A powder mixing device for noodle processing
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-25
- Publication Date
- 2026-08-14
AI Technical Summary
针对现有技术中存在的问题,本实用新型提供了一种面条加工用混粉装置,以解决背景技术中提到的排出口的内壁容易附着粉料堵塞,且外接捶打的位置固定和拆卸不便捷等技术问题
本实用新型设置了排出振动机构,通过驱动电机带动偏心杆和拉动杆,使得移动块上的橡胶块产生振动,帮助粉料顺利排出,减少堵塞和残留现象,确保物料的流畅排出,振动机构能够在混粉过程中自动调整排料速度,避免粉料的过多或过少排出,确保加工过程更加高效。
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Figure CN224628912U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of powder mixing technology, and more specifically, to a powder mixing device for noodle processing. Background Technology
[0002] In existing technologies, the design of the discharge port of the noodle mixing device has several problems. First, powder easily adheres to the inner wall of the discharge port. Over time, the accumulation of powder can cause blockage, affecting the normal operation of the equipment and the flowability of the powder, resulting in decreased production efficiency. Blockage not only increases the workload of cleaning and maintenance but can also lead to equipment malfunctions, affecting the continuity and stability of production.
[0003] Secondly, the fixed position and inconvenient disassembly of the external hammering device cause inconvenience to operators. Current devices typically connect the hammering device to other components in a fixed manner, making it difficult to adjust its angle or position during use and hindering flexible control of the hammering effect. Furthermore, the disassembly process of the hammering device is cumbersome, requiring certain tools and operating skills, increasing the time and difficulty of equipment maintenance. Especially when cleaning the equipment or replacing the hammering device, this inconvenient design significantly increases the operator's workload and reduces the efficiency of the device. Utility Model Content
[0004] (a) Technical problems to be solved In view of the problems existing in the prior art, this utility model provides a powder mixing device for noodle processing, which solves the technical problems mentioned in the background art, such as the easy adhesion and blockage of powder on the inner wall of the discharge port, and the inconvenience of fixing and disassembling the external hammer.
[0005] (II) Technical Solution To achieve the above objectives, this utility model provides the following technical solution: a powder mixing device for noodle processing, comprising a mixing tank, a discharge vibration mechanism, an installation and clamping mechanism, and a clamping auxiliary mechanism. The discharge vibration mechanism comprises a transverse plate, a drive motor, an eccentric rod, a pull rod, a moving block, and a rubber block. The drive motor is mounted on the transverse plate, the eccentric rod is mounted on the output end of the drive motor, the moving block is directionally slidably disposed on the transverse plate, the two ends of the pull rod are rotatably connected to the moving block and the eccentric rod, and the rubber block is mounted on the moving block. The installation and clamping mechanism comprises a clamping tube, a clamping rod, a clamping groove, a rotating sleeve, a rotary push groove, an insertion frame, and a thrust spring. The clamping groove is disposed on the side wall of the clamping rod, the rotating sleeve is rotatably mounted on the side wall of the clamping tube, the rotary push groove is disposed on the inner wall of the rotating sleeve, the insertion frame is laterally slidably mounted on the side wall of the clamping tube, and the clamping groove is disposed on the side wall of the clamping rod. The rotating sleeve causes the rotary push groove to push the insertion frame into the clamping groove, compressing the thrust spring in the clamping groove.
[0006] The present invention is further configured such that the snap-fit auxiliary mechanism includes a rotating block, a winding rod, a return spring, a threaded sleeve, and an insert block. Multiple sets of rotating blocks are installed at the top end of the rotating sleeve. The winding rod is fixedly installed on the outer wall of the snap-fit tube. The return spring is fitted on the winding rod. The rotating block is slidably installed on the winding rod, and one end of the return spring is connected to the side of the rotating block. The threaded sleeve is threadedly connected to the outer wall of the snap-fit tube. The insert block is installed at the bottom end of the threaded sleeve. The insert block can be embedded in the rotating block, so that multiple sets of rotating blocks drive the rotating sleeve to rotate.
[0007] The present invention is further configured such that a bottom hopper is installed at the bottom end of the mixing tank, and inclined hoppers are installed on both sides of the bottom hopper. The rubber block is arranged to reciprocate in contact with the inclined hoppers. The bottom hopper design promotes the downward concentrated flow of materials and reduces residue.
[0008] The present invention is further provided that a sliding baffle is slidably installed on the inclined hopper, and the sliding baffle can block the connection between the inclined hopper and the bottom hopper. The sliding baffle realizes precise control of material flow and prevents excessive discharge.
[0009] The present invention is further configured such that a lid assembly is installed at the top of the mixing tank, and a stirring assembly is installed inside the mixing tank. The lid assembly facilitates the addition of raw materials and prevents dust from overflowing during the mixing process.
[0010] The present invention is further configured such that a directional rail is installed at the top end of the transverse plate, and the moving block is directionally slidably set on the directional rail. The directional rail ensures that the moving block moves accurately and improves vibration efficiency.
[0011] The present invention is further configured such that a connecting plate is installed at the bottom end of the side wall of the clamping pipe, the side plate is installed in the inclined hopper, and the connecting plate is fixedly connected to the side plate, thereby enhancing the connection strength between the clamping pipe and the side plate.
[0012] The present invention is further configured such that the snap-fit rod is fixedly connected to the transverse plate, and one end of the snap-fit rod extends through the side plate and engages with the snap-fit tube. The snap-fit tube and the snap-fit rod form a quick connection system, which facilitates the assembly and disassembly of the equipment.
[0013] (III) Beneficial Effects Compared with the prior art, the present invention provides a powder mixing device for noodle processing, which has the following beneficial effects: This invention features a discharge vibration mechanism. A drive motor drives an eccentric rod and a pulling rod, causing the rubber block on the moving block to vibrate. This helps the powder to be discharged smoothly, reducing blockages and residues, and ensuring smooth material discharge. The vibration mechanism can automatically adjust the discharge speed during the powder mixing process to avoid excessive or insufficient powder discharge, ensuring a more efficient processing procedure.
[0014] This utility model is equipped with an installation snap-fit mechanism. The design of the snap-fit rod and snap-fit tube provides quick connection and disassembly, which facilitates the assembly, disassembly and cleaning of the equipment, reduces maintenance time and labor intensity. Through the cooperation of the rotating sleeve and the rotary push groove, the insert frame is accurately inserted into the slot to ensure a firm connection of the snap-fit components, prevent loosening during operation, and improve the stability and reliability of the equipment.
[0015] This utility model is equipped with a snap-fit auxiliary mechanism. The design of the rotating block, the winding rod and the return spring can enhance the stability of the rotating sleeve during use, making it easier for multiple sets of rotating blocks to drive the rotating sleeve to rotate, reducing problems caused by operational instability. Through the cooperative design of the threaded sleeve and the embedded block, the auxiliary mechanism enhances the flexibility of the snap-fit system, making the equipment easier to install and adjust, and improving operating efficiency. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the device in the unused state of this utility model; Figure 2 This is a schematic diagram of the structure of the vibration discharge mechanism in this utility model. Figure 1 ; Figure 3 This is a schematic diagram of the structure of the vibration discharge mechanism in this utility model. Figure 2 ; Figure 4 This is a schematic diagram of the installation snap-fit mechanism and snap-fit auxiliary mechanism in this utility model; Figure 5 This is a schematic diagram of the internal structure of the mounting clipping mechanism and the clipping auxiliary mechanism in this utility model.
[0017] In the diagram: 1. Mixing tank; 2. Horizontal plate; 3. Drive motor; 4. Eccentric rod; 5. Pulling rod; 6. Moving block; 7. Rubber block; 8. Clip-on pipe; 9. Clip-on rod; 10. Clip groove; 11. Rotating sleeve; 12. Rotating push groove; 13. Extension frame; 14. Back thrust spring; 15. Rotating block; 16. Winding rod; 17. Return spring; 18. Threaded sleeve; 19. Embedded block; 20. Bottom hopper; 21. Inclined hopper; 22. Sliding baffle; 23. Tank lid assembly; 24. Stirring assembly; 25. Directional rail; 26. Connecting plate; 701. Side plate. Detailed Implementation
[0018] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0019] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0020] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.
[0021] Please see Figures 1-5 A noodle-processing powder mixing device includes a mixing tank 1, a discharge vibration mechanism, a mounting and clamping mechanism, and a clamping auxiliary mechanism. The discharge vibration mechanism includes a transverse plate 2, a drive motor 3, an eccentric rod 4, a pull rod 5, a moving block 6, and a rubber block 7. The drive motor 3 is mounted on the transverse plate 2, the eccentric rod 4 is mounted on the output end of the drive motor 3, the moving block 6 is directionally slidable on the transverse plate 2, both ends of the pull rod 5 are rotatably connected to the moving block 6 and the eccentric rod 4, and the rubber block 7 is mounted on the moving block 6. The mounting and clamping mechanism includes a clamping mechanism. The tube 8, the snap-fit rod 9, the snap-fit groove 10, the rotating sleeve 11, the rotary push groove 12, the extension frame 13, and the thrust spring 14 are all included. The snap-fit groove 10 is located on the side wall of the snap-fit rod 9. The rotating sleeve 11 is mounted on the side wall of the snap-fit tube 8 for limiting rotation. The rotary push groove 12 is located on the inner wall of the rotating sleeve 11. The extension frame 13 is mounted on the side wall of the snap-fit tube 8 for lateral sliding. The snap-fit groove 10 is located on the side wall of the snap-fit rod 9. The rotating sleeve 11 causes the rotary push groove 12 to push the extension frame 13 into the snap-fit groove 10, compressing the thrust spring 14 inside the snap-fit groove 10.
[0022] In this embodiment, the drive motor 3 starts, driving the eccentric rod 4 at the output end to rotate. The eccentric rod 4 drives the moving block 6 to slide back and forth on the directional rail 25 of the transverse plate 2 via the pull rod 5. The rubber block 7 installed on the moving block 6 then reciprocates and comes into periodic contact with the inclined hopper 21. The rubber block 7 applies a periodic impact force to the inclined hopper 21, causing the inclined hopper 21 to vibrate. The vibration causes the material in the mixing tank 1 to be smoothly discharged through the bottom hopper 20 and the inclined hopper 21. The quick installation and disassembly of the actuator facilitates maintenance. Insert the snap-fit rod 9 into the snap-fit tube 8, rotate the rotating sleeve 11, and the rotary push groove 12 on the inner wall of the rotating sleeve 11 pushes the extension frame 13. The extension frame 13 slides laterally under the action of the rotary push groove 12 and extends into the snap-fit groove 10 on the side wall of the snap-fit rod 9. When the extension frame 13 enters the snap-fit groove 10, it compresses the counter-push spring 14 in the snap-fit groove 10. After snap-fit is completed, the extension frame 13 is locked in the snap-fit groove 10, realizing a stable connection between the snap-fit tube 8 and the snap-fit rod 9.
[0023] The snap-fit auxiliary mechanism includes a rotating block 15, a winding rod 16, a return spring 17, a threaded sleeve 18, and an insert block 19. Multiple sets of rotating blocks 15 are installed on the top end of the rotating sleeve 11. The winding rod 16 is fixedly installed on the outer wall of the snap-fit tube 8. The return spring 17 is fitted on the winding rod 16. The rotating blocks 15 are slidably installed on the winding rod 16, and one end of the return spring 17 is connected to the side of the rotating block 15. The threaded sleeve 18 is threadedly connected to the outer wall of the snap-fit tube 8. The insert block 19 is installed on the bottom end of the threaded sleeve 18. The insert block 19 can be inserted into the rotating blocks 15, so that multiple sets of rotating blocks 15 drive the rotating sleeve 11 to rotate.
[0024] In this embodiment, the rotating block 15 is installed on the top of the rotating sleeve 11 and can slide on the winding rod 16. The threaded sleeve 18 is installed on the outer wall of the snap-fit tube 8 through a threaded connection. Rotating the threaded sleeve 18 causes the bottom inserting block 19 to insert into the rotating block 15. Continuing to rotate the threaded sleeve 18 causes the inserting block 19 to push the rotating block 15 to rotate, and the rotating block 15 drives the rotating sleeve 11 to rotate, thereby realizing the snap-fit or unlocking action. After the operation is completed, the reset spring 17 causes the rotating block 15 to return to the initial position.
[0025] Please see Figures 1-5 As a supplementary embodiment of a noodle-processing powder mixing device, which includes a discharge vibration mechanism, a mounting clamping mechanism, and a clamping auxiliary mechanism: A bottom hopper 20 is installed at the bottom end of the mixing tank 1, and inclined hoppers 21 are installed on both sides of the bottom hopper 20. The top end face of the transverse plate 2 is connected to the bottom end of the inclined hoppers 21. A rubber block 7 is reciprocatingly contacting the inclined hoppers 21. A sliding baffle 22 is slidably installed on the inclined hoppers 21, and the sliding baffle 22 can seal the connection between the inclined hoppers 21 and the bottom hopper 20. A tank cover assembly 23 is installed on the top end of the tank 1. A stirring assembly 24 is installed inside the mixing tank 1. A directional rail 25 is installed on the top end of the transverse plate 2, and the moving block 6 is directionally slidably set on the directional rail 25. A connecting plate 26 is installed on the bottom end of the side wall of the clamping pipe 8. A side plate 701 is installed on the inclined hopper 21, and the connecting plate 26 is fixedly connected to the side plate 701. A clamping rod 9 is fixedly connected to the transverse plate 2, and one end of the clamping rod 9 extends through the side plate 701 and engages with the clamping pipe 8.
[0026] More specifically, the raw materials are first added to the mixing tank 1 and mixed by the stirring component 24. Then, the sliding baffle 22 is opened and the discharge vibration mechanism is started. The mixed flour is discharged through the bottom hopper 20 and the inclined hopper 21 by vibration. The assembly and disassembly of the equipment are completed by the installation snap-fit mechanism and the snap-fit auxiliary mechanism, which facilitates daily maintenance and cleaning. When the equipment needs to be disassembled, the threaded sleeve 18 is operated by the snap-fit auxiliary mechanism. The embedded block 19 pushes the rotating block 15, which drives the rotating sleeve 11 to rotate. The rotary push groove 12 in the rotating sleeve 11 causes the extension frame 13 to exit the slot 10. The counter-push spring 14 releases energy and assists the extension frame 13 to exit, completing the snap-fit unlocking. The relevant parts can be disassembled for cleaning and maintenance.
[0027] In summary, when the overall equipment is in use or running: when the vibration mechanism needs to be operated, the drive motor 3 starts, which drives the eccentric rod 4 at the output end to rotate. The eccentric rod 4 drives the moving block 6 to slide back and forth on the directional rail 25 of the transverse plate 2 through the pull rod 5. The rubber block 7 installed on the moving block 6 then reciprocates and comes into periodic contact with the inclined hopper 21. The rubber block 7 applies a periodic impact force to the inclined hopper 21, causing the inclined hopper 21 to vibrate. The vibration causes the material in the mixing tank 1 to be smoothly discharged through the bottom hopper 20 and the inclined hopper 21.
[0028] When the snap-fit mechanism is required to operate, it enables the quick installation and disassembly of the vibration discharge mechanism, facilitating its maintenance. The snap-fit rod 9 is inserted into the snap-fit tube 8, and the rotating sleeve 11 is rotated. This causes the rotary push groove 12 on the inner wall of the rotating sleeve 11 to push the extension frame 13. Under the action of the rotary push groove 12, the extension frame 13 slides laterally and extends into the snap-fit groove 10 on the side wall of the snap-fit rod 9. When the extension frame 13 enters the snap-fit groove 10, it compresses the counter-push spring 14 in the snap-fit groove 10. After the snap-fit is completed, the extension frame 13 is locked in the snap-fit groove 10, achieving a stable connection between the snap-fit tube 8 and the snap-fit rod 9.
[0029] When the locking auxiliary mechanism is in operation, the rotating block 15 is installed on the top of the rotating sleeve 11 and can slide on the winding rod 16. The threaded sleeve 18 is installed on the outer wall of the locking tube 8 through a threaded connection. Rotating the threaded sleeve 18 causes the bottom inserting block 19 to insert into the rotating block 15. Continuing to rotate the threaded sleeve 18 causes the inserting block 19 to push the rotating block 15 to rotate, and the rotating block 15 drives the rotating sleeve 11 to rotate, thereby realizing the locking or unlocking action. After the operation is completed, the return spring 17 causes the rotating block 15 to return to the initial position.
[0030] First, add the raw materials to the mixing tank 1 and mix them using the stirring component 24. Then, open the sliding baffle 22 and start the discharge vibration mechanism. The vibration will discharge the mixed flour through the bottom hopper 20 and the inclined hopper 21. The assembly and disassembly of the equipment are completed by the installation snap-fit mechanism and the snap-fit auxiliary mechanism, which facilitates daily maintenance and cleaning. When the equipment needs to be disassembled, operate the threaded sleeve 18 through the snap-fit auxiliary mechanism. The embedded block 19 pushes the rotating block 15, which drives the rotating sleeve 11 to rotate. The rotary push groove 12 in the rotating sleeve 11 causes the extension frame 13 to exit the slot 10. The counter-push spring 14 releases energy and assists the extension frame 13 to exit, completing the snap-fit unlocking. The relevant parts can be disassembled for cleaning and maintenance.
[0031] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of this utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this utility model. The scope of this utility model is defined by the appended claims and their equivalents.
Claims
1. A flour mixing device for processing noodles, comprising a mixing tank (1), an ejection vibrating mechanism, a mounting clamping mechanism and a clamping auxiliary mechanism, characterized in that: The vibration discharge mechanism includes a transverse plate (2), a drive motor (3), an eccentric rod (4), a pull rod (5), a moving block (6), and a rubber block (7). The drive motor (3) is mounted on the transverse plate (2), the eccentric rod (4) is mounted on the output end of the drive motor (3), the moving block (6) is directionally slidably mounted on the transverse plate (2), the two ends of the pull rod (5) are rotatably connected to the moving block (6) and the eccentric rod (4), and the rubber block (7) is mounted on the moving block (6). The mounting and snapping mechanism includes a snap-fit tube (8), a snap-fit rod (9), and a snap-fit groove (8). 10) Rotating sleeve (11), rotating push groove (12), extension frame (13) and reverse push spring (14), the slot (10) is set on the side wall of the snap-fit rod (9), the rotating sleeve (11) is limited to rotating and installed on the side wall of the snap-fit tube (8), the rotating push groove (12) is set on the inner wall of the rotating sleeve (11), the extension frame (13) is laterally slidably installed on the side wall of the snap-fit tube (8), the slot (10) is set on the side wall of the snap-fit rod (9), the rotating sleeve (11) causes the rotating push groove (12) to push the extension frame (13) into the slot (10).
2. The flour mixing device for processing noodles according to claim 1, characterized in that: The snap-fit auxiliary mechanism includes a rotating block (15), a winding rod (16), a return spring (17), a threaded sleeve (18), and an insert block (19). Multiple sets of rotating blocks (15) are installed on the top end of the rotating sleeve (11). The winding rod (16) is fixedly installed on the outer wall of the snap-fit tube (8). The return spring (17) is fitted on the winding rod (16). The rotating block (15) is slidably installed on the winding rod (16), and one end of the return spring (17) is connected to the side of the rotating block (15). The threaded sleeve (18) is threadedly connected to the outer wall of the snap-fit tube (8). The insert block (19) is installed on the bottom end of the threaded sleeve (18). The insert block (19) can be inserted into the rotating block (15).
3. The flour mixing device for processing noodles according to claim 1, characterized in that: The bottom end of the mixing tank (1) is provided with a bottom hopper (20), and the sides of the bottom hopper (20) are provided with inclined hoppers (21). The rubber block (7) is reciprocally contacted with the inclined hoppers (21).
4. The flour mixing device for processing noodles according to claim 3, characterized in that: A sliding baffle (22) is slidably installed on the inclined bucket (21), and the sliding baffle (22) can block the connection between the inclined bucket (21) and the bottom bucket (20).
5. The flour mixing device for processing noodles according to claim 1, characterized in that: The top end of the mixing tank (1) is equipped with a tank cover assembly (23), and the inside of the mixing tank (1) is equipped with a stirring assembly (24).
6. The flour mixing device for processing noodles according to claim 1, characterized in that: The top end of the transverse plate (2) is equipped with a directional rail (25), and the moving block (6) is directionally slidably set on the directional rail (25).
7. The flour mixing device for processing noodles according to claim 1, characterized in that: A connecting plate (26) is installed at the bottom of the side wall of the card pipe (8), and the side plate (701) is installed on both sides of the inclined bucket (21), and the connecting plate (26) is fixedly connected to the side plate.
8. The noodle mixing device according to claim 1, characterized in that: The snap-fit rod (9) is fixedly connected to the transverse plate (2), and one end of the snap-fit rod (9) extends through the side plate and engages with the snap-fit tube (8).