A fresh noodle cutting machine

CN224795796UActive Publication Date: 2026-09-25DAZHOU CHENYUE FOOD CO LTD
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Patent Information

Application Number
CN202522384498.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-11
Publication Date
2026-09-25
Estimated Expiration
2035-11-11

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于:针对现有的切割机,由于切割组件仅切割单张河粉皮,需要进行多次切割动作,切割效率较低,解决了效率较低的问题

Benefits of technology

一、通过所述堆叠机构将多层河粉皮堆叠起来,堆叠到指定层数后,由所述裁切机构将河粉皮切断,再由所述切条机构对堆叠后的河粉皮进行切割。相比传统单张切割方式,显著减少了所述切条刀具的动作次数,降低了能耗和设备磨损,同时提高了效率,解决了效率较低的问题;

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Abstract

The utility model relates to a river flour processing technical field discloses a kind of fresh river flour cutting machines, including feeding mechanism, for conveying fresh river flour;Stacking mechanism, including being set below the movable seat of feeding mechanism, movable seat is connected with the horizontal traction assembly for driving movable seat reciprocating movement;Cutting mechanism, between stacking mechanism and feeding mechanism is installed;Slitting mechanism, including the conveyor belt installed on movable seat, lifting rod is installed on movable seat and lifting rod is rigidly connected with slitting cutter.The utility model, by stacking mechanism, multiple layers of river flour skin are stacked, after stacking to specified layer number, by cutting mechanism, river flour skin is cut, then by slitting mechanism, stacked river flour skin is cut.Compared with traditional single cutting mode, the action number of slitting cutter is significantly reduced, energy consumption and equipment wear are reduced, efficiency is improved, and the problem of low efficiency is solved.
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Description

Technical Field

[0001] This utility model relates to the field of rice noodle processing technology, specifically to a fresh rice noodle cutting machine. Background Technology

[0002] In some rice noodle processing techniques, rice is washed, ground into powder, mixed with water to form a paste, steamed into sheets, cooled, and then cut into strips. A cutting machine is commonly used to cut cooled sheet rice noodles into strips. Existing cutting machines include a first conveyor, a shredding assembly, a cutting assembly, and a metering assembly. Multiple first guide grooves are provided between the shredding assembly and the cutting assembly. The cutting assembly includes a motor, two guide rails, and multiple cutting blades. A crank is connected to the motor's output end. The two guide rails are mounted on a second bracket and slidably connected to a slide bar. The crank is movably connected to the slide bar via a connecting rod. Multiple cutting receiving plates are located on the second bracket between the two guide rails. The cutting blades are mounted on the slide bar on one side of the cutting receiving plates. Rice noodles are conveyed to the shredding assembly by the first conveyor and cut into shreds. The shredded rice noodles are then conveyed into the cutting assembly through the first guide grooves. The motor starts, driving the crank to rotate. The crank rotation drives the connecting rod to push the slide bar along the guide rails. The cooperation between the cutting blades and the cutting receiving plates cuts the shredded rice noodles, ensuring uniform length and width during the cutting process, high metering efficiency, and improved production efficiency.

[0003] The existing cutting machine has the following problems: because the cutting component only cuts a single rice noodle sheet, multiple cutting actions are required, resulting in low cutting efficiency.

[0004] Based on the above situation, there is an urgent need for a fresh rice noodle cutting machine to solve the problem of low efficiency. Utility Model Content

[0005] The purpose of this invention is to address the problem of low efficiency in existing cutting machines, which require multiple cutting actions because the cutting components only cut a single rice noodle sheet.

[0006] The technical solution of this utility model is as follows: A fresh rice noodle cutting machine, comprising: The feeding mechanism is used to transport fresh rice noodles; The stacking mechanism includes a movable seat disposed below the feeding mechanism, the movable seat being connected to a horizontal traction component for driving the movable seat to reciprocate; A cutting mechanism is installed between the stacking mechanism and the feeding mechanism; A strip-cutting mechanism includes a conveyor belt mounted on a movable seat, wherein a lifting rod is mounted on the movable seat and a strip-cutting cutter is rigidly connected to the lifting rod.

[0007] Existing cutting machines, because their cutting components only cut a single sheet of rice noodle skin, require multiple cutting actions, resulting in low cutting efficiency. In this solution, multiple layers of rice noodle skin are stacked using a stacking mechanism. After a specified number of layers are stacked, the cutting mechanism cuts the rice noodle skin, and then the strip-cutting mechanism further cuts the stacked rice noodle skin. Compared to the traditional single-sheet cutting method, this significantly reduces the number of actions of the cutting blades, lowers energy consumption and equipment wear, and improves efficiency, thus solving the problem of low efficiency.

[0008] Furthermore, this solution does not exclusively limit the specific structure of the horizontal traction assembly. One feasible solution is that the horizontal traction assembly includes an intermediate rod rotatably connected to the movable seat, the intermediate rod is connected to a rotating rod, and the movable seat is provided with at least two guide rods. When this solution is adopted, the rotational motion of the rotating rod is converted into the reciprocating linear motion of the movable seat using the crank-connecting rod structure principle, so as to facilitate the stacking of rice noodle sheets on the conveyor belt.

[0009] Furthermore, this solution is not limited to the driving structure of the rotating rod. One feasible solution is that the rotating rod is connected to a gearbox and a stacking motor is installed on the gearbox. When this solution is adopted, the speed of the stacking motor can be easily adjusted to match the feeding speed of the feeding mechanism through the gearbox.

[0010] Furthermore, to facilitate the adjustment of the travel of the movable seat, one feasible solution is that the rotating rod has several adjustment holes and the intermediate rod is engaged with one of the adjustment holes. When this solution is adopted, the travel of the movable seat can be conveniently and quickly adjusted by engaging the intermediate rod with different adjustment holes.

[0011] Furthermore, this solution does not exclusively limit the specific structure of the cutting mechanism. One feasible solution is that the cutting mechanism includes a linear guide rail mounted on the feeding mechanism and a cutting blade driven by the linear guide rail. When this solution is adopted, the cutting blade is moved by the linear guide rail to facilitate the cutting of rice noodle sheets.

[0012] Furthermore, this solution does not exclusively limit the specific structure of the feeding mechanism. One feasible solution is that the feeding mechanism includes a rod-type conveyor belt and a feeding motor for driving the rod-type conveyor belt. When this solution is adopted, the gap structure of the rod-type conveyor belt can effectively reduce the contact area between the rice noodle sheets, which are still sticky after steaming, and the rod-type conveyor belt, thereby effectively preventing the rice noodle sheets from sticking, stretching, or tearing during the conveying process. This gap structure also facilitates the uniform heat dissipation and cooling of the rice noodle sheets during the conveying process.

[0013] Compared with existing technologies, the beneficial effects of this utility model are: 1. Multiple layers of rice noodle sheets are stacked using the stacking mechanism. After a specified number of layers are stacked, the rice noodle sheets are cut by the cutting mechanism, and then the stacked rice noodle sheets are cut by the strip-cutting mechanism. Compared with the traditional single-sheet cutting method, this significantly reduces the number of times the cutting blade moves, reduces energy consumption and equipment wear, and improves efficiency, solving the problem of low efficiency. Second, since the horizontal traction assembly includes an intermediate rod rotatably connected to the movable seat, the intermediate rod is connected to a rotating rod, and the movable seat is provided with at least two guide rods, the rotational motion of the rotating rod is converted into the reciprocating linear motion of the movable seat by adopting the crank-connecting rod structure principle, so as to facilitate the stacking of rice noodle sheets on the conveyor belt; Third, since the rotating rod is connected to a gearbox and a stacking motor is installed on the gearbox, the speed of the stacking motor can be easily adjusted to match the feeding speed of the feeding mechanism through the gearbox. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model; Figure 2 This is a schematic diagram of the stacking mechanism structure of an embodiment of the present utility model; Figure 3 for Figure 1 Enlarged view of point A in the image; Figure 4 for Figure 1 Enlarged view of point B in the image; Figure 5 for Figure 2 Enlarged view of point C in the image.

[0015] Figure label: 1. Feeding mechanism; 2. Stacking mechanism; 3. Cutting mechanism; 4. Strip cutting mechanism; 11. Rod conveyor belt; 12. Feeding motor; 21. Movable seat; 22. Horizontal traction assembly; 23. Guide rod; 31. Linear guide rail; 32. Cutting blade; 41. Conveyor belt; 42. Lifting rod; 43. Strip cutting tool; 221. Intermediate rod; 222. Rotating rod; 223. Gearbox; 224. Stacking motor; 225. Adjustment hole. Detailed Implementation

[0016] It should be noted that relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the term "comprising" or any other variations thereof is intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes the element.

[0017] The features and performance of this utility model will be further described in detail below with reference to the embodiments.

[0018] Example: Please refer to Figure 1 and Figure 2 A fresh rice noodle cutting machine, comprising: Feeding mechanism 1 is used to transport fresh rice noodles; The stacking mechanism 2 includes a movable seat 21 disposed below the feeding mechanism 1, and the movable seat 21 is connected to a horizontal traction component 22 for driving the movable seat 21 to reciprocate. The cutting mechanism 3 is installed between the stacking mechanism 2 and the feeding mechanism 1; The slicing mechanism 4 includes a conveyor belt 41 mounted on a movable seat 21, a lifting rod 42 mounted on the movable seat 21, and a slicing cutter 43 rigidly connected to the lifting rod 42.

[0019] Existing cutting machines, because their cutting components only cut a single sheet of rice noodle skin, require multiple cutting actions, resulting in low cutting efficiency. In this solution, a stacking mechanism 2 stacks multiple layers of rice noodle skin. After stacking to a specified number of layers, a cutting mechanism 3 cuts the rice noodle skin, and then a strip-cutting mechanism 4 cuts the stacked rice noodle skin. Compared to the traditional single-sheet cutting method, this significantly reduces the number of actions of the strip-cutting blade 43, lowers energy consumption and equipment wear, and improves efficiency, thus solving the problem of low efficiency.

[0020] Reference Figure 2 and Figure 5This solution does not limit the specific structure of the horizontal traction component 22. One feasible solution is that the horizontal traction component 22 includes an intermediate rod 221 rotatably connected to the movable seat 21. The intermediate rod 221 is connected to a rotating rod 222. The movable seat 21 is provided with at least two guide rods 23. When this solution is adopted, the rotational motion of the rotating rod 222 is converted into the reciprocating linear motion of the movable seat 21 by using the crank-connecting rod structure principle, so as to facilitate the stacking of rice noodle sheets on the conveyor belt 41.

[0021] This solution is not limited to the driving structure of the rotating rod 222. One feasible solution is that the rotating rod 222 is connected to the gearbox 223 and the gearbox 223 is equipped with a stacking motor 224. When this solution is adopted, the speed of the stacking motor 224 can be easily adjusted to match the feeding speed of the feeding mechanism 1 through the gearbox 223.

[0022] To facilitate the adjustment of the travel of the movable seat 21, one feasible solution is to have several adjustment holes 225 formed on the rotating rod 222 and to have the intermediate rod 221 cooperate with one of the adjustment holes 225. When this solution is adopted, the travel of the movable seat 21 can be adjusted conveniently and quickly by cooperating the intermediate rod 221 with different adjustment holes 225.

[0023] Reference Figure 1 and Figure 3 This solution does not limit the specific structure of the cutting mechanism 3. One feasible solution is that the cutting mechanism 3 includes a linear guide rail 31 mounted on the feeding mechanism 1 and a cutting tool 32 driven by the linear guide rail 31. When this solution is adopted, the cutting tool 32 is moved by the linear guide rail 31 so as to cut the rice noodle skin.

[0024] Reference Figure 4 This solution does not limit the specific structure of the feeding mechanism 1. One feasible solution is that the feeding mechanism 1 includes a rod-type conveyor belt 11 and a feeding motor 12 for driving the rod-type conveyor belt 11. When this solution is adopted, the gap structure of the rod-type conveyor belt 11 can effectively reduce the contact area between the rice noodle sheets that are still sticky after steaming and the rod-type conveyor belt 11, thereby effectively preventing the rice noodle sheets from sticking, stretching or tearing during the conveying process. The gap structure is also conducive to the uniform heat dissipation and cooling of the rice noodle sheets during the conveying process.

[0025] The working principle of this embodiment: After steaming and cooling, the continuous rice noodle sheets are conveyed forward by the rod-type conveyor belt 11 of the feeding mechanism 1. When the front end of the rice noodle sheet reaches the top of the stacking mechanism 2, the movable seat 21 located below the feeding mechanism 1 begins to move back and forth under the drive of the horizontal traction component 22. The conveyor belt 41 on the movable seat 21 moves synchronously with the rice noodle sheet to receive the sheet material, and folds and stacks the sheet material neatly on its own during each return stroke. After reaching a predetermined number of layers, the linear guide rail 31 drives the cutting blade 43 to move, cutting the continuous rice noodle sheet and forming an independent multi-layer rice noodle pile on the conveyor belt 41. The conveyor belt 41 starts and drives the rice noodle pile to move towards the cutting mechanism 4. The lifting rod 42 drives the cutting blade 43 to press down, thereby cutting the entire rice noodle pile into uniform rice noodle strips, realizing automated and efficient production from single-layer sheet material to bundled rice noodle strips.

[0026] To address the issue of low efficiency, this solution utilizes a stacking mechanism 2 to stack multiple layers of rice noodle sheets. After reaching a specified number of layers, a cutting mechanism 3 cuts the rice noodle sheets, and then a strip-cutting mechanism 4 further cuts the stacked rice noodle sheets. Compared to the traditional single-sheet cutting method, this significantly reduces the number of movements of the strip-cutting blade 43, lowers energy consumption and equipment wear, and simultaneously improves efficiency, thus resolving the problem of low efficiency.

[0027] To facilitate the stacking of rice noodle sheets on the conveyor belt 41, in this design, the horizontal traction assembly 22 includes an intermediate rod 221 rotatably connected to the movable seat 21, the intermediate rod 221 is connected to a rotating rod 222, and the movable seat 21 is provided with at least two guide rods 23. The crank-connecting rod structure principle is used to convert the rotational motion of the rotating rod 222 into the reciprocating linear motion of the movable seat 21, so as to facilitate the stacking of rice noodle sheets on the conveyor belt 41.

[0028] In order to facilitate the adjustment of the moving frequency of the movable seat 21, in this scheme, since the rotating rod 222 is connected to the gearbox 223 and the gearbox 223 is equipped with a stacking motor 224, the speed of the stacking motor 224 can be adjusted to match the feeding speed of the feeding mechanism 1 through the gearbox 223.

[0029] The above description of the disclosed embodiments enables those skilled in the art to make or use the invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the invention. Therefore, the invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A fresh rice noodle cutting machine, characterized in that, include: Feeding mechanism (1) is used to transport fresh rice noodles; The stacking mechanism (2) includes a movable seat (21) disposed below the feeding mechanism (1), and the movable seat (21) is connected to a horizontal traction component (22) for driving the movable seat (21) to reciprocate. A cutting mechanism (3) is installed between the stacking mechanism (2) and the feeding mechanism (1); The slicing mechanism (4) includes a conveyor belt (41) mounted on a movable seat (21), on which a lifting rod (42) is mounted and the lifting rod (42) is rigidly connected to a slicing cutter (43).

2. The fresh rice noodle cutting machine according to claim 1, characterized in that, The horizontal traction assembly (22) includes an intermediate rod (221) rotatably connected to the movable seat (21), the intermediate rod (221) is connected to a rotating rod (222), and the movable seat (21) is provided with at least two guide rods (23).

3. The fresh rice noodle cutting machine according to claim 2, characterized in that, The rotating rod (222) is connected to a gearbox (223), and a stacking motor (224) is mounted on the gearbox (223).

4. A fresh rice noodle cutting machine according to claim 2, characterized in that, The rotating rod (222) has several adjusting holes (225) and the intermediate rod (221) is engaged with one of the adjusting holes (225).

5. A fresh rice noodle cutting machine according to claim 1, characterized in that, The cutting mechanism (3) includes a linear guide (31) mounted on the feeding mechanism (1) and a cutting tool (32) driven by the linear guide (31).

6. A fresh rice noodle cutting machine according to claim 1, characterized in that, The feeding mechanism (1) includes a rod conveyor belt (11) and a feeding motor (12) for driving the rod conveyor belt (11).