Cylindrical berry tea circulating devitrification machine

By designing a cylindrical raspberry tea cycle crystallization machine, the continuous release and collection of raspberry tea is achieved by using automated rotation and cover control, the problems of high labor intensity and low efficiency in the raspberry tea crystallization process are solved, and efficient automated production is achieved.

CN120240547APending Publication Date: 2025-07-04ZHEJIANG FENGKAI MASCH CO LTD
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Patent Information

Application Number
CN202510359867.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2025-07-04

AI Technical Summary

Technical Problem

The crystallization process of berry tea relies on manual operations, resulting in high labor intensity and low efficiency, making it difficult to achieve automatic continuous production.

Method used

A cylindrical raspberry tea cycle crystallization machine is designed, including a ground groove, a turntable, a crystallization cylinder, a feeding box and a driving component. The continuous delivery and collection of raspberry tea is achieved through automatic rotation and lid control, and the crystallization efficiency is ensured by combining sealing and insulation measures.

Benefits of technology

The automation and continuity of the berry tea crystallization process is realized, labor-saving, and significantly improving the crystallization efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a cylinder type berry tea circulation devitrification machine, which comprises a ground groove, which is dug in the ground, and the opening of the ground groove is provided with a sealing plate; the feeding box is mounted on the sealing plate; the rotating disc is installed in the ground groove, and a driving assembly for driving the rotating disc to rotate is installed in the ground groove; the crystallization cylinders are mounted on the turntable in an annular array manner; a material receiving groove is excavated in the bottom face of the ground groove, a supporting plate is fixedly connected to the top of the material receiving groove, a discharging opening is formed in the supporting plate, and the size of the discharging opening is larger than that of the lower cover; the upper cover is mounted at the top of the crystallization cylinder; the upper door opening assembly is used for controlling opening and closing of the upper cover; the lower cover is hinged to the bottom of the crystallization cylinder; the lower dragging wheel is mounted at the bottom of the lower cover, and the hinged end of the lower cover and the crystallization cylinder and the mounting position of the lower dragging wheel are symmetrically located on the two sides of the lower cover. The device can automatically and continuously realize the devitrification work of the unpacked berry tea, so that not only is the labor saved, but also the overall devitrification efficiency of the berry tea is greatly improved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of the processing technology of rattan tea, and specifically to a cylindrical rattan tea circulating crystallization machine. Background Art

[0002] Rattan tea, commonly known as vine tea and manna tea, also known as Tujia magic tea and fairy grass, and its pharmaceutical name is "Ampelopsis grossedentata" is a perennial vine plant that can be used both medicinally and for drinking. There are clear records in pharmacopoeias such as "Jiuchong Ben Cao" and "Compendium of Chinese Herbal Medicines". Rattan tea is green in color with white frost, and its drinking effect has obvious health care and therapeutic effects.

[0003] The production process of rattan tea generally includes several steps such as raw materials, withering, fixation, rolling, loosening the bale, crystallization, loosening the bale, drying, and finished products. Among them, crystallization is a very important step in the production of rattan tea, which determines the appearance and taste of rattan tea.

[0004] However, at present, the crystallization of rattan tea on the market is generally manual operation. The loosened rattan tea is put into a foam box for crystallization, which is difficult to achieve automatic continuous production, increases the labor intensity of the crystallization process and reduces the crystallization efficiency. Summary of the Invention

[0005] In order to solve at least one technical problem mentioned in the background art, the purpose of the present disclosure is to provide a cylindrical rattan tea circulating crystallization machine, which can automatically and continuously crystallize the loosened rattan tea, not only saving labor but also greatly improving the overall crystallization efficiency of rattan tea.

[0006] To achieve the above purpose, the present disclosure provides the following technical solutions: A cylindrical rattan tea circulating crystallization machine, comprising: A ground trough, excavated on the ground, and a closing plate is installed at the opening of the ground trough; A feeding box, installed on the closing plate; A turntable, installed in the ground trough, and a driving component for driving the turntable to rotate is installed in the ground trough; A plurality of crystallization cylinders, installed on the turntable in an annular array; A receiving trough is excavated at the bottom of the ground trough, a support plate is fixedly connected to the top of the receiving trough, and a discharging opening is provided on the support plate; An upper cover, installed on the top of the crystallization cylinder; An upper door opening component, used to control the opening and closing of the upper cover; A lower cover, hinged to the bottom of the crystallization cylinder, and the size of the discharging opening is larger than the size of the lower cover; A lower idler wheel, installed at the bottom of the lower cover, and the hinged end of the lower cover and the crystallization cylinder and the installation position of the lower idler wheel are symmetrically located on both sides of the lower cover; When the crystallization cylinder does not reach the discharge port, the lower cover is completely abutted against the bottom of the crystallization cylinder by the support of the lower idler wheel; when the body of the crystallization cylinder moves to directly below the discharge port, the lower idler wheel is suspended, and under the self-weight of the lower cover, the lower idler wheel and the rattan tea in the barrel, the lower cover is opened, and the rattan tea falls from the discharge port.

[0007] Compared with the prior art, the beneficial effects of the present application are as follows: after the bale opener before the crystallization process unpacks the rattan tea, the rattan tea in the bale opener can be directly put into the feeding box while the upper cover is opened by using the upper opening component, so that the unpacked rattan tea directly falls into the crystallization cylinder. Then, the upper cover is closed by using the upper opening component, and the turntable is slowly rotated by the driving component to enable the rattan tea to perform crystallization work in the ground trough; at the same time, the rotation of the turntable will sequentially bring the subsequent empty crystallization cylinders into the feeding box for the feeding of rattan tea; after a certain period of time, it will rotate to the receiving trough, and under the self-weight of the lower cover, the lower idler wheel and the rattan tea in the barrel, the lower cover is opened, and the rattan tea falls from the discharge port. Overall, the present application can automatically and continuously perform the crystallization work on the unpacked rattan tea, which not only saves labor but also greatly improves the overall crystallization efficiency of the rattan tea.

[0008] Further, the turntable includes: a base pile fixed to the bottom surface of the ground trough by anchor bolts; a load-bearing plate rotatably connected to the base pile; a first support rod and a second support rod, which are alternately distributed in a circular array around the axis of the base pile, and the first support rod is longer than the second support rod; the first support rod is fixedly connected to the load-bearing plate; a first reinforcing rod, the two ends of which are respectively fixedly connected to the middle parts of two adjacent first support rods, and one end of the second support rod close to the base pile is fixedly connected to the first reinforcing rod; a second reinforcing rod, the two ends of which are respectively fixedly connected to the ends of the adjacent first support rod and the second support rod away from the base pile; a plurality of universal wheels, which are respectively installed at the bottom of the first reinforcing rod, the bottom of the end of the first support rod away from the base pile, and the bottom of the end of the second support rod away from the base pile.

[0009] Further, a plurality of connecting plates are fixedly connected to the side surface of the crystallization cylinder, and the plurality of connecting plates are respectively fixedly connected to the first support rod, the second support rod, and the second reinforcing rod adjacent to the circumferential side of the crystallization cylinder.

[0010] Furthermore, the upper cover is hinged to the top of the crystallization tube; the upper door assembly includes: a mounting frame arranged below the feeding box; a screw slide mechanism is installed on the top of the mounting frame; a yielding cylinder is installed on the mounting frame below the screw slide mechanism, a pull rod is hinged at the slide part of the screw slide mechanism, an electromagnetic suction cup is hinged at one end of the pull rod away from the screw slide mechanism, and the electromagnetic suction cup is used to adsorb the upper cover; when the crystallization tube does not reach the feeding box, the pull rod is pulled up by the yielding cylinder, and the pull rod and the electromagnetic suction cup do not affect the operation of the turntable; when the crystallization tube reaches the feeding box, the pull rod is lowered by the yielding cylinder, so that the electromagnetic suction cup falls on the top of the upper cover.

[0011] Furthermore, it also includes a buffer and a reset member installed on the same side of the discharge port. When the crystallization cylinder moves to the discharge port, the reset member and the buffer are located at a position where the crystallization cylinder is far away from the lower tug wheel. The buffer is installed on the bottom surface of the support plate. The buffer includes: a mounting plate fixed to the bottom surface of the support plate; a sliding plate slidably connected to the mounting plate; a spring, one end of which is fixed to the mounting plate and the other end is fixed to the sliding plate; a wheel frame fixed to the side of the sliding plate away from the spring; The roller is rotatably connected to the wheel frame; the reset member is installed on the top surface of the support plate, and the reset member adopts a one-way wheel.

[0012] Furthermore, a barrel lock is installed on the side of the top of the crystallization cylinder away from the base pile; the barrel lock includes: a lock plate fixedly connected to the peripheral side of the top of the crystallization cylinder, a slide groove is provided on the top surface of the lock plate, a T-shaped lock core is slidably connected in the slide groove, a locking groove is provided on the upper cover, and a compression spring is fixedly connected to the side of the lock core away from the crystallization cylinder.

[0013] Furthermore, it also includes an unlocking piece, which includes: a lock cylinder installed at the feeding box, a paddle plate fixedly connected to the output end of the lock cylinder, and the paddle plate is located on the side of the lock core away from the compression spring.

[0014] Furthermore, a layer of heat-insulating cotton is bonded to the inner wall of the crystallization cylinder; and sealing rubber rings are fixed to the top and bottom walls of the crystallization cylinder respectively to ensure the sealing of the connection between the upper cover and the crystallization cylinder and between the lower cover and the crystallization cylinder.

[0015] Furthermore, it also includes a material receiving piece installed below the discharge port, and the material receiving piece is a belt conveyor.

[0016] It should be understood that the content described in this section is not intended to identify the key or important features of the embodiments of the present disclosure, nor is it intended to limit the scope of the present disclosure. Other features of the present disclosure will become easily understood through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] By reading the following detailed description with reference to the accompanying drawings, the above and other objects, features, and advantages of the exemplary embodiments of the present disclosure will become readily understood. In the drawings, several embodiments of the present disclosure are shown by way of example and not limitation, wherein: In the drawings, the same or corresponding reference numerals denote the same or corresponding parts.

[0018] Figure 1 is a schematic diagram of the overall structure of the present application; Figure 2 is an isometric view of the ground trough and the material receiving trough of the present application; Figure 3 is a side view of the structure of the ground trough and the material receiving trough opened on the ground of the present application; Figure 4 is a first perspective view of the overall structure of the present application after being assembled with external equipment; Figure 5 is Figure 4 an enlarged view of the structure at A in Figure 6 is a second perspective view of the overall structure of the present application after being assembled with external equipment; Figure 7 is Figure 6 an enlarged view of the structure at B in Figure 8 is a third perspective view of the overall structure of the present application after being assembled with external equipment; Figure 9 is Figure 8 an enlarged view of the structure at C in Figure 10 is a schematic diagram of the structure of the crystallization cylinder of the present application; Figure 11 is a schematic diagram of the structure of the upper door assembly of the present application; Figure 12 is a schematic diagram of the cooperation structure between the upper door assembly and the crystallization cylinder of the present application; Figure 13 is Figure 12 an enlarged view of the structure at D in

[0019] In the figure: 100, ground; 101, ground trough; 102, closing plate; 200, feeding box; 301, foundation pile; 302, bearing plate; 303, first support rod; 304, second support rod; 305, first strengthening rod; 306, second strengthening rod; 307, universal wheel; 400, driving assembly; 500, crystallization cylinder; 501, connecting plate; 600, material collecting trough; 601, support plate; 6011, material discharge port; 700, upper cover; 701, upper door assembly; 7011, mounting frame; 7012, screw slide mechanism; 7013, yield cylinder; 7014, pull rod; 7015, electromagnetic chuck; 800, lower cover; 801, lower tugboat; 901, buffer; 9011, mounting plate; 9012, sliding plate; 9013, spring; 9014, wheel frame; 9015, roller; 902, reset piece; 110, barrel lock buckle; 1101, lock plate; 1102, slide groove; 1103, lock core; 1104, compression spring; 111, unlocking piece; 1111, locking cylinder; 1112, paddle plate; 112. Received parts; 113. Loosening machine. DETAILED DESCRIPTION

[0020] In order to make the purpose, features, and advantages of the present disclosure more obvious and easy to understand, the technical solutions in the embodiments of the present disclosure will be clearly and completely described below in conjunction with the drawings in the embodiments of the present disclosure. Obviously, the described embodiments are only part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by those skilled in the art without creative work are within the scope of protection of the present disclosure.

[0021] See also Figure 1 - Figure 13 The present embodiment provides a cylindrical berry tea circulating crystallizer, comprising a ground trough 101 excavated in the ground 100, and a closing plate 102 is installed at the notch of the ground trough 101. It should be noted that the ground trough 101 is opened, and the crystallization cylinder 500 is arranged in the ground trough 101, which is not only for saving space, but also for isolating the working environment of the crystallization from the outside world, avoiding interference from the environment above the ground 100, and creating a relatively stable constant temperature crystallization environment for the crystallization work; A charging box 200 is installed on the closing plate 102. The charging opening of the bale opener 113 before the crystallization process is located above the charging box 200 of the crystallizer; a turntable and a driving assembly 400 for driving the turntable to rotate are installed in the sump 101. A plurality of crystallization cylinders 500 are installed on the turntable in an annular array; a receiving trough 600 is dug on the bottom surface of the sump 101, and a support plate 601 is fixedly connected to the top of the receiving trough 600. A discharge opening 6011 is opened on the support plate 601, and the size of the discharge opening 6011 is larger than the size of the lower cover 800; an upper cover 700 is installed on the top of the crystallization cylinder 500, and an upper door opening assembly 701 is installed in the receiving box. The upper door opening assembly 701 is mainly used to control the opening and closing of the upper cover 700; a lower cover 800 is hinged to the bottom of the crystallization cylinder 500, a lower idler wheel 801 is installed at the bottom of the lower cover 800, and the hinged end of the lower cover 800 and the crystallization cylinder 500 and the installation position of the lower idler wheel 801 are symmetrically located on both sides of the lower cover 800; when the crystallization cylinder 500 does not reach the discharge opening 6011, the lower cover 800 is completely abutted against the bottom of the crystallization cylinder 500 by the support of the lower idler wheel 801; when the body of the crystallization cylinder 500 moves to be directly below the discharge opening 6011, the lower idler wheel 801 is just suspended, and under the self-weight of the lower cover 800, the lower idler wheel 801 and the moyecha in the barrel, the lower cover 800 is opened, and the moyecha falls from the discharge opening 6011.

[0022] Specifically, referring to Figure 4 - Figure 7 , the turntable includes: a base pile 301 fixed to the bottom surface of the sump 101. Here, anchor bolts are used to fix the base pile 301. A bearing plate 302 is rotatably connected to the base pile 301. The first support rod 303 and the second support rod 304 are alternately distributed in an annular array around the axis of the base pile 301, and the first support rod 303 is longer than the second support rod 304. The first support rod 303 is fixedly connected to the bearing plate 302; a first reinforcing rod 305 is fixedly connected between two adjacent first support rods 303, and one end of the second support rod 304 close to the base pile 301 is fixedly connected to the first reinforcing rod 305; A second reinforcing rod 306 is fixedly connected to the ends of the adjacent first support rod 303 and second support rod 304 away from the base pile 301; a plurality of universal wheels 307 are further included, which are respectively installed at the bottom of the first reinforcing rod 305, the bottom of the end of the first support rod 303 away from the base pile 301, and the bottom of the end of the second support rod 304 away from the base pile 301.

[0023] Further, referring to Figure 7 and Figure 10 , a plurality of connecting plates 501 are fixedly connected to the side surface of the crystallization cylinder 500. The plurality of connecting plates 501 are respectively fixedly connected to the connected first support rod 303, second support rod 304, and second reinforcing rod 306. Through the connecting plates 501, a certain distance is provided between the bottom of the crystallization barrel and the bottom surface of the sump 101.

[0024] Further, see Figure 11 The upper cover 700 is hinged to the top of the crystallization cylinder 500; and the upper door assembly 701 includes: a mounting frame 7011 arranged below the feeding box 200; a screw slide mechanism 7012 is installed on the top of the mounting frame 7011, and the screw slide mechanism 7012 is a commonly used device in the art, which includes a guide rail, a slide slidably connected to the guide rail, and a motor, and the motor drives the screw to rotate and utilizes the screw and the slide to drive the slide to move along the guide rail; a clearance cylinder 7013 is installed below the screw slide mechanism 7012 on the mounting frame 7011, and a clearance cylinder 7013 is installed at the bottom of the slide. A pull rod 7014 is connected, and an electromagnetic suction cup 7015 for adsorbing the upper cover 700 is hinged at the bottom of the pull rod 7014; specifically, when the crystallization tube 500 has not reached the feeding box 200, the pull rod 7014 is pulled up by the yielding cylinder 7013, so that the pull rod 7014 and the electromagnetic suction cup 7015 do not affect the operation of the turntable; when the crystallization tube 500 reaches the feeding box 200, the pull rod 7014 is lowered by the yielding cylinder 7013, so that the pull rod 7014 will rotate around the hinge axis with the slide, and then the electromagnetic suction cup 7015 will fall on the top of the upper cover 700.

[0025] Reference Figure 9 In order to ensure that the lower cover 800 does not directly hit the support plate 601 when it falls, and to enable the lower cover 800 to close smoothly after discharging, a buffer 901 and a reset member 902 are installed on the same side of the discharge port 6011, and when the crystallization cylinder 500 moves to the discharge port 6011, the reset member 902 and the buffer 901 are located at a position where the crystallization cylinder 500 is away from the lower tug 801. Specifically, the buffer 901 is installed on the bottom surface of the support plate 601, and the buffer 901 includes: a mounting plate 9011 fixedly connected to the bottom surface of the support plate 601, a sliding plate 9012 is slidably connected to the mounting plate 9011, a spring 9013 is installed between the sliding plate 9012 and the mounting plate 9011, a wheel frame 9014 is fixedly connected to the side of the sliding plate 9012 away from the spring 9013, and a roller 9015 is rotatably connected to the wheel frame 9014.

[0026] The reset member 902 is installed on the top surface of the support plate 601 , and the reset member 902 is a one-way wheel 902 .

[0027] Reference Figure 13In order to ensure that the upper cover 700 does not shake when the crystallization cylinder 500 rotates around the foundation pile 301, the present application installs a barrel lock 110 on the side of the top of the crystallization cylinder 500 away from the foundation pile 301; the barrel lock 110 includes: a peripheral side lock plate 1101 fixedly connected to the top of the crystallization cylinder 500; a slide groove 1102 is opened on the top surface of the lock plate 1101, and an inverted T-shaped lock core 1103 is slidably connected in the slide groove 1102, and a compression spring 1104 is also installed in the slide groove 1102, and the compression spring 1104 is fixedly connected to the side of the lock core 1103 away from the crystallization cylinder 500, and a locking groove is opened on the upper cover 700, and the lock core 1103 can be tightly abutted against the locking groove by the elastic force of the compression spring 1104.

[0028] In combination with specific usage scenarios, after the berry tea is put into the crystallization cylinder 500, the upper door assembly 701 is used to press the upper cover 700 on the top of the crystallization cylinder 500, and the lock core 1103 is tightly abutted against the locking groove of the upper cover 700 through the elastic force of the compression spring 1104. In this way, it can prevent the upper cover 700 and the crystallization cylinder 500 from shaking during the rotation of the turntable, causing air leakage between the upper cover 700 and the crystallization cylinder 500, thereby causing the temperature in the crystallization cylinder 500 to lose too quickly and reduce the crystallization efficiency. The barrel lock 110 can ensure the stability of the connection between the upper cover 700 and the crystallization cylinder 500, thereby ensuring the crystallization efficiency of the berry tea.

[0029] Further, see Figure 12 and Figure 13 , and also includes an unlocking piece 111, which is mainly used to pull the lock core 1103 out of the locking groove to release the lock of the upper cover 700 and the crystallization cylinder 500. The specific unlocking piece 111 includes a locking cylinder 1111 installed at the feeding box 200, and a paddle plate 1112 is fixedly connected to the output end of the locking cylinder 1111. The paddle plate 1112 is L-shaped, and its end is located between the lock core 1103 and the crystallization cylinder 500.

[0030] In combination with the specific usage scenario, when the crystallization tube 500 runs to the bottom of the feeding box 200, the locking cylinder 1111 retracts and drives the paddle plate 1112 to retract. The paddle plate 1112 pulls the lock core 1103 away from the upper cover 700, thereby releasing the lock of the upper cover 700. At this time, the compression spring 1104 is further compressed, and then the upper cover 700 is opened through the upper door assembly 701 to carry out the feeding work; when the feeding is completed, the lower cover 800 is controlled to be closed through the upper door assembly 701, and then the locking cylinder 1111 is controlled to extend, thereby moving the paddle plate 1112 to the side away from the locking cylinder 1111. Under the action of the compression spring 1104, the lock core 1103 will be pushed into the locking groove of the upper cover 700 to complete the locking between the upper cover 700 and the crystallization tube 500.

[0031] As a specific implementation manner of the embodiment of the present application, a layer of thermal insulation cotton is adhered to the inner wall of the crystallization cylinder 500, and sealing rubber rings are fixedly connected to the top and bottom of the crystallization cylinder 500 respectively.

[0032] Combined with the specific usage scenario, the setting of the sealing rubber ring can ensure the sealing performance of the connection between the upper cover 700 and the lower cover 800 and the crystallization cylinder 500, and cooperate with the thermal insulation cotton to further ensure the stable temperature inside the crystallization cylinder 500, provide a stable ambient temperature for the crystallization work of the moyeam tea, and ensure the stability and crystallization efficiency of the crystallization work of the moyeam tea.

[0033] Refer to Figure 4 、 Figure 6 and Figure 8 As shown in FIGS. 11 and 12, a receiving member 112 is provided at the bottom of the receiving tank 600 below the discharge port 6011, and the receiving member 112 is a belt conveyor.

[0034] Combined with the specific usage scenario, when the moyeam tea falls from the discharge port 6011, it will directly fall on the conveyor belt of the belt conveyor. The belt conveyor transports the moyeam tea that has completed the crystallization work to the outside, and the elevator transports the moyeam tea to the feeding port of the second loosening machine 113, and the second loosening machine 113 loosens the crystallized moyeam tea.

[0035] Overall, the whole process of using the present application to crystallize the moyeam tea is as follows: The moyeam tea is loosened and dispersed by the loosening machine 113 in the previous step of the crystallization process. When the crystallization cylinder 500 rotates to the feeding box 200, the driving assembly 400 stops driving the turntable to rotate. Here, sensors can be used to collect the position information of the crystallization cylinder 500, or the rotation degree information of the turntable can be collected to determine whether the crystallization cylinder 500 reaches the feeding station of the feeding box 200. This is a conventional technical means in the art and will not be specifically introduced here; When the crystallization cylinder 500 reaches the feeding station, the turntable stops rotating, and the unlocking member 111 operates: the locking cylinder 1111 retracts, and the lock core 1103 of the barrel lock 110 is pulled by the dial plate 1112, so that the locking between the upper cover 700 and the crystallization barrel is released; Then the upper door assembly 701 is operated: the giving way cylinder 7013, through the movement of the slide and the cooperation of the giving way cylinder 7013, makes the electromagnetic suction cup 7015 at the bottom of the pull rod 7014 suck the upper cover 700 of the crystallization tube 500, and at the same time, the unlocking part 111 and then the motor of the screw slide mechanism 7012 drive the slide to move and then pull the electromagnetic suction cup 7015 under the drive of the pull rod 7014, further open the upper cover 700, and then the loosening machine 113 puts the berry tea into the crystallization tube 500; then the upper door assembly 701 is used to close the upper cover 700 on the top of the crystallization tube 500, and then the locking cylinder 1111 is extended, and the lock core 1103 is inserted into the locking groove of the upper cover 700 under the elastic force of the compression spring 1104, thereby ensuring the stable sealing between the upper cover 700 and the crystallization tube 500.

[0036] Next, the driving assembly 400 drives the turntable to rotate, driving the subsequent crystallization barrels to move to the feeding box 200 in turn to feed the berry tea. At the same time, the crystallization cylinder 500 already filled with berry tea will also rotate around the base pile 301 driven by the turntable. During this process, the berry tea is crystallized in the crystallization barrel.

[0037] Then, when the full crystallization cylinder 500 runs to the discharge trough on the support plate 601, the lower tug 801 of the lower cover 800 is separated from the support plate 601. Under the action of the lower tug 801, the lower cover 800 and the gravity of the berry tea in the cylinder, the lower cover 800 will rotate around its hinge axis, and then the crystallized berry tea will be put onto the receiving piece 112. It should be noted here that when the lower cover 800 rotates around the hinge axis, it will first touch the roller 9015 of the buffer, so that the sliding plate 9012 moves and then compresses the spring 9013, so that the lower cover 800 can be buffered, the vibration of the crystallization cylinder 500 as a whole is reduced, and the installation stability of the device is ensured. Then, as the turntable continues to rotate, the lower cover 800 will gradually rotate around the hinge axis along with the reset member to close. When the lower tug 801 also runs onto the support plate 601, the lower cover 800 is completely closed under the support of the lower tug 801 to prepare for subsequent feeding.

[0038] In summary, the present application can automatically and continuously realize the crystallization of the loosened berry tea, which not only saves labor but also greatly improves the overall crystallization efficiency of the berry tea.

[0039] It should be understood that the various forms of processes shown above can be used to reorder, add or delete steps. For example, the steps recorded in this disclosure can be executed in parallel, sequentially or in different orders, as long as the desired results of the technical solutions disclosed in this disclosure can be achieved, and this document does not limit this.

[0040] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In the description of the present disclosure, "a plurality of" means two or more unless otherwise specifically defined.

[0041] As described above, the foregoing are only specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily conceive of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims described.

Claims

1. A cylindrical moyeam tea circulating crystallization machine, characterized in that, Comprising: A ground trough (101), excavated in the ground (100), and a closing plate (102) is installed at the notch of the ground trough (101); A feeding box (200), installed on the closing plate (102); A turntable, installed in the ground trough (101), and a driving assembly (400) for driving the turntable to rotate is installed in the ground trough (101); A plurality of crystallization cylinders (500), installed on the turntable in an annular array; A receiving trough (600) is excavated at the bottom surface of the ground trough (101), a support plate (601) is fixedly connected to the top of the receiving trough (600), and a discharging opening (6011) is formed on the support plate (601); An upper cover (700), installed on the top of the crystallization cylinder (500); An upper door opening assembly (701), used to control the opening and closing of the upper cover (700); A lower cover (800), hinged to the bottom of the crystallization cylinder (500), and the size of the discharging opening (6011) is larger than the size of the lower cover (800); Lower pulleys (801), installed at the bottom of the lower cover (800), and the hinged end of the lower cover (800) and the crystallization cylinder (500) and the installation position of the lower pulleys (801) are symmetrically located on both sides of the lower cover (800); When the crystallization cylinder (500) does not reach the discharging opening (6011), the lower cover (800) is completely abutted against the bottom of the crystallization cylinder (500) by the support of the lower pulleys (801); when the cylinder body of the crystallization cylinder (500) moves to be directly below the discharging opening (6011), the lower pulleys (801) are suspended, and under the self-weight of the lower cover (800), the lower pulleys (801) and the rattan tea in the barrel, the lower cover (800) is opened, and the rattan tea falls from the discharging opening (6011).

2. The cylindrical rattan tea circulating crystallization machine according to claim 1, wherein: The turntable comprises: A base pile (301), fixed to the bottom surface of the ground trough (101); A load-bearing plate (302), rotatably connected to the base pile (301); The first support rods (303) and the second support rods (304) are alternately distributed in an annular array around the axis of the base pile (301), and the first support rods (303) are longer than the second support rods (304); the first support rods (303) are fixedly connected to the load-bearing plate (302); A first reinforcing rod (305), with both ends fixedly connected to the middle parts of two adjacent first support rods (303), and one end of the second support rod (304) close to the base pile (301) is fixedly connected to the first reinforcing rod (305); A second reinforcing rod (306), with both ends fixedly connected to the ends of the adjacent first support rod (303) and the second support rod (304) far from the base pile (301); A plurality of universal wheels (307), respectively installed at the bottom of the first reinforcing rod (305), the bottom of the end of the first support rod (303) far from the base pile (301), and the bottom of the end of the second support rod (304) far from the base pile (301).

3. The cylindrical rattan tea circulating crystallization machine according to claim 2, wherein: A plurality of connecting plates (501) are fixedly connected to the side surface of the crystallization cylinder (500), and the plurality of connecting plates (501) are respectively fixedly connected to the first support rod (303), the second support rod (304), and the second reinforcing rod (306) adjacent to the circumferential side of the crystallization cylinder (500).

4. The cylindrical-type moyeam tea circulating crystallization machine according to claim 1, wherein: The upper cover (700) is hinged to the top of the crystallization cylinder (500); The upper door opening assembly (701) includes: A mounting frame (7011) is arranged below the feeding box; A screw rod sliding table mechanism (7012) is installed on the top of the mounting frame (7011); A retracting cylinder (7013) is installed on the mounting frame (7011), and the retracting cylinder (7013) is located below the screw rod sliding table mechanism (7012); A pull rod (7014), one end of which is hinged to the bottom of the sliding table of the screw rod sliding table mechanism (7012); An electromagnetic chuck (7015) is hinged to the bottom end of the pull rod (7014), and the electromagnetic chuck (7015) is used for adsorbing the upper cover (700); When the crystallization cylinder (500) does not reach the feeding box (200), the pull rod (7014) is pulled up by the retracting cylinder (7013), and the pull rod (7014) and the electromagnetic chuck (7015) do not affect the operation of the turntable; when the crystallization cylinder (500) reaches the feeding box (200), the pull rod (7014) is lowered by the retracting cylinder (7013) so that the electromagnetic chuck (7015) lands on the top of the upper cover (700).

5. The cylindrical-type moyeam tea circulating crystallization machine according to claim 1, wherein: A buffer member (901) and a reset member (902) are further included and installed on the same side of the discharge port (6011). When the crystallization cylinder (500) moves to the discharge port (6011), the reset member (902) and the buffer member (901) are located at a position of the crystallization cylinder (500) far from the lower idler pulley (801). The buffer member (901) is installed on the bottom surface of the support plate (601), and the buffer member (901) includes: A mounting plate (9011) is fixedly connected to the bottom surface of the support plate (601); A sliding plate (9012) is slidably connected to the mounting plate (9011); A spring (9013), one end of which is fixedly connected to the mounting plate (9011) and the other end is fixedly connected to the sliding plate (9012); A wheel frame (9014) is fixedly connected to the side of the sliding plate (9012) away from the spring (9013); A roller (9015) is rotatably connected to the wheel frame (9014); The reset member (902) is installed on the top surface of the support plate (601), and the reset member (902) is a one-way wheel.

6. The cylindrical-type moyeam tea circulating crystallization machine according to claim 2, wherein: A barrel lock (110) is installed on one side of the top of the crystallization cylinder (500) far from the base pile (301); The barrel lock (110) includes: A lock plate (1101) is fixedly connected to the circumferential side surface of the top of the crystallization cylinder (500); A chute (1102) is opened on the top surface of the lock plate (1101); The lock core (1103) is in an inverted T shape, and the lock core (1103) is slidably connected to the chute (1102). The upper cover (700) is provided with a locking groove; The compression spring (1104) is fixedly connected to the side of the lock core (1103) away from the crystallization cylinder (500).

7. The cylindrical-type bud tea circulating crystallization machine according to claim 6, wherein: It further includes an unlocking member (111), and the unlocking member (111) includes: A lock cylinder (1111) installed at the feeding box (200); A paddle plate (1112) fixedly connected to the output end of the lock cylinder (1111).

8. The cylindrical-type bud tea circulating crystallization machine according to claim 1, wherein: The heat-insulating cotton is fixedly connected to the inner wall of the crystallization cylinder (500); Two sealing rubber rings are respectively fixedly connected to the top and bottom of the crystallization cylinder (500).

9. A cylindrical moyeam tea circulating crystallization machine according to claim 1, wherein: It further includes: A material receiving member (112) installed below the discharging port (6011), and the material receiving member (112) is a belt conveyor.