noodle press

By designing baffles, metering plates, and spring-loaded structures in the dough press, the problem of flour jamming was solved, enabling smooth flour conveying and efficient equipment operation.

CN224291126UActive Publication Date: 2026-05-29YUANCHU (GUAN) INTELLIGENT TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YUANCHU (GUAN) INTELLIGENT TECH CO LTD
Filing Date
2025-07-03
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

In existing dough sheeting machines, flour in the dough bucket is prone to getting stuck between the dough bucket and the mixing device, causing the flour to be transported poorly.

Method used

A dough press machine is designed, including a baffle, a metering plate, a stop ring, and a first drive assembly. The baffle and the metering plate are installed inside the stop ring. The baffle has an arc-shaped first elongated hole and a first spring sheet along its circumference. The metering plate has a contact hole. The first drive assembly drives the metering plate to rotate, and the spring sheet flips the flour to the dough outlet to avoid blockage.

Benefits of technology

This ensures smooth flour delivery, prevents flour blockage, and improves the operating efficiency and reliability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of noodle press, it is related to noodle press device technical field, including body, body includes the face bucket that is connected in turn, face feeding assembly, face feeding assembly includes baffle, ration board, stop ring, first drive assembly, baffle is installed in stop ring with ration board, and baffle fixed mounting is in stop ring, stop ring is installed in the bottom of face bucket, baffle is provided with arc first long hole, first elastic sheet along circumference, and first elastic sheet is welded on baffle, first elastic sheet is arranged in the side of baffle and ration board contact, the circumferential surface of ration board is uniformly provided with face hole, first drive assembly is connected with ration board by passing through stop ring, to drive ration board rotation to accept flour, stop ring is provided with face outlet, the position of first elastic sheet and the position of face outlet correspond, when ration board rotates, first elastic sheet can make flour in face hole bounce and fall in face outlet, can smoothly bounce and fall flour on ration board, avoid the situation that flour is jammed.
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Description

Technical Field

[0001] This utility model relates to the field of noodle pressing equipment technology, and in particular to a noodle pressing machine. Background Technology

[0002] In the prior art, a dough press machine includes a dough bucket, a mixing device, a dough pressing component, a dough cutting component, and a conveying component. The flour in the dough bucket is conveyed to the mixing device to be mixed with water. During the flour conveying process, due to the condition of the flour, the flour in the dough bucket often gets stuck between the dough bucket and the mixing device, resulting in the inability to convey the flour normally. Utility Model Content

[0003] The purpose of this invention is to provide a dough press machine to solve the technical problem in the prior art where flour often gets stuck between the dough container and the mixing device. The various technical effects of the preferred solutions among the many technical solutions provided by this invention are detailed below.

[0004] To achieve the above objectives, the present invention provides the following technical solution:

[0005] This utility model provides a dough press machine, including a main body. The main body includes a dough bucket and a dough feeding assembly connected in sequence. The dough feeding assembly includes a baffle, a metering plate, a stop ring, and a first drive assembly. The baffle and the metering plate are installed inside the stop ring, and the baffle is fixedly installed inside the stop ring. The stop ring is installed at the bottom of the dough bucket. The baffle has an arc-shaped first elongated hole and a first spring piece along its circumference. The first spring piece is located on the side of the baffle that contacts the metering plate. The metering plate has evenly distributed contact holes on its circumference. The first drive assembly passes through the stop ring and connects to the metering plate to drive the metering plate to rotate and receive flour. The stop ring has a dough outlet. The position of the first spring piece corresponds to the position of the contact holes. When the metering plate rotates, the first spring piece can flick the flour in the contact holes into the dough outlet.

[0006] Preferably, a scraper plate is provided on the side of the baffle near the metering plate, and the scraper plate corresponds to the position of the contact hole to scrape the flour in the contact hole.

[0007] Preferably, the side of the contact surface is set as an inclined surface.

[0008] Preferably, the dough bucket is provided with a stirring element, which is installed above the baffle, and the first drive assembly is connected to the stirring element through a fourth through hole in the baffle.

[0009] Preferably, the stirring component includes a stirrer, a stirring rod, and a stirring base. The circumferential surface of the stirrer is set as a conical surface and is installed on the stirring base. The stirring rod includes a horizontal rod, a vertical rod, and an inclined rod, and is evenly distributed on the lower circumferential surface of the stirring base.

[0010] Preferably, the main body further includes a mixing device, which has a first through hole for flour to enter and a second through hole for water to enter. An inlet sleeve, an inlet seat, an adjusting component, and a limiting component are provided between the outlet and the mixing device. A water inlet nozzle is detachably mounted on the inlet seat and is aligned with the second through hole. The inlet sleeve is connected to the outlet. A compression spring is provided between the inlet sleeve and the inlet seat. The adjusting component is mounted on the inlet seat and adjusts the distance between the inlet seat and the first through hole of the mixing device. The limiting component is mounted on the main body and has two limiting grooves of different heights for limiting the lifting and lowering of the adjusting component, thereby controlling the separation and contact between the mixing device and the inlet seat.

[0011] Preferably, the adjustment assembly further includes an adjustment rod, a mounting plate, a limiting block, and an electrical connector. The adjustment rod has a second elongated hole, and the limiting block passes through the second elongated hole and is mounted on the inlet seat, connecting the adjustment rod to the inlet seat. The mounting plate is mounted on the frame of the main body, and the adjustment rod is rotatably mounted on the mounting plate. The electrical connector is electrically connected to the control device of the main body and has a second elastic element. When the inlet seat contacts the mixing device, the second elastic element is pressed, and the electrical connector transmits a signal to the control device, which controls the main body to operate. When the inlet seat moves away from the mixing device, the second elastic element is released, and the electrical connector transmits a signal to the control device, which controls the main body to stop operating.

[0012] Preferably, the adjustment assembly further includes a guide post, which is mounted on the frame of the main body, and the inlet seat is provided with a third through hole for the guide post to pass through.

[0013] Preferably, the main body further includes a dough pressing assembly installed at the outlet of the mixing device. The dough pressing assembly includes a driving dough pressing roller, a driven dough pressing roller, an adjusting handwheel, a support base supporting the dough pressing roller, a second drive assembly, and a digital display. The second drive assembly is installed on the frame of the main body and drives the driving dough pressing roller to rotate. The driven dough pressing roller meshes with the driving dough pressing roller. The adjusting handwheel can adjust the distance between the support bases. Distance sensors are provided on the two support bases. The distance sensors are electrically connected to the digital display, and the digital display displays the values ​​detected by the distance sensors.

[0014] Preferably, the body further includes a cutting assembly, a conveying assembly, and a scraper assembly disposed below the conveying assembly. The conveying assembly receives the dough sheet pressed by the pressing assembly. The cutting assembly is mounted on the conveying assembly to cut the dough sheet. The cutting assembly includes a rotating shaft, a blade, a third drive assembly, and a blade mounting base. The blade is mounted on the rotating shaft. The third drive assembly drives the rotating shaft to rotate, thereby driving the blade to rotate. The scraper assembly scrapes off the noodles adhering to the conveyor belt of the conveying assembly.

[0015] The technical solution provided in this application document has the following beneficial effects:

[0016] This utility model provides a dough press machine, including a main body. The main body includes a dough bucket and a dough feeding assembly connected in sequence. To facilitate the smooth delivery of flour into the mixing device, the dough feeding assembly includes a baffle, a metering plate, a stop ring, and a first drive assembly. The baffle and the metering plate are installed inside the stop ring, and the baffle is fixedly installed inside the stop ring. The stop ring is installed at the bottom of the dough bucket, that is, within the space enclosed by the dough bucket and the stop ring. To facilitate dough extrusion, the baffle is provided with an arc-shaped first elongated hole and a first spring piece along its circumference. That is, the position of the first spring piece and the first elongated hole are different, and the first spring piece is welded to the baffle. The first spring piece is located on the baffle. On the side in contact with the metering plate, the metering plate has evenly spaced contact holes on its circumference. The first drive component passes through the stop ring and connects to the metering plate to drive the metering plate to rotate and receive flour. The stop ring has a flour outlet. The position of the first spring corresponds to the position of the flour outlet. When the metering plate rotates, the first spring can flick the flour in the contact holes into the flour outlet. That is, the flour in the flour bucket leaks from the first elongated hole into the contact holes on the metering plate. When the first drive component rotates, it drives the metering plate to rotate. The flour in the contact holes rotates to the position of the first spring in sequence. The first spring flicks the flour pinched by the contact holes down in sequence and then discharges it outward from the flour outlet on the stop ring.

[0017] With this setup, the flour on the dispensing plate can be smoothly ejected by the first spring, preventing flour blockage. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, 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.

[0019] Figure 1 This is a schematic diagram of the structure of a dough press provided in Embodiment 1 of this utility model;

[0020] Figure 2 This is a schematic diagram of the second side of a dough press machine according to an exemplary embodiment;

[0021] Figure 3 This is an exploded view of the dough assembly following the dough bucket, according to an exemplary embodiment.

[0022] Figure 4 This is a schematic diagram of the back structure of a baffle according to an exemplary embodiment;

[0023] Figure 5 This is a schematic diagram illustrating the structure of the bottom surface of a quantitative plate according to an exemplary embodiment;

[0024] Figure 6 yes Figure 5 Sectional view of AA;

[0025] Figure 7 This is a front view of the inlet assembly according to an exemplary embodiment;

[0026] Figure 8 This is a bottom view of the agitator according to an exemplary embodiment;

[0027] Figure 9 This is a perspective view of the inlet assembly according to an exemplary embodiment;

[0028] Figure 10 This is a side view of the inlet assembly according to an exemplary embodiment;

[0029] Figure 11 yes Figure 10 Sectional view of BB;

[0030] Figure 12 This is a schematic diagram illustrating the structure of a pressure surface assembly according to an exemplary embodiment;

[0031] Figure 13 This is a side view of the pressure surface assembly according to an exemplary embodiment;

[0032] Figure 14 This is a schematic diagram illustrating the structure of the output component and the slicing component according to an exemplary embodiment;

[0033] Figure 15 This is a bottom view of the agitator according to an exemplary embodiment.

[0034] In the diagram: 1. Dough bucket; 2. Dough inlet assembly; 21. Baffle; 211. First elongated hole; 212. First spring; 213. Scraper plate; 22. Metering plate; 221. Connecting hole; 222. Inclined surface; 223. Sixth through hole; 23. First drive assembly; 24. Stop ring; 25. Stirring component; 251. Stirrer; 252. Stirring rod; 253. Stirring base; 254. Protrusion; 3. Mixing device; 4. Dough inlet assembly; 40. Dough inlet sleeve; 41. Dough inlet seat; 42. Adjustment assembly; 421. Adjustment rod; 4 211. Second elongated hole; 422. Mounting plate; 423. Limiting block; 424. Electrical connector; 425. Second elastic element; 426. Guide post; 427. Water inlet; 43. Compression spring; 44. Limiting element; 5. Pressing assembly; 51. Driven pressing roller; 52. Driven pressing roller; 53. Adjusting handwheel; 54. Second drive assembly; 55. Digital display; 6. Conveying assembly; 61. Conveyor belt; 62. Scraper assembly; 63. Support frame; 7. Cutting assembly; 71. Rotary shaft; 72. Blade; 73. Third drive assembly. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be described in detail below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0036] This specific embodiment provides a dough press machine that solves the technical problem in the prior art where flour in the dough bucket often gets stuck between the dough bucket and the mixing device.

[0037] Hereinafter, embodiments will be described with reference to the accompanying drawings. Furthermore, the embodiments shown below do not limit the scope of the utility model as described in the claims. Additionally, the complete contents of the structures represented in the following embodiments are not limited to those necessary for the solution of the utility model as described in the claims.

[0038] Reference Figures 1-15This utility model provides a dough press machine, including a main body, which includes a dough bucket 1 and a dough feeding assembly 2 connected in sequence. In order to facilitate the smooth delivery of flour into the mixing device 3, the dough feeding assembly 2 includes a baffle 21, a metering plate 22, a stop ring 24, and a first drive assembly 23. The baffle 21 and the metering plate 22 are installed inside the stop ring 24, and the baffle 21 is fixedly installed inside the stop ring 24. The stop ring 24 is installed at the bottom of the dough bucket 1, that is, the baffle 21, the metering plate 22, and the stop ring 24 are located in the space enclosed by the dough bucket and the stop ring 24.

[0039] To facilitate flour discharge, the baffle 21 is provided with an arc-shaped first elongated hole 211 and a first spring piece 212 along its circumference. The first spring piece 212 is positioned differently from the first elongated hole 211, and is welded to the baffle 21. The first spring piece 212 is located on the side of the baffle 21 that contacts the measuring plate 22. The measuring plate 22 has evenly distributed contact holes 221 on its circumferential surface. The first drive assembly 23 passes through the stop ring 24 and connects to the measuring plate 22 to drive the measuring plate 22 to rotate and collect flour. The stop ring 24 has a flour outlet. The first spring piece 212... The position of 2 corresponds to the position of the receiving hole 221. When the metering plate 22 rotates, the first spring 212 can flick the flour in the receiving hole 221 onto the outlet. That is, the flour in the flour bucket 1 leaks from the first elongated hole 211 into the receiving hole 221 on the metering plate 22. When the first drive component 23 rotates, it drives the metering plate 22 to rotate. The flour in the receiving hole 221 rotates to the position of the first spring 212 in sequence. The first spring 212 flicks the flour pinched by the receiving hole 221 down in sequence, and then discharges it outward from the outlet position on the stop ring 24.

[0040] With this setup, the flour on the measuring plate 22 can be successfully ejected by the first spring 212, avoiding flour blockage.

[0041] In a further optimized design, a scraper plate 213 is provided on the side of the baffle 21 near the metering plate 22. The scraper plate 213 is positioned between the first elongated hole 211 and the first spring sheet 212. Figure 2 As shown, when the metering plate 22 rotates clockwise, the flour falls into the receiving hole 221 through the first elongated hole 211. The scraper plate 213 is positioned corresponding to the receiving hole 221. The scraper plate 213 scrapes the flour in the receiving hole 221 flat, while reducing the amount of flour falling into the gap between the metering plate 22 and the baffle 21.

[0042] To further optimize the design, an inclined surface 222 is provided on the side of the receiving face 221 to facilitate the smooth falling of the flour.

[0043] To further optimize the solution, in order for the flour in the flour bucket 1 to flow out smoothly, the flour bucket 1 is equipped with a stirring component 25. The stirring component 25 is installed above the baffle 21, and the first driving component 23 passes through the fourth through hole on the baffle 21 and is connected to the stirring component 25. In this way, the first driving component 23 can drive the metering plate 22 to move and also drive the stirring component 25 to move.

[0044] Further optimization of the design: the mixing component 25 includes a mixer 251, a mixing rod 252, and a mixing base 253. The circumferential surface of the mixer 251 is set as a conical surface and is installed on the mixing base 253 to facilitate the downward movement of flour along the conical surface. The mixing rod 252 includes a horizontal rod, a vertical rod, and an inclined rod, which are evenly distributed on the lower circumferential surface of the mixing base 253. The vertical rod includes a first rod and a second rod, with the axial direction of the first rod perpendicular to the axial direction of the second rod. The first rod is connected to the bottom of the mixing base 253. The inclined rod includes a third rod and a fourth rod, with the angle between the axis of the third rod and the axis of the fourth rod being an obtuse angle, which can cause a larger area of ​​flour to fall.

[0045] The end face of the stirring base 253 away from the stirrer 251 is provided with a protrusion 254. Since the diameter of the fourth through hole in the middle of the baffle 21 is larger than the diameter of the fifth through hole in the middle of the metering plate 22, the metering plate 22 is provided with a sixth through hole corresponding to the protrusion 254. The position of the protrusion 254 is within the range of the fifth through hole, so that the protrusion 254 is inserted into the sixth through hole 223. In this way, the first drive assembly 23 can drive the stirring component 25 and the metering plate 22 to rotate simultaneously.

[0046] Further optimization of the design includes a mixing device 3. To ensure smooth connection between the dough inlet assembly 2 and the mixing device 3, the mixing device 3 is equipped with a first through-hole for flour entry and a second through-hole for water entry. A dough inlet assembly 4 is provided between the dough outlet and the mixing device 3. The dough inlet assembly 4 includes a dough inlet sleeve 40, a dough inlet seat 41, and an adjusting component 42. A water inlet nozzle 427 is detachably mounted on the dough inlet seat 41, and the water inlet nozzle 427 is aligned with the second through-hole. The dough inlet sleeve 40 is connected to the dough outlet, and the dough inlet sleeve 40 is connected to the dough inlet... A compression spring 43 is installed between the inlet seats 41. An adjusting component 42 is mounted on the inlet seat 41 to adjust the distance between the inlet sleeve 40 and the first through hole of the mixing device 3. When the inlet seat 41 is raised by the adjusting component, it separates from the mixing device 3, compressing the spring 43 and maintaining its elasticity. This facilitates disassembly of the mixing device 3 and allows for easy maintenance in case of malfunction. When the inlet seat 41 contacts the mixing device 3, the spring 43 releases its elasticity, causing the inlet seat 41 to abut against the mixing device 3, ensuring a tight connection. Figure 9It can be seen that the position where the dough inlet seat 41 connects with the mixing device 3 is set in an arc shape, which can increase the contact area between the dough inlet seat 41 and the mixing device 3. The mixing device 3 is set in a cylindrical shape and has a spiral shaft inside, which facilitates the mixing of flour and water. The principle of the mixing device 3 is the same as that of the mixing device in the prior art.

[0047] Further optimizing the design, the adjustment component 42 includes an adjustment rod 421, a mounting plate 422, a limiting block 423, and an electrical connector 424. The adjustment rod 421 has a second elongated hole 4211, through which the limiting block 423 passes and is mounted on the inlet seat 41. This facilitates the up-and-down movement of the inlet seat 41 when the adjustment rod 421 rotates. Due to the second elongated hole 4211, which facilitates the up-and-down movement of the inlet seat 41, the installation of the adjustment rod 421 is carefully planned to ensure its stability. The mounting plate 422 is mounted on the frame of the main body, and the adjusting rod 421 is rotatably mounted on the mounting plate 422. The electrical connector 424 is electrically connected to the control device of the main body and is provided with a second elastic element 425. When the dough inlet seat 41 contacts the mixing device 3, the second elastic element 425 is pressed and accumulates elastic force. The control device controls the main body to make dough. When the second elastic element 425 returns to its elastic force, the dough inlet seat 41 separates from the mixing device 3, and the control device controls the main body to stop working to prevent flour and water from overflowing.

[0048] The main body is provided with a limiting member 44 to support the adjusting rod 421, so as to prevent the spring force from being too large and to press the second elastic member 425 in the adjusting rod pot.

[0049] To further optimize the design, in order to ensure that the inlet seat 41 can move straight up and down, the adjustment component 42 also includes a guide post 426. The guide post 426 is mounted on the frame of the main body, and the inlet seat 41 is provided with a third through hole for the guide post 426 to pass through, so that the inlet seat 41 can move up and down.

[0050] In a further optimized design, the main body also includes a dough pressing assembly 5 installed at the outlet of the mixing device 3. The dough pressing assembly 5 includes a driving dough pressing roller 51, a driven dough pressing roller 52, an adjusting handwheel 53, a support base for supporting the dough pressing roller, a second drive assembly 54, and a digital display 55. The second drive assembly 54 is mounted on the frame of the main body and drives the driving dough pressing roller 51 to rotate. The driven dough pressing roller 52 meshes with the driving dough pressing roller 51. The adjusting handwheel 53 can adjust the distance between the support bases. Specifically, the support base of the driven dough pressing roller 52 is adjustable, meaning that the adjusting handwheel 53 adjusts the support base of the driven dough pressing roller. Specifically, a slider is provided on the support base of the driven dough pressing roller. The screw of the adjusting handwheel 53 passes through the slider of the frame of the main body and is connected to it, thereby rotating the adjusting handwheel 53 to drive the driven dough pressing roller to move closer to and away from the driving dough pressing roller.

[0051] To facilitate the measurement of the distance between the driving roller 51 and the driven roller 52, distance sensors are installed on the two support bases. The distance sensors are electrically connected to the digital display 55, which displays the value detected by the distance sensors. This allows people to intuitively see the thickness of the pressed dough sheet.

[0052] To further optimize the design and facilitate cutting, the main body also includes a cutting component 7 and a conveying component 6. The conveying component 6 receives the dough sheet pressed by the pressing component 5. The cutting component 7 is installed on the conveying component 6 to cut the dough sheet. The cutting component 7 includes a rotating shaft 71, a blade 72, and a third drive component 73. The blade 72 is installed on the rotating shaft 71. The third drive component 73 drives the rotating shaft 71 to rotate, thereby driving the blade 72 to rotate. The blade 72 cuts the dough sheet once for each rotation.

[0053] To further optimize the design, a first contact is provided on the blade 72 to facilitate automatic blade identification, and a second contact is provided on each tool mounting base. The first contact and the second contact come into contact to identify the information of the blade 72. The second contact is electrically connected to the control system of the main body. With this configuration, when different blades 72 are used, the information of the blade 72 can be identified, and then the information of the blade 72 can be transmitted to the control device.

[0054] To further optimize the design and facilitate conveying, the conveying assembly 6 includes a support frame 63, a conveyor belt 61 fitted on the support frame 63, and a scraper assembly 62. The scraper assembly 62 is mounted on the support frame 63 and is located at the lower end of the output end of the conveying assembly 6, which reduces the chance of the sheet sticking to the conveyor belt 61.

[0055] It should be noted that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., used herein to indicate the orientation or positional relationship shown in the accompanying drawings, are merely for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or component 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. Furthermore, the terms "first," "second," and "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0056] In this description, it should also be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0057] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.

[0058] It is understood that the same or similar parts in the above embodiments can be referred to each other, and the content not described in detail in some embodiments can be referred to the same or similar content in other embodiments. The multiple solutions provided in this application contain their own basic solutions, are independent of each other, and do not restrict each other, but they can also be combined with each other without conflict to achieve multiple effects.

[0059] Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of this application.

Claims

1. A dough press machine, characterized in that, The device includes a main body, which comprises a dough bucket (1) and a dough feeding assembly (2) connected in sequence. The dough feeding assembly (2) includes a baffle (21), a metering plate (22), a stop ring (24), and a first drive assembly (23). The baffle (21) and the metering plate (22) are installed inside the stop ring (24), and the baffle (21) is fixedly installed inside the stop ring (24). The stop ring (24) is installed at the bottom of the dough bucket (1). The baffle (21) is provided with an arc-shaped first elongated hole (211) and a first spring piece (212) along the circumferential direction. The first spring piece (212) is provided with... On the side of the baffle (21) that contacts the metering plate (22), the metering plate (22) is provided with evenly spaced contact holes (221). The first drive component (23) passes through the stop ring (24) and connects to the metering plate (22) to drive the metering plate (22) to rotate and receive flour. The stop ring (24) is provided with a flour outlet. The position of the first spring piece (212) corresponds to the position of the contact hole (221). When the metering plate (22) rotates, the first spring piece (212) can bounce the flour in the contact hole (221) into the flour outlet.

2. The dough press machine according to claim 1, characterized in that, A scraper plate (213) is provided on the side of the baffle (21) near the metering plate (22). The scraper plate (213) is positioned corresponding to the contact hole (221) to scrape the flour in the contact hole (221) flat.

3. The dough press machine according to claim 1, characterized in that, The side of the contact face (221) is set as an inclined face (222).

4. The dough press machine according to claim 1, characterized in that, The dough bucket (1) is provided with a stirring component (25), which is installed above the baffle (21), and the first drive assembly (23) is connected to the stirring component (25) through the fourth through hole on the baffle (21).

5. The dough press machine according to claim 4, characterized in that, The stirring component (25) includes a stirrer (251), a stirring rod (252), and a stirring base (253). The circumferential surface of the stirrer (251) is set as a conical surface and is installed on the stirring base (253). The stirring rod (252) includes a horizontal rod, a vertical rod, and an inclined rod, and is evenly distributed on the lower circumferential surface of the stirring base (253).

6. The dough press machine according to claim 1, characterized in that, The main body also includes a mixing device (3), which has a first through hole for flour to enter and a second through hole for water to enter. Between the outlet and the mixing device (3) are an inlet sleeve (40), an inlet seat (41), an adjusting component (42), and a limiting component (44). A water inlet nozzle (427) is detachably mounted on the inlet seat (41), and the water inlet nozzle (427) is aligned with the second through hole. The inlet sleeve (40) is connected to the outlet. A compression spring (43) is provided between the inlet sleeve (40) and the inlet seat (41). The adjustment component (42) is installed on the inlet seat (41) to adjust the distance between the inlet seat (41) and the first through hole of the mixing device (3). The limiting member (44) is installed on the body and has two limiting grooves of different heights for limiting the lifting and lowering of the adjustment component (42), thereby controlling the separation and contact between the mixing device (3) and the inlet seat (41).

7. The dough press machine according to claim 6, characterized in that, The adjustment assembly (42) further includes an adjustment rod (421), a mounting plate (422), a limiting block (423), and an electrical connector (424). The adjustment rod (421) has a second elongated hole (4211). The limiting block (423) passes through the second elongated hole (4211) and is mounted on the inlet seat (41), connecting the adjustment rod (421) to the inlet seat (41). The mounting plate (422) is mounted on the frame of the main body. The adjustment rod (421) is rotatably mounted on the mounting plate (422). The gas connector (424) is electrically connected to the control device of the main body and is provided with a second elastic element (425). When the inlet seat (41) is in contact with the mixing device (3), the second elastic element (425) is pressed, and the electrical connector (424) transmits a signal to the control device, which controls the main body to work. When the inlet seat (41) is away from the mixing device (3), the second elastic element (425) is released, and the electrical connector (424) transmits a signal to the control device, which controls the main body to stop working.

8. The dough press machine according to claim 7, characterized in that, The adjustment assembly (42) also includes a guide post (426), which is mounted on the frame of the main body, and the inlet seat (41) is provided with a third through hole for the guide post (426) to pass through.

9. The dough press machine according to claim 6, characterized in that, The main body also includes a dough pressing assembly (5) installed at the outlet of the mixing device (3). The dough pressing assembly (5) includes a driving wheel dough pressing roller (51), a driven wheel dough pressing roller (52), an adjusting handwheel (53), a support base supporting the dough pressing roller, a second drive assembly (54), and a digital display (55). The second drive assembly (54) is installed on the frame of the main body and drives the driving wheel dough pressing roller (51) to rotate. The driven wheel dough pressing roller (52) meshes with the driving wheel dough pressing roller (51). The adjusting handwheel (53) can adjust the distance between the support bases. A distance sensor is provided on the two support bases. The distance sensor is electrically connected to the digital display (55). The digital display (55) displays the value detected by the distance sensor.

10. The dough press machine according to claim 9, characterized in that, The main body also includes a cutting component (7), a conveying component (6), and a scraper component (62) disposed below the conveying component. The conveying component (6) receives the dough sheet pressed by the pressing component (5). The cutting component (7) is installed on the conveying component (6) to cut the dough sheet. The cutting component (7) includes a rotating shaft (71), a blade (72), a third drive component (73), and a tool mounting base. The blade (72) is installed on the rotating shaft (71). The third drive component (73) drives the rotating shaft (71) to rotate, thereby driving the blade (72) to rotate. The scraper component (62) scrapes off the noodles that are stuck to the conveyor belt of the conveying component.