Anti-flocculation and anti-separation equipment for dephosphorizing sesame paste

By introducing a rotating structure of a stirring plate and a triangular plate, along with the combination of a threaded groove and a bevel gear, the problems of flocculent matter and sedimentation during the dephosphorization process of sesame paste are solved, achieving efficient mixing and convenient operation.

CN224071771UActive Publication Date: 2026-04-03HENAN QIHUA OIL FOOD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing dephosphorization equipment for sesame paste has a simple structure and cannot effectively prevent the formation and precipitation of flocculent matter.

Method used

A device for preventing flocculation and separation was designed, comprising a stirring plate and a triangular plate. A motor drives a gear plate to rotate, which in turn drives a dephosphorization box to rotate. The stirring plate mixes sesame paste, while the triangular plate lifts up the sediment. Simultaneously, threaded grooves and threaded columns are provided. A motor drives a bevel gear to move the hollow column. The movable plate can be tilted or upright to facilitate the loading and unloading of materials.

Benefits of technology

It effectively prevents the formation and sedimentation of flocculent matter, ensuring the quality of sesame paste and achieving thorough mixing and convenient dispensing/retrieving process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The anti-flocculation and anti-separation equipment comprises a supporting bottom plate, a storage bin is arranged on the upper surface of the supporting bottom plate, and a fine filter screen is arranged above the storage bin; the anti-flocculation and anti-separation equipment for sesame paste dephosphorization is provided with stirring plates and triangular plates, a gear plate can be driven to rotate by starting a first motor, a dephosphorization box is indirectly driven to rotate through meshing transmission, and the dephosphorization box can rotate to enable multiple groups of stirring plates and triangular plates to rotate; the rotation of a stirring plate is used for stirring sesame paste in the dephosphorization reaction process, so that a dephosphorization agent and the sesame paste are fully mixed, and the rotation of a triangular plate can rotatably lift the sesame paste precipitated at the bottom, so that the situation that most of the anti-flocculation and anti-separation equipment for dephosphorization of the sesame paste is too simple in structure and only has a simple stirring assembly is avoided; therefore, the formation of floccules and the generation of precipitates cannot be effectively prevented in the stirring process.
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Description

Technical Field

[0001] This utility model relates to the field of anti-flocculation and anti-separation technology, and in particular to an anti-flocculation and anti-separation device for dephosphorizing sesame paste. Background Technology

[0002] Sesamin is a lignan compound found in sesame seeds. It has various biological activities such as anti-oxidation, anti-tumor, and lipid-lowering, and has broad application prospects in the fields of food, medicine, and cosmetics. Currently, the main methods for extracting sesamin from sesame seeds include solvent extraction and supercritical fluid extraction.

[0003] Most commercially available anti-flocculation and anti-separation equipment for dephosphorizing sesame paste has an overly simple structure, consisting only of simple stirring components. This results in an inability to effectively prevent the formation of flocculent matter and sedimentation during the stirring process. Therefore, an anti-flocculation and anti-separation equipment for dephosphorizing sesame paste is needed. Utility Model Content

[0004] The purpose of this invention is to provide an anti-flocculation and anti-separation device for dephosphorizing sesame paste, which solves the problem that most existing anti-flocculation and anti-separation devices for dephosphorizing sesame paste have overly simple structures with only simple stirring components, resulting in the inability to effectively prevent the formation of flocculent matter and the generation of sediment during the stirring process.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an anti-flocculation and anti-separation device for dephosphorizing sesame paste, comprising a supporting base plate, a collection bin on the upper surface of the supporting base plate, a fine filter screen above the collection bin, a coarse filter screen above the fine filter screen, a supporting plate on the upper side of the supporting base plate, a first motor fixed to the upper wall of the supporting plate, a first rotating shaft on the rotating end of the first motor, a gear plate fixed to the other end of the first rotating shaft, a ring rack plate meshing with one side of the gear plate, a dephosphorizing box fixed to the inner wall of the ring rack plate, an inlet valve at the top of the dephosphorizing box, an outlet valve at the bottom of the dephosphorizing box, an annular slider fixed to the outer wall of the dephosphorizing box, an annular slide rail on the outer side of the annular slider, a fixing plate installed on the outer side of the annular slide rail, a stirring plate fixed to the inner wall of the dephosphorizing box, a triangular plate on one side of the stirring plate, and a heating module on one side of the annular slide rail.

[0006] Preferably, a threaded column is fixed to the inner wall of the support base plate, a threaded groove is threaded to the outer periphery of the threaded column, a hollow column is installed outside the threaded groove, a first bearing is provided around the hollow column, a movable frame is provided around the first bearing, a second motor is fixed to the side wall of the movable frame, a second shaft is provided at the rotating end of the second motor, a first bevel gear is fixed to the other end of the second shaft, a second bearing is provided at the connection between the second shaft and the movable frame, a second bevel gear is meshed with one side of the first bevel gear, a movable plate is provided on the upper side of the movable frame, a third shaft is provided at the connection between the movable frame and the movable plate, a fourth shaft is provided at the connection between the support plate and the movable plate, and a fifth shaft is provided at the connection between the support plate and the support base plate.

[0007] Preferably, the gear plate and the first rotating shaft form a rotating structure through the operation of the first motor, the gear plate and the annular rack plate form a meshing structure, the annular rack plate and the dephosphorization box form a fixed structure, and the dephosphorization box forms a sliding structure through the annular slider and the annular slide rail.

[0008] Preferably, the dephosphorization box and the stirring plate form a fixed structure, and the stirring plate is provided with multiple sets of equally spaced distributions on the inner wall of the dephosphorization box. The dephosphorization box and the triangular plate form a fixed structure, and the triangular plate is provided with multiple sets of equally spaced distributions on the inner wall of the dephosphorization box.

[0009] Preferably, the first bevel gear and the second rotating shaft form a rotating structure through the operation of the second motor, and the first bevel gear and the second bevel gear form a meshing structure, and the first bevel gear and the hollow column form a fixed structure, and the hollow column forms a threaded connection with the threaded column through a threaded groove.

[0010] Preferably, the hollow column forms a rotating structure with the movable frame via a first bearing, the movable frame forms a rotating structure with the movable plate via a third rotating shaft, the movable plate forms a rotating structure with the support plate via a fourth rotating shaft, and the support plate forms a rotating structure with the support base plate via a fifth rotating shaft.

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

[0012] 1. This anti-flocculation and anti-separation device for dephosphorizing sesame paste is equipped with a stirring plate and a triangular plate. When the first motor is turned on, it can drive the gear plate to rotate, which indirectly drives the dephosphorization box to rotate through meshing transmission. The rotation of the dephosphorization box can cause multiple sets of stirring plates and triangular plates to rotate. The rotation of the stirring plates is used to stir the sesame paste during the dephosphorization reaction, so that the dephosphorizing agent is fully mixed with the sesame paste. The rotation of the triangular plates can rotate and lift the sesame paste that has settled at the bottom. This avoids the problem that most anti-flocculation and anti-separation devices for dephosphorizing sesame paste are too simple in structure, with only simple stirring components, which leads to the inability to effectively prevent the formation of flocculent matter and the generation of sediment during the stirring process.

[0013] 2. The anti-flocculent and anti-separation equipment for dephosphorizing sesame paste is equipped with a threaded groove and a threaded column. By turning on the second motor, the second rotating shaft and the first bevel gear can be driven to rotate. Through the meshing structure of the first and second bevel gears, the rotation of the first bevel gear can cause the second bevel gear to rotate, which indirectly drives the hollow column to rotate. Then, through the threaded connection of the threaded groove and the threaded column, the rotation of the hollow column can cause the moving frame to move. The movement of the moving frame can cause the movable plate to move. The movement of the movable plate can cause the support plate to tilt or stand upright, which indirectly causes the dephosphorizing box to tilt or stand upright so that the dephosphorizing box can pick up and put in materials. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of an anti-flocculation and anti-separation device for dephosphorizing sesame paste proposed in this utility model;

[0015] Figure 2 This is a schematic diagram of the unfolded structure of an anti-flocculation and anti-separation device for dephosphorizing sesame paste proposed in this utility model;

[0016] Figure 3 This is a front view structural diagram of an anti-flocculation and anti-separation device for dephosphorizing sesame paste proposed in this utility model;

[0017] Figure 4 This is a cross-sectional structural diagram of the dephosphorization box of an anti-flocculation and anti-separation device for dephosphorizing sesame paste proposed in this utility model.

[0018] In the diagram: 1. Support base plate; 2. Storage bin; 3. Fine filter screen; 4. Coarse filter screen; 5. Support plate; 6. First motor; 7. First rotating shaft; 8. Gear plate; 9. Annular rack plate; 10. Dephosphorization box; 11. Inlet valve; 12. Outlet valve; 13. Annular slider; 14. Annular slide rail; 15. Fixed plate; 16. Stirring plate; 17. Triangular plate; 18. Threaded column; 19. Threaded groove; 20. Hollow column; 21. First bearing; 22. Moving frame; 23. Second motor; 24. Second rotating shaft; 25. First bevel gear; 26. Second bearing; 27. Second bevel gear; 28. Third rotating shaft; 29. ​​Movable plate; 30. Fourth rotating shaft; 31. Fifth rotating shaft; 32. Heating module. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] Example 1

[0021] like Figure 1 , Figure 2 , Figure 3 and Figure 4As shown in the figure, an anti-flocculent and anti-separation device for dephosphorizing sesame paste includes a supporting base plate 1. A collection bin 2 is provided on the upper surface of the supporting base plate 1. A fine filter screen 3 is provided above the collection bin 2, and a coarse filter screen 4 is provided above the fine filter screen 3. A supporting plate 5 is provided on the upper side of the supporting base plate 1. A first motor 6 is fixed to the upper wall of the supporting plate 5. A first rotating shaft 7 is provided at the rotating end of the first motor 6. A gear plate 8 is fixed to the other end of the first rotating shaft 7. A ring-shaped rack plate 9 is meshed with one side of the gear plate 8. A dephosphorizing box 10 is fixed to the inner wall of the ring-shaped rack plate 9. An inlet valve 11 is provided at the top of the dephosphorizing box 10, and an outlet valve 12 is provided at the bottom of the dephosphorizing box 10. An annular slider 13 is fixed to the outer wall of the dephosphorizing box 10. An annular slide rail 14 is provided on the outside of the dephosphorization box 10, and a fixing plate 15 is installed on the outside of the annular slide rail 14. A stirring plate 16 is fixed on the inner wall of the dephosphorization box 10, and a triangular plate 17 is provided on one side of the stirring plate 16. A heating module 32 is provided on one side of the annular slide rail 14. The heating module 32 heats the dephosphorization box 10. The heating module 32 can precisely control the temperature of the sesame paste and keep it within a suitable dephosphorization temperature range. It also helps to prevent the sesame paste from solidifying or separating due to excessively low temperature. After dephosphorization, it is discharged from the discharge port valve 12 and falls into the coarse filter 4. The coarse filter 4 is used to intercept larger particles and impurities, while the fine filter 3 is used to further filter out fine flocculents and phosphates to ensure that the quality of the discharged sesame paste meets the requirements.

[0022] The gear plate 8 and the first rotating shaft 7 form a rotating structure through the operation of the first motor 6, and the gear plate 8 and the ring rack plate 9 form a meshing structure. The ring rack plate 9 and the dephosphorization box 10 form a fixed structure, and the dephosphorization box 10 forms a sliding structure through the ring slider 13 and the ring slide rail 14. When the first motor 6 is turned on, the gear plate 8 can be driven to rotate. Through the meshing structure of the gear plate 8 and the ring rack plate 9, the dephosphorization box 10 is indirectly driven to rotate.

[0023] The dephosphorization box 10 and the stirring plate 16 form a fixed structure, and the stirring plate 16 is provided with multiple sets of equally spaced distribution on the inner wall of the dephosphorization box 10. The dephosphorization box 10 and the triangular plate 17 form a fixed structure, and the triangular plate 17 is provided with multiple sets of equally spaced distribution on the inner wall of the dephosphorization box 10. The rotation of the dephosphorization box 10 can cause the multiple sets of stirring plates 16 and triangular plates 17 to rotate. The rotation of the stirring plate 16 is used to stir the sesame paste during the dephosphorization reaction process, so that the dephosphorizing agent and sesame paste are fully mixed. The rotation of the triangular plate 17 can rotate and lift the sesame paste that has settled at the bottom.

[0024] Example 2

[0025] like Figure 1 , Figure 2 , Figure 3 and Figure 4As shown, this embodiment further illustrates Example 1. A threaded column 18 is fixed to the inner wall of the support base plate 1. A threaded groove 19 is threadedly connected to the outer periphery of the threaded column 18. A hollow column 20 is installed outside the threaded groove 19. A first bearing 21 is arranged around the hollow column 20. A movable frame 22 is arranged around the first bearing 21. A second motor 23 is fixed to the side wall of the movable frame 22. A second rotating shaft 24 is arranged at the rotating end of the second motor 23. A first bevel gear 25 is fixed to the other end of the second rotating shaft 24. A second bearing 26 is arranged at the connection between the second rotating shaft 24 and the movable frame 22. A second bevel gear 27 is meshed with one side of the first bevel gear 25. A movable plate 29 is arranged on the upper side of the movable frame 22. A third rotating shaft 28 is arranged at the connection between the movable frame 22 and the movable plate 29. A fourth rotating shaft 30 is arranged at the connection between the support plate 5 and the movable plate 29. A fifth rotating shaft 31 is arranged at the connection between the support plate 5 and the support base plate 1.

[0026] The first bevel gear 25 and the second rotating shaft 24 form a rotating structure through the operation of the second motor 23. The first bevel gear 25 and the second bevel gear 27 form a meshing structure, and the first bevel gear 25 and the hollow column 20 form a fixed structure. The hollow column 20 is connected to the threaded column 18 through the threaded groove 19. When the second motor 23 is turned on, the second rotating shaft 24 and the first bevel gear 25 can be rotated. Through the meshing structure of the first bevel gear 25 and the second bevel gear 27, the rotation of the first bevel gear 25 can cause the second bevel gear 27 to rotate, which indirectly drives the hollow column 20 to rotate. Through the threaded connection of the threaded groove 19 and the threaded column 18, the rotation of the hollow column 20 can cause the moving frame 22 to move. The movement of the moving frame 22 can cause the movable plate 29 to move. The movement of the movable plate 29 can cause the support plate 5 to tilt or stand upright, which indirectly causes the dephosphorization box 10 to tilt or stand upright so that the dephosphorization box 10 can pick up and put in materials.

[0027] The hollow column 20 forms a rotating structure with the movable frame 22 via the first bearing 21, and the movable frame 22 forms a rotating structure with the movable plate 29 via the third rotating shaft 28. The movable plate 29 forms a rotating structure with the support plate 5 via the fourth rotating shaft 30, and the support plate 5 forms a rotating structure with the support base plate 1 via the fifth rotating shaft 31.

[0028] Working principle: First, the operator needs to turn on the second motor 23, which drives the second rotating shaft 24 and the first bevel gear 25 to rotate. The rotation of the first bevel gear 25 causes the second bevel gear 27 to rotate, which indirectly drives the hollow column 20 to rotate. The rotation of the hollow column 20 causes the moving frame 22 to move. The movement of the moving frame 22 causes the movable plate 29 to move. The movement of the movable plate 29 causes the support plate 5 to tilt or stand upright, which indirectly causes the dephosphorization box 10 to tilt or stand upright, so that the dephosphorization box 10 can pick up and put in materials. By turning on the first motor 6, the gear plate 8 can be driven to rotate, which indirectly drives the dephosphorization box 10 to rotate. The rotation of the dephosphorization box 10 causes multiple sets of stirring plates 16 and triangular plates 17 to rotate. The rotation of the stirring plates 16 is used to stir the sesame paste during the dephosphorization reaction, so that the dephosphorizing agent is fully mixed with the sesame paste. The rotation of the triangular plates 17 can rotate and lift the sesame paste that has settled at the bottom.

[0029] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A device for preventing flocculation and separation in sesame paste dephosphorization, comprising a supporting base plate (1), characterized in that: A storage compartment (2) is provided on the upper surface of the supporting base plate (1). A fine filter screen (3) is provided above the storage compartment (2), and a coarse filter screen (4) is provided above the fine filter screen (3). A support plate (5) is provided on the upper side of the supporting base plate (1). A first motor (6) is fixed on the upper wall of the support plate (5). A first rotating shaft (7) is provided on the rotating end of the first motor (6). A gear plate (8) is fixed on the other end of the first rotating shaft (7). A ring rack plate (9) is meshed on one side of the gear plate (8). A dephosphorization device is fixed on the inner wall of the ring rack plate (9). The dephosphorization box (10) is equipped with a feed inlet valve (11) at the top and a discharge outlet valve (12) at the bottom. An annular slider (13) is fixed on the outer wall of the dephosphorization box (10). An annular slide rail (14) is provided on the outer side of the annular slider (13). A fixing plate (15) is installed on the outside of the annular slide rail (14). A stirring plate (16) is fixed on the inner wall of the dephosphorization box (10). A triangular plate (17) is provided on one side of the stirring plate (16). A heating module (32) is provided on one side of the annular slide rail (14).

2. The anti-flocculation and anti-separation device for dephosphorization of sesame paste according to claim 1, characterized in that: A threaded column (18) is fixed to the inner wall of the supporting base plate (1). A threaded groove (19) is threaded to the outer periphery of the threaded column (18). A hollow column (20) is installed on the outer periphery of the threaded groove (19). A first bearing (21) is provided on the outer periphery of the hollow column (20). A movable frame (22) is provided on the outer periphery of the first bearing (21). A second motor (23) is fixed to the side wall of the movable frame (22). A second rotating shaft (24) is provided at the rotating end of the second motor (23). A first conical tooth is fixed at the other end of the second rotating shaft (24). A second bearing (26) is provided at the connection between the wheel (25), the second rotating shaft (24) and the movable frame (22), a second bevel gear (27) is meshed with one side of the first bevel gear (25), a movable plate (29) is provided on the upper side of the movable frame (22), a third rotating shaft (28) is provided at the connection between the movable frame (22) and the movable plate (29), a fourth rotating shaft (30) is provided at the connection between the support plate (5) and the movable plate (29), and a fifth rotating shaft (31) is provided at the connection between the support plate (5) and the support base plate (1).

3. The anti-flocculation and anti-separation device for dephosphorization of sesame paste according to claim 1, characterized in that: The gear plate (8) and the first rotating shaft (7) form a rotating structure through the operation of the first motor (6), and the gear plate (8) and the ring rack plate (9) form a meshing structure, and the ring rack plate (9) and the dephosphorization box (10) form a fixed structure, and the dephosphorization box (10) forms a sliding structure through the ring slider (13) and the ring slide rail (14).

4. The anti-flocculation and anti-separation device for dephosphorization of sesame paste according to claim 1, characterized in that: The dephosphorization box (10) and the stirring plate (16) form a fixed structure, and the stirring plate (16) is provided with multiple sets of equally spaced distributions on the inner wall of the dephosphorization box (10). The dephosphorization box (10) and the triangular plate (17) form a fixed structure, and the triangular plate (17) is provided with multiple sets of equally spaced distributions on the inner wall of the dephosphorization box (10).

5. The anti-flocculation and anti-separation device for dephosphorization of sesame paste according to claim 2, characterized in that: The first bevel gear (25) and the second rotating shaft (24) form a rotating structure through the operation of the second motor (23), and the first bevel gear (25) and the second bevel gear (27) form a meshing structure. The first bevel gear (25) and the hollow column (20) form a fixed structure, and the hollow column (20) and the threaded column (18) form a threaded connection through the threaded groove (19).

6. The anti-flocculation and anti-separation device for dephosphorization of sesame paste according to claim 2, characterized in that: The hollow column (20) forms a rotating structure with the movable frame (22) via the first bearing (21), and the movable frame (22) forms a rotating structure with the movable plate (29) via the third rotating shaft (28), and the movable plate (29) forms a rotating structure with the support plate (5) via the fourth rotating shaft (30), and the support plate (5) forms a rotating structure with the support base plate (1) via the fifth rotating shaft (31).