Cyclic molding module
By integrating tea pressing, unpacking, and firing within the circulating molding module, the problem of time-consuming transportation in tea processing is solved, achieving an efficient tea production process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHICHUN MASCH (XIAMEN) CO LTD
- Filing Date
- 2025-09-10
- Publication Date
- 2026-07-28
AI Technical Summary
The frequent transfer steps in traditional tea processing lead to time-consuming production and processing procedures, reducing overall processing efficiency.
Design a circulating forming module, including a tea pressing mechanism, a de-clumping unit, a conveying mechanism, and a heating mechanism, to realize the pressing, de-clumping, and roasting operations of tea in the same equipment, thereby reducing the transfer of tea between different equipment.
It improved the overall efficiency of tea processing, reduced equipment downtime, ensured the continuity and stability of production, and increased equipment utilization.
Smart Images

Figure CN224556762U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of tea processing technology, and more specifically, to a recyclable molding module. Background Technology
[0002] In the tea-making process, the tea leaves are first pressed into blocks, then the blocks are broken up, and this pressing and breaking-up process is repeated several times. To gradually tighten the tea leaves, a firing step is added between the breaking-up and pressing operations. Traditionally, the tea leaves are first transferred from the breaking-up machine to a firing machine, and then transferred to the pressing machine. However, this frequent transfer increases the time spent in the tea production process, thus reducing overall processing efficiency. Utility Model Content
[0003] The purpose of this utility model is to provide a cyclic molding module, which solves the technical problem of how to improve the overall processing efficiency.
[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution.
[0005] This utility model provides a circulating forming module, comprising: a tea pressing mechanism; a de-blocking unit, including a base and a plurality of de-blocking mechanisms, wherein the base is provided with a tea feeding station, a tea discharging station, and a firing station, the number of firing stations being the same as the number of de-blocking mechanisms, and each firing station corresponding one-to-one with each de-blocking mechanism, the de-blocking mechanism being movably connected to the base, and the de-blocking mechanism being movable relative to the base to switch between the tea feeding station, the tea discharging station, and the corresponding firing station; a conveying mechanism, located between the tea pressing mechanism and the base, the conveying mechanism being used to transport the tea output from the tea pressing mechanism to the de-blocking mechanism at the tea feeding station, and to transport the tea output from the de-blocking mechanism at the tea discharging station to the tea pressing mechanism; and a heating mechanism, used to provide hot air to the de-blocking mechanism at each of the firing stations.
[0006] In some embodiments of this application, two of the de-blocking mechanism and the firing station are provided. The de-blocking mechanism is movably connected to the base along a first horizontal direction. One firing station, a tea-infeeding station, a tea-outfeeding station, and another firing station are arranged sequentially in the first horizontal direction. The tea-pressing mechanism is located in a second horizontal direction of the base, and the second horizontal direction is perpendicular to the first horizontal direction. The conveying mechanism includes a first conveying mechanism and a second conveying mechanism. The first conveying mechanism is located in the first horizontal direction of the tea-pressing mechanism and in the second horizontal direction of the tea-infeeding station. The first conveying mechanism is used to convey the tea output by the tea-pressing mechanism to the de-blocking mechanism at the tea-infeeding station. The second conveying mechanism is located in the second horizontal direction between the tea-pressing mechanism and the tea-outfeeding station and is used to convey the tea output by the de-blocking mechanism at the tea-outfeeding station to the tea-pressing mechanism.
[0007] In some embodiments of this application, the deblocking unit is provided in two sets, and the second conveying mechanism is provided in two sets. The two sets of deblocking units and the two second conveying mechanisms are arranged in a mirror image relative to the tea pressing mechanism in the second horizontal direction.
[0008] In some embodiments of this application, the first conveying mechanism includes a lifting mechanism and a flat conveying mechanism. The flat conveying mechanism is movably mounted on the lifting mechanism along the second horizontal direction. The flat conveying mechanism is used to receive the tea leaves output by the tea pressing mechanism and to convey the tea leaves along the second horizontal direction. The lifting mechanism is used to drive the flat conveying mechanism to rise or fall. When the lifting mechanism drives the flat conveying mechanism to rise to a position opposite to the unblocking mechanism on the tea feeding station, and the flat conveying mechanism moves relative to the lifting mechanism until one end of the flat conveying mechanism extends into the unblocking mechanism on the tea feeding station, the tea leaves conveyed by the flat conveying mechanism can fall into the unblocking mechanism on the tea feeding station.
[0009] In some embodiments of this application, the base is provided with a slide rail and a long rack, both of which extend along the first horizontal direction and are arranged sequentially in the second horizontal direction; the unblocking mechanism is provided with a sliding seat and a rotating component, the sliding seat is slidably connected to the slide rail, and the rotating component is provided with a gear, which meshes with the rack, so that the unblocking mechanism and the base are movably connected along the first horizontal direction.
[0010] In some embodiments of this application, the unblocking mechanism includes a base frame, a drive mechanism, and an unblocking machine; the base frame is provided with a shaft, the unblocking machine includes a support frame and a roller, the support frame is rotatably connected to the base frame through the shaft, the roller is rotatably mounted on the support frame, the drive mechanism is mounted on the base frame and connected to the support frame, and the support frame is configured to rotate around the shaft under the drive of the drive mechanism, so that the roller has a horizontal state and an inclined state.
[0011] In some embodiments of this application, the tea pressing mechanism includes a frame, a pressing plate, and a flip plate; the frame has a movable groove with an upward-facing opening; the pressing plate is located within the movable groove and there are three of them, one of which can move along a first horizontal direction to approach or move away from the main wall of the movable groove, and the other two pressing plates can move along a second horizontal direction to approach each other or move away from each other, the second horizontal direction being perpendicular to the first horizontal direction; the flip plate includes a first part and a second part connected in an L-shape, the first part being hinged to the frame to give the flip plate a first state and a second state; in the first state, the first part is attached to the main wall of the movable groove, and the second part is attached to the bottom wall of the movable groove; in the second state, the first part rotates relative to the frame, causing the second part to rotate away from the movable groove.
[0012] In some embodiments of this application, the tea pressing mechanism further includes a cover plate and an operating rod. The cover plate is hinged to the opening of the movable groove, and the middle part of the operating rod is hinged to the frame, with one end hinged to the cover plate.
[0013] As can be seen from the above technical solution, the embodiments of this utility model have at least the following advantages and positive effects: In the circulating forming module of this utility model embodiment, the tea leaves that have completed the previous process are fed into the tea pressing mechanism. The tea pressing mechanism is used to press the tea leaves into tea cakes or tea bricks and output them to the conveying mechanism. At this time, one of the de-clumping mechanisms is located at the tea feeding station, which is used to receive the tea leaves conveyed by the conveying mechanism and de-clump the pressed tea leaves. After completing the de-clumping operation, the de-clumping mechanism moves relative to the base to the tea discharging station, and the de-clumped tea leaves are conveyed back to the tea pressing mechanism for tea pressing operation through the conveying mechanism. Alternatively, it moves to the corresponding heating station, where it cooperates with the heating mechanism to heat the tea leaves. After completing the heating operation, the de-clumping mechanism moves to the tea discharging station, and the heated tea leaves are conveyed back to the tea pressing mechanism through the conveying mechanism.
[0014] Specifically, when the de-clumping mechanism moves the tea leaves inside to the corresponding firing station for firing, new tea leaves are fed into the pressing mechanism. The next de-clumping mechanism moves to the tea feeding station and performs the same actions as the pressing mechanism. This process continues, with subsequent de-clumping mechanisms taking turns replacing the previous ones as they move the tea leaves to the corresponding firing station. This reduces the downtime of the pressing mechanism and improves the overall efficiency of tea processing. Furthermore, the de-clumping mechanism and heating mechanism at the firing station work together to fire the tea leaves. Both de-clumping and firing are completed within the de-clumping mechanism, eliminating the time-consuming process of transferring the tea leaves from the de-clumping machine to the firing machine and then from the firing machine to the pressing mechanism, thus improving overall processing efficiency. Attached Figure Description
[0015] The various objectives, features, and advantages of this invention will become more apparent from the following detailed description of preferred embodiments in conjunction with the accompanying drawings. The drawings are merely illustrative illustrations of the invention and are not necessarily drawn to scale. In the drawings, the same reference numerals always denote the same or similar parts. Wherein: Figure 1 This is a perspective view of a cyclic molding module according to an exemplary embodiment.
[0016] Figure 2 yes Figure 1 Top view.
[0017] Figure 3 yes Figure 1 A schematic diagram of the exploded structure of the deblocking unit.
[0018] Figure 4 yes Figure 1 An enlarged schematic diagram of region A in the diagram.
[0019] Figure 5 yes Figure 1 A schematic diagram of the medium-pressure tea-making mechanism and the conveying mechanism.
[0020] Figure 6 yes Figure 5 A sectional view.
[0021] Figure 7 yes Figure 5 A structural diagram from another perspective.
[0022] The annotations in the attached figures are explained as follows: 1. Tea pressing mechanism; 11. Frame; 111. Movable trough; 1111. Main trough wall; 112. Trough opening; 12. Pressing plate; 13. Flip plate; 131. First part; 132. Second part; 14. Cover plate; 15. Operating lever; 2. Unblocking unit; 21. Base; 211. Tea feeding station; 212. Tea discharging station; 213. Burning station; 22. Unblocking mechanism; 221. Base frame; 2211. Shaft; 222. Drive mechanism; 223. Unblocking machine; 2231. Support frame; 2232. Roller; 23. Slide rail; 24. Long rack; 25. Slide seat; 26. Rotating component; 261. Gear; 3. Conveying mechanism; 31. First conveying mechanism; 311. Lifting mechanism; 312. Leveling mechanism; 32. Second conveying mechanism; D1, first horizontal direction; D2, second horizontal direction. Detailed Implementation
[0023] Although the present invention can be readily embodied in various forms, only some specific embodiments are shown in the accompanying drawings and will be described in detail in this specification. It is understood that this specification should be regarded as an exemplary illustration of the principles of the present invention and is not intended to limit the present invention to what is described herein.
[0024] Therefore, a feature pointed out in this specification is used to describe one feature of one embodiment of the present invention, and does not imply that every embodiment of the present invention must have the described feature. Furthermore, it should be noted that this specification describes many features. Although certain features may be combined to illustrate possible system designs, these features may also be used in other combinations not explicitly stated. Therefore, unless otherwise stated, the described combinations are not intended to be limiting.
[0025] In the embodiments shown in the accompanying drawings, the directional indications (such as up, down, left, right, front, and back) used to explain the structure and movement of the various elements of this invention are relative rather than absolute. These descriptions are appropriate when these elements are in the positions shown in the drawings. If the descriptions of the positions of these elements change, these directional indications also change accordingly.
[0026] Please see Figure 1 and Figure 2The circulating forming module provided in one embodiment of this utility model mainly includes a tea pressing mechanism 1, a de-blocking unit 2, a conveying mechanism 3, and a heating mechanism. The de-blocking unit 2 includes a base 21 and several de-blocking mechanisms 22. The base 21 is provided with a tea inlet station 211, a tea outlet station 212, and a firing station 213. The number of firing stations 213 is the same as the number of de-blocking mechanisms 22, and each firing station 213 corresponds one-to-one with each de-blocking mechanism 22. The de-blocking mechanisms 22 are movably connected to the base 21 and can move relative to the base 21 to switch between the tea inlet station 211, the tea outlet station 212, and the corresponding firing station 213. The conveying mechanism 3 is located between the tea pressing mechanism 1 and the base 21. The conveying mechanism 3 transports the tea output from the tea pressing mechanism 1 to the de-blocking mechanism 22 on the tea inlet station 211, and transports the tea output from the de-blocking mechanism 22 on the tea outlet station 212 back to the tea pressing mechanism 1. The heating system is used to provide hot air to the deblocking mechanism 22 at each of the fire stations 213.
[0027] In the circulating molding module of this utility model embodiment, the tea leaves that have completed the previous process are fed into the tea pressing mechanism 1. The tea pressing mechanism 1 is used to press the tea leaves into tea cakes or tea bricks and output them to the conveying mechanism 3. At this time, one of the de-blocking mechanisms 22 is located on the tea feeding station 211, which is used to receive the tea leaves conveyed by the conveying mechanism 3 and de-block the pressed tea leaves. After completing the de-blocking operation, the de-blocking mechanism 22 moves relative to the base 21 to the tea discharging station 212, and the de-blocked tea leaves are conveyed back to the tea pressing mechanism 1 for pressing operation through the conveying mechanism 3. Alternatively, it moves to the corresponding annealing station 213, and cooperates with the heating mechanism to anneal the tea leaves. After completing the annealing operation, the de-blocking mechanism 22 moves to the tea discharging station 212, and the annealed tea leaves are conveyed back to the tea pressing mechanism 1 through the conveying mechanism 3.
[0028] Specifically, when the de-clumping mechanism 22 moves the tea leaves inside to the corresponding firing station 213 for firing, new tea leaves are fed into the tea pressing mechanism 1. The next de-clumping mechanism 22 moves to the tea feeding station 211 and performs the same actions as the tea pressing mechanism 1. This process continues, with subsequent de-clumping mechanisms 22 taking turns replacing the previous one as it moves the tea leaves inside to the corresponding firing station 213 for firing. This reduces the downtime of the tea pressing mechanism 1 and improves the overall efficiency of tea processing. On the other hand, the de-clumping mechanism 22 at the firing station 213 works in conjunction with the heating mechanism to fire the tea leaves. Both the de-clumping and firing of the tea leaves are completed in the de-clumping mechanism 22, eliminating the time-consuming process of transferring the tea leaves from the de-clumping machine 223 to the firing machine and then from the firing machine to the tea pressing mechanism 1, as required in the prior art, thus improving the overall processing efficiency.
[0029] It should be noted that the heating mechanism can be arranged in the following ways: multiple heating mechanisms are set up, and each heating mechanism corresponds one-to-one with the deblocking mechanism 22 on each fire-resistant station 213; or one heating mechanism can be movably set up, which can move to each fire-resistant station 213 and cooperate with the deblocking mechanism 22 on each fire-resistant station 213.
[0030] In this embodiment, the heating mechanism is a flame head.
[0031] In a specific embodiment, two de-blocking mechanisms 22 and two firing stations 213 are provided. The de-blocking mechanism 22 is movably connected to the base 21 along the first horizontal direction D1. One firing station 213, a tea-feeding station 211, a tea-discharging station 212, and another firing station 213 are arranged sequentially along the first horizontal direction D1. The tea-pressing mechanism 1 is located on the second horizontal direction D2 of the base 21, and the second horizontal direction D2 is perpendicular to the first horizontal direction D1. The conveying mechanism 3 includes a first conveying mechanism 31 and a second conveying mechanism 32. The first conveying mechanism 31 is located on the first horizontal direction D1 of the tea-pressing mechanism 1 and on the second horizontal direction D2 of the tea-feeding station 211. The first conveying mechanism 31 is used to convey the tea output from the tea-pressing mechanism 1 to the de-blocking mechanism 22 on the tea-feeding station 211. The second conveying mechanism 32 is located on the second horizontal direction D2 between the tea-pressing mechanism 1 and the tea-discharging station 212, and is used to convey the tea output from the de-blocking mechanism 22 on the tea-discharging station 212 to the tea-pressing mechanism 1.
[0032] The arrangement of each workstation allows the two unblocking mechanisms 22 to switch between the tea inlet workstation 211, the tea outlet workstation 212, and the corresponding firing workstation 213 simply by moving along the first horizontal direction D1. Furthermore, the positional relationship between the two firing workstations 213 ensures that when one unblocking mechanism 22 moves, the other can avoid it, resulting in a tight connection between the workstations, a short material flow path, reduced tea transport distance and time within the equipment, and improved production efficiency. The arrangement of the conveying mechanism 3, the tea pressing mechanism 1, and the base 21 accurately realizes the transport of tea between the tea inlet workstation 211 and the tea pressing mechanism 1, as well as between the tea outlet workstation 212 and the tea pressing mechanism 1.
[0033] In a specific embodiment, there are two sets of deblocking units 2 and two sets of second conveying mechanisms 32. The two sets of deblocking units 2 and the two sets of second conveying mechanisms 32 are arranged in a mirror image relative to the tea pressing mechanism 1 in the second horizontal direction D2.
[0034] After the tea pressing mechanism 1 completes the initial pressing, the first conveying mechanism 31 starts and accurately conveys the tea output from the tea pressing mechanism 1 along the second horizontal direction D2 to the de-blocking mechanism 22 on the tea feeding station 211 of one of the de-blocking units 2 according to the preset path and direction. Subsequently, when the tea pressing mechanism 1 outputs the initially pressed tea again, the first conveying mechanism 31 conveys this part of the tea to the de-blocking mechanism 22 on the tea feeding station 211 of another set of de-blocking units 2. The two sets of de-blocking units 2 arranged in a mirror image can independently and in parallel perform de-blocking, roasting and other operations on the tea, and can process more tea in the same amount of time, thereby further improving the overall processing efficiency. On the other hand, it can avoid the situation where the entire production line stops due to a problem with a single de-blocking unit 2, ensuring the continuity and stability of production, thereby further improving the utilization rate and production efficiency of the equipment.
[0035] Please see Figures 5 to 7 In a specific embodiment, the first conveying mechanism 31 includes a lifting mechanism 311 and a leveling mechanism 312. The leveling mechanism 312 is movably mounted on the lifting mechanism 311 along a second horizontal direction D2. The leveling mechanism 312 is used to receive the tea leaves output by the tea pressing mechanism 1 and to convey the tea leaves along the second horizontal direction D2. The lifting mechanism 311 is used to drive the leveling mechanism 312 to rise or fall. When the lifting mechanism 311 drives the leveling mechanism 312 to rise to a position opposite to the unblocking mechanism 22 on the tea feeding station 211, and the leveling mechanism 312 moves relative to the lifting mechanism 311 until one end of the leveling mechanism 312 extends into the unblocking mechanism 22 on the tea feeding station 211, the tea leaves conveyed by the leveling mechanism 312 can fall into the unblocking mechanism 22 on the tea feeding station 211.
[0036] By adjusting the vertical position of the leveling mechanism 312 through the lifting mechanism 311, and by adjusting the horizontal position of the leveling mechanism 312 by moving it on the lifting mechanism 311, the position of the leveling mechanism 312 and the tea leaves on it can be precisely adjusted, thereby improving the accuracy and stability of tea delivery. Furthermore, this structural arrangement has high flexibility and applicability.
[0037] It is conceivable that the lifting mechanism 311 and the leveling mechanism 312 are movably connected through the cooperation of guide rails and guide seats.
[0038] Please see Figure 7 In this embodiment, the lifting mechanism 311 is a scissor lift, and the leveling mechanism 312 and the second conveying mechanism 32 are both belt conveyor structures.
[0039] In this embodiment, the flat conveying mechanism 312 of the first conveying mechanism 31 can selectively drive the tea leaves to fall from both ends of the flat conveying mechanism 312 in the second horizontal direction D2, thus adapting to the needs of conveying the tea leaves to the unblocking mechanism 22 of the two sets of unblocking units 2.
[0040] Please see Figure 3 and Figure 4 In a specific embodiment, the base 21 is provided with a slide rail 23 and a long rack 24, both of which extend along a first horizontal direction D1 and are arranged sequentially along a second horizontal direction D2. The unblocking mechanism 22 is provided with a slide block 25 and a rotating member 26. The slide block 25 is slidably connected to the slide rail 23, and the rotating member 26 is provided with a gear 261, which meshes with the rack, so that the unblocking mechanism 22 and the base 21 are movably connected along the first horizontal direction D1.
[0041] The cooperation between slide rail 23 and slide block 25 provides precise guidance for the unblocking mechanism 22, which can reduce friction and vibration during movement. The meshing transmission of long rack 24 and gear 261 has high precision and smooth transmission, thereby achieving precise positioning and stable movement of the unblocking mechanism 22.
[0042] In this embodiment, the rotating component 26 is a motor.
[0043] Please see Figure 3 In a specific embodiment, the unblocking mechanism 22 includes a base frame 221, a drive mechanism 222, and an unblocking machine 223. The base frame 221 is movably connected to the base 21 and is provided with a shaft 2211. The unblocking machine 223 includes a support frame 2231 and a roller 2232. The support frame 2231 is rotatably connected to the base frame 221 via the shaft 2211. The roller 2232 is rotatably mounted on the support frame 2231. The drive mechanism 222 is mounted on the base frame 221 and connected to the support frame 2231. The support frame 2231 is configured to rotate around the shaft 2211 under the drive of the drive mechanism 222, so that the roller 2232 has a horizontal state and an inclined state.
[0044] When the drum 2232 is in a horizontal position, it rotates relative to the support frame 2231 to perform the dispersing action. The dispersing process is completed when the tea leaves reach the predetermined degree of dispersal. The drive mechanism 222 is then activated to adjust the position of the support frame 2231, placing the drum 2232 in an inclined state with a suitable discharge angle, thereby improving discharge efficiency. In this embodiment, the drive mechanism 222 is a hydraulic cylinder or a pneumatic cylinder.
[0045] In this embodiment, the roller 2232 is a double-cylinder structure with an inner cylinder inside the outer cylinder and rotatably mounted on the support frame 2231. When the inner cylinder rotates forward, it is used to break up the tea leaves. When the inner cylinder rotates in reverse, it is used to output the tea leaves from it.
[0046] Please see Figures 5 to 7 In a specific embodiment, the tea pressing mechanism 1 includes a frame 11, a pressing plate 12, and a flip plate 13. The frame 11 has a movable groove 111 with an upward-facing opening 112. Three pressing plates 12 are located within the movable groove 111. One pressing plate 12 can move along a first horizontal direction D1 to approach or move away from the main groove wall 1111 of the movable groove 111, while the other two pressing plates 12 can move along a second horizontal direction D2 to approach each other or move away from each other. The second horizontal direction D2 is perpendicular to the first horizontal direction D1. The flip plate 13 includes a first part 131 and a second part 132 connected in an L-shape. The first part 131 is hinged to the frame 11, allowing the flip plate 13 to have a first state and a second state. In the first state, the first part 131 is attached to the main groove wall 1111 of the movable groove 111, and the second part 132 is attached to the bottom wall of the movable groove 111. In the second state, the first part 131 rotates relative to the frame 11, and drives the second part 132 to rotate away from the movable groove 111.
[0047] When the flip plate 13 is in the first state, the three pressure plates 12 apply pressure to the tea leaves in the movable groove 111. One of the pressure plates 12 moves along the first horizontal direction D1 to push the tea leaves towards the main groove wall 1111 of the movable groove 111, while the other two pressure plates 12 move towards each other in the second horizontal direction D2. Through the coordinated action of the main groove wall 1111 and the three pressure plates 12, the tea leaves can be pressed into shape. At this time, the shaped tea leaves are placed on the second part 132 of the flip plate 13. When the tea leaves are pressed to the predetermined shape and density, a discharge operation is required. At this time, the flip plate 13 switches from the first state to the second state. During the rotation, the first part 131, which is hinged to the frame 11, rotates relative to the frame 11. Since the first part 131 and the second part 132 are connected in an L-shape, the second part 132 will move away from the movable groove 111 as the first part 131 rotates, thereby bringing the pressed tea leaves onto the conveyor mechanism 3. The structural design between the frame 11, the pressure plate 12 and the flip plate 13 is reasonable. While ensuring the pressing effect, it also facilitates the output of tea leaves, thus improving the overall stability and reliability.
[0048] In a specific embodiment, the tea pressing mechanism 1 also includes a cover plate 14 and an operating rod 15. The cover plate 14 is hinged to the slot 112 of the movable groove 111, and the middle part of the operating rod 15 is hinged to the frame 11, and one end is hinged to the cover plate 14.
[0049] After the cover plate 14 is closed, the tea pressing mechanism 1 begins to work. The three pressing plates 12 move within the movable groove 111 according to a preset program, pressing the tea raw material in multiple directions. The cover plate 14 provides a relatively enclosed space for tea pressing, which helps maintain stable pressing pressure and improves the pressing effect. After the tea is pressed, the material needs to be discharged. At this time, the free end of the pressing operation rod 15 is pressed down. According to the lever principle, the end of the operation rod 15 that is hinged to the cover plate 14 will rise upward, causing the cover plate 14 to gradually open the groove 112 of the movable groove 111. When the cover plate 14 is fully open, the pressed tea can be smoothly discharged from the movable groove 111 by rotating the flip plate 13. Through the coordinated operation of the cover plate 14 and the operation rod 15, the safety and stability of the pressing process can be ensured while improving the convenience of operation.
[0050] Although the present invention has been described with reference to several typical embodiments, it should be understood that the terminology used is descriptive and exemplary, and not restrictive. Since the present invention can be embodied in many forms without departing from the spirit or essence of the invention, it should be understood that the above embodiments are not limited to any of the foregoing details, but should be interpreted broadly within the spirit and scope defined by the appended claims. Therefore, all variations and modifications falling within the scope of the claims or their equivalents should be covered by the appended claims.
Claims
1. A recyclable molding module, characterized in that, include: Tea pressing equipment; The deblocking unit includes a base and several deblocking mechanisms. The base is provided with a tea feeding station, a tea discharging station, and a firing station. The number of firing stations is the same as the number of deblocking mechanisms, and each firing station corresponds one-to-one with each deblocking mechanism. The deblocking mechanism is movably connected to the base and can move relative to the base to switch between the tea feeding station, the tea discharging station, and the corresponding firing station. A conveying mechanism is located between the tea pressing mechanism and the base. The conveying mechanism is used to transport the tea output from the tea pressing mechanism to the unblocking mechanism at the tea inlet station, and to transport the tea output from the unblocking mechanism at the tea outlet station to the tea pressing mechanism. A heating mechanism is used to provide hot air to the deblocking mechanism at each of the aforementioned ignition stations.
2. The circulating molding module according to claim 1, characterized in that, There are two of each of the deblocking mechanism and the firing station. The deblocking mechanism is movably connected to the base along the first horizontal direction. One firing station, the tea inlet station, the tea outlet station, and the other firing station are arranged in sequence along the first horizontal direction. The tea pressing mechanism is located in the second horizontal direction of the base, and the second horizontal direction is perpendicular to the first horizontal direction. The conveying mechanism includes a first conveying mechanism and a second conveying mechanism. The first conveying mechanism is located in the first horizontal direction of the tea pressing mechanism and in the second horizontal direction of the tea feeding station. The first conveying mechanism is used to convey the tea leaves output by the tea pressing mechanism to the unblocking mechanism at the tea feeding station. The second conveying mechanism is located in the second horizontal direction between the tea pressing mechanism and the tea discharging station and is used to convey the tea leaves output by the unblocking mechanism at the tea discharging station to the tea pressing mechanism.
3. The circulating molding module according to claim 2, characterized in that, The deblocking unit is provided in two sets, and the second conveying mechanism is provided in two sets. The two sets of deblocking units and the two second conveying mechanisms are arranged in a mirror image relative to the tea pressing mechanism in the second horizontal direction.
4. The circulating molding module according to claim 2, characterized in that, The first conveying mechanism includes a lifting mechanism and a flat conveying mechanism. The flat conveying mechanism is movably mounted on the lifting mechanism along the second horizontal direction. The flat conveying mechanism is used to receive the tea leaves output by the tea pressing mechanism and to convey the tea leaves along the second horizontal direction. The lifting mechanism is used to drive the flat conveying mechanism to rise or fall. When the lifting mechanism drives the leveling mechanism to rise to a position opposite to the unblocking mechanism on the tea feeding station, and the leveling mechanism moves relative to the lifting mechanism until one end of the leveling mechanism extends into the unblocking mechanism on the tea feeding station, the tea leaves conveyed by the leveling mechanism can fall into the unblocking mechanism on the tea feeding station.
5. The circulating molding module according to claim 2, characterized in that, The base is provided with a slide rail and a long rack, both of which extend along the first horizontal direction and are arranged sequentially in the second horizontal direction; The unblocking mechanism is provided with a slide block and a rotating component. The slide block is slidably connected to the slide rail, and the rotating component is provided with a gear. The gear meshes with the rack so that the unblocking mechanism is movably connected to the base in a first horizontal direction.
6. The cyclic molding module according to claim 1, characterized in that, The unblocking mechanism includes a base frame, a drive mechanism, and a unblocking machine; The base frame is provided with a shaft, and the deblocking machine includes a support frame and a roller. The support frame is rotatably connected to the base frame through the shaft, and the roller is rotatably mounted on the support frame. The drive mechanism is mounted on the base frame and connected to the support frame. The support frame is configured to rotate around the shaft under the drive of the drive mechanism, so that the roller has a horizontal state and an inclined state.
7. The recyclable molding module according to claim 1, characterized in that, The tea pressing mechanism includes a frame, a pressing plate, and a flip plate; The frame is provided with a movable slot, and the movable slot has an upward-facing opening. The pressure plate is located in the movable groove, and there are three of them. One of the pressure plates can move along the first horizontal direction to get closer to or away from the main groove wall of the movable groove. The other two pressure plates can move along the second horizontal direction to get closer to each other or move away from each other. The second horizontal direction is perpendicular to the first horizontal direction. The flap includes a first part and a second part connected in an L-shape, the first part being hinged to the frame so that the flap has a first state and a second state; In the first state, the first part is attached to the main wall of the movable groove, and the second part is attached to the bottom wall of the movable groove. In the second state, the first part rotates relative to the frame and drives the second part to rotate away from the movable groove.
8. The circulating molding module according to claim 7, characterized in that, It also includes a cover plate and an operating lever. The cover plate is hinged to the opening of the movable slot, and the middle part of the operating lever is hinged to the frame, with one end hinged to the cover plate.