Sesame oil production grinding device
By using a cold water circulation cooling method in the sesame oil production equipment, and utilizing cooling channels and semiconductor cooling plates to reduce the temperature of the grinding surface, the problem of the difficulty in reducing temperature by external cooling methods is solved, thus ensuring the flavor of the sesame oil.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN XINDA MINGYANG FOOD CO LTD
- Filing Date
- 2025-04-10
- Publication Date
- 2026-04-24
AI Technical Summary
In the existing sesame oil production process, external cooling methods are insufficient to effectively reduce the temperature of the grinding surface, thus affecting the flavor of the sesame oil.
The grinding surface is cooled by a cold water circulation method. A cooling channel is set in the stationary grinding disc, and a water pump is used to transport water from the water tank to the cooling channel. The flowing water carries away the heat, and the water temperature is further reduced by the cooling components and semiconductor cooling chips, forming a cold water circulation to cool the grinding surface.
It improves the cooling effect, preserves the flavor of sesame oil, and is more practical than external cooling methods.
Smart Images

Figure CN224156940U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of sesame oil production technology, specifically to a sesame oil grinding device. Background Technology
[0002] Sesame oil, also known as fragrant oil, is extracted from sesame seeds and has a distinctive aroma. The production process involves grinding roasted sesame seeds. The optimal grinding temperature is between 35-45℃. During grinding, the temperature of the grinding surface rises, necessitating cooling. Existing cooling methods, typically external cooling, are insufficient to lower the surface temperature, thus affecting the flavor of the sesame oil. Therefore, a sesame oil production grinding device is proposed. Utility Model Content
[0003] The purpose of this application is to provide a sesame oil production grinding device to solve the technical problem that the existing cooling method is usually external cooling, which makes it difficult to reduce the temperature of the grinding surface and thus affect the flavor of sesame oil.
[0004] To achieve the above objectives, this application specifically adopts the following technical solution:
[0005] A sesame oil grinding device includes a frame, on which a stationary grinding disc, a collection trough, and a mounting frame are mounted. The collection trough is located on the outer periphery of the stationary grinding disc. A movable grinding disc is rotatably mounted on the mounting frame. A stationary grinding plate and a movable grinding plate are respectively mounted on the stationary and movable grinding discs. Grinding patterns are formed on opposite sides of the stationary and movable grinding plates. A feed inlet is formed on the movable grinding disc and the movable grinding plate. A cooling channel is formed inside the stationary grinding disc. A water pump, a cooling cylinder, and a water tank are mounted on the frame. The input end of the water pump extends to the bottom of the water tank, and the output end is connected to the cooling channel. A return water pipe is provided inside the cooling cylinder. One end of the return water pipe is connected to the cooling channel, and the other end extends into the water tank. A cooling element is provided on the cooling cylinder to cool the water flowing through the return water pipe.
[0006] Furthermore, the mounting bracket is slidably mounted on the frame, and the frame is provided with a hydraulic push rod whose movable end is connected to the mounting bracket.
[0007] Furthermore, the stationary grinding plate is detachably mounted on the stationary grinding disc, and the moving grinding plate is detachably mounted on the moving grinding disc.
[0008] Furthermore, the stationary grinding disc has multiple positioning holes, and the stationary grinding plate is provided with positioning blocks that are the same number as the positioning holes and are inserted into them one by one. The moving grinding disc has through holes and insertion slots that are connected. The moving grinding plate is provided with insertion blocks that are inserted into the insertion slots. The insertion blocks have through holes, and bolts are movably inserted into the through holes and through holes. Locking nuts that abut against and overlap with the moving grinding disc are threaded on the bolts.
[0009] Furthermore, the cooling channels include multiple interconnected annular channels and strip channels, with the multiple annular channels forming a concentric circle structure and the multiple strip channels distributed in an annular array.
[0010] Furthermore, both the stationary grinding disc and the stationary grinding plate are constructed with cavities, and the cavities are filled with thermally conductive silicone grease.
[0011] Furthermore, the return water pipe is constructed in a continuously bent S-shape and has multiple heat-conducting fins on it.
[0012] Furthermore, the cooling component includes a duct disposed on and connected to the cooling cylinder, the duct being equipped with an air intake fan and a plurality of semiconductor refrigeration chips, the cold ends of the semiconductor refrigeration chips being located inside the duct.
[0013] The beneficial effects of this application are as follows: When grinding roasted sesame seeds, this application uses a cold water circulation method to cool the grinding surface, thereby lowering the temperature of the grinding surface. Compared with external cooling methods, the cooling effect is better, thus ensuring the flavor of sesame oil and making it more practical. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural view of this application;
[0015] Figure 2 This is a three-dimensional sectional view of this application;
[0016] Figure 3 This application Figure 2 Enlarged view of point A in the middle;
[0017] Figure 4 This is a three-dimensional sectional view from another perspective of this application;
[0018] Figure 5 This application Figure 4 Enlarged view of point B in the middle;
[0019] Figure 6 This is another perspective sectional view of this application;
[0020] Figure 7 This application Figure 6 Enlarged view of point C in the middle;
[0021] Figure 8 This is a three-dimensional view of part of the structure of this application;
[0022] Figure 9 This application Figure 8 A three-dimensional sectional view.
[0023] Reference numerals: 1. Frame; 2. Stationary grinding disc; 3. Collection tank; 4. Mounting bracket; 5. Moving grinding disc; 6. Stationary grinding plate; 7. Moving grinding plate; 8. Grinding pattern; 9. Feed inlet; 10. Cooling channel; 11. Water pump; 12. Cooling cylinder; 13. Water tank; 14. Return water pipe; 15. Hydraulic push rod; 16. Positioning hole; 17. Positioning block; 18. Through hole; 19. Insertion slot; 20. Insertion block; 21. Through hole; 22. Bolt; 23. Locking nut; 24. Cavity; 25. Thermal grease; 26. Thermal fins; 27. Air duct; 28. Air inlet fan; 29. Semiconductor cooling chip. Detailed Implementation
[0024] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings.
[0025] like Figures 1-9 As shown in one embodiment of this application, a sesame oil production grinding device includes a frame 1. A stationary grinding disc 2, a collection trough 3, and a mounting frame 4 are mounted on the frame 1. Both the stationary grinding disc 2 and the collection trough 3 are fixed to the frame 1, with the collection trough 3 located on the outer periphery of the stationary grinding disc 2. A movable grinding disc 5 is rotatably mounted on the mounting frame 4. A reduction motor is fixedly mounted on the mounting frame 4, and the output shaft of the reduction motor is fixedly connected to the movable grinding disc 5. Stationary grinding plates 6 and movable grinding plates 7 are respectively mounted on the stationary grinding disc 2 and the movable grinding disc 5. The movable grinding disc 5, movable grinding plates 7, stationary grinding plates 6, and stationary grinding disc 2 are all horizontally arranged and distributed sequentially from top to bottom. Grinding patterns 8 are formed on the opposite sides of the stationary grinding plates 6 and the movable grinding plates 7. The movable grinding disc 5 and the movable grinding plate 7... The plate 7 has a connected feed inlet 9, which is vertical. The stationary grinding disc 2 has a cooling channel 10, which is close to the stationary grinding plate 6. The frame 1 is equipped with a water pump 11, a cooling cylinder 12, and a water tank 13. The water pump 11, cooling cylinder 12, and water tank 13 are all fixed on the frame 1. The input end of the water pump 11 extends to the bottom of the water tank 13, and the output end is connected to the cooling channel 10. The cooling cylinder 12 is equipped with a return water pipe 14, which is fixed inside the cooling cylinder 12. One end of the return water pipe 14 is connected to the cooling channel 10, and the other end extends into the water tank 13. The cooling cylinder 12 is equipped with a cooling element, which cools the water flowing through the return water pipe 14.
[0026] Before use, add water to the water tank 13. When using, add roasted sesame seeds to the feed inlet 9 and drive the moving grinding disc 5 to rotate, which in turn drives the moving grinding plate 7 to rotate. The sesame seeds are located between the moving grinding plate 7 and the stationary grinding plate 6. The sesame seeds are ground by the moving grinding plate 7, the stationary grinding plate 6 and the grinding grooves 8 on both. During the grinding process, the temperature of the grinding surface will rise, which will cause the water pump 11 to work and transport the water in the water tank 13 to the cooling channel 10. The flowing water will carry away the heat generated by the grinding surface and cool the grinding surface. After that, the water temperature rises and flows through the return water pipe 14. The water flowing through the return water pipe 14 is cooled by the cooling component and forms cold water. Finally, the cold water enters the water tank 13 and is drawn out by the water pump 11 to form a cold water circulation. The ground sesame seeds will enter the collection tank 3.
[0027] In summary, this application uses a cold water circulation method to cool the grinding surface when grinding roasted sesame seeds, which lowers the temperature of the grinding surface. Compared with external cooling methods, the cooling effect is better, thus preserving the flavor of sesame oil and making it more practical.
[0028] like Figure 1 As shown, in some embodiments, the mounting bracket 4 is slidably mounted on the frame 1, the mounting bracket 4 slides in the vertical direction, and the frame 1 is provided with a hydraulic push rod 15 whose movable end is connected to the mounting bracket 4. The hydraulic push rod 15 is in the vertical direction and fixed on the frame 1.
[0029] Referring to the above, during use, the movable end of the hydraulic push rod 15 can be retracted or extended to drive the mounting bracket 4 to slide up or down, so that the moving grinding plate 7 moves away from or closer to the stationary grinding plate 6. The distance between the moving grinding plate 7 and the stationary grinding plate 6 can be adjusted to adjust the grinding precision according to the moisture content or particle size of sesame seeds. At the same time, when the moving grinding plate 7 moves away from the stationary grinding plate 6, it is convenient to clean both of them.
[0030] like Figures 3-5 As shown, in some embodiments, the stationary grinding plate 6 is detachably mounted on the stationary grinding disc 2, and the moving grinding plate 7 is detachably mounted on the moving grinding disc 5.
[0031] Referring to the above, when the grinding is finished and the moving grinding plate 7 is far away from the stationary grinding plate 6, the stationary grinding plate 6 can be removed from the stationary grinding disc 2 and the moving grinding plate 7 can be removed from the moving grinding disc 5 to facilitate a more thorough cleaning of the moving grinding plate 7 and the stationary grinding plate 6. This also makes it easier to replace the moving grinding plate 7 and the stationary grinding plate 6. After that, the moving grinding plate 7 can be reinstalled on the moving grinding disc 5 and the stationary grinding plate 6 can be reinstalled on the stationary grinding disc 2.
[0032] like Figures 3-5As shown, in some embodiments, the stationary grinding disc 2 is provided with a plurality of positioning holes 16, which are vertical. The stationary grinding plate 6 is provided with positioning blocks 17, which are the same number as the positioning holes 16 and are inserted into each other. The positioning blocks 17 are vertical and fixed on the stationary grinding plate 6. The moving grinding disc 5 is provided with a through hole 18 and a slot 19, which are horizontal. The slot 19 is vertical. The moving grinding plate 7 is provided with a slot 20 that is inserted into the slot 19. The slot 20 is vertical and fixed on the moving grinding plate 7. The slot 20 is provided with a through hole 21, which is horizontal. A bolt 22 is movably inserted into the through hole 18 and the through hole 21. A locking nut 23 that abuts and overlaps with the moving grinding disc 5 is threaded on the bolt 22.
[0033] Referring to the above, in the initial state, multiple positioning blocks 17 are respectively inserted into multiple positioning holes 16, the stationary grinding plate 6 is installed on the stationary grinding disc 2, the insertion block 20 is inserted into the insertion slot 19, the through hole 21 communicates with the through hole 18, the bolt 22 is inserted into the through hole 18 and the through hole 21, the locking nut 23 is threaded on the bolt 22 and abuts against the moving grinding disc 5, and the moving grinding plate 7 is installed on the moving grinding disc 5. In use, the stationary grinding plate 6 is moved upward away from the stationary grinding disc 2, the multiple positioning blocks 17 are respectively disengaged from the multiple positioning holes 16, and the stationary grinding plate 6 can be disassembled. The locking nut 23 is then loosened to the farthest point. As the bolt 22 is removed, the moving grinding plate 7 moves downwards away from the moving grinding disc 5 due to gravity. The insertion block 20 exits the insertion slot 19, allowing the moving grinding plate 7 to be disassembled. Multiple positioning blocks 17 are then inserted into multiple positioning holes 16 respectively. The stationary grinding plate 6 abuts and overlaps with the stationary grinding disc 2 to achieve the installation of the stationary grinding plate 6. The insertion block 20 is then inserted into the insertion slot 19, and the moving grinding plate 7 abuts and overlaps with the moving grinding disc 5. The bolt 22 is then movably inserted into the through hole 18 and the through hole 21. The locking nut 23 is threaded onto the bolt 22 and abuts and overlaps with the moving grinding disc 5 to achieve the installation of the moving grinding plate 7.
[0034] like Figure 9 As shown, in some embodiments, the cooling channel 10 includes multiple interconnected annular channels and strip channels. Both the annular channels and strip channels are horizontal. The multiple annular channels form a concentric circle structure, and the multiple strip channels are distributed in a ring array.
[0035] Referring to the above, in use, the cooling channel 10 is formed by multiple annular channels and multiple strip channels, which can increase the cooling area and improve the cooling efficiency.
[0036] like Figure 3As shown, in some embodiments, both the stationary grinding disc 2 and the stationary grinding plate 6 are constructed with cavities 24, which are filled with thermally conductive silicone grease 25. The thermally conductive silicone grease 25 is a thermally conductive silicone grease-like composite material made of organosilicone as the main raw material and with the addition of heat-resistant and thermally conductive materials. It is a high thermal conductivity insulating organosilicone material with excellent thermal conductivity.
[0037] Referring to the above, during use, the cooling efficiency can be further improved through the combined action of cavity 24 and thermal grease 25.
[0038] like Figures 2-7 As shown, in some embodiments, the return water pipe 14 is constructed in a continuously bent S-shape and is provided with a plurality of heat-conducting fins 26. The heat-conducting fins 26 are fixed on the return water pipe 14. In this embodiment, the heat-conducting fins 26 are made of aluminum, which has the advantages of good thermal conductivity and light weight.
[0039] Referring to the above, when cooling the water flowing through the return water pipe 14 through the cooling component, the cooling area of the return water pipe 14 can be increased by using an S-shaped arrangement in conjunction with multiple heat-conducting fins 26, thereby improving the cooling efficiency of the water.
[0040] like Figure 7 As shown, in some embodiments, the cooling component includes a duct 27 disposed on and connected to the cooling cylinder 12. The duct 27 is fixed on the cooling cylinder 12. An air intake fan 28 and a plurality of thermoelectric coolers 29 are disposed on the duct 27. The air intake fan 28 and the thermoelectric coolers 29 are both fixed on the duct 27. The thermoelectric coolers 29 have relatively distributed hot ends and cold ends. The hot ends are located outside the duct, and the cold ends of the thermoelectric coolers 29 are located inside the duct 27.
[0041] Referring to the above, when in use, the air intake fan 28 and the semiconductor cooling chip 29 are activated, and the outside natural air enters the air duct 27. The cold end of the semiconductor cooling chip 29 is cooled, which lowers the temperature of the outside natural air passing through the air duct 27 and forms cold air. Then the cold air enters the cooling cylinder 12 and blows onto the return water pipe 14, thereby cooling the water flowing through the return water pipe 14.
[0042] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A sesame oil production grinding device, comprising a frame (1), wherein a stationary grinding disc (2), a collection trough (3), and a mounting frame (4) are disposed on the frame (1), the collection trough (3) being located on the outer periphery of the stationary grinding disc (2), and a movable grinding disc (5) being rotatably disposed on the mounting frame (4), characterized in that, The stationary grinding disc (2) and the moving grinding disc (5) are respectively provided with a stationary grinding plate (6) and a moving grinding plate (7). The opposite sides of the stationary grinding plate (6) and the moving grinding plate (7) are constructed with grinding patterns (8). The moving grinding disc (5) and the moving grinding plate (7) are constructed with a connected feed inlet (9). The stationary grinding disc (2) is constructed with a cooling channel (10). The frame (1) is provided with a water pump (11), a cooling cylinder (12) and a water tank (13). The input end of the water pump (11) extends to the bottom of the water tank (13) and the output end is connected to the cooling channel (10). The cooling cylinder (12) is provided with a return water pipe (14). One end of the return water pipe (14) is connected to the cooling channel (10) and the other end extends to the water tank (13). The cooling cylinder (12) is provided with a cooling element, which cools the water flowing through the return water pipe (14).
2. The sesame oil production grinding apparatus according to claim 1, characterized in that, The mounting bracket (4) is slidably mounted on the frame (1), and the frame (1) is provided with a hydraulic push rod (15) whose movable end is connected to the mounting bracket (4).
3. The sesame oil production grinding apparatus according to claim 1, characterized in that, The stationary grinding plate (6) is detachably mounted on the stationary grinding disc (2), and the moving grinding plate (7) is detachably mounted on the moving grinding disc (5).
4. The sesame oil production grinding apparatus according to claim 3, characterized in that, The stationary grinding disc (2) has multiple positioning holes (16). The stationary grinding plate (6) has positioning blocks (17) that are the same number as the positioning holes (16) and are inserted into each other. The moving grinding disc (5) has a through hole (18) and a slot (19) that are connected. The moving grinding plate (7) has a slot (20) that is inserted into the slot (19). The slot (20) has a through hole (21). A bolt (22) is movably inserted into the through hole (18) and the through hole (21). A locking nut (23) that abuts and overlaps with the moving grinding disc (5) is threaded on the bolt (22).
5. The sesame oil production grinding apparatus according to claim 1, characterized in that, The cooling channel (10) includes multiple interconnected annular channels and strip channels. The multiple annular channels form a concentric circle structure, and the multiple strip channels are distributed in an annular array.
6. The sesame oil production grinding apparatus according to claim 1, characterized in that, Both the stationary grinding disc (2) and the stationary grinding plate (6) have cavities (24) inside, and the cavities (24) are filled with thermally conductive silicone grease (25).
7. The sesame oil production grinding apparatus according to claim 1, characterized in that, The return water pipe (14) is constructed in a continuously bent S-shape and has multiple heat-conducting fins (26) on it.
8. The sesame oil production grinding apparatus according to claim 1, characterized in that, The cooling component includes a duct (27) disposed on and connected to the cooling cylinder (12). The duct (27) is provided with an air intake fan (28) and a plurality of semiconductor cooling chips (29). The cold end of the semiconductor cooling chip (29) is located inside the duct (27).