Intelligent conveying device for candy processing
By introducing a buffer pad, a material-dispensing assembly, and an air supply assembly into the candy conveying device, the problems of candy being easily damaged, softened, and adhered during transportation are solved, and the surface quality of the candy is protected and the temperature is controlled.
Patent Information
- Application Number
- CN202510809899.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-09-05
AI Technical Summary
In the prior art, candies are prone to breakage, softening, and adhesion during transportation, which affects surface quality and causes equipment contamination.
An intelligent conveying device was designed, including a buffer pad, a material shifting assembly and an air supply assembly. The buffer pad is used to cushion the collision between the candies and the feed hopper, the material shifting assembly is used to disperse the accumulated candies, and the air supply assembly is used to reduce the temperature of the candies.
Effectively protect the integrity of the candy surface, prevent candy from sticking and melting, and improve the quality of candy during transportation.
Smart Images

Figure CN120589412A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of conveying devices, and in particular to an intelligent conveying device for candy processing. Background Art
[0002] The candy conveying device is a special equipment used to transfer the formed candies to the next processing link in the candy production process. In the process of conveying candies, the single candies that have been packaged are subjected to secondary centralized packaging, or when only semi-finished or finished candies are conveyed to the next link, the candies are generally first conveyed to the workbench through a belt conveyor mechanism. When packaging is required, the candies are placed at a workstation set on the workbench. When the candies are conveyed to one end of the conveyor belt mechanism adjacent to the collection table, the staff or the equipped robot will take the candies out of the conveyor belt mechanism and place them in the workstation on the workbench. After the staff completes the packaging, the candies can be sent away by the robot. Those that need to be processed again will be directly sent to the next link through the belt conveyor mechanism.
[0003] However, when conveying candies, firstly, harder candies stacked together will collide, and will also collide or rub against the conveying equipment, thereby damaging the surface quality of the candies, causing scratches or defects on the surface, and thus affecting the taste of the candies. In addition, due to environmental influences, if the conveying time is too long, some candies that are easier to melt will soften. At this time, the candies are prone to deformation, which further aggravates the damage to the candy surface during the conveying process. Some candies may even stick together or adhere to the conveying equipment, which not only affects the normal operation of the equipment, but also contaminates other candies. Summary of the Invention
[0004] The present invention provides an intelligent conveying device for candy processing, which is used to solve the problem in the prior art that candies are easily damaged or softened during conveyance, thereby affecting the surface quality of the candies.
[0005] The technical solutions of the present invention are as follows: An intelligent conveying device for candy processing, comprising a device frame, wherein the device frame includes a conveying area and a feeding area, and further comprises: A dustproof frame, the dustproof frame being fixedly mounted on the device frame; Transmission rollers, two of which are symmetrically and rotatably mounted in the device frame, and a conveyor belt is tensioned between the two transmission rollers; The conveyor belt is configured as a concave structure with high sides and a low middle. A plurality of strip-shaped protrusions are arranged at equal distances on the conveyor belt. The strip-shaped protrusions are made of a flexible material. A plurality of groups of through holes are arranged at equal distances on the conveyor belt. A group of through holes is arranged between every two strip-shaped protrusions, and a plurality of through holes are arranged in each group at equal distances. A driving device, wherein the driving device is fixedly mounted on the device frame, and an output end of the driving device is fixedly connected to one of the transmission rollers; Support rollers, a plurality of support rollers are rotatably mounted on the device frame at equal distances, the plurality of support rollers are located between two transmission rollers, and the support rollers abut against the conveyor belt; a feeding assembly, the feeding assembly being installed in the feeding area and being used for feeding candies onto the conveyor belt; A distribution component is installed on the dustproof frame and is used to disperse the candies that are piled up together after the candies are placed on the conveyor belt; An air supply component is installed inside the device frame and is used to send low-temperature air between the device frame and the dustproof frame to reduce the temperature of the candies during long-term transportation.
[0006] On the basis of the above scheme, the feeding assembly includes: A feed hopper, the feed hopper being fixedly mounted in the feed area; The lower hopper is installed at the bottom of the feed hopper through a plurality of spring connectors. There is a gap between the lower hopper and the feed hopper, and the plurality of spring connectors are arranged at equal distances.
[0007] A buffer pad is fixedly installed inside the feed hopper, with a gap between the buffer pad and the inner wall of the feed hopper, and a plurality of rubber strips are arranged at equal distances between the buffer pad and the inner wall of the feed hopper; A discharge pad is fixedly installed inside the lower hopper, the upper side of the discharge pad is arranged in an arc shape, and a plurality of arc guide grooves are arranged at equal distances on the upper side of the discharge pad.
[0008] Based on the above solution, the distribution components include: A mounting rack, the mounting rack being fixedly mounted on the dustproof rack; A sliding frame, the sliding frame being slidably mounted inside the mounting frame; a first driving member, the first driving member being fixedly mounted on the mounting frame, and an output end of the first driving member being fixedly connected to the sliding frame; A rotating cylinder, the rotating cylinder is rotatably mounted inside the sliding frame, and a shifting rod is eccentrically and slidably mounted inside the rotating cylinder; a second driving member, the second driving member being fixedly mounted inside the sliding frame; a material shifting portion, the material shifting portion being mounted on the bottom of the second driving member and being used for shifting materials; A driving unit is installed inside the sliding frame and is used to drive the rotating cylinder to rotate.
[0009] On the basis of the above solution, the material shifting unit includes: A sliding frame, on which the sliding frame is slidably mounted, a bracket is rotatably mounted at the bottom of the sliding frame, and a plurality of material-selecting rods are fixedly mounted at equal distances on the bracket; Wherein, the output end of the second driving member is fixedly connected to the sliding frame; A slide groove is provided on the bracket, and the slide groove is slidably matched with the shift rod.
[0010] On the basis of the above solution, the driving unit includes: A driven helical gear, the driven helical gear being coaxially fixedly mounted on the rotating cylinder; a rotating shaft, the rotating shaft being rotatably mounted inside the mounting frame, a driving helical gear being slidably mounted on the rotating shaft, the driving helical gear being meshed with the driven helical gear, and the driving helical gear being rotatably mounted on the sliding frame; A driving motor is fixedly mounted on the mounting frame, and an output end of the driving motor is fixedly connected to the rotating shaft.
[0011] Based on the above solution, the air supply assembly includes: Air supply racks, wherein a plurality of air supply racks are fixedly installed at equal distances inside the device rack, an air supply rack is provided between every two support rollers, and ventilation slots are provided on both sides of each air supply rack; A ventilation duct is provided outside the device frame, a joint is provided outside the ventilation duct, and one end of each air supply frame close to the ventilation duct is connected to the ventilation duct through a valve.
[0012] The working principle and beneficial effects of the present invention are: 1. In the present invention, there is a gap between the buffer pad and the inner wall of the feed hopper. That is to say, when hard candies fall on the buffer pad, they will be cushioned by the elasticity of the buffer pad itself. At the same time, the gap also has a certain compensation effect, thereby improving the protection effect of the candies and reducing the risk of the candies colliding with the inner wall of the feed hopper when they are fed into the feed hopper, thereby reducing the risk of the candies being damaged.
[0013] 2. In the present invention, the lever is slidably connected to the slide groove on the bracket. As the rotating cylinder drives the lever to rotate, the lever and the slide groove slide back and forth, and the bracket swings at the same time. Therefore, the arrangement of the material-dividing rod can disperse the accumulated candies, prevent the candies from being butted together, and prevent the candies from sticking together, thereby ensuring the integrity of the candies.
[0014] 3. In the present invention, the refrigeration equipment sends cold air into the corresponding air supply rack through the ventilation pipe, and then discharges the cold air through the ventilation slots on both sides of the air supply rack. The discharged cold air enters the interior of the conveyor belt and is discharged between the conveyor belt and the dustproof rack through the through holes on the conveyor belt, thereby reducing the temperature of the candy, relieving the melting of the candy, and thus improving the quality of the candy.
[0015] 4. In the present invention, the special structure of the feeding assembly and the conveyor belt reduces the possibility of candies being damaged by collision during transportation, which may lead to surface integrity problems. The air supply assembly and the distribution assembly prevent candies from piling up, and at the same time reduce the temperature of the candies, thereby preventing candies from sticking together during transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of a three-dimensional structure of a cross-section in the present invention; Figure 3 Schematic diagram of the cross-sectional structure of the feed assembly in the present invention; Figure 4 It is a cross-sectional structural diagram of the cooperation between the air supply assembly and the conveyor belt in the present invention; Figure 5 Schematic diagram of the cross-sectional structure of the distribution component in the present invention; Figure 6 This is a schematic cross-sectional structural diagram of the distribution component from another angle in the present invention.
[0018] In the figure: 1. Device frame; 2. Dust-proof frame; 3. Transmission roller; 4. Conveyor belt; 5. Driving device; 6. Support roller; 7. Bar protrusion; 8. Through hole; 9. Feed hopper; 10. Discharge hopper; 11. Spring connector; 12. Buffer pad; 13. Rubber strip; 14. Discharge pad; 15. Arc guide groove; 16. Mounting frame; 17. Sliding frame; 18. First driving member; 19. Rotating cylinder; 20. Diverter rod; 21. Second driving member; 22. Sliding frame; 23. Bracket; 24. Diverter rod; 25. Slide groove; 26. Driven helical gear; 27. Rotating shaft; 28. Driving helical gear; 29. Driving motor; 30. Air supply frame; 31. Ventilation slot; 32. Ventilation duct; 33. Joint; 34. Valve. DETAILED DESCRIPTION
[0019] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present invention.
[0020] like Figures 1 to 6 As shown, this embodiment proposes an intelligent conveying device for candy processing, including a device frame 1, the device frame 1 includes a conveying area and a feeding area, and also includes a dust-proof frame 2, a transmission roller 3, a driving device 5, a support roller 6, a feeding component, a distribution component and an air supply component. The dust-proof frame 2 is fixedly installed on the device frame 1, and two transmission rollers 3 are symmetrically and rotatably installed in the device frame 1. A conveyor belt 4 is tensioned between the two transmission rollers 3. The driving device 5 is fixedly installed on the device frame 1, and the output end of the driving device 5 is fixedly connected to one of the transmission rollers 3. A plurality of support rollers 6 are equidistantly mounted on the device frame 1 for rotation. The plurality of support rollers 6 are located between the two transmission rollers 3, and the support rollers 6 abut against the conveyor belt 4. The feeding component It is installed in the feeding area and is used to feed candies into the conveyor belt 4. The feeding assembly includes a feed hopper 9, a lower hopper 10, a buffer pad 12 and a discharge pad 14. The feed hopper 9 is fixedly installed in the feeding area. The lower hopper 10 is installed at the bottom of the feed hopper 9 through a number of spring connectors 11. There is a gap between the lower hopper 10 and the feed hopper 9. The several spring connectors 11 are equidistantly arranged. The buffer pad 12 is fixedly installed inside the feed hopper 9. There is a gap between the buffer pad 12 and the inner wall of the feed hopper 9. Several rubber strips 13 are equidistantly arranged between the buffer pad 12 and the inner wall of the feed hopper 9. The discharge pad 14 is fixedly installed inside the lower hopper 10. The upper side of the discharge pad 14 is set to an arc shape, and a number of arc guide grooves 15 are equidistantly arranged on the upper side of the discharge pad 14.
[0021] Specifically, during the conveying process, the driving device 5 is first turned on, and the driving device 5 drives one of the transmission rollers 3 to rotate, thereby driving the conveyor belt 4 to move through the cooperation of the other transmission roller 3, and then pouring the candies into the feed hopper 9. Under the action of the buffer pad 12, the impact between the candies (especially hard candies) and the side wall of the feed hopper 9 is reduced, thereby causing damage to the surface of the candies, such as Figure 3As shown, there is a gap between the buffer pad 12 and the inner wall of the feed hopper 9, that is, when hard candies fall on the buffer pad 12, they will be affected by the elastic buffering effect of the buffer pad 12 itself. At the same time, the gap also has a certain compensation effect, thereby improving the protection effect of the candies. Through the setting of the discharge pad 14, when the candies enter the lower hopper 10, they will contact the discharge pad 14. The upper part of the discharge pad 14 is set to be arc-shaped and through the setting of several arc-shaped guide grooves 15, it is convenient to guide the discharge direction of the candies and at the same time play the role of dispersing the candies, so that when the candies enter the conveyor belt 4, the accumulation of multiple candies is reduced. The phenomenon occurs. When the candies enter the conveyor belt 4, the conveyor belt 4 can transport the candies to the next link. During this process, the candies are moved by the setting of the distribution component to reduce the occurrence of candies piling up together, and at the same time, the collision between candies can be reduced. During the transportation process, when the transportation distance is long, some candies that are easier to melt will soften. At this time, the relevant refrigeration equipment is connected to the air supply component, and cold air is transported to the inside of the device frame 1 through the air supply component, thereby slowing down the melting speed of the candies, improving the quality of the candies, and reducing the possibility of the candies being damaged before being sent to the next link.
[0022] The above, such as Figure 4 、 Figure 5 As shown, the conveyor belt 4 is configured as a concave structure with high sides and a low middle. A number of strip protrusions 7 are arranged at equal distances on the conveyor belt 4. The strip protrusions 7 are made of a flexible material (such as food-grade silicone). A number of groups of through holes 8 are arranged at equal distances on the conveyor belt 4. A group of through holes 8 is provided between every two strip protrusions 7, and each group of through holes 8 has several equally spaced holes.
[0023] Specifically, when cold air enters the device frame 1, it enters between the device frame 1 and the dustproof frame 2 through the plurality of through holes 8 on the conveyor belt 4, thereby alleviating the melting of the candies. The special structure of the strip protrusions 7 and the conveyor belt 4 is to prevent the candies from rolling freely on the conveyor belt 4 and colliding with other candies or the side wall of the device frame 1, thereby damaging the candy surface.
[0024] like Figure 5 、 Figure 6As shown, a distribution component is installed on the dust-proof frame 2, which is used to disperse the piled candies after placing them on the conveyor belt 4. The distribution component includes a mounting frame 16, a sliding frame 17, a first driving member 18, a rotating cylinder 19, a second driving member 21, a material shifting portion and a driving portion. The mounting frame 16 is fixedly mounted on the dust-proof frame 2, the sliding frame 17 is slidably mounted inside the mounting frame 16, the first driving member 18 is fixedly mounted on the mounting frame 16, and the output end of the first driving member 18 is fixedly connected to the sliding frame 17. The rotating cylinder 19 is rotatably mounted inside the sliding frame 17, and a shifting rod 20 is eccentrically and slidably mounted inside the rotating cylinder 19. The second driving member 21 is fixedly mounted inside the sliding frame 17, and the material shifting portion is mounted at the bottom of the second driving member 21 for shifting materials. The driving portion is mounted inside the sliding frame 17 for driving the rotating cylinder 19 to rotate.
[0025] Specifically, when it is found that the candies on the conveyor belt 4 are piled up together, the first driving member 18 is turned on, and the first driving member 18 pushes the sliding frame 17 to move until the sliding frame 17 is moved to the specified position, and then the second driving member 21 is turned on, and the second driving member 21 moves the material-pickup part to the working position. At this time, the driving part is turned on to drive the rotating cylinder 19 to rotate, and the rotating cylinder 19 drives the prying rod 20 to rotate, thereby driving the material-pickup part to move, so as to disperse this part of the piled-up candies.
[0026] It should be added that, in order to improve the utilization efficiency, a visual system can be further provided inside the dustproof frame 2. The visual system is located between the mounting frame 16 and the lower hopper 10, and is mainly composed of an industrial camera, an optical lens, a light source system and a control system. During the candy conveying process, the industrial camera is provided to capture the candies in the conveying process in real time. When the problem of candy accumulation is found, the accumulation position and accumulation situation will be determined first. After the determination is made, the information will be transmitted to the control system, which receives this information and sends a corresponding instruction to the first driving member 18. At this time, the first driving member 18 can adjust the sliding frame 17 to the corresponding position, thereby dispersing the accumulated candies through the material shifting part.
[0027] The above, such as Figure 5 、 Figure 6 As shown, the material-dispensing portion includes a sliding frame 22 and a slide groove 25. The sliding frame 22 is slidably installed on the sliding frame 17, and a bracket 23 is rotatably installed on the bottom of the sliding frame 22. Several material-dispensing rods 24 are fixedly installed at equal distances on the bracket 23. Among them, the output end of the second driving member 21 is fixedly connected to the sliding frame 22, and a slide groove 25 is opened on the bracket 23, and the slide groove 25 is slidably matched with the shifting rod 20.
[0028] Specifically, when the second driving member 21 is in motion, the second driving member 21 drives the sliding frame 22 to move until the material-dispensing rod 24 on the bracket 23 approaches the conveyor belt 4, and then drives the lever 20 through the rotating cylinder 19. At this time, the lever 20 is slidably connected with the slide groove 25 on the bracket 23. As the rotating cylinder 19 drives the lever 20 to rotate, the lever 20 and the slide groove 25 slide back and forth, and the bracket 23 swings at the same time, so that the accumulated candies are dispersed through the setting of the material-dispensing rod 24.
[0029] It should be noted that the material tapping rod 24 is made of a flexible material such as rubber to reduce damage to the candy caused by the material tapping rod 24 during actual use.
[0030] The above, such as Figure 5 、 Figure 6 As shown, the driving portion includes a driven helical gear 26, a rotating shaft 27 and a driving motor 29. The driven helical gear 26 is coaxially fixedly mounted on the rotating cylinder 19. The rotating shaft 27 is rotatably mounted inside the mounting frame 16. A driving helical gear 28 is slidably mounted on the rotating shaft 27. The driving helical gear 28 is engaged with the driven helical gear 26. The driving helical gear 28 is rotatably mounted on the sliding frame 17. The driving motor 29 is fixedly mounted on the mounting frame 16, and the output end of the driving motor 29 is fixedly connected to the rotating shaft 27.
[0031] Specifically, when the rotating cylinder 19 is driven to rotate, the driving motor 29 is started to drive the rotating shaft 27 to rotate, the rotating shaft 27 drives the driving bevel gear 28 to rotate, and the driving bevel gear 28 drives the driven bevel gear 26 to rotate, thereby driving the rotating cylinder 19 to rotate. When the position of the sliding frame 17 is adjusted, the driving bevel gear 28 slides relative to the rotating shaft 27 without affecting the transmission.
[0032] like Figure 2 、 Figure 4 As shown, the air supply assembly is installed inside the device frame 1, and is used to supply low-temperature air between the device frame 1 and the dust-proof frame 2, so as to reduce the temperature of the candies during long-term transportation. The air supply assembly includes an air supply frame 30 and a ventilation duct 32. Several air supply frames 30 are fixedly installed at equal distances inside the device frame 1. An air supply frame 30 is provided between every two support rollers 6. Ventilation slots 31 are provided on both sides of each air supply frame 30. The ventilation duct 32 is provided outside the device frame 1, and a joint 33 is provided outside the ventilation duct 32. The end of each air supply frame 30 close to the ventilation duct 32 is connected to the ventilation duct 32 through a valve 34.
[0033] Specifically, when it is necessary to cool the candies during transportation to reduce the risk of candies melting, the relevant refrigeration equipment is first connected to the ventilation pipe 32 through the joint 33, and then the corresponding valve 34 is opened according to actual needs. At this time, the refrigeration equipment sends cold air into the corresponding air supply rack 30 through the ventilation pipe 32, and then discharges the cold air through the ventilation slots 31 on both sides of the air supply rack 30. The discharged cold air enters the interior of the conveyor belt 4 and is discharged between the conveyor belt 4 and the dustproof rack 2 through the through hole 8 on the conveyor belt 4, thereby reducing the temperature of the candies.
[0034] It should be added that when opening the valves 34, it is necessary to determine which valves 34 to open and the number of valves 34 to open based on actual conditions. For example, when the temperature of the candies entering the conveyor belt 4 is high, more valves 34 near the lower hopper 10 should be opened. If the conveying distance is long and the external environment is hot, then the corresponding valves 34 should be opened so that the opened valves 34 are evenly distributed.
[0035] The working principle or usage process of this application is as follows: In the process of conveying candies, the driving device 5 is first turned on, and the driving device 5 drives one of the transmission rollers 3 to rotate, thereby driving the conveyor belt 4 to move through the cooperation of the other transmission roller 3, and then pouring the candies into the feed hopper 9. Under the action of the buffer pad 12, the candies (especially hard candies) are reduced to impact the side wall of the feed hopper 9, thereby causing damage to the surface of the candies. Since there is a gap between the buffer pad 12 and the inner wall of the feed hopper 9, that is, when the hard candies fall on the buffer pad 12, they will be elastically buffered by the buffer pad 12 itself. At the same time, the gap also has a certain compensation effect, thereby improving the protection effect of the candies. Through the setting of the discharge pad 14, when the candies enter the lower hopper 10, they will contact the discharge pad 14. The upper part of the discharge pad 14 is set to an arc and through the setting of several arc-shaped guide grooves 15, it is convenient to guide the discharge direction of the candies and at the same time play a role in dispersing the candies, so that when the candies enter the conveyor belt 4, the accumulation of multiple candies is reduced.
[0036] When the candies enter the conveyor belt 4, the conveyor belt 4 can transport the candies to the next link. During this process, when it is found that the candies on the conveyor belt 4 are piled up, the first driving member 18 is turned on, and the first driving member 18 pushes the sliding frame 17 to move until the sliding frame 17 is moved to the specified position. At this time, the active bevel gear 28 slides relative to the rotation without affecting the transmission. Then the second driving member 21 is turned on, and the second driving member 21 drives the sliding frame 22 to move until the material rod 24 on the bracket 23 is close to the conveyor belt 4. At this time, the driving member 21 is turned on. The driving motor 29 drives the rotating shaft 27 to rotate, the rotating shaft 27 drives the driving bevel gear 28 to rotate, and the driving bevel gear 28 drives the driven bevel gear 26 to rotate, thereby driving the rotating cylinder 19 to rotate. Then, the rotating cylinder 19 drives the shifting rod 20. At this time, the shifting rod 20 is slidably connected to the chute 25 on the bracket 23. As the rotating cylinder 19 drives the shifting rod 20 to rotate, the shifting rod 20 and the chute 25 slide back and forth, and the bracket 23 swings, so that the accumulated candies are dispersed by the setting of the shifting rod 24.
[0037] During the transportation process, when the transportation distance is long, some candies that are easy to melt will soften. At this time, the relevant refrigeration equipment is connected to the ventilation pipe 32 through the joint 33, and then the corresponding valve 34 is opened according to actual needs. At this time, the refrigeration equipment sends cold air into the corresponding air supply rack 30 through the ventilation pipe 32, and then discharges it through the ventilation slots 31 on both sides of the air supply rack 30. The discharged cold air enters the interior of the conveyor belt 4 and is discharged between the conveyor belt 4 and the dustproof rack 2 through the through holes 8 on the conveyor belt 4, thereby reducing the temperature of the candies, playing a role in alleviating the melting of the candies, improving the quality of the candies, and reducing the possibility of the candies being damaged before being sent to the next link.
[0038] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. An intelligent conveying device for candy processing, comprising a device frame (1), wherein the device frame (1) comprises a conveying area and a feeding area, and is characterized in that: Also includes: A dustproof frame (2), the dustproof frame (2) being fixedly mounted on the device frame (1); Transmission rollers (3), two transmission rollers (3) are symmetrically and rotatably mounted in the device frame (1), and a conveyor belt (4) is tensioned between the two transmission rollers (3); A driving device (5), wherein the driving device (5) is fixedly mounted on the device frame (1), and an output end of the driving device (5) is fixedly connected to one of the transmission rollers (3); Support rollers (6), a plurality of support rollers (6) are rotatably mounted on the device frame (1) at equal intervals, the plurality of support rollers (6) are located between two transmission rollers (3), and the support rollers (6) are in contact with the conveyor belt (4); A feeding assembly, the feeding assembly being installed in the feeding area and used for feeding candies onto the conveyor belt (4); A distribution component is installed on the dustproof frame (2) and is used to disperse the candies piled together after placing them on the conveyor belt (4); An air supply component is installed inside the device frame (1) and is used to supply low-temperature air between the device frame (1) and the dustproof frame (2) to reduce the temperature of the candies during long-term transportation.
2. The intelligent conveying device for candy processing according to claim 1, characterized in that: The conveyor belt (4) is configured as a concave structure with high sides and a low middle. A plurality of strip-shaped protrusions (7) are provided on the conveyor belt (4) at equal intervals. The strip-shaped protrusions (7) are made of a flexible material.
3. The intelligent conveying device for candy processing according to claim 2, characterized in that: Several groups of through holes (8) are arranged at equal distances on the conveyor belt (4), one group of through holes (8) is arranged between every two of the strip-shaped protrusions (7), and each group of through holes (8) has several through holes arranged at equal distances.
4. The intelligent conveying device for candy processing according to claim 1, characterized in that: The feed assembly comprises: A feed hopper (9), the feed hopper (9) being fixedly mounted in the feed area; A lower hopper (10) is installed at the bottom of the feed hopper (9) via a plurality of spring connectors (11), a gap exists between the lower hopper (10) and the feed hopper (9), and the plurality of spring connectors (11) are arranged at equal distances.
5. The intelligent conveying device for candy processing according to claim 4, characterized in that: Also includes: A buffer pad (12), the buffer pad (12) is fixedly installed inside the feed hopper (9), a gap exists between the buffer pad (12) and the inner wall of the feed hopper (9), and a plurality of rubber strips (13) are provided at equal distances between the buffer pad (12) and the inner wall of the feed hopper (9); A discharge pad (14) is fixedly installed inside the lower hopper (10), the upper side of the discharge pad (14) is arranged in an arc shape, and a plurality of arc-shaped guide grooves (15) are arranged at equal distances on the upper side of the discharge pad (14).
6. The intelligent conveying device for candy processing according to claim 5, characterized in that: The distribution components include: A mounting frame (16), wherein the mounting frame (16) is fixedly mounted on the dustproof frame (2); A sliding frame (17), wherein the sliding frame (17) is slidably mounted inside the mounting frame (16); a first driving member (18), wherein the first driving member (18) is fixedly mounted on the mounting frame (16), and an output end of the first driving member (18) is fixedly connected to the sliding frame (17); A rotating cylinder (19), the rotating cylinder (19) being rotatably mounted inside the sliding frame (17), and a shifting rod (20) being eccentrically and slidably mounted inside the rotating cylinder (19); A second driving member (21), the second driving member (21) being fixedly mounted inside the sliding frame (17); A material shifting portion, which is mounted on the bottom of the second driving member (21) and is used to shift materials; A driving unit is installed inside the sliding frame (17) and is used to drive the rotating cylinder (19) to rotate.
7. The intelligent conveying device for candy processing according to claim 6, characterized in that: The material shifting part includes: A sliding frame (22), the sliding frame (22) is slidably mounted on the sliding frame (17), a bracket (23) is rotatably mounted on the bottom of the sliding frame (22), and a plurality of material-selecting rods (24) are fixedly mounted on the bracket (23) at equal distances; Wherein, the output end of the second driving member (21) is fixedly connected to the sliding frame (22); A slide groove (25) is provided on the bracket (23), and the slide groove (25) is slidably matched with the shifting rod (20).
8. The intelligent conveying device for candy processing according to claim 7, characterized in that: The driving unit includes: A driven helical gear (26), the driven helical gear (26) being coaxially fixedly mounted on the rotating cylinder (19); A rotating shaft (27), the rotating shaft (27) is rotatably mounted inside the mounting frame (16), a driving bevel gear (28) is slidably mounted on the rotating shaft (27), the driving bevel gear (28) is meshed with the driven bevel gear (26), and the driving bevel gear (28) is rotatably mounted on the sliding frame (17); A driving motor (29), wherein the driving motor (29) is fixedly mounted on the mounting frame (16), and an output end of the driving motor (29) is fixedly connected to the rotating shaft (27).
9. The intelligent conveying device for candy processing according to claim 8, characterized in that: The air supply assembly includes: Air supply racks (30), wherein a plurality of the air supply racks (30) are fixedly installed at equal distances inside the device rack (1), an air supply rack (30) is provided between every two support rollers (6), and ventilation slots (31) are provided on both sides of each air supply rack (30); A ventilation duct (32) is provided outside the device frame (1), a joint (33) is provided outside the ventilation duct (32), and one end of each air supply frame (30) close to the ventilation duct (32) is connected to the ventilation duct (32) through a valve (34).