An anti-sticking automatic powder pulling device

By introducing an oiling mechanism and a single-drive motor design into the rice noodle roll machine, the problems of sticking and deterioration in taste after the rice noodle roll is solved, achieving efficient and energy-saving production of rice noodle rolls while maintaining their taste and quality.

CN224269083UActive Publication Date: 2026-05-26HUIZHOU FENGHE GRAIN CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUIZHOU FENGHE GRAIN CO LTD
Filing Date
2025-06-06
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing rice noodle roll machines are prone to sticking and poor texture after discharging, failing to meet customers' taste requirements.

Method used

An anti-sticking automatic rice noodle pulling device was designed. By setting an oil lubrication mechanism before the feeding mechanism comes into contact with the raw rice slurry, the roller is coated with edible oil to form an oil film, which prevents the rice noodle rolls from sticking together. The feeding conveyor and roller are driven by a single drive motor, which achieves energy-saving and efficient production.

Benefits of technology

It effectively prevents rice noodle rolls from sticking together, maintains a crisp and smooth texture, reduces energy consumption, and improves product stability and efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This utility model relates to the field of rice noodle roll production and processing, specifically an automatic rice noodle roll pulling device to prevent sticking. It mainly solves the problems of sticking and clumping of rice noodle rolls after feeding in existing technologies. It features a drive motor with a track drive wheel and a roller drive wheel mounted on its output shaft. The continuous operation of the drive motor keeps the feeding track in a constant transmission state, regardless of whether rice noodle rolls are being made, preventing continuous heating of any section. A lifting mechanism controls the contact state between the roller drive wheel and the roller drive wheel, allowing the oiling process to stop when the feeding track is idling. This allows one drive motor to serve as the power output for both mechanisms, while ensuring that the start and stop of the two mechanisms do not interfere with each other. During rice noodle roll production, the roller can apply edible oil to the side of the conveyor track that contacts the raw rice batter, so that the back of the formed rice noodle roll is coated with edible oil, effectively preventing sticking and clumping after feeding.
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Description

Technical Field

[0001] This utility model relates to the field of rice noodle roll making and processing, specifically an automatic rice noodle pulling device to prevent sticking. Background Technology

[0002] The automatic rice noodle roll machine is a smart device specifically designed for making Cantonese rice noodle rolls. Made of food-grade stainless steel, it integrates steaming, scraping, and unloading functions. One-button operation quickly produces thin, smooth, and even rice noodle rolls. It supports adjustable rice batter concentration and steaming time to meet different texture preferences. Equipped with a constant-temperature steamer and an automatic cleaning system, it ensures hygiene and efficiency, making it suitable for restaurants. Compared to traditional manual production, it significantly increases production speed and enables standardized production, providing a highly efficient solution for modern catering.

[0003] However, existing rice noodle roll machines produce rice noodle rolls that stick together and become lumpy after being discharged, resulting in a poorer taste compared to handmade rice noodle rolls and failing to meet customer needs. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides an automatic rice noodle sheet anti-sticking device. It features automatic oiling of raw rice paste with the contact surface of the feeding conveyor belt. It has only one drive motor, and by changing the height of the roller shaft, one motor can keep the feeding conveyor belt running idle and also serve as the power source for the roller shaft. This reduces power consumption while simultaneously coating the bottom of the rice noodle sheet with edible oil, preventing sticking and effectively solving the problems existing in the prior art.

[0005] The objective of this utility model is achieved through the following technical solution:

[0006] An anti-sticking automatic rice noodle pulling device includes an outer casing with a discharge port. Prepared rice noodle rolls are discharged from the discharge port. A feeding mechanism is located at the rear end of the discharge port. This feeding mechanism feeds raw rice batter into a cooked rice noodle mechanism for curing. After the raw rice batter is heated and made into rice noodle rolls, it is conveyed to the discharge port and delivered. Before contacting the raw rice batter, the feeding mechanism passes through an oiling mechanism. This oiling mechanism coats the side of the feeding mechanism that contacts the raw rice batter with oil. After curing in the cooked rice noodle mechanism, the side of the rice noodle roll that is in contact with the feeding mechanism also becomes coated with oil. When the rice noodle roll leaves the discharge port, the oiled side and the non-oiled side do not stick together. After the rice noodle rolls are fed into the tray, this device effectively reduces sticking and clumping, ensuring that the rice noodle rolls produced by this equipment are as springy and smooth as handmade rice noodle rolls.

[0007] In one embodiment, the oiling mechanism includes a roller for coating. Below the roller is an oil box for storing edible oil. The roller is controlled by a lifting mechanism and a driving mechanism. The lifting mechanism can adjust the height of the roller, changing the distance between it and the feeding mechanism, thereby controlling the contact state between the roller and the feeding mechanism. When the feeding mechanism is idling, the roller does not need to contact the feeding mechanism, i.e., it does not perform oiling work, and it does not hinder the idling of the feeding mechanism. The driving mechanism can drive the roller to rotate, bringing the oil out of the oil box and coating it on the contact surface between the feeding mechanism and the raw rice paste. The rotation of the roller helps to evenly coat the edible oil on the contact surface, forming an oil film on the contact surface, while preventing excessive edible oil on the contact surface, which would make the rice noodle rolls greasy.

[0008] In one embodiment, the feeding mechanism includes a feeding track and a second drive mechanism. The second drive mechanism has a drive motor with a track drive wheel on it. The track drive wheel is connected to a track wheel via a belt. The track wheel is located on one side of the feeding track. Driven by the drive motor, the track drive wheel rotates, which in turn drives the track wheel via the belt, thus transmitting the feeding track and conveying the raw rice slurry / rice noodle roll. The cooking mechanism includes a steamer and a steam generator. The steam generator produces steam, which cooks the raw rice slurry into rice noodle roll. The steamer has an opening for the feeding track to pass through, so that part of the feeding track is covered by the steamer. The steam generator works continuously to keep the temperature inside the steamer constant, ensuring that the raw rice slurry is quickly cooked after entering.

[0009] In one embodiment, the rice noodle cooking mechanism is located in the middle of the feeding conveyor belt. A rice slurry dispensing mechanism is provided on the side of the feeding conveyor belt away from the discharge port. The rice slurry dispensing mechanism is located above the feeding conveyor belt. The oiling mechanism is located below the feeding conveyor belt. The part of the feeding conveyor belt that has been oiled by the oiling mechanism will move to the rice slurry dispensing mechanism under the drive of the drive motor. After receiving the raw rice slurry, it can enter the cooking mechanism to turn the raw rice slurry into rice noodle rolls. Finally, it is discharged from the discharge port into a tray.

[0010] In one embodiment, the second drive mechanism is provided with a drive motor and two roller drive wheels, one of which is located on the output shaft of the drive motor. The two roller drive wheels are connected by a belt. A roller wheel is provided on one side of the roller shaft. When the roller wheel is in contact with the roller drive wheel, the roller drive wheel can drive the roller wheel to rotate, causing the roller shaft to rotate. The contact state between the roller drive wheel and the roller wheel is controlled by a lifting mechanism. The lifting mechanism can control the start and stop of the lubrication operation without affecting the idling of the track.

[0011] In one embodiment, the lifting mechanism consists of two push rods controlled by the same controller to ensure that the roller shaft is pushed out and retracted simultaneously, so that the sidewalls can fit tightly against the feeding conveyor belt during lubrication. Connecting rods are provided on the left and right sides of the roller shaft, and the connecting rods are installed at the push rod heads. Grooves are provided on the left and right sides of the oil box to avoid interference with the connecting rods.

[0012] In one embodiment, drive mechanism one and drive mechanism two share a single drive motor. That is, the track drive wheel and the roller drive wheel are mounted on the same output shaft of the drive motor. By using a single drive motor to provide power to both mechanisms, the feeding track can be kept running continuously without affecting the lubrication process. This saves energy without compromising work efficiency.

[0013] In one embodiment, a support wall is provided below the feeding track, and the support wall has a slot for the connecting rod to move without interfering with the operation of the lifting mechanism. The drive motor is mounted on the support wall, and the track drive wheel is located outside the roller drive wheel, isolating the belt and push rod outside the support wall to prevent foreign objects from contacting the belt. The belts on both belts face opposite directions to prevent them from interfering with each other.

[0014] In one embodiment, the oil box is provided with a scraper to scrape off excess cooking oil from the feeding conveyor. The scraper is bent and located on the side of the roller. The head end of the scraper is close to the roller, and the lower end of the scraper is fixedly connected to the oil box. After scraping off the excess cooking oil, the scraped cooking oil can be guided back into the oil box for continued use.

[0015] In one embodiment, the oil box has a slot for the oil inlet pipe to pass through, and a pump body is provided at the end of the oil inlet pipe. A liquid level sensor is provided on the side wall of the oil box to ensure that the liquid level of the edible oil is at a height that the roller can reach, so that the roller can evenly carry the edible oil and coat it on the feeding conveyor.

[0016] Beneficial effects:

[0017] 1. In terms of performance:

[0018] (1) It can evenly coat the feeding conveyor belt with edible oil, so that the rice noodle rolls will not stick together after being fed, and maintain their crisp, refreshing, elastic and smooth texture.

[0019] (2) The amount of oil can be controlled so that the edible oil forms an oil film on the feeding conveyor belt, ensuring that the edible oil is evenly coated and preventing the rice noodle rolls from becoming greasy;

[0020] (3) A single drive motor is used, with one motor serving as the power source for both modules. This saves energy and ensures the stability of the rice noodle rolls.

[0021] 2. In terms of structure:

[0022] (1) The locations of each component are reasonably distributed. The oiling mechanism is located below the feeding conveyor belt, and the rice slurry feeding mechanism is located above the conveyor belt. The two are symmetrically distributed, making reasonable use of the space of the rice noodle roll device. Raw rice slurry can be added after the oiling is completed.

[0023] (2) By changing the height of the roller shaft by pushing the rod, the rotation of the roller shaft can be stopped without stopping the operation of the feeding conveyor belt;

[0024] (3) It is equipped with a scraper, which can not only scrape off excess cooking oil on the roller, but also guide the scraped cooking oil back into the oil box. Attached Figure Description

[0025] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0026] Figure 1 This is one of the structural schematic diagrams of this utility model;

[0027] Figure 2 This is the second schematic diagram of the structure of this utility model;

[0028] Figure 3 This is the third schematic diagram of the structure of this utility model;

[0029] Figure 4 This is the fourth schematic diagram of the structure of this utility model;

[0030] Figure 5 This is the fifth schematic diagram of the structure of this utility model;

[0031] Figure 6 This is a schematic diagram of the rice slurry feeding mechanism of this utility model;

[0032] Figure 7 This is a schematic diagram of the internal structure of the steamer of this utility model;

[0033] Figure 8 This is a schematic diagram of the feeding track structure of this utility model;

[0034] Figure 9 This is a schematic diagram of the lifting mechanism of this utility model;

[0035] Figure 10 This is one of the schematic diagrams of the oil-lubricated structure of this utility model;

[0036] Figure 11 This is the second schematic diagram of the oil-lubricated structure of this utility model;

[0037] Figure 12 This is the third schematic diagram of the oil-lubricated structure of this utility model;

[0038] Figure 13 This is a diagram showing the rotation state of the roller shaft of this utility model;

[0039] Figure 14 This is a diagram of the shaft rotation standby state of this utility model.

[0040] In the diagram: 1. Discharge port; 2. Feeding mechanism; 3. Cooked flour mechanism; 4. Oiling mechanism; 5. Roller; 6. Oil box; 7. Lifting mechanism; 8. Drive mechanism one; 9. Feeding track; 10. Drive mechanism two; 11. Drive motor; 12. Track drive wheel; 13. Belt; 14. Track turner; 15. Steamer; 16. Rice slurry feeding mechanism; 17. Roller drive wheel; 18. Roller turner; 19. Push rod; 20. Connecting rod; 21. Groove; 22. Support wall; 23. Scraper; 24. Oil inlet pipe; 25. Pump body; 26. Detailed Implementation

[0041] In the following description, only certain exemplary embodiments are briefly described. As those skilled in the art will recognize, the described embodiments can be modified in various ways without departing from the spirit or scope of this invention. Therefore, the drawings and description are considered exemplary in nature and not restrictive.

[0042] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0043] 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 one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.

[0044] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a communication connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0045] The embodiments of this utility model will now be described in detail with reference to the accompanying drawings.

[0046] Example:

[0047] Please see Figure 1-14 An automatic rice noodle making device for preventing sticking includes an outer casing with a discharge port 1. A feeding mechanism 2 is provided at the rear end of the discharge port 1. The feeding mechanism 2 feeds raw rice slurry into a cooked rice noodle mechanism 3 for cooking. After the raw rice slurry is heated and made into rice noodle rolls, it is conveyed to the discharge port 1 and sent out. Before the feeding mechanism 2 comes into contact with the raw rice slurry, it passes through an oiling mechanism 4. The oiling mechanism 4 coats the side of the feeding mechanism 2 that comes into contact with the raw rice slurry with oil. After being cooked by the cooked rice noodle mechanism 3, the side of the rice noodle roll that is in contact with the feeding mechanism 2 is also coated with oil. After the rice noodle roll leaves the discharge port 1, the side with oil and the side without oil do not stick together when they come into contact, thus ensuring that the rice noodle rolls do not stick together and clump after being fed, resulting in a springy and chewy texture.

[0048] Preferably, the oiling mechanism 4 is provided with a roller 5, and an oil box 6 is provided below the roller 5. The roller 5 is controlled by a lifting mechanism 7 and a driving mechanism 8. The lifting mechanism 7 can adjust the height of the roller 5 to change the distance between it and the feeding mechanism 2. The driving mechanism 8 can drive the roller 5 to rotate, so that the oil is brought out from the oil box 6 and coated on the contact surface between the feeding mechanism 2 and the raw rice paste.

[0049] By adopting the above technical solution, when oiling is required, the lifting mechanism 7 is activated, pushing the roller 5 upward so that it is in contact with the feeding mechanism 2. At this time, the top surface of the roller 5 is in contact with the feeding mechanism 2, while the bottom surface is in contact with the edible oil in the oil box 6. At this time, the drive mechanism 8 is activated, causing the roller 5 to rotate. The side of the roller 5 in contact with the edible oil rotates continuously, so that the edible oil is continuously coated on the feeding mechanism 2. The side that has been coated with oil is rotated to contact the edible oil. The coating work is repeated. When the oiling work needs to be stopped, the drive mechanism 8 stops driving, and the lifting mechanism 7 is retracted.

[0050] Preferably, the feeding mechanism 2 is provided with a feeding track 9 and a second drive mechanism 10. The second drive mechanism 10 is provided with a drive motor 11. The drive motor 11 is provided with a track drive wheel 12. The track drive wheel 12 is connected to a track wheel 14 through a belt 13. The track wheel 14 is located on one side of the feeding track 9. The cooked powder mechanism 3 is provided with a steaming box 15 and a steam engine 16. The steaming box 15 is provided with an opening for the feeding track 9 to pass through, so that part of the feeding track 9 is covered by the steaming box 15.

[0051] By adopting the above technical solution, when the feeding conveyor 9 needs to be driven, the drive motor 11 starts and drives the drive wheel 12 of the conveyor to rotate. The belt 13 causes the conveyor wheel 14 to rotate together, so that the feeding conveyor 9 is in the driving state. When the automatic rice noodle roll pulling device is in standby mode, the drive motor 11 does not stop working, that is, the feeding conveyor 9 is running idle, and the steam engine 16 is also in working state. The steam engine 16 is connected to the temperature sensor, which is used to sense the temperature in the steaming box 15 and keep the temperature of the steaming box 15 at a specific temperature. If the temperature drops, the steaming box 15 starts and adds steam to raise the temperature of the steaming box 15 to the preset temperature, so that the raw rice paste can be quickly heated into rice noodle rolls after entering the steaming box 15.

[0052] Preferably, the rice flour feeding mechanism 3 is located in the middle of the feeding conveyor belt 9, and the rice slurry feeding mechanism 17 is provided on the side of the feeding conveyor belt 9 away from the discharge port 1. The rice slurry feeding mechanism 17 is located above the feeding conveyor belt 9, and the oiling mechanism 4 is located below the feeding conveyor belt 9.

[0053] By adopting the above technical solution, the working mode of the automatic rice noodle roll making device in this application is as follows: After startup, the cooking mechanism 3 raises the temperature, and the feeding conveyor belt 9 starts to drive continuously. After the temperature reaches the appropriate temperature, the cooking process can begin. The operator starts the rice slurry feeding process through the control panel. After the signal for rice slurry feeding is issued, the oiling mechanism 4 starts to oil the section of the feeding conveyor belt 9 that is about to contact the rice slurry. This length is exactly the length of a plate of rice noodle rolls that is fully unfolded. The continuous movement of the feeding conveyor belt 9 will move the oiled part to the rice slurry feeding mechanism 17. The rice slurry feeding mechanism 17 feeds the rice slurry. At this time, the feeding conveyor belt 9 continues to move, so that the fed rice slurry will not accumulate in one place, forming a rice slurry layer of uniform thickness. The continuous movement of the feeding conveyor belt 9 will send the rice slurry layer into the cooking mechanism 3, steaming the raw rice slurry into rice noodle rolls.

[0054] Preferably, the second drive mechanism 10 is equipped with a drive motor 11 and roller drive wheels 18. There are two roller drive wheels 18, one of which is located on the output shaft of the drive motor 11 and the other is located on the upper end of the lifting mechanism 7. The two roller drive wheels 18 are connected by a belt 13. A roller wheel 19 is provided on one side of the roller shaft 5. When the roller wheel 19 is in contact with the roller drive wheel 18, the roller drive wheel 18 can drive the roller wheel 19 to rotate, so that the roller shaft 5 rotates. The contact state between the roller drive wheel 18 and the roller wheel 19 is controlled by the lifting mechanism 7.

[0055] By adopting the above technical solution, when the roller shaft 5 needs to rotate, the second drive mechanism 10 is started, and the roller shaft drive wheel 18 set on its output shaft is driven by the drive motor 11. The other roller shaft drive wheel 18 is driven to rotate by the belt 13. Then, the lifting mechanism 7 pushes the roller shaft wheel 19 upward, so that the roller shaft wheel 19 is in contact with the nearest roller shaft drive wheel 18 and belt 13, thereby driving the roller shaft 5 to rotate. When it is necessary to stop the lubrication work, the lifting mechanism 7 is retracted, so that the contact between the roller shaft wheel 19 and the roller shaft drive wheel 18 and belt 13 changes from a contact state to a separation state, thereby stopping the rotation of the roller shaft 5.

[0056] Preferably, the lifting mechanism 7 consists of two push rods 20, which are controlled by the same controller. The roller 5 has connecting rods 21 on both sides, which are installed at the head end of the push rods 20. The oil box 6 has grooves 22 on both sides to avoid the connecting rods 21.

[0057] By adopting the above technical solution, the connecting rod 21 and the head end of the push rod 20 are not fixedly installed. Instead, the roller shaft 5 is clamped by the two push rods 20, so that the roller shaft 5 can rotate but cannot move laterally. This achieves locking without affecting the rotation of the roller shaft 5. To make the roller shaft 5 rotate more smoothly, a bearing can be placed in the opening of the push rod 20, and the connecting rod 21 is placed on the opening in the middle of the bearing.

[0058] Preferably, the first drive mechanism 8 and the second drive mechanism 10 share a single drive motor 11, that is, the track drive wheel 12 and the roller drive wheel 18 are mounted on the same output shaft of the drive motor 11.

[0059] By adopting the above technical solution, in this application, after the rice noodle pulling device is started, the conveying operation of the feeding conveyor belt 9 will not stop when the equipment is in standby mode, that is, when rice noodle rolls are not being made, thus avoiding a certain part of the feeding conveyor belt 9 from being constantly heated. Therefore, the drive mechanism 8 is in a continuous working state. The lifting mechanism 7 can change the contact state between the roller shaft wheel 19 and the nearest roller shaft drive wheel 18 and belt 13, so that each drive motor 11 can meet the idling state of the feeding conveyor belt 9 and controllably drive the rotation of the roller shaft 5.

[0060] Preferably, a support wall 23 is provided below the feeding track 9, and the support wall 23 is provided with a slot for the connecting rod 21 to move. The drive motor 11 is installed on the support wall 23, and the track drive wheel 12 is located outside the roller drive wheel 18. The belts 13 on the two are facing opposite directions.

[0061] By adopting the above technical solution, during installation, the drive motor 11 is installed on the back of the support wall 23. The support wall 23 has a slot for the head of the drive motor 11 to protrude. First, one of the roller drive wheels 18 is installed on the output shaft of the drive motor 11. Then, the track drive wheel 12 is installed on the outside of the roller drive wheel 18. The support wall 23 also has a mounting hole for installing the other roller drive wheel 18. A screw is provided in the mounting hole. The part of the screw that contacts the roller drive wheel 18 is provided with a bearing. The tail of the screw is provided with a thread. The roller drive wheel 18 is locked by a nut so that it can only rotate and cannot move. The track drive wheel 12 is connected to the track wheel 14 by inserting the belt 13. The two roller drive wheels 18 are connected. Then, the connecting rod 21 on one side is placed into the slot. The slot of the other support wall 23 is aligned with the connecting rod 21 so that the two support walls 23 clamp the roller 5. Finally, the roller wheel 19 is installed on the connecting rod 21 on the side where the roller drive wheel 18 is located. When the drive motor 11 starts, the track drive wheel 12 and the roller drive wheel 18 begin to rotate, ensuring that the feeding track 9 continuously conveys materials. Simultaneously, the two roller drive wheels 18 rotate together. However, the push rod 20 is not extended at this time, so the upper roller drive wheel 18 is not in contact with the roller swivel 19, and the roller 5 remains stationary. When the user issues a command to make rice noodle rolls via the control panel, the push rod 20 is pushed up, raising the roller swivel 19 so that the roller swivel 19 is in contact with the upper roller drive wheel. The roller drive wheel 18 and belt 13 are attached together, causing the roller drive wheel 18 and belt 13 to drive the roller wheel 19 to rotate, which in turn drives the roller 5 to rotate, coating the edible oil in the oil box 6 onto the feeding conveyor belt 9, thus performing the oiling work. Then the oiled part is transferred to the rice paste feeding mechanism 17 for receiving. The belt drive wheel 12, the conveyor belt wheel 14, the roller drive wheel 18 and the roller wheel 19 are all made of rubber, and their wheel sidewalls have sufficient friction to ensure the transmission with the belt and the transmission between the two wheels.

[0062] Preferably, the oil box 6 is provided with a scraper 24, which is bent and located on the side of the roller 5. The head end of the scraper 24 is close to the roller 5, and the lower end of the scraper 24 is fixedly connected in the oil box 6.

[0063] By adopting the above technical solution, when the roller 5 rotates, it will carry the edible oil up, and the scraper 24 can scrape off the excess edible oil, ensuring that the part of the feeding conveyor 9 that is coated is in the form of an oil film, and the excess edible oil will be guided back into the oil box 6 by the scraper 24.

[0064] Preferably, the oil box 6 is provided with a slot for the oil inlet pipe 25 to pass through, the end of the oil inlet pipe 25 is provided with a pump body 26, and a liquid level sensor is provided on the side wall of the oil box 6.

[0065] By adopting the above technical solution, the liquid level sensor can sense the height of the edible oil in the oil box 6. When the edible oil level drops to a height that the roller 5 cannot reach in the oil box 6, the pump body 26 is started to inject edible oil, so that the edible oil level in the oil box 6 rises, making it easier for the roller 5 to contact the edible oil.

[0066] Working principle: By setting a track drive wheel 12 and a roller drive wheel 18 on the output shaft of a drive motor 11, the continuous operation of the drive motor 11 keeps the feeding track 9 in a transmission state. Regardless of whether rice noodle rolls are being made, the feeding track 9 is always in transmission to prevent a certain section from being continuously heated. By setting a lifting mechanism 7, the contact state between the roller drive wheel 19 and the roller drive wheel 18 is controlled, so that when the feeding track 9 is idling, the lubrication work is stopped. This allows the drive motor 11 to serve as the power output end for two mechanisms, while ensuring that the start and stop of the two mechanisms do not interfere with each other.

[0067] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. An anti-sticking automatic powder-pulling device, comprising an outer casing, characterized in that, The outer box is provided with a discharge port (1), and the rear end of the discharge port (1) is provided with a feeding mechanism (2). The feeding mechanism (2) can feed the raw rice paste into the cooked rice noodle mechanism (3) for cooking. After the raw rice paste is heated and made into rice noodle rolls, it is conveyed to the discharge port (1) to send out the rice noodle rolls. Before the feeding mechanism (2) comes into contact with the raw rice paste, it will pass through the oiling mechanism (4). The oiling mechanism (4) can make the side of the feeding mechanism (2) in contact with the raw rice paste covered with oil. After being cooked by the cooked rice noodle mechanism (3), the side of the rice noodle roll that is in contact with the feeding mechanism (2) is also covered with oil. After the rice noodle roll leaves the discharge port (1), the side covered with oil and the side without oil do not stick together when they come into contact.

2. The anti-sticking automatic powder pulling device according to claim 1, characterized in that, The oiling mechanism (4) is provided with a roller (5), and an oil box (6) is provided below the roller (5). The roller (5) is controlled by a lifting mechanism (7) and a drive mechanism (8). The lifting mechanism (7) can adjust the height of the roller (5) and change the distance between it and the feeding mechanism (2). The drive mechanism (8) can drive the roller (5) to rotate, so as to bring the oil out from the oil box (6) and coat it on the contact surface between the feeding mechanism (2) and the raw rice paste.

3. The anti-sticking automatic powder pulling device according to claim 2, characterized in that, The feeding mechanism (2) is provided with a feeding track (9) and a second driving mechanism (10). The second driving mechanism (10) is provided with a driving motor (11). The driving motor (11) is provided with a track drive wheel (12). The track drive wheel (12) is connected to the track wheel (14) through a belt (13). The track wheel (14) is located on one side of the feeding track (9). The cooked powder mechanism (3) is provided with a steam box (15) and a steam engine (16). The steam box (15) is provided with an opening for the feeding track (9) to pass through, so that part of the feeding track (9) is covered by the steam box (15).

4. The anti-sticking automatic powder pulling device according to claim 3, characterized in that, The cooked rice flour mechanism (3) is located in the middle of the feeding conveyor belt (9). The feeding conveyor belt (9) is provided with a rice slurry feeding mechanism (17) on the side away from the discharge port (1). The rice slurry feeding mechanism (17) is located above the feeding conveyor belt (9). The oiling mechanism (4) is located below the feeding conveyor belt (9).

5. The anti-sticking automatic powder pulling device according to claim 4, characterized in that, The second drive mechanism (10) is equipped with a drive motor (11) and a roller drive wheel (18). There are two roller drive wheels (18), one of which is located on the output shaft of the drive motor (11). The two roller drive wheels (18) are connected by a belt (13). A roller wheel (19) is provided on one side of the roller shaft (5). When the roller wheel (19) is in contact with the roller drive wheel (18), the roller drive wheel (18) can drive the roller wheel (19) to rotate, so that the roller shaft (5) rotates. The contact state between the roller drive wheel (18) and the roller wheel (19) is controlled by the lifting mechanism (7).

6. The anti-sticking automatic powder pulling device according to claim 5, characterized in that, The lifting mechanism (7) consists of two push rods (20), which are controlled by the same controller. The roller (5) has connecting rods (21) on both sides. The connecting rods (21) are installed at the head end of the push rods (20). The oil box (6) has grooves (22) on both sides to avoid the connecting rods (21).

7. The anti-sticking automatic powder pulling device according to claim 6, characterized in that, The first drive mechanism (8) and the second drive mechanism (10) share a drive motor (11), that is, the track drive wheel (12) and one of the roller drive wheels (18) are mounted on the output shaft of the same drive motor (11).

8. The anti-sticking automatic powder pulling device according to claim 7, characterized in that, A support wall (23) is provided below the feeding track (9). The support wall (23) has a slot for the connecting rod (21) to move. The drive motor (11) is installed on the support wall (23). The track drive wheel (12) is located outside the roller drive wheel (18). The belts (13) on both are facing opposite directions.

9. The anti-sticking automatic powder pulling device according to claim 8, characterized in that, The oil box (6) is provided with a scraper (24), which is bent and located on the side of the roller (5). The head end of the scraper (24) is close to the roller (5), and the lower end of the scraper (24) is fixedly connected in the oil box (6).

10. The anti-sticking automatic powder pulling device according to claim 9, characterized in that, The oil box (6) is provided with a slot for the oil inlet pipe (25) to pass through, and a pump body (26) is provided at the end of the oil inlet pipe (25). A liquid level sensor is provided on the side wall of the oil box (6).