Oil flavoring, slitting and oiling integrated device

CN122642437APending Publication Date: 2026-08-28SHANDONG HUIFA FOODS
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Patent Information

Application Number
CN202610775537.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-01
Publication Date
2026-08-28

AI Technical Summary

Technical Problem

[0005]本发明的目的在于提供油香分切涂油一体设备,以解决油香生产中,人工涂抹油液劳动强度大且涂抹效果不均匀,简易自动化涂抹装置与切块设备协同效果差,涂抹时机不当,油液补充不稳定,导致设备运行时容易发生故障,且维护成本较高的技术问题

Benefits of technology

1、本发明通过设计存储组件、压力组件和涂抹组件,随着切割器的下移,一号压力筒同步延展,抽取二号压力筒内空气,二号压力筒随之收缩上移,带动压力组件同步抬升,二号压力筒通过连接板带动滑杆上移时,在弹簧的作用下,密封筒、锥形筒以及下方的连接壳将先一步上移,直至连接壳的上方与对接槽贴合卡死,此时,滑杆持续上移,从而抽取密封筒下方以及安装管内空气,使得储油箱内油液以及连接壳内壁底部的油液被同步抽吸至密封筒内暂存,而在切割器上移复位瞬间,一号压力筒反向充气,推动二号压力筒膨胀,带动滑杆下移,密封筒内气压升高,迫使暂存油液进入连接壳内,而单向阀的设计可以有效避免油液倒流,确保油液单向流入连接壳内,使得大量油液快速进入连接壳内,持续供给连接壳内的涂抹刷,确保位于连接壳外的涂抹刷表面始终浸润充足油液,均匀覆盖面团表面,在切割器运行过程中,切割和刷油动作紧密配合,当切割器上移完成切割的瞬间,压力组件就将油液注入涂抹组件,涂抹刷随即下移进行刷油处理,整个过程无需额外的人工操作或等待时间,实现了切割与刷油的一体化、自动化流程,大幅缩短了单个油香面团的生产周期,显著提高了整体生产效率,能够满足大规模生产的需求,切割器下移完成切割后会长时间停留在上方等待下方面团移动再切割,而涂抹刷与之相反,长时间停留在面团表面,仅在两个面团之间的空隙间隔短暂上移补充油液,这种设计充分利用了设备运行的时间差,使切割和刷油两个环节在不同时间段有序进行,减少了设备的空闲等待时间,进一步提升了生产效率。

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Abstract

The application discloses oil fragrance cutting and oiling integrated equipment and relates to the technical field of food processing equipment, and aims to solve the technical problems of high labor intensity and uneven application effect of manual oil application in oil fragrance production, poor coordination effect of simple automatic application device and cutting equipment, improper application time, unstable oil supplement, easy equipment failure during operation and high maintenance cost, and the application comprises a cutting mechanism and an oiling mechanism. In the operation process, the cutting and oiling actions are closely matched, the integration and automatic process of cutting and oiling are realized, the production cycle of a single oil fragrance dough is greatly shortened, the overall production efficiency is significantly improved, the demand of large-scale production can be met, the application brush is opposite to the oiling brush, stays on the dough surface for a long time, only temporarily moves up to supplement oil in the gap interval between two doughs, the idle waiting time of the equipment is reduced, and the production efficiency is further improved.
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Description

Technical Field

[0001] This invention relates to the field of pasta processing equipment technology, and more specifically, to an integrated equipment for cutting and coating pasta. Background Technology

[0002] In the traditional oil-fried dough processing industry, the cutting equipment is a key link that has a significant impact on the production efficiency and quality of oil-fried dough. The existing oil-fried dough cutting equipment is relatively simple in function, mainly focusing on cutting dough into blocks of a specified size to meet the basic needs of subsequent processing.

[0003] In actual production, to enhance the taste and flavor of the dough and prevent it from sticking together, a layer of oil is usually evenly applied to the surface of the cut dough. Currently, this operation is mostly done manually. Manual oil application is not only labor-intensive, requiring a large additional workforce and increasing production costs, but also inefficient, making it difficult to meet the needs of large-scale production. Furthermore, manual application makes it difficult to ensure the uniformity of the oil application; differences in the amount of oil on different dough surfaces affect the final quality stability of the dough, leading to inconsistent product quality. Some companies have attempted to use simple automated coating devices in conjunction with cutting equipment, but these devices lack an effective coordination mechanism with the cutting equipment. The coating device often operates independently and cannot precisely coordinate with the cutting action of the cutting equipment. It cannot coat the dough after cutting in real time during the cutting process, which easily leads to problems with improper coating timing. Either the coating is applied too early, causing the oil to be squeezed out during the cutting process, or the coating is applied too late, affecting production efficiency. Moreover, the existing coating device is also inadequate in terms of oil replenishment. It is difficult to replenish the coating components in a timely and accurate manner according to the actual production situation, resulting in unstable oil supply during the coating process and affecting the coating effect. In addition, the existing equipment is not compact and reasonable in structural design, and the linkage between the components is poor, resulting in the overall operation of the equipment is not smooth, prone to failure, and has high maintenance costs.

[0004] In view of this, we propose an integrated oil-splitting and oiling equipment. Summary of the Invention

[0005] The purpose of this invention is to provide an integrated oil-coating and slicing equipment for sesame oil, in order to solve the technical problems in sesame oil production, such as high labor intensity and uneven coating effect when manually applying oil, poor coordination between simple automated coating devices and cutting equipment, improper coating timing, unstable oil replenishment, easy failure during equipment operation, and high maintenance costs.

[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: an integrated oil-slicing and oiling device, comprising a cutting mechanism and an oiling mechanism, wherein the cutting mechanism and the oiling mechanism are connected; The slitting mechanism includes a base, a conveyor table disposed above the base, a conveyor connected to the base, a winding device and a driver located above the base, a cutter, and a conveyor belt. The driver is connected to the cutter below, and the conveyor belt is located above the base. The oiling mechanism includes a pressure cylinder, a connecting assembly connected to the pressure cylinder, a storage assembly located below the connecting assembly, a connecting plate disposed above the storage assembly, a pressure assembly, multiple elastic assemblies, a sealing assembly connected to the multiple elastic assemblies, and an applicator assembly. The multiple elastic assemblies are all located within the storage assembly, the pressure assembly is located within the storage assembly, and the applicator assembly is located below the storage assembly.

[0007] In operation, the cutting and oiling actions of this invention are closely coordinated. The moment the cutter moves upward to complete the cutting, the pressure component injects oil into the coating component, and the coating brush then moves downward to apply the oil. The entire process requires no additional manual operation or waiting time, realizing an integrated and automated process of cutting and oiling. This significantly shortens the production cycle of a single oil-flavored dough, greatly improves overall production efficiency, and can meet the needs of large-scale production. After the cutter moves downward to complete the cutting, it stays on top for a long time to wait for the dough below to move before cutting again. In contrast, the coating brush stays on the surface of the dough for a long time, only briefly moving upward to replenish the oil in the gap between two doughs. This design makes full use of the time difference in equipment operation, allowing the cutting and oiling processes to be carried out in an orderly manner at different times, reducing the idle waiting time of the equipment, and further improving production efficiency.

[0008] Preferably, the upper part of the base is fixedly connected to the conveyor belt, and the upper part of the base is fixedly connected to the conveyor table, the conveyor, the winding machine and the driver respectively. The conveyor table, the conveyor, the winding machine and the driver are all located above the conveyor belt, and the lower part of the driver is connected to the cutter for transmission. One side of the driver is fixedly connected to the No. 1 pressure cylinder, and the driver is fixedly connected to the No. 1 pressure cylinder and the connecting assembly respectively.

[0009] Preferably, one end of the first pressure cylinder is connected to the connecting component, the bottom end of the connecting component is fixedly connected to the connecting plate and the storage component respectively, the bottom of the connecting plate is fixedly connected to multiple pressure components, the bottom end of the pressure component passes through the storage component and is connected to the coating component, the storage component is fixedly connected to multiple elastic components, and the multiple elastic components are correspondingly connected to multiple sealing components.

[0010] Preferably, the connecting assembly includes a bracket, with two reinforcing rods fixedly connected to the lower part of the bracket, and a second pressure cylinder fixedly connected to the lower part of the bracket; The bottom end of the second pressure cylinder is fixedly connected to the top of the connecting plate, and the bracket is fixedly connected to one side of the driver.

[0011] Preferably, the storage component includes an oil tank, an oil filling hole is provided on one side of the oil tank, an isolation plate is fixedly connected inside the oil tank, a docking groove is provided below the isolation plate, and a plurality of through holes are provided above the isolation plate, each of the plurality of through holes being provided with a sealing ring. The upper part of the oil storage tank is fixedly connected to two reinforcing rods, and the upper part of the isolation plate is fixedly connected to multiple elastic components.

[0012] Preferably, the pressure assembly includes a sealing cylinder, a one-way valve is provided inside the sealing cylinder, an installation rod is fixedly connected to the lower part of the sealing cylinder, a conical cylinder is fixedly connected to the upper part of the sealing cylinder, a sliding cylinder is fixedly connected to the upper part of the conical cylinder, and the sealing cylinder is connected to the sliding cylinder through the conical cylinder.

[0013] Preferably, a sliding rod is slidably connected inside the sliding cylinder, a piston plate is slidably connected inside the sealing cylinder, the upper part of the piston plate is fixedly connected to the bottom end of the sliding rod, a first spring is fixedly connected to the piston plate, the other end of the first spring is fixedly connected to the inner wall of the conical cylinder, and an isolation ring is fixedly connected inside the sealing cylinder. The top end of the slide rod passes through the oil reservoir and is fixedly connected to the connecting plate, while the bottom end of the mounting rod is fixedly connected inside the coating assembly.

[0014] Preferably, the elastic component includes a sealing shell, a telescopic rod is fixedly connected to one side of the inner wall of the sealing shell, an installation ring is fixedly connected to the outside of the telescopic rod, a second spring is fixedly connected to one side of the installation ring, and the other end of the second spring is fixedly connected to the sealing shell. The sealing shell is fixedly connected above the isolation plate.

[0015] Preferably, the sealing assembly includes a sealing block, which is semi-circular, a sealing plate is fixedly connected to one side of the sealing block, a tapered hole is provided on one side of both the sealing plate and the sealing block, and an mounting block is fixedly connected to the top of the sealing block; The other side of the mounting block is fixedly connected to one end of the telescopic rod, and both the sealing block and the sealing plate overlap the outside of the sealing cylinder.

[0016] Preferably, the application assembly includes a connecting shell, and a plurality of application brushes are fixedly connected to the lower part of the inner wall of the connecting shell; The upper part of the connecting shell is snapped into the docking groove, and the bottom end of the mounting tube is fixedly connected to the lower part of the inner wall of the connecting shell. The mounting tube is connected to the connecting shell through a through hole.

[0017] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention, through the design of a storage component, a pressure component, and an application component, allows the first pressure cylinder to extend synchronously as the cutter moves downward, drawing air from the second pressure cylinder. The second pressure cylinder then contracts and moves upward, causing the pressure component to rise synchronously. When the second pressure cylinder moves upward via the connecting plate and the sliding rod, the sealing cylinder, the conical cylinder, and the lower connecting shell will move upward first under the action of the spring, until the top of the connecting shell is fitted and locked into the docking groove. At this time, the sliding rod continues to move upward, drawing air from below the sealing cylinder and inside the installation pipe. This allows the oil in the oil storage tank and the oil at the bottom of the inner wall of the connecting shell to be simultaneously drawn into the sealing cylinder for temporary storage. At the moment the cutter moves upward and resets, the first pressure cylinder is inflated in reverse, pushing the second pressure cylinder to expand and causing the sliding rod to move downward. The air pressure inside the sealing cylinder increases, forcing the temporarily stored oil into the connecting shell. The one-way valve design effectively prevents oil backflow, ensuring that the oil flows unidirectionally into the connecting shell, allowing a large amount of oil to quickly enter the connecting shell and continuously supply it. The application brush ensures that its surface, located outside the connecting shell, is always fully saturated with oil, evenly covering the dough surface. During the operation of the cutter, the cutting and oiling actions are closely coordinated. The moment the cutter moves upward to complete the cut, the pressure component injects oil into the application component, and the application brush immediately moves downward to apply oil. The entire process requires no additional manual operation or waiting time, realizing an integrated and automated process of cutting and oiling. This significantly shortens the production cycle of a single oil-flavored dough, significantly improves overall production efficiency, and can meet the needs of large-scale production. After the cutter moves downward to complete the cut, it stays on top for a long time, waiting for the dough below to move before cutting again. The application brush, on the other hand, stays on the dough surface for a long time, only briefly moving upward to replenish oil in the gap between two doughs. This design makes full use of the time difference in equipment operation, allowing the cutting and oiling processes to be carried out in an orderly manner at different times, reducing the idle waiting time of the equipment, and further improving production efficiency.

[0018] 2. This invention also incorporates an elastic component and a sealing component. As the sealing cylinder moves upward, the conical cylinder above it enters and passes through the isolation plate, squeezing the sealing blocks and sealing plates on both sides. This causes the sealing blocks and sealing plates to push the elastic component to contract. At this time, the sealing ring and the sealing cylinder tightly adhere to the isolation plate, forming a double sealing structure that effectively blocks the leakage path of oil towards the conveying table. As the sealing cylinder moves downward and resets, the isolation plate and sealing ring scrape and clean the surface of the sealing cylinder to ensure no residual oil remains. As the sealing cylinder detaches from the isolation plate, the sealing blocks and sealing plates reset under the action of the spring force, restoring the initial sealing state and completing the sealing of the through hole above the isolation plate. The entire sealing and oil supply cycle is completed within milliseconds. The precise engagement and tight timing of each component ensure that every oil brushing action is strictly synchronized with the dough displacement, greatly reducing oil loss.

[0019] 3. The present invention also designs a pressure component. After use, the cutter needs to remain in a downward position to await the next start. At this time, the sealing cylinder returns to the initial height, the second pressure cylinder is fully retracted, the slide bar falls back to the highest point, and the sealing cylinder remains in the state of drawing oil from the oil tank and the connecting shell, so as to avoid the oil accumulating in the connecting shell, making it difficult for the brush to continuously draw oil from the connecting shell, resulting in excessive brushing or dripping. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the slitting mechanism structure of the present invention; Figure 3 This is a schematic diagram of the cutter structure of the present invention; Figure 4 This is a schematic diagram of the oiling mechanism of the present invention; Figure 5 This is a schematic cross-sectional view of the storage component of the present invention; Figure 6 This is a schematic cross-sectional view of the elastic component of the present invention; Figure 7 This is a schematic cross-sectional view of the application component of the present invention; Figure 8 For the present invention Figure 7 Enlarged structural diagram at point A; Figure 9 This is a schematic cross-sectional view of the pressure component of the present invention.

[0021] Explanation of the labels in the diagram: 1. Slitting mechanism; 2. Oiling mechanism; 11. Base; 12. Conveyor table; 13. Conveyor; 14. Winder; 15. Driver; 16. Cutter; 17. Conveyor belt; 21. Pressure cylinder No. 1; 22. Connecting assembly; 23. Storage assembly; 24. Connecting plate; 25. Pressure assembly; 26. Elastic assembly; 27. Sealing assembly; 28. Coating assembly; 221. Bracket; 222. Reinforcing rod; 223. Pressure cylinder No. 2; 231. Oil reservoir; 232. Oil filling hole; 233. Isolation plate; 234. Connecting groove; 235. Sealing ring; 251. Sealing cylinder; 252. Check valve; 253. Mounting pipe; 254. Conical cylinder; 255. Slide cylinder; 256. Slide rod; 257. Piston plate; 258. No. 1 spring; 259. Isolation ring; 261. Sealing shell; 262. Telescopic rod; 263. Mounting ring; 264. No. 2 spring; 271. Sealing block; 272. Sealing plate; 273. Tapered hole; 274. Mounting block; 281. Connecting shell; 282. Application brush. Detailed Implementation

[0022] like Figures 1 to 9 As shown, the oil-slicing and oiling integrated equipment of the present invention includes a cutting mechanism 1 and an oiling mechanism 2, wherein the cutting mechanism 1 and the oiling mechanism 2 are connected. The slitting mechanism 1 includes a base 11, a conveyor 12 disposed above the base 11, a conveyor 13 connected to the base 11, a winding device 14 and a driver 15 located above the base 11, a cutter 16, and a conveyor belt 17. The driver 15 is connected to the cutter 16 below, and the conveyor belt 17 is located above the base 11. The oiling mechanism 2 includes a first pressure cylinder 21, a connecting assembly 22 connected to the first pressure cylinder 21, a storage assembly 23 located below the connecting assembly 22, a connecting plate 24 disposed above the storage assembly 23, a pressure assembly 25, multiple elastic components 26, a sealing assembly 27 connected to the multiple elastic components 26, and an applicator 28. The multiple elastic components 26 are all located within the storage assembly 23, the pressure assembly 25 is also located within the storage assembly 23, and the applicator 28 is located below the storage assembly 23. The design of the storage assembly 23, pressure assembly 25, and applicator 28 is optimized. 8. During the operation of the cutter 16, the cutting and oiling actions are closely coordinated. The moment the cutter 16 moves upward to complete the cutting, the pressure component 25 injects oil into the coating component 28, and the coating brush 282 then moves downward to perform oiling. The entire process requires no additional manual operation or waiting time, realizing an integrated and automated process of cutting and oiling. This significantly shortens the production cycle of a single oil-flavored dough and significantly improves the overall production efficiency, meeting the needs of large-scale production. After the cutter 16 moves downward to complete the cutting, it will stay on top for a long time to wait for the dough below to move before cutting again. In contrast, the coating brush 282 stays on the surface of the dough for a long time, only moving upward briefly to replenish the oil in the gap between two doughs. This design makes full use of the time difference in equipment operation, allowing the cutting and oiling processes to be carried out in an orderly manner at different times, reducing the idle waiting time of the equipment and further improving production efficiency.

[0023] In an embodiment of the present invention, the upper part of the base 11 is fixedly connected to the conveyor belt 17, and the upper part of the base 11 is fixedly connected to the conveyor table 12, the conveyor 13, the winding device 14, and the driver 15, respectively. The conveyor table 12, the conveyor 13, the winding device 14, and the driver 15 are all located above the conveyor belt 17. The lower part of the driver 15 is drivenly connected to the cutter 16. One side of the driver 15 is fixedly connected to the first pressure cylinder 21. The driver 15 is fixedly connected to the first pressure cylinder 21 and the connecting assembly 22, respectively. One end of the first pressure cylinder 21 is connected to the connecting assembly 22. The bottom end of the connecting assembly 22 is fixedly connected to the connecting plate 24 and the storage assembly 23, respectively. The lower part of the connecting plate 24 is fixedly connected to multiple pressure components 25. The bottom end of the pressure components 25 passes through the storage assembly 23 and is connected to the coating assembly 28. The storage assembly 23 is fixedly connected to multiple elastic components 26. The multiple elastic components 26 are correspondingly connected to multiple sealing components 27. By designing the elastic components 26 and the sealing components 27, the sealing cylinder... As 251 moves upward, the conical cylinder 254 above the sealing cylinder 251 enters and passes through the isolation plate 233 first, squeezing the sealing blocks 271 and sealing plates 272 on both sides. This causes the sealing blocks 271 and sealing plates 272 to push the elastic component 26 to contract. At this time, relying on the tight fit between the sealing ring 235 and the sealing cylinder 251 and the isolation plate 233, a double sealing structure is formed, effectively blocking the leakage path of oil towards the conveying platform 12. As the sealing cylinder 251 moves downward and resets, the isolation plate 233 and... The sealing ring 235 scrapes and cleans the surface of the sealing cylinder 251 to ensure that no residual oil remains. As the sealing cylinder 251 detaches from the isolation plate 233, the sealing block 271 and the sealing plate 272 are reset under the action of the spring force, restoring the initial sealing state and completing the sealing of the through hole above the isolation plate 233. The entire sealing and oil supply cycle is completed in milliseconds. The precise engagement of each component and the tight timing ensure that each oil brushing action is strictly synchronized with the displacement of the dough, greatly reducing the loss of oil.

[0024] In an embodiment of the present invention, the connecting component 22 includes a bracket 221, with two reinforcing rods 222 fixedly connected to the lower part of the bracket 221. A second pressure cylinder 223 is fixedly connected to the lower part of the bracket 221, and the bottom end of the second pressure cylinder 223 is fixedly connected to the upper part of the connecting plate 24. The bracket 221 is fixedly connected to one side of the driver 15. The storage component 23 includes an oil tank 231, with an oil filling hole 232 on one side of the oil tank 231. An isolation plate 233 is fixedly connected inside the oil tank 231. A docking groove 234 is provided below the isolation plate 233, and several through holes are provided above the isolation plate 233. Each of the several through holes is provided with a sealing ring. 235. The upper part of the oil tank 231 is fixedly connected to two reinforcing rods 222, and the upper part of the isolation plate 233 is fixedly connected to multiple elastic components 26. By designing the pressure component 25, after use, the cutter 16 needs to remain in a downward position to await the next start. At this time, the sealing cylinder 251 returns to the initial height, the second pressure cylinder 223 is fully retracted, the slide bar 256 falls back to the highest point, and the sealing cylinder 251 remains in the state of drawing oil from the oil tank 231 and the connecting shell 281 to avoid the oil accumulating in the connecting shell 281, making it difficult for the brush 282 to continuously draw oil from the connecting shell 281, resulting in excessive brushing or dripping.

[0025] In another embodiment of the present invention, the pressure assembly 25 includes a sealing cylinder 251, a one-way valve 252 disposed inside the sealing cylinder 251, an installation rod fixedly connected to the lower part of the sealing cylinder 251, a conical cylinder 254 fixedly connected to the upper part of the sealing cylinder 251, a sliding cylinder 255 fixedly connected to the upper part of the conical cylinder 254, the sealing cylinder 251 communicating with the sliding cylinder 255 through the conical cylinder 254, a sliding rod 256 slidably connected inside the sliding cylinder 255, and a piston plate 257 slidably connected inside the sealing cylinder 251. The top of the piston plate 257 is fixedly connected to the bottom of the slide rod 256. A first spring 258 is fixedly connected to the piston plate 257. The other end of the first spring 258 is fixedly connected to the inner wall of the conical cylinder 254. An isolation ring 259 is fixedly connected inside the sealing cylinder 251. The top of the slide rod 256 passes through the oil reservoir 231 and is fixedly connected to the connecting plate 24. The bottom of the mounting rod is fixedly connected inside the coating assembly 28. The elastic assembly 26 includes a sealing shell 261. A telescopic rod 262 is fixedly connected to one side of the inner wall of the sealing shell 261. A mounting ring 263 is fixedly connected to the outside of the rod 262. A second spring 264 is fixedly connected to one side of the mounting ring 263. The other end of the second spring 264 is fixedly connected to the sealing shell 261. The sealing shell 261 is fixedly connected above the isolation plate 233. The amount of oil injected is precisely controlled by the pressure component 25. Combined with the uniform application of the brush 282, it can ensure that the amount of oil applied to the surface of each dough is basically the same. This avoids the problem of uneven oil application caused by individual differences when applying manually. This makes the taste and flavor of each dough more consistent, ensuring the stability of product quality and enhancing the market competitiveness of the product. During the cutting process, due to the precise timing of application, there will be no situation where the oil is squeezed out during cutting due to premature application. At the same time, the one-way valve 252 design in the pressure component 25 ensures that the oil can only flow into the application component 28 in one direction and will not return to the storage component 23. This ensures the effective use of the oil and further ensures the coating effect of the oil on the surface of the dough, which is conducive to maintaining the stability of product quality. This device automates the painting process, eliminating the need for manual operation, significantly reducing manpower requirements and lowering labor costs for businesses. Furthermore, the various components within the device achieve close linkage and collaborative work through pressure cylinders, synchronization components, and other means. The more compact and rational structural design reduces the probability of equipment failure, lowers maintenance costs and downtime, and improves the overall efficiency of the equipment.

[0026] In another embodiment of the present invention, the sealing assembly 27 includes a sealing block 271, which is semi-circular. A sealing plate 272 is fixedly connected to one side of the sealing block 271. A tapered hole 273 is provided on one side of both the sealing plate 272 and the sealing block 271. An mounting block 274 is fixedly connected to the top of the sealing block 271. The other side of the mounting block 274 is fixedly connected to one end of the telescopic rod 262. The sealing block 271 and the sealing plate 272 overlap the outside of the sealing cylinder 251. The applicator assembly 28 includes a connecting shell 281. A plurality of applicators 282 are fixedly connected to the lower part of the inner wall of the connecting shell 281. The upper part of the connecting shell 281 is snapped into the docking groove 234. The bottom end of the mounting tube 253 is fixedly connected to the lower part of the inner wall of the connecting shell 281. 253 is connected to the connecting shell 281 through the through hole. The cooperation of the first pressure cylinder 21 and the second pressure cylinder 223 realizes the precise control and transmission of pressure, enabling the synchronous component, pressure component 25 and coating component 28 to work together efficiently. This collaborative mechanism ensures the precise coordination of cutting and oiling actions, making the entire production process smoother and more orderly, improving the controllability and stability of production. The coating brush 282 moves upward briefly in the gap between the two doughs to replenish the oil. It can replenish the oil to the coating component 28 in a timely and accurate manner according to the actual production situation, ensuring the stability of the oil supply during the coating process, avoiding uneven coating or production interruption due to insufficient oil, and further optimizing the production process.

[0027] Working principle: This embodiment provides an integrated oil-slicing and oiling device. When in use, the dough passes through the conveyor table 12, conveyor 13, strip roller 14 and conveyor belt 17 for pre-processing and conveying, and then passes under the cutter 16. At this time, the cutter 16 will quickly press down to accurately slice the dough, and then quickly move up and reset after slicing. As the cutter 16 moves downward, the first pressure cylinder 21 extends synchronously, drawing air from the second pressure cylinder 223. The second pressure cylinder 223 then contracts and moves upward, causing the pressure assembly 25 to rise synchronously. When the second pressure cylinder 223 moves the sliding rod 256 upward via the connecting plate 24, under the action of the spring, the sealing cylinder 251, the conical cylinder 254, and the connecting shell 281 below will move upward first, until the top of the connecting shell 281 is fitted and locked into the mating groove 234. At this time, the sliding rod 256 continues to move upward, thereby drawing air from below the sealing cylinder 251 and inside the mounting tube 253, making... The oil in the oil storage tank 231 and the oil at the bottom of the inner wall of the connecting shell 281 are simultaneously drawn into the sealing cylinder 251 for temporary storage. At the moment when the cutter 16 moves up and resets, the first pressure cylinder 21 is inflated in reverse, pushing the second pressure cylinder 223 to expand, which in turn causes the slide rod 256 to move down. The air pressure in the sealing cylinder 251 increases, forcing the temporarily stored oil into the connecting shell 281. This allows a large amount of oil to quickly enter the connecting shell 281, continuously supplying the coating brush 282 inside the connecting shell 281. This ensures that the surface of the coating brush 282 located outside the connecting shell 281 is always fully moistened with oil and evenly covers the surface of the dough. As the sealing cylinder 251 moves upward, the conical cylinder 254 above the sealing cylinder 251 will enter and pass through the isolation plate 233 first, and squeeze the sealing blocks 271 and sealing plates 272 on both sides, causing the sealing blocks 271 and sealing plates 272 to push the elastic component 26 to contract. At this time, the sealing ring 235 and the sealing cylinder 251 tightly adhere to the isolation plate 233, forming a double sealing structure. When the sealing cylinder 251 moves downward and resets, the isolation plate 233 and the sealing ring 235 will scrape and clean the surface of the sealing cylinder 251. As the sealing cylinder 251 detaches from the isolation plate 233, the sealing blocks 271 and sealing plates 272 reset under the action of spring force, restoring the initial sealing state and completing the sealing of the through hole above the isolation plate 233. After use, the cutter 16 needs to remain in a downward position to await the next start. At this time, the sealing cylinder 251 returns to its initial height, the second pressure cylinder 223 is fully retracted, the slide bar 256 falls back to its highest point, and the sealing cylinder 251 remains in the state of drawing oil from the oil storage tank 231 and the connecting shell 281.

[0028] The embodiments disclosed in this invention are preferred embodiments, but are not limited thereto. Those skilled in the art can easily understand the spirit of this invention based on the above embodiments and make different extensions and variations, but as long as they do not depart from the spirit of this invention, they are all within the protection scope of this invention.

Claims

1. An integrated oil-slicing and oiling equipment, characterized in that, It includes a cutting mechanism (1) and an oiling mechanism (2), wherein the cutting mechanism (1) and the oiling mechanism (2) are connected; The slitting mechanism (1) includes a base (11), a conveyor (12) disposed above the base (11), a conveyor (13) connected to the base (11), a winding device (14) and a driver (15) located above the base (11), a cutter (16) and a conveyor belt (17), wherein the driver (15) is connected to the cutter (16) below, and the conveyor belt (17) is located above the base (11); The oiling mechanism (2) includes a first pressure cylinder (21), a connecting component (22) connected to the first pressure cylinder (21), a storage component (23) located below the connecting component (22), a connecting plate (24) disposed above the storage component (23), a pressure component (25), multiple elastic components (26), a sealing component (27) connected to the multiple elastic components (26), and an applicator (28). The multiple elastic components (26) are all located inside the storage component (23), the pressure component (25) is inside the storage component (23), and the applicator (28) is located below the storage component (23).

2. The integrated oil-slicing and coating equipment according to claim 1, characterized in that, The base (11) is fixedly connected to the conveyor belt (17) above, and the base (11) is fixedly connected to the conveyor table (12), the conveyor (13), the winding machine (14) and the driver (15) above, respectively. The conveyor table (12), the conveyor (13), the winding machine (14) and the driver (15) are all located above the conveyor belt (17). The driver (15) is connected to the cutter (16) below. One side of the driver (15) is fixedly connected to the No. 1 pressure cylinder (21), and the driver (15) is fixedly connected to the No. 1 pressure cylinder (21) and the connecting assembly (22) respectively.

3. The integrated oil-slicing and coating equipment according to claim 2, characterized in that, One end of the first pressure cylinder (21) is connected to the connecting component (22). The bottom end of the connecting component (22) is fixedly connected to the connecting plate (24) and the storage component (23) respectively. The bottom of the connecting plate (24) is fixedly connected to multiple pressure components (25). The bottom end of the pressure component (25) passes through the storage component (23) and is connected to the coating component (28). The storage component (23) is fixedly connected to multiple elastic components (26). The multiple elastic components (26) are correspondingly connected to multiple sealing components (27).

4. The integrated oil-slicing and coating equipment according to claim 3, characterized in that, The connecting assembly (22) includes a bracket (221), two reinforcing rods (222) are fixedly connected to the lower part of the bracket (221), and a second pressure cylinder (223) is fixedly connected to the lower part of the bracket (221). The bottom end of the second pressure cylinder (223) is fixedly connected to the top of the connecting plate (24), and the bracket (221) is fixedly connected to one side of the driver (15).

5. The integrated oil-slicing and coating equipment according to claim 4, characterized in that, The storage component (23) includes an oil tank (231), an oil filling hole (232) is provided on one side of the oil tank (231), an isolation plate (233) is fixedly connected inside the oil tank (231), a docking groove (234) is provided below the isolation plate (233), and a plurality of through holes are provided above the isolation plate (233), and a sealing ring (235) is provided in each of the plurality of through holes; The upper part of the oil storage tank (231) is fixedly connected to two reinforcing rods (222), and the upper part of the isolation plate (233) is fixedly connected to multiple elastic components (26).

6. The integrated oil-slicing and coating equipment according to claim 5, characterized in that, The pressure assembly (25) includes a sealing cylinder (251), a one-way valve (252) is provided inside the sealing cylinder (251), an installation rod is fixedly connected to the lower part of the sealing cylinder (251), a conical cylinder (254) is fixedly connected to the upper part of the sealing cylinder (251), a slide cylinder (255) is fixedly connected to the upper part of the conical cylinder (254), and the sealing cylinder (251) is connected to the slide cylinder (255) through the conical cylinder (254).

7. The integrated oil-slicing and coating equipment according to claim 6, characterized in that, A sliding rod (256) is slidably connected inside the sliding cylinder (255), and a piston plate (257) is slidably connected inside the sealing cylinder (251). The upper part of the piston plate (257) is fixedly connected to the bottom end of the sliding rod (256), and a first spring (258) is fixedly connected to the piston plate (257). The other end of the first spring (258) is fixedly connected to the inner wall of the conical cylinder (254), and an isolation ring (259) is fixedly connected inside the sealing cylinder (251). The top end of the slide bar (256) passes through the oil reservoir (231) and is fixedly connected to the connecting plate (24), and the bottom end of the mounting rod is fixedly connected inside the coating assembly (28).

8. The integrated oil-slicing and coating equipment according to claim 7, characterized in that, The elastic component (26) includes a sealing shell (261), a telescopic rod (262) is fixedly connected to one side of the inner wall of the sealing shell (261), an installation ring (263) is fixedly connected to the outside of the telescopic rod (262), a second spring (264) is fixedly connected to one side of the installation ring (263), and the other end of the second spring (264) is fixedly connected to the sealing shell (261). The sealing shell (261) is fixedly connected above the isolation plate (233).

9. The integrated oil-slicing and coating equipment according to claim 8, characterized in that, The sealing assembly (27) includes a sealing block (271), which is semi-circular. A sealing plate (272) is fixedly connected to one side of the sealing block (271). A tapered hole (273) is provided on one side of both the sealing plate (272) and the sealing block (271). An mounting block (274) is fixedly connected to the top of the sealing block (271). The other side of the mounting block (274) is fixedly connected to one end of the telescopic rod (262), and the sealing block (271) and the sealing plate (272) overlap outside the sealing cylinder (251).

10. The integrated oil-slicing and oiling equipment according to claim 9, characterized in that, The applicator (28) includes a connecting shell (281), and a plurality of applicator brushes (282) are fixedly connected to the lower part of the inner wall of the connecting shell (281). The upper part of the connecting shell (281) is snapped into the docking groove (234), and the bottom end of the mounting tube (253) is fixedly connected to the lower part of the inner wall of the connecting shell (281). The mounting tube (253) is connected to the connecting shell (281) through a through hole.