Automated Label Detection, Cutting, Patching and Re-printing Mechanism

The automated tag detection and cutting system addresses resource waste and inefficiency by re-inking defective tags and automating collection and cutting processes, improving production efficiency.

CN117301733BActive Publication Date: 2025-07-15YADA ENERGY PROD (DONGGUAN) CO LTD
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Patent Information

Application Number
CN202311290620.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-07
Publication Date
2025-07-15
Estimated Expiration
2043-10-07

AI Technical Summary

Technical Problem

The existing label testing agency directly discards labels with unqualified quality, resulting in waste of resources. At the same time, label cutting operations rely on manual operations and are inefficient.

Method used

An automated label detection, cutting and finishing mechanism is designed, including a first imprinting component, a detection component and an automatic winding component. The unqualified label is detected by a CCD camera and reprinted, and the automatic cutting component is used to achieve automatic collection and quantitative cutting of labels.

Benefits of technology

Improve the quality of label products, avoid resource waste, realize automatic collection and cutting of labels, and improve production efficiency and flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an automatic label detection, cutting, and reprinting mechanism, which includes a workbench and a control box. The control box is arranged on the top of the workbench. The bottom plate is fixedly connected to the top of the workbench. An installation component is arranged on the top of the bottom plate. The installation component includes two groups of first mounting plates. The two groups of first mounting plates are arranged above the bottom plate. A marking component is arranged on the top of the two groups of first mounting plates. An induction component is arranged on one of the first mounting plates. A first embossing component and a second embossing component are arranged on the top of the bottom plate. The first embossing component and the second embossing component are distributed on both sides of the two groups of first mounting plates. An automatic winding component is arranged at the bottom of the second embossing component. An automatic cutting component is arranged between the automatic winding component and the two groups of first mounting plates. The automatic cutting component is fixedly connected to the bottom plate. A detection component is also arranged on the top of the workbench. This mechanism realizes the function of reprinting unqualified labels, avoids waste of resources, and can also automatically cut and wind, improving production efficiency.
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Description

Technical Field

[0001] The present invention belongs to the technical field of label detection equipment, and more specifically, particularly relates to an automated label detection, cutting, patching, and printing mechanism. Background Art

[0002] Currently, commodity labels are mainly designed and produced through printing technology. However, in the actual label printing production process, due to the limitations of the printing technology itself, the label printing quality cannot be fully guaranteed, and problems such as ink dot deviation and printing stains often occur, which requires the detection and isolation of label quality.

[0003] For example, the Chinese utility model patent with the patent number 202320606033.5 provides a label detector. In use, through the settings of a conveyor belt, a detector body, an electric push rod, a first collection box, and a second collection box, the label is transported by the conveyor belt, and the detector body is arranged above the conveyor belt to detect the label. Qualified labels will smoothly pass through the conveyor belt and enter the first collection box, while when an unqualified label appears, the label will be pushed into the second collection box by the electric push rod, achieving the automatic detection and isolation of the label. However, traditional label detection mechanisms generally directly discard unqualified labels and do not reprint them to realize the reuse of labels, which is likely to cause a certain degree of resource waste; at the same time, after the label is printed, it needs to be cut to separate into individual labels. At present, the cutting operation mainly relies on manual operation, resulting in low efficiency. Summary of the Invention

[0004] In order to solve the above technical problems, the present invention provides an automated label detection, cutting, patching, and printing mechanism to solve the technical problems in the prior art that traditional label detection mechanisms generally directly discard unqualified labels, which is likely to cause a certain degree of resource waste; at the same time, when collecting labels, operators need to manually perform cutting operations, resulting in low efficiency.

[0005] The objectives and effects of the automated label detection, cutting, patching, and printing mechanism of the present invention are achieved by the following specific technical means:

[0006] Automated label detection, cutting, patching and printing mechanism, including a workbench and a control box. The control box is arranged on the top of the workbench. A bottom plate is fixedly connected to the top of the workbench. An installation component is arranged on the top of the bottom plate. The installation component includes two groups of first mounting plates. The two groups of first mounting plates are arranged above the bottom plate. A marking component is arranged on the top of the two groups of first mounting plates. An induction component is arranged on one of the first mounting plates. A first embossing component and a second embossing component are arranged on the top of the bottom plate. The first embossing component and the second embossing component are distributed on both sides of the two groups of first mounting plates. An automatic winding component is arranged at the bottom of the second embossing component. An automatic cutting component is arranged between the automatic winding component and the two groups of first mounting plates. The automatic cutting component is fixedly connected to the bottom plate. A detection component is also arranged on the top of the workbench.

[0007] In a preferred embodiment, the installation component further includes a first support plate. Four groups of first columns are arranged on the top of the first support plate. The four groups of first columns are fixedly connected to the bottom plate. Two groups of first mounting plates are arranged on the top of the first support plate. Multiple through slots are formed in each of the two groups of first mounting plates. Screws are arranged in the multiple through slots and fixedly connected to the first support plate. A transportation slot is formed on the top of the first support plate. Multiple labels are in contact with the bottom of the transportation slot. Blank gaps are arranged between the multiple labels.

[0008] In a preferred embodiment, the marking component includes two groups of first mounting seats and a marking cylinder. The two groups of first mounting seats are fixedly connected to the two groups of first mounting plates through screws respectively. Second columns are arranged on the top of each of the two groups of first mounting seats. A second mounting plate is fixedly connected to the top of the two groups of second columns. A first fixing seat is arranged at the bottom of the marking cylinder. The first fixing seat is arranged on the top of the second mounting plate. Through holes are formed in both the second mounting plate and the first fixing seat. The pneumatic rod on the marking cylinder passes through the through hole and is provided with a marking stamp.

[0009] In a preferred embodiment, the induction component includes a second mounting seat. The second mounting seat is fixedly connected to one of the first mounting plates through screws. A third column is arranged on the top of the second mounting seat. A first cross bar is arranged on the top of the third column. A rack is arranged on one side of the first cross bar. A first electric slider is slidably connected to the rack. An induction optical fiber is arranged on the side of the first electric slider away from the rack. The induction optical fiber is electrically connected to the control box.

[0010] In a preferred embodiment, the first imprinting assembly includes a first imprinting mounting base, which is fixedly connected to the bottom plate. Two groups of imprinting columns are provided at the top of the first imprinting mounting base. Two groups of first mounting grooves are formed at the tops of the two groups of imprinting columns. Four first card seats are provided at the tops of the four first mounting grooves. Through holes are formed in the four first card seats. First imprinting rods are respectively inserted into two of the through holes. A first imprinting shaft is arranged between the two first imprinting rods.

[0011] In a preferred embodiment, the automatic winding assembly includes two first mounting columns, which are fixedly connected to the bottom plate. First mounting holes are formed in the two first mounting columns. The winding hub is rotatably connected to the two first mounting holes. A motor mounting plate is arranged on one side of one of the first mounting columns away from the winding hub. One side of the motor mounting plate is fixedly connected to the first mounting column through multiple columns, and a label winding motor is arranged on the other side. A through hole is formed in the motor mounting plate. The main shaft of the label winding motor passes through the through hole and is provided with a coupling, and the coupling is connected to one end of the winding hub.

[0012] In a preferred embodiment, the second imprinting assembly includes two second mounting grooves, which are respectively formed at the tops of the two first mounting columns. Second card seats are provided at the tops of the two second mounting grooves. Through holes are formed in the two second card seats. Two second imprinting rods are respectively inserted into the two through holes. The second imprinting shaft is rotatably connected to the two second mounting grooves through connecting columns at both ends, and the bottoms of the two second imprinting rods are respectively in contact with the two connecting columns.

[0013] In a preferred embodiment, the automatic cutting assembly includes two second mounting columns, which are both fixedly connected to the top of the first mounting plate. A cutting plate is arranged between the two second mounting columns. Cutting grooves are formed in the cutting plate and the two second mounting columns. A second cross bar is fixedly connected to the tops of the two second mounting columns. A sliding groove is formed in the second cross bar. A second electric slider is slidably connected to the sliding groove. A circular saw blade is arranged at the bottom of the second electric slider corresponding to the cutting groove.

[0014] In a preferred embodiment, the detection component includes a third mounting base, which is fixedly connected to the workbench. A first support column is provided on the third mounting base. A clamping jaw is further provided on the top of the third mounting base. A clamping groove is provided on the clamping jaw, and the first support column is clamped in the clamping groove. Two groups of first fixing blocks are provided on the first support column. A groove is formed on the adjacent side of the two groups of first fixing blocks, and the first support column is clamped in the groove. Two support rods are provided on one of the two groups of first fixing blocks. A detachable mounting bracket is provided at the bottom of the two support rods, and multiple light sources are provided at the bottom of the mounting bracket.

[0015] In a preferred embodiment, the detection component further includes two groups of second fixing blocks. Both of the two groups of second fixing blocks are provided with grooves corresponding to the first support column, and the first support column is clamped in the two grooves. Mounting grooves are further formed on the two groups of second fixing blocks, and a second support column is clamped in the mounting grooves. A detachable tooth block is provided at one end of the second support column. A third electric slider is provided on one side of the tooth block, and a CCD camera is provided on the side of the third electric slider away from the tooth block.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] 1. Through the settings of the first stamping component, the second stamping component and the detection component, first, the label is stamped by the first stamping component, and then detected by the CCD camera. When a label with unqualified quality is detected, through the connection with the control box, the data is sent to the second stamping component, and the second stamping component will use the second stamping shaft to re-stamp the label with unqualified quality; this solves the problem that traditional label detection mechanisms directly discard labels with unqualified quality, improves product quality, and avoids waste of resources at the same time.

[0018] 2. Through the setting of the automatic winding component, by starting the label winding motor, the label winding motor drives the winding hub to rotate through the coupling, and the rotating winding hub collects the labels, realizing the automatic collection of labels and improving production efficiency; through the setting of the automatic cutting component, the labels can be segmented and collected by the automatic winding component. At the same time, the number of collected labels can be customized, such as five, ten, etc., and the cutting tool will cut according to the number, improving the flexibility of this mechanism. Brief Description of the Drawings

[0019] Figure 1 is a schematic structural diagram of the assembled automatic label detection, cutting, patching and printing mechanism of the present invention;

[0020] Figure 2 is a schematic structural diagram of the unfolded automatic label detection, cutting, patching and printing mechanism of the present invention;

[0021] Figure 3 It is the front view of the automatic label detection, cutting, patching and printing mechanism of the present invention;

[0022] Figure 4 It is the schematic structural diagram after the assembly of the installation component, marking component and induction component in the automatic label detection, cutting, patching and printing mechanism of the present invention;

[0023] Figure 5 It is Figure 4 The schematic structural diagram after disassembly;

[0024] Figure 6 It is the schematic structural diagram after the assembly of the first embossing component in the automatic label detection, cutting, patching and printing mechanism of the present invention;

[0025] Figure 7 It is Figure 6 The schematic structural diagram after disassembly;

[0026] Figure 8 It is the schematic structural diagram after the assembly of the automatic winding component, automatic cutting component and second embossing component in the automatic label detection, cutting, patching and printing mechanism of the present invention;

[0027] Figure 9 It is Figure 8 The schematic structural diagram after disassembly;

[0028] Figure 10 It is the schematic structural diagram after the assembly of the detection component in the automatic label detection, cutting, patching and printing mechanism of the present invention;

[0029] Figure 11 It is Figure 10 The schematic structural diagram after disassembly.

[0030] In the figure, the corresponding relationship between the component names and the drawing reference numbers is:

[0031] 11. Workbench; 12. Control box; 13. Bottom plate; 14. Label; 15. Blank gap; 101. First mounting plate; 102. First support plate; 103. First column; 104. Through groove; 105. Transport groove; 201. First mounting seat; 202. Marking cylinder; 203. Second column; 204. Second mounting plate; 205. First fixing seat; 206. Marking stamp; 301. Second mounting seat; 302. Third column; 303. First cross bar; 304. Rack; 305. First electric slider; 306. Inductive optical fiber; 401. First embossing mounting seat; 402. Embossing column; 403. First mounting groove; 404. First clamping seat; 405. First embossing rod; 406. First embossing shaft; 501. First mounting post; 502. First mounting hole; 503. Winding hub; 504. Motor mounting plate; 505. Label winding motor; 506. Coupling; 601. Second mounting groove; 602. Second clamping seat; 603. Second embossing rod; 604. Second embossing shaft; 701. Second mounting post; 702. Cutting plate; 703. Cutting groove; 704. Second cross bar; 705. Slide groove; 706. Second electric slider; 707. Circular saw blade; 801. Third mounting seat; 802. First support post; 803. Claw; 804. Card slot; 805. First fixing block; 806. Support rod; 807. Mounting bracket; 808. Light source; 809. Second fixing block; 810. Second support post; 811. Tooth block; 812. Third electric slider; 813. CCD camera. Detailed implementation manner

[0032] The following further describes in detail the implementation manner of the present invention in conjunction with the accompanying drawings and embodiments. The following embodiments are used to illustrate the technical solutions of the present invention, but cannot be used to limit the protection scope of the present invention.

[0033] Embodiment:

[0034] As Figures 1 to 3As shown in the figure, the present invention provides an automated label detection, cutting, and reprinting mechanism, which includes a workbench 11 and a control box 12. The workbench 11 is an operating platform, and a control box 12 is fixedly installed on its top. The control box 12 contains the control circuit and operation interface of the mechanism. The top of the workbench 11 is also fixedly connected with a rectangular bottom plate 13 by bolts. An installation component is arranged on the top of the bottom plate 13. The installation component includes two groups of first mounting plates 101 for installing other functional components. Marking components are arranged in the top areas of the two groups of first mounting plates 101 for marking on the label 14. An induction component is arranged on one of the two groups of first mounting plates 101; the first stamping component and the second stamping component are respectively fixedly installed on the outer sides of the two groups of first mounting plates 101. The first stamping component is located at the feeding end, and the second stamping component is located at the discharging end. An automatic winding component is also arranged below the second stamping component for winding the cut label 14. An automatic cutting component is arranged between the automatic winding component and the two groups of first mounting plates 101, and the automatic cutting component is fixedly connected with the bottom plate 13. A detection component is also arranged on the top of the workbench 11 for quality inspection of the label 14, jointly constituting an integrated mechanism that can realize the automated processing of the label 14.

[0035] Please refer to as Figure 2 , Figure 4 and Figure 5 As shown in the figure, the installation component further includes a first support plate 102. Four groups of first columns 103 are arranged on the top of the first support plate 102, and the four groups of first columns 103 are fixedly connected with the bottom plate 13 to enhance the overall mechanical strength. Two groups of first mounting plates 101 are arranged on the top of the first support plate 102. Multiple through slots 104 are opened on the lower surfaces of the two groups of first mounting plates 101, and screws are arranged in the multiple groups of through slots 104 and fixedly connected with the first support plate 102, realizing the detachable installation of the first mounting plates 101. A rectangular transportation slot 105 is opened at the central position of the top surface of the first support plate 102. Multiple groups of labels 14 are in contact with the bottom of the transportation slot 105, and there is a certain blank gap 15 between the labels 14 for separation.

[0036] Please refer to as Figure 4 and Figure 5As shown in the figure, the marking assembly includes two groups of first mounting seats 201 and a marking cylinder 202. The two groups of first mounting seats 201 are respectively fixed on two first mounting plates 101 by bolts. The first mounting seat 201 has a rectangular block structure. On the top surfaces of the two groups of first mounting seats 201, a group of second columns 203 are respectively vertically fixed for strengthening support. At the tops of the two groups of second columns 203, a second mounting plate 204 is fixedly connected. The bottom of the marking cylinder 202 is fixed on a first fixing seat 205. A first fixing seat 205 is arranged on the top of the second mounting plate 204. Through holes are provided on both the second mounting plate 204 and the first fixing seat 205. A pneumatic rod on the marking cylinder 202 passes through the through hole and is provided with a marking stamp 206. During operation, the marking cylinder 202 pushes the marking stamp 206 to move up and down in the through hole of the second mounting plate 204. When the label 14 reaches the corresponding position, the marking stamp 206 is pushed out to perform a stamp marking on the top surface of the label 14.

[0037] Please refer to as Figure 4 and Figure 5 shown in the figure, the induction assembly includes a second mounting seat 301. The second mounting seat 301 is fixedly connected to one of the first mounting plates 101 by screws.

[0038] On the top of the second mounting seat 301, a third column 302 is provided. On the top of the third column 302, a first cross bar 303 is provided. On one side of the first cross bar 303, a rack 304 is provided. A first electric slider 305 can slide along the rack 304 to achieve position adjustment. On the side of the first electric slider 305 away from the rack 304, an induction optical fiber 306 is fixedly connected, which is in gap alignment with the label 14. The induction optical fiber 306 is electrically connected to the control box 12.

[0039] Please refer to as Figure 6 and Figure 7 shown in the figure, the first embossing assembly includes a first embossing mounting seat 401. The first embossing mounting seat 401 is fixedly connected to the bottom plate 13. On its top surface, two groups of embossing columns 402 are symmetrically fixed. At the tops of the two groups of embossing columns 402, a first mounting groove 403 is provided. At the top of each first mounting groove 403, two groups of first clamping seats 404 are fixedly connected, a total of four first clamping seats 404. Through circular through holes are respectively provided on the four first clamping seats 404. A first embossing rod 405 is detachably inserted through the through holes of two symmetrical first clamping seats 404. A first embossing shaft 406 is assembled between the two first embossing rods 405. The first embossing shaft 406 is threadedly connected to the two first embossing rods 405 and can be detachably replaced. The first embossing shaft 406 contacts the label 14 below. By rotating the first embossing rod 405, the first embossing shaft 406 is driven to press down to emboss the label 14.

[0040] Please refer to as Figure 8 and Figure 9As shown, the automatic rewinding assembly includes two groups of first mounting posts 501. The two groups of first mounting posts 501 are fixedly connected to the bottom plate 13. Circular first mounting holes 502 are respectively formed in the two groups of first mounting posts 501. The two ends of the rewinding hub 503 are rotatably assembled in the two groups of first mounting holes 502 to realize the rotational support of the rewinding hub 503. A motor mounting plate 504 is fixedly connected to the outside of one group of first mounting posts 501. One side of the motor mounting plate 504 is fixed to the first mounting post 501 through multiple support columns, and a label rewinding motor 505 is installed on the other side. A through central through-hole is formed in the motor mounting plate 504. The main shaft of the label rewinding motor 505 passes through the central through-hole, and the end of the main shaft is connected to one end of the rewinding hub 503 through a coupling 506. The rewinding and pulling of the passed label 14 and the neat winding are realized, and the automatic collection of the label 14 is achieved.

[0041] Please refer to as Figure 8 and Figure 9 As shown, the second embossing assembly includes two groups of second mounting grooves 601. Rectangular second mounting grooves 601 are respectively formed at the tops of the two groups of first mounting posts 501, a total of two groups. Second clamping seats 602 are fixedly arranged in the middle of the top surfaces of the two groups of second mounting grooves 601. Through-holes are formed in the second clamping seats 602. Two groups of second embossing rods 603 are detachably inserted into the through-holes of the two groups of second clamping seats 602 respectively. The two ends of the second embossing shaft 604 are rotatably connected to the inner walls of the two groups of second mounting grooves 601 through connecting columns. The second embossing shaft 604 is located below the two second embossing rods 603. Rotating the two second embossing rods 603 drives the second embossing shaft 604 to press down. When the label 14 enters this position, a second supplementary embossing is performed on the label 14 to improve the product qualification rate.

[0042] Please refer to as Figure 8 and Figure 9 As shown, the automatic cutting assembly includes two groups of second mounting posts 701. The two groups of second mounting posts 701 are respectively fixedly connected to the top surfaces of two first mounting plates 101. A rectangular cutting plate 702 is horizontally installed between the two groups of second mounting posts 701. Longitudinal cutting grooves 703 are formed in the cutting plate 702 and the inner sides of the two groups of second mounting posts 701. A second cross bar 704 is also fixedly arranged at the top of the two groups of second mounting posts 701. A sliding groove 705 is formed below the second cross bar 704. A second electric slider 706 is slidably installed in the sliding groove 705. A circular saw blade 707 is fixed below the second electric slider 706 corresponding to the position of the cutting groove 703. The second electric slider 706 drives the circular saw blade 707 to slide back and forth in the two cutting grooves 703 to cut the passed label 14, realizing the automatic quantitative cutting and segmentation of the label 14.

[0043] Please refer to as Figure 10 and Figure 11As shown, the detection component includes a third mounting base 801, which is fixedly connected to the workbench 11. A first support column 802 is vertically fixed above the third mounting base 801. A claw 803 is also provided on the top of the third mounting base 801. A card slot 804 is formed on the claw 803, and the first support column 802 is detachably clamped and fixed in the card slot 804. Two groups of first fixing blocks 805 are arranged on the first support column 802. Grooves are formed on the adjacent sides of the two groups of first fixing blocks 805, and the first support column 802 is clamped in the grooves. Two groups of support rods 806 are arranged on one of the two groups of first fixing blocks 805. Mounting frames 807 with the same size are detachably installed below the two groups of support rods 806. Multiple groups of light sources 808 are arranged below the mounting frames 807 to achieve the lighting function. The light sources 808 realize the transmissive lighting of the label 14, improving the detection accuracy.

[0044] Please refer to as Figure 10 and Figure 11 As shown, the detection component further includes two groups of second fixing blocks 809. Grooves corresponding to the first support column 802 are formed on the two groups of second fixing blocks 809, and the first support column 802 is clamped in the two grooves. Mounting grooves are also formed on the two groups of second fixing blocks 809, and a second support column 810 is detachably clamped in the mounting grooves. One end of the second support column 810 is detachably connected to a toothed block 811 with a tooth shape. A third electric slider 812 is slidably installed in a groove on one side of the toothed block 811. A CCD camera 813 is fixedly installed at one end of the third electric slider 812 away from the toothed block 811, and is aligned with the label 14 to take pictures. The sliding adjustment of the CCD camera 813 on the toothed block 811 is realized, which can change its image acquisition range and improve the detection accuracy. The specific usage mode and function of this embodiment:

[0045] When using this automatic label detection, cutting, patching and printing mechanism, first place multiple groups of labels 14 flat on the first embossing mounting base 401, and the first embossing mounting base 401 is located at the feeding end of the mechanism. Then, by tightening the first embossing rod 405, drive the first embossing shaft 406 to press the label 14 with a stamp. The label 14 after being imprinted by the first embossing shaft 406 will enter the transport groove 105 on the first support plate 102, and the label 14 will translate in the transport groove 105. During the transportation process, the CCD camera 813 will scan and detect the label 14. Multiple groups of light sources 808 are arranged below the CCD camera 813 to illuminate the label 14 through light transmission, improving the pattern recognition effect. These light sources 808 are detachably mounted below two support rods 806 through a mounting bracket 807, facilitating disassembly, installation and maintenance. The CCD camera 813 can also move along the toothed block 811 through the third electric slider 812 to change the field of view and improve the scanning recognition rate of the image of the label 14. A blank gap 15 is provided between adjacent labels 14, and the blank gap 15 can be detected by the induction optical fiber 306 arranged above the transport groove 105, thereby controlling the forward and stop of the roller shaft and realizing the intermittent transmission of the label 14. When detecting a label 14 with unqualified quality, the CCD camera 813 will send the image information to the control box 12, and the control box 12 will then instruct the second embossing shaft 604 in the second embossing assembly to perform supplementary printing on the problematic label 14. This solves the problem that the traditional label detection mechanism directly discards the labels with unqualified quality, improves the product quality and also avoids waste of resources.

[0046] After the processing of the label 14 is completed, it will be collected into a roll by the automatic winding assembly. By starting the label winding motor 505, the label winding motor 505 drives the winding hub 503 to rotate through the coupling 506 to neatly wind the passing label 14. The winding assembly realizes the automatic collection of the label 14. At the same time, through the setting of the automatic cutting assembly, a quantitative label 14 can be cut and separated by the circular saw blade 707 according to the setting, realizing the customization of the collection quantity and improving the flexibility of use of this mechanism.

[0047] The above shows and describes the basic principles, main features and advantages of the present invention. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments.

Claims

1. Automatic label detection, cutting, and supplementary printing mechanism, comprising a workbench (11) and a control box (12), characterized in that: The control box (12) is provided on the top of the workbench (11). A bottom plate (13) is fixedly connected to the top of the workbench (11). An installation assembly is provided on the top of the bottom plate (13). The installation assembly includes two groups of first mounting plates (101). The two groups of first mounting plates (101) are arranged above the bottom plate (13). A marking assembly is provided on the tops of the two groups of first mounting plates (101). An induction assembly is provided on one of the two groups of first mounting plates (101). A first stamping assembly and a second stamping assembly are provided on the top of the bottom plate (13). The first stamping assembly and the second stamping assembly are distributed on both sides of the two groups of first mounting plates (101). An automatic winding assembly is provided at the bottom of the second stamping assembly. An automatic cutting assembly is provided between the automatic winding assembly and the two groups of first mounting plates (101). The automatic cutting assembly is fixedly connected to the bottom plate (13). A detection assembly is also provided on the top of the workbench (11). The first stamping assembly includes a first stamping mounting seat (401). The first stamping mounting seat (401) is fixedly connected to the bottom plate (13). Two groups of stamping columns (402) are provided on the top of the first stamping mounting seat (401). Two groups of first mounting grooves (403) are opened at the tops of the two groups of stamping columns (402). First clamping seats (404) are provided at the tops of the four groups of first mounting grooves (403). Through holes are opened on the four groups of first clamping seats (404). First stamping rods (405) are respectively inserted into two of the through holes. A first stamping shaft (406) is arranged between the two first stamping rods (405). The automatic winding assembly includes two groups of first mounting columns (501). The two groups of first mounting columns (501) are fixedly connected to the bottom plate (13). First mounting holes (502) are opened on the two groups of first mounting columns (501). A winding hub (503) is rotatably connected to the two groups of first mounting holes (502). A motor mounting plate (504) is arranged on one side of one of the two groups of first mounting columns (501) away from the winding hub (503). One side of the motor mounting plate (504) is fixedly connected to the first mounting column (501) through multiple columns. A label winding motor (505) is arranged on the other side. A through hole is opened on the motor mounting plate (504). The main shaft of the label winding motor (505) passes through the through hole and is provided with a coupling (506). The coupling (506) is connected to one end of the winding hub (503). The second stamping component includes two groups of second mounting grooves (601), the two groups of second mounting grooves (601) are respectively opened at the tops of the two groups of first mounting posts (501), second clamping seats (602) are arranged at the tops of the two groups of second mounting grooves (601), through holes are opened on the two groups of second clamping seats (602), two groups of second stamping rods (603) are respectively inserted into the two groups of through holes, the second stamping shaft (604) is rotatably connected to the two groups of second mounting grooves (601) through connecting columns at both ends, and the bottoms of the two groups of second stamping rods (603) are respectively in contact with the two groups of connecting columns; The detection component includes a third mounting seat (801), a first support column (802) is arranged on the third mounting seat (801), two groups of first fixing blocks (805) are arranged on the first support column (802), two groups of support rods (806) are arranged on one of the first fixing blocks (805), a detachable mounting frame (807) is arranged at the bottoms of the two groups of support rods (806), and multiple light sources (808) are arranged at the bottom of the mounting frame (807); The detection component further includes two groups of second fixing blocks (809), mounting grooves are further opened on the two groups of second fixing blocks (809), a second support column (810) is clamped in the mounting grooves, a detachable tooth block (811) is arranged at one end of the second support column (810), a third electric slider (812) is arranged on one side of the tooth block (811), and a CCD camera (813) is arranged on the side of the third electric slider (812) away from the tooth block (811).

2. The automated label detection, cutting, patching and printing mechanism according to claim 1, wherein: The mounting component further includes a first support plate (102), four groups of first columns (103) are arranged at the top of the first support plate (102), the four groups of first columns (103) are fixedly connected to the bottom plate (13), two groups of first mounting plates (101) are arranged at the top of the first support plate (102), multiple through grooves (104) are opened on the two groups of first mounting plates (101), screws are arranged in the multiple through grooves (104) and fixedly connected to the first support plate (102), a transport groove (105) is opened at the top of the first support plate (102), multiple labels (14) are in contact with the bottom of the transport groove (105), and blank gaps (15) are arranged between the multiple labels (14).

3. The automated label detection, cutting, patching and printing mechanism according to claim 2, characterized in that: The marking component includes two groups of first mounting seats (201) and marking cylinders (202). The two groups of first mounting seats (201) are fixedly connected to the two groups of first mounting plates (101) respectively by screws. Second columns (203) are arranged on the tops of the two groups of first mounting seats (201). A second mounting plate (204) is fixedly connected to the tops of the two groups of second columns (203). A first fixing seat (205) is arranged at the bottom of the marking cylinder (202). The first fixing seat (205) is arranged on the top of the second mounting plate (204). Through holes are formed in both the second mounting plate (204) and the first fixing seat (205). A pneumatic rod on the marking cylinder (202) passes through the through hole and is provided with a marking stamp (206).

4. The automated label detection, cutting, patching and printing mechanism according to claim 3, characterized in that: The induction component includes a second mounting seat (301). The second mounting seat (301) is fixedly connected to one of the first mounting plates (101) by screws. A third column (302) is arranged on the top of the second mounting seat (301). A first cross bar (303) is arranged on the top of the third column (302). A rack (304) is arranged on one side of the first cross bar (303). A first electric slider (305) is slidably connected to the rack (304). An induction optical fiber (306) is arranged on the side of the first electric slider (305) away from the rack (304). The induction optical fiber (306) is electrically connected to the control box (12).

5. The automated label detection, cutting, patching and printing mechanism according to claim 1, characterized in that: The automatic cutting component includes two groups of second mounting columns (701). The two groups of second mounting columns (701) are fixedly connected to the top of the first mounting plate (101). A cutting plate (702) is arranged between the two groups of second mounting columns (701). Cutting grooves (703) are formed in both the cutting plate (702) and the two groups of second mounting columns (701). A second cross bar (704) is fixedly connected to the tops of the two groups of second mounting columns (701). A sliding groove (705) is formed in the second cross bar (704). A second electric slider (706) is slidably connected to the sliding groove (705). A circular saw blade (707) is arranged at the bottom of the second electric slider (706) corresponding to the cutting groove (703).

6. The automated label detection, cutting, patching and printing mechanism according to claim 1, characterized in that: The third mounting seat (801) is fixedly connected to the workbench (11). A claw (803) is further arranged on the top of the third mounting seat (801). A clamping groove (804) is formed in the claw (803). The first support column (802) is clamped in the clamping groove (804). Grooves are formed in the adjacent sides of the two groups of first fixing blocks (805). The first support column (802) is clamped in the grooves.

7. The automated label detection, cutting, mending and printing mechanism according to claim 6, characterized in that: Grooves are formed in both of the two groups of second fixing blocks (809) corresponding to the first support column (802). The first support column (802) is clamped in the two grooves.

Citation Information

Patent Citations

  • Label detector

    CN219326014U

  • Automatic label detecting, cutting and reprinting mechanism

    CN221067555U