Conveying mechanism of meat slicing machine
By designing an automatic pushing component and scraper structure on the meat slicer, the problem of manual pushing and cleaning after slicing is solved, automatic pushing of meat slices is achieved, the cleaning frequency is reduced, and work efficiency is improved.
Patent Information
- Application Number
- CN202423051358.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-11
AI Technical Summary
The existing meat slicer needs to manually push the meat slices into the container after slicing and clean the feed plate regularly, which is time-consuming and labor-intensive.
A feeding mechanism for a meat slicer is designed. Guard plates and scrapers are arranged on both sides of a feeding plate. A power source is used to drive a rotating drum to drive a pushing assembly, which causes the scraper to move back and forth in an inclined chute. This automatically pushes the meat slices away from the discharge end. The pushing assembly and the scraper are slidably connected in a "Z"-shaped guide groove to ensure that the scraper fits the feeding plate and reduces manual intervention.
It realizes the automatic pushing of cut meat slices, reduces the tediousness of manual operation, reduces the frequency of cleaning, reduces the workload of operators, and improves work efficiency.
Smart Images

Figure CN223472972U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of meat slicers, and more particularly to a feeding mechanism for a meat slicer. Background Technology
[0002] Currently, meat is an indispensable food in people's lives. In order to enrich the ways of eating meat, people prepare meat into various shapes, such as meat slices and meat mince.
[0003] The most commonly used meat slicers generally consist of a casing, worktable, transmission device, main shaft, cutter disc, blades, feed inlet, and discharge outlet. They can cut slices of different shapes, such as round slices, curved slices, and oblique slices. The slicing effect is excellent, with beautiful and neat slices without burrs or fragments. The slices are of uniform thickness, have good stability, can be sliced continuously, are highly efficient, small in size, occupy little space, have low noise, are easy to operate, are energy-saving and safe, and have an attractive appearance.
[0004] However, after the meat is sliced, the slices accumulate at the discharge port and need to be manually pushed into a specific container for packaging. Furthermore, the meat slices are placed on the conveyor plate for a long time and require regular cleaning, which is time-consuming and labor-intensive. Utility Model Content
[0005] To reduce the number of times manual labor is required to push the meat slices piled up at the discharge port into a specific container and to clean them, this application provides a feeding mechanism for a meat slicer.
[0006] The feeding mechanism of the meat slicer provided in this application adopts the following technical solution:
[0007] A feeding mechanism for a meat slicer includes a slicer body. A feeding plate is provided at the discharge end of the slicer body. Guard plates are provided on both sides of the feeding plate. A scraper is provided above the feeding plate. A groove is correspondingly formed on the side of the guard plate facing the feeding plate, and the groove slopes downwards from near the discharge end to away from the discharge end. Both ends of the scraper are respectively placed in the grooves on both sides. An "L"-shaped pushing component is provided above one side of the guard plate. A rotating drum is provided on one side of the feeding plate. A "Z"-shaped guide groove is formed around the outer surface of the rotating drum along its central axis. One end of the pushing component is retractably connected to the top of the scraper, and the other end is slidably connected to the rotating drum in the "Z"-shaped guide groove. The rotating drum shaft is fixedly connected to a power source.
[0008] By adopting the above technical solution, guard plates are set on both sides of the conveying plate, and a scraper is set above the conveying plate. Inclined downward sliding grooves are opened on both sides of the guard plates, and the two ends of the scraper are respectively placed in the sliding grooves on both sides. When the power source drives the rotating drum shaft to rotate, the rotating drum set on one side of the guard plate rotates, and one end of the pushing component slidably connected to the rotating drum slides in the "Z"-shaped guide groove, thereby causing the pushing component to move back and forth on the conveying plate. Since the pushing component and the scraper are telescopically connected, the scraper can move back and forth in the inclined downward sliding groove. Thus, when the scraper is close to the discharge end, the distance between the scraper and the conveying plate is larger, and when it is far away from the discharge end, the distance between the scraper and the conveying plate gradually decreases until the bottom of the scraper is in contact with the conveying plate. This enables timely pushing of the cut meat slices from the discharge end to the direction away from the discharge end, reducing the tediousness of manually pushing them into specific containers at any time, and solving the problem of regularly cleaning meat slices placed on the conveying plate for a long time. This reduces the workload of operators and saves time and effort.
[0009] Optionally, the pushing assembly includes a first pushing rod and a second pushing rod. One end of the first pushing rod is telescopically connected to the scraper, and the other end is vertically fixedly connected to the second pushing rod. The second pushing rod is horizontally attached to a guard plate on one side, and the end of the second pushing rod away from the first pushing rod is placed in a "Z"-shaped guide groove and slidably connected to the rotating drum.
[0010] By adopting the above technical solution, the first push rod and the second push rod are vertically fixedly connected. The second push rod overlaps the guard plate and is slidably connected to the rotating drum. The rotating drum drives the second push rod to move back and forth horizontally above the guard plate, while the second push rod drives the first push rod to move back and forth horizontally. The first push rod pushes the scraper to move back and forth above the conveying plate. Since the first push rod and the scraper are telescopically connected, the scraper, guided by the inclined sliding groove, extends and retracts together with the first push rod, thereby adjusting the distance between the scraper and the conveying plate, further allowing the bottom of the scraper to pass over the accumulated meat slices and push the meat slices away from the discharge end.
[0011] Optionally, the "Z"-shaped guide groove is further provided with fixing grooves on both sides, and a "T"-shaped locking block is fixedly connected to the end of the second push rod away from the first push rod. The two protruding ends of the "T"-shaped locking block are respectively placed in the fixing grooves on both sides.
[0012] By adopting the above technical solution, fixing grooves are opened on both sides of the "Z"-shaped guide groove, and the two ends of the "T"-shaped card block are respectively placed in the fixing grooves on both sides, so that the "T"-shaped card block is engaged in the fixing groove. The "T"-shaped card block is not easy to fall off from the "Z"-shaped guide groove, and it does not affect the sliding of the "T"-shaped card block in the "Z"-shaped guide groove.
[0013] Optionally, the first push rod includes a fixed part and a movable part. One end of the fixed part is fixedly connected to the second push rod, and the other end has a cavity. A spring is provided in the cavity. One end of the movable part passes through the cavity and is fixedly connected to one end of the spring, and the other end passes out of the cavity and is fixedly connected to the scraper.
[0014] By adopting the above technical solution, a cavity is opened at the end of the first push rod facing the scraper, and a spring is installed in the cavity. One end of the spring is fixedly connected to the bottom of the cavity, and the other end is connected to the movable part passing through the cavity, so that the movable part can extend and retract with the extension and retraction of the spring, thereby realizing that the scraper slides in the inclined groove.
[0015] Optionally, a groove is formed on the upper surface of one side of the guard plate along the length of the guard plate, and a positioning block is fixedly provided on the side of the second push rod facing the guard plate. The positioning block is placed in the groove and slides in the groove.
[0016] By adopting the above technical solution, the positioning block is placed in the groove and moves back and forth along the length of the groove, which plays a guiding role, so that the second push rod moves back and forth in the set direction and is not easy to sway left and right.
[0017] Optionally, a silicone sleeve is fitted onto the end of the scraper facing the conveyor plate.
[0018] By adopting the above technical solution, a silicone sleeve can be fitted onto the scraper, which can effectively extend the service life of the scraper and facilitate cleaning or replacement of the silicone sleeve.
[0019] Optionally, a receiving bucket is placed below the conveyor plate.
[0020] By adopting the above technical solution, the receiving hopper can catch the meat slices pushed by the scraper and then transport them to a specific location for product packaging.
[0021] In summary, this application includes at least one of the following beneficial technical effects:
[0022] 1. The rotating drum shaft is driven by a power source to rotate, which in turn drives the drum to rotate. One end of the pushing component, which is slidably connected to the drum, slides in the "Z"-shaped guide groove, causing the pushing component to move back and forth on the conveying plate. Since the pushing component and the scraper are telescopically connected, the scraper can move back and forth in the downward-sloping chute. This results in the scraper being closer to the discharge end and further away from the discharge end, with the distance between the scraper and the conveying plate gradually decreasing until the bottom of the scraper is in contact with the conveying plate. This allows the sliced meat to be pushed from the discharge end to a direction away from the discharge end in a timely manner, reducing the tediousness of manually pushing the meat into a specific container at any time. It also solves the problem of regularly cleaning the meat slices that are placed on the conveying plate for a long time, reducing the workload of the operators and saving time and effort.
[0023] 2. By opening fixing slots on both sides of the "Z"-shaped guide groove, and placing fixing slots at both ends of the "T"-shaped block...
[0024] The T-shaped locking blocks are engaged in the fixing slots on both sides, making it difficult for the T-shaped locking blocks to fall off from the Z-shaped guide slots, and without affecting the sliding of the T-shaped locking blocks in the Z-shaped guide slots.
[0025] 3. By opening a cavity at the end of the first push rod facing the scraper, and installing a spring inside the cavity, one end of the spring is fixedly connected to the bottom of the cavity, and the other end is connected to a movable part passing through the cavity, so that the movable part can extend and retract with the extension and retraction of the spring, thereby enabling the scraper to slide in the inclined groove. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the feeding mechanism of a meat slicer according to this application.
[0027] Figure 2 This is a schematic diagram of the push component in this application.
[0028] Figure 3 It is in this application Figure 1 Enlarged diagram of Part A.
[0029] Explanation of reference numerals in the attached drawings: 1. Slicer body; 2. Feeding plate; 21. Support leg; 3. Guard plate; 31. Slide groove; 32. Groove; 4. Scraper; 41. Silicone sleeve; 42. Slider; 5. Pushing assembly; 51. First push rod; 511. Fixed part; 512. Moving part; 513. Spring; 52. Second push rod; 521. Positioning block; 53. "T" shaped locking block; 6. Rotary drum; 61. "Z" shaped guide groove; 62. Fixed groove; 63. Rotary drum frame; 64. Rotary drum shaft; 7. Power source; 8. Receiving bucket. Detailed Implementation
[0030] The following is combined with Figure 1-3 This application is described in further detail.
[0031] This application discloses a feeding mechanism for a meat slicer. (See also...) Figure 1 and Figure 2A feeding mechanism for a meat slicer includes a slicer body 1, with an inlet end on one side and an outlet end on the other. A feeding plate 2 is provided at the outlet end of the slicer body 1, and a support leg 21 is fixedly provided at the bottom of the feeding plate 2. A guard plate 3 is provided on both sides of the feeding plate 2, and the guard plate 3 and the support leg 21 are integrally formed. A scraper 4 is horizontally provided above the feeding plate 2, and a groove 31 is correspondingly provided on the side of the guard plate 3 facing the feeding plate 2. The groove 31 is inclined downward from near the outlet end to away from the outlet end. A slider 42 is fixedly provided at both ends of the scraper 4. The two sliders 42 are respectively placed in the groove 31 on both sides and drive the scraper 4 to move back and forth along the direction of the groove 31.
[0032] An "L"-shaped pushing component 5 is provided above one side of the guard plate 3. A rotating drum 6 is provided on one side of the feeding plate 2. The rotating drum 6 is supported by a rotating drum frame 63. The rotating drum frame 63 is fixedly connected to the central axis of the rotating drum 6. The rotating drum 6 rotates around the central axis of the rotating drum 6. The central axis of the rotating drum 6 is parallel to the length direction of the guard plate 3. A "Z"-shaped guide groove 61 is formed on the outer surface of the rotating drum 6 along the central axis direction. One end of the pushing component 5 is telescopically connected to the top of the scraper 4, and the other end is placed in the "Z"-shaped guide groove 61 and slidably connected to the rotating drum 6. A rotating drum shaft 64 is provided at one end of the rotating drum 6. The rotating drum shaft 64 is fixedly connected to the rotating drum 6. A power source 7 is fixedly provided on one side of the slicer body 1. The power source 7 of this application is preferably a motor. The motor is fixed on one side wall of the slicer body 1, and the rotating drum shaft 64 is fixedly connected to the output shaft of the motor.
[0033] In this application, there is a certain height difference between the discharge end and the conveying plate 2, and a ramp is provided between the discharge end and the conveying plate 2. The meat slices cut at the discharge end slide onto the conveying plate 2. Due to inertia, they will continue to move forward and pass through the bottom of the scraper 4. Then, the scraper 4 pushes them away from the discharge end.
[0034] To facilitate the collection and packaging of the meat rolls pushed by the scraper 4, a receiving bucket 8 is placed under the feeding plate 2. The receiving bucket 8 is movable.
[0035] Reference Figure 2 and Figure 3 The pushing component 5 includes a first pushing rod 51 and a second pushing rod 52. The first pushing rod 51 is vertically arranged. One end of the first pushing rod 51 is telescopically connected to the scraper 4, and the other end is vertically fixedly connected to the second pushing rod 52. The second pushing rod 52 is horizontally attached to the guard plate 3 on one side, and the end of the second pushing rod 52 away from the first pushing rod 51 is placed in the "Z"-shaped guide groove 61 and slidably connected to the rotating drum 6.
[0036] In addition, the first push rod 51 includes a fixed part 511 and a movable part 512. One end of the fixed part 511 is vertically fixedly connected to the second push rod 52, and the other end of the fixed part 511 has a cavity. A spring 513 is installed in the cavity. One end of the spring 513 is fixedly connected to the bottom of the cavity. One end of the movable part 512 passes through the cavity and is fixedly connected to the other end of the spring 513. The other end of the movable part 512 passes out of the cavity and is fixedly connected to the scraper 4, thereby realizing the telescopic connection between the movable part 512 and the fixed part 511.
[0037] Reference Figure 3 The "Z"-shaped guide groove 61 is also provided with fixing grooves 62 on both sides. The end of the second push rod 52 away from the first push rod 51 is fixedly connected to a "T"-shaped locking block 53. The two protruding ends of the "T"-shaped locking block 53 are respectively placed in the fixing grooves 62 on both sides. In this way, the "T"-shaped locking block 53 is not easy to fall off from the "Z"-shaped guide groove 61, so that the second push rod 52 is slidably connected to the rotating drum 6 while also being locked to the rotating drum 6.
[0038] To ensure a more stable overlap of the second push rod 52 above the guard plate 3, a groove 32 is formed on the upper surface of one side of the guard plate 3 along its length. A positioning block 521 is fixedly provided on the side of the second push rod 52 facing the guard plate 3. The positioning block 521 is placed in the groove 32 and slides within it. In this application, the groove 32 and the positioning block 521 placed in the groove 32 can be square or arc-shaped; for ease of sliding, an arc shape is preferred.
[0039] To facilitate cleaning of the scraper 4 and extend its service life, a silicone sleeve 41 is fitted onto the end of the scraper 4 facing the conveyor plate 2. The silicone sleeve 41 is a non-toxic and non-polluting food-grade silicone pad, which can effectively ensure the safety of the meat slices.
[0040] The implementation principle of the feeding mechanism of a meat slicer according to an embodiment of this application is as follows:
[0041] The sliced meat slides from the discharge end onto the conveying plate 2. The motor is started, and the motor output shaft drives the rotating drum shaft 64 to rotate. The rotating drum shaft 64 drives the rotating drum 6 to rotate. Since the rotating drum 6 only rotates and does not move, the "T"-shaped locking block 53 slides in the "Z"-shaped guide groove 61, thereby driving the second push rod 52 to move horizontally along the length of the guard plate 3. At the same time, the first push rod 51 moves accordingly, driving the scraper 4 to move in the same direction. The movable part 512 of the first push rod 51 extends and retracts under the action of traction force, so that the slider 42 slides in the inclined sliding groove 31. Finally, the meat slices pass through the bottom of the scraper 4 due to inertia, and are then pushed into the receiving bucket 8 by the scraper 4.
[0042] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A feeding mechanism for a meat slicer, comprising a slicer body (1), characterized in that: The slicer body (1) is provided with a feeding plate (2) at the discharge end. Both sides of the feeding plate (2) are provided with guard plates (3). A scraper (4) is provided above the feeding plate (2). The side of the guard plate (3) facing the feeding plate (2) is provided with a sliding groove (31). The sliding groove (31) is inclined downward from near the discharge end to away from the discharge end. The two ends of the scraper (4) are respectively placed in the sliding groove (31) on both sides. An "L"-shaped pushing component (5) is provided above the guard plate (3) on one side. A rotating cylinder (6) is provided on one side of the feeding plate (2). A "Z"-shaped guide groove (61) is opened on the outer surface of the rotating cylinder (6) along the central axis. One end of the pushing component (5) is telescopically connected to the top of the scraper (4), and the other end is placed in the "Z"-shaped guide groove (61) and slidably connected to the rotating cylinder (6). The rotating cylinder (6) is fixedly connected to the power source (7).
2. The feeding mechanism of a meat slicer according to claim 1, characterized in that: The pushing component (5) includes a first pushing rod (51) and a second pushing rod (52). One end of the first pushing rod (51) is telescopically connected to the scraper (4), and the other end is vertically fixedly connected to the second pushing rod (52). The second pushing rod (52) is horizontally attached to the guard plate (3) on one side, and the end of the second pushing rod (52) away from the first pushing rod (51) is placed in the "Z"-shaped guide groove (61) and slidably connected to the rotating drum (6).
3. The feeding mechanism of a meat slicer according to claim 2, characterized in that: The "Z"-shaped guide groove (61) is also provided with fixing grooves (62) on both sides. The end of the second push rod (52) away from the first push rod (51) is fixedly connected to a "T"-shaped card block (53). The two protruding ends of the "T"-shaped card block (53) are respectively placed in the fixing grooves (62) on both sides.
4. The feeding mechanism of a meat slicer according to claim 2, characterized in that: The first push rod (51) includes a fixed part (511) and a movable part (512). One end of the fixed part (511) is fixedly connected to the second push rod (52), and the other end has a cavity. A spring (513) is provided in the cavity. One end of the movable part (512) passes through the cavity and is fixedly connected to one end of the spring (513), and the other end passes out of the cavity and is fixedly connected to the scraper (4).
5. The feeding mechanism of a meat slicer according to claim 2, characterized in that: The upper surface of the side guard plate (3) is provided with a groove (32) along the length direction of the guard plate (3). The second push rod (52) is fixedly provided with a positioning block (521) on the side facing the guard plate (3). The positioning block (521) is placed in the groove (32) and slides in the groove (32).
6. The feeding mechanism of a meat slicer according to claim 1, characterized in that: The scraper (4) is fitted with a silicone sleeve (41) at the end facing the conveyor plate (2).
7. The feeding mechanism of a meat slicer according to claim 1, characterized in that: A receiving bucket (8) is placed below the conveying plate (2).