A new type of knife cutting machine

By improving the noodle-cutting device, noodle-supporting device, and lifting device of the noodle-cutting machine, the problems of noodle-cutting stability and inconvenient adjustment were solved, and efficient and stable noodle production was achieved.

CN224386611UActive Publication Date: 2026-06-23XINGTAI JIAJIA MACHINERY MANUFACTURING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XINGTAI JIAJIA MACHINERY MANUFACTURING CO LTD
Filing Date
2025-07-17
Publication Date
2026-06-23

AI Technical Summary

Technical Problem

Existing noodle-slicing machines suffer from poor noodle-slicing stability, inconvenient noodle-supporting device adjustment, and cumbersome lifting and lowering adjustments, which affect noodle-slicing accuracy and efficiency.

Method used

It adopts a combined design of a noodle-shaving device, a noodle-supporting device, and a lifting device. It utilizes a transmission structure such as a motor drive, pulleys, connecting rods, sprockets, and chains to achieve stable cutting by the noodle-shaving blade, precise movement of the noodle-supporting panel, and height adjustment. It is combined with automatic control by induction switches and controllers.

Benefits of technology

It improves the quality of shaving noodles, ensures uniform noodle thickness, enhances ease of operation and reliability, and achieves fully automated production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a novel knife cuts noodle machine belongs to the technical field of noodle processing equipment, the knife cuts noodle machine includes two side supports, is equipped with noodle cutting device on two side supports, and the noodle cutting device includes the rocker arm rotation setting in the upper side support, and the rocker arm top detachable installation has noodle cutting knife, is equipped with noodle supporting device between two rocker arms, and the noodle supporting device includes the noodle supporting plate, horizontal shift support, fixed support, and the noodle supporting plate cover is equipped with in the upper horizontal shift support, and the horizontal shift support is set in the upper fixed support and can move left and right, is fixedly connected with the lifting support plate between two side supports, and the lifting support plate is liftable and movable with lifting device, and the lifting device includes the lifting support, and the lifting support is connected with fixed support and can drive fixed support lifting movement. The utility model discloses a novel knife cuts noodle machine cuts noodle precision height, and the stability is strong, and the noodle horizontal shift is smooth controllable, and the lifting regulation is flexible, and the degree of automation is high, and the security and the maintainability are excellent, and the efficiency and the quality are promoted.
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Description

Technical Field

[0001] This utility model relates to the technical field of pasta processing equipment, specifically to a novel knife-cut noodle machine. Background Technology

[0002] Knife-cut noodles, a traditional noodle dish, are beloved by consumers for their chewy texture and unique shape. With the development of industrialized catering, knife-cut noodle machines are gradually replacing manual noodle cutting and are widely used in restaurants, canteens, and other settings to improve production efficiency. However, existing knife-cut noodle machines still have many shortcomings:

[0003] Poor stability of noodle cutting: Most noodle cutting devices drive the noodle cutting blade through a simple crank or cam transmission. Due to transmission gaps, the swing amplitude of the noodle cutting blade is easily unstable, resulting in uneven thickness and length of the cut noodles, which affects the taste and appearance.

[0004] The dough-supporting device is difficult to adjust: the left and right movement of the dough-supporting mechanism mostly uses ordinary slide rails, which are prone to jamming and deviation, and lack precise stroke control, resulting in unstable dough-supporting position, which further affects the accuracy of dough cutting.

[0005] The height adjustment is cumbersome: the height adjustment of the dough support device mostly relies on manual knobs or hydraulic rods, which has low adjustment accuracy and is difficult to adapt to dough of different thicknesses or dough containers of different heights.

[0006] Therefore, there is an urgent need for a new type of noodle-slicing machine that is structurally stable, precisely adjustable, highly automated, and safe, in order to overcome the shortcomings of existing technologies. Summary of the Invention

[0007] The technical problem to be solved by this utility model is to propose a new type of noodle-slicing machine to address the above-mentioned shortcomings of the existing technology.

[0008] To achieve its purpose, this utility model adopts the following technical solution:

[0009] A novel noodle-slicing machine includes: two side supports, and a noodle-slicing device is provided on the two side supports. The noodle-slicing device includes a rocker arm rotatably disposed above the side supports, and a noodle-slicing blade is detachably mounted on the top of the rocker arm.

[0010] A surface support device is provided between the two rocker arms. The surface support device includes a support panel, a transverse support, and a fixed support. The support panel is placed above the transverse support, and the transverse support is movably positioned above the fixed support.

[0011] A lifting support plate is fixedly connected between the two side supports. A lifting device is movable on the lifting support plate. The lifting device includes a lifting bracket, which is connected to the fixed bracket and can drive the fixed bracket to move up and down.

[0012] Preferably, the face-shaving device further includes a face-shaving drive motor, a first pulley, a second pulley, a first connecting rod, a traction shaft, and a second connecting rod. The first pulley and the second pulley are located on a side bracket on one side. The output end of the face-shaving drive motor is connected to the first pulley. The first pulley is connected to the second pulley via a belt. The middle of the second pulley is connected to the first connecting rod. The other end of the first connecting rod is hinged to the traction shaft. The other end of the traction shaft is hinged to the second connecting rod.

[0013] The second pulley is connected to the first link on the side bracket on the other side via a rotating shaft. The first link is hinged to the traction shaft, and the other end of the traction shaft is hinged to the second link.

[0014] The ends of the two second links furthest from the traction shaft are respectively hinged to the bottom end of the rocker arm.

[0015] Preferably, the bottom of the transverse support is provided with a first square slider, and the fixed support is provided with a first square slide rail, and the first square slider is slidably mounted on the first square slide rail.

[0016] Preferably, the support device further includes a transverse drive motor, a first sprocket, a second sprocket, a third sprocket, and a first chain. The transverse drive motor is mounted on a lifting bracket, and the output end of the transverse drive motor passes through the lifting bracket and is connected to the first sprocket. The second and third sprockets are mounted on the upper sides of a fixed bracket. The first sprocket is connected to the second and third sprockets via the first chain. The bottom of the transverse bracket is fixed to the first chain.

[0017] Preferably, a horizontal movement induction switch is provided on both sides below one end of the fixed bracket, and an induction plate is provided at one end of the horizontal movement bracket, with the induction plate located between the two horizontal movement induction switches.

[0018] Preferably, the lifting support plate is provided with second square sliders on both sides, and the lifting bracket is provided with second square slide rails on both sides, with the second square slide rails slidably mounted on the second square sliders.

[0019] Preferably, the lifting device further includes a lifting drive motor, a fourth sprocket, a fifth sprocket, a second chain, and a lead screw. The lifting drive motor is fixed on the mounting plate of the two side brackets. The output end of the lifting drive motor is connected to the fourth sprocket. The fourth sprocket is connected to the fifth sprocket on the mounting plate through the second sprocket. The fifth sprocket is coaxially connected to the lead screw, and the lead screw is threadedly connected to the nut at the bottom of the lifting bracket.

[0020] Preferably, one of the side supports is provided with a long groove, and lifting sensor switches are provided at both ends of the long groove. A sensor plate is provided on one side of the bottom of the lifting support, and the sensor plate moves back and forth in the long groove.

[0021] Preferably, the two side supports are hinged to the outer sides with protective covers, which are connected to the side walls of the side supports by quick-release latches.

[0022] Preferably, the noodle-slicing machine is also equipped with a controller, and an operation panel is provided on the chassis between the two side supports.

[0023] This utility model discloses a noodle-slicing machine, comprising a noodle-slicing device, a noodle-supporting device, and a lifting device. The noodle-slicing device drives the noodle-slicing blade to perform reciprocating cutting motion. Through a transmission structure of "noodle-slicing drive motor + pulley + connecting rod + traction shaft," it drives the rocker arm to perform stable reciprocating swing, ensuring a consistent cutting trajectory of the noodle-slicing blade and effectively avoiding uneven noodle thickness caused by transmission gaps, thus improving noodle quality. The noodle-supporting device carries the dough and moves it left and right, allowing the noodle-slicing blade to evenly cut the entire dough. A transverse drive motor drives a sprocket and chain to move the transverse support and noodle-supporting frame left and right reciprocating. Furthermore, the noodle-supporting device uses a square slider and square slide rail to avoid rotational deviation during transverse movement, ensuring smooth movement of the support plate. Simultaneously, through the cooperation of a transverse induction switch and an induction plate, the left and right limit positions of the transverse support are precisely controlled, preventing overtravel and jamming, and improving operational reliability. The lifting device, through a transmission of "lifting drive motor + sprocket + lead screw," drives the noodle-supporting device to achieve precise height adjustment without manual intervention, improving operational convenience.

[0024] In addition, the noodle-slicing machine of this invention adopts a fully enclosed design to prevent rats from entering the machine and chewing through the circuit. Attached Figure Description

[0025] For ease of explanation, this utility model is described in detail below with reference to the specific embodiments and accompanying drawings.

[0026] Figure 1 This is a schematic diagram of the overall structure of this embodiment;

[0027] Figure 2 This is a schematic diagram of the left side support structure in this embodiment;

[0028] Figure 3 This is a schematic diagram of the right-side support structure in this embodiment;

[0029] Figure 4 This is a schematic diagram of the support device structure in this embodiment;

[0030] Figure 5 This is a schematic diagram of the lifting device structure in this embodiment.

[0031] In the picture:

[0032] 100-Side bracket; 101-Long slot; 102-Lifting sensor switch; 103-Protective cover; 104-Quick release latch;

[0033] 200-Slicing device; 201-Rocker arm; 202-Slicing blade; 203-Slicing drive motor; 204-First pulley; 205-Second pulley; 206-First connecting rod; 207-Traction shaft; 208-Second connecting rod;

[0034] 300-Surface support device; 301-Surface support panel; 302-Horizontal movement bracket; 303-Fixed bracket; 304-First square slider; 305-First square slide rail; 306-Horizontal movement drive motor; 307-Second sprocket; 308-Third sprocket; 309-First chain; 310-Horizontal movement induction switch; 311-Induction plate;

[0035] 400-Lifting device; 401-Lifting bracket; 402-Second square slide rail; 403-Lifting drive motor; 404-Fourth sprocket; 405-Fifth sprocket; 406-Second chain; 407-Lead screw; 408-Nut; 409-Induction plate;

[0036] 500-Lifting support plate;

[0037] 600 - Mounting plate. Detailed Implementation

[0038] The following are specific embodiments of the present invention described in conjunction with the accompanying drawings, further illustrating the technical solution of the present invention. However, the present invention is not limited to these embodiments. Specific details such as particular configurations and components are provided in the following description merely to aid in a comprehensive understanding of the embodiments of the present invention. Therefore, those skilled in the art should understand that various changes and modifications can be made to the embodiments described herein without departing from the scope and spirit of the present invention. Furthermore, for clarity and brevity, descriptions of known functions and structures have been omitted.

[0039] It should be noted that, where there is no conflict, the embodiments and features in the embodiments of this utility model can be combined with each other.

[0040] like Figure 1-5 As shown, this embodiment provides a novel noodle-slicing machine with two symmetrically arranged side supports 100. A noodle-slicing device 200 is located above each side support 100, a noodle-supporting device 300 is located in the middle, and a lifting device 400 is located at the bottom. The two side supports 100 are fixedly connected by a lifting support plate 500, forming a stable frame structure. The equipment is also equipped with a controller (installed in the chassis between the two side supports 100) and an operation panel (not shown in the figure) for controlling the coordinated operation of the various devices.

[0041] The face-shaving device 200 drives the face-shaving blade 202 to perform reciprocating cutting motion. It includes a rocker arm 201, face-shaving blade 202, face-shaving drive motor 203, first pulley 204, second pulley 205, first connecting rod 206, traction shaft 207, and second connecting rod 208. The first pulley 204 and second pulley 205 are located on a side bracket 100 on one side. The output end of the face-shaving drive motor 203 is connected to the first pulley 204. The first pulley 204 is connected to the second pulley 205 via a belt. The middle of the second pulley 205 is connected to the first connecting rod 206. The other end of the rod 206 is hinged to the traction shaft 207, and the other end of the traction shaft 207 is hinged to the second connecting rod 208; the second pulley 205 is connected to the first connecting rod 206 on the side bracket 100 on the other side through a rotating shaft. The first connecting rod 206 is hinged to the traction shaft 207, and the other end of the traction shaft 207 is hinged to the second connecting rod 208; the ends of the two second connecting rods 208 away from the traction shaft 207 are respectively hinged to the bottom end of the rocker arm 201, thereby ensuring that the rocker arms 201 on both sides move synchronously; the top of the rocker arm 201 is detachably mounted with a face-slicing knife 202 by bolts, and different blades can be replaced as needed.

[0042] When in operation, the face-cutting drive motor 203 is started. The first pulley 204 drives the second pulley 205 to rotate through the belt drive. The second pulley 205 drives the first connecting rod 206 to swing around its axis. Then, the second connecting rod 208 is pulled through the traction shaft 207, so that the rocker arm 201 swings back and forth around the rotation point above the side support 100 as the axis, and finally realizes the "cutting-reset" cycle action of the face-cutting knife 202.

[0043] The dough support device 300 is used to support the dough and move it left and right, so that the dough-cutting blade 202 can evenly cut the entire dough. It includes a support plate 301, a horizontal movement bracket 302, a fixed bracket 303, a horizontal movement drive motor 306, a first sprocket (not shown), a second sprocket 307, a third sprocket 308, a first chain 309, a horizontal movement sensor switch 310, and a sensor plate 311. The bottom of the horizontal movement bracket 302 is provided with a first square slider 304, and the fixed bracket 303 is provided with a parallel first square slide rail 305. The first square slider 304 is embedded in the first square slide rail 305 to ensure that the horizontal movement bracket 302 slides smoothly in a straight line. The horizontal movement drive motor 306 is mounted on a lifting bracket 401, and the output end of the horizontal movement drive motor 306 passes through the lifting bracket 401 and connects to the first square slide rail 309. A first sprocket is connected to the second sprocket 307 and the third sprocket 308, which are installed on both sides above the fixed bracket 303. The first sprocket is connected to the second sprocket 307 and the third sprocket 308 through the first chain 309. The bottom of the transverse support 302 is fixed on the first chain 309. When the chain rotates, it drives the transverse support 302 to move left and right synchronously. A transverse induction switch 310 is provided on both sides below one end of the fixed bracket 303. A sensing plate 311 is provided at the corresponding end of the transverse support 302. When the transverse support 302 moves to the left limit position, the sensing plate 311 triggers the left transverse induction switch 310. The controller controls the transverse drive motor 306 to reverse, driving the transverse support 302 to move to the right. Similarly, when the right induction switch 310 is triggered, the motor rotates forward, realizing automatic reciprocating transverse movement.

[0044] The lifting device 400 is used to adjust the height of the dough-holding device 300 to accommodate different dough thicknesses or dough-receiving containers. It includes a lifting bracket 401, a lifting drive motor 403, a fourth sprocket 404, a fifth sprocket 405, a second chain 406, a lead screw 407, a lifting sensor switch 102, and a sensor plate 409. The lifting support plate 500 has a second square slider (not shown in the figure) on both sides, and the lifting bracket 401 has a second square slide rail 402 on both sides. The second square slide rail 402 is slidably installed on the second square slider to ensure that the lifting bracket 401 rises and falls smoothly in the vertical direction. The lifting drive motor 403 is fixed on the mounting plate 600 of the brackets of the two side brackets 100. The output end of the lifting drive motor 403 is connected to the fourth sprocket 404. The fourth sprocket 404 is connected to the fifth sprocket 405 on the mounting plate 600 through the second chain 406. The fifth sprocket 405 is coaxially connected to the lead screw 407. The lead screw 407 is threadedly connected to the nut 408 at the bottom of the lifting bracket 401. When the lifting drive motor 403 is running, the lead screw 407 rotates and drives the lifting bracket 401 (and the connected fixed bracket 303 and the support device 300) to rise and fall through the threaded engagement. One of the side supports 100 is provided with a long groove 101, and the long groove 101 is provided with lifting sensor switches 102 at both ends. The sensor plate 409 on the bottom side of the lifting support 401 extends into the long groove 101. When the lifting support 401 rises to the upper limit, the sensor plate 409 triggers the upper switch 102, and the motor stops running. When it falls to the lower limit, it triggers the lower switch 102, so as to achieve precise height control.

[0045] Protective covers 103 are hinged to the outer sides of the side supports 100 on both sides. The protective covers 103 can be rotated around the hinge axis. When closed, they are fixed to the side supports 100 by quick-release locks 104, which isolates the operating parts of the dough cutting device 200 and the dough supporting device 300, prevents dough fragments from splashing or being accidentally touched, and also facilitates machine maintenance or replacement of parts.

[0046] The controller inside the machine casing of the noodle slicing machine is electrically connected to the noodle slicing drive motor 203, the transverse drive motor 306, the lifting drive motor 403, and various induction switches. The noodle slicing speed, transverse frequency, lifting height, and other parameters can be set through the operation panel to achieve fully automatic operation.

[0047] Workflow: Place the dough on the tray 301. Set the lifting height according to the dough thickness using the control panel. The controller drives the lifting device 400 to adjust the dough tray 300 to a suitable position. Start the equipment. The noodle-shaving drive motor 203 drives the rocker arm 201 to swing back and forth. The noodle-shaving blade 202 cuts the dough on the tray 301. At the same time, the transverse drive motor 306 drives the transverse support 302 to move back and forth left and right to ensure that the cut noodles cover the entire dough area. The lifting device 400 continues to adjust the dough tray 300 to rise, working with the noodle-shaving device 200 to cut the noodles.

[0048] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0049] In the description of this application, it should be understood that the terms "upper" and "lower" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application 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 application.

[0050] 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 technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

Claims

1. A novel noodle-slicing machine, characterized in that, include: Two side supports (100) are provided with a noodle-shaving device (200). The noodle-shaving device (200) includes a rocker arm (201) rotatably mounted above the side support (100). A noodle-shaving blade (202) is detachably mounted on the top of the rocker arm (201). A support device (300) is provided between the two rocker arms (201). The support device (300) includes a support plate (301), a transverse support (302), and a fixed support (303). The support plate (301) is covered above the transverse support (302), and the transverse support (302) is movably positioned above the fixed support (303). A lifting support plate (500) is fixedly connected between the two side supports (100). A lifting device (400) is movable on the lifting support plate (500). The lifting device (400) includes a lifting bracket (401). The lifting bracket (401) is connected to the fixed bracket (303) and can drive the fixed bracket (303) to move up and down.

2. The novel noodle-slicing machine according to claim 1, characterized in that, The noodle-shaving device (200) further includes a noodle-shaving drive motor (203), a first pulley (204), a second pulley (205), a first connecting rod (206), a traction shaft (207), and a second connecting rod (208). The first pulley (204) and the second pulley (205) are located on a side bracket (100) on one side. The output end of the noodle-shaving drive motor (203) is connected to the first pulley (204). The first pulley (204) is connected to the second pulley (205) via a belt. The middle part of the second pulley (205) is connected to the first connecting rod (206). The other end of the first connecting rod (206) is hinged to the traction shaft (207). The other end of the traction shaft (207) is hinged to the second connecting rod (208). The second pulley (205) is connected to the first link (206) on the side bracket (100) on the other side via a rotating shaft. The first link (206) is hinged to the traction shaft (207), and the other end of the traction shaft (207) is hinged to the second link (208). The ends of the two second links (208) away from the traction shaft (207) are respectively hinged to the bottom end of the rocker arm (201).

3. The novel noodle-slicing machine according to claim 1, characterized in that, The bottom of the transverse support (302) is provided with a first square slider (304), and the fixed support (303) is provided with a first square slide rail (305). The first square slider (304) is slidably installed on the first square slide rail (305).

4. A novel noodle-slicing machine according to claim 3, characterized in that, The surface support device (300) further includes a transverse drive motor (306), a first sprocket, a second sprocket (307), a third sprocket (308), and a first chain (309). The transverse drive motor (306) is mounted on the lifting bracket (401). The output end of the transverse drive motor (306) passes through the lifting bracket (401) and is connected to the first sprocket. The second sprocket (307) and the third sprocket (308) are mounted on both sides above the fixed bracket (303). The first sprocket is connected to the second sprocket (307) and the third sprocket (308) through the first chain (309). The bottom of the transverse bracket (302) is fixed to the first chain (309).

5. A novel noodle-slicing machine according to claim 4, characterized in that, The fixed bracket (303) has horizontal movement induction switches (310) on both sides below one end, and the horizontal movement bracket (302) has an induction plate (311) at one end, with the induction plate (311) located between the two horizontal movement induction switches (310).

6. A novel noodle-slicing machine according to claim 1, characterized in that, The lifting support plate (500) is provided with second square sliders on both sides, and the lifting bracket (401) is provided with second square slide rails (402) on both sides. The second square slide rails (402) are slidably installed on the second square sliders.

7. A novel noodle-slicing machine according to claim 6, characterized in that, The lifting device (400) also includes a lifting drive motor (403), a fourth sprocket (404), a fifth sprocket (405), a second chain (406), and a lead screw (407). The lifting drive motor (403) is fixed on the mounting plate (600) of the brackets on both sides (100). The output end of the lifting drive motor (403) is connected to the fourth sprocket (404). The fourth sprocket (404) is connected to the fifth sprocket (405) on the mounting plate (600) through the second chain (406). The fifth sprocket (405) is coaxially connected to the lead screw (407). The lead screw (407) is threadedly connected to the nut (408) at the bottom of the lifting bracket (401).

8. A novel noodle-slicing machine according to claim 7, characterized in that, One of the side supports (100) is provided with a long groove (101), and lifting sensor switches (102) are provided at both ends of the long groove (101). A sensor plate (409) is provided on one side of the bottom of the lifting support (401), and the sensor plate (409) moves back and forth in the long groove (101).

9. A novel noodle-slicing machine according to claim 1, characterized in that, The two side brackets (100) are hinged to the outside of a protective cover (103), which is connected to the side wall of the side bracket (100) by a quick-release latch (104).

10. A novel noodle-slicing machine according to claim 1, characterized in that, The noodle-slicing machine is also equipped with a controller, and an operation panel is provided on the chassis between the two side supports (100).