A meat cutting machine
Patent Information
- Application Number
- CN202522005454.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-18
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-09-18
AI Technical Summary
这样的刀架结构设计形状不规整、整体又超高,不利于移动或运输,而且由于电缸与切刀直连,电缸在这个高度下倾斜安装调试也十分不便
1、联动轴与切刀相互平行且能同步移动,联动轴在台面至下形成类似切刀的投影,驱动电缸推拉在联动轴上即相当于推拉在切刀上,使得驱动电缸的安装和调试都能有参照进行,在优化了结构降低了驱动电缸的安装高度的同时保证了驱动电缸安装调试的便捷性。
Smart Images

Figure CN224747385U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of meat slicers, and relates to a meat slicer, and more particularly to a meat slicing machine. Background Technology
[0002] Meat slicers are common electrical appliances, mostly used in commercial applications, and tend to be relatively large in size. For example, the applicant developed a meat slicer device in its early years, patent number CN202310580097.7. This device's blades fall along an inclined path, mimicking the angled cutting motion of manual meat slicing to cut fresh meat. This automated, uniform cutting of fresh meat is an effect that other meat slicers on the market cannot achieve.
[0003] The aforementioned meat slicing device mainly consists of a workbench and a blade holder. The blade holder is entirely mounted on the workbench surface and includes an inclined guide column and a cutting blade slidably connected to the guide column. The guide column requires a significant headspace to accommodate the cutting blade's stroke. The blade holder is driven by an electric cylinder. Because the cutting blade follows an oblique cutting path and the guide column is also inclined, the electric cylinder is also inclined. During installation, the electric cylinder is further raised and mounted on the top plate of the guide column, extending obliquely upwards. This blade holder design is irregular in shape and excessively tall, making it difficult to move or transport. Furthermore, because the electric cylinder is directly connected to the cutting blade, its inclined installation and adjustment at this height are also very inconvenient. Summary of the Invention
[0004] The purpose of this invention is to address the aforementioned problems in the existing technology by proposing a meat slicing machine. It solves the technical problem of optimizing the structure of existing meat slicing machines while ensuring convenient installation.
[0005] The objective of this utility model can be achieved through the following technical solutions: A meat slicer includes an operating table and a blade holder assembly. The blade holder assembly includes two guide columns fixed at an incline on the operating table and a cutting blade slidably connected to the two guide columns. The blade holder assembly further includes a linkage shaft and a drive cylinder located below the surface of the operating table. The linkage shaft is parallel to the cutting blade and the two are linked together. A sliding ring is slidably connected to the linkage shaft. The drive cylinder is connected to the sliding ring and drives the linkage shaft to move up and down by pushing and pulling the sliding ring.
[0006] The innovation of this application lies in the tool holder assembly, which has been improved. The tool holder assembly includes a guide column and a cutter located above the worktable surface, and a linkage shaft and a drive cylinder located below the worktable surface. The linkage shaft and the cutter are parallel to each other and can move synchronously. The linkage shaft forms a projection similar to the cutter from the worktable surface downwards. Moving the linkage shaft is equivalent to moving the cutter. With this design, pushing and pulling the drive cylinder on the linkage shaft is equivalent to pushing and pulling the cutter, so that the installation and debugging of the drive cylinder can be carried out with a reference. While optimizing the structure and reducing the installation height of the drive cylinder, the convenience of installation and debugging of the drive cylinder is ensured.
[0007] As another innovation, the movement path of this linkage shaft is the same as that of the cutter, both being oblique. The drive cylinder, which drives the shaft, also needs to output and pull obliquely to correspond to the movement direction of the linkage shaft. This application adds a sliding ring sleeve to the linkage shaft to compensate for lateral movement. This allows the drive cylinder to be installed and adjusted obliquely without being too precise. The drive cylinder can even be installed vertically to drive the linkage shaft to move obliquely. This design optimizes the structure of the drive part and takes into account the convenience of installation and adjustment.
[0008] In the above-mentioned meat slicing machine, both ends of the cutter are connected to long strip-shaped connecting plates, which extend downward to the bottom of the operating table. The two ends of the linkage shaft are respectively fixed to the ends of the two connecting plates. The cutter, connecting plates and linkage shaft are combined to form a parallelogram structure.
[0009] The cutter, connecting plate, and linkage shaft combine to form a parallelogram structure with equal and parallel upper and lower sides. The cutter represents the upper side, and the linkage shaft represents the lower side. Their movement paths are exactly the same, and the travel on and off the platform is consistent. They can be individually debugged and assembled, achieving structural optimization and ease of installation.
[0010] In the above-mentioned meat slicing machine, the tilt direction and angle of the connecting plate are the same as the tilt direction and angle of the guide column.
[0011] In the above-mentioned meat slicing machine, the drive electric cylinder is arranged parallel to the connecting plate.
[0012] As a further optimization, the drive cylinder located below the platform is also arranged parallel to the connecting plate. The tilt angle and direction of the drive cylinder are the same as those of the connecting plate, so that the sliding ring can remain stationary relative to the linkage shaft or reduce slippage during driving, thereby improving transmission efficiency.
[0013] In the above-mentioned meat slicing machine, the sliding ring is fixed on the output end of the drive cylinder and the sliding ring is fitted on the linkage shaft.
[0014] In the above-mentioned meat slicer, the sliding ring sleeve has an inner hole, the diameter of which is larger than the outer diameter of the linkage shaft. The sliding ring sleeve is fitted onto the linkage shaft through the inner hole, and there is a gap between the inner hole wall and the outer wall of the linkage shaft.
[0015] The inner diameter of the sliding ring sleeve should be larger than the outer diameter of the linkage shaft. This makes it easier to install the large hole with the small shaft. Since the movement of the cutter does not need to be very precise, it is enough to fall into place. Therefore, the gap between the sliding ring sleeve and the linkage shaft can make it easier to install the electric cylinder. It is only necessary that its general direction is the same as the direction of the cutter's movement.
[0016] In the above-mentioned meat slicing machine, the output end of the drive electric cylinder is arranged in the direction of the cutter, and the output end of the drive electric cylinder has an initial position and an extended position. In the initial position, the cutter is located at the low position of the guide column, and in the extended position, the cutter is raised to the high position of the guide column.
[0017] As a further optimization, the drive cylinder of this application is located below the table surface. When the drive cylinder extends, the cutter is raised to a high position. When the drive cylinder retracts, the cutter completes the downward cutting action. In this way, when the equipment stops, the drive cylinder is in the reset state, and the cutter is located close to the table surface, which improves the overall safety.
[0018] In the above-mentioned meat slicing machine, the meat slicing machine also includes bushings. The guide columns are fixed on the operating table and each guide column is slidably connected to a bushing. The two ends of the cutter are fixed on the bushings and guided to slide along the guide columns by the bushings.
[0019] The beneficial effects of this utility model are: 1. The linkage shaft and the cutter are parallel to each other and can move synchronously. The linkage shaft forms a projection similar to the cutter from the table surface downwards. The push and pull of the drive electric cylinder on the linkage shaft is equivalent to pushing and pulling on the cutter. This allows for a reference for the installation and debugging of the drive electric cylinder. While optimizing the structure and reducing the installation height of the drive electric cylinder, it also ensures the convenience of installation and debugging of the drive electric cylinder.
[0020] 2. This application adds a sliding ring sleeve to the linkage shaft to compensate for lateral movement, so that the installation and debugging of the drive electric cylinder for oblique drive does not need to be very precise. The drive electric cylinder can even be installed vertically to drive the linkage shaft to move obliquely. This design optimizes the structure of the drive part and takes into account the convenience of installation and debugging. Attached Figure Description
[0021] Figure 1 This is a structural diagram of the present invention; Figure 2 This is a side view of the present invention; Figure 3 This is a bottom view of the present invention; Figure 4 This is another side view of the present invention; Figure 5 This is a partial structural view of the present invention; Figure 6 This is a partial structural side view of the present invention.
[0022] In the diagram: 1. Operating table; 2. Tool holder assembly; 21. Guide column; 22. Cutting knife; 23. Linkage shaft; 24. Drive cylinder; 25. Sliding ring sleeve; 251. Inner hole; 26. Connecting plate; 3. Bushing; 4. Feeding assembly; 5. Clamping assembly. Detailed Implementation
[0023] like Figure 2 , Figure 3 and Figure 4 The illustrated meat slicer includes an operating table 1, a blade holder assembly 2, a feeding assembly 4, and a clamping assembly 5. The blade holder assembly 2 and the feeding assembly 4 are arranged opposite to each other, and the clamping assembly 5 is located between the blade holder assembly 2 and the feeding assembly 4. The feeding assembly 4 includes an electric cylinder and a sliding feeding plate, and the electric cylinder drives the feeding plate to feed the meat. The clamping assembly 5 includes a steel cable and a retraction cylinder, and the retraction cylinder can drive the steel cable to retract to clamp or release the meat pieces.
[0024] like Figure 2 , Figure 5 and Figure 6The cutter assembly 2 shown includes two inclined guide columns 21. The guide columns 21 are fixed on the operating table 1, and each guide column 21 is slidably connected to a bushing 3. The two ends of the cutter 22 are fixed on the bushing 3 and guided to slide along the guide column 21 through the bushing 3. The cutter assembly 2 also includes a linkage shaft 23 and a drive cylinder 24 located below the table surface of the operating table 1. The linkage shaft 23 is parallel to the cutter 22 and the two are linked together. A sliding ring sleeve 25 is slidably connected to the linkage shaft 23. The drive cylinder 24 is connected to the sliding ring sleeve 25 and drives the linkage shaft 23 to move up and down by pushing and pulling the sliding ring sleeve 25. The innovation of this application lies in the tool holder assembly 2, which has been improved. The tool holder assembly 2 includes a guide column 21 and a cutter 22 located above the worktable 1, and a linkage shaft 23 and a drive cylinder 24 located below the worktable 1. The linkage shaft 23 and the cutter 22 are parallel to each other and can move synchronously. The linkage shaft 23 forms a projection similar to the cutter 22 from the worktable 1 to the bottom. Moving the linkage shaft 23 is equivalent to moving the cutter 22. With this design, pushing and pulling the drive cylinder 24 on the linkage shaft 23 is equivalent to pushing and pulling the cutter 22. This allows for a reference for the installation and debugging of the drive cylinder 24. While optimizing the structure and reducing the installation height of the drive cylinder 24, the ease of installation and debugging of the drive cylinder 24 is ensured. As another innovation, the movement path of the linkage shaft 23 is the same as that of the cutter 22, both being oblique. The drive cylinder 24, which drives the movement, also needs to output and pull obliquely to correspond to the movement direction of the linkage shaft 23. This application adds a sliding ring 25 to the linkage shaft 23 to compensate for lateral movement. This allows the drive cylinder 24 to be installed and adjusted obliquely without being too precise. In fact, the drive cylinder 24 can even be installed vertically to drive the linkage shaft 23 to move obliquely. This design optimizes the structure of the drive part and also takes into account the convenience of installation and adjustment.
[0025] Furthermore, such as Figure 3 and Figure 4 The cutter 22 shown has elongated connecting plates 26 at both ends, extending downwards to the bottom of the operating table 1. The two ends of the linkage shaft 23 are fixed to the ends of the two connecting plates 26 respectively. The cutter 22, connecting plates 26, and linkage shaft 23 combine to form a parallelogram structure. The upper and lower sides of this parallelogram structure are of equal length and parallel. The cutter 22 represents the upper side, and the linkage shaft 23 represents the lower side. Their movement paths are identical, and the travel distances on and off the table are consistent. They can be individually debugged and assembled, achieving structural optimization and ease of installation.
[0026] As a further optimization, such as Figure 5The tilt direction and angle of the connecting plate 26 are the same as those of the guide post 21. The drive cylinder 24 is arranged parallel to the connecting plate 26. The drive cylinder 24 located below the platform is also arranged parallel to the connecting plate 26. The fact that the tilt angle and direction of the drive cylinder 24 are the same as those of the connecting plate 26 ensures that the sliding ring 25 can remain stationary relative to the linkage shaft 23 or reduce slippage during driving, thereby improving transmission efficiency.
[0027] As a further optimization, such as Figure 6 The sliding ring 25 shown is fixed to the output end of the drive cylinder 24 and is fitted onto the linkage shaft 23. The sliding ring 25 has an inner hole 251, the diameter of which is larger than the outer diameter of the linkage shaft 23. The sliding ring 25 is fitted onto the linkage shaft 23 through the inner hole 251, and there is a gap between the inner wall of the inner hole 251 and the outer wall of the linkage shaft 23. The inner diameter of the inner hole 251 of the sliding ring 25 is larger than the outer diameter of the linkage shaft 23; this larger hole with a smaller shaft facilitates installation. Since the movement of the cutter 22 does not need to be highly precise, as long as it falls into place, the gap between the sliding ring 25 and the linkage shaft 23 makes it easier to install the drive cylinder 24, as long as its approximate direction is the same as the movement direction of the cutter 22.
[0028] As a further optimization, such as Figure 5 and Figure 6 The output end of the drive cylinder 24 is arranged towards the cutter 22, and the output end of the drive cylinder 24 has an initial position and an extended position. In the initial position, the cutter 22 is located at the low position of the guide post 21, and in the extended position, the cutter 22 is raised to the high position of the guide post 21. In this application, the drive cylinder 24 is located below the table surface, and when the drive cylinder 24 extends, the cutter 22 is raised to the high position. When the drive cylinder 24 is reset and retracted, the cutter 22 completes the downward cutting action. In this way, when the equipment stops, the drive cylinder 24 is in the reset state, and the cutter 22 is located close to the table surface, resulting in a high level of overall safety.
[0029] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. At the same time, the basic principles, main features, and advantages of this utility model have been shown and described above, which should be understood by those skilled in the art.
Claims
1. A meat slicing machine, comprising an operating table (1) and a blade holder assembly (2), the blade holder assembly (2) comprising two guide posts (21) inclinedly fixed on the operating table (1) and a cutting blade (22) slidably connected to the two guide posts (21), characterized in that, The blade holder assembly (2) also includes a linkage shaft (23) and a drive cylinder (24) located below the table surface of the operating table (1). The linkage shaft (23) is parallel to the cutter (22) and the two are linked together. A sliding ring (25) is slidably connected to the linkage shaft (23). The drive cylinder (24) is connected to the sliding ring (25) and drives the linkage shaft (23) to move up and down by pushing and pulling the sliding ring (25).
2. The meat slicer according to claim 1, characterized in that, Both ends of the cutter (22) are connected to long strip-shaped connecting plates (26), which extend downward to the bottom of the worktable (1). The two ends of the linkage shaft (23) are respectively fixed to the ends of the two connecting plates (26). The cutter (22), connecting plates (26) and linkage shaft (23) are combined to form a parallelogram structure.
3. A meat slicer according to claim 2, characterized in that, The tilting direction and angle of the connecting plate (26) are the same as those of the guide post (21).
4. A meat slicer according to claim 3, characterized in that, The drive electric cylinder (24) is arranged parallel to the connecting plate (26).
5. A meat slicer according to any one of claims 1-4, characterized in that, A sliding ring sleeve (25) is fixed on the output end of the drive electric cylinder (24), and the sliding ring sleeve (25) is fitted on the linkage shaft (23).
6. A meat slicer according to claim 5, characterized in that, The sliding ring sleeve (25) has an inner hole (251), the diameter of which is larger than the outer diameter of the linkage shaft (23). The sliding ring sleeve (25) is fitted onto the linkage shaft (23) through the inner hole (251), and there is a gap between the inner hole (251) wall and the outer wall of the linkage shaft (23).
7. A meat slicer according to claim 1, characterized in that, The output end of the drive cylinder (24) is arranged in the direction of the cutter (22), and the output end of the drive cylinder (24) has an initial position and an extended position. In the initial position, the cutter (22) is located at the low position of the guide post (21), and in the extended position, the cutter (22) is raised to the high position of the guide post (21).
8. A meat slicer according to claim 1, characterized in that, This meat slicer also includes bushings (3), the guide columns (21) are fixed on the operating table (1) and each guide column (21) is slidably connected to a bushing (3), and the two ends of the cutter (22) are fixed on the bushings (3) and slide along the guide columns (21) through the bushings (3).
Citation Information
Patent Citations
Steak cutting device
CN116391744A