Fresh noodle production calender mechanism

By introducing a vibrating feeding chute and stirring rod structure into the rolling mechanism of fresh noodle production, the problems of dough adhesion and accumulation during the feeding process are solved, achieving smooth dough conveying and uniform rolling, thus improving production efficiency and equipment reliability.

CN224324800UActive Publication Date: 2026-06-05ZHENGZHOU ZHUTUN RICE NOODLES FOOD CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHENGZHOU ZHUTUN RICE NOODLES FOOD CO LTD
Filing Date
2025-07-31
Publication Date
2026-06-05

AI Technical Summary

Technical Problem

Existing fresh noodle production rolling mechanisms are prone to causing granular dough to adhere and accumulate during the feeding process, leading to blockages and affecting production efficiency and continuous operation capability.

Method used

The structure adopts a vibratory feeding chute and agitator rod. The first drive motor drives the mounting plate and connecting rod to vibrate the feeding chute. Combined with the agitator rake, the dough is actively agitated to prevent sticking and accumulation. The gear transmission assembly ensures that the calendering rollers rotate synchronously to achieve uniform extrusion.

Benefits of technology

It effectively prevents dough blockage, ensures continuous and uniform material delivery, improves production continuity and efficiency, reduces the need for manual intervention, and is especially suitable for wet or sticky dough.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of fresh noodle production calendering mechanism, including pedestal, pedestal is provided with rack, two calendering rollers are rotationally arranged on rack, still be provided with the feed hopper compatible with two calendering rollers on rack, the side end of rack is further provided with fixing frame, feed chute compatible with feed hopper is arranged on fixing frame by reciprocating sliding mode, first driving motor is provided on fixing frame, output shaft of first driving motor is provided with mounting disc, eccentric rotation is provided with connecting rod on mounting disc, the side end of feed chute is provided with the other end rotationally connected with connecting rod.According to the fresh noodle production calendering mechanism of the utility model, not only can satisfy the basic demand of calendering granular dough into wrapper, but also can automatically flow and fully feed granular dough, and further more fully meet people's use requirements.
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Description

Technical Field

[0001] This utility model belongs to the field of fresh noodle production technology, and specifically relates to a rolling mechanism for fresh noodle production. Background Technology

[0002] In the process of producing fresh noodles, granular dough needs to be rolled into noodle sheets.

[0003] Existing fresh noodle production rolling mechanisms, while capable of meeting the basic requirements for rolling granular dough, often rely solely on the downward sliding action of the dough within the inclined feeding structure. This results in some dough particles easily adhering to the inner wall of the structure, hindering their smooth and adequate entry into the rolling process. Consequently, users must manually move and assist the dough at regular intervals, causing significant inconvenience and impacting the overall efficiency of rolling granular dough into noodles. Therefore, these mechanisms fail to fully meet user needs. Utility Model Content

[0004] In view of this, this utility model addresses the shortcomings of the existing technology by providing a fresh noodle production rolling mechanism that not only meets the basic requirement of rolling granular dough into noodle sheets, but also automatically, smoothly, and fully feeds the granular dough, thereby better meeting people's usage needs.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows: a fresh noodle production rolling mechanism, including a base, a frame on the base, two rolling rollers rotatably mounted on the frame, a feeding hopper adapted to the two rolling rollers on the frame, a fixed frame on the side of the frame, a feeding chute adapted to the feeding hopper on the fixed frame by reciprocating sliding, a first drive motor on the fixed frame, a mounting plate on the output shaft of the first drive motor, a connecting rod eccentrically mounted on the mounting plate, and a rotatable connection between the other end of the feeding chute and the other end of the connecting rod on the side.

[0006] As a further improvement of this utility model, a connecting groove is provided on the fixed frame, and a connecting slide plate is provided on the feeding chute, which is slidably connected to the connecting groove. The sliding hole of the connecting groove and the vertical cross-section of the connecting slide plate are both T-shaped, with a smaller top and a larger bottom. The feeding chute is connected to the fixed frame through the T-shaped connecting groove and the slide plate, which not only ensures flexible movement during vibration, but also enhances structural stability due to the limiting effect of the T-shaped cross-section, reduces the risk of component displacement or detachment, and extends the service life of the equipment.

[0007] As a further improvement of this utility model, a stirring rod is provided at the bottom of the lower end of the feeding chute, and a stirring rake for stirring the granular dough in the feeding hopper is provided at the lower end of the stirring rod.

[0008] As a further improvement of this utility model, a reinforcing rod is also provided between the feeding chute and the stirring rake. Adding a reinforcing rod between the feeding chute and the stirring rod significantly enhances the overall structural strength, preventing loosening or deformation of components due to vibration or long-term use, and ensuring reliable equipment operation.

[0009] As a further improvement of this utility model, a collection groove adapted to two calendering rollers is snapped onto the base, and snap-fit ​​grooves are formed on the base to engage with the collection grooves on the left and right sides. A handle is also provided on the collection groove. The collection grooves facilitate the collection of calendered sheets, the snap-fit ​​grooves allow for flexible fixing of the collection groove to the base, and the handles allow for easy movement of the collection groove, conveniently enabling or disengaging the collection groove from the base, and conveniently discharging the collected sheets from the collection groove.

[0010] As a further improvement of this utility model, the side end of the calendering roll is provided with a connecting shaft that passes through the side end of the frame and is rotatably connected to the side end of the frame. The two calendering rolls are connected by a gear transmission assembly. The side end of the frame is also provided with a second drive motor. A transmission gear is also provided between the output shaft of the second drive motor and the gear transmission assembly.

[0011] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0012] Firstly, the first drive motor drives the mounting plate and connecting rod to vibrate the feeding chute, effectively preventing blockage caused by the adhesion or accumulation of granular dough during the feeding process. This ensures that the material is continuously and evenly conveyed to the feeding hopper, avoiding production interruptions and improving continuous operation capability.

[0013] Secondly, a stirring rod and a stirring rake are installed at the bottom of the feeding chute, which can actively stir the accumulated dough and break up any clumps that may form, further ensuring the smoothness of feeding. This is especially suitable for dough that is wet or sticky, reducing the need for manual intervention. Attached Figure Description

[0014] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0015] Figure 1 This is a schematic diagram of the structure of this utility model;

[0016] Figure 2 This is a schematic diagram of the structure of the fixing frame, feeding chute, first drive motor and mounting plate of this utility model;

[0017] Figure 3 This is a schematic diagram of the structure of the bearing, collecting groove and handle of this utility model;

[0018] Figure 4 This is a schematic diagram of the structure of the stirring rod, stirring rake, and reinforcing rod of this utility model.

[0019] In the diagram: 101, base; 102, frame; 103, calendering roll; 104, feed hopper; 105, fixed frame; 106, feed chute; 107, first drive motor; 108, mounting plate; 109, connecting rod; 110, connecting chute; 111, connecting slide plate; 112, connecting shaft; 113, gear transmission assembly; 114, second drive motor; 115, transmission gear; 116, bearing; 201, stirring rod; 202, stirring rake; 203, reinforcing rod; 301, collection trough; 302, snap-fit ​​groove; 303, handle. Detailed Implementation

[0020] To better understand this utility model, the following embodiments further illustrate its content, but the scope of protection of this utility model is not limited to the embodiments described below. Numerous specific details are set forth in the following description to provide a more thorough understanding of this utility model. However, it will be apparent to those skilled in the art that this utility model can be practiced without one or more of these details.

[0021] like Figure 1 , 2 As shown, a fresh noodle production rolling mechanism includes a base 101, a frame 102 mounted on the base 101, two rolling rollers 103 rotatably mounted on the frame 102, a feed hopper 104 adapted to the two rolling rollers 103 mounted on the frame 102, a fixing frame 105 mounted on the side end of the frame 102, a feeding chute 106 adapted to the feed hopper 104 mounted on the fixing frame 105 by reciprocating sliding, a first drive motor 107 mounted on the fixing frame 105, a mounting plate 108 mounted on the output shaft of the first drive motor 107, a connecting rod 109 rotatably mounted on the mounting plate 108, and a rotatable connection between the other end of the feeding chute 106 and the other end of the connecting rod 109 mounted on the side end of the feeding chute 106.

[0022] like Figure 1 , 3 As shown, the side end of the calendering roll 103 is provided with a connecting shaft 112 that passes through the side end of the frame 102 and is rotatably connected to the side end of the frame 102. The side end of the frame 102 is rotatably connected to the connecting shaft 112 through a bearing 116. The two calendering rolls 103 are connected to each other through a gear transmission assembly 113. The side end of the frame 102 is also provided with a second drive motor 114. A transmission gear 115 is also provided between the output shaft of the second drive motor 114 and the gear transmission assembly 113.

[0023] like Figure 1 , 2As shown, the fixed frame 105 is provided with a connecting slide 110, and the feeding chute 106 is provided with a connecting slide plate 111 that is slidably connected to the connecting slide 110. The sliding hole of the connecting slide 110 and the vertical cross-section of the connecting slide plate 111 are both T-shaped, with the top smaller than the bottom. The feeding chute 106 is connected to the fixed frame 105 through the T-shaped connecting slide 110 and the slide plate, which not only ensures flexible movement during vibration, but also enhances structural stability due to the limiting effect of the T-shaped cross-section, reduces the risk of component displacement or detachment, and extends the service life of the equipment.

[0024] The worker starts the first drive motor 107 (to control the vibration of the feed chute 106) and the second drive motor 114 (to drive the calendering rollers 103); the second drive motor 114 transmits power to the gear transmission assembly 113 through the transmission gear 115, driving the two calendering rollers 103 to rotate synchronously in opposite directions, ensuring that uniform extrusion pressure is generated between the calendering rollers 103; the first drive motor 107 drives the mounting plate 108 to rotate, and the eccentric connecting rod 109 on the mounting plate 108 drives the feed chute 106 to reciprocate and slide along the connecting slide 110 (T-shaped slide) of the fixed frame 105, thereby realizing the vibration of the feed chute 106.

[0025] The granular dough is poured into the upper inlet of the feeding chute 106. The first drive motor 107 drives the feeding chute 106 to vibrate at high frequency through the connecting rod 109, so that the dough slides continuously in the chute and avoids blockage caused by adhesion or accumulation. The hopper receives the dough conveyed from the feeding chute 106 and guides it between the two calendering rollers 103 below to prepare materials for the calendering process.

[0026] The granular dough enters the gap between the two rolling rollers 103 and is gradually rolled into a continuous dough sheet by the pressure of the roller surface. The gear transmission assembly 113 ensures that the two rolling rollers 103 rotate synchronously, the pressure is evenly distributed, and the dough sheet thickness is consistent.

[0027] According to another embodiment of the present invention, such as Figure 4 As shown, a stirring rod 201 is provided at the bottom of the lower end of the feeding chute 106, and a stirring rake 202 is provided at the lower end of the stirring rod 201 for agitating the granular dough in the feeding hopper 104. During the reciprocating tilting and sliding of the feeding chute 106, which allows the granular dough to be fed smoothly and thoroughly, the stirring rod 201 and the stirring rake 202 move reciprocally, agitating the granular dough in the feeding hopper 104 and enabling it to be fed more smoothly.

[0028] According to another embodiment of the present invention, such as Figure 4As shown, a reinforcing rod 203 is also provided between the feeding chute 106 and the stirring rake 202. The reinforcing rod 203 can enhance the connection between the stirring rod 201 and the feeding chute 106, avoid loosening or deformation of parts due to vibration or long-term use, and ensure reliable operation of the equipment.

[0029] According to another embodiment of the present invention, such as Figure 3 , 4 As shown, a collection groove 301 adapted to two calendering rollers 103 is snapped onto the base 101. The base 101 has snap-fit ​​grooves 302 on the left and right sides that engage with the collection grooves 301. A handle 303 is also provided on the collection groove 301. The collection grooves 301 facilitate the collection of calendered sheets, the snap-fit ​​grooves 302 allow for flexible fixing of the collection grooves 301 to the base 101, and the handles 303 allow for easy movement of the collection grooves 301, conveniently enabling or disabling the collection grooves 301 from the base 101, and conveniently discharging the sheets collected in the collection grooves 301.

[0030] The above are preferred embodiments of this utility model. It should be noted that, for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.

Claims

1. A fresh noodle production rolling mechanism, comprising a base (101) and a frame (102) disposed on the base (101), characterized in that: Two calendering rollers (103) are rotatably mounted on the frame (102). A feed hopper (104) adapted to the two calendering rollers (103) is also mounted on the frame (102). A fixed frame (105) is also mounted on the side of the frame (102). A feed chute (106) adapted to the feed hopper (104) is mounted on the fixed frame (105) by means of reciprocating sliding. A first drive motor (107) is mounted on the fixed frame (105). A mounting plate (108) is mounted on the output shaft of the first drive motor (107). A connecting rod (109) is eccentrically rotatably mounted on the mounting plate (108). The side end of the feed chute (106) is rotatably connected to the other end of the connecting rod (109).

2. The fresh noodle production rolling mechanism as described in claim 1, characterized in that: The fixed frame (105) is provided with a connecting slide groove (110), and the feeding chute (106) is provided with a connecting slide plate (111) that is slidably connected to the connecting slide groove (110). The sliding hole of the connecting slide groove (110) and the vertical cross section of the connecting slide plate (111) are both T-shaped with a smaller top and a larger bottom.

3. The fresh noodle production rolling mechanism as described in claim 2, characterized in that: The bottom of the feed chute (106) is provided with a stirring rod (201), and the bottom of the stirring rod (201) is provided with a stirring rake (202) for stirring the granular dough in the feed hopper (104).

4. The fresh noodle production rolling mechanism as described in claim 3, characterized in that: A reinforcing rod (203) is also provided between the feed chute (106) and the stirring rake (202).

5. The fresh noodle production rolling mechanism as described in claim 4, characterized in that: The base (101) is provided with a collection groove (301) that is compatible with two calendering rollers (103), and the base (101) has a snap-fit ​​groove (302) that snaps into the collection groove (301) on the left and right.

6. The fresh noodle production rolling mechanism as described in claim 5, characterized in that: The collection trough (301) is also provided with a handle (303).

7. The fresh noodle production rolling mechanism as described in claim 6, characterized in that: The side end of the calendering roll (103) is provided with a connecting shaft (112) that passes through the side end of the frame (102) and is rotatably connected to the side end of the frame (102). The two calendering rolls (103) are connected to each other through a gear transmission assembly (113). The side end of the frame (102) is also provided with a second drive motor (114). A transmission gear (115) is also provided between the output shaft of the second drive motor (114) and the gear transmission assembly (113).