Automatic plate placing equipment for high-fiber fructose five-kernel moon cakes

By introducing a coating and powdering mechanism into the automatic tray-setting equipment for high-fiber fructose five-nut mooncakes, the problem of frequent tray cleaning has been solved, and automated tray coating and powdering have been achieved, improving production continuity and efficiency and ensuring product quality.

CN121929397APending Publication Date: 2026-04-28山东金德利食品供应链有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
山东金德利食品供应链有限公司
Filing Date
2026-03-30
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

When traditional high-fiber fructose five-nut mooncakes are processed in trays, the cooked glutinous rice flour in the trays tends to solidify, leading to frequent and time-consuming cleaning, and requiring multiple trays, which affects the practicality of production.

Method used

The pallet is conveyed to the covering mechanism by the conveying mechanism. The covering mechanism covers the pallet with film and sprinkles cooked glutinous rice flour into the pallet by the powder sprinkling mechanism. The powder is fixed by electrostatic adsorption and combined with the plating mechanism to achieve automated plating.

Benefits of technology

It eliminates the need for tray cleaning and drying, improves production continuity and hygiene, ensures tray placement quality and product appearance, and achieves fully automated operation of the equipment, thereby improving production efficiency and ease of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of mooncake processing, in particular to high-fiber fructose five-kernel mooncake automatic plate placing equipment which comprises a plate placing mechanism. The device further comprises a pretreatment mechanism and a conveying mechanism, and the pretreatment mechanism and the conveying mechanism are both installed on the wobble plate mechanism. The pretreatment mechanism comprises a coating mechanism and a powder scattering mechanism, the coating mechanism is mounted on the wobble plate mechanism, and the powder scattering mechanism is mounted on the coating mechanism; a tray is conveyed to a coating mechanism through a conveying mechanism, the tray is coated with a coating film through the coating mechanism, cooked glutinous rice flour is scattered into the tray through a flour scattering mechanism, then the tray is conveyed to a discharging position of a tray placing mechanism through the conveying mechanism, and formed snow skin high-fiber fructose five-kernel moon cakes are arranged in trays through the tray placing mechanism. And the practicability of the equipment is improved.
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Description

Technical Field

[0001] This invention relates to the technical field of mooncake processing, and in particular to an automatic plating device for high-fiber fructose five-nut mooncakes. Background Technology

[0002] Traditional high-fiber fructose five-nut mooncakes, after being shaped, require the use of automatic mooncake plating machines disclosed in patents CN208198952U and CN218114330U to place them on trays. Then, staff put the trays into an oven for heating to complete the mooncakes' cooking process.

[0003] In the process of processing snow skin high-fiber fructose five-nut mooncakes, all raw materials are cooked and do not require subsequent baking. However, to prevent sticking, cooked glutinous rice flour needs to be sprinkled in the tray. However, after long-term use, the cooked glutinous rice flour in the tray is prone to solidification, which affects production hygiene. Therefore, it needs to be cleaned. After cleaning, the tray also needs to be dried before it can be used. This is time-consuming and labor-intensive, and many replacement trays need to be prepared, resulting in poor practicality. Therefore, there is an urgent need to improve the existing tray arrangement equipment. Summary of the Invention

[0004] To solve the above-mentioned technical problems, the present invention provides an automatic plating device for high-fiber fructose five-nut mooncakes. The device uses a conveying mechanism to transport a tray to a covering mechanism, where the covering mechanism covers the tray with a covering film. Then, a powder-sprinkling mechanism sprinkles cooked glutinous rice flour into the tray. The tray is then transported to the discharge position of a plating mechanism, where the plating mechanism arranges the formed snow skin high-fiber fructose five-nut mooncakes into the tray, thereby improving the practicality of the equipment.

[0005] The present invention provides an automatic plating device for high-fiber fructose five-nut mooncakes, including a plating mechanism; it also includes a pre-treatment mechanism and a conveying mechanism, both of which are mounted on the plating mechanism; The pretreatment mechanism includes a coating mechanism and a powder-sprinkling mechanism. The coating mechanism is installed on the tray-dispensing mechanism, and the powder-sprinkling mechanism is installed on the coating mechanism. The tray is conveyed to the covering mechanism by the conveying mechanism, where the covering mechanism wraps the tray with a covering film. Then, the powdering mechanism sprinkles cooked glutinous rice flour into the tray. After that, the tray is conveyed to the discharge position of the plating mechanism by the conveying mechanism, where the formed snow skin high-fiber fructose five-nut mooncakes are arranged into the tray, thereby improving the practicality of the equipment.

[0006] Preferably, the conveying mechanism includes a support base, a bracket, two sets of drive shafts, two sets of drive shafts, two sets of drive belts, multiple support plates, a dual-output reducer, a drive motor, a conveyor belt, and a pushing mechanism. The support base and conveyor belt are both mounted on the tilting mechanism. The two sets of brackets are both mounted on the support base. The two sets of drive shafts are rotatably mounted on the two sets of brackets. The two sets of drive belts are respectively fitted onto the two sets of drive shafts. The multiple support plates are respectively mounted on the two sets of drive belts. The dual-output reducer and the pushing mechanism are both fixedly mounted on the two sets of brackets. The output ends of the two sets of drive shafts are connected to one end of a first set of drive shafts and one end of a second set of drive shafts, respectively. Drive motor one is mounted on a dual-output reducer, and the output shaft of drive motor one is connected to the input end of the dual-output reducer. The pallet is supported by the support plates on the opposite surfaces of the two sets of drive belts. Then, drive motor one is turned on, and the two sets of drive shafts one and two sets of drive shafts are rotated through the dual-output reducer. This causes the two sets of drive belts to run synchronously, causing the pallet to descend. The pallet is then pushed onto the covering mechanism by the pushing mechanism. After covering, the pallet is discharged onto the conveyor belt by the covering mechanism, and the conveyor belt continues to transport the pallet.

[0007] Preferably, the pushing mechanism includes a guide rail, an electric slider, and a pushing plate. The guide rail is mounted on two sets of brackets via a bracket, the electric slider is slidably mounted on the guide rail, and the pushing plate is fixedly mounted on the electric slider. By sliding the electric slider on the guide rail, the pushing plate pushes the tray between the two sets of transmission belts onto the covering mechanism.

[0008] Preferably, the covering mechanism includes a second support base, a first lifting frame, a first electric cylinder, multiple sets of conveyor wheels, a second bracket, a first sealing cover, a first hydraulic cylinder, a vacuum pump, a second electric cylinder, a second lifting frame, a hot melt element, a cutting tool, a second electric slider, an electrostatic generator, and multiple sets of rotating shafts. The second support base and the second bracket are both mounted on the tilting plate mechanism. The second support base has an internal chamber and an opening at its top. The first lifting frame is slidably mounted in the second support base. The first electric cylinder is fixedly mounted in the second support base, and its top is connected to the first lifting frame. Multiple sets of conveyor wheels are rotatably mounted on the first lifting frame, and the first lifting frame is equipped with... Drive motor one provides power to multiple sets of conveyor wheels. Sealing cover one is slidably mounted on bracket two. Hydraulic cylinder one is fixedly mounted on bracket two, with its bottom end connected to sealing cover one. Vacuum pump one is fixedly mounted on sealing cover one, with its suction port communicating with the interior of sealing cover one. Lifting frame two is mounted in sealing cover one via electric cylinder two. The hot melt element is mounted on lifting frame two via springs. Cutting blade one is fixedly mounted on lifting frame two. Electrostatic generator one is slidably mounted on lifting frame two via electric slider two. Multiple rotating shafts are respectively rotatably mounted on the front and rear of support base two and sealing cover one. Multiple sets of drive motors are installed at the front and rear of the sealing cover 1, providing power to multiple sets of rotating shafts. Two sets of coating film materials are respectively wound onto the rotating shafts at the front of the support base 2 and the sealing cover 1, with one end of each set of coating film materials passing over the top of the support base 2 and the bottom of the sealing cover 1, respectively, and then fixed to the rotating shafts at the rear of the support base 2 and the sealing cover 1. A pusher plate pushes the tray to the top of the support base 2, and then a hydraulic cylinder extends, causing the sealing cover 1 to press down and secure the tray, with the two sets of coating films respectively adhering to the bottom and top of the tray. Afterwards, a vacuum pump expels the air from inside the sealing cover 1, and then... The electric cylinder extends, causing the hot-melt element to fuse the edges of the two sets of coating films together. The electric cylinder continues to extend, cutting the coating film from the two sets of coating film materials onto the pallet. Simultaneously, the electric slider slides on the lifting frame, causing the electrostatic generator to attach static electricity to the coating film on the pallet surface. Then, the vacuum pump runs, restoring the internal pressure of the sealing cover to normal. The electric cylinder retracts, resetting the hot-melt element. The hydraulic cylinder retracts, resetting the sealing cover. The electric cylinder then extends, causing multiple sets of conveyor wheels to extend from the opening at the top of the support base, lifting the pallet. The pallet is then transported onto the conveyor belt by the rotation of the multiple sets of conveyor wheels.

[0009] Preferably, a sealing strip is provided at the bottom of the sealing cover; after the sealing cover is lowered, the sealing strip seals the gap between the sealing cover and the support base.

[0010] Preferably, the powder-spreading mechanism includes a second sealing cover, a second hydraulic cylinder, a conveying pipe, a discharge valve, a feed hopper, a screw conveyor shaft, a second drive motor, and multiple sets of fans. The second sealing cover is slidably mounted on a second bracket, the second hydraulic cylinder is fixedly mounted on the second bracket, and the bottom end of the second bracket is connected to the second sealing cover. The conveying pipe is mounted on the second sealing cover, the discharge valve and the feed hopper are both mounted on the conveying pipe, and the discharge valve communicates with the interior of the second sealing cover. The screw conveyor shaft is rotatably mounted on the conveying pipe, and the second drive motor is fixedly mounted on the conveying pipe, with the output shaft of the second drive motor connected to the screw conveyor shaft. One end is connected, and multiple sets of fans are installed in the second sealing cover; the cooked glutinous rice flour is poured into the feed hopper, so that the cooked glutinous rice flour enters the conveying pipe, and the tray is conveyed to the bottom of the second sealing cover by the conveyor belt. The second hydraulic cylinder extends so that the second sealing cover covers the tray. The second drive motor is turned on to drive the spiral conveyor shaft to rotate and convey the cooked glutinous rice flour from back to front. Then the discharge valve is opened to discharge a certain amount of cooked glutinous rice flour into the tray. Then the discharge valve is closed and multiple sets of fans are turned on to disperse the cooked glutinous rice flour in the tray and to absorb the cooked glutinous rice flour through the coating film on the surface of the tray.

[0011] Preferably, the discharge valve is equipped with a metering sensor to measure the amount of cooked glutinous rice flour discharged.

[0012] Preferably, the tilting mechanism includes a base, a frame, three hydraulic cylinders, two sets of three drive shafts, multiple sets of guide shafts, a track, three electric sliders, a tensioning shaft, and a discharge belt. The frame is mounted on the base, the three hydraulic cylinders are fixedly mounted on the frame, the two sets of three drive shafts are rotatably mounted on the frame and the three hydraulic cylinders respectively, the multiple sets of guide shafts are rotatably mounted on the frame, the track is fixedly mounted on the frame, the three electric sliders are slidably mounted on the track, the tensioning shaft is rotatably mounted on the three electric sliders, and the discharge belt is fitted onto the two sets of three drive shafts. Multiple guide shafts and tension shafts are mounted on the frame, and drive motors are installed to provide power to two sets of transmission shafts. The operation of drive motors causes the transmission shafts, guide shafts, and tension shafts to rotate, which in turn causes the discharge belt to run and transport the snow skin high-fiber fructose five-nut mooncakes. Then, the hydraulic cylinder extends, and at the same time, the electric slider slides upward on the track, causing the front of the discharge belt to move forward and adjust the discharge position of the snow skin high-fiber fructose five-nut mooncakes, which are then evenly placed into the tray.

[0013] Preferably, a photoelectric sensor is installed on the hydraulic cylinder three to detect the falling snow skin high fiber fructose five-nut mooncake, thereby facilitating the tray placement mechanism to adjust the placement position of the next snow skin high fiber fructose five-nut mooncake.

[0014] Preferably, the tray-loading mechanism, pre-treatment mechanism, and conveying mechanism are all connected to the control host in the production workshop; this facilitates the linkage between the tray-loading mechanism, pre-treatment mechanism, and conveying mechanism.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. The coating mechanism automatically wraps the coating film onto the surface of the pallet, eliminating the tedious steps of frequent pallet cleaning and drying in traditional processes, and significantly improving production continuity and hygiene. 2. Combined with the powder-sprinkling mechanism, the cooked glutinous rice flour is quantitatively dispersed into the film-covered tray, and the powder is fixed by electrostatic adsorption, which effectively prevents the snow skin mooncakes from sticking together and ensures the quality of the plating and the appearance of the product. 3. The equipment integrates conveying, coating, powdering and tray placement functions into one, realizing fully automated linkage operation, greatly reducing manual intervention, and improving overall production efficiency and ease of operation. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the first isometric structure of the present invention; Figure 2 This is a schematic diagram of the second isometric structure of the present invention; Figure 3 This is a first isometric structural schematic diagram of the pretreatment mechanism and the conveying mechanism of the present invention; Figure 4 This is a second isometric structural schematic diagram of the processing mechanism and conveying mechanism of the present invention; Figure 5 This is a front view structural schematic diagram of the processing mechanism and conveying mechanism of the present invention; Figure 6 This is a front view cross-sectional structural schematic diagram of the processing mechanism and conveying mechanism of the present invention; Figure 7 This is the present invention. Figure 6 A magnified structural diagram of part A in the diagram; Figure 8 This is a first isometric schematic diagram of the transmission belt and support plate of the present invention; Figure 9 This is a second isometric schematic diagram of the transmission belt and support plate of the present invention; Figure 10 This is a schematic diagram of the structure of the electric slider 2 and the electrostatic generator of the present invention; Figure 11 This is a schematic diagram of the right-side cross-sectional structure of the sealing cover and the conveying pipe of the present invention; Figure 12 This is a first isometric structural schematic diagram of the plate-stacking mechanism of the present invention; Figure 13 This is a schematic diagram of the second isometric structure of the plate-stacking mechanism of the present invention; Figure 14 This is a front view structural schematic diagram of the tray-stacking mechanism of the present invention.

[0017] The attached diagram is labeled as follows: 1. Support base one; 2. Bracket one; 3. Drive shaft one; 4. Drive shaft two; 5. Drive belt; 6. Support plate; 7. Dual-output reducer; 8. Drive motor one; 9. Conveyor belt; 10. Guide rail; 11. Electric slider one; 12. Push plate; 13. Support base two; 14. Lifting frame one; 15. Electric cylinder one; 16. Conveyor wheel; 17. Bracket two; 18. Sealing cover one; 19. Hydraulic cylinder one; 20. Vacuum pump; 21. Electric cylinder two; 22. Lifting frame two. 23. Hot melt element; 24. Cutting tool; 25. Electric slider II; 26. Static generator; 27. Rotating shaft; 28. Sealing cover II; 29. ​​Hydraulic cylinder II; 30. Conveying pipe; 31. Discharge valve; 32. Feed hopper; 33. Screw conveyor shaft; 34. Drive motor II; 35. Fan; 36. Base; 37. Frame; 38. Hydraulic cylinder III; 39. Drive shaft III; 40. Guide shaft; 41. Track; 42. Electric slider III; 43. Tensioning shaft; 44. Discharge belt. Detailed Implementation

[0018] To facilitate understanding of the present invention, a more complete description will be given below with reference to the accompanying drawings. The present invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete.

[0019] Example 1: As Figures 1 to 14 As shown, an automatic plating device for high-fiber fructose mixed nut mooncakes includes a plating mechanism; it also includes a pre-processing mechanism and a conveying mechanism, both of which are installed on the plating mechanism. The pretreatment mechanism includes a coating mechanism and a powder-sprinkling mechanism. The coating mechanism is installed on the tray-dispensing mechanism, and the powder-sprinkling mechanism is installed on the coating mechanism. The conveying mechanism includes a support base 1, a bracket 2, two sets of drive shafts 3, two sets of drive shafts 4, two sets of drive belts 5, multiple sets of support plates 6, a dual-output reducer 7, a drive motor 8, a conveyor belt 9, and a pushing mechanism. The support base 1 and the conveyor belt 9 are both mounted on the tilting plate mechanism. The two sets of brackets 2 are both mounted on the support base 1. The two sets of drive shafts 3 and 4 are rotatably mounted on the two sets of brackets 2 respectively. The two sets of drive belts 5 are respectively fitted onto the two sets of drive shafts 3 and 4. The multiple sets of support plates 6 are respectively mounted on the two sets of drive belts 5. The dual-output reducer 7 and the pushing mechanism are both fixedly mounted on the two sets of brackets 2. The two output ends of the dual-output reducer 7 are respectively connected to one end of one set of drive shafts 3 and one set of drive shafts 4. The drive motor 8 is mounted on the dual-output reducer 7, and the output shaft of the drive motor 8 is connected to the input end of the dual-output reducer 7. The pushing mechanism includes a guide rail 10, an electric slider 11, and a pushing plate 12. The guide rail 10 is mounted on two sets of brackets 2 via brackets. The electric slider 11 is slidably mounted on the guide rail 10. The pushing plate 12 is fixedly mounted on the electric slider 11. The covering mechanism includes a second support base 13, a first lifting frame 14, an electric cylinder 15, multiple sets of conveyor wheels 16, a second bracket 17, a first sealing cover 18, a first hydraulic cylinder 19, a vacuum pump 20, a second electric cylinder 21, a second lifting frame 22, a hot melt element 23, a cutting tool 24, a second electric slider 25, an electrostatic generator 26, and multiple sets of rotating shafts 27. The second support base 13 and the second bracket 17 are both mounted on the tilting plate mechanism. The second support base 13 has an internal chamber and an opening at its top. The first lifting frame 14 is slidably mounted in the second support base 13. The first electric cylinder 15 is fixedly mounted in the second support base 13, and its top is connected to the first lifting frame 14. Multiple sets of conveyor wheels 16 are rotatably mounted on the first lifting frame 14, and a drive motor 1 is mounted on the first lifting frame 14 to provide power to the multiple sets of conveyor wheels 16. The first sealing cover 1... 18 is slidably mounted on bracket 2 17, hydraulic cylinder 19 is fixedly mounted on bracket 2 17, and the bottom end of hydraulic cylinder 19 is connected to sealing cover 18, vacuum pump 20 is fixedly mounted on sealing cover 18, and the suction port of vacuum pump 20 is connected to the inside of sealing cover 18, lifting frame 22 is mounted in sealing cover 18 through electric cylinder 21, hot melt element 23 is mounted on lifting frame 22 through spring, cutting tool 24 is fixedly mounted on lifting frame 22, electrostatic generator 26 is slidably mounted on lifting frame 22 through electric slider 25, and multiple sets of rotating shafts 27 are rotatably mounted on the front and rear of support base 2 13 and sealing cover 18, and multiple sets of drive motors 2 are provided on the front and rear of support base 2 13 and sealing cover 18, which provide power to multiple sets of rotating shafts 27 respectively; A sealing strip is provided at the bottom of the sealing cover 18; The tray-stacking mechanism includes a base 36, a frame 37, a hydraulic cylinder 38, two sets of drive shafts 39, multiple sets of guide shafts 40, a track 41, an electric slider 42, a tensioning shaft 43, and a discharge belt 44. The frame 37 is mounted on the base 36, the hydraulic cylinder 38 is fixedly mounted on the frame 37, the two sets of drive shafts 39 are rotatably mounted on the frame 37 and the hydraulic cylinder 38 respectively, the multiple sets of guide shafts 40 are rotatably mounted on the frame 37, the track 41 is fixedly mounted on the frame 37, the electric slider 42 is slidably mounted on the track 41, the tensioning shaft 43 is rotatably mounted on the electric slider 42, and the discharge belt 44 is fitted onto the two sets of drive shafts 39, the multiple sets of guide shafts 40, and the tensioning shaft 43. The frame 37 is equipped with a drive motor 3 that provides power to the two sets of drive shafts 39. A photoelectric sensor is installed on hydraulic cylinder 38; The tray-loading mechanism, pre-processing mechanism, and conveying mechanism are all connected to the control host in the production workshop; The pallet is supported by support plates 6 on the opposite surfaces of two sets of transmission belts 5. Then, the drive motor 8 is turned on, and through the dual-output reducer 7, the two sets of transmission shafts 3 and 4 rotate, which in turn causes the two sets of transmission belts 5 to run synchronously, lowering the pallet. Then, the electric slider 11 slides on the guide rail 10, causing the pusher plate 12 to push the pallet between the two sets of transmission belts 5 onto the support seat 13. The hydraulic cylinder 19 extends, causing the sealing cover 18 to close the pallet downwards, and the two sets of covering films are respectively attached to the bottom and top of the pallet. Then, the vacuum pump 20 expels the air from the sealing cover 18. Then, the electric cylinder 21 extends, causing the hot melt element 23 to fuse the edges of the two sets of covering films. The electric cylinder 21 continues to extend, cutting the covering film of the pallet from the two sets of covering film materials. At the same time, the electric slider 25 slides on the lifting frame 22, causing the electrostatic generator 26 to attach static electricity to the covering film on the surface of the pallet. Then, the vacuum pump 20 runs. The internal pressure of the sealing cover 18 is restored to normal. Electric cylinder 21 retracts, resetting the thermoplastic element 23. Hydraulic cylinder 19 retracts, resetting the sealing cover 18. Electric cylinder 15 then extends, causing multiple sets of conveyor wheels 16 to extend from the opening at the top of the support base 13, lifting the pallet. The rotating conveyor wheels 16 then transport the pallet onto the conveyor belt 9. The conveyor belt 9 transports the pallet to the front of the discharge belt 44. The drive motor 3 operates, causing the drive shaft 39 and guide... The rotation of shaft 40 and tension shaft 43 causes the discharge belt 44 to run, conveying the snow skin high-fiber fructose five-nut mooncakes. Then, the hydraulic cylinder 38 extends, while the electric slider 32 slides upward on the track 41, causing the front of the discharge belt 44 to move forward, adjusting the discharge position of the snow skin high-fiber fructose five-nut mooncakes. The snow skin high-fiber fructose five-nut mooncakes are then evenly placed into the tray. After periodic use, the wrapping film is removed, and the above steps are repeated to re-wrap the film, thereby improving the practicality of the equipment.

[0020] Example 2: An automatic plating device for high-fiber fructose mixed nut mooncakes, which, based on Example 1, further includes: The powder-spreading mechanism includes a second sealing cover 28, a second hydraulic cylinder 29, a conveying pipe 30, a discharge valve 31, a feed hopper 32, a screw conveyor shaft 33, a second drive motor 34, and multiple sets of fans 35. The second sealing cover 28 is slidably mounted on a second bracket 17, the second hydraulic cylinder 29 is fixedly mounted on a second bracket 17, and the bottom end of the second bracket 17 is connected to the second sealing cover 28. The conveying pipe 30 is mounted on the second sealing cover 28. The discharge valve 31 and the feed hopper 32 are both mounted on the conveying pipe 30, and the discharge valve 31 communicates with the interior of the second sealing cover 28. The screw conveyor shaft 33 is rotatably mounted on the conveying pipe 30. The second drive motor 34 is fixedly mounted on the conveying pipe 30, and the output shaft of the second drive motor 34 is connected to one end of the screw conveyor shaft 33. Multiple sets of fans 35 are all installed in the second sealing cover 28. A metering sensor is installed inside the discharge valve 31; The pallet is supported by support plates 6 on the opposite surfaces of the two sets of transmission belts 5. Then, the drive motor 8 is turned on, and the two sets of transmission shafts 3 and 4 are rotated through the dual-output reducer 7. This causes the two sets of transmission belts 5 to run synchronously, making the pallet lower. Then, the electric slider 11 slides on the guide rail 10, and the pusher plate 12 pushes the pallet between the two sets of transmission belts 5 onto the support seat 13. The hydraulic cylinder 19 extends, causing the sealing cover 18 to close the pallet downwards, and the two sets of covering films are attached to the bottom and top of the pallet respectively. Then, the vacuum pump 20 expels the air from the sealing cover 18. Then, the electric cylinder 21 extends, causing the hot-melt element 23 to fuse the edges of the two sets of coating films together. The electric cylinder 21 continues to extend, cutting the coating film from the two sets of coating film materials onto the tray. Simultaneously, the electric slider 25 slides on the lifting frame 22, causing the electrostatic generator 26 to attach static electricity to the coating film on the tray surface. Then, the vacuum pump 20 operates, restoring the internal pressure of the sealing cover 18 to normal. The electric cylinder 21 retracts, resetting the hot-melt element 23. The hydraulic cylinder 19 retracts, resetting the sealing cover 18. The electric cylinder 15 then extends, causing the multiple sets of conveyor wheels 16 to move from the support base 13. The top opening extends to lift the tray, which is then transported onto the conveyor belt 9 by the rotation of multiple sets of conveyor wheels 16. The conveyor belt 9 transports the tray to below the sealing cover 28, where the hydraulic cylinder 29 extends to cover the tray with the sealing cover 28. The drive motor 24 is turned on to drive the spiral conveyor shaft 33 to rotate, conveying the cooked glutinous rice flour from back to front. The discharge valve 31 is then opened to discharge a measured amount of cooked glutinous rice flour into the tray. The discharge valve 31 is then closed, and multiple sets of fans 35 are turned on to disperse the cooked glutinous rice flour in the tray. The cooked glutinous rice flour is also absorbed by the coating film on the surface of the tray. Finally, the conveyor belt... The conveyor belt 9 operates, transporting the tray to the front of the discharge belt 44. Driven by the drive motor 3, the transmission shaft 39, guide shaft 40, and tension shaft 43 rotate, causing the discharge belt 44 to move and transport the snow skin high-fiber fructose five-nut mooncakes. Then, the hydraulic cylinder 38 extends, while the electric slider 32 slides upwards on the track 41, moving the front of the discharge belt 44 forward to adjust the discharge position of the snow skin high-fiber fructose five-nut mooncakes. The mooncakes are then evenly placed into the tray. After periodic use, the wrapping film is removed, and the above steps are repeated for re-wrapping, thus improving the equipment's practicality.

[0021] The main functions achieved by this invention are: 1. The coating mechanism automatically wraps the coating film onto the surface of the pallet, eliminating the tedious steps of frequent pallet cleaning and drying in traditional processes, and significantly improving production continuity and hygiene. 2. Combined with the powder-sprinkling mechanism, the cooked glutinous rice flour is quantitatively dispersed into the film-covered tray, and the powder is fixed by electrostatic adsorption, which effectively prevents the snow skin mooncakes from sticking together and ensures the quality of the plating and the appearance of the product. 3. The equipment integrates conveying, coating, powdering and tray placement functions into one, realizing fully automated linkage operation, greatly reducing manual intervention, and improving overall production efficiency and ease of operation.

[0022] The automatic plating device for high-fiber fructose five-nut mooncakes of the present invention uses common mechanical methods for installation, connection, or setting. Any method that achieves the desired beneficial effect can be implemented. The mooncakes are relatively lightweight, and during the extension of hydraulic cylinder 38, electric slider 32 rises accordingly, resulting in less force on hydraulic cylinder 38 and ensuring stable operation of the equipment. The dual-output reducer 7, drive motor 8, electric slider 11, electric cylinder 15, hydraulic cylinder 19, vacuum pump 20, electric cylinder 21, hot melt element 23, electric slider 25, electrostatic generator 26, hydraulic cylinder 29, drive motor 24, fan 35, hydraulic cylinder 38, and electric slider 342 of the automatic plating device for high-fiber fructose five-nut mooncakes of the present invention are commercially available. Those skilled in the art only need to install and operate the device according to the accompanying instruction manual, without requiring any creative effort from those skilled in the art.

[0023] The above description is only a preferred embodiment of the present invention. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. An automatic plating device for high-fiber fructose mixed nut mooncakes, comprising a plating mechanism; characterized in that, It also includes a pretreatment mechanism and a conveying mechanism, both of which are mounted on the tray-stacking mechanism; The pretreatment mechanism includes a coating mechanism and a powder-sprinkling mechanism. The coating mechanism is installed on the tray-dispensing mechanism, and the powder-sprinkling mechanism is installed on the coating mechanism.

2. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 1, characterized in that, The conveying mechanism includes a support base (1), a bracket (2), two sets of drive shafts (3), two sets of drive shafts (4), two sets of drive belts (5), multiple support plates (6), a dual-output reducer (7), a drive motor (8), a conveyor belt (9), and a pushing mechanism. The support base (1) and the conveyor belt (9) are both mounted on the tilting plate mechanism. The two sets of brackets (2) are both mounted on the support base (1). The two sets of drive shafts (3) and the two sets of drive shafts (4) are rotatably mounted on the two sets of brackets (2). The two sets of drive belts (5) The two sets of transmission shafts are respectively mounted on two sets of transmission shaft one (3) and two sets of transmission shaft two (4). Multiple sets of support plates (6) are respectively mounted on two sets of transmission belts (5). The dual output reducer (7) and the pushing mechanism are both fixedly mounted on two sets of bracket one (2). The two output ends of the dual output reducer (7) are respectively connected to one end of one set of transmission shaft one (3) and one set of transmission shaft two (4). The drive motor one (8) is mounted on the dual output reducer (7), and the output shaft of the drive motor one (8) is connected to the input end of the dual output reducer (7).

3. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 2, characterized in that, The pushing mechanism includes a guide rail (10), an electric slider (11), and a pushing plate (12). The guide rail (10) is mounted on two sets of brackets (2) via a bracket. The electric slider (11) is slidably mounted on the guide rail (10). The pushing plate (12) is fixedly mounted on the electric slider (11).

4. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 1, characterized in that, The covering mechanism includes a second support base (13), a first lifting frame (14), a first electric cylinder (15), multiple sets of conveyor wheels (16), a second bracket (17), a first sealing cover (18), a first hydraulic cylinder (19), a vacuum pump (20), a second electric cylinder (21), a second lifting frame (22), a hot melt element (23), a cutting tool (24), a second electric slider (25), an electrostatic generator (26), and multiple sets of rotating shafts (27). The second support base (13) and the second bracket (17) are both mounted on the tilting plate mechanism. Furthermore, the support base two (13) has an internal chamber, and the top of the support base two (13) has an opening. The lifting frame one (14) is slidably installed in the support base two (13), and the electric cylinder one (15) is fixedly installed in the support base two (13). The top of the electric cylinder one (15) is connected to the lifting frame one (14). Multiple sets of conveyor wheels (16) are rotatably installed on the lifting frame one (14), and the lifting frame one (14) is equipped with a drive motor one to provide power to the multiple sets of conveyor wheels (16). The first sealing cover (18) is slidably mounted on the second bracket (17), the first hydraulic cylinder (19) is fixedly mounted on the second bracket (17), and the bottom end of the first hydraulic cylinder (19) is connected to the first sealing cover (18). The vacuum pump (20) is fixedly mounted on the first sealing cover (18), and the suction port of the vacuum pump (20) is connected to the inside of the first sealing cover (18). The second lifting frame (22) is mounted in the first sealing cover (18) through the second electric cylinder (21). The hot melt element (23) is mounted on the lifting frame through a spring. On the second frame (22), the cutting tool (24) is fixedly installed on the second lifting frame (22), the electrostatic generator (26) is slidably installed on the second lifting frame (22) via the electric slider (25), and multiple sets of rotating shafts (27) are respectively rotatably installed on the front and rear of the second support base (13) and the first sealing cover (18). Multiple sets of drive motors are provided on the front and rear of the second support base (13) and the first sealing cover (18), and the multiple sets of drive motors provide power to the multiple sets of rotating shafts (27) respectively.

5. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 4, characterized in that, A sealing strip is provided at the bottom of the sealing cover (18).

6. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 4, characterized in that, The powder-spreading mechanism includes a second sealing cover (28), a second hydraulic cylinder (29), a conveying pipe (30), a discharge valve (31), a feed hopper (32), a screw conveyor shaft (33), a second drive motor (34), and multiple sets of fans (35). The second sealing cover (28) is slidably mounted on the second bracket (17), the second hydraulic cylinder (29) is fixedly mounted on the second bracket (17), and the bottom end of the second bracket (17) is connected to the second sealing cover (28). The conveying pipe (30) is installed on the sealing cover. On the second (28), the discharge valve (31) and the feed hopper (32) are both installed on the conveying pipe (30), and the discharge valve (31) is connected to the inside of the second sealing cover (28). The screw conveyor shaft (33) is rotatably installed on the conveying pipe (30), the second drive motor (34) is fixedly installed on the conveying pipe (30), and the output shaft of the second drive motor (34) is connected to one end of the screw conveyor shaft (33). Multiple sets of fans (35) are installed in the second sealing cover (28).

7. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 6, characterized in that, A metering sensor is installed inside the discharge valve (31).

8. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 1, characterized in that, The tray-sliding mechanism includes a base (36), a frame (37), three hydraulic cylinders (38), two sets of three transmission shafts (39), multiple sets of guide shafts (40), a track (41), three electric sliders (42), a tensioning shaft (43), and a discharge belt (44). The frame (37) is mounted on the base (36), the three hydraulic cylinders (38) are fixedly mounted on the frame (37), and the two sets of three transmission shafts (39) are rotatably mounted on the frame (37) and the three hydraulic cylinders (38), respectively. The guide shafts (40) are all rotatably mounted on the frame (37), the track (41) is fixedly mounted on the frame (37), the electric slider three (42) is slidably mounted on the track (41), the tension shaft (43) is rotatably mounted on the electric slider three (42), the discharge belt (44) is fitted on the two sets of drive shaft three (39), multiple sets of guide shafts (40) and tension shaft (43), and the frame (37) is equipped with a drive motor three that provides power to the two sets of drive shaft three (39).

9. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 8, characterized in that, A photoelectric sensor is installed on the hydraulic cylinder three (38).

10. The automatic plating equipment for high-fiber fructose five-nut mooncakes as described in claim 1, characterized in that, The tray-loading mechanism, pre-processing mechanism, and conveying mechanism are all connected to the control host in the production workshop.

Citation Information

Patent Citations

  • Automatic arrangement machine of moon cake

    CN208198952U

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    CN218114330U