A mooncake filling conveying device and a conveying method
Through the design of components such as storage hoppers, push plates, cutting boards and rotary plates that work together, the precise slicing and uniform transport of mooncake fillings are achieved, and the inaccurate quantitative control caused by filling pores is solved, which improves the taste and appearance of mooncakes, reduces waste and defective rates, and improves production efficiency.
Patent Information
- Application Number
- CN202510344820.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2045-03-24
AI Technical Summary
During the transportation process, the mooncake filling has pores after being divided into small portions, resulting in inaccurate quantitative control, which affects the consistency of the taste and appearance of the mooncake.
The components such as storage hopper, push plate, cutting board, baffle, cutting hole, extrusion block, moving rod and other components work together. The extrusion block is driven to push the moving rod and push plate back through the rotating disc. The cutting board is controlled to advance with magnetic force, and the linkage of the ring gear, connecting gear and cam can achieve uniform slicing and quantitative transportation of the filling, and ensure the compactness of the filling through the aerating cooling and vibration mechanism.
It realizes accurate and accurate slitting and uniform transportation of the filling, avoids the problems of uneven temperature and excessive surface cooling, improves the taste and appearance of mooncakes, reduces waste and defective rates during the production process, and improves production efficiency.
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Figure CN119858760B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of mooncake processing, and specifically provides a mooncake filling conveying device and a conveying method. Background Art
[0002] For example, a mooncake material distributing device with the publication number CN219585368U. The above patent discloses a mooncake material distributing device, including a bracket, a material bin is installed through the bracket, a bin cover is arranged at the upper end of the material bin, a blanking shaft is arranged at the axis center of the bin cover, a bearing and a shaft seal are arranged between the blanking shaft and the bin cover, a material pipe is arranged at the lower end of the material bin, the blanking shaft is inserted into the material pipe, a spiral sheet is arranged on the part of the blanking shaft inserted into the material pipe, a feeding groove is arranged at a position near the top on the outer side of the material bin, and a driving motor is installed on the side surface of the bin cover, and the driving motor is connected to the blanking shaft. This device can achieve uniform stacking of the filling through the extrusion material distribution method, making the size of the filling material distribution consistent.
[0003] In the traditional mooncake production process, the processing and conveying links of the filling are particularly crucial, directly affecting the finished product quality and taste of mooncakes. At present, mooncake fillings usually adopt a mixed method of solids and non-solids to enrich the taste and flavor. However, in the filling conveying stage, it is first necessary to divide it into small portions for subsequent quantitative transmission.
[0004] However, there are many technical problems in this process. Due to the characteristics of the filling's own structure, there are inevitably pores between the divided small portions of the filling. During the transmission process of the filling, due to being divided into small portions, these pores will cause inaccurate quantitative control of the filling during quantitative transmission, thereby affecting the consistency of the taste and appearance of mooncakes.
[0005] Therefore, we propose a mooncake filling conveying device and a conveying method to solve the above-mentioned problems. Summary of the Invention
[0006] The purpose of the present invention is to provide a mooncake filling conveying device and a conveying method to solve the problems raised in the above background art.
[0007] To achieve the above purpose, the present invention provides the following technical solutions:
[0008] A mooncake filling conveying device, comprising a base platform and a rotating disk. A rotating control mechanism is connected through the rotating disk, and the rotating control mechanism is arranged under the base platform. Four heat preservation pads are arranged on the rotating disk. A support frame is fixedly connected to the base platform. The left end of the support frame is fixedly connected with a storage hopper. A gear ring is fixedly connected under the rotating disk. A rotating extrusion mechanism arranged on the base platform is meshed with the side surface of the gear ring. An air adding and temperature reducing mechanism and a vibration mechanism fixedly connected to the base platform are arranged outside the rotating extrusion mechanism. Guide grooves are respectively arranged on the left and right sides of the storage hopper. A sliding pushing mechanism is slidably connected in the guide grooves. An active material distributing mechanism is arranged on the right side surface of the sliding pushing mechanism, and the active material distributing mechanism is arranged on the side surface of the storage hopper. Four extrusion blocks are fixedly connected outside the rotating disk.
[0009] Preferably, the positions of the extrusion blocks correspond to the positions of the heat preservation pads. The four extrusion blocks are arranged at equal circumferential intervals on the outer arc surface of the rotating disk. The sliding pushing mechanism is arranged outside the extrusion blocks. A bearing plate is slidably connected to the back surface of the rotating disk, and the bearing plate is fixedly connected to the base platform. A pushing and cleaning component fixedly connected to the base platform is arranged in the rotating control mechanism.
[0010] Preferably, the rotating control mechanism includes a rotating tube connected through the rotating disk. A first bearing is sleeved outside the rotating tube, and the first bearing is connected through the base platform. The pushing and cleaning component is arranged in the rotating tube. A connecting gear is fixedly connected outside the rotating tube, and a driving wheel set arranged on the base platform is meshed with the outside of the connecting gear.
[0011] Preferably, the rotating extrusion mechanism includes a rotating gear meshed with the gear ring. A connecting shaft is connected through the lower part of the rotating gear. A cam is fixedly connected outside the connecting shaft. The cam is slidably connected outside the air adding and temperature reducing mechanism and the vibration mechanism. A second bearing is sleeved outside the connecting shaft, and the second bearing is arranged on the base platform.
[0012] Preferably, the air adding and temperature reducing mechanism includes an air storage cylinder and a contact rod arranged outside the cam. A round plate is slidably connected in the air storage cylinder. A first elastic component is fixedly connected to the front surface of the round plate, and the first elastic component is arranged in the air storage cylinder. A cross bar is fixedly connected to the back surface of the round plate. The cross bar penetrates and is slidably connected to the back surface of the air storage cylinder. The cross bar is fixedly connected to the contact rod. An air inlet valve and an air outlet valve are communicated with the side surface of the air storage cylinder. An air outlet pipe is communicated with the outside of the air outlet valve. The other end of the air outlet pipe is communicated with the storage hopper. An air inlet pipe is communicated with the end of the air inlet valve. A connecting cover is communicated with the end of the air inlet pipe, and the position of the connecting cover corresponds to the position of the rotating disk.
[0013] Preferably, the vibration mechanism includes a contact block slidably connected to the outside of the cam. An extension rod is fixedly connected to the side surface of the contact block. The position of the upper end of the extension rod corresponds to the position of the support frame. A linear bearing is slidably connected to the outside of the extension rod. The linear bearing is fixedly connected to the base table. A second elastic component fixedly connected to the linear bearing is sleeved outside the extension rod.
[0014] Preferably, the sliding and pushing mechanism includes a push plate. A blanking hole is formed in the push plate. The size of the blanking hole is larger than the size of the discharge port at the bottom end of the storage hopper. Two intermediate rods are fixedly connected to the push plate. Guide rods are fixedly connected to the outside of the intermediate rods. The guide rods are slidably connected in the guide grooves. Two vertical rods are fixedly connected to the push plate. First magnetic rods are fixedly connected to the side surfaces of the vertical rods. A moving rod is fixedly connected to the outside of the push plate. A sliding sleeve is slidably connected to the outside of the moving rod. The sliding sleeve is fixedly connected to the side surface of the storage hopper. The moving rod is slidably connected to the side surface of the extrusion block. A third elastic component fixedly connected to the sliding sleeve is sleeved outside the moving rod.
[0015] Preferably, the movable material distribution mechanism includes a cutting plate and a baffle arranged outside the push plate. The baffle is slidably connected to the bottom end of the storage hopper. The cutting plate penetrates and is slidably connected to the back surface of the storage hopper. A second magnetic rod is connected through the cutting plate. The sides of the first magnetic rod and the second magnetic rod close to each other have opposite magnetic properties.
[0016] Preferably, a sliding strip is slidably connected to the inside of the cutting plate. The sliding strip is fixedly connected to the side surface of the storage hopper. A fourth elastic component arranged outside the storage hopper is fixedly connected to the side surface of the cutting plate. A guide sleeve is connected through the side surface of the baffle. A support rod arranged outside the storage hopper is slidably connected to the inside of the guide sleeve. A limiting plate is fixedly connected to the end of the support rod. A fifth elastic component fixedly connected to the guide sleeve and the limiting plate is sleeved outside the support rod.
[0017] A conveying method of a mooncake filling conveying device, the method includes:
[0018] Directly inject the filling into the storage hopper, and then control the driving wheel set to control the connecting gear, the rotating pipe and the rotating disk to rotate. When the rotating disk rotates, it will use the extrusion block to push the moving rod and the push plate to move backward. During the process of the push plate moving backward, it will push the baffle to move backward. During the movement of the baffle, it will separate from the storage hopper. When the first magnetic rod approaches the second magnetic rod, the magnetic force between the two will control the cutting plate to move forward. The cutting plate cuts the filling in the storage hopper. When the blanking hole moves to directly below the storage hopper, the cut filling falls on the heat preservation pad through the blanking hole;
[0019] While the rotating disk rotates, it controls the rotation of the connecting gear and the cam through the gear ring. During the rotation of the cam, it will squeeze the contact block and the contact rod. During the movement of the contact block and the cross bar, the gas in the air storage cylinder is squeezed through the circular plate and injected into the storage hopper through the air outlet valve and the air outlet pipe. The air pressure in the storage hopper will gradually increase. As the extrusion block rotates, it will gradually separate from the moving rod. Subsequently, the third elastic component controls the reset of the push plate, the fourth elastic component controls the backward movement of the cutting plate, and the fifth elastic component controls the forward movement of the baffle to block the bottom end of the storage hopper. While the cam rotates, it will squeeze the contact block to move backward. When the convex position of the cam separates from the contact block, the second elastic component controls the reset of the extension rod to strike on the support frame, realizing the knocking vibration of the filling in the storage hopper. The gradually increasing air pressure and vibration make the filling more dense, reducing the situation of inaccurate material feeding caused by the pores in the filling;
[0020] While the contact rod resets backward, the air storage cylinder will suck the gas at the lower side of the storage hopper through the air inlet valve, the air inlet pipe and the connecting cover, keep the filling warm through the heat preservation pad, and the accelerating flowing gas can increase the heat dissipation efficiency so that the filling can be cooled simultaneously inside and outside more evenly. When the filling rotates to the last side position, the filling is pushed onto the bearing plate through the pushing and cleaning component, and at the same time, the sundries and grease on the heat preservation pad are cleaned.
[0021] Compared with the prior art, the beneficial effects of the present invention are:
[0022] 1. In the present invention, a storage hopper, a push plate, a cutting plate, a baffle, a feeding hole, an extrusion block, and a moving rod are adopted. Components such as the storage hopper, the push plate, the cutting plate, and the baffle work together to ensure the accuracy of the filling during cutting and conveying. The rotating disk drives the extrusion block to push the moving rod and the push plate backward, thereby driving the baffle to separate from the storage hopper, creating conditions for the forward movement of the cutting plate. When the first magnetic rod approaches the second magnetic rod, the magnetic force between them precisely controls the forward movement of the cutting plate to evenly cut the filling in the storage hopper. When the feeding hole is aligned directly below the storage hopper, the cut filling smoothly passes through the discharge port and falls on the heat preservation pad, achieving quantitative conveying. During the rotation of the rotating disk, through the linkage of the gear ring, the connecting gear, and the cam, the contact block and the contact rod are squeezed, and then the circular plate is pushed to squeeze the gas in the air storage cylinder. The gas is injected into the storage hopper through the air outlet valve and the air pipe, gradually increasing the air pressure in the hopper, making the filling denser. This design effectively solves the problem of porosity of the filling and improves the taste and appearance of the mooncake. By using the driving wheel set to control the intermittent rotation of the connecting gear, the intermittent and smooth feeding and rotating conveying of the raw materials in the storage hopper are achieved. This design not only ensures the uniform conveying of the filling but also avoids problems such as uneven temperature and excessive surface cooling caused by continuous conveying. The entire device has a compact structure and is easy to operate, capable of achieving efficient and stable conveying of mooncake filling. Its precise control and design of dense filling greatly reduce waste and defective rates during the mooncake production process and improve production efficiency.
[0023] 2. In the present invention, a heat preservation pad, a contact block, an extension rod, a support frame, a second elastic component, and an air inlet valve are adopted. During the rotation of the cam, it precisely squeezes the contact block and the extension rod, causing them to move. The second elastic component ensures that the extension rod can quickly reset and strike the support frame, thereby causing the support frame and the storage hopper to vibrate. This vibration cooperates with the increased air pressure to make the filling in the storage hopper achieve a more ideal dense effect, providing a solid guarantee for the taste and appearance of the mooncake. The air storage cylinder sucks gas through the air inlet pipe and the connecting cover, accelerating the gas flow in the lower space of the storage hopper. At the same time, the design of the heat preservation pad enables the filling to maintain a certain temperature during conveying, avoiding excessive cooling. The accelerated gas flow effectively improves the heat dissipation efficiency, enabling the filling to achieve balanced internal and external heat dissipation and avoiding problems that affect the quality of the mooncake due to excessive temperature difference. The heat preservation pad of the device not only plays a heat preservation role but also further improves the stability of the filling by accelerating the gas flow. This enables the filling to maintain a uniform state during conveying, providing a more reliable raw material guarantee for subsequent mooncake production. The overall design of the present invention not only improves the density and stability of the filling but also optimizes the technological process of mooncake production. Through precise control and efficient conveying, it greatly reduces waste and defective rates during the production process and improves production efficiency and finished product quality. Brief Description of the Drawings
[0024] To more clearly illustrate the technical solutions in the present invention or the prior art, the following will briefly introduce the attached drawings required in the description of the embodiments or the prior art. Obviously, the attached drawings in the following description are only those of the present invention. For those of ordinary skill in the art, without creative efforts, other attached drawings can also be obtained based on these drawings.
[0025] Figure 1 Schematic diagram of the overall three-dimensional structure of the present invention;
[0026] Figure 2 Schematic diagram of the upward perspective three-dimensional structure of the base of the present invention;
[0027] Figure 3 Schematic diagram of the three-dimensional structure of the rotating disk of the present invention;
[0028] Figure 4 Schematic diagram of the upward perspective three-dimensional structure of the rotating disk of the present invention;
[0029] Figure 5 Schematic diagram of the three-dimensional structure of the rotary extrusion mechanism of the present invention;
[0030] Figure 6 Schematic diagram of the three-dimensional sectional structure of the gas injection and cooling mechanism of the present invention;
[0031] Figure 7 Schematic diagram of the three-dimensional structure of the vibration mechanism of the present invention;
[0032] Figure 8 Schematic diagram of the three-dimensional structure of the sliding push mechanism of the present invention;
[0033] Figure 9 Schematic diagram of the three-dimensional structure of the movable material distributing mechanism of the present invention.
[0034] In the figure:
[0035] 1. Bottom platform; 2. Rotating disk; 3. Rotation control mechanism; 31. Rotating tube; 32. First bearing; 33. Connecting gear; 34. Driving wheel set; 4. Pushing and cleaning component; 5. Bearing plate; 6. Heat preservation pad; 7. Storage hopper; 8. Support frame; 9. Ring gear; 10. Rotating extrusion mechanism; 101. Rotating gear; 102. Connecting shaft; 103. Cam; 104. Second bearing; 11. Air adding and temperature reducing mechanism; 1101. Contact rod; 1102. Air storage cylinder; 1103. Circular plate; 1104. First elastic component; 1105. Cross bar; 1106. Air outlet valve; 1107. Air outlet pipe; 1108. Air inlet valve; 1109. Air inlet pipe; 1110. Connecting cover; 12. Vibration mechanism; 121. Contact block; 122. Extension rod; 123. Linear bearing; 124. Second elastic component; 13. Guide groove; 14. Sliding and pushing mechanism; 141. Push plate; 142. Feeding hole; 143. Intermediate rod; 144. Guide rod; 145. Vertical rod; 146. First magnetic rod; 147. Moving rod; 148. Sliding sleeve; 149. Third elastic component; 15. Active material distributing mechanism; 151. Baffle; 152. Slitting plate; 153. Second magnetic rod; 154. Sliding strip; 155. Fourth elastic component; 156. Guide sleeve; 157. Support rod; 158. Limiting plate; 159. Fifth elastic component; 16. Extrusion block. Detailed implementation manners
[0036] To make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to specific embodiments.
[0037] It should be noted that, unless otherwise defined, the technical terms or scientific terms used in the present invention should have the ordinary meanings understood by those with ordinary skills in the field to which the present invention belongs. The "first", "second" and similar terms used in the present invention do not indicate any order, quantity or importance, but are only used to distinguish different components. The terms such as "including" or "comprising" mean that the elements or objects appearing before this term cover the elements or objects listed after this term and their equivalents, without excluding other elements or objects. The terms such as "connection" or "coupling" are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect. The terms such as "upper", "lower", "left", "right", etc. are only used to represent relative positional relationships, and when the absolute position of the described object changes, the relative positional relationship may also change accordingly.
[0038] Embodiment 1: Please refer to Figures 1-4 ,
[0039] In this embodiment: A mooncake filling conveying device includes a base table 1 and a rotating disk 2. A rotating control mechanism 3 is connected through the rotating disk 2. The rotating control mechanism 3 is arranged under the base table 1. Four heat preservation pads 6 are arranged on the rotating disk 2. A support frame 8 is fixedly connected to the base table 1. A storage hopper 7 is fixedly connected to the left end of the support frame 8. A gear ring 9 is fixedly connected under the rotating disk 2. A rotating extrusion mechanism 10 arranged on the base table 1 is engaged with the side surface of the gear ring 9. An air adding and temperature reducing mechanism 11 and a vibration mechanism 12 fixedly connected to the base table 1 are arranged outside the rotating extrusion mechanism 10. Guide grooves 13 are respectively opened on the left and right sides of the storage hopper 7. A sliding pushing mechanism 14 is slidably connected in the guide grooves 13. An active material distributing mechanism 15 is arranged on the right side surface of the sliding pushing mechanism 14. The active material distributing mechanism 15 is arranged on the side surface of the storage hopper 7. Four extrusion blocks 16 are fixedly connected outside the rotating disk 2.
[0040] The positions of the extrusion blocks 16 correspond to the positions of the heat preservation pads 6. The four extrusion blocks 16 are arranged at equal circumferential distances on the outer arc surface of the rotating disk 2. The sliding pushing mechanism 14 is arranged outside the extrusion blocks 16. A carrier plate 5 is slidably connected to the back surface of the rotating disk 2. The carrier plate 5 is fixedly connected to the base table 1. A pushing and cleaning component 4 fixedly connected to the base table 1 is arranged in the rotating control mechanism 3.
[0041] The pushing and cleaning component 4 can push down the filling on the heat preservation pad 6 and can wipe and clean the oil stain on the heat preservation pad 6; during the rotation of the extrusion block 16, it will push the moving rod 147 to move slightly.
[0042] The rotating control mechanism 3 includes a rotating tube 31 connected through the rotating disk 2. A first bearing 32 is sleeved outside the rotating tube 31. The first bearing 32 is connected through the base table 1. The pushing and cleaning component 4 is arranged in the rotating tube 31. A connecting gear 33 is fixedly connected outside the rotating tube 31. A driving wheel set 34 arranged on the base table 1 is externally engaged with the connecting gear 33.
[0043] The driving wheel set 34 controls the rotation of the connecting gear 33, realizes the control of the rotation of the rotating tube 31 and the rotating disk 2, and can accurately and intermittently control the rotation and conveying process of the filling.
[0044] The rotating extrusion mechanism 10 includes a rotating gear 101 engaged with the gear ring 9. A connecting shaft 102 is connected through under the rotating gear 101. A cam 103 is fixedly connected outside the connecting shaft 102. The cam 103 is slidably connected outside the air adding and temperature reducing mechanism 11 and the vibration mechanism 12. A second bearing 104 is sleeved outside the connecting shaft 102. The second bearing 104 is arranged on the base table 1.
[0045] The second bearing 104 positions and supports the connecting shaft 102, ensures the stable and smooth rotation of the rotating gear 101 and the cam 103, and keeps the gear ring 9 and the rotating gear 101 engaged.
[0046] Embodiment 2: This embodiment is an improvement based on Embodiment 1. Specifically, please refer to Figures 2-9 ,
[0047] In this embodiment: The air adding and temperature reducing mechanism 11 includes an air storage cylinder 1102 and a contact rod 1101 arranged outside the cam 103. A circular plate 1103 is slidably connected inside the air storage cylinder 1102. A first elastic component 1104 is fixedly connected to the front surface of the circular plate 1103. The first elastic component 1104 is arranged inside the air storage cylinder 1102. A cross bar 1105 is fixedly connected to the back surface of the circular plate 1103. The cross bar 1105 penetrates and is slidably connected to the back surface of the air storage cylinder 1102. The cross bar 1105 is fixedly connected to the contact rod 1101. An air inlet valve 1108 and an air outlet valve 1106 are connected to the side surface of the air storage cylinder 1102. An air outlet pipe 1107 is connected to the outside of the air outlet valve 1106. The other end of the air outlet pipe 1107 is connected to the storage hopper 7. An air inlet pipe 1109 is connected to the end of the air inlet valve 1108. The end of the air inlet pipe 1109 is connected to a connection cover 1110. The position of the connection cover 1110 corresponds to the position of the rotating disk 2.
[0048] During the rotation of the cam 103, it will squeeze the contact block 121. During the movement of the contact block 121 and the cross bar 1105, the gas inside the air storage cylinder 1102 is squeezed through the air outlet valve 1106 and the air outlet pipe 1107 and injected into the storage hopper 7. The air pressure inside the storage hopper 7 will gradually increase. When the convex position of the cam 103 is away from the contact block 121, the circular plate 1103 will reset. During the reset process of the circular plate 1103, it will suck external gas into the air storage cylinder 1102 through the air inlet valve 1108. The air inlet pipe 1109 and the connection cover 1110 will suck the gas at the lower side position of the storage hopper 7, realizing the accelerated heat dissipation of the filling on the heat preservation pad 6.
[0049] The vibration mechanism 12 includes a contact block 121 slidably connected outside the cam 103. An extension rod 122 is fixedly connected to the side surface of the contact block 121. The upper end position of the extension rod 122 corresponds to the position of the support frame 8. A linear bearing 123 is slidably connected to the outside of the extension rod 122. The linear bearing 123 is fixedly connected to the base table 1. A second elastic component 124 fixedly connected to the linear bearing 123 is sleeved outside the extension rod 122.
[0050] The linear bearing 123 guides the movement of the extension rod 122 in the machine case, ensuring that the movement of the extension rod 122 is more accurate and stable. When the cam 103 rotates, it will squeeze the contact block 121 to move backward. When the convex position of the cam 103 is separated from the contact block 121, the second elastic component 124 controls the extension rod 122 to reset and knock on the support frame 8, realizing the knocking vibration of the filling in the storage hopper 7. The gradually increasing air pressure and vibration effect make the filling denser.
[0051] The sliding pushing mechanism 14 includes a push plate 141. A blanking hole 142 is formed in the push plate 141. The size of the blanking hole 142 is larger than the size of the discharge port at the bottom end of the storage hopper 7. Two intermediate rods 143 are fixedly connected to the push plate 141. A guide rod 144 is fixedly connected to the outside of the intermediate rod 143. The guide rod 144 is slidably connected in the guide groove 13. Two vertical rods 145 are fixedly connected to the push plate 141. A first magnetic rod 146 is fixedly connected to the side surface of the vertical rod 145. A moving rod 147 is fixedly connected to the outside of the push plate 141. A sliding sleeve 148 is slidably connected to the outside of the moving rod 147. The sliding sleeve 148 is fixedly connected to the side surface of the storage hopper 7. The moving rod 147 is slidably connected to the side surface of the extrusion block 16. A third elastic component 149 fixedly connected to the sliding sleeve 148 is sleeved on the outside of the moving rod 147.
[0052] The cooperation between the guide rod 144 and the guide groove 13 realizes the stable guiding of the push plate 141 during the moving process. The push plate 141 can accurately and stably push the baffle plate 151 to move. The first magnetic rod 146 and the second magnetic rod 153 can move relatively stably. The moving rod 147 can utilize the rotation of the extrusion block 16 to control the moving rod 147 to move a certain amplitude, so that the moving rod 147 and the push plate 141 can be driven by the extrusion block 16 to move reciprocally within a certain amplitude. Cooperating with the third elastic component 149, it can ensure the stable and smooth movement of the push plate 141;
[0053] The movable material distribution mechanism 15 includes a cutting plate 152 and a baffle plate 151 provided outside the push plate 141. The baffle plate 151 is slidably connected to the bottom end of the storage hopper 7. The cutting plate 152 penetrates and is slidably connected to the back of the storage hopper 7. A second magnetic rod 153 is penetrated and connected to the cutting plate 152. The sides of the first magnetic rod 146 and the second magnetic rod 153 close to each other have opposite magnetic properties.
[0054] A sliding bar 154 is slidably connected in the cutting plate 152. The sliding bar 154 is fixedly connected to the side surface of the storage hopper 7. A fourth elastic component 155 provided outside the storage hopper 7 is fixedly connected to the side surface of the cutting plate 152. A guide sleeve 156 is penetrated and connected to the side surface of the baffle plate 151. A support rod 157 provided outside the storage hopper 7 is slidably connected in the guide sleeve 156. A limiting plate 158 is fixedly connected to the end of the support rod 157. A fifth elastic component 159 fixedly connected to the guide sleeve 156 and the limiting plate 158 is sleeved on the outside of the support rod 157.
[0055] The baffle plate 151 and the push plate 141 cooperate to block the bottom end of the storage hopper 7. The blanking hole 142 can guide the filling in the storage hopper 7 to flow downward. The magnetic force between the first magnetic rod 146 and the second magnetic rod 153 controls the movement of the cutting plate 152, so as to realize the division of the filling in the storage hopper 7 by the cutting plate 152. The guide sleeve 156 guides the support rod 157 and the baffle plate 151. The fourth elastic component 155 and the fifth elastic component 159 are used to control the reset actions of the cutting plate 152 and the baffle plate 151.
[0056] A conveying method of a mooncake filling conveying device, the method includes:
[0057] Directly inject the filling into the storage hopper 7, and then control the driving wheel set 34 to control the connecting gear 33, the rotating tube 31 and the rotating disc 2 to rotate. When the rotating disc 2 rotates, it will use the extrusion block 16 to push the moving rod 147 and the push plate 141 to move backward. During the backward movement of the push plate 141, it will push the baffle plate 151 to move backward. During the movement of the baffle plate 151, it will separate from the storage hopper 7. When the first magnetic rod 146 approaches the second magnetic rod 153, the magnetic force between the two will control the cutting plate 152 to move forward, and the cutting plate 152 divides the filling in the storage hopper 7. When the blanking hole 142 moves to directly below the storage hopper 7, the divided filling falls on the heat preservation pad 6 through the blanking hole 142;
[0058] While the rotating disc 2 rotates, it controls the connecting gear 33 and the cam 103 to rotate through the gear ring 9. During the rotation of the cam 103, it will squeeze the contact block 121 and the contact rod 1101. During the movement of the contact block 121 and the cross bar 1105, the gas in the air storage cylinder 1102 is squeezed through the round plate 1103 and injected into the storage hopper 7 through the air outlet valve 1106 and the air outlet pipe 1107. The air pressure in the storage hopper 7 will gradually increase. As the extrusion block 16 rotates, it will gradually separate from the moving rod 147. Then the third elastic component 149 controls the push plate 141 to reset, the fourth elastic component 155 controls the cutting plate 152 to move backward, and the fifth elastic component 159 controls the baffle plate 151 to move forward to block the bottom end of the storage hopper 7. While the cam 103 rotates, it will squeeze the contact block 121 to move backward. When the convex position of the cam 103 separates from the contact block 121, the second elastic component 124 controls the extension rod 122 to reset and knock on the support frame 8, so as to realize the knocking vibration of the filling in the storage hopper 7. The gradually increasing air pressure and vibration make the filling more dense, reducing the situation of inaccurate blanking caused by the existence of pores in the filling;
[0059] While the contact rod 1101 is reset backward, the air storage cylinder 1102 will suck the gas at the lower side of the storage hopper 7 through the intake valve 1108, the intake pipe 1109 and the connecting cover 1110, conduct certain heat preservation on the stuffing through the heat preservation pad 6, and the accelerating gas can increase the heat dissipation efficiency so that the stuffing can dissipate heat and cool down both inside and outside more evenly. When the stuffing rotates to the position corresponding to the bearing plate 5, the stuffing is pushed onto the bearing plate 5 through the pushing and cleaning component 4, and at the same time, the sundries and grease on the heat preservation pad 6 are cleaned up.
[0060] Those of ordinary skill in the art should understand that: the discussion of any of the above embodiments is exemplary only and is not intended to imply that the scope of the present invention is limited to these examples; under the idea of the present invention, the technical features in the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations in different aspects of the present invention as described above, which are not provided in detail for the sake of brevity.
[0061] The present invention aims to cover all such substitutions, modifications and variations that fall within the broad scope of the appended claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A mooncake filling conveying device, comprising a base (1) and a rotating disk (2), characterized in that: The rotating disk (2) is connected to a rotating control mechanism (3) through and through, and the rotating control mechanism (3) is arranged under the base (1). Four heat-insulating pads (6) are provided on the rotating disk (2). A support frame (8) is fixedly connected to the base (1), and a storage hopper (7) is fixedly connected to the left end of the support frame (8). A gear ring (9) is fixedly connected to the bottom of the rotating disk (2), and the side of the gear ring (9) is engaged with a rotating extrusion mechanism (10) arranged on the base (1). The rotating extruder The structure (10) is provided with an air-adding and cooling mechanism (11) and a vibration mechanism (12) fixedly connected to the base (1), and the left and right sides of the storage hopper (7) are provided with guide grooves (13), and the guide grooves (13) are slidably connected with a sliding push mechanism (14), and the right side of the sliding push mechanism (14) is provided with a movable material distribution mechanism (15), and the movable material distribution mechanism (15) is provided on the side of the storage hopper (7), and the rotating disk (2) is fixedly connected with four extrusion blocks (16); The rotary extrusion mechanism (10) includes a rotary gear (101) meshing with a gear ring (9), a connecting shaft (102) passing through the rotary gear (101), a cam (103) fixedly connected to the outside of the connecting shaft (102), the cam (103) being slidably connected to the outside of the gas filling and cooling mechanism (11) and the vibration mechanism (12), a second bearing (104) being provided on the outer sleeve of the connecting shaft (102), and the second bearing (104) being provided on the base (1); The gas filling and cooling mechanism (11) comprises an air storage cylinder (1102) and a contact rod (1101) slidably connected to the outside of the cam (103); a circular plate (1103) is slidably connected inside the air storage cylinder (1102); a first elastic component (1104) is fixedly connected to the front of the circular plate (1103); the first elastic component (1104) is arranged in the air storage cylinder (1102); a cross bar (1105) is fixedly connected to the back of the circular plate (1103); the cross bar (1105) passes through and is slidably connected to the back of the air storage cylinder (1102); The crossbar (1105) is fixedly connected to the contact rod (1101); the side of the air storage cylinder (1102) is connected to an air inlet valve (1108) and an air outlet valve (1106); the air outlet valve (1106) is connected to an air outlet pipe (1107); the other end of the air outlet pipe (1107) is connected to the storage hopper (7); the end of the air inlet valve (1108) is connected to an air inlet pipe (1109); the end of the air inlet pipe (1109) is connected to a connecting cover (1110); the position of the connecting cover (1110) corresponds to the position of the rotating disk (2); The vibration mechanism (12) includes a contact block (121) slidably connected to the outside of the cam (103), an extension rod (122) is fixedly connected to the side of the contact block (121), the end position of the upper side of the extension rod (122) corresponds to the position of the support frame (8), a linear bearing (123) is slidably connected to the outside of the extension rod (122), the linear bearing (123) is fixedly connected to the base (1), and the outer cover of the extension rod (122) is provided with a second elastic component (124) fixedly connected to the linear bearing (123).
2. A mooncake filling conveying device according to claim 1, characterized in that: The position of the extrusion block (16) corresponds to the position of the heat-insulating pad (6). The four extrusion blocks (16) are equidistantly arranged on the outer arc surface of the rotating disk (2). The sliding pushing mechanism (14) is arranged outside the extrusion block (16). The back of the rotating disk (2) is slidably connected to a supporting plate (5). The supporting plate (5) is fixedly connected to the base (1). The rotation control mechanism (3) is provided with a pushing and cleaning component (4) fixedly connected under the base (1).
3. The mooncake filling conveying device according to claim 2, characterized in that: The rotation control mechanism (3) comprises a rotation tube (31) connected to the rotating disk (2), a first bearing (32) is provided on the outer shell of the rotation tube (31), the first bearing (32) is connected to the base (1), the pushing cleaning assembly (4) is arranged in the rotation tube (31), the rotation tube (31) is fixedly connected to the outside of the connection gear (33), and the connection gear (33) is meshed with a driving wheel group (34) provided on the base (1).
4. The mooncake filling conveying device according to claim 3, characterized in that: The sliding pushing mechanism (14) includes a push plate (141), a feeding hole (142) is provided on the push plate (141), the size of the feeding hole (142) is larger than the size of the discharge port at the bottom end of the storage hopper (7), two intermediate rods (143) are fixedly connected to the push plate (141), a guide rod (144) is fixedly connected to the outside of the intermediate rod (143), and the guide rod (144) is slidably connected in the guide groove (13), and two vertical rods ( 145), the side of the vertical rod (145) is fixedly connected to a first magnetic rod (146), the push plate (141) is fixedly connected to a moving rod (147) on the outside, the moving rod (147) is slidably connected to a sliding sleeve (148) on the outside, the sliding sleeve (148) is fixedly connected to the side of the storage hopper (7), the moving rod (147) is slidably connected to the side of the extrusion block (16), and the outer shell of the moving rod (147) is provided with a third elastic component (149) fixedly connected to the sliding sleeve (148).
5. The mooncake filling conveying device according to claim 4, characterized in that: The movable material dividing mechanism (15) comprises a slitting plate (152) and a baffle (151) provided outside the push plate (141); the baffle (151) is slidably connected to the bottom end of the storage hopper (7); the slitting plate (152) passes through and is slidably connected to the back of the storage hopper (7); a second magnetic rod (153) is passed through and connected to the slitting plate (152); and the first magnetic rod (146) has opposite magnetic properties on the side close to the second magnetic rod (153).
6. The mooncake filling conveying device according to claim 5, characterized in that: A sliding bar (154) is slidably connected inside the slitting plate (152), and the sliding bar (154) is fixedly connected to the side of the storage hopper (7). A fourth elastic component (155) provided outside the storage hopper (7) is fixedly connected to the side of the slitting plate (152). A guide sleeve (156) is passed through the side of the baffle (151). A support rod (157) provided outside the storage hopper (7) is slidably connected inside the guide sleeve (156). The end of the support rod (157) is fixedly connected to a limiting plate (158). The outer sleeve of the support rod (157) is provided with a fifth elastic component (159) fixedly connected to the guide sleeve (156) and the limiting plate (158).
7. A method for conveying mooncake fillings, according to the mooncake fillings conveying device of claim 6, characterized in that: The method comprises: The filling is directly injected into the storage hopper (7), and then the driving wheel group (34) is controlled to control the connecting gear (33), the rotating tube (31) and the rotating disk (2) to rotate. The rotation of the rotating disk (2) will use the extrusion block (16) to push the moving rod (147) and the push plate (141) to move backward. During the backward movement of the push plate (141), the baffle (151) is pushed to move backward. During the movement of the baffle (151), it is separated from the storage hopper (7). When the first magnetic rod (146) approaches the second magnetic rod (153), the magnetic force between the two will control the cutting plate (152) to move forward. The cutting plate (152) cuts the filling in the storage hopper (7). When the discharge hole (142) moves to the bottom of the storage hopper (7), the cut filling falls on the insulation pad (6) through the discharge hole (142); As the rotating disk (2) rotates, the connecting gear (33) and the cam (103) are controlled to rotate by the gear ring (9). During the rotation of the cam (103), the contact block (121) and the contact rod (1101) are squeezed. During the movement of the contact block (121) and the crossbar (1105), the gas in the gas storage cylinder (1102) is squeezed by the circular plate (1103) and injected into the storage hopper (7) through the outlet valve (1106) and the outlet pipe (1107). The gas pressure in the storage hopper (7) gradually increases, and the squeezing block (16) gradually separates from the moving rod (147) as it rotates. Then, the third elastic component (149) controls the push plate (141). Reset, the fourth elastic component (155) controls the cutting plate (152) to move backward, the fifth elastic component (159) controls the baffle (151) to move forward, and blocks the bottom end of the storage hopper (7). The cam (103) rotates while squeezing the contact block (121) to move backward. When the cam (103) protrudes from the contact block (121), the second elastic component (124) controls the extension rod (122) to reset and knock on the support frame (8), thereby achieving knocking and vibration of the filling in the storage hopper (7). The gradually increasing air pressure and vibration make the filling more dense, reducing the situation of inaccurate feeding caused by the presence of pores in the filling. When the contact rod (1101) is reset backward, the air storage cylinder (1102) sucks the air from the lower side of the storage hopper (7) through the air inlet valve (1108), the air inlet pipe (1109) and the connecting cover (1110), and the filling is kept warm to a certain extent by the heat insulation pad (6). The accelerated flow of air can increase the heat dissipation efficiency so that the filling can be cooled down more evenly both inside and outside. When the filling rotates to the rearmost position, the filling is pushed onto the supporting plate (5) by the pushing cleaning component (4), and at the same time, the debris and grease on the heat insulation pad (6) are cleaned.
Citation Information
Patent Citations
Moon cake distributing device
CN219585368U
Foaming microsphere feeding device
CN217395515U