Multi-station processing device for matcha production

By designing a multi-station processing device, including processing, processing and adsorption mechanism, the problems of inefficiency and high cost in the existing matcha processing technology are solved, and efficient mixing and drying of tea leaves are achieved, ensuring the stability of the internal temperature of the working cylinder.

CN119924393AInactive Publication Date: 2025-05-06ANHUI MOCHA VILLAGE AGRI TECH DEV CO LTD
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Patent Information

Application Number
CN202510237993.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2025-05-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the existing matcha processing technology, the processing process can only be carried out in one step, resulting in inefficiency and increased cost, and it is difficult to ensure the stability of the internal temperature of the working cylinder.

Method used

A multi-station processing device for matcha production is designed, including a processing mechanism, a processing mechanism and an adsorption mechanism. The processing mechanism forms a hot air flow through the turbofan head and a single-phase motor, heats the inside of the working cylinder and lifts the material; the processing mechanism stirs and drys the tea through the rotating rod and the working plate; the adsorption mechanism absorbs the liquid components of the recovered gas through the adsorption frame head, improving the efficiency of gas recovery.

Benefits of technology

The mixing and drying of tea leaves during the processing process is realized, which avoids the inefficiency and energy loss of a single processing method, ensures the stability of the internal temperature of the working cylinder, reduces costs and improves processing efficiency.

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Abstract

The invention discloses a multi-station processing device for matcha production, and relates to the technical field of matcha processing.The multi-station processing device comprises a working barrel, a discharging through opening and a processing mechanism are formed in the middle of the bottom end of an inner cavity of the working barrel, the processing mechanism comprises a working frame and a connecting pipe, and the working frame is installed in the middle of the right side of the working barrel; a connecting pipe is installed at the top end of the working barrel, and the end, away from the working barrel, of the connecting pipe is connected with the top end of the working frame. The efficiency in the using process is improved through the adsorption mechanism, the gas recycling efficiency is improved through absorption of liquid moisture, and the situation that liquid exists in recycled energy, gas with moisture is conveyed into the working barrel, processed tea leaves absorb moisture, and the processing efficiency is reduced is avoided.
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Description

Technical Field

[0001] The invention relates to the technical field of matcha processing, and in particular to a multi-station processing device for matcha production. Background Art

[0002] At present, the main raw material of matcha is tea leaves that have been specially cultivated and processed. These tea leaves usually need to be covered and shaded before picking to change environmental factors such as light intensity, light quality, and temperature, thereby affecting the formation of tea aroma quality. The processing of matcha includes picking, steaming, drying, grinding, and screening. In the process of tea processing, only one processing method can be carried out. When one processing method is completed, the next processing method will be carried out, which will increase the steps of processing, reduce the efficiency of the processing, and increase the cost of processing. More manpower costs will be required during processing. Summary of the invention

[0003] The object of the present invention is to provide a multi-station processing device for matcha production to solve the problems raised in the above-mentioned background technology.

[0004] To achieve the above-mentioned object, the present invention provides the following technical solution: a multi-station processing device for matcha production, comprising a working cylinder, wherein a discharge port is provided in the middle of the bottom end of the inner cavity of the working cylinder; The processing mechanism includes a working frame and a connecting pipe. The working frame is installed in the middle of the right side of the working cylinder. The connecting pipe is installed at the top of the working cylinder. The end of the connecting pipe away from the working cylinder is connected to the top of the working frame. A processing mechanism, the processing mechanism comprises a rotating rod and a working plate, the rotating rod is movably installed inside the working cylinder, and a plurality of working plates are installed outside the rotating rod; The adsorption mechanism comprises an adsorption frame head, and a plurality of adsorption layers are installed in the inner cavity of the adsorption frame head.

[0005] Preferably, the processing mechanism also includes a turbofan head, a single-phase motor, a conveying air hole, an annular air duct, a feeding screw head, an installation ring, a rotating ring and a docking magnetic ring. An annular air duct is opened around the bottom end of the inner cavity of the working cylinder, and an air port is opened on the side of the discharge port inside the annular air duct. A conveying air hole is opened at the bottom right end of the working cylinder, and the left end of the conveying air hole is connected to the right side of the annular air duct. An inclined heating plate is installed on one side of the bottom end of the inner cavity of the working frame, and a control panel is installed at the bottom front end of the working cylinder. The single-phase motor is electrically connected to the control panel, and the bottom end of the inner cavity of the working cylinder is a funnel-shaped structure.

[0006] Preferably, a single-phase motor is installed at the upper end of the inner cavity of the working frame, and a rotating rod is installed at the output shaft at the bottom end of the single-phase motor. The two turbofan heads are respectively installed at the bottom end and the middle and lower end of the rotating rod, and a stable shaft frame is installed at the middle and lower end, the stable shaft frame is connected to the inner cavity of the working frame, and a bearing is installed in the middle of the stable shaft frame, and the rotating rod passes through the middle of the bearing, an installation ring is provided in the middle of the inner cavity of the working frame, a rotating ring bar is movably installed inside the installation ring, a connecting rod is installed in the middle of the rotating ring bar, and the end of the connecting rod away from the rotating ring bar is connected to the rotating rod, and docking magnetic rings are installed around the outside of the rotating ring bar.

[0007] Preferably, the cross-section of the mounting ring is a concave structure, and the mounting ring, rotating ring bar and docking magnetic ring are all circular ring structures when viewed from above, and a number of stable round beads are evenly installed around the outside of the rotating ring bar. The two sides of the mounting ring are respectively connected to the inside of the working frame and the right side of the working cylinder, and a circular opening is opened at the top of the working frame.

[0008] Preferably, the processing mechanism also includes a mounting rod, a stabilizing ring plate, a stabilizing ring strip, a movable filter plate, an annular brush strip, a mounting ring strip, a mounting ring groove and an adsorption magnetic ring. A feeding screw head is installed at the bottom end of the rotating rod, and mounting ring grooves are opened around the inner cavity of the working cylinder. A mounting ring strip is movably installed inside the mounting ring groove, and adsorption magnetic rings are installed around the outside of the mounting ring strip. A number of stabilizing round beads are installed around the outside of the mounting ring strip. The mounting ring strip and the adsorption magnetic ring are formed into a circular ring structure when viewed from above. A connecting rod is installed in the inner cavity of the mounting ring strip, and the end of the connecting rod away from the mounting ring strip is connected to the outside of the rotating rod, and a stabilizing shaft frame is installed in the middle of the rotating rod, and the end of the stabilizing shaft frame away from the rotating rod is connected to the inner cavity of the working cylinder.

[0009] Preferably, a mounting rod is installed at the top of the rotating rod, a stabilizing ring bar is installed on the outside of the mounting rod, a stabilizing ring plate is installed on the upper end of the inner cavity of the working cylinder, a plurality of balls are installed around the outside of the stabilizing ring bar, and the side of the balls away from the stabilizing ring bar is in contact with the inner side of the stabilizing ring plate, a movable filter plate is installed at the top of the rotating rod, annular brush strips are installed around the top of the movable filter plate, and the top of the annular brush strip is in contact with the upper end of the inner cavity of the working cylinder.

[0010] Preferably, the adsorption mechanism also includes an installation rail, an installation slider, a touch switch, a contact block and an installation spring. The installation rail is installed on the upper end of one side of the working frame inner cavity and the upper end of the right side of the working cylinder. The installation slider is slidably installed on the upper end of the inner cavity of the installation rail. The bottom of the installation slider is installed with an installation spring. The bottom end of the installation spring is connected to the bottom end of the inner cavity of the installation rail. A touch switch is installed in the middle of a side of the installation slider away from the adsorption frame head. The touch switch is electrically connected to the control panel. A contact block is installed in the middle and lower end of a side of the inner cavity of the installation rail away from the adsorption frame head.

[0011] Preferably, the contact block has a triangular structure, the contact block is made of rubber material, the mounting spring is made of spring steel material, a folding sleeve is installed around the top of the adsorption frame head, and the top of the folding sleeve is connected to the top of the inner cavity of the working frame, and the outside of the mounting slider and the inner cavity of the mounting rail are polished.

[0012] Compared with the prior art, the present invention has the following beneficial effects: The present invention uses a processing mechanism and a processing mechanism in coordination, and in the process of processing tea leaves, different tea leaves can be mixed and processed, and the tea leaves can be dried and processed at the same time, so that the tea leaves can be processed in only one way during the processing process, and the energy generated during the processing will not be lost during the processing process, and the stability of the temperature inside the working cylinder can be guaranteed, so that the energy loss during the processing process can be avoided, resulting in an increase in cost, and the inability to ensure the stability inside the working cylinder can be avoided, which reduces the efficiency during the later use process; The present invention also increases the efficiency during use through the adsorption mechanism, and increases the efficiency of gas recovery and use by absorbing liquid moisture, thereby avoiding the presence of liquid in the recovered energy, causing the gas containing moisture to be transported to the inside of the working cylinder, causing the processed tea leaves to absorb moisture, and reducing the efficiency of processing. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 Provides an overall structural diagram for an embodiment of the present invention; Figure 2 A structural diagram of an overall horizontal section provided by an embodiment of the present invention; Figure 3 A structural diagram of a horizontal cross-section of the upper end of the inner cavity of a working cylinder provided in an embodiment of the present invention; Figure 4 A structural diagram of the upper right side of the working frame provided by an embodiment of the present invention; Figure 5 The embodiment of the present invention provides Figure 2 A magnified structural diagram.

[0014] In the figure: 1. working cylinder; 2. processing mechanism; 201. working frame; 202. connecting pipe; 203. turbofan head; 204. single-phase motor; 205. conveying air hole; 206. annular airway; 207. feeding screw head; 208. mounting ring channel; 209. rotating ring strip; 210. docking magnetic ring; 3. processing mechanism; 301. rotating rod; 302. working plate; 303. mounting frame rod; 304. stabilizing ring plate; 305. stabilizing ring strip; 306. movable filter plate; 307. annular brush strip; 308. mounting ring strip; 309. mounting ring groove; 310. adsorption magnetic ring; 4. adsorption mechanism; 401. adsorption frame head; 402. mounting slide rail; 403. mounting slider; 404. touch switch; 405. contact block; 406. mounting spring. DETAILED DESCRIPTION

[0015] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0016] See also Figure 1-5 The present invention provides a technical solution: a multi-station processing device for matcha production, comprising a working cylinder 1, wherein a discharge port is provided in the middle of the bottom end of the inner cavity of the working cylinder 1; Processing mechanism 2, the processing mechanism 2 includes a working frame 201 and a connecting pipe 202, the working frame 201 is installed in the middle of the right side of the working cylinder 1, the connecting pipe 202 is installed at the top of the working cylinder 1, and the end of the connecting pipe 202 away from the working cylinder 1 is connected to the top of the working frame 201; The processing mechanism 3 includes a rotating rod 301 and a working plate 302. The rotating rod 301 is movably installed inside the working cylinder 1, and a plurality of working plates 302 are installed outside the rotating rod 301, and a filter plate is installed inside the working plate 302; The adsorption mechanism 4 includes an adsorption frame head 401 , and a plurality of adsorption layers are installed in the inner cavity of the adsorption frame head 401 .

[0017] The processing mechanism 2 also includes a turbofan head 203, a single-phase motor 204, a conveying air hole 205, an annular air channel 206, a feeding screw head 207, an installation ring channel 208, a rotating ring strip 209 and a docking magnetic ring 210. An annular air channel 206 is provided around the bottom end of the inner cavity of the working cylinder 1, and an air port is provided on one side of the discharge port inside the annular air channel 206. A conveying air hole 205 is provided at the bottom right end of the working cylinder 1, and the left end of the conveying air hole 205 is connected to the right side of the annular air channel 206. An inclined heating plate is installed on one side of the bottom end of the inner cavity of the working frame 201, a control panel is installed at the bottom front end of the working cylinder 1, the single-phase motor 204 is electrically connected to the control panel, and the bottom end of the inner cavity of the working cylinder 1 is a funnel-shaped structure; A single-phase motor 204 is installed at the middle and upper end of the inner cavity of the working frame 201, and a rotating rod is installed on the output shaft at the bottom end of the single-phase motor 204. Two turbofan heads 203 are respectively installed at the bottom end and the middle and lower end of the rotating rod, and a stable shaft frame is installed at the middle and lower end. The stable shaft frame is connected to the inner cavity of the working frame 201, and a bearing is installed in the middle of the stable shaft frame, and the rotating rod passes through the middle of the bearing. A mounting ring 208 is provided in the middle of the inner cavity of the working frame 201, and a rotating ring strip 209 is movably installed inside the mounting ring 208. A connecting rod is installed in the middle of the rotating ring strip 209, and one end of the connecting rod away from the rotating ring strip 209 is connected to the rotating rod, and a docking magnetic ring 210 is installed around the outer periphery of the rotating ring strip 209; The cross section of the mounting ring 208 is a concave structure. The mounting ring 208, the rotating ring 209 and the docking magnetic ring 210 are all circular ring structures when viewed from above. A number of stable round beads are evenly installed around the rotating ring 209. The two sides of the mounting ring 208 are respectively connected to the inside of the working frame 201 and the right side of the working cylinder 1. The top of the working frame 201 is provided with a round opening. The specific implementation method is as follows: during the processing, the single-phase motor 204 is started to drive the turbofan head 203 to rotate inside the working frame 201 through the rotating rod, and an airflow is formed to transport the airflow to the inside of the conveying air hole 205, and then transported to the inside of the annular air channel 206 through the conveying air hole 205. The airflow contacts the inclined heating plate to form a hot airflow to heat the inside of the working cylinder 1. When the airflow flows from bottom to top inside the working cylinder 1, the material inside the working cylinder 1 will be lifted up, and the rotating ring bar 209 will be driven to rotate inside the installation ring channel 208 through the rotating rod, and the docking magnetic ring 210 will be driven to rotate inside the installation ring channel 208.

[0018] The processing mechanism 3 also includes a mounting rod 303, a stabilizing ring plate 304, a stabilizing ring strip 305, a movable filter plate 306, an annular brush strip 307, a mounting ring strip 308, a mounting ring groove 309 and an adsorption magnetic ring 310. A blanking screw head 207 is installed at the bottom end of the rotating rod 301, and a mounting ring groove 309 is provided around the inner cavity of the working cylinder 1. A mounting ring strip 308 is movably installed inside the mounting ring groove 309, and an adsorption magnetic ring 310 is installed around the outer periphery of the mounting ring strip 308. A plurality of stabilizing round beads are installed around the outer periphery of the mounting ring strip 308. The mounting ring strip 308 and the adsorption magnetic ring 310 are formed into a circular ring structure when viewed from above. A connecting rod is installed in the inner cavity of the mounting ring strip 308, and the end of the connecting rod away from the mounting ring strip 308 is connected to the outer part of the rotating rod 301, and a stabilizing shaft frame is installed in the middle part of the rotating rod 301, and the end of the stabilizing shaft frame away from the rotating rod 301 is connected to the inner cavity of the working cylinder 1; A mounting rod 303 is installed at the top of the rotating rod 301, a stabilizing ring strip 305 is installed outside the mounting rod 303, a stabilizing ring plate 304 is installed at the upper end of the inner cavity of the working cylinder 1, a plurality of balls are installed around the outer periphery of the stabilizing ring strip 305, and the side of the balls away from the stabilizing ring strip 305 is in contact with the inner side of the stabilizing ring plate 304, a movable filter plate 306 is installed at the top of the rotating rod 301, an annular brush strip 307 is installed around the top of the movable filter plate 306, and the top of the annular brush strip 307 is in contact with the upper end of the inner cavity of the working cylinder 1; The specific implementation method is as follows: through the mutual magnetic attraction between the docking magnetic ring 210 and the adsorption magnetic ring 310, the mounting ring strip 308 is driven to rotate inside the mounting ring groove 309, which drives the rotating rod 301 to rotate inside the working cylinder 1, and drives the surrounding working plates 302 to rotate inside the working cylinder 1, so as to stir the processed tea leaves, increase the efficiency during processing, and adsorb the impurities generated during processing through the filter plate, so as to increase the efficiency during later processing, when the rotating rod 301 rotates, it drives the mounting frame rod 303 and the stabilizing ring strip 305 to rotate inside the stabilizing ring plate 304, increases the stability of the rotating rod 301 during rotation, and drives the movable filter plate 302 to rotate inside the working cylinder 1, thereby stirring the processed tea leaves, increasing the efficiency during processing, and adsorbing the impurities generated during processing through the filter plate, thereby increasing ... 06 Rotate to filter the gas preliminarily to avoid tea leaves mixed in the gas, which may cause blockage during the later transmission. In the process of processing tea leaves, different tea leaves can be mixed and dried while mixing, which avoids the situation that the tea leaves can only be processed in the following way during the processing. In addition, the energy generated during the processing will not be lost during the processing, and the temperature stability of the working cylinder 1 can be guaranteed, which avoids energy loss during the processing, resulting in increased costs, and the inability to guarantee the stability of the working cylinder 1, which reduces the efficiency during the later use.

[0019] The adsorption mechanism 4 also includes a mounting rail 402, a mounting slider 403, a touch switch 404, a contact block 405 and a mounting spring 406. The mounting rail 402 is mounted on the upper end of one side of the inner cavity of the working frame 201 and the upper end of the right side of the working cylinder 1. The mounting slider 403 is slidably mounted on the upper end of the inner cavity of the mounting rail 402. The bottom of the mounting slider 403 is mounted with a mounting spring 406. The bottom end of the mounting spring 406 is connected to the bottom end of the inner cavity of the mounting rail 402. A touch switch 404 is mounted in the middle of the side of the mounting slider 403 away from the adsorption frame head 401. The touch switch 404 is electrically connected to the control panel. A contact block 405 is mounted in the middle and lower end of the side of the inner cavity of the mounting rail 402 away from the adsorption frame head 401. The contact block 405 is triangular in structure, and is made of rubber material. The mounting spring 406 is made of spring steel material. A folding sleeve is installed around the top of the adsorption frame head 401, and the top of the folding sleeve is connected to the top of the inner cavity of the working frame 201. The outer periphery of the mounting slider 403 and the inner periphery of the mounting rail 402 are polished. The specific implementation method is as follows: after the gas recovered from the working cylinder 1 passes through the adsorption frame head 401, the liquid component inside the gas is absorbed by the adsorption frame head 401. When the absorbed energy is too much, the weight of the adsorption frame head 401 will be increased, driving the mounting slide block 403 to slide to the bottom end of the mounting slide rail 402, and squeezing the mounting spring 406. When the mounting slide block 403 moves to the position of the contact block 405, the contact block 405 is in contact with the touch switch 404, triggering the control panel to alarm by starting the alarm provided inside the control panel, telling the staff that processing is required. Through timely alarm processing, the efficiency during use is increased. By absorbing the moisture in the liquid, the efficiency of gas recovery is increased, and the presence of liquid in the recovered energy is avoided, resulting in the gas with moisture being transported to the inside of the working cylinder 1, causing the processed tea leaves to absorb moisture, thereby reducing the efficiency of processing.

[0020] Working principle: During the processing of the present invention, the single-phase motor 204 is started to drive the turbofan head 203 to rotate inside the working frame 201 through the rotating rod, and an airflow is formed to transport the airflow to the inside of the conveying air hole 205, and then transported to the inside of the annular air channel 206 through the conveying air hole 205. The airflow contacts the inclined heating plate to form a hot airflow to heat the inside of the working cylinder 1. When the airflow flows from bottom to top inside the working cylinder 1, the material inside the working cylinder 1 will be lifted up, and the rotating ring 209 is driven by the rotating rod to rotate inside the installation ring channel 208, and the docking magnetic ring 210 is driven to rotate inside the installation ring channel 208; Through the mutual magnetic attraction between the docking magnetic ring 210 and the adsorption magnetic ring 310, the mounting ring strip 308 is driven to rotate inside the mounting ring groove 309, which drives the rotating rod 301 to rotate inside the working cylinder 1, and drives the surrounding working plates 302 to rotate inside the working cylinder 1, so as to stir the processed tea leaves, increase the efficiency during processing, and adsorb the impurities generated during processing through the filter plate, so as to increase the efficiency during later processing. When the rotating rod 301 rotates, it drives the mounting frame rod 303 and the stabilizing ring strip 305 to rotate inside the stabilizing ring plate 304, increases the stability of the rotating rod 301 during rotation, and drives the movable filter plate 306 to rotate. , perform preliminary filtration on the gas to avoid tea leaves mixed in the gas, which may cause blockage during later transmission. In the process of processing tea leaves, different tea leaves can be mixed and dried while mixing, avoiding the situation where only the following processing methods can be used during the processing. In addition, the energy generated during the processing will not be lost, and the temperature stability of the working cylinder 1 can be guaranteed, avoiding energy loss during the processing, which may lead to increased costs, and failing to ensure the stability of the working cylinder 1, which may reduce the efficiency during later use.

[0021] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0022] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A multi-station processing device for matcha production, comprising a working cylinder (1), wherein a discharge port is provided in the middle of the bottom end of the inner cavity of the working cylinder (1), characterized in that: A processing mechanism (2), the processing mechanism (2) comprising a working frame (201) and a connecting pipe (202), the working frame (201) being mounted in the middle of the right side of the working cylinder (1), the connecting pipe (202) being mounted at the top end of the working cylinder (1), the end of the connecting pipe (202) away from the working cylinder (1) being connected to the top end of the working frame (201); A processing mechanism (3), the processing mechanism (3) comprising a rotating rod (301) and a working plate (302), the working cylinder (1) having a rotating rod (301) movably mounted inside, and a plurality of working plates (302) mounted outside the rotating rod (301); An adsorption mechanism (4), the adsorption mechanism (4) comprising an adsorption frame head (401), the inner cavity of the adsorption frame head (401) being provided with a plurality of adsorption layers.

2. A multi-station processing device for matcha production according to claim 1, characterized in that: The processing mechanism (2) further comprises a turbofan head (203), a single-phase motor (204), a conveying air hole (205), an annular air duct (206), a feeding screw head (207), an installation annular channel (208), a rotating ring strip (209) and a docking magnetic ring (210); an annular air duct (206) is provided around the bottom end of the inner cavity of the working cylinder (1); an air port is provided inside the annular air duct (206) on one side of the discharge port; a conveying air hole (205) is provided at the bottom right end of the working cylinder (1); the left end of the conveying air hole (205) is connected to the right side of the annular air duct (206); an inclined heating plate is installed at one side of the bottom end of the inner cavity of the working frame (201); a control panel is installed at the bottom front end of the working cylinder (1); the single-phase motor (204) is electrically connected to the control panel; and the bottom inner cavity of the working cylinder (1) is in a funnel-shaped structure.

3. A multi-station processing device for matcha production according to claim 2, characterized in that: A single-phase motor (204) is installed at the middle and upper end of the inner cavity of the working frame (201), and a rotating rod is installed at the output shaft at the bottom end of the single-phase motor (204). The two turbofan heads (203) are respectively installed at the bottom end and the middle and lower end of the rotating rod, and a stabilizing shaft frame is installed at the middle and lower end. The stabilizing shaft frame is connected to the inner cavity of the working frame (201), and a bearing is installed in the middle of the stabilizing shaft frame, and the rotating rod passes through the middle of the bearing. A mounting ring (208) is provided in the middle of the inner cavity of the working frame (201), and a rotating ring (209) is movably installed inside the mounting ring (208). A connecting rod is installed in the middle of the rotating ring (209), and one end of the connecting rod away from the rotating ring (209) is connected to the rotating rod, and docking magnetic rings (210) are installed around the outside of the rotating ring (209).

4. The multi-station processing device for matcha production according to claim 2, characterized in that: The cross section of the mounting ring channel (208) is a concave structure. The mounting ring channel (208), the rotating ring strip (209) and the docking magnetic ring (210) are all circular ring structures when viewed from above. A plurality of stable round beads are equidistantly installed around the outside of the rotating ring strip (209). The two sides of the mounting ring channel (208) are respectively connected to the inside of the working frame (201) and the right side of the working cylinder (1). The top of the working frame (201) is provided with a circular opening.

5. The multi-station processing device for matcha production according to claim 2, characterized in that: The processing mechanism (3) further comprises a mounting rod (303), a stabilizing ring plate (304), a stabilizing ring strip (305), a movable filter plate (306), an annular brush strip (307), a mounting ring strip (308), a mounting ring groove (309) and an adsorption magnetic ring (310); a blanking screw head (207) is mounted at the bottom end of the rotating rod (301); a mounting ring groove (309) is provided around the inner cavity of the working cylinder (1); a mounting ring strip (308) is movably mounted inside the mounting ring groove (309); the mounting ring strip (310) is provided with a plurality of mounting rings (308) and a plurality of mounting rings (310) disposed on the inner cavity of the working cylinder (1); 08) An adsorption magnetic ring (310) is installed around the outside, and a plurality of stabilizing round beads are installed around the outside of the mounting ring strip (308). The mounting ring strip (308) and the adsorption magnetic ring (310) are in a circular ring structure when viewed from above. A connecting rod is installed in the inner cavity of the mounting ring strip (308), and the end of the connecting rod away from the mounting ring strip (308) is connected to the outside of the rotating rod (301). A stabilizing shaft frame is installed in the middle of the rotating rod (301), and the end of the stabilizing shaft frame away from the rotating rod (301) is connected to the inner cavity of the working cylinder (1).

6. The multi-station processing device for matcha production according to claim 5, characterized in that: A mounting rod (303) is mounted on the top of the rotating rod (301), a stabilizing ring bar (305) is mounted on the outside of the mounting rod (303), a stabilizing ring plate (304) is mounted on the upper end of the inner cavity of the working cylinder (1), a plurality of spheres are mounted around the outer periphery of the stabilizing ring bar (305), and the side of the spheres away from the stabilizing ring bar (305) is in contact with the inner side of the stabilizing ring plate (304), a movable filter plate (306) is mounted on the top of the rotating rod (301), an annular brush bar (307) is mounted around the top of the movable filter plate (306), and the top of the annular brush bar (307) is in contact with the upper end of the inner cavity of the working cylinder (1).

7. The multi-station processing device for matcha production according to claim 2, characterized in that: The adsorption mechanism (4) further comprises an installation rail (402), an installation slider (403), a touch switch (404), a contact block (405) and an installation spring (406); an installation rail (402) is installed at an upper end of one side of the inner cavity of the working frame (201) and an upper end of the right side of the working cylinder (1); an installation slider (403) is slidably installed at the upper end of the inner cavity of the installation rail (402); an installation spring (406) is installed at the bottom end of each of the installation sliders (403); the bottom end of the installation spring (406) is connected to the bottom end of the inner cavity of the installation rail (402); a touch switch (404) is installed in the middle of a side of the installation slider (403) away from the adsorption frame head (401); the touch switch (404) is electrically connected to the control panel; and a contact block (405) is installed in the middle and lower end of a side of the inner cavity of the installation rail (402) away from the adsorption frame head (401).

8. The multi-station processing device for matcha production according to claim 7, characterized in that: The contact block (405) is triangular in structure, the contact block (405) is made of rubber material, the mounting spring (406) is made of spring steel material, a folding sleeve is installed around the top of the adsorption frame head (401), and the top of the folding sleeve is connected to the top of the inner cavity of the working frame (201), and the outer periphery of the mounting slide block (403) and the inner periphery of the mounting slide rail (402) are polished.

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