A noodle machine integrated transmission mechanism

CN224622054UActive Publication Date: 2026-08-11TANGHE OUKE ELECTRIC APPLIANCE MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-11
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0003]本实用新型的目的在于提供一种面条机连体传动机构,通过设置外箱体、驱动组件、从动齿轮二和连接条,解决了面条机的连体传动机构操作中会造成面粉进入传动机构内部,影响传动机构工作稳定,且面条成型机构的啮合和分离配合不够方便的问题

Benefits of technology

本实用新型通过设置外箱体、驱动组件和从动齿轮二,解决了面条机的连体传动机构操作中会造成面粉进入传动机构内部,影响传动机构工作稳定的问题,通过外部的动力驱动输入轴转动,并在输入轴转动时,带动主动齿轮转动,在主动齿轮转动中,带动从动齿轮一转动,并带动输出轴一转动,同时通过输出轴一转动中进行揉面工作,再通过惰轮传递主动齿轮上的动力到从动齿轮二上,带动从动齿轮二转动,使得动力通过输出轴二转动,带动面条成型机构转动,同时通过封闭块一和封闭块二将外箱体上活动口封闭,防止在工作中,面粉进入外箱体中影响主动齿轮、从动齿轮一、惰轮和从动齿轮二转动,使得面条机的连体传动机构在切换挤出机构工作状态时,采用动态密封,不会造成面粉进入传动机构,保证传动机构的工作稳定。

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Abstract

This utility model discloses an integrated transmission mechanism for a noodle machine, relating to the technical field of noodle machines. The utility model includes an outer housing, a drive assembly, a driven gear two, and a connecting bar. The drive assembly is movably connected inside the outer housing. The drive assembly includes an idler wheel, which is rotatably connected inside the outer housing. A driven gear two is meshed on one side of the idler wheel. An output shaft two is fixedly fixed through the driven gear two. The rear end of the output shaft two passes through the rear side of the outer housing and is rotatably connected to a sealing block two. The front end of the output shaft two passes through the front side of the outer housing. A connecting bar is fixed to one end of the sealing block two, and a connecting block is movably connected to the outer side of the connecting bar. This utility model, by setting up the outer housing, drive assembly, driven gear two, and connecting bar, solves the problems of flour entering the transmission mechanism during operation, affecting the stability of the transmission mechanism, and the inconvenience of meshing and disengaging the noodle forming mechanism in traditional integrated transmission mechanisms for noodle machines.
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Description

Technical Field

[0001] This utility model belongs to the technical field of noodle machines, and in particular relates to an integrated transmission mechanism for noodle machines. Background Technology

[0002] The integrated transmission mechanism of a noodle machine is its core component, responsible for synchronously and efficiently distributing the power of a single motor to the two functionally different execution parts: kneading and extruding. This mechanism typically employs a closed gearbox design, using mechanical structures such as parallel shaft gears, worm gears, or planetary gears to achieve power distribution while simultaneously performing necessary speed reduction, torque amplification, and speed adjustment. This satisfies the low speed and high torque required by the kneading mechanism and the high speed and continuous thrust required by the extrusion mechanism. However, the integrated transmission mechanism of a noodle machine still has the following drawbacks in actual use: When the integrated transmission mechanism of the noodle machine is in operation, it directly uses the transmission mechanism for transmission. After the transmission mechanism is directly used for transmission, it needs to work through the meshing structure. Furthermore, when the extrusion structure of the noodle machine is extruding, it needs to work through the meshing of the separation structure and the pushing structure. During operation, flour may enter the inside of the transmission mechanism, affecting the stability of the transmission mechanism. Secondly, in the operation of the noodle machine, the integrated transmission mechanism does not need to transmit power to the noodle forming structure when the noodles are kneading. However, when the extrusion mechanism needs to extrude the noodles, it needs to re-engage. In operation, the engagement and disengagement of the noodle forming mechanism is not convenient. Utility Model Content

[0003] The purpose of this utility model is to provide an integrated transmission mechanism for a noodle machine. By setting up an outer housing, a drive component, a driven gear, and a connecting bar, it solves the problem that flour will enter the transmission mechanism during operation, affecting the stability of the transmission mechanism, and that the meshing and disengagement of the noodle forming mechanism is not convenient.

[0004] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model relates to an integrated transmission mechanism for a noodle machine, comprising an outer housing, a drive assembly, a driven gear two, and a connecting bar. The drive assembly is movably connected to the outer housing, and the drive assembly includes an idler wheel. The idler wheel is rotatably connected to the outer housing, and a driven gear two is meshed on one side of the idler wheel. The driven gear two is disposed within the outer housing, and an output shaft two is fixedly fixed through it. The rear end of the output shaft two passes through the rear side of the outer housing and is rotatably connected to a sealing block two. The front end of the output shaft two passes through the front side of the outer housing, and a sealing block one is rotatably connected to the circumference of the output shaft two on the front side of the outer housing. Both the sealing block two and the sealing block one abut against... A connecting strip is fixed to one end of the second sealing block on the surface of the outer casing. A connecting block is movably connected to the outside of the connecting strip. A movable rod is movably connected to the upper part of the connecting block. The movable rod is inserted into the connecting strip inside the connecting block. The outer casing serves as the main structure and contains a drive assembly. The idler gear in the drive assembly meshes with the driven gear two to transmit power. The two ends of the output shaft two at the center of the driven gear two pass through the outer casing and are rotatably connected and sealed through the first sealing block and the second sealing block. The second sealing block is fixed to the connecting strip. The connecting strip is inserted into the connecting block through the movable rod, thereby fixing the position of the second sealing block and preventing flour from entering the casing.

[0005] Furthermore, the outer casing of the second output shaft has movable openings on both the front and rear sides. The second output shaft is movably connected within the movable openings. Limiting strips are fixed above and below the movable openings on the front side of the outer casing. The first sealing block is movably disposed between the two limiting strips. The front and rear sides of the outer casing have movable openings for the second output shaft to be movably connected. Limiting strips are provided at the movable openings. The first sealing block is located between the two limiting strips and can move under the guidance of the limiting strips to achieve closure and position control of the movable openings.

[0006] Furthermore, the drive assembly also includes a driven gear one and an output shaft one. The output shaft one is fixedly fixed through the driven gear one and passes through the front side of the outer housing. The rear end of the output shaft one is rotatably connected to the inner wall of the outer housing. The driven gear one and the driven gear two are symmetrically arranged with an idler gear as the center. The drive assembly also includes a driven gear one, the front end of which is fixed with an output shaft one. The output shaft one passes through the front side of the outer housing and the rear end is rotatably connected to the inner wall of the outer housing. The driven gear one and the driven gear two are symmetrically arranged with an idler gear as the center, and the idler gear enables them to rotate in the same direction.

[0007] Furthermore, the drive assembly also includes a drive gear and an input shaft. The drive gear meshes with the upper part of the driven gear on one side of the circumference. The input shaft is fixed to the rear end of the drive gear. The input shaft passes through the rear side of the outer housing. The drive gear meshes with the driven gear and its rear end is connected to the input shaft. The input shaft passes through the rear side of the outer housing and is connected to an external power source. When the drive gear rotates, it drives the driven gear to rotate, thereby driving the output shaft to work.

[0008] Furthermore, two vertical through holes are provided in the connecting strip, and the movable rod is inserted into the through holes. A handle is fixed at the end of the connecting strip away from the second closing block. The connecting strip has two through holes, and the movable rod can be inserted into either of the through holes to fix the position of the connecting strip. A handle is provided at one end of the connecting strip to facilitate pulling the connecting strip and moving the second closing block, thereby controlling the meshing state of the driven gear and the idler gear.

[0009] Furthermore, a connecting plate is fixed to the top of the movable rod, and a spring is fixed to the bottom of the connecting plate. The bottom of the spring is fixed to the top of the connecting block. The spring is located on the outside of the movable rod, and the connecting block is fixed to the rear side of the outer casing. The connecting plate is fixed to the top of the movable rod, and a spring is located at the bottom. The other end of the spring is fixed to the connecting block. The spring causes the movable rod to have an upward tendency, which facilitates its removal or insertion from the insertion hole and enables quick switching and locking of the connecting bar position.

[0010] This utility model has the following beneficial effects: This invention solves the problem of flour entering the transmission mechanism of a noodle machine during operation, affecting its stability, by setting up an outer casing, a drive assembly, and a driven gear two. External power drives the input shaft to rotate, which in turn drives the drive gear, which in turn drives the driven gear one, and then the output shaft one. Simultaneously, the output shaft one performs the kneading process. Power from the drive gear is then transmitted to the driven gear two via an idler wheel, causing the driven gear two to rotate. This power, through the output shaft two, drives the noodle forming mechanism. Simultaneously, sealing blocks one and two close the opening on the outer casing, preventing flour from entering and affecting the rotation of the drive gear, driven gear one, idler wheel, and driven gear two during operation. This dynamic sealing system prevents flour from entering the transmission mechanism when switching between extrusion and other operating states, ensuring stable operation of the transmission mechanism.

[0011] This invention solves the problem of inconvenient engagement and disengagement of the integrated transmission mechanism in noodle machines by setting up an outer housing, a driven gear two, and a connecting bar. When kneading is required but noodle forming is not needed, pushing the connecting plate upwards allows the movable rod to be pulled out of the insertion hole of the connecting bar. Pulling the handle then causes the connecting bar and the second sealing block to slide until another insertion hole on the second sealing block aligns with the movable rod. Under the action of a spring, the movable rod enters the insertion hole, restricting the position of the connecting bar and disengaging the driven gear two from the idler wheel, thus stopping the output shaft two from rotating. When noodle forming is required, pulling the movable rod out of the insertion hole on the connecting bar and pushing the connecting bar until another insertion hole aligns with the movable rod allows the insertion rod to be inserted into the movable rod, re-restricting the position of the connecting bar and re-engaging the driven gear two with the idler wheel, resuming the rotation of the output shaft two. This makes the engagement and disengagement of the integrated transmission mechanism of the noodle machine much more convenient. Attached Figure Description

[0012] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments 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.

[0013] Figure 1 This is a three-dimensional view of the cut-open structure of a noodle machine's integrated transmission mechanism. Figure 2 This is a three-dimensional structural view of the outer casing; Figure 3 A three-dimensional structural diagram of the driving component; Figure 4 This is a three-dimensional structural view of the driven gear two; Figure 5 This is a three-dimensional structural diagram of the connecting strip; Figure 6 This is a three-dimensional view of the assembly structure of an integrated transmission mechanism for a noodle machine.

[0014] Figure label: 1. Outer housing; 101. Movable opening; 102. Limiting strip; 2. Drive assembly; 201. Driven gear one; 202. Drive gear; 203. Input shaft; 204. Output shaft one; 205. Idler gear; 3. Driven gear two; 301. Output shaft two; 302. Enclosing block one; 303. Enclosing block two; 4. Connecting strip; 401. Insertion hole; 402. Connecting block; 403. Movable rod; 404. Connecting plate; 405. Spring; 406. Handle. Detailed Implementation

[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model. Specific Implementation Example 1

[0016] Please see Figure 1-4 This utility model relates to an integrated transmission mechanism for a noodle machine, comprising an outer housing 1, a drive assembly 2, a driven gear 2 3, and a connecting bar 4. The drive assembly 2 is movably connected inside the outer housing 1, housing and enclosing the drive gear assembly. The drive assembly 2 includes an idler wheel 205, which is rotatably connected inside the outer housing 1. The idler wheel 205 transmits power between the driven gear 1 201 and the driven gear 2 3, ensuring that the driven gear 1 201 and the driven gear 2 3 rotate in the same direction. The driven gear 2 3 is meshed on one side of the idler wheel 205 and is located inside the outer housing 1. When the driven gear 2 3 rotates, it assists in the power output of the noodle machine. An output shaft 2 301 is fixedly connected inside the driven gear 2 3. The output shaft 2 301 outputs the transmitted power, driving the forming structure of the noodle machine to rotate. The rear end of the output shaft 2 301 passes through the outer housing 1. A second sealing block 303 is rotatably connected to the rear side. The front end of the second output shaft 301 passes through the front side of the outer housing 1, and a first sealing block 302 is rotatably connected to the circumference of the second output shaft 301 on the front side of the outer housing 1. Both the second sealing block 303 and the first sealing block 302 abut against the surface of the outer housing 1. The second sealing block 303 closes the movable opening 101 on the rear side of the outer housing 1, and the first sealing block 302 closes the movable opening 101 on the front side of the outer housing 1. One end is fixed with a connecting strip 4. The connecting strip 4 restricts the second sealing block 303 to the rear side of the outer casing 1. The outer side of the connecting strip 4 is movably connected to a connecting block 402. The upper part of the inner side of the connecting block 402 is movably connected to a movable rod 403. The movable rod 403 is inserted into the connecting strip 4 inside the connecting block 402. After the movable rod 403 passes through the upper part of the inner side of the connecting block 402 and is inserted into the connecting strip 4, the position of the connecting strip 4 and the second sealing block 303 on the rear side of the outer casing 1 is restricted.

[0017] Specifically, the outer casing 1 outside the output shaft 2 301 has movable openings 101 on both the front and rear sides. The output shaft 2 301 is movably connected to the movable opening 101. Limiting strips 102 are fixed above and below the movable opening 101 on the front side of the outer casing 1. The sealing block 1 302 is movably disposed between the two limiting strips 102. The outer casing 1 is movably connected to the output shaft 2 301 through the movable opening 101, so that the output shaft 2 301 and the driven gear 2 3 can move in the outer casing 1. The sealing block 1 302 is restricted by the limiting strips 102.

[0018] Furthermore, the drive assembly 2 also includes a driven gear 201 and an output shaft 204. The output shaft 204 is fixedly fixed through the driven gear 201 and passes through the front side of the outer housing 1. The rear end of the output shaft 204 is rotatably connected to the inner wall of the outer housing 1. The driven gear 201 and the driven gear 3 are symmetrically arranged with the idler wheel 205 as the center. The output shaft 204 is connected to the input end of the dough kneading mechanism of the noodle machine and is driven to rotate during the rotation of the driven gear 201, thereby driving the dough kneading mechanism of the noodle machine to rotate.

[0019] Furthermore, the drive assembly 2 also includes a drive gear 202 and an input shaft 203. The drive gear 202 meshes with the upper part of the driven gear 201. The input shaft 203 is fixed to the rear end of the drive gear 202. The input shaft 203 passes through the rear side of the outer housing 1. The input shaft 203 of the drive gear 202 is fixed to the output end of an external power source, such as a motor, and transmits power to the drive gear 202. Through the meshing of the drive gear 202 with the driven gear 201, the driven gear 201 is driven to rotate.

[0020] The operation process of this embodiment is as follows: During operation, the input shaft 203 is driven to rotate by external power, and when the input shaft 203 rotates, it drives the drive gear 202 to rotate. During the rotation of the drive gear 202, the driven gear 201 rotates, and the output shaft 204 rotates. At the same time, the output shaft 204 rotates to perform the kneading operation. Then, the idler wheel 205 transmits the power from the drive gear 202 to the driven gear 3, which rotates. This causes the power to rotate through the output shaft 301, which in turn drives the noodle forming mechanism to rotate. Meanwhile, the opening 101 on the outer housing 1 is closed by the sealing block 302 and the sealing block 303 to prevent flour from entering the outer housing 1 during operation and affecting the rotation of the drive gear 202, driven gear 201, idler wheel 205, and driven gear 3. Specific Implementation Example 2

[0021] Please see Figure 1 , 2Based on specific embodiment one, two vertical through holes 401 are opened inside the connecting strip 4. The movable rod 403 is inserted into the through holes 401. A handle 406 is fixed at the end of the connecting strip 4 away from the second sealing block 303. The connecting strip 4 is movably connected to the movable rod 403 through the through holes 401. When the handle 406 is pulled, it drives the connecting strip 4 to move. The movement of the connecting strip 4 drives the second sealing block 303 to move. The movable rod 403 is inserted into the through holes 401, which restricts the position between the connecting strip 4 and the connecting block 402.

[0022] Specifically, a connecting plate 404 is fixed to the top of the movable rod 403, and a spring 405 is fixed to the bottom of the connecting plate 404. The bottom of the spring 405 is fixed to the top of the connecting block 402. The spring 405 is located on the outside of the movable rod 403, and the connecting block 402 is fixed to the rear side of the outer housing 1. The spring 405 is connected to the connecting plate 404, and the connecting plate 404 is driven to move by the spring 405. The movable rod 403 is pushed up by the connecting plate 404 and pulled out from the insertion hole 401 in the connecting bar 4.

[0023] The operation process of this embodiment is as follows: During operation, when kneading is required and noodle shaping is not needed, push the connecting plate 404 upwards so that the movable rod 403 is pulled out of the insertion hole 401 of the connecting strip 4. Then pull the handle 406 to drive the connecting strip 4 and the second sealing block 303 to slide until the other insertion hole 401 on the second sealing block 303 is aligned with the movable rod 403. Under the action of the spring 405, the movable rod 403 enters the insertion hole 401 and restricts the position of the connecting strip 4, so that the driven gear 3 and the idler wheel 205 are separated, and the output shaft 301 stops rotating. When noodle shaping is required, pull the movable rod 403 to pull it out of the insertion hole 401 on the connecting strip 4. Push the connecting strip 4 until the other insertion hole 401 is aligned with the movable rod 403. Insert the rod into the movable rod 403 to re-restrict the position of the connecting strip 4, so that the driven gear 3 re-meshes with the idler wheel 205, and the rotation of the output shaft 301 is restored.

[0024] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0025] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. A noodle machine integrated transmission mechanism, comprising an outer housing (1), a drive assembly (2), a driven gear (3), and a connecting bar (4), characterized in that: A drive assembly (2) is movably connected inside the outer casing (1). The drive assembly (2) includes an idler wheel (205). The idler wheel (205) is rotatably connected inside the outer casing (1). A driven gear two (3) is meshed on one side of the idler wheel (205). The driven gear two (3) is located inside the outer casing (1). An output shaft two (301) is fixedly fixed inside the driven gear two (3). The rear end of the output shaft two (301) passes through the rear side of the outer casing (1) and is rotatably connected to a sealing block two (303). The front end of the output shaft two (301) passes through... A sealing block 1 (302) is rotatably connected to the circumference of the output shaft 2 (301) on the front side of the outer casing (1). Both the sealing block 2 (303) and the sealing block 1 (302) abut against the surface of the outer casing (1). A connecting strip (4) is fixed to one end of the sealing block 2 (303). A connecting block (402) is movably connected to the outside of the connecting strip (4). A movable rod (403) is movably connected to the upper part of the connecting block (402). The movable rod (403) is inserted into the connecting strip (4) inside the connecting block (402).

2. The integrated transmission mechanism for a noodle machine according to claim 1, characterized in that: The outer casing (1) outside the output shaft (2) (301) has a movable opening (101) on both the front and rear sides. The output shaft (2) (301) is movably connected inside the movable opening (101). Limiting strips (102) are fixed above and below the movable opening (101) on the front side of the outer casing (1). The closing block (302) is movably arranged between the two limiting strips (102).

3. The integrated transmission mechanism for a noodle machine according to claim 1, characterized in that: The drive assembly (2) also includes a driven gear one (201) and an output shaft one (204). The output shaft one (204) is fixed through the driven gear one (201). The output shaft one (204) passes through the front side of the outer housing (1). The rear end of the output shaft one (204) is rotatably connected to the inner wall of the outer housing (1). The driven gear one (201) and the driven gear two (3) are symmetrically arranged with the idler gear (205) as the center.

4. The integrated transmission mechanism for a noodle machine according to claim 3, characterized in that: The drive assembly (2) also includes a drive gear (202) and an input shaft (203). The drive gear (202) meshes with the upper part of the driven gear (201) on its periphery. The input shaft (203) is fixed to the rear end of the drive gear (202). The input shaft (203) passes through the rear side of the outer housing (1).

5. The integrated transmission mechanism for a noodle machine according to claim 1, characterized in that: Two insertion holes (401) are vertically opened inside the connecting strip (4), the movable rod (403) is inserted into the insertion hole (401), and a handle (406) is fixed at the end of the connecting strip (4) away from the second closing block (303).

6. The integrated transmission mechanism for a noodle machine according to claim 1, characterized in that: The top end of the movable rod (403) is fixed with a connecting plate (404), the bottom end of the connecting plate (404) is fixed with a spring (405), the bottom end of the spring (405) is fixed to the top of the connecting block (402), the spring (405) is located on the outside of the movable rod (403), and the connecting block (402) is fixed to the rear side of the outer casing (1).