A vegetable cutter
By designing an adjustable spacing bearing plate and cutting plate drive structure, the problems of cumbersome operation and low efficiency of existing equipment when cutting at different thicknesses are solved, and efficient cutting of vegetables is achieved.
Patent Information
- Application Number
- CN202522103839.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-29
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-09-29
AI Technical Summary
Existing mechanical equipment is cumbersome to operate when cutting different types of vegetables to different thicknesses, and has low efficiency in large-scale cutting.
A vegetable slicing machine was designed, comprising an adjustable-spacing support plate and a cutting plate. The cutting plate is driven to move by a drive rod to achieve precise slicing of vegetables. Combined with an electric lead screw and slide bar structure, the cutting efficiency is improved.
It enables flexible cutting of different types of vegetables, improving the efficiency of cutting large quantities of vegetables.
Smart Images

Figure CN224675034U_ABST
Abstract
Description
Technical Field
[0001] This application relates to vegetable cutting technology, specifically to a vegetable cutting machine. Background Technology
[0002] In the process of processing pre-prepared meals in food processing plants, the cutting of raw materials such as vegetables is a crucial step, directly affecting the quality of the final pre-prepared meal and the ease with which consumers can use it. Currently, most food processing plants use mechanical equipment to cut vegetables. This equipment typically cuts vegetables simultaneously with multiple blades. When different thicknesses need to be cut according to different types of vegetables, the spacing between the blades needs to be adjusted, which is cumbersome. Furthermore, this method is inefficient when cutting large quantities of vegetables. Utility Model Content
[0003] To address the aforementioned deficiencies in the prior art, this application provides a vegetable slicing machine that can adapt to the slicing of different types of vegetables and improve the efficiency of large-volume vegetable slicing, thus possessing strong practicality.
[0004] To achieve the above objectives, the present invention employs the following technology: A vegetable slicing machine, comprising: The container has open surfaces on both the top and bottom. The support plates are spaced parallel to the lower surface of the receiving compartment and the spacing is adjustable. A cutting plate is set at intervals parallel to the lower surface of the receiving chamber and the supporting plate, with a predetermined distance between the cutting plate and the receiving chamber. Both ends of the cutting plate are set as blades. The cutting plate is moved along its own length direction, and the length of the cutting plate is greater than the length of the receiving chamber in the length direction of the cutting plate. The drive rod is slidably mounted on the lower surface of the cutting plate. The drive rod is set parallel to the width direction of the cutting plate and moves along the length direction of the cutting plate.
[0005] Furthermore, two loading plates are connected to both sides of the receiving compartment. Each loading plate is equipped with a first drive frame. One of the first drive frames is equipped with a first electric lead screw along the height direction of the receiving compartment. The first electric lead screw is threadedly engaged with a first mating block. The other first drive frame is equipped with a first slide rod. A first slider is slidably sleeved on the first slide rod. Both the first mating block and the first slider are connected to a bearing rod. The bearing plate is located on the bearing rod.
[0006] Furthermore, a second drive frame is connected to both sides of the receiving compartment. One of the second drive frames is equipped with a second electric lead screw parallel to the length direction of the cutting plate. The second electric lead screw is threadedly engaged with a second mating block. The other second drive frame is equipped with a second slide rod parallel to the second electric lead screw. A second slider is slidably sleeved on the second slide rod. Mounting plates are provided on both the second mating block and the second slider. Connecting folding rods are provided on the mounting plates. Loading bars are connected to the connecting folding rods. The two sides of the cutting plate are respectively mounted on the two loading bars.
[0007] Furthermore, the second mating block and the lower part of the second slider are both connected to a third drive frame. The third drive frame is provided with a third slide rod along the length of the cutting plate. The third slide rod is slidably fitted with a third slider. The two ends of the drive rod are respectively connected to the two third sliders. When the third slider slides to the two ends of the third slide rod, the drive rod is located at the two ends of the cutting plate.
[0008] The beneficial effects of this utility model are as follows: The thickness of vegetable cuttings can be controlled by adjusting the distance between the support plate and the lower surface of the receiving chamber. The receiving chamber can hold a large number of vegetables, which can improve the efficiency of cutting large quantities of vegetables. Attached Figure Description
[0009] Figure 1 This is a perspective view of a vegetable slicing machine according to an embodiment of this application.
[0010] Figure 2 This is a schematic diagram of the driving structure of the carrier plate in an embodiment of this application.
[0011] Figure 3 This is a perspective view of the vegetable slicing machine according to an embodiment of this application.
[0012] The markings in the diagram are: 1-accommodation compartment, 2-bearing plate, 21-loading plate, 22-third drive frame, 23-first electric lead screw, 24-first mating block, 25-first slide bar, 26-first slider, 27-bearing rod, 3-cutting plate, 31-second drive frame, 32-second electric lead screw, 33-second mating block, 34-second slide bar, 35-second slider, 36-mounting plate, 37-connecting folding rod, 38-loading bar, 4-drive rod, 41-third drive frame, 42-third slide bar, 43-third slider. Detailed Implementation
[0013] To make the objectives, technical solutions and advantages of the present utility model clearer, the implementation methods of the present utility model will be described in detail below with reference to the accompanying drawings. However, the embodiments described in the present utility model are only some embodiments of the present utility model, and not all embodiments.
[0014] like Figure 1As shown, this embodiment provides a vegetable slicing machine, including a receiving chamber 1, a support plate 2, a cutting plate 3, and a drive rod 4.
[0015] Specifically, such as Figure 1 As shown, the upper and lower surfaces of the receiving chamber 1 are both open for receiving vegetables to be cut; more specifically, a feeding mechanism can be provided above the receiving chamber 1 for feeding vegetables to be cut from the upper surface of the receiving chamber 1. The feeding mechanism is existing technology and will not be described in detail here.
[0016] Specifically, such as Figure 1 As shown, the support plate 2 is arranged parallel to the lower surface of the receiving chamber 1 at intervals and the spacing is adjustable, and is used to support the vegetables to be cut; more specifically, the size of the support plate 2 should be larger than the size of the lower surface of the receiving chamber 1 to prevent the vegetables in the receiving chamber 1 from falling out; more specifically, a receiving mechanism can be set below the support plate 1 to receive and transfer the cut vegetables. The receiving mechanism is existing technology and will not be described in detail here.
[0017] Specifically, such as Figure 1 As shown, the cutting plate 3 is rectangular and is spaced parallel to each other between the lower surface of the receiving chamber 1 and the supporting plate 2. The distance between the cutting plate 3 and the receiving chamber 1 is a predetermined value, which should be set small enough to facilitate the cutting of smaller vegetables. Both ends of the cutting plate 3 are provided with blades for cutting vegetables. The cutting plate 3 is moved along its own length. The length of the cutting plate 3 is greater than the length of the receiving chamber 1 in the length direction of the cutting plate 3. In this example, the length of the cutting plate 3 is the sum of the length of the receiving chamber 1 in the length direction of the cutting plate 3 and the width of the drive rod 4. More specifically, the width of the cutting plate 3 should be greater than the length of the lower surface of the receiving chamber 1 in the width direction of the cutting plate 3 so that the vegetables in the receiving chamber 1 can be cut.
[0018] Specifically, such as Figure 1 As shown, the drive rod 4 is a rod with a rectangular cross-section, which is slidably disposed on the lower surface of the cutting plate 3, that is, the upper surface of the drive rod 4 is in sliding contact with the lower surface of the cutting plate 3; the drive rod 4 is arranged parallel to the width direction of the cutting plate 3 and moves along the length direction of the cutting plate 3.
[0019] During operation, first move the cutting plate 3 out of the receiving chamber 1, then put the vegetables to be cut into the receiving chamber 1 from the top of the receiving chamber 1; adjust the distance between the support plate 2 and the receiving chamber 1 so that the distance between the support plate 2 and the cutting plate 3 is the thickness of the vegetables to be cut; move the drive rod 4 so that the drive rod 4 is at the end of the cutting plate 3 facing away from the receiving chamber 1; move the cutting plate 3 and the drive rod 4 synchronously towards the receiving chamber 1, and the cutting plate 3 cuts the vegetables at the end facing the receiving chamber 1; continue to move the cutting plate 3, and when the cutting plate 3 has finished cutting, the drive rod 4 will contact the vegetables and drive the cut vegetables to move. After the cut vegetables have completely moved out of the support plate 2, the cut vegetables will fall into the receiving mechanism below the support plate 2. At this time, stop the movement of the cutting plate 3 and the drive rod 4, and the next batch of vegetables to be cut will fall onto the support plate 2.
[0020] Move the cutting plate 3 in the opposite direction again while keeping the drive rod 4 stationary. The cutting plate 3 will cut the vegetables again. Since the drive rod 4 is stationary, the cutting plate 3 and the drive rod 4 will move relative to each other. The vegetable pieces that were previously cut and adhered to the lower surface of the cutting plate 3 will fall into the receiving mechanism under the scraping action of the drive rod 4. After the cutting plate 3 has finished cutting, the drive rod 4 will be located at one end of the cutting plate 3. At this time, continue to move the cutting plate 3 and start to move the drive rod 4 synchronously with the cutting plate 3 so that the cut vegetables are completely moved out of the support plate 2 and fall into the receiving mechanism below the support plate 2. The next batch of vegetables to be cut will fall onto the support plate 2. By moving the cutting plate 3 back and forth in the above manner and controlling the drive rod 4 to move accordingly, the vegetables in the receiving chamber 1 can be cut.
[0021] Preferred, such as Figure 2 As shown, two loading plates 21 are connected to both sides of the receiving compartment 1. Each loading plate 21 is equipped with a first drive frame 22. One of the first drive frames 22 has a first electric lead screw 23 along the height direction of the receiving compartment 1. The first electric lead screw 23 is threadedly engaged with a first mating block 24. The other first drive frame 22 has a first slide rod 25. A first slider 26 is slidably sleeved on the first slide rod 25. Both the first mating block 24 and the first slider 26 are connected to a bearing rod 27. The bearing plate 2 is disposed on the bearing rod 27. The first electric lead screw 23 is used to drive the bearing plate 2 to move, so as to adjust the distance between the bearing plate 2 and the lower surface of the receiving compartment 1. More preferably, the loading plate 21 can be disposed on the installation horizontal plane of the device and connected to the receiving compartment 1 through a connecting rod to support the receiving compartment 1.
[0022] Preferred, such as Figure 3As shown, the receiving compartment 1 is connected to two second drive frames 31 on both sides. One of the second drive frames 31 is equipped with a second electric lead screw 32 parallel to the length direction of the cutting plate 3. The second electric lead screw 32 is threadedly engaged with a second mating block 33. The other second drive frame 31 is equipped with a second slide rod 34 parallel to the second electric lead screw 32. A second slider 35 is slidably sleeved on the second slide rod 34. Both the second mating block 33 and the second slider 35 are equipped with mounting plates 36. Both mounting plates 36 are equipped with connecting folding rods 37. Both connecting folding rods 37 are connected to loading bars 38. The two sides of the cutting plate 3 are respectively mounted on the two loading bars 38. The second electric lead screw 32 is used to drive the cutting plate 3 to move.
[0023] Preferred, such as Figure 3 As shown, the second mating block 33 and the second slider 35 are both connected to a third drive frame 41 at their lower parts. The third drive frame 41 is provided with a third slide rod 42 along the length of the cutting plate 3. A third slider 43 is slidably sleeved on the third slide rod 42. The two ends of the drive rod 4 are respectively connected to the two third sliders 43. When the third slider 43 slides to the two ends of the third slide rod 42, the drive rod 4 is located at the two ends of the cutting plate 3. With this design, there is no need to set a separate drive mechanism for the drive rod 4. When the cutting plate 3 is cutting, the drive rod 4 is restricted by the uncut vegetables and does not move, and the third slider 43 slides on the third slide rod 42. When the cutting plate 3 finishes cutting, the third slider 43 is just located at the end of the third slide rod 42, and at this time the drive rod 4 can move with the cutting plate 3.
[0024] The above description is only a preferred embodiment of this application and is not intended to limit this application. Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application.
Claims
1. A vegetable slicing machine, characterized in that, include: The container (1) has open upper and lower surfaces; The support plate (2) is set at intervals parallel to the lower surface of the receiving chamber (1) and the spacing is adjustable; The cutting plate (3) is arranged parallel to the lower surface of the receiving chamber (1) and the supporting plate (2) with a predetermined distance from the receiving chamber (1). Both ends of the cutting plate (3) are set as blades. The cutting plate (3) is moved along its own length direction. The length of the cutting plate (3) is greater than the length of the receiving chamber (1) in the length direction of the cutting plate (3). The drive rod (4) is slidably disposed on the lower surface of the cutting plate (3). The drive rod (4) is set parallel to the width direction of the cutting plate (3) and moves along the length direction of the cutting plate (3).
2. The vegetable slicing machine according to claim 1, characterized in that, Two loading plates (21) are connected to both sides of the container (1). Each loading plate (21) is provided with a first drive frame (22). One of the first drive frames (22) is provided with a first electric screw (23) along the height direction of the container (1). The first electric screw (23) is threaded with a first mating block (24). The other first drive frame (22) is provided with a first slide rod (25). A first slider (26) is slidably sleeved on the first slide rod (25). The first mating block (24) and the first slider (26) are both connected with a bearing rod (27). The bearing plate (2) is located on the bearing rod (27).
3. The vegetable slicing machine according to claim 1, characterized in that, The receiving compartment (1) is connected to two second drive frames (31) on both sides. One of the second drive frames (31) is equipped with a second electric lead screw (32) parallel to the length direction of the cutting plate (3). The second electric lead screw (32) is threaded with a second mating block (33). The other second drive frame (31) is equipped with a second slide rod (34) parallel to the second electric lead screw (32). A second slider (35) is slidably sleeved on the second slide rod (34). Mounting plates (36) are provided on both the second mating block (33) and the second slider (35). Connecting folding rods (37) are provided on both mounting plates (36). Loading bars (38) are connected to both connecting folding rods (37). The two sides of the cutting plate (3) are respectively mounted on the two loading bars (38).
4. The vegetable slicing machine according to claim 3, characterized in that, The second mating block (33) and the second slider (35) are both connected to the lower part of the third drive frame (41). The third drive frame (41) is provided with a third slide rod (42) along the length of the cutting plate (3). The third slide rod (42) is slidably sleeved on the third slide rod (43). The two ends of the drive rod (4) are respectively connected to the two third slide rods (43). When the third slide rod (43) slides to the two ends of the third slide rod (42), the drive rod (4) is located at the two ends of the cutting plate (3).