An automatic slicing machine
Patent Information
- Application Number
- CN202522296224.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-30
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-10-30
AI Technical Summary
[0004]本实用新型的目的在于提供自动切面机,旨在解决现有技术中的传统分离式面条生产设备因转运工序的存在,导致生产效率低的技术问题
[0016]本申请提供的自动切面机,通过将上料、压面、切面、下料机构集成于同一机架,面饼经压面机构加工后可直接进入切面机构,省去传统转运工序,提高了面条生产效率。
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Figure CN224791559U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of noodle production equipment, and in particular relates to an automatic noodle cutter. Background Technology
[0002] As one of my country's traditional staple foods, noodles have a long history and a broad market in their production and processing. With the development of mechanization in the food industry, noodle production has gradually moved away from the traditional manual production mode and towards mechanized processing. However, the current mainstream noodle production equipment still has significant defects in process separation.
[0003] In traditional noodle production, the two core processes of dough pressing and cutting require separate production equipment: first, the dough is repeatedly pressed into a uniform thickness using a dough pressing machine (such as the XZ-100 commercial dough press). After pressing, the dough is transferred manually or via a dedicated conveyor belt (such as the QY-300 food-grade conveyor belt) to a cutting machine (such as the MM-200 noodle cutter) for further processing. This separate processing method adds a dough transfer step, which is time-consuming and labor-intensive, resulting in low noodle production efficiency. Utility Model Content
[0004] The purpose of this invention is to provide an automatic noodle cutting machine, which aims to solve the technical problem of low production efficiency caused by the transfer process in traditional separate noodle production equipment.
[0005] To achieve the above objectives, the automatic noodle cutting machine provided in this embodiment includes a frame, a feeding mechanism, a driving mechanism, a dough pressing mechanism, a noodle cutting mechanism, and a discharging mechanism. The feeding mechanism is fixed to the top of the frame and disposed on one side of the dough pressing mechanism. The driving mechanism is fixed to the frame and connected to the dough pressing mechanism. The noodle cutting mechanism is fixed to the frame and drivenly connected to the dough pressing mechanism, and is disposed below the dough pressing mechanism. The discharging mechanism is fixed to the frame and disposed below the noodle cutting mechanism.
[0006] The pressing mechanism includes an active pressing component and a driven pressing component. The active pressing component is fixed to the frame and the drive mechanism, respectively. The driven pressing component is fixed to the frame and is connected to the active pressing component in a transmission manner. The active pressing component and the driven pressing component are arranged at intervals to form a pressing gap.
[0007] The slicing mechanism includes a slicing fixing seat, an active slicing component, and a driven slicing component. The slicing fixing seat is fixed to the frame, and the active slicing component and the driven slicing component are sequentially fixed to the slicing fixing seat. The active slicing component is disposed on one side of the driven slicing component.
[0008] As an optional embodiment of this utility model, the feeding mechanism includes a feeding hopper, a clamping plate, a support rod, and a limiting rod. One end of the feeding hopper is rotatably connected to the frame, and the other end is fixedly connected to the clamping plate. One end of the clamping plate is fixed to the feeding hopper, and the other end is installed on the support rod. The clamping plate is provided with multiple slots. The support rod is fixed to the frame and is disposed in the slots. The limiting rod is movably disposed on the frame and is disposed above the feeding hopper.
[0009] As an optional solution of this utility model, the driving mechanism includes a drive motor, a driving pulley, a driven pulley, and a transmission belt. The drive motor is fixed to the frame and fixedly connected to the driving pulley. The driven pulley is fixed to the active pressing surface assembly, and the transmission belt is fixedly wound around the driving pulley and the driven pulley respectively.
[0010] As an optional embodiment of this utility model, the active pressing assembly includes an active pressing roller, an active pressing bearing, a first drive gear, and a second drive gear. The active pressing roller is fixed to the driven pulley and is fixedly inserted through the active pressing bearing, which is fixed to the frame. The first drive gear is fixed to one end of the active pressing roller, and the second drive gear is fixed to the other end of the active pressing roller. The first drive gear is drivenly connected to the driven pressing assembly, and the second drive gear is drivenly connected to the active cutting assembly.
[0011] As an optional solution of this utility model, the driven pressing assembly includes a driven pressing roller, a driven pressing bearing seat, and a driven pressing gear. The driven pressing roller is fixedly inserted into the driven pressing bearing seat, and the driven pressing bearing seat is fixed to the frame. The driven pressing gear is fixed to the driven pressing roller and meshes with the first driving gear.
[0012] As an optional embodiment of this utility model, the active slicing assembly includes an active slicing roller, an active cutter, an active slicing bearing, a transmission gear, and an active slicing gear. The active slicing roller is fixedly mounted on the active slicing bearing. Multiple active cutters are provided and evenly fixed to the active slicing roller, with the multiple active cutters spaced apart. The active slicing bearing is fixed to the slicing fixing seat. The transmission gear is fixed to one end of the active slicing roller and meshes with the second drive gear. The active slicing gear is fixed to the active slicing roller and is drively connected to the driven slicing assembly, with the active slicing gear located on one side of the transmission gear.
[0013] As an optional embodiment of this utility model, the driven cutting assembly includes a driven cutting roller, a driven cutter, a driven cutting bearing, and a driven cutting gear. The driven cutting roller is fixedly mounted on the driven cutting bearing. Multiple driven cutters are provided and evenly fixed to the driven cutting roller, with the multiple driven cutters spaced apart and staggered with the driving cutter. The driven cutting bearing is fixed to the cutting fixing seat. The driven cutting gear is fixed to one end of the driven cutting roller and meshes with the driving cutting gear.
[0014] As an optional embodiment of this utility model, the feeding mechanism includes a feeding motor, an active feeding roller, a driven feeding roller, a feeding conveyor belt, and a drying roller. The feeding motor is fixed to the frame and is fixedly connected to the active feeding roller. The driven feeding roller is fixed to the frame. The feeding conveyor belt is fixedly wound around the active feeding roller and the driven feeding roller, respectively. The drying roller is movably disposed on the frame.
[0015] The automatic noodle cutter provided in this embodiment of the present invention has at least one of the following technical effects:
[0016] The automatic noodle cutting machine provided in this application integrates the feeding, pressing, cutting, and unloading mechanisms into the same frame. After the dough is processed by the pressing mechanism, it can directly enter the cutting mechanism, eliminating the traditional transfer process and improving the efficiency of noodle production. Attached Figure Description
[0017] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 A perspective view of the automatic noodle cutter provided in an embodiment of this utility model.
[0019] Figure 2 A perspective view of the automatic noodle cutter provided in an embodiment of this utility model.
[0020] Figure 3 A perspective view of the automatic noodle cutter provided in an embodiment of this utility model.
[0021] Figure 4 This is a perspective view of the automatic noodle cutter provided in an embodiment of the present invention, omitting the frame.
[0022] Figure 5 This is a perspective view of the automatic noodle cutter provided in an embodiment of the present invention, omitting the frame.
[0023] Figure 6 A perspective view of the cutting mechanism of the automatic noodle cutter provided in an embodiment of this utility model.
[0024] The following are the labeling elements in the figure:
[0025] 1. Frame; 2. Feeding mechanism; 3. Drive mechanism; 4. Pressing mechanism; 5. Cutting mechanism; 6. Unloading mechanism;
[0026] 21. Feeding hopper; 22. Pallet; 23. Support rod; 24. Limiting rod;
[0027] 31. Drive motor; 32. Drive pulley; 33. Driven pulley; 34. Transmission belt;
[0028] 41. Active pressing assembly; 42. Driven pressing assembly;
[0029] 51. Cutting surface fixing base; 52. Active cutting surface assembly; 53. Driven cutting surface assembly;
[0030] 61. Feeding motor; 62. Active feeding roller; 63. Driven feeding roller; 64. Feeding conveyor belt; 65. Drying roller;
[0031] 411. Active pressing roller; 413. First drive gear; 414. Second drive gear;
[0032] 421. Driven pressing roller; 422. Driven pressing bearing housing; 423. Driven pressing gear;
[0033] 521. Active cutting roller; 522. Active cutter; 524. Drive gear; 525. Active cutting gear;
[0034] 531. Driven cutting roller; 532. Driven cutter; 534. Driven cutting gear. Detailed Implementation
[0035] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the embodiments of this utility model, and should not be construed as limiting the utility model.
[0036] In the description of the embodiments of this utility model, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. They are only for the convenience of describing the embodiments of 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.
[0037] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of embodiments of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0038] In this embodiment of the invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this embodiment of the invention according to the specific circumstances.
[0039] In one embodiment of this utility model, such as Figures 1-6 As shown, an automatic noodle cutting machine is provided, including a frame 1, a feeding mechanism 2, a drive mechanism 3, a dough pressing mechanism 4, a noodle cutting mechanism 5, and a discharging mechanism 6. The feeding mechanism 2 is fixed to the top of the frame 1 and is located on one side of the dough pressing mechanism 4; the drive mechanism 3 is fixed to the frame 1 and connected to the dough pressing mechanism 4; the noodle cutting mechanism 5 is fixed to the frame 1 and is connected to the dough pressing mechanism 4 via a transmission connection, and is located below the dough pressing mechanism 4; the discharging mechanism 6 is fixed to the frame 1 and is located below the noodle cutting mechanism 5.
[0040] The pressing mechanism 4 includes an active pressing component 41 and a driven pressing component 42. The active pressing component 41 is fixed to the frame 1 and the drive mechanism 3 respectively. The driven pressing component 42 is fixed to the frame 1 and is connected to the active pressing component 41 in a transmission manner. The active pressing component 41 and the driven pressing component 42 are arranged at intervals to form a pressing gap.
[0041] The slicing mechanism 5 includes a slicing fixing seat 51, an active slicing component 52, and a driven slicing component 53. The slicing fixing seat 51 is fixed to the frame 1, and the active slicing component 52 and the driven slicing component 53 are sequentially fixed to the slicing fixing seat 51. The active slicing component 52 is disposed on one side of the driven slicing component 53.
[0042] In another embodiment of this utility model, the feeding mechanism 2 includes a feeding hopper 21, a clamping plate 22, a support rod 23, and a limiting rod 24. One end of the feeding hopper 21 is rotatably connected to the frame 1, and the other end is fixedly connected to the clamping plate 22. One end of the clamping plate 22 is fixed to the feeding hopper 21, and the other end is installed on the support rod 23. The clamping plate 22 is provided with multiple slots. The support rod 23 is fixed to the frame 1 and is disposed in the slots. The limiting rod 24 is movably disposed on the frame 1 and is disposed above the feeding hopper 21. The clamping plate 22 cooperates with the support rod 23 through its multiple slots, and the support rod 23 is inserted into different slots, which can change the tilt angle between the feeding hopper 21 and the frame 1, thereby adapting to dough with different moisture content (such as 30%-40% moisture content) (wet dough requires a smaller angle to prevent slippage too quickly, and dry dough requires a larger angle to promote slippage), avoiding blockage or uneven speed in the dough conveying process.
[0043] In another embodiment of this utility model, the drive mechanism 3 includes a drive motor 31, a drive pulley 32, a driven pulley 33, and a transmission belt 34. The drive motor 31 is fixed to the frame 1 and is fixedly connected to the drive pulley 32. The driven pulley 33 is fixed to the active pressing assembly 41, and the transmission belt 34 is fixedly wound around the drive pulley 32 and the driven pulley 33 respectively. The active pressing assembly 41 includes an active pressing roller 411, an active pressing bearing, a first drive gear 413, and a second drive gear 414. The active pressing roller 411 is fixed to the driven pulley 33 and is fixedly inserted through the active pressing bearing, which is fixed to the frame 1. The first drive gear 413 is fixed to one end of the active pressing roller 411, and the second drive gear 414 is fixed to the other end of the active pressing roller 411. The first drive gear 413 is driveably connected to the driven pressing assembly 42, and the second drive gear 414 is driveably connected to the active cutting assembly 52. The driven pressing assembly 42 includes a driven pressing roller 421, a driven pressing bearing seat 422, and a driven pressing gear 423. The driven pressing roller 421 is fixedly inserted through the driven pressing bearing seat 422, and the driven pressing bearing seat 422 is fixed to the frame 1. The driven pressing gear 423 is fixed to the driven pressing roller 421 and meshes with the first drive gear 413.
[0044] Among them, the drive mechanism 3 is the power core of the entire automatic noodle cutting machine, responsible for transmitting power to the noodle pressing and cutting mechanism 5: the drive motor 31 is fixed to the frame 1 and outputs torque as a power source, directly driving the drive pulley 32 to rotate; the drive pulley 32 transmits power synchronously to the driven pulley 33 fixed to the active noodle pressing assembly 41 through the transmission belt 34. With the help of the stability of the pulley transmission, the power is efficiently transmitted from the motor to the active noodle pressing assembly 41, providing continuous power support for the subsequent noodle pressing and cutting processes.
[0045] One end of the active dough pressing roller 411 is fixed to the driven pulley 33, which can rotate under the drive of the driven pulley 33. The active dough pressing bearing is fixed to the frame 1, which provides stable support for the active dough pressing roller 411, ensuring that it rotates without deviation and ensuring the uniformity of dough pressing. The first drive gear 413 is fixed to one end of the active dough pressing roller 411 and meshes with the driven dough pressing gear 423 of the driven dough pressing assembly 42, which transmits the power of the active dough pressing roller 411 to the driven dough pressing roller 421, driving the driven dough pressing roller 421 to rotate synchronously in the opposite direction, and cooperates with the active dough pressing roller 411 to complete the process of extruding the dough into a flatbread. The second drive gear 414 is fixed to the other end of the active dough pressing roller 411 and is connected to the active cutting assembly 52, realizing the diversion of power from the dough pressing mechanism 4 to the cutting mechanism 5, ensuring that the dough pressing and cutting processes run synchronously.
[0046] The driven pressing roller 421 is a component that works with the pressing roller. It is fixed to the frame 1 by the driven pressing roller bearing seat 422. Its surface is parallel to the active pressing roller 411. Driven by the driven pressing gear 423, it rotates synchronously in the opposite direction to the active pressing roller 411. The pressing gap formed by the two rollers can squeeze the dough and roll it into a dough cake of uniform thickness. The driven pressing gear 423 meshes with the first drive gear 413 of the active pressing assembly 41 to ensure that the rotation speed of the driven pressing roller 421 is consistent with that of the active pressing roller 411, thus ensuring a stable pressing process and a dough cake of uniform thickness.
[0047] In another embodiment of this utility model, the active slicing assembly 52 includes an active slicing roller 521, an active cutter 522, an active slicing bearing, a transmission gear 524, and an active slicing gear 525. The active slicing roller 521 is fixedly mounted on the active slicing bearing. Multiple active cutters 522 are provided and evenly fixed to the active slicing roller 521, with the multiple active cutters 522 spaced apart. The active slicing bearing is fixed to the slicing fixing seat 51. The transmission gear 524 is fixed to one end of the active slicing roller 521 and meshes with the second drive gear 414. The active slicing gear 525 is fixed to the active slicing roller 521 and is drivenly connected to the driven slicing assembly 53. The active slicing gear 525 is located on one side of the transmission gear 524. The driven cutting assembly 53 includes a driven cutting roller 531, a driven cutter 532, a driven cutting bearing, and a driven cutting gear 534. The driven cutting roller 531 is fixedly mounted on the driven cutting bearing. Multiple driven cutters 532 are provided and evenly fixed to the driven cutting roller 531. The multiple driven cutters 532 are spaced apart and are staggered with the driven cutter 522. The driven cutting bearing is fixed to the cutting fixing seat 51. The driven cutting gear 534 is fixed to one end of the driven cutting roller 531 and meshes with the driven cutting gear 525.
[0048] The active cutting roller 521 is fixed to the cutting mounting base 51 via an active cutting bearing. The bearing ensures that the roller rotates without deviation and with high stability, providing a stable installation and rotation basis for the active cutter 522. The active cutter 522 is fixed at even intervals on the surface of the active cutting roller 521 and directly contacts the dough to complete the initial cutting. The spacing of multiple cutters can control the width of the noodles and ensure uniform specifications. The transmission gear 524 is fixed to one end of the active cutting roller 521 and meshes with the second drive gear 414 of the pressing mechanism 4. It can transmit the power of the active pressing roller 411 to the active cutting roller 521, realizing the synchronous linkage of pressing and cutting processes. The active cutting gear 525 is fixed to the active cutting roller 521 and is on the same side as the transmission gear 524. It can divert the power of the active cutting roller 521 to the driven cutting assembly 53, ensuring that the two rotate at the same speed and in opposite directions, providing a basis for coordinated cutting. The driven cutting roller 531 is fixed to the cutting mounting base 51 via a driven cutting bearing and is arranged parallel to the active cutting roller 521. It serves as the mounting carrier for the driven cutter 532 and rotates synchronously with the active cutting assembly 52. The driven cutters 532 are evenly spaced on the surface of the driven cutting roller 531 and are staggered with the active cutter 522. This fills the cutting gaps of the active cutter 522, preventing uncut areas from remaining in the dough and ensuring thorough cutting to form complete noodles without any connecting blades. The driven cutting gear 534 is fixed to one end of the driven cutting roller 531 and meshes with the active cutting gear 525 of the active cutting assembly 52. After receiving power, it drives the driven cutting roller 531 to rotate synchronously in the opposite direction, ensuring that the cutting rhythm of the cutter matches the dough and preventing dough accumulation or noodle breakage. The driven cutting bearing provides stable support for the driven cutting roller 531, reduces rotational friction, and ensures smooth rotation of the roller.
[0049] In another embodiment of this utility model, the feeding mechanism 6 includes a feeding motor 61, an active feeding roller 62, a driven feeding roller 63, a feeding conveyor belt 64, and a drying roller 65. The feeding motor 61 is fixed to the frame 1 and is fixedly connected to the active feeding roller 62. The driven feeding roller 63 is fixed to the frame 1. The feeding conveyor belt 64 is fixedly wound around the active feeding roller 62 and the driven feeding roller 63 respectively. The drying roller 65 is movably disposed on the frame 1.
[0050] The feeding motor 61, serving as the power source for the feeding mechanism 6, is stably mounted on a motor bracket fixed to the frame 1. Its output shaft is directly connected to the active feeding roller 62, providing stable torque to drive the active feeding roller 62 to rotate, thus providing continuous power for the entire feeding and conveying process. One end of the active feeding roller 62 is rigidly connected to the feeding motor 61, while the other end is fixed to the frame 1 via a bearing. It can rotate actively under the motor's drive. Through friction with the feeding conveyor belt 64, it drives the conveyor belt to circulate, while simultaneously cooperating with the driven feeding roller 63 to achieve belt tensioning and smooth conveying. The driven feeding roller 63, serving as an auxiliary support and tensioning component for the conveyor belt, is fixed to the frame 1 via bearings (parallel to and spaced apart from the active feeding roller 62). It has no power input of its own and passively rotates with the movement of the conveyor belt. Its fixed position and cooperation with the active feeding roller 62 can tension the conveyor belt, preventing conveying jams caused by belt slack, while ensuring a flat conveyor belt surface and providing a stable conveying medium for the noodles. The feeding conveyor belt 64 is the direct transport carrier for the noodles. By winding around the active feeding roller 62 and the driven feeding roller 63, it forms an inclined or horizontal transport channel, quickly transferring the noodles cut by the cutting mechanism 5 to the drying roller 65. The drying roller 65 is the initial processing component for the noodles. It is movably connected to the frame 1 (located below the output end of the conveyor belt) via bearings and can rotate freely. After being transported by the conveyor belt, the noodles fall onto the drying roller 65, which can initially unfold the stacked noodles, increase the contact area between the noodles and the air, achieve initial drainage of surface moisture, and pre-treat for subsequent drying or packaging processes, thereby improving overall production efficiency.
[0051] The automatic noodle cutting machine provided in this application integrates the feeding, pressing, cutting and unloading mechanisms 6 into the same frame 1. After the dough is processed by the pressing mechanism 4, it can directly enter the cutting mechanism 5, eliminating the traditional transfer process and improving the noodle production efficiency.
[0052] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. An automatic noodle cutting machine, characterized in that, The device includes a frame, a feeding mechanism, a driving mechanism, a dough pressing mechanism, a dough cutting mechanism, and a discharging mechanism. The feeding mechanism is fixed to the top of the frame and disposed on one side of the dough pressing mechanism. The driving mechanism is fixed to the frame and connected to the dough pressing mechanism. The dough cutting mechanism is fixed to the frame and drivenly connected to the dough pressing mechanism, and is disposed below the dough pressing mechanism. The discharging mechanism is fixed to the frame and disposed below the dough cutting mechanism. The pressing mechanism includes an active pressing component and a driven pressing component. The active pressing component is fixed to the frame and the drive mechanism, respectively. The driven pressing component is fixed to the frame and is drively connected to the active pressing component. The active pressing component and the driven pressing component are spaced apart to form a pressing gap. The slicing mechanism includes a slicing fixing seat, an active slicing component, and a driven slicing component. The slicing fixing seat is fixed to the frame, and the active slicing component and the driven slicing component are sequentially fixed to the slicing fixing seat. The active slicing component is disposed on one side of the driven slicing component.
2. An automatic noodle cutting machine according to claim 1, characterized in that, The feeding mechanism includes a feeding hopper, a clamping plate, a support rod, and a limiting rod. One end of the feeding hopper is rotatably connected to the frame, and the other end is fixedly connected to the clamping plate. One end of the clamping plate is fixed to the feeding hopper, and the other end is installed on the support rod. The clamping plate is provided with multiple clamping slots. The support rod is fixed to the frame and is disposed in the clamping slots. The limiting rod is movably disposed on the frame and is disposed above the feeding hopper.
3. An automatic noodle cutting machine according to claim 1, characterized in that, The drive mechanism includes a drive motor, a drive pulley, a driven pulley, and a transmission belt. The drive motor is fixed to the frame and is fixedly connected to the drive pulley. The driven pulley is fixed to the active pressing assembly, and the transmission belt is fixedly wound around the drive pulley and the driven pulley respectively.
4. An automatic noodle cutting machine according to claim 3, characterized in that, The active pressing assembly includes an active pressing roller, an active pressing bearing, a first drive gear, and a second drive gear. The active pressing roller is fixed to the driven pulley and is fixedly inserted through the active pressing bearing, which is fixed to the frame. The first drive gear is fixed to one end of the active pressing roller, and the second drive gear is fixed to the other end of the active pressing roller. The first drive gear is drivenly connected to the driven pressing assembly, and the second drive gear is drivenly connected to the active cutting assembly.
5. An automatic noodle cutting machine according to claim 4, characterized in that, The driven pressing assembly includes a driven pressing roller, a driven pressing bearing seat, and a driven pressing gear. The driven pressing roller is fixedly mounted on the driven pressing bearing seat, and the driven pressing bearing seat is fixed to the frame. The driven pressing gear is fixed to the driven pressing roller and meshes with the first driving gear.
6. An automatic noodle cutting machine according to claim 4, characterized in that, The active slicing assembly includes an active slicing roller, an active cutter, an active slicing bearing, a transmission gear, and an active slicing gear. The active slicing roller is fixedly mounted on the active slicing bearing. Multiple active cutters are provided and evenly fixed to the active slicing roller, with the multiple active cutters spaced apart. The active slicing bearing is fixed to the slicing fixing seat. The transmission gear is fixed to one end of the active cutting roller and meshes with the second drive gear; the active cutting gear is fixed to the active cutting roller and is connected to the driven cutting assembly in a transmission manner, and the active cutting gear is located on one side of the transmission gear.
7. An automatic noodle cutting machine according to claim 6, characterized in that, The driven cutting assembly includes a driven cutting roller, a driven cutter, a driven cutting bearing, and a driven cutting gear. The driven cutting roller is fixedly mounted on the driven cutting bearing. Multiple driven cutters are provided and evenly fixed to the driven cutting roller, with the multiple driven cutters spaced apart and staggered with the driven cutter. The driven cutting bearing is fixed to the cutting fixing seat. The driven cutting gear is fixed to one end of the driven cutting roller and meshes with the driven cutting gear.
8. An automatic noodle cutting machine according to claim 1, characterized in that, The feeding mechanism includes a feeding motor, an active feeding roller, a driven feeding roller, a feeding conveyor belt, and a drying roller. The feeding motor is fixed to the frame and is fixedly connected to the active feeding roller. The driven feeding roller is fixed to the frame. The feeding conveyor belt is fixedly wound around the active feeding roller and the driven feeding roller, respectively. The drying roller is movably mounted on the frame.