A barrel oil conveying mechanism for food processing
Patent Information
- Application Number
- CN202610793533.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-03
- Publication Date
- 2026-08-18
AI Technical Summary
现有的食品加工用桶装油传输机构不具备对皮带与油桶接触面之间的摩擦力进行调整的能力,当皮带上滴落有食用油时,小桶底部与皮带接触面积小,食用油一润,摩擦力瞬间不够,极易前后窜动、原地打滑;且传统的食品加工用桶装油传输机构也不具备过对油桶在输送时两侧的限位板进行调距的能力,油桶在皮带输送时左右偏移,桶身无法保持在输送带中心轨迹运行,导致向一侧跑偏、蹭碰机架、刮擦侧边;
与现有技术相比,本方案采用对夹型输送机构、柔性式承载机构与调限型测压机构相结合的方式,通过设置的传输组件、驱动组件、限位组件、揉撑组件、底托组件、导向组件和测压组件,利用扭矩弹簧的扭转弹性通过支撑滑板将聚氨酯输送带托起,使得聚氨酯输送带上壁微拱,增大小油桶与聚氨酯输送带接触面之间的摩擦力,提升小油桶输送的稳定性,且当大油桶进入聚氨酯输送带上壁时,聚氨酯输送带利用扭矩弹簧的形变下压支撑滑板,使得聚氨酯输送带底壁与测压滚珠贴合,测压滚珠通过导向轴下压压力传感器的检测端,压力传感器反馈压力信号,及时调整限位板之间的限位距离,从而使得运输生产线能够实时匹配不同的油桶。
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Figure CN122585609A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of bottled oil transfer technology, specifically referring to a bottled oil transfer mechanism for food processing. Background Technology
[0002] Edible oil, also known as cooking oil, refers to animal or vegetable fats used in food production. During production, edible oil is typically stored in oil drums, which are then transported via conveyor belts. During the filling process, dripping oil flows down the drums onto the conveyor belt and then spreads throughout the production line. This not only contaminates the equipment but also causes belt slippage and drum slippage / tilting, affecting the accuracy of subsequent capping and labeling processes.
[0003] The existing oil conveying mechanisms for food processing have the following problems: Existing conveyor mechanisms for bottled oil in food processing lack the ability to adjust the friction between the belt and the oil drum. When cooking oil drips onto the belt, the contact area between the bottom of the small drum and the belt is small. As soon as the oil wets the drum, the friction is insufficient, making it easy for the drum to lurch forward and backward or slip in place. Furthermore, traditional conveyor mechanisms for bottled oil in food processing also lack the ability to adjust the distance between the limit plates on both sides of the oil drum during transport. The oil drum deviates from side to side during belt transport, and the drum body cannot stay on the center track of the conveyor belt, resulting in deviation to one side, rubbing against the frame, and scraping the sides. Therefore, it cannot meet the current demand for barrelled oil transfer mechanisms used in food processing. Summary of the Invention
[0004] In order to overcome the shortcomings of the prior art, this solution provides a food processing drum oil conveying mechanism that can adjust the friction between the belt and the oil drum contact surface, reduce the probability of slippage between the oil drum and the conveyor belt contact surface, and automatically adjust the limit distance on both sides of the conveyor line according to the weight of the oil drum.
[0005] This solution proposes a barrelled oil conveying mechanism for food processing, comprising a support frame, a conveying platform, a clamp-type conveying mechanism, a flexible bearing mechanism, and an adjustable pressure measuring mechanism. The conveying platform is disposed on the upper wall of the support frame. The clamp-type conveying mechanism includes a conveying component, a driving component, and a limiting component. The conveying component is disposed on the conveying platform, the driving component is disposed on the side wall of the conveying platform, and the limiting component is disposed on the upper wall of the conveying platform. The flexible bearing mechanism includes a kneading support component and a bottom support component. The kneading support component is disposed on the side wall of the limiting component, and the bottom support component is disposed at the end of the kneading support component away from the limiting component. The adjustable pressure measuring mechanism includes a guide component and a pressure measuring component. The guide component is disposed on the upper wall of the limiting component, and the pressure measuring component is disposed on the guide component.
[0006] As a further preferred embodiment of the present invention, the transmission assembly includes transmission rollers and a polyurethane conveyor belt. The transmission rollers are symmetrically arranged at both ends of the conveyor platform and are rotatably connected to the conveyor platform. The polyurethane conveyor belt is wound between the transmission rollers and meshes with them. The drive assembly includes a drive motor and a drive shaft. The drive motor is located on one side wall of the conveyor platform, and the drive shaft passes through the conveyor platform and is located between the transmission rollers and the output end of the drive motor. The limiting assembly includes an inner fixed platform, a groove, a cylinder, a guide slide, and a limiting plate. The inner fixed platform is located on the inner wall of the conveyor platform inside the polyurethane conveyor belt. The groove is located on both side walls of the inner fixed platform and is through-hole. The cylinder is symmetrically arranged at both ends of the groove. The guide slide is located on the upper wall of the conveyor platform near the cylinder. The limiting plate is slidably arranged on the guide slide near the cylinder, and the bottom of the limiting plate is connected to the guide slide. The upper part of the limiting plate is located on both sides of the polyurethane conveyor belt.
[0007] In use, the conveyor table is connected to the edible oil filling and capping production line. After filling, the oil drums are conveyed to the upper wall of the polyurethane conveyor belt. The output end of the drive motor drives the transmission roller at one end of the conveyor table to rotate through the drive shaft. The transmission roller meshes with the polyurethane conveyor belt, and the transmission roller drives the polyurethane conveyor belt to rotate and convey the oil drums. The output end of the cylinder shortens and drives the limit plate to move relative to the guide slide, limiting the left and right deviation of the oil drums when they are conveyed by the polyurethane conveyor belt, so that the drum body always stays on the center track of the polyurethane conveyor belt.
[0008] Preferably, the kneading support assembly includes a circular groove, a kneading support shaft, a kneading support frame, and a torque spring. Multiple sets of the circular grooves are symmetrically arranged on both sides of the inner fixed platform. The kneading support shaft is located on the inner wall of the circular groove. The kneading support frame is rotatably located at the end of the kneading support shaft away from the inner fixed platform. The torque spring is located on the kneading support frame outside the kneading support shaft between the circular grooves. The bottom support assembly includes a hinge shaft and a support slide plate. The hinge shaft is located at the end of the kneading support frame near the polyurethane conveyor belt. The support slide plate is hinged at the end of the hinge shaft away from the kneading support frame, and the side of the support slide plate away from the hinge shaft is in contact with the bottom wall of the polyurethane conveyor belt.
[0009] In use, initially, the upper wall of the polyurethane conveyor belt is horizontal, and the support plate is in contact with the bottom wall of the polyurethane conveyor belt. The support plate is made of low-friction and wear-resistant material. When the polyurethane conveyor belt rotates around the transmission roller, it slides along the upper wall of the support plate. The support plate uses the torsional elasticity of the torque spring to flexibly support the polyurethane conveyor belt. The support plate is set below the bottom wall of the belt, pressing the polyurethane conveyor belt upward. The polyurethane conveyor belt is elastically slightly arched by the upward support, which is equivalent to applying an upward supporting force to the conveyor belt from below, making the polyurethane conveyor belt slightly arched upward. This increases the adhesion and pressing force between the bottom of the small oil drum and the polyurethane conveyor belt, thereby increasing the friction between the contact surface of the small oil drum and the polyurethane conveyor belt and reducing the probability of slippage between the small oil drum and the polyurethane conveyor belt.
[0010] Specifically, the guiding assembly includes a guide sleeve and a guide shaft, with multiple sets of guide sleeves disposed on the upper wall of the inner fixed platform, and the guide shaft slidably disposed inside the guide sleeve; the pressure measuring assembly includes a pressure measuring plate, a pressure measuring spring, a pressure measuring ball, and a pressure sensor, with the pressure measuring plate disposed on the upper wall of the guide shaft, the pressure measuring spring disposed between the pressure measuring plate and the guide sleeve on the outer side of the guide shaft, the pressure measuring ball rolling on the upper wall of the pressure measuring plate, and the pressure sensor penetratingly disposed on the bottom wall of the guide sleeve.
[0011] In use, the pressure-sensing spring is in an extended state, and the pressure-sensing ball is in contact with the bottom wall of the polyurethane conveyor belt. When the weight of the oil drum entering the upper wall of the polyurethane conveyor belt increases, the weight of the large oil drum causes the torque spring to undergo torsional elastic deformation, which in turn presses down on the support slide plate. The support slide plate rotates around one end of the kneading support frame through the hinge shaft, and the kneading support frame rotates along one end of the kneading support shaft. The polyurethane conveyor belt uses the elastic deformation of the pressure-sensing spring to press down on the guide shaft. The guide shaft slides down along the guide sleeve and squeezes the pressure sensor detection end. When the pressure sensor detection end senses the pressure threshold, the corresponding control cylinder output end extends. The cylinder output end pushes the limit plate to move in the opposite direction along the guide slide, increasing the distance between the limit plates, thereby limiting the transportation of the large oil drum.
[0012] The support frame is equipped with a controller on its side wall.
[0013] Preferably, the controller is electrically connected to the drive motor, the pressure sensor, and the cylinder, respectively.
[0014] The beneficial effects achieved by this solution using the above structure are as follows: Compared with existing technologies, this solution combines a clamp-type conveyor mechanism, a flexible bearing mechanism, and an adjustable pressure measuring mechanism. Through the inclusion of transmission components, drive components, limit components, kneading support components, bottom support components, guide components, and pressure measuring components, the torsional elasticity of the torque springs supports the polyurethane conveyor belt via a support plate, causing a slight arch in the upper wall of the polyurethane conveyor belt. This increases the friction between the small oil drums and the contact surface of the polyurethane conveyor belt, improving the stability of the small oil drum transport. Furthermore, when a large oil drum enters the upper wall of the polyurethane conveyor belt, the deformation of the torque springs presses down on the support plate, causing the bottom wall of the polyurethane conveyor belt to fit against the pressure measuring balls. The pressure measuring balls press down on the detection end of the pressure sensor via the guide shaft. The pressure sensor feeds back a pressure signal, and the limiting distance between the limit plates is adjusted in a timely manner, enabling the transport production line to match different oil drums in real time. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of this solution; Figure 2 This is a schematic diagram of the combined structure of the support frame and the conveyor table in this scheme; Figure 3 This is a schematic diagram of the internal fixed platform in this scheme; Figure 4 This is the main view of this solution; Figure 5 This is a side view of the design. Figure 6 This is a top view of the plan; Figure 7 for Figure 4 Sectional view of AA section; Figure 8 for Figure 6 Sectional view of BB section; Figure 9 for Figure 8 Enlarged structural view of section I; Figure 10 for Figure 3 Enlarged structural view of Part II; Figure 11 for Figure 7 Enlarged structural view of Part III.
[0016] The components are as follows: 1. Support frame; 2. Conveyor table; 3. Clamp-type conveyor mechanism; 4. Transmission assembly; 5. Transmission roller; 6. Polyurethane conveyor belt; 7. Drive assembly; 8. Drive motor; 9. Drive shaft; 10. Limiting assembly; 11. Inner fixed platform; 12. Groove; 13. Cylinder; 14. Guide slide; 15. Limiting plate; 16. Flexible bearing mechanism; 17. Kneading support assembly; 18. Circular groove; 19. Kneading support shaft; 20. Kneading support frame; 21. Torque spring; 22. Base support assembly; 23. Hinge shaft; 24. Support slide plate; 25. Adjustable pressure measuring mechanism; 26. Guide assembly; 27. Guide sleeve; 28. Guide shaft; 29. Pressure measuring assembly; 30. Pressure measuring plate; 31. Pressure measuring spring; 32. Pressure measuring ball; 33. Pressure sensor; 34. Controller.
[0017] The accompanying drawings are provided to further understand the present solution and form part of the specification. They are used together with the embodiments of the present solution to explain the present solution and do not constitute a limitation thereof. Detailed Implementation
[0018] The technical solutions in this embodiment will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this solution, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this solution without creative effort are within the scope of protection of this solution.
[0019] In the description of this solution, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this solution and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this solution.
[0020] like Figures 1-11 As shown, the proposed solution provides a containerized oil transfer mechanism for food processing, comprising a support frame 1, a conveyor platform 2, a clamp-type conveyor mechanism 3, a flexible bearing mechanism 16, and an adjustable pressure measuring mechanism 25. The conveyor platform 2 is mounted on the upper wall of the support frame 1. The clamp-type conveyor mechanism 3 includes a transmission component 4, a drive component 7, and a limiting component 10. The transmission component 4 is mounted on the conveyor platform 2, the drive component 7 is mounted on the side wall of the conveyor platform 2, and the limiting component 10 is mounted on the upper wall of the conveyor platform 2. The flexible bearing mechanism 16 includes a kneading support component 17 and a bottom support component 22. The kneading support component 17 is mounted on the side wall of the limiting component 10, and the bottom support component 22 is mounted at the end of the kneading support component 17 away from the limiting component 10. The adjustable pressure measuring mechanism 25 includes a guide component 26 and a pressure measuring component 29. The guide component 26 is mounted on the upper wall of the limiting component 10, and the pressure measuring component 29 is mounted on the guide component 26.
[0021] The transmission assembly 4 includes transmission rollers 5 and a polyurethane conveyor belt 6. The transmission rollers 5 are symmetrically arranged at both ends of the conveyor table 2 and are rotatably connected to the conveyor table 2. The polyurethane conveyor belt 6 is wound between the transmission rollers 5 and meshes with the transmission rollers 5. The drive assembly 7 includes a drive motor 8 and a drive shaft 9. The drive motor 8 is located on one side wall of the conveyor table 2, and the drive shaft 9 passes through the conveyor table 2 and is located between the transmission rollers 5 and the output end of the drive motor 8. The limiting assembly 10 includes an inner fixing platform 11 and a groove 1. 2. Cylinder 13, guide slide 14 and limiting plate 15. The inner fixed platform 11 is located on the inner wall of the conveyor platform 2 inside the polyurethane conveyor belt 6. The groove 12 is located on the side walls at both ends of the inner fixed platform 11 and is through-grooved. The cylinder 13 is symmetrically located at both ends of the groove 12. The guide slide 14 is located on the upper wall of the conveyor platform 2 near the cylinder 13. The limiting plate 15 is slidably located on the end of the guide slide 14 near the cylinder 13, and the bottom of the limiting plate 15 is connected to the guide slide 14. The upper part of the limiting plate 15 is located on both sides of the polyurethane conveyor belt 6.
[0022] The kneading support assembly 17 includes a circular groove 18, a kneading support shaft 19, a kneading support frame 20, and a torque spring 21. Multiple sets of the circular grooves 18 are symmetrically arranged on both sides of the inner fixed platform 11. The kneading support shaft 19 is located on the inner wall of the circular groove 18. The kneading support frame 20 is rotatably located at the end of the kneading support shaft 19 away from the inner fixed platform 11. The torque spring 21 is located on the kneading support frame 20 outside the kneading support shaft 19 between the circular grooves 18. The bottom support assembly 22 includes a hinge shaft 23 and a support slide plate 24. The hinge shaft 23 is located at the end of the kneading support frame 20 near the polyurethane conveyor belt 6. The support slide plate 24 is hinged to the end of the hinge shaft 23 away from the kneading support frame 20, and the side of the support slide plate 24 away from the hinge shaft 23 is in contact with the bottom wall of the polyurethane conveyor belt 6.
[0023] The guiding assembly 26 includes a guide sleeve 27 and a guide shaft 28. Multiple sets of the guide sleeves 27 are disposed on the upper wall of the inner fixed platform 11, and the guide shaft 28 is slidably disposed inside the guide sleeves 27. The pressure measuring assembly 29 includes a pressure measuring plate 30, a pressure measuring spring 31, a pressure measuring ball 32, and a pressure sensor 33. The pressure measuring plate 30 is disposed on the upper wall of the guide shaft 28. The pressure measuring spring 31 is disposed between the pressure measuring plate 30 and the guide sleeve 27 on the outside of the guide shaft 28. The pressure measuring ball 32 is slidably disposed on the upper wall of the pressure measuring plate 30. The pressure sensor 33 is disposed through the bottom wall of the guide sleeve 27.
[0024] The support frame 1 is equipped with a controller 34 on its side wall.
[0025] The controller 34 is electrically connected to the drive motor 8, the pressure sensor 33 and the cylinder 13 respectively.
[0026] In actual use, in the initial state, the support plate 24 is in contact with the bottom wall of the polyurethane conveyor belt 6. The support plate 24 is made of low-friction plate material. The pressure spring 31 is in the extended state. The pressure ball 32 is in contact with the bottom wall of the polyurethane conveyor belt 6. The output end of the cylinder 13 is in the shortened state. The distance between the limit plates 15 is at the minimum value. The support plate 24 uses the torsional elasticity of the torque spring 21 and the pressure measuring ball 32 to flexibly support the polyurethane conveyor belt 6. The pressure measuring ball 32 rolls along the polyurethane conveyor belt 6. The support plate 24 and the pressure measuring ball 32 are set below the bottom wall of the polyurethane conveyor belt 6, respectively pressing the polyurethane conveyor belt 6 upward. The polyurethane conveyor belt 6 presents an upward slightly arched state due to elastic deformation. The conveyor 2 is connected to the edible oil filling and capping production line. After filling, the oil drums are conveyed to the upper wall of the polyurethane conveyor belt 6. The controller 34 controls the drive motor 8 to start. The output end of the drive motor 8 drives the transmission roller 5 at one end of the conveyor 2 to rotate through the drive shaft 9. The transmission roller 5 meshes with the polyurethane conveyor belt 6. The transmission roller 5 drives the polyurethane conveyor belt 6 to rotate and convey the oil drums. When the polyurethane conveyor belt 6 rotates around the transmission roller 5, it slides along the upper wall of the support slide plate 24. The controller 34 controls the cylinder 13 to start. The output end of the cylinder 13 extends or shortens, which drives the limit plate 15 to move relative to the guide slide 14, limiting the oil drums to shift left and right when conveyed by the polyurethane conveyor belt 6, so that the drum body keeps running on the center trajectory of the polyurethane conveyor belt 6. When a small oil drum enters the upper wall of the polyurethane conveyor belt 6, the small oil drum uses its own weight to press down on the polyurethane conveyor belt 6 and the pressure measuring ball 32. On the one hand, the polyurethane conveyor belt 6 presses down and pushes the support slide plate 24. The support slide plate 24 uses the deformation of the torque spring 21 to support the weight of the small oil drum. On the other hand, the polyurethane conveyor belt 6 presses down on the pressure measuring ball 32. The pressure measuring ball 32 uses the elasticity of the pressure measuring spring 31 to support the weight of the small oil drum, increasing the adhesion and pressing force between the bottom of the small oil drum and the polyurethane conveyor belt 6. This increases the friction between the small oil drum and the contact surface of the polyurethane conveyor belt 6, reduces the impact of the small oil drum dripping onto the upper wall of the polyurethane conveyor belt 6 on the transportation status, avoids slippage between the small oil drum and the polyurethane conveyor belt 6, and thus improves the transportation efficiency of the small oil drum. As the weight of the oil drum entering the upper wall of the polyurethane conveyor belt 6 increases, the large oil drum presses down on the polyurethane conveyor belt 6 and the pressure measuring ball 32, causing the polyurethane conveyor belt 6 to tend towards a horizontal state. The polyurethane conveyor belt 6 uses the torsional elastic deformation of the torque spring 21 to press down on the support slide plate 24. The support slide plate 24 rotates around one end of the kneading support frame 20 via the hinge shaft 23. The kneading support frame 20 rotates along one end of the kneading support shaft 19. The polyurethane conveyor belt 6 presses down on the pressure measuring ball 32. The polyurethane conveyor belt 6 uses the elastic deformation of the pressure measuring spring 31 to press down on the guide shaft 28. The guide shaft 28 slides down along the guide sleeve 27 to squeeze the detection end of the pressure sensor 33. When the pressure sensor 33 detects the pressure threshold, it feeds back to the controller 34 (the pressure threshold can be preset according to different specifications of oil drums). The output end of the corresponding control cylinder 13 of the controller 34 extends, and the output end of the cylinder 13 pushes the limit plate 15 to move in the opposite direction along the guide slide 14, widening the distance between the limit plates 15, thereby limiting the transportation of the large oil drum. The above operation can be repeated for the next use.
[0027] It should be noted that, in this document, 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.
[0028] The present solution and its implementation methods have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present solution; the actual structure is not limited to this. In conclusion, if a person skilled in the art, inspired by this description, designs a similar structure and embodiment without departing from the inventive intent of this solution, such design should fall within the protection scope of this solution.
Claims
1. A drum oil conveying mechanism for food processing, comprising a support frame and a conveying table, characterized in that: It also includes a clamp-type conveying mechanism, a flexible bearing mechanism, and an adjustable pressure measuring mechanism. The conveying platform is located on the upper wall of the support frame. The clamp-type conveying mechanism includes a transmission component, a drive component, and a limiting component. The transmission component is located on the conveying platform, the drive component is located on the side wall of the conveying platform, and the limiting component is located on the upper wall of the conveying platform. The flexible bearing mechanism includes a kneading support component and a bottom support component. The kneading support component is located on the side wall of the limiting component, and the bottom support component is located at the end of the kneading support component away from the limiting component. The adjustable pressure measuring mechanism includes a guide component and a pressure measuring component. The guide component is located on the upper wall of the limiting component, and the pressure measuring component is located on the guide component. The limiting components include an inner retaining platform; The kneading support assembly includes a circular groove, a kneading support shaft, a kneading support frame, and a torque spring. Multiple circular grooves are symmetrically arranged on both sides of the inner fixed platform. The kneading support shaft is located on the inner wall of the circular groove. The kneading support frame is rotatably located at the end of the kneading support shaft away from the inner fixed platform. The torque spring is located on the kneading support frame outside the kneading support shaft between the circular grooves. The transmission components include a polyurethane conveyor belt; The base assembly includes a hinge shaft and a support slide plate. The hinge shaft is located at the end of the kneading support frame near the polyurethane conveyor belt, and the support slide plate is hinged at the end of the hinge shaft away from the kneading support frame.
2. The drum oil conveying mechanism for food processing according to claim 1, characterized in that: The transmission assembly also includes transmission rollers, which are symmetrically arranged at both ends of the conveyor table and rotatably connected to the conveyor table. The polyurethane conveyor belt is wound between the transmission rollers.
3. The drum oil conveying mechanism for food processing according to claim 2, characterized in that: The drive assembly includes a drive motor and a drive shaft. The drive motor is located on one side wall of the conveyor table, and the drive shaft passes through the conveyor table and is located between the transmission roller and the output end of the drive motor.
4. The drum oil conveying mechanism for food processing according to claim 1, characterized in that: The limiting assembly includes a groove, a cylinder, a guide slide, and a limiting plate. The inner fixed platform is located on the inner wall of the conveyor platform inside the polyurethane conveyor belt. The groove is located on the side walls at both ends of the inner fixed platform and is through-type. The cylinder is symmetrically located at both ends of the groove. The guide slide is located on the upper wall of the conveyor platform near the cylinder. The limiting plate is slidably located on the guide slide near the cylinder, and the bottom of the limiting plate is connected to the guide slide. The upper part of the limiting plate is located on both sides of the polyurethane conveyor belt.
5. The drum oil conveying mechanism for food processing according to claim 2, characterized in that: The polyurethane conveyor belt engages with the transmission rollers.
6. The drum oil conveying mechanism for food processing according to claim 1, characterized in that: The side of the support slide away from the hinge axis is in contact with the bottom wall of the polyurethane conveyor belt.
7. The drum oil conveying mechanism for food processing according to claim 1, characterized in that: The guiding assembly includes a guide sleeve and a guide shaft. Multiple sets of the guide sleeves are disposed on the inner fixed platform wall, and the guide shaft is slidably disposed inside the guide sleeve.
8. The drum oil conveying mechanism for food processing according to claim 7, characterized in that: The pressure measuring assembly includes a pressure measuring plate, a pressure measuring spring, a pressure measuring ball, and a pressure sensor. The pressure measuring plate is located on the upper wall of the guide shaft, the pressure measuring spring is located between the pressure measuring plate and the guide sleeve on the outside of the guide shaft, the pressure measuring ball rolls on the upper wall of the pressure measuring plate, and the pressure sensor is located through the bottom wall of the guide sleeve.
9. The drum oil conveying mechanism for food processing according to claim 1, characterized in that: The support frame is equipped with a controller on its side wall.