; Figure 6 The schematic diagram of the structure of the linkage unit of the present invention is shown.
[0017] The reference numerals in the figure are as follows: 1-bottom plate, 2-side plate one, 3-side plate two, 4-movable plate one, 5-puff block, 201-telescopic cylinder, 202-push plate one, 203-motor, 204-gear, 205-rack, 206-bump, 207-push plate two, 208-movable plate two, 209-elastic telescopic rod one, 2010-elastic telescopic rod two, 2011-connecting rod, 2012-linkage block. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0019] Embodiment 1: A smart slicing device capable of continuous slicing, such as Figure 1-Figure 4 As shown, it includes a bottom plate 1, a side plate 2 and a side plate 3; the bottom plate 1 is bolted with the side plate 2, and the bottom plate 1 is set to an alloy material; the bottom plate 1 is bolted with the side plate 3; it also includes a movable plate 4, a push-out assembly and a driving assembly; the side plates 1 2 and 2 3 are both slidably connected with a movable plate 4, and the movable plate 4 is slidably connected to the bottom plate 1; the bottom plate 1 is installed with a push-out assembly; the bottom plate 1 is connected with a driving assembly.
[0020] The push-out assembly includes a telescopic cylinder 201 and a push plate 202; the telescopic cylinder 201 is bolted to the bottom plate 1; the telescopic end of the telescopic cylinder 201 is bolted to the push plate 202, and the push plate 202 is slidably connected to the bottom plate 1.
[0021] The driving assembly includes a motor 203, a gear 204 and a rack 205; two motors 203 are bolted to the bottom plate 1; the output shaft of each motor 203 is fixedly connected to a gear 204, and the gear 204 is set to an alloy material; each movable plate 4 is bolted to a rack 205, and the rack 205 is meshed with the corresponding gear 204, the motor 203 drives the gear 204 to rotate, and the gear 204 drives the rack 205 to move in the vertical direction.
[0022] It also includes an auxiliary component; an auxiliary component is connected to the movable plate 4; the auxiliary component includes a protrusion 206 and a push plate 207; each movable plate 4 is fixed with two protrusions 206; all protrusions 206 are commonly plugged with a push plate 207, the push plate 207 is in contact with the movable plate 4, and the puff block 5 is pushed to move through the push plate 207.
[0023] The protrusion 206 is provided with a chamfer, so that the protrusion 206 is more easily inserted into the second push plate 207 .
[0024] The push plate 207 is provided with two flanges, so that the push plate 207 can be pulled out manually by applying force from the flanges, which is conducive to improving convenience.
[0025] The working principle of the above embodiment is as follows: The powder puff block 5 is made of sponge, which is light and has high friction. The bottom plate 1 is installed on the factory rack. A whole stack of powder puff blocks 5 is manually placed between the side plate 1 2 and the side plate 2 3 from top to bottom. The powder puff block 5 is limited by the bending parts on the front and back sides of the side plates 1 2 and 2 3. The bottom powder puff block 5 is aligned with the notch on the lower side of the bending part of the side plates 1 2 and 2 3. The height of the notch on the lower side of the bending part of the side plates 1 2 and 2 3 is slightly higher than the height of the upper side of the bottom powder puff block 5. The external jig is moved to the rear of the bottom plate 1 by the external conveying mechanism, and the powder puff block 5 is During the process of inserting the powder puff block 5 between the side panels 1 2 and 2 3, the powder puff block 5 will slide on the surfaces of the side panels 1 2, 2 3 and the movable panel 1 4 and generate an upward friction force, so that the left and right sides of the powder puff block 5 will be tilted upward and exceed the gaps on the lower sides of the bending parts of the side panels 1 2 and 2 3. During the process of stamping and cutting the powder puff block 5 from the stacked sponge blocks, the edge of the powder puff block 5 will also be tilted. At this time, the motor 203 is started, the motor 203 drives the gear 204 to rotate, the gear 204 drives the rack 205 to move downward, and the rack 205 drives the movable panel 1 4 downward The movable plate 1 4 moves downward relative to the powder puff block 5. During this process, the movable plate 1 4 applies a downward friction force to the powder puff block 5, and the friction force drives the edge of the powder puff block 5 to move downward, so that the powder puff block 5 is restored to a flat state, so that the powder puff block 5 is aligned with the notch on the lower side of the bending portion of the side plate 1 2 and the side plate 2 3. Then, the telescopic cylinder 201 is started, and the telescopic cylinder 201 drives the push plate 1 202 to move backward. The push plate 1 202 pushes the lowest powder puff block 5 to move backward, while the other powder puff blocks 5 are blocked by the bending portions of the side plate 1 2 and the side plate 2 3. , so that the push plate 1 202 pushes the lowest powder puff block 5 backwards into the external fixture alone, avoiding the problem of slicing failure caused by the upward tilting of the end of the powder puff block 5, and then, the telescopic cylinder 201 drives the push plate 1 202 to move forward back to its original position, and all the powder puff blocks 5 between the side plate 1 2 and the side plate 2 3 fall under the action of gravity until the lowest powder puff block 5 contacts the bottom plate 1 at this time, completing the slicing operation of the powder puff block 5, and then the external conveying mechanism conveys another external fixture to the rear of the bottom plate 1, and repeats the above operation to realize the continuous slicing operation of the powder puff block 5.
[0026] Due to the large surface roughness of the powder puff block 5, when the push plate 1 202 pushes the powder puff block 5 out and moves it back to its original position, the powder puff block 5 between the side plate 1 2 and the side plate 2 3 may not be able to slide down onto the bottom plate 1 due to excessive friction, thereby causing the next slice separation to fail. Therefore, the push plate 207 is manually pulled off from the protrusion 206, and then a whole stack of powder puff blocks 5 are placed between the side plate 1 2 and the side plate 2 3, and then the push plate 207 is reinserted onto the protrusion 206. When the push plate 1 202 pushes the powder puff block 5 out and moves it back to its original position, the motor 203 is started, the motor 203 drives the gear 204 to rotate, the gear 204 drives the rack 205 to move downward, and the rack 205 drives The movable plate 14 moves downward, the movable plate 14 drives the protrusion 206 to move downward, the protrusion 206 drives the push plate 207 to move downward, and the push plate 207 drives all the powder puff blocks 5 between the side plate 1 2 and the side plate 2 3 to move downward, so that the powder puff block 5 at the bottom can accurately move to the upper side of the bottom plate 1 at this time, that is, the movable plate 14 used to level the powder puff block 5 with the raised edge can also be used to cooperate with the push plate 207 to push all the powder puff blocks 5 between the side plate 1 2 and the side plate 2 3 to move downward, so that the powder puff block 5 at the bottom can accurately move to the upper side of the bottom plate 1 at this time, avoiding the powder puff block 5 from being unable to slide down onto the bottom plate 1 due to excessive friction, thereby avoiding failure of slicing.
[0027] According to the above working principle, we know that the present invention has the following effects: The powder puff block 5 with raised edges is leveled by the movable plate 1 4, thereby avoiding the problem of slicing failure caused by the upwardly raised end of the powder puff block 5. At the same time, the movable plate 1 4 used to level the powder puff block 5 with raised edges can also be used to cooperate with the push plate 2 207 to push all the powder puff blocks 5 between the side plate 1 2 and the side plate 2 3 to move downward, so that the lowest powder puff block 5 can accurately move to the upper side of the bottom plate 1 at this time, avoiding the powder puff block 5 from being unable to slide down onto the bottom plate 1 due to excessive friction, thereby avoiding slicing failure.
[0028] Embodiment 2: on the basis of embodiment 1, as Figure 5 and Figure 6 As shown, it also includes a movable plate 208 and a linkage unit; each movable plate 1 4 is slidably connected to two movable plates 208; and the movable plate 1 4 is connected to a linkage unit.
[0029] The linkage unit includes an elastic telescopic rod 1 209, an elastic telescopic rod 2010, a connecting rod 2011 and a linkage block 2012; eight elastic telescopic rods 1 209 are bolted to the bottom plate 1, and the telescopic ends of the elastic telescopic rods 1 209 are fixedly connected to the corresponding movable plates 208; six elastic telescopic rods 2010 are fixedly connected to each movable plate 1 4; a connecting rod 2011 is arranged on the side of each movable plate 208, and the connecting rod 2011 is fixedly connected to the telescopic end of the corresponding elastic telescopic rod 2 2010, and the connecting rod 2011 is set to an alloy material; a number of linkage blocks 2012 are fixedly connected to each connecting rod 2011.
[0030] The linkage block 2012 is provided with rounded corners, so that the linkage block 2012 can slide over the lower part of the movable plate 208 more smoothly.
[0031] The linkage block 2012 is made of wear-resistant material to reduce wear.
[0032] The working principle of the above embodiment is as follows: In the process described in Example 1, when the push plate 1 202 pushes the bottom powder puff block 5 to move: The gravity of the puff blocks 5 except the lowest one acts on the lowest puff block 5, resulting in that when the lowest puff block 5 moves backward, it will generate a large friction force with the puff block 5 above it, so that the puff block 5 cannot be smoothly pushed out and is stuck. Therefore, when the movable plate 1 4 is controlled by the motor 203 to move downward, the movable plate 1 4 drives the elastic telescopic rod 2 2010, the connecting rod 2011 and the linkage block 2012 to move downward at the same time, and the linkage block 2012 pushes the movable plate 2 208 to move downward and compresses the elastic telescopic rod 1 209. When the elastic telescopic rod 1 209 is compressed to the limit position, the movable plate 1 4 drives the elastic telescopic rod 2 2010, the connecting rod 2011 and the linkage block 2012 to continue to move downward, while the movable plate 2 208 connected to the elastic telescopic rod 1 209 cannot continue to move downward. At this time, the position of the movable plate 208 is still high. The puff block 5 at the bottom makes the movable plate 208 force the linkage block 2012 to move horizontally and compress the elastic telescopic rod 2010. When the linkage block 2012 passes the bent portion on the lower side of the movable plate 208, the linkage block 2012 stops limiting the movable plate 208. At this time, the movable plate 1 4 just completes the leveling operation of the puff block 5 and stops moving, so that the elastic telescopic rod 1 209 rebounds and drives the movable plate 208 to move upward, so that the movable plate 208 applies an upward friction force to all the puff blocks 5 except the bottom one to counteract gravity, so that the gravity acting on the bottom puff block 5 decreases, thereby reducing the friction between the bottom puff block 5 and the puff block 5 above it, avoiding the problem that the puff block 5 cannot be smoothly pushed out due to excessive friction and is stuck, thereby avoiding interference with the segmentation operation.
[0033] According to the above working principle, we know that the present invention has the following effects: Before the bottom puff block 5 is pushed out, the movable plate 208 applies an upward friction force to all the puff blocks 5 except the bottom one to counteract gravity, thereby greatly reducing the friction between the bottom puff block 5 and the puff block 5 above it, avoiding the problem of the puff block 5 being unable to be pushed out smoothly and getting stuck due to excessive friction, thereby avoiding interference with the slice operation. In addition, the driving force of the movable plate 208 comes from the movable plate 1 4, and there is no need to use additional electrical controls, with an ingenious structure.
[0034] On the basis of the above technical effects, the present invention also has the following advantages: The linkage block 2012 is provided with rounded corners, so that the linkage block 2012 can slide over the lower part of the movable plate 208 more smoothly.
[0035] The above is a detailed introduction to the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. At the same time, for general technical personnel in this field, according to the idea of the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.
Claims
1. An intelligent slicing device capable of continuous slicing, comprising a bottom plate (1); a first side plate (2) fixedly connected to the bottom plate (1); a second side plate (3) fixedly connected to the bottom plate (1); wherein: The invention also comprises a movable plate 1 (4), an ejection assembly and a driving assembly; the side plate 1 (2) and the side plate 2 (3) are both slidably connected to a movable plate 1 (4), and the movable plate 1 (4) is slidably connected to the bottom plate (1); the bottom plate (1) is provided with an ejection assembly, and the ejection assembly is used to eject the powder puff block (5); the bottom plate (1) is connected to a driving assembly, and the driving assembly is used to drive the movable plate 1 (4) to move up and down.
2. The intelligent slicing device capable of continuous slicing according to claim 1, characterized in that: The push-out assembly comprises a telescopic cylinder (201); the telescopic cylinder (201) is fixedly connected to the bottom plate (1); a push plate 1 (202) is fixedly connected to the telescopic end of the telescopic cylinder (201); and the push plate 1 (202) is slidably connected to the bottom plate (1).
3. The intelligent slicing device capable of continuous slicing according to claim 2, characterized in that: The driving assembly comprises a motor (203); a plurality of motors (203) are fixedly connected to the bottom plate (1); an output shaft of each motor (203) is fixedly connected to a gear (204); and each movable plate (4) is fixedly connected to a rack (205), the rack (205) being meshed with the corresponding gear (204).
4. The intelligent slicing device capable of continuous slicing according to claim 3, characterized in that: It also includes an auxiliary component; the auxiliary component is connected to the movable plate one (4); the auxiliary component includes a protrusion (206); each movable plate one (4) is fixedly connected to a plurality of protrusions (206); all the protrusions (206) are commonly plugged with a push plate two (207), and the push plate two (207) is in contact with the movable plate one (4).
5. The intelligent slicing device capable of continuous slicing according to claim 4, characterized in that: The projection (206) is provided with a chamfer.
6. The intelligent slicing device capable of continuous slicing according to claim 4, characterized in that: A plurality of flanges are arranged on the push plate 2 (207).
7. The intelligent slicing device capable of continuous slicing according to claim 6, characterized in that: It also includes a movable plate 2 (208); each movable plate 1 (4) is slidably connected to a plurality of movable plates 2 (208); the movable plate 1 (4) is connected to a linkage unit, and the linkage unit is used to drive the movable plate 2 (208) to move up and down.
8. The intelligent slicing device capable of continuous slicing according to claim 7, characterized in that: The linkage unit comprises an elastic telescopic rod one (209); a plurality of elastic telescopic rods one (209) are fixedly connected to the bottom plate (1), and the telescopic end of the elastic telescopic rod one (209) is fixedly connected to the corresponding movable plate two (208); a plurality of elastic telescopic rods two (2010) are fixedly connected to each movable plate one (4); a connecting rod (211) is provided on the side of each movable plate two (208), and the connecting rod (211) is fixedly connected to the telescopic end of the corresponding elastic telescopic rod two (2010); and a plurality of linkage blocks (212) are fixedly connected to each linkage rod (211), and the linkage blocks (212) cooperate with the corresponding movable plate two (208).
9. The intelligent slicing device capable of continuous slicing according to claim 8, characterized in that: The linkage block (2012) has rounded corners.
10. An intelligent slicing device capable of continuous slicing according to any one of claims 8 to 9, characterized in that: The linkage block (2012) is set to wear-resistant material.
Citation Information
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