Slurry distribution forming equipment for starch products

By using a motor-driven gear meshing and an eccentric wheel to drive the mixing plate in the starch product slurry forming equipment, the problem of synchronizing the forming roller and the mixing speed is solved, thus achieving efficient and uniform forming of starch products and low-pollution production.

CN223832275UActive Publication Date: 2026-01-27KAIFENG SHENGFENG MECHANICAL EQUIP CO LTD
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Patent Information

Application Number
CN202520401262.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2026-01-27
Estimated Expiration
2035-03-10

AI Technical Summary

Technical Problem

In the existing starch product slurry forming process, it is difficult to control the rolling speed and stirring speed of the forming roller simultaneously, which leads to a heavy workload for operators and affects production efficiency and product quality.

Method used

A starch product slurry forming device was designed. The main gear and the driven gear are driven by a motor to rotate the forming roller. The eccentric wheel and the connecting rod drive the stirring plate to swing back and forth, so as to realize the synchronous adjustment of the stirring rate and the rolling rate of the forming roller. The uniformity of the slurry is ensured by the scraper and the slurry pool structure.

Benefits of technology

It achieves synchronous control of the forming roller and stirring rate, reduces the burden on operators, improves the uniformity of slurry application and the production efficiency of starch products, and avoids slurry contamination.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of pulp forming of starch products, in particular to pulp forming equipment for starch products, which comprises a rack, two support plates vertically arranged on the rack, a forming roller rotatably arranged between the two support plates, a pulp scraping plate obliquely arranged on one side of the forming roller, and a pulp tank arranged at the middle lower part of the forming roller, a motor is arranged on the outer side of the supporting plate, a driving shaft of the motor is provided with a driving gear, the forming roller is provided with a driven gear, the driven gear is meshed with the driving gear, and a stirring device is arranged between the forming roller and the machine frame. The stirring device comprises a support arranged on the other side of the forming roller, a stirring plate hinged to the support, a connecting rod arranged between the stirring plate and the forming roller and an eccentric wheel hinged to one end of the connecting rod, and the eccentric wheel is fixedly arranged at the end of the forming roller in a sleeving mode. The utility model provides the cloth pulp forming equipment for the starch product, which reduces the operation burden and is convenient for synchronizing the rolling speed and the stirring speed of the forming roller.
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Description

Technical Field

[0001] This utility model relates to the field of starch product sizing and molding technology, specifically to a starch product sizing and molding equipment. Background Technology

[0002] Starch products are food products made from edible starch derived from one or more of the following plant sources: potatoes, beans, and grains. The edible starch is extracted and processed through a series of techniques. Starch products mainly include vermicelli, rice noodles, rice sheets, and jelly. These products use edible starch as the primary raw material, with or without the addition of other ingredients. The process involves mixing, cooking, shaping, cooling, freezing (or not freezing), and drying (or not drying) to create products in strip, filament, or sheet shapes. The processing of starch products includes selecting high-quality raw materials with high starch content, removing impurities and rotten parts, washing the raw materials mechanically or manually, pulverizing them to form a starch slurry, and then shaping and dehydrating them to obtain the final starch product.

[0003] The molding process of starch products mainly relies on the gelatinization characteristics and adhesiveness of starch. Depending on the processing technology and product type, commonly used starch product molding methods include extrusion molding, sieve molding, and coating molding. Extrusion molding involves mechanically heating a thick paste of raw starch to gelatinize it, then using an auger to extrude the cooked starch paste through a sieve plate to form a specific shape. Sieve molding is a more traditional method, involving passing a thick paste of raw starch through a sieve and gelatinizing it in a boiling water bath to form the desired shape. Coating molding is a more modern production method. It involves placing a slurry in a slurry tank, using a forming roller to absorb the viscous slurry, resulting in thin sheets of starch preforms adhering to the roller. A scraper is then used to scrape off the starch preforms from the forming roller, continuously obtaining thin sheets of starch products. Because coating molding allows for continuous production, it significantly improves the production efficiency of starch products. In contrast, extrusion molding and sprue molding require more manpower for production operations such as thickening and mixing, thus requiring operators to have a higher level of technical skills, making it difficult for novices to master and thus affecting their production efficiency.

[0004] To ensure uniform thickness of the coated and spread-formed preform, continuous stirring of the slurry in the slurry tank is necessary during the continuous production of starch products. Therefore, stirring equipment needs to be installed in the slurry tank. However, there is a direct correlation between the stirring rate and the rolling speed of the forming roller; that is, the faster the forming roller rolls, the faster the stirring speed must be. But since the forming roller and the stirring equipment are not directly linked, operators need to operate both the forming roller and the stirring equipment simultaneously, thus increasing their workload. Therefore, there is room for improvement in the slurry spreading and forming process for starch products to ensure uniformity, reduce the operator's workload, and improve the efficiency and quality of starch products. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides a starch product slurry forming device that reduces operational burden and facilitates the synchronization of the rolling speed and stirring speed of the forming roller, thereby overcoming the deficiencies in existing technologies.

[0006] The technical solution adopted by this utility model is as follows: a starch product slurry forming device, including a frame, two vertically arranged support plates on the frame, a forming roller rotatably arranged between the two support plates, a scraper plate inclinedly arranged on one side of the forming roller, and a slurry pool arranged in the lower part of the forming roller. A motor is arranged on the outside of the support plates, and a main gear is arranged on the drive shaft of the motor. A driven gear is arranged on the forming roller, and the driven gear meshes with the main gear. A stirring device is arranged between the forming roller and the frame. The stirring device includes a bracket arranged on the other side of the forming roller, a stirring plate hinged on the bracket, a connecting rod arranged between the stirring plate and the forming roller, and an eccentric wheel hinged to one end of the connecting rod. The eccentric wheel is fixedly mounted on the end of the forming roller, and the other end of the connecting rod is hinged to the stirring plate. The bottom of the stirring plate is located in the slurry pool.

[0007] Preferably, the top of the scraper blade is in contact with the circular surface of the forming roller, the top surface of the scraper blade adopts an inverted V-shaped structure, and the bottom end of the scraper blade is located in the slurry pool.

[0008] Preferably, the bottom of the scraper is provided with two fixing blocks and two supporting blocks. One end of the two fixing blocks is installed on both sides of the bottom surface of the scraper. The outer surfaces of the two fixing blocks are in contact with the two supporting blocks. The two supporting blocks are installed on the slurry tank. A fixing rod is provided between the two supporting blocks. The two fixing blocks are installed on the fixing rod. The top of the two supporting blocks is provided with a through hole. The through hole is movably fitted on the fixing rod. A torsion spring and a round block are arranged sequentially on the outer side of the supporting block away from the fixing block. The round block is installed at the end of the fixing rod. The two ends of the torsion spring are installed on the supporting block and the round block, respectively. The torsion spring is movably fitted on the fixing rod.

[0009] Preferably, the stirring plate adopts an L-shaped plate structure, with a hinge rod in the middle of the stirring plate. The end of the connecting rod away from the eccentric wheel is hinged to the hinge rod. Several stirring grooves are opened on the stirring plate, and the several stirring grooves are evenly distributed on the bottom of the stirring plate. A concentration sensor is set above one of the stirring grooves, and a fixing frame is set on the concentration sensor. The concentration sensor is installed on the slurry tank through the fixing frame.

[0010] Preferably, a lifting device is provided below the slurry tank; the lifting device includes a support rod rotatably disposed between two support plates, a transmission gear and a second worm gear respectively mounted on the support rod, a transmission rack meshing with the transmission gear, a support box movably mounted on the transmission rack, a second worm meshing with the second worm gear, and a support seat on which the second worm is rotatably mounted. The two support plates are respectively provided with connecting holes, in which a first bearing is fitted. The support rod is rotatably mounted on the support plate through the first bearing. The support seat is installed on the outer side of the support plate, and a support hole is provided in the support seat along the horizontal direction. A second bearing is installed in the support hole, in which the second worm is rotatably mounted on the support seat through the second bearing. The support box is installed on the inner side of the support plate. A fixing groove is provided on one side of the support box 25. The transmission gear is fitted into the fixing groove. The diameter of the fixing groove matches the diameter of the transmission gear. A fixing hole is provided in the support box along the vertical direction. The fixing hole is connected to the fixing groove. The transmission rack is movably fitted into the fixing hole. The diameter of the fixing hole matches the diameter of the transmission rack. One end of the transmission rack is installed on the slurry pool.

[0011] Preferably, there are two support boxes, two transmission gears, and two transmission racks. The two support boxes are respectively installed on the inner sides of the two support plates. The two transmission gears are respectively installed on both sides of the support rod. The top ends of the two transmission racks are respectively installed on both sides of the slurry pool. A fixing plate is vertically installed on one side of the slurry pool. The two sides of the fixing plate are respectively installed on the inner sides of the two support plates. A guide rail and a slider are respectively provided between the fixing plate and the slurry pool. A limiting groove is opened on one side of the slider. The limiting groove is movably fitted on the guide rail. The cross-sectional shape of the limiting groove matches the cross-sectional shape of the guide rail. The slider is installed on the outer wall of the slurry pool, and the guide rail is installed on the fixing plate.

[0012] Preferably, the second worm is provided with a handle, the middle part of which is installed on one end of the second worm. A support sleeve is movably fitted on the second worm, one end of which is installed on a support base. A threaded hole is provided on the support sleeve, which is connected to the inner cavity of the support sleeve. A bolt is threaded into the threaded hole, and the second worm is clamped and fixed to the support sleeve by the bolt.

[0013] Preferably, a protective box is provided between the motor and the support plate, and both the driven gear and the main gear are located inside the protective box. A through groove is provided on one side of the protective box, and the connecting rod is fitted onto the through groove.

[0014] The beneficial effects of this invention are as follows: First, the inclined scraper plate scrapes the starch blank from the forming roller. By filling the slurry pool with slurry and placing the lower middle part of the forming roller in the slurry, it is convenient to use the forming roller to absorb the sticky slurry. Furthermore, the invention uses a motor to drive the main gear to rotate. The meshing of the main gear and the driven gear drives the forming roller to continuously roll, facilitating continuous forming. Simultaneously, an eccentric wheel fixedly mounted on the forming roller and a connecting rod hinged to the eccentric wheel drive a stirring plate to swing back and forth, thereby stirring the slurry in the pool. This allows the stirring rate of the stirring plate and the rolling rate of the forming roller to be adjusted synchronously, improving the uniformity of slurry distribution and reducing the burden of shaping and controlling starch products.

[0015] Secondly, this invention employs a V-shaped structure on the top surface of the scraper, allowing the molded product scraped from the forming roller to be conveyed along the top of the scraper. Excess slurry flows from the top to the bottom of the scraper, preventing it from falling onto the ground and thus avoiding environmental pollution. By incorporating a fixing block, support block, and fixing rod, the scraper is hinged to the slurry tank. Furthermore, by mounting torsion springs on the support block and the circular block respectively, the scraper is continuously pressed against the forming roller, facilitating the continuous scraping of starch embryos from the forming roller. Additionally, this invention features a stirring groove on the stirring plate to enhance the stirring effect. A concentration sensor allows for easy detection and adjustment of the slurry concentration within the tank.

[0016] Furthermore, this invention controls the rotation of the second worm gear, which in turn drives the second worm wheel and the support rod to rotate. This, in turn, causes the support rod to drive the transmission gear, which in turn pushes the transmission rack to move vertically, thereby raising and lowering the slurry tank. This allows for easy adjustment of the tank's height. The fixed plate, guide rail, and slider further restrict the tank's movement to vertical, improving stability. Additionally, the invention includes a handle for easy control of the second worm gear's rotation, and a support sleeve and bolts for easy locking of the second worm gear, thus securing the slurry tank. Attached Figure Description

[0017] Figure 1 This is a first perspective view of the present invention.

[0018] Figure 2 for Figure 1 Enlarged diagram of point A in the middle.

[0019] Figure 3 for Figure 1 Enlarged diagram of point B in the middle.

[0020] Figure 4 This is a second perspective view of the present invention.

[0021] Figure 5 for Figure 4 Enlarged diagram of point C in the middle.

[0022] Figure 6 This is a schematic diagram of the structure of this utility model without the protective box installed.

[0023] Figure 7 for Figure 6 Enlarged diagram of point D in the middle.

[0024] Figure 8 This is a schematic diagram of the assembly of the scraper and the slurry tank in this utility model.

[0025] Figure 9 for Figure 8 Enlarged diagram of point E in the middle.

[0026] Figure 10 This is an exploded view of the assembly of the support and the stirring plate in this utility model. Detailed Implementation

[0027] like Figures 1 to 10 As shown, a starch product slurry forming device includes a frame 1, two vertically arranged support plates 2 on the frame 1, a forming roller 3 rotatably arranged between the two support plates 2, a scraper 4 inclined on one side of the forming roller 3, and a slurry pool 5 in the lower part of the forming roller 3. A motor 6 is arranged on the outside of the support plates 2, and a main gear 7 is arranged on the drive shaft of the motor 6. A driven gear 8 is arranged on the forming roller 3, and the driven gear 8 meshes with the main gear 7. A stirring device is arranged between the forming roller 3 and the frame 1. The stirring device includes a bracket 9 arranged on the other side of the forming roller 3, a stirring plate 10 hinged on the bracket 9, a connecting rod 11 arranged between the stirring plate 10 and the forming roller 3, and an eccentric wheel 12 hinged to one end of the connecting rod 11. The eccentric wheel 12 is fixedly fitted on the end of the forming roller 3, and the other end of the connecting rod 11 is hinged to the stirring plate 10. The bottom of the stirring plate 10 is located in the slurry pool 5. The motor 6 is operated by controlling the main gear 7 and the driven gear 8 to drive the forming roller 3 and the eccentric wheel 12 to rotate, thereby causing the connecting rod 11 and the stirring plate 10 to swing back and forth, thus stirring the slurry in the slurry tank 5, improving the uniformity of slurry distribution, and enabling the motor 6 to control the forming roller 3 and the stirring plate 10 to operate simultaneously, thereby reducing the difficulty of shaping starch products and improving the slurry distribution effect.

[0028] In this embodiment, the top of the scraper 4 is in contact with the circular surface of the forming roller 3. The top surface of the scraper 4 adopts an inverted V-shaped structure, and the bottom end of the scraper 4 is located in the slurry pool 5. This allows the molded product scraped off from the forming roller 3 by the scraper 4 to be conveyed along the top of the scraper 4, while excess slurry will flow along the top of the scraper 4 to the bottom of the scraper 4, thereby guiding the excess slurry back into the slurry pool 5 to avoid excess slurry falling on the ground and thus avoiding pollution to the surrounding environment.

[0029] Specifically, the bottom of the scraper plate 4 is provided with two fixing blocks 13 and two support blocks 14. One end of the two fixing blocks 13 is installed on both sides of the bottom surface of the scraper plate 4. The outer surfaces of the two fixing blocks 13 are in contact with the two support blocks 14. The two support blocks 14 are installed on the slurry tank 5. A fixing rod 15 is provided between the two support blocks 14. The two fixing blocks 13 are installed on the fixing rod 15. The top of the two support blocks 14 is provided with a through hole. The through hole is movably fitted on the fixing rod 15. A torsion spring 16 and a round block 17 are arranged sequentially on the outer side of the support block 14 away from the fixing block 13. The round block 17 is installed at the end of the fixing rod 15. The two ends of the torsion spring 16 are installed on the support block 14 and the round block 17, respectively. The torsion spring 16 is movably fitted on the fixing rod 15. With the elastic action of the torsion spring 16, the scraper plate 4 is driven to continuously press against the forming roller 3, so as to facilitate the continuous scraping of starch embryos from the forming roller 3.

[0030] Please refer to it again. Figure 2 and 10 The stirring plate 10 adopts an L-shaped plate structure. A hinge rod is provided in the middle of the stirring plate 10. The end of the connecting rod 11 away from the eccentric wheel 12 is hinged to the hinge rod. Several stirring grooves 18 are opened on the stirring plate 10. The stirring grooves 18 are evenly distributed at the bottom of the stirring plate 10, thereby increasing the stirring effect of the stirring plate 10. A concentration sensor 19 is provided above one of the stirring grooves 18. The concentration sensor is a laser scattering concentration sensor, infrared concentration sensor or other sensor used to detect the slurry concentration. A fixing frame 20 is provided on the concentration sensor 19. The concentration sensor 19 is installed on the slurry tank 5 through the fixing frame 20, so as to facilitate the detection of the slurry concentration in the slurry tank 5 and adjust the slurry concentration.

[0031] In this embodiment, a lifting device is provided below the slurry tank 5. The lifting device includes a support rod 21 rotatably disposed between two support plates 2, a transmission gear 22 and a second worm gear 23 respectively mounted on the support rod 21, a transmission rack 24 meshing with the transmission gear 22, a support box 25 movably mounted on the transmission rack 24, a second worm 26 meshing with the second worm gear 23, and a support seat 27 rotatably mounted on the second worm 26. The two support plates 2 are respectively provided with connecting holes, and a first bearing is installed in the connecting holes. The support rod 21 is rotatably mounted on the support plate 2 through the first bearing. The support seat 27 is installed on the outside of the support plate 2. The support seat 27 is provided with a support hole along the horizontal direction, and a second bearing is installed in the support hole. The second worm 26 is rotatably mounted on the support seat 27 through the second bearing. The support box 25 is installed on the inner side of the support plate 2. A fixing groove is provided on one side of the support box 25, and the transmission gear 23 is fitted into the fixing groove. The diameter of the fixing groove matches the diameter of the transmission gear 23. A fixing hole is provided in the support box 25 along the vertical direction. The fixing hole is connected to the fixing groove. The transmission rack 24 is movably fitted into the fixing hole. The diameter of the fixing hole matches the diameter of the transmission rack 24. One end of the transmission rack 24 is installed on the slurry tank 5. By controlling the rotation of the second worm gear 26, the second worm wheel 23 and the support rod 21 are driven to rotate, so that the support rod 21 drives the transmission gear 22 to rotate. In turn, the transmission gear 22 pushes the transmission rack 24 to move along the vertical direction, thereby driving the slurry tank 5 to rise and fall, so as to facilitate the adjustment of the height of the slurry tank 5.

[0032] Specifically, there are two support boxes 25, two transmission gears 22, and two transmission racks 24. The two support boxes 25 are respectively installed on the inner sides of the two support plates 2. The two transmission gears 22 are respectively installed on both sides of the support rod 21. The top ends of the two transmission racks 24 are respectively installed on both sides of the slurry pool 5, thereby supporting both sides of the slurry pool 5. A fixing plate 28 is vertically arranged on one side of the slurry pool 5. The two sides of the fixing plate 28 are respectively installed on the inner sides of the two support plates 2. A guide rail 29 and a slider 30 are respectively arranged between the fixing plate 28 and the slurry pool 5. A limiting groove is opened on one side of the slider 30. The limiting groove is movably fitted on the guide rail 29. The cross-sectional shape of the limiting groove matches the cross-sectional shape of the guide rail 29. The slider 30 is installed on the outer wall of the slurry pool 5, and the guide rail 29 is installed on the fixing plate 28, thereby restricting the slurry pool 5 to only be raised and lowered, so as to improve the stability of the slurry pool 5.

[0033] Please refer to it again. Figure 1 , 3In section 5, the second worm 26 is provided with a handle 31. The middle part of the handle 31 is installed on one end of the second worm 26, so that the operation of the second worm 26 can be easily controlled by turning the handle 31. A support sleeve 32 is movably fitted on the second worm 26. One end of the support sleeve 32 is installed on the support base 27. A threaded hole is opened on the support sleeve 32, which is connected to the inner cavity of the support sleeve 32. A bolt 33 is threaded in the threaded hole. The second worm 26 is clamped and fixed on the support sleeve 32 by the bolt 33, so as to facilitate the locking operation of the second worm 26 for fixing the slurry tank 5.

[0034] In this embodiment, a protective box 34 is provided between the motor 6 and the support plate 2. The driven gear 8 and the main gear 7 are both located inside the protective box 34. A through groove is provided on one side of the protective box 34, and the connecting rod 11 is fitted into the through groove to protect the main gear 7 and the driven gear 8.

[0035] The instructions for using this product are as follows: Figures 1 to 10 As shown, firstly, by rotating the handle 31, the second worm gear 26 is rotated. Through the transmission mechanism of the second worm wheel 23, support rod 21, and transmission gear 22, the transmission rack 24 is moved up or down accordingly. This series of transmission actions ultimately causes the slurry pool 5 to move up and down, ensuring that the bottom of the stirring plate 10 and the bottom of the forming roller 3 are accurately immersed in the slurry pool 5. After the operation is completed, the second worm gear 26 is locked by tightening the bolt 33. Then, an appropriate amount of slurry is added to the slurry pool 5 until the level of the added slurry exceeds the bottom of the forming roller 3 and the stirring plate 10. During the slurry addition process, the concentration sensor 19 detects the slurry concentration. If the concentration is too low, starch or other raw materials need to be added to the slurry; conversely, if the concentration is too high, an appropriate amount of water needs to be added to reduce the concentration. After completing the above steps, the motor 6 is started and operated. With the meshing of the main gear 7 and the driven gear 8, the forming roller 3 is driven to roll continuously. The forming roller 3 absorbs the viscous slurry. Under the squeezing action of the torsion spring 16 on the scraper plate 4, the starch blank on the forming roller 3 is scraped off. The scraped-off molded product is transported along the top of the scraper plate 4, while the excess slurry flows along the top of the scraper plate 4 to the bottom of the scraper plate 4 until it flows back into the slurry tank 5. At the same time, the eccentric wheel 12 fixedly mounted on the forming roller 3 and the connecting rod 11 hinged on the eccentric wheel 12 drive the stirring plate 10 to swing back and forth, thereby stirring the slurry in the slurry tank 5 to ensure that the slurry can be evenly distributed, which is convenient for continuous slurry distribution.

[0036] This invention utilizes an inclined scraper 4 to scrape the starch blank from the forming roller 3. By filling the slurry pool 5 with slurry and placing the lower middle part of the forming roller 3 in the slurry, the forming roller 3 can easily absorb the sticky slurry. Furthermore, this invention uses a motor 6 to drive the main gear 7 to rotate. Through the meshing of the main gear 7 and the driven gear 8, the forming roller 3 is continuously rolled to facilitate continuous forming. Simultaneously, the eccentric wheel 12 fixedly mounted on the forming roller 3 and the connecting rod 11 hinged to the eccentric wheel 12 drive the stirring plate 10 to swing back and forth, thereby stirring the slurry in the slurry pool 5. This allows the stirring rate of the stirring plate 10 to be synchronously adjusted with the rolling rate of the forming roller 3, improving the uniformity of slurry distribution and reducing the burden of forming control for starch products.

[0037] This invention provides a starch product slurry forming device that reduces operational burden and facilitates the synchronization of the rolling speed and stirring speed of the forming roller, giving it broad market prospects.

[0038] The embodiments described above are merely preferred embodiments of this utility model and are not intended to limit the scope of implementation of this utility model. Therefore, all equivalent changes or modifications made to the structure, features and principles described in the patent claims of this utility model should be included within the scope of the patent application of this utility model.

Claims

1. A starch product slurry forming device, comprising a frame (1), two vertically arranged support plates (2) on the frame (1), a forming roller (3) rotatably arranged between the two support plates (2), a scraper (4) inclined on one side of the forming roller (3), and a slurry pool (5) arranged in the lower part of the forming roller (3), characterized in that: A motor (6) is provided on the outside of the support plate (2), a main gear (7) is provided on the drive shaft of the motor (6), a driven gear (8) is provided on the forming roller (3), the driven gear (8) meshes with the main gear (7), and a stirring device is provided between the forming roller (3) and the frame (1). The stirring device includes a bracket (9) provided on the other side of the forming roller (3), a stirring plate (10) hinged on the bracket (9), a connecting rod (11) provided between the stirring plate (10) and the forming roller (3), and an eccentric wheel (12) hinged at one end of the connecting rod (11). The eccentric wheel (12) is fixedly mounted on the end of the forming roller (3), and the other end of the connecting rod (11) is hinged to the stirring plate (10). The bottom of the stirring plate (10) is located in the slurry pool (5).

2. The starch product slurry forming equipment according to claim 1, characterized in that: The top of the scraper (4) is in contact with the circular surface of the forming roller (3). The top surface of the scraper (4) adopts an inverted V-shaped structure, and the bottom of the scraper (4) is located in the slurry pool (5).

3. The starch product slurry forming equipment according to claim 1, characterized in that: The bottom of the scraper (4) is provided with two fixed blocks (13) and two support blocks (14). One end of the two fixed blocks (13) is installed on both sides of the bottom surface of the scraper (4). The outer side of the two fixed blocks (13) is in contact with the two support blocks (14). The two support blocks (14) are installed on the slurry tank (5). A fixed rod (15) is provided between the two support blocks (14). The two fixed blocks (13) are installed on the fixed rod (15). The top of the two support blocks (14) is provided with a through hole. The through hole is movably fitted on the fixed rod (15). A torsion spring (16) and a round block (17) are arranged sequentially on the outer side of the support block (14) away from the fixed block (13). The round block (17) is installed at the end of the fixed rod (15). The two ends of the torsion spring (16) are installed on the support block (14) and the round block (17) respectively. The torsion spring (16) is movably fitted on the fixed rod (15).

4. The starch product slurry forming equipment according to claim 1, characterized in that: The stirring plate (10) adopts an L-shaped plate structure. A hinge rod is provided in the middle of the stirring plate (10). The end of the connecting rod (11) away from the eccentric wheel (12) is hinged to the hinge rod. Several stirring grooves (18) are opened on the stirring plate (10). Several stirring grooves (18) are evenly distributed at the bottom of the stirring plate (10). A concentration sensor (19) is provided above one of the stirring grooves (18). A fixing frame (20) is provided on the concentration sensor (19). The concentration sensor (19) is installed on the slurry tank (5) through the fixing frame (20).

5. The starch product slurry forming equipment according to claim 1, characterized in that: A lifting device is provided below the slurry tank (5); The lifting device includes a support rod (21) rotatably mounted between two support plates (2), a transmission gear (22) and a second worm gear (23) respectively mounted on the support rod (21), a transmission rack (24) meshing on the transmission gear (22), a support box (25) movably mounted on the transmission rack (24), a second worm (26) meshing on the second worm gear (23), and a support seat (27) rotatably mounted on the second worm (26). The two support plates (2) are respectively provided with connecting holes, in which a first bearing is mounted. The support rod (21) is rotatably mounted on the support plate (2) through the first bearing. The support seat (27) is installed on the outside of the support plate (2), and a support hole is provided in the support seat (27) along the horizontal direction. A second bearing is provided in the support hole, in which the second worm (26) is rotatably mounted on the support seat (27) through the second bearing. The support box (25) is installed on the inner side of the support plate (2). A fixing groove is provided on one side of the support box (25). The transmission gear (22) is fitted in the fixing groove. The diameter of the fixing groove matches the diameter of the transmission gear (22). The support box (25) is provided with a fixing hole along the vertical direction. The fixing hole is connected to the fixing groove. The transmission rack (24) is movably fitted in the fixing hole. The diameter of the fixing hole matches the diameter of the transmission rack (24). One end of the transmission rack (24) is installed on the slurry pool (5).

6. The starch product slurry forming equipment according to claim 5, characterized in that: The number of support boxes (25), transmission gears (22) and transmission racks (24) are all two. The two support boxes (25) are respectively installed on the inner side of the two support plates (2). The two transmission gears (22) are respectively installed on both sides of the support rod (21). The tops of the two transmission racks (24) are respectively installed on both sides of the slurry pool (5). A fixing plate (28) is vertically installed on one side of the slurry pool (5). The two sides of the fixing plate (28) are respectively installed on the inner side of the two support plates (2). A guide rail (29) and a slider (30) are respectively installed between the fixing plate (28) and the slurry pool (5). A limiting groove is opened on one side of the slider (30). The limiting groove is movably fitted on the guide rail (29). The cross-sectional shape of the limiting groove matches the cross-sectional shape of the guide rail (29). The slider (30) is installed on the outer wall of the slurry pool (5). The guide rail (29) is installed on the fixing plate (28).

7. The starch product slurry forming equipment according to claim 5, characterized in that: The second worm (26) is provided with a handle (31), the middle part of which is installed on one end of the second worm (26). A support sleeve (32) is movably fitted on the second worm (26), one end of which is installed on a support base (27). A threaded hole is provided on the support sleeve (32), which is connected to the inner cavity of the support sleeve (32). A bolt (33) is threaded in the threaded hole, and the second worm (26) is clamped and fixed on the support sleeve (32) by the bolt (33).

8. The starch product slurry forming equipment according to claim 1, characterized in that: A protective box (34) is provided between the motor (6) and the support plate (2). Both the slave gear (8) and the master gear (7) are located inside the protective box (34). A through groove is provided on one side of the protective box (34), and the connecting rod (11) is fitted on the through groove.