Automatic feeding and making device for intestines powder
By introducing an automatic feeding device into the rice noodle roll machine, and using the batter dispenser and push-pull mechanism to achieve quantitative output of rice batter and control of tray movement, the problems of low automation and uneven weight and thickness of existing rice noodle roll machines have been solved, realizing the automation and uniformity of rice noodle roll production.
Patent Information
- Application Number
- CN202521510391.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-18
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-07-18
AI Technical Summary
Existing rice noodle roll machines have low levels of automation, require high labor intensity for operators, and are difficult to guarantee the weight and thickness uniformity of each serving.
An automatic feeding device with a temporary storage space and feeding mechanism on the support frame is adopted. A quantitative amount of rice paste is obtained from the rice paste supply device through the paste dispenser, and the rice paste is automatically output and flattened by pushing and pulling the tray using a push-pull mechanism. Combined with the paste dispenser and push-pull mechanism controlled by three-dimensional coordinates, the weight and thickness of each rice noodle roll are ensured to be uniform.
It achieves automated feeding in rice noodle roll production, reduces the labor intensity of operators, and ensures the uniformity of weight and thickness of each rice noodle roll. It has a simple structure and low cost.
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Figure CN224670816U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of catering equipment technology, and in particular to rice noodle roll making equipment. Background Technology
[0002] Rice noodle rolls are a specialty snack in Guangdong province, popular as a breakfast food. Common preparation methods include drawer-style, cloth-steamed, and basket-style rice noodle rolls. Currently, existing rice noodle roll machines mainly include manual and conveyor belt machines. Manual machines involve manually pulling out and pushing steaming trays into the heating chamber of the machine and manually applying the rice noodle batter. These manual machines are relatively common, with a simple overall structure, small size, and low manufacturing cost, but low automation and high labor intensity for operators. Conveyor belt machines, on the other hand, use a steel belt for conveying and automatically apply the rice noodle batter, scrape the rice noodle rolls, cut them, and deliver them. These machines have a high level of automation, but a more complex structure and higher manufacturing cost. The rice noodle batter flows into a hanging chamber; only when the batter level exceeds the hanging plate does it flow onto the moving steel belt. Flowing from the hanging plate ensures a uniform thickness of the batter and allows for control over its size. However, once the height of the batter-coating chamber exceeds the batter-coating plate, it will overflow. The batter-coating plate cannot control the flow rate and volume of the batter, so there is a lack of relevant technology to ensure the weight and thickness of each serving of rice noodle roll. Summary of the Invention
[0003] The purpose of this invention is to provide an automatic feeding rice noodle roll making equipment that can automatically feed the rolls while ensuring the weight and thickness of each portion.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: An automatic feeding rice noodle roll making machine shall have at least the following features: The support has a temporary storage space that is suitable for tray implantation and storage. The feeding mechanism is mounted on a support and has a discharge device that can move on the upper side of the tray. The discharge device obtains a fixed amount of rice slurry from the rice slurry supply device and outputs the rice slurry onto the tray during the movement. A push-pull mechanism, mounted on a bracket, is used to push and pull the tray, giving the tray the dynamic properties of being leveled by a paddle and the motion properties of moving in and out of the steamer.
[0005] Furthermore, the above solution is that the support is a layered structure, with temporary storage spaces set up on the support according to the layering method, and each temporary storage space is equipped with a feeding mechanism and a push-pull mechanism.
[0006] Furthermore, the above solution includes a feeding device on the support, which is provided for each temporary storage space. The feeding device has a material tray distributed on the upper side of the tray and can rotate. The material tray has an upward-facing material trough. By rotating the material tray, the opening of the material trough is changed to face downward, so that the ingredients stored in the material trough are automatically poured into the tray.
[0007] A further aspect of the above scheme is that the push-pull mechanism pushes or pulls the tray into or out of the steamer along the three-dimensional coordinate X-axis direction, or shakes the tray, while the slurry outlet of the feeding mechanism moves on the upper side of the tray along the three-dimensional coordinate Y-axis direction.
[0008] The above scheme is further described as follows: the pulp outlet is a long tube extending along the three-dimensional coordinate X-axis direction, and multiple protruding nozzles are provided on the pulp outlet. The nozzles are arranged in rows at intervals along the three-dimensional coordinate X-axis direction. The nozzles are used to output the pre-obtained quantitative rice pulp in the pulp outlet to the tray.
[0009] The above scheme is further described in that the slurry outlet is mounted on a movable truss and can rotate on its own axis. The movable truss is mounted on a support and can reciprocate linearly along the three-dimensional coordinate Y-axis. The nozzle changes its posture by following the rotation of the slurry outlet, so that the nozzle can obtain a discharging state and a storing state.
[0010] Furthermore, the above scheme includes a washboard on the support, which is arranged at the starting position of the moving truss. The washboard is used to rub the outer circumferential surface of the slurry outlet to make the slurry outlet rotate.
[0011] The above solution is further described in that the push-pull mechanism has a timing belt and a slider fixed on the timing belt. The timing belt is mounted on a bracket and can move back and forth by a drive. The slider moves with the timing belt and has a hook for attaching to the corresponding side of the tray, so that the tray can move with the slider.
[0012] A further improvement in the above scheme is that the feed nozzle is vertically downward when it is in the feeding state.
[0013] The above-mentioned solution is further described in that the rice slurry supply device includes a material tank and a metering pump. The material tank is mounted on a bracket or fixed independently, and the material tank contains a stirrer. The inlet and outlet of the metering pump are respectively connected to the material tank and the slurry outlet through pipes.
[0014] Using the above-mentioned technical means, the rice flour discharger of this utility model obtains a quantitative amount of rice flour from the rice flour supply device and outputs the rice flour onto the tray during the movement process. Then, the tray is pushed and pulled by the push-pull mechanism, so that the tray has the dynamic properties of shaking and flattening the rice flour and the movement properties of entering and leaving the steaming box, realizing automatic feeding, ensuring the weight and thickness of each rice noodle roll, reducing the labor intensity of operators, with simple structure, convenient operation, and low investment cost. Attached Figure Description
[0015] AppendixFigure 1 This is a cross-sectional view of one embodiment of the present utility model; Appendix Figure 2 for Figure 1 Enlarged schematic diagram of a partial structure in the embodiment; Appendix Figure 3 for Figure 1 A partial structural diagram of the push-pull mechanism in the embodiment; Appendix Figure 4 for Figure 1 A schematic diagram of the working structure of the slurry outlet in the embodiment; Appendix Figure 5 This is a schematic diagram of the present invention used in conjunction with a steamer. Detailed Implementation
[0016] The following will further explain the concept, specific structure and technical effects of this utility model in conjunction with the accompanying drawings, so as to fully understand the purpose, features and effects of this utility model.
[0017] It should be noted that in the description of this utility model, the terms "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," which indicate directional or positional relationships, are based on the directional or positional relationships shown in the accompanying drawings. These terms are used merely for ease of description and do not indicate or imply that the device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0018] See Figures 1-5 The diagram shown is a preferred embodiment of the present invention. The present invention relates to an automatic feeding rice noodle roll making equipment, which includes: a support 1, a tray 2, a rice paste supply device 3, a feeding mechanism and a push-pull mechanism 5.
[0019] The support 1 is equipped with a temporary storage space 11, which accommodates the insertion and storage of the tray 2. In this embodiment, the support 1 is a layered structure that increases in height along the three-dimensional coordinate Z-axis. The temporary storage spaces 11 are arranged in a layered manner on the support, and each temporary storage space 11 is equipped with a feeding mechanism and a push-pull mechanism to enable multi-layer synchronous operation and improve efficiency. Figure 5As shown, the support 1 has a connection port at one end in the X-axis direction for connecting to the steamer 7. The steamer 7 also has multiple layers of steaming racks inside to accommodate the trays 2. A control box 13 is located at the other end of the support 1 in the X-axis direction, away from the heat source for easy control. The control box 13 embeds a PLC control module, allowing the machine to be automated using PLC program control. This ensures stable and reliable operation, and simultaneously controls the steaming time of the trays in the steamer, guaranteeing the quality of each rice noodle roll.
[0020] The feeding mechanism is mounted on a support and has a feeder 41 that can move on the upper side of the tray 2. The feeder 41 obtains a fixed amount of rice slurry from the rice slurry supply device 3 and outputs the rice slurry onto the tray 2 during movement; the fixed amount ensures the weight of each serving of rice noodle roll. In this embodiment, the rice slurry supply device 3 includes a material tank 31 and a metering pump 32. The material tank 31 is mounted on the support 1 or fixed independently, depending on the actual needs. The material tank 31 is equipped with a stirrer, which prevents the rice slurry in the material tank 31 from settling and facilitates the output supply. The inlet and outlet of the metering pump 32 are connected to the material tank 31 and the feeder 41 through pipes to achieve a fixed amount, ensuring the weight of each serving of rice noodle roll is balanced, and also facilitating subsequent steaming and cooking control, thus achieving rapid production of high-quality rice noodle rolls.
[0021] The push-pull mechanism 5 is mounted on the bracket and is used to push and pull the tray 2, giving the tray 2 the dynamic properties of shaking and flattening, as well as the movement properties of entering and exiting the steamer. By pushing and pulling the tray 2 once or twice by the push-pull mechanism 5, the rice batter in the tray 2 moves, achieving the effect of shaking and flattening, ensuring that each serving of rice noodle roll is of uniform thickness. This push-pull shaking design replaces manual shaking, greatly reducing labor intensity.
[0022] Figure 1 As shown, in this embodiment, the support is also equipped with a dispensing device 6. Each temporary storage space 11 is equipped with a dispensing device 6. The dispensing device 6 has a rotating material tray 61 distributed on the upper side of the tray. The material tray 61 has an upward-facing material trough 611. By rotating the material tray, the opening of the material trough is changed to face downwards, allowing the ingredients stored in the material trough 611 to be automatically poured into the tray. This dispensing device 6 mainly provides liquid ingredients such as egg liquid, but it can also be used for other ingredients. In this embodiment, both ends of the material tray 61 are mounted on the support via rotating rods. One end of the rotating rod of the material tray 61 is connected to a corresponding servo motor 62. The servo motor controls the rotation angle, causing the material tray to rotate and automatically pour the ingredients stored in the material trough 611 into the tray. Utilizing rotational inertia, a splashing effect is achieved, allowing the egg liquid and other ingredients to be automatically dispersed and added to the rice noodle roll.
[0023] Figure 1 , 3As shown in Figure 5, in this embodiment, the push-pull mechanism pushes and pulls the tray 2 in and out of the steamer or shakes the tray 2 along the three-dimensional coordinate X-axis direction, while the slurry outlet 41 of the feeding mechanism moves on the upper side of the tray 2 along the three-dimensional coordinate Y-axis direction, forming a vertical cross relationship, which is beneficial to the layout and movement of components, making the equipment more compact and reasonable, and convenient for manufacturing and assembly. The push-pull mechanism has a synchronous belt 51 and a slider 52 fixed on the synchronous belt. The synchronous belt 51 is mounted on the bracket 1 and can move back and forth by drive. The slider 52 moves with the synchronous belt, and the slider 52 has a hook 53, which is used to hook the corresponding side of the tray 2, so that the tray 2 can move with the slider. In this embodiment, the tray 2 is square, matching the shape and size of the temporary storage space 11. The hooks directly attach to the inner side of the corresponding side of the tray 2; alternatively, an outward-curved edge can be added to the corresponding side of the tray 2 to engage with the hooks, facilitating the insertion of the tray 2 into the temporary storage space 11 from the Y-axis direction of the three-dimensional coordinate system. Simultaneously, the tray 2 engages with the hooks 53 during insertion, making insertion and removal simple and accommodating push-pull movement along the X-axis direction of the three-dimensional coordinate system. The shape, number, and position of the hooks 53 can be selected according to actual conditions to facilitate tray attachment and push-pull movement, as well as the insertion and removal of the tray from the steamer. During use, the operator first applies a layer of base oil to the inner bottom of the tray 2 before inserting it into the temporary storage space 11. The inner bottom of the temporary storage space 11 has corresponding support rods that hold the tray 2. These support rods extend along the X-axis direction of the three-dimensional coordinate system, and ball bearings can be further added to the support rods to facilitate the pushing and pulling of the tray.
[0024] In this embodiment, the discharge device 41 is a long tube extending along the X-axis of the three-dimensional coordinate system. Both ends of the tube are sealed, and its length matches the length of the tray in the corresponding direction. The tube has a pre-drilled inlet for receiving a fixed quantity of rice slurry provided by the rice slurry supply device 3. Multiple protruding nozzles 411 are also provided on one side of the discharge device 41. These nozzles 411 are arranged in rows at intervals along the X-axis of the three-dimensional coordinate system. The nozzles 411 are used to output the pre-obtained fixed quantity of rice slurry from the discharge device 41 onto the tray 2. The nozzles 411 are arranged in rows at intervals on the same horizontal plane, ensuring that each nozzle receives a uniform amount of rice slurry, which facilitates subsequent feeding. Furthermore, the discharge device 41 is mounted on a movable truss 42 and can rotate. The movable truss 42 is mounted on a support 1 and can reciprocate linearly along the Y-axis of the three-dimensional coordinate system. Figure 1As shown, the two ends of the movable truss 42 are embedded in the pre-set linear guide grooves 14 on the bracket 1, while the middle section of the movable truss 42 is mounted on the lead screw 43 by a nut. The lead screw 43 is positioned on the bracket 1 and can rotate. One end of the lead screw 43 is connected to the drive motor 44, which drives the lead screw 43 to rotate forward and backward. Utilizing the threaded connection between the lead screw and the nut, the movable truss 42 can reciprocate linearly under the drive of the lead screw 43, so that the slurry dispenser 41 follows the movable truss 42 in reciprocating linear movement, thus satisfying the feeding operation. In this embodiment, the nozzle 411 changes its posture by following the rotation of the slurry dispenser 41, allowing the nozzle 411 to obtain a discharging state and a storing state. In the discharging state, the nozzle 411 is vertically downward, facilitating the automatic flow of rice slurry from the nozzle onto the tray. In this preferred embodiment, the discharge device 41 rotates 90° to allow the nozzle 411 to be in a discharging state and a storing state. That is, when the nozzle 411 is in the storing state, it is horizontal, and the height of the nozzle 411 is higher than the pre-stored quantitative rice slurry height in the discharge device 41 to prevent the rice slurry from overflowing automatically.
[0025] In this embodiment, the support 1 is also provided with a washboard 12, which is arranged at the starting position of the moving truss 42. The washboard 12 is used to rub the outer peripheral surface of the pulp outlet 41, causing the pulp outlet 41 to rotate. In this embodiment, the two ends of the pulp outlet 41 are mounted on the preset vertical boom of the moving truss 42 by rotating pins, which satisfies the requirements of suspension and rotation. Figure 4 As shown, when the moving truss 42 moves back to the starting position, the washboard 12 rubs against the outer circumference of the slurry dispenser 41 and supports the slurry dispenser 41, causing the slurry dispenser 41 to rotate and reset so as to receive rice slurry. At the same time, the nozzle 411 is in the storage state. When the moving truss 42 moves out from the starting position, the slurry dispenser 41 slides out with the washboard 12. The washboard 12 pulls the slurry dispenser 41 back and forth through friction, causing the slurry dispenser 41 to rotate. Using the weight of the slurry dispenser 41, the nozzle 411 rotates to the discharging state, that is, the nozzle 411 is vertically downward, allowing the rice slurry to flow onto the tray. At this time, the moving truss 42 continues to move, and the nozzle 411 guides the rice slurry to be output to the tray in a linear manner. After the feeding is completed, the moving truss 42 drives the slurry dispenser 41 to return to its original position. Again, the washboard 12 rubs against the slurry dispenser 41, causing the slurry dispenser 41 to rotate and reset so as to receive rice slurry. At the same time, the nozzle 411 is in the storage state. This process is repeated.
[0026] The present invention provides a rice flour feeder that obtains a quantitative amount of rice flour from a rice flour supply device and outputs it onto a tray during movement. The tray is then pushed and pulled by a push-pull mechanism, which enables the tray to achieve dynamic shaking and flattening of the rice flour and movement in and out of the steamer, thus realizing automatic feeding and ensuring the weight and thickness of each serving of rice noodle roll. This reduces the labor intensity of operators, has a simple structure, is easy to operate, and has low investment costs.
[0027] Of course, the above detailed description of the present utility model in conjunction with the embodiments is only for illustrating the technical concept and features of the present utility model. Its purpose is to enable those skilled in the art to understand the content of the present utility model and implement it. Therefore, all equivalent changes or modifications made in accordance with the spirit and essence of the present utility model should be covered within the protection scope of the present utility model.
Claims
1. An automatic feeding rice noodle roll making equipment, characterized in that, At least have: A stent (1) is provided with a temporary storage space (11) which is suitable for the implantation and storage of the tray (2); The feeding mechanism is mounted on a support and has a discharge device (41) that can move on the upper side of the tray (2). The discharge device (41) obtains a fixed amount of rice slurry from the rice slurry supply device (3) and outputs the rice slurry onto the tray (2) during the movement. Push-pull mechanism (5), which is mounted on the bracket, is used to push and pull tray (2) so that tray (2) has dynamics of being flattened by a paddle and motion properties of entering and exiting the steamer.
2. The automatic feeding rice noodle roll making equipment according to claim 1, characterized in that, The support is a layered structure, with temporary storage spaces (11) set up on the support according to the layering method, and each temporary storage space (11) is equipped with a feeding mechanism and a push-pull mechanism.
3. The automatic feeding rice noodle roll making equipment according to claim 1 or 2, characterized in that, The support is also equipped with a dispensing device (6), which is provided for each temporary storage space (11). The dispensing device (6) has a material tray (61) distributed on the upper side of the tray and can rotate. The material tray (61) has a material trough (611) with the opening facing upward. By rotating the material tray, the opening of the material trough is changed to face downward, so that the dispensing material stored in the material trough (611) is automatically poured to the tray.
4. The automatic feeding rice noodle roll making equipment according to claim 1 or 2, characterized in that, The push-pull mechanism pushes and pulls the tray (2) in and out of the steamer or shakes the tray (2) along the three-dimensional coordinate X-axis direction, while the feeder (41) of the feeding mechanism moves along the three-dimensional coordinate Y-axis direction on the upper side of the tray (2).
5. The automatic feeding rice noodle roll making equipment according to claim 4, characterized in that, The discharge device (41) is a long tube extending along the three-dimensional coordinate X-axis direction, and multiple protruding nozzles (411) are provided on the discharge device (41). The nozzles (411) are arranged in rows at intervals along the three-dimensional coordinate X-axis direction. The nozzles (411) are used to output the pre-obtained quantitative rice paste in the discharge device (41) onto the tray (2).
6. The automatic feeding rice noodle roll making equipment according to claim 5, characterized in that, The discharge device (41) is mounted on a movable truss (42) and can rotate. The movable truss (42) is mounted on a support (1) and can reciprocate linearly along the three-dimensional coordinate Y-axis. The nozzle (411) changes its posture by following the rotation of the slurry dispenser (41), so that the nozzle (411) can be in the discharging state and the storing state.
7. The automatic feeding rice noodle roll making equipment according to claim 6, characterized in that, The support (1) is also provided with a rubbing board (12), which is arranged at the starting position of the moving truss (42). The rubbing board (12) is used to rub the outer circumferential surface of the slurry outlet (41) to make the slurry outlet (41) rotate.
8. The automatic feeding rice noodle roll making equipment according to claim 4, characterized in that, The push-pull mechanism has a timing belt (51) and a slider (52) fixed on the timing belt. The timing belt (51) is mounted on the bracket (1) and can be driven to move back and forth. The slider (52) moves with the timing belt and has a hook (53) on it. The hook is used to attach to the corresponding side of the tray (2) so that the tray (2) can move with the slider.
9. The automatic feeding rice noodle roll making equipment according to claim 6, characterized in that, The feed nozzle (411) is vertically downward when discharging material.
10. The automatic feeding rice noodle roll making equipment according to claim 1, characterized in that, The rice slurry supply device (3) includes a material tank (31) and a metering pump (32). The material tank (31) is installed on the bracket (1) or fixed independently. The material tank (31) contains a stirrer. The inlet and outlet of the metering pump (32) are connected to the material tank (31) and the slurry outlet (41) through pipes, respectively.