Labeling mechanism

By introducing load-bearing components, winding components, rolling components, flattening components and induction components into the labeling mechanism, the problems of label bevel sticking and sensor position adjustment are solved, and the efficiency and effect of labeling are improved.

CN223279525UActive Publication Date: 2025-08-29JIANGXI JIAYU INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202422438736.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-10
Publication Date
2025-08-29
Estimated Expiration
2034-10-10

AI Technical Summary

Technical Problem

Existing labeling mechanisms are difficult to stick labels to product surfaces at specific angles, and the detection sensor position is difficult to adjust stably to suit products of different sizes.

Method used

The load bearing assembly, winding assembly, rolling assembly, flattening assembly, adjustment assembly and induction assembly are adopted to achieve the oblique sticking of the label and the stable adjustment of the sensor position through the roller tensioning structure, the flip adjustment structure and the stable sliding structure.

Benefits of technology

The label is realized to stick flat on the product surface at a specific angle, improving the efficiency and effect of labeling, and adapting to the needs of products of different sizes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of labeling mechanisms, in particular to a labeling mechanism, and solves the technical problems that when the labeling mechanism is used, a label is difficult to adhere to the surface of a product at a specific angle, and the position of an optical fiber is stably adjusted as required. According to the technical scheme, the labeling mechanism comprises a bearing assembly, a winding assembly, a rolling assembly, a flattening assembly, an adjusting assembly and a sensing assembly; according to the utility model, the sliding block is adjusted in a sliding manner along the outer wall of the fixed bracket, the sliding block is stably supported by matching with the spring, the sliding block is supported and fixed by matching with the bolt, the sliding block drives the optical fiber to adjust, and the vacuum adsorption machine is turned over at an oblique angle by rotating the motor, so that a label on a label belt is adsorbed, turned over and adhered to a product; the problems that when a labeling mechanism is used, a label is difficult to adhere to the surface of a product at a specific angle, and the position of an optical fiber is stably adjusted according to needs are solved.
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Description

Technical Field

[0001] The utility model belongs to the field of labeling mechanisms, and in particular relates to a labeling mechanism. Background Art

[0002] A labeling agency is an organization that specializes in product labeling. Its main task is to affix labels to products so that they can be identified, tracked, and managed during sales and use. Labeling agencies can provide labeling services for various industries, such as food, medicine, electronic products, etc.

[0003] The existing labeling mechanisms are mostly glued and installed vertically to the surface of the product, but the surface of some products may not be flat, so a specific angle is required to stick the label. Obviously, if a vertical labeling mechanism is used, it is often difficult to ensure the quality and efficiency of product labeling. In addition, when in use, it is usually necessary to adjust the position of the detection sensor of the labeling mechanism according to the different sizes and dimensions of products to meet the labeling needs of products of different sizes. However, most existing labeling mechanisms are difficult to meet this requirement, which affects the scope of use of the labeling mechanism and the effect and efficiency of labeling.

[0004] Therefore, in order to address the problems that the above-mentioned labeling mechanism is difficult to stick the label to the surface of the product at an oblique angle, and it is difficult to stably adjust the detection position of the detection sensor required for products of different sizes, a labeling mechanism is developed. By adding a roller tensioning structure, a flip adjustment structure and a stable sliding structure to the labeling mechanism, the label can be smoothly stuck to the surface of the product at a certain oblique angle and the position of the detection sensor can be adjusted as needed to be suitable for label sticking work on oblique angle products of different sizes, thereby improving the labeling efficiency and effect of the device. Utility Model Content

[0005] In order to overcome the problem that it is difficult for the labeling mechanism to stick the label to the surface of the product at a specific angle when in use, and to stably adjust the position of the optical fiber as needed.

[0006] The technical solution of the utility model is: a labeling mechanism, including a carrying component, a winding component, a rolling component, a flattening component, and also including an adjustment component and a sensing component. The carrying component is provided with a belt-driven winding component, the carrying component is provided with a rolling component composed of multiple rollers, the carrying component is provided with an electric cylinder-driven flattening component, the carrying component is provided with an adjustment component with a flip adjustment structure, and the carrying component is provided with a sensing component with a stable sliding structure.

[0007] Preferably, the sensing component can adjust the displacement activity of the sensor stably so that the distance and effect of its sensing control can be adjusted as needed. The adjusting component can make the adsorption mechanism flip the label at an angle so that the label on the label tape can be adhered to the product flatly.

[0008] Preferably, the bearing assembly includes a bearing frame, an outer shell, a support frame, a raw material tray, a processing table, and a limiting groove. The rear end of the bearing frame is fixedly connected to the outer shell, the upper end of the bearing frame is fixedly connected to the support frame, the front end of the bearing frame is rotatably mounted with the raw material tray, the front end of the bearing frame is fixedly connected to a left-right symmetrical processing table, and the front end of the bearing frame is provided with evenly distributed limiting grooves. When in use, the bearing assembly can better support and fix other components through the bearing frame, and the outer shell can be used to protect the output unit of the large motor, thereby improving safety, and other components can be integrated together to facilitate user maintenance.

[0009] Preferably, the winding assembly includes a motor, a winding shaft, and a fixing buckle. A plurality of slots are provided on the carrier frame. The front end of the carrier frame is fixedly connected to the motor. The rear end of the output element of the motor passes through the slot body on the carrier frame. The winding shaft is rotatably installed on the inner wall of the slot body below the carrier frame and close to the motor. A belt is provided on the surface of the output unit of the motor, and the belt is adapted to the input unit of the winding shaft. A fixing buckle is provided on the winding shaft. When in use, the winding assembly drives the belt through the motor to rotate the winding shaft, so that the label tape can be rotated and adhered while the used label tape can be recycled. The fixing buckle can be used to fix one end of the label tape to prevent it from scattering.

[0010] Preferably, the rolling assembly includes an auxiliary roller, a first roller, a baffle, a second roller, and a third roller. The front end of the carrier is fixedly connected to the auxiliary roller, the top of the auxiliary roller is fixedly connected to the first roller, the surface of the first roller is fixedly connected to the baffle, the second roller is rotatably installed above the baffle, and two third rollers rotatably installed up and down are fixedly connected to the middle position of the upper and lower ends of the carrier. When in use, the rolling assembly can roll and clamp the label tape through the first roller, the baffle and the second roller, so that the label on it can be flat and adhered to the surface of the product, and the two third rollers and the auxiliary rollers are used to stretch and tighten the label tape to prevent it from winding and affecting the normal use of the device.

[0011] Preferably, the flattening assembly includes a first fixed block, a first electric cylinder, a pressure block, a second electric cylinder, and a push block. The front end of the carrier is fixedly connected to the first fixed block, the right end of the first fixed block is fixedly connected to the first electric cylinder, the lower end of the telescopic rod of the first electric cylinder is fixedly connected to the pressure block, the front end of the carrier is fixedly connected to the second electric cylinder, the left end of the telescopic rod of the second electric cylinder is fixedly connected to the push block, and the limiting groove is adapted to the push block. When in use, the flattening assembly can drive the pressure block to press the label belt through the first electric cylinder, so that it is flatter when it is located on the processing table.

[0012] Preferably, the sensing component includes a first groove body and a stable sliding structure. The stable sliding structure consists of a fixed bracket, a positioning block, an optical fiber, a slider, and a spring. The left end of the first fixed block is penetrated by a fixed bracket that is symmetrical up and down. The center position of the fixed bracket is fixedly connected to the positioning block. Screw grooves are provided at the left and right ends of the positioning block. Bolts are installed with bolts in the inner threads of the screw grooves. First grooves are provided at the left and right ends of the slider. The slider is fixed with an optical fiber. The inner wall of the first groove body is adapted to the outer wall of the fixed bracket. The upper and lower ends of the slider are fixed with a spring. The right end of the spring is fixed to the upper and lower ends of the positioning block. When in use, the sensing component slides and adjusts along the outer wall of the fixed bracket through the first groove body on the slider, and is stably supported by the spring. The slider is supported and fixed by using bolts passing through the screw groove on the positioning block, so that the slider can drive the optical fiber to be adjusted.

[0013] Preferably, the adjustment component includes a workbench and a flip adjustment structure. The flip adjustment structure is composed of a vacuum adsorption machine, a third electric cylinder, a rotating motor, a fixed ring, and a connecting shaft. The front end of the push block is fixedly connected to the fixed ring, the left end of the workbench is fixedly connected to the rotating motor, the right end of the output unit of the rotating motor is fixedly connected to the connecting shaft, and the connecting shaft is rotatably installed on the inner wall of the fixed ring. The front end of the push block is fixedly connected to the third electric cylinder, and the lower end of the telescopic rod of the third electric cylinder is fixedly connected to the vacuum adsorption machine, which is fixed to the connecting shaft. When in use, the adjustment component drives the rotating motor to adjust the displacement through the third electric cylinder, and cooperates with the rotating motor to drive the connecting shaft to flip, so that the vacuum adsorption machine flips at an angle, thereby adsorbing and flipping the label on the label belt and sticking it to the product.

[0014] Beneficial effects of the utility model:

[0015] 1. The sensing component can adjust the displacement of the optical fiber through a stable sliding structure, so that it can be adjusted to a certain extent according to the size of the required product. The adjustment component can flip the adsorption structure to flip the label at an angle, so that the label on the label tape can be smoothly adhered to the product;

[0016] 2. Use bolts to pass through the screw grooves on the positioning block to support and fix the slider, so that the slider can drive the optical fiber to adjust;

[0017] 3. The first electric cylinder can drive the pressing block to press the label tape, making it flatter when it is on the processing table;

[0018] 4. Use the two third rollers and the auxiliary roller to stretch and tighten the label tape to prevent it from winding up and affecting the normal use of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1Shown is a first three-dimensional structural schematic diagram of a labeling mechanism of the present invention;

[0020] Figure 2 Shown is a schematic diagram of the three-dimensional structure of a carrying component of a labeling mechanism of the present invention;

[0021] Figure 3 Shown is a three-dimensional structural schematic diagram of a reeling assembly and a rolling assembly of a heating assembly of a labeling mechanism of the present invention;

[0022] Figure 4 Shown is a three-dimensional structural schematic diagram of a flattening component and an adjusting component of a labeling mechanism of the present invention;

[0023] Figure 5 Shown is a schematic diagram of the three-dimensional structure of the sensing component of a labeling mechanism of the present invention.

[0024] Explanation of reference numerals: 1-carrying assembly, 101-carrying frame, 102-housing, 103-support frame, 104-raw material tray, 105-processing table, 106-limiting groove, 2-winding assembly, 201-motor, 202-winding shaft, 203-fixing buckle, 3-rolling assembly, 301-auxiliary roller, 302-first roller, 303-baffle, 304-second roller, 305-third roller, 4-flattening assembly, 401-first roller A fixed block, 402-first electric cylinder, 403-pressure block, 404-second electric cylinder, 405-push block, 5-adjustment component, 501-workbench, 502-vacuum adsorption machine, 503-third electric cylinder, 504-rotating motor, 505-fixed ring, 506-connecting shaft, 6-sensing component, 601-fixed bracket, 602-positioning block, 603-optical fiber, 604-slider, 605-first trough, 606-spring. DETAILED DESCRIPTION

[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0026] See also Figure 1The utility model provides an embodiment: a labeling mechanism, including a carrying component 1, a winding component 2, a rolling component 3, a flattening component 4, and also including an adjusting component 5 and a sensing component 6. The carrying component 1 is provided with a belt-driven winding component 2, the carrying component 1 is provided with a rolling component 3 composed of multiple rollers, the carrying component 1 is provided with an electric cylinder-driven flattening component 4, the carrying component 1 is provided with an adjusting component 5 with a flip adjustment structure, and the carrying component 1 is provided with a sensing component 6 with a stable sliding structure. The sensing component 6 can adjust the displacement activity of the sensor so that it can adjust the distance and effect of its sensing control as needed. The adjusting component 5 can enable the adsorption mechanism to flip the label at an angle, so that the label on the label belt is flatly adhered to the product.

[0027] See also Figure 2-3In this embodiment, the carrying component 1 includes a carrying frame 101, a shell 102, a support frame 103, a raw material tray 104, a processing table 105, and a limiting groove 106. The rear end of the carrying frame 101 is fixedly connected to the shell 102, the upper end of the carrying frame 101 is fixedly connected to the support frame 103, the front end of the carrying frame 101 is rotatably mounted with the raw material tray 104, the front end of the carrying frame 101 is fixedly connected to the left and right symmetrical processing table 105, and the front end of the carrying frame 101 is provided with uniformly distributed limiting grooves 106. When in use, the carrying component 1 can better support and fix other components through the carrying frame 101, and utilize The housing 102 can protect the output unit of the large motor 201, thereby improving safety, and can integrate other components together for the convenience of users to maintain them. The winding component 2 includes a motor 201, a winding shaft 202, and a fixing buckle 203. A plurality of slots are provided on the carrier 101. The front end of the carrier 101 is fixedly connected to the motor 201. The rear end of the output element of the motor 201 passes through the slot body on the carrier 101. The winding shaft 202 is rotatably installed on the inner wall of the slot body below the carrier 101 and is close to the motor 201. A belt is provided on the surface of the output unit of the motor 201. The belt is connected to the The input unit of the reel 202 is adapted, and a fixing buckle 203 is provided on the reel 202. When in use, the reel assembly 2 drives the belt through the motor 201 to rotate the reel 202, and the label tape can be rotated and adhered while the used label tape can be recycled. The fixing buckle 203 can be used to fix one end of the label tape to prevent it from scattering. The rolling assembly 3 includes an auxiliary roller 301, a first roller 302, a baffle 303, a second roller 304, and a third roller 305. The front end of the carrier 101 is fixedly connected to the auxiliary roller 301, and the upper part of the auxiliary roller 301 is fixedly connected to The first roller 302 has a baffle 303 fixedly connected to its surface, a second roller 304 rotatably mounted above the baffle 303, and two third rollers 305 rotatably mounted vertically are fixedly connected to the middle position of the upper and lower ends of the carrier 101. When in use, the rolling assembly 3 can roll and clamp the label tape through the first roller 302 in conjunction with the baffle 303 and the second roller 304, so that the label on it can be flat and adhered to the surface of the product, and the two third rollers 305 and the auxiliary roller 301 are used to stretch and tighten the label tape to prevent it from winding up and affecting the normal use of the device.

[0028] See also Figure 4-5In this embodiment, the flattening assembly 4 includes a first fixed block 401, a first electric cylinder 402, a pressing block 403, a second electric cylinder 404, and a pushing block 405. The front end of the carrier 101 is fixedly connected to the first fixed block 401, the right end of the first fixed block 401 is fixedly connected to the first electric cylinder 402, the lower end of the telescopic rod of the first electric cylinder 402 is fixedly connected to the pressing block 403, the front end of the carrier 101 is fixedly connected to the second electric cylinder 404, the left end of the telescopic rod of the second electric cylinder 404 is fixedly connected to the pushing block 405, the limiting groove 106 is adapted to the pushing block 405, and when in use, the flattening assembly 4 can drive the pressing block 403 to press the label belt through the first electric cylinder 402, so that it is located at the processing position. The platform 105 is more flat. The sensing component 6 includes a first groove 605 and a stable sliding structure. The stable sliding structure is composed of a fixed bracket 601, a positioning block 602, an optical fiber 603, a slider 604, and a spring 606. The left end of the first fixed block 401 is penetrated by a fixed bracket 601 that is symmetrical up and down. The center position of the fixed bracket 601 is fixedly connected to the positioning block 602. The left and right ends of the positioning block 602 are provided with screw grooves, and bolts are installed in the screw grooves. The left and right ends of the slider 604 are provided with a first groove 605. The optical fiber 603 is fixed to the slider 604. The inner wall of the first groove 605 is adapted to the outer wall of the fixed bracket 601. The upper and lower ends of the slider 604 are fixedly connected to the springs. 606, the right end of the spring 606 is fixed to the upper and lower ends of the positioning block 602. When in use, the sensing component 6 slides and adjusts along the outer wall of the fixed bracket 601 through the first groove 605 on the slider 604, and is stably supported by the spring 606. The slider 604 is supported and fixed by the bolt through the screw groove on the positioning block 602, so that the slider 604 can drive the optical fiber 603 to adjust. The adjustment component 5 includes a workbench 501 and a flip adjustment structure. The flip adjustment structure is composed of a vacuum adsorption machine 502, a third electric cylinder 503, a rotating motor 504, a fixing ring 505, and a connecting shaft 506. The front end of the push block 405 is fixed with a fixing ring 505. The left end of the workbench 501 is fixedly connected to a rotating motor 504, and the right end of the output unit of the rotating motor 504 is fixedly connected to a connecting shaft 506, which is rotatably installed on the inner wall of the fixed ring 505. The front end of the push block 405 is fixedly connected to a third electric cylinder 503, and the lower end of the telescopic rod of the third electric cylinder 503 is fixedly connected to a vacuum adsorption machine 502, which is fixed to the connecting shaft 506. When in use, the adjustment component 5 drives the rotating motor 504 to adjust the displacement through the third electric cylinder 503, and cooperates with the rotating motor 504 to drive the connecting shaft 506 to flip, so that the vacuum adsorption machine 502 is flipped at an angle, thereby adsorbing and flipping the label on the label belt and sticking it to the product.

[0029] During operation, first, the label tape is installed on the raw material tray 104, and one end of the label tape is passed through the lower outer wall of the second roller 304 and the upper outer wall of the first roller 302, and the baffle 303 is in contact with the label tape and their outer walls. Then, the label tape is passed through the surface of the processing table 105 and the outer walls of the two third rollers 305, and then it is installed on the reel 202 through the fixing buckle 203;

[0030] Next, the motor 201 is started, which drives the belt to rotate, causing the reel 202 to rotate, driving the label tape to be reeled, and the first electric cylinder 402 is started. The telescopic rod of the first electric cylinder 402 drives the pressure block 403 to flatten the label tape, and cooperates with the optical fiber 603 to detect the label to ensure that it is in the correct position. Then, the second electric cylinder 404 is started, driving the push block 405 to move along the inner wall of the limit groove 106, driving the workbench 501 to adjust left and right, and the third electric cylinder 503 causes the vacuum adsorption machine 502 to adsorb the label on the label tape, and then the vacuum adsorption machine 502 is driven by the rotating motor 504 to flip and adjust its angle, and cooperates with the second electric cylinder 404 to withdraw it to the workbench 501 in contact with the product, and the third electric cylinder 503 is used to stick the label to the product.

[0031] Then, when the position of the optical fiber 603 needs to be adjusted, the bolt on the positioning block 602 can be turned to make the slider 604 move along the outer wall of the fixed bracket 601, and the spring 606 can be used to stably support it to prevent it from getting stuck, thereby completing the adjustment of the optical fiber 603.

[0032] Through the above steps, the slider 604 is slid and adjusted along the outer wall of the fixed bracket 601, and the spring 606 is used to stably support it. The slider 604 is supported and fixed by the bolts, so that the slider 604 drives the optical fiber 603 to be adjusted. The vacuum adsorption machine 502 is flipped at an angle by rotating the motor 504, so that the label on the label tape is adsorbed, flipped and adhered to the product, which solves the problem that it is difficult for the labeling mechanism to stick the label to the surface of the product at a specific angle when in use, and the position of the optical fiber 603 is stably adjusted as needed.

[0033] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. A labeling mechanism, comprising a carrying component (1), a winding component (2), a rolling component (3), and a flattening component (4), characterized in that: The invention also includes an adjusting component (5) and a sensing component (6). The bearing component (1) is provided with a belt-driven winding component (2), the bearing component (1) is provided with a rolling component (3) composed of a plurality of rollers, the bearing component (1) is provided with an electric cylinder-driven flattening component (4), the bearing component (1) is provided with an adjusting component (5) with a flip adjustment structure, and the bearing component (1) is provided with a sensing component (6) with a stable sliding structure.

2. The labeling mechanism according to claim 1, characterized in that: The bearing assembly (1) comprises a bearing frame (101), an outer shell (102), a support frame (103), a raw material tray (104), a processing table (105), and a limiting groove (106). The rear end of the bearing frame (101) is fixedly connected to the outer shell (102), the upper end of the bearing frame (101) is fixedly connected to the support frame (103), the front end of the bearing frame (101) is rotatably mounted with the raw material tray (104), the front end of the bearing frame (101) is fixedly connected to the left-right symmetrical processing table (105), and the front end of the bearing frame (101) is provided with uniformly distributed limiting grooves (106).

3. The labeling mechanism according to claim 2, characterized in that: The winding assembly (2) includes a motor (201), a winding shaft (202), and a fixing buckle (203). A plurality of slots are provided on the carrier (101). The front end of the carrier (101) is fixedly connected to the motor (201). The rear end of the output element of the motor (201) passes through the slot body on the carrier (101). The winding shaft (202) is rotatably mounted on the inner wall of the slot body below the carrier (101) and is close to the motor (201). A belt is provided on the surface of the output unit of the motor (201). The belt is adapted to the input unit of the winding shaft (202). The winding shaft (202) is provided with a fixing buckle (203).

4. The labeling mechanism according to claim 2, characterized in that: The rolling assembly (3) comprises an auxiliary roller (301), a first roller (302), a baffle (303), a second roller (304), and a third roller (305). The front end of the carrier (101) is fixedly connected to the auxiliary roller (301), the upper portion of the auxiliary roller (301) is fixedly connected to the first roller (302), the surface of the first roller (302) is fixedly connected to the baffle (303), the upper portion of the baffle (303) is rotatably mounted with the second roller (304), and two third rollers (305) are fixedly connected to the middle position of the upper and lower ends of the carrier (101) and are rotatably mounted up and down.

5. The labeling mechanism according to claim 2, characterized in that: The flattening assembly (4) comprises a first fixed block (401), a first electric cylinder (402), a pressing block (403), a second electric cylinder (404), and a pushing block (405); the front end of the carrier (101) is fixedly connected to the first fixed block (401); the right end of the first fixed block (401) is fixedly connected to the first electric cylinder (402); the lower end of the telescopic rod of the first electric cylinder (402) is fixedly connected to the pressing block (403); the front end of the carrier (101) is fixedly connected to the second electric cylinder (404); the left end of the telescopic rod of the second electric cylinder (404) is fixedly connected to the pushing block (405); and the limiting groove (106) is adapted to the pushing block (405).

6. The labeling mechanism according to claim 3, characterized in that: The sensing component (6) includes a first slot (605) and a stable sliding structure. The stable sliding structure is composed of a fixed bracket (601), a positioning block (602), an optical fiber (603), a slider (604), and a spring (606). The left end of the first fixed block (401) is penetrated by a fixed bracket (601) that is symmetrical in upper and lower directions. The center position of the fixed bracket (601) is fixedly connected to the positioning block (602). The left and right ends of the positioning block (602) are provided with screw grooves, and bolts are installed in the screw grooves. The left and right ends of the slider (604) are provided with a first slot (605). The optical fiber (603) is fixed to the slider (604). The inner wall of the first slot (605) is adapted to the outer wall of the fixed bracket (601). The upper and lower ends of the slider (604) are fixedly connected to the spring (606). The right end of the spring (606) is fixedly connected to the upper and lower ends of the positioning block (602).

7. The labeling mechanism according to claim 5, characterized in that: The adjustment component (5) includes a workbench (501) and a flip adjustment structure. The flip adjustment structure is composed of a vacuum adsorption machine (502), a third electric cylinder (503), a rotary motor (504), a fixed ring (505), and a connecting shaft (506). The front end of the push block (405) is fixedly connected to the fixed ring (505). The left end of the workbench (501) is fixedly connected to the rotary motor (504). The right end of the output unit of the rotary motor (504) is fixedly connected to the connecting shaft (506). The connecting shaft (506) is rotatably mounted on the inner wall of the fixed ring (505). The front end of the push block (405) is fixedly connected to the third electric cylinder (503). The lower end of the telescopic rod of the third electric cylinder (503) is fixedly connected to the vacuum adsorption machine (502). The vacuum adsorption machine (502) is fixedly connected to the connecting shaft (506).