Label processing and cutting device

The cutting device, controlled by infrared spotlights and telescopic blocks, combined with a conveyor belt design, solves the problems of low efficiency and difficulty in inspection during label cutting, achieving efficient and orderly label cutting and conveying.

CN223763292UActive Publication Date: 2026-01-06ZHUHAI DINGHEJIA TECH CO LTD
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Patent Information

Application Number
CN202423319906.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2026-01-06
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

The labels need to be pulled back and forth to the bottom of the cutter during the cutting process, which results in low work efficiency. After cutting, the labels are easy to pile up and get confused, increasing the difficulty of inspection.

Method used

The switch circuit, consisting of an infrared spotlight, an infrared receiver, and a telescopic stop, controls the cutting and storage of the cutter. Combined with the design of the lifting plate and conveyor belt, it ensures that the labels are taut and transported in an orderly manner.

Benefits of technology

It improves cutting efficiency, prevents label shaking, ensures orderly delivery of cut labels, and reduces the risk of confusion during inspection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a label processing cutting device which comprises a cutting main plate, a cutting groove is formed in the outer wall of one side of the cutting main plate, an input assembly and an output assembly are sequentially arranged on the outer wall, provided with the cutting groove, of a cutting assembly from top to bottom, and a lifting plate is arranged on the outer wall of the cutting main plate so as to drive the cutting main plate to keep vertical reciprocating motion. An infrared ray control mechanism is arranged in the cutting groove, a cutter groove is formed in the top, close to the open end, of the cutting groove, a cutter is arranged in the cutter groove, a clamping groove is formed in the outer wall of the cutter, and a first telescopic check block is arranged on the inner wall, corresponding to the clamping groove, of the cutter groove; a switch circuit is formed between the infrared ray mechanism and the first telescopic check block to drive the first telescopic check block to contract, a protruding block is arranged at the bottom of the outer wall, away from the clamping groove, of the cutter, a contact switch mechanism is arranged between the top of the protruding block and the cutting groove, and a switch circuit is formed between the contact switch mechanism and the first telescopic check block to drive the first telescopic check block to stretch out.
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Description

Technical Field

[0001] This utility model relates to the field of label cutting technology, and more specifically to a label processing and cutting device. Background Technology

[0002] A product label is a brief label used to indicate information such as the name, weight, volume, and purpose of an item.

[0003] For example, patent CN218313817U discloses a cutting device for label production and processing, including a base plate and a worktable. The worktable is positioned above the base plate. A buffer assembly is provided between the upper surface of the base plate and the bottom surface of the worktable. An adsorption plate is provided on the worktable. Two sets of pressure roller assemblies are symmetrically arranged on both sides of the upper surface of the worktable. Two sets of linear guide rails are symmetrically installed on the side walls on both sides of the worktable. Slider blocks are slidably installed on the two sets of linear guide rails. A gantry frame is fixedly connected to the two sets of sliders. An electric hydraulic rod is fixedly installed at the center of the top of the gantry frame. A knife holder is fixedly installed through the top of the gantry frame. A cutting knife is threaded onto the knife holder. When the cutting knife has a large cutting force, the buffer assembly can buffer the cutting force, making it less likely to cause the cutting position to deviate. A positioning mechanism for single-layer label cutting is provided, saving labor.

[0004] In actual operation, during the label cutting process, the end of the label needs to be pulled back and forth to the bottom of the cutter for cutting. The label also needs to be straightened to avoid bending due to stress during the cutting process. After all the labels are cut, they are immediately piled up together, increasing the difficulty of inspection.

[0005] It is evident that the aforementioned problems with existing technologies urgently need to be addressed. Utility Model Content

[0006] In view of the above-mentioned problems in the existing technology, one objective of this utility model is to provide a label processing and cutting device to solve the problems that require the device to repeatedly pull the end of the label to the bottom of the cutter during label cutting, which reduces work efficiency, and that the labels are easily confused and increase the difficulty of inspection when they are cut and immediately piled together.

[0007] To achieve the above objectives, this utility model provides a label processing and cutting device, including a cutting assembly. The cutting assembly includes a cutting main board, and a linear array of cutting grooves is formed on one outer wall of the cutting main board. An input component and an output component are sequentially arranged from top to bottom on the outer wall of the cutting assembly with the cutting grooves. A lifting plate is provided on the outer wall of the cutting main board away from the cutting grooves to drive the cutting main board to maintain vertical reciprocating motion, thereby aligning the cutting grooves with the input and output components. An inclined plate is provided inside the cutting grooves, and an infrared ray control mechanism is provided on the outer wall of the inclined plate. A cutting groove is formed at the top of the cutting groove near the open end, and a cutting blade is provided inside the cutting groove. A slot is formed on one outer wall of the cutting blade, and a first telescopic stop is provided on the inner wall of the cutting groove corresponding to the slot. The block has an infrared ray mechanism and a first telescopic stop forming a switching circuit to drive the first telescopic stop to retract. The bottom of the outer wall of the cutter away from the slot has a protrusion. A contact switch mechanism is provided between the top of the protrusion and the inner wall of the cutting groove. The contact switch mechanism and the first telescopic stop form a switching circuit to drive the first telescopic stop to extend. The first telescopic stop is driven to retract to drive the cutter to fall. The outer wall of the output component has a second telescopic stop. The cutting main board is driven to slide vertically to drive the cutting groove through the output component, so as to drive the second telescopic stop to abut the bottom of the protrusion, so as to drive the cutter to be housed in the cutter groove, so as to trigger the contact switch mechanism. Both the input component and the output component have a driving power supply inside.

[0008] Preferably, the cutting motherboard is equipped with a first power motor, which is electrically connected to the infrared ray control mechanism and the first telescopic stop.

[0009] Preferably, the infrared ray control mechanism specifically includes an infrared spotlight disposed on the top of the inclined plate, a baffle disposed on the top of the inclined plate, and an infrared receiver disposed at the bottom of the baffle corresponding to the infrared spotlight.

[0010] Preferably, the inner wall of the cutter groove corresponding to the slot is provided with a first stop groove, the first telescopic stop is slidably engaged in the inside of the first stop groove, and the top of the cutter is connected to the cutter groove with a telescopic column.

[0011] Preferably, the lifting plate is equipped with a second power motor inside, and a slide rail is provided on the outer wall of the lifting plate near the cutting main board. The cutting main board is slidably inserted into the outer wall of the lifting plate through the slide rail. The second power motor is electrically connected to the slide rail to drive the cutting main board to keep it sliding vertically.

[0012] Preferably, the input component includes an input base plate and an input pressure plate, with a slot formed between the input base plate and the input pressure plate. The input base plate and the input pressure plate have symmetrical inner grooves on their opposite outer walls. An input conveyor belt is installed inside the inner groove, and the input conveyor belt rotates toward the cutting main board.

[0013] Preferably, the output component includes an output board, and the output board has a storage groove on the outer wall near the cutting motherboard. An output conveyor belt is provided at the bottom of the storage groove, and the output conveyor belt rotates toward the output component.

[0014] Preferably, the outer wall of the output plate with the storage slot has a second stop slot, a second telescopic stop is slidably disposed inside the second stop slot, a spring is connected between the second telescopic stop and the second stop slot, and the outer walls of the second telescopic stop and the protrusion on both sides are provided with rounded corners.

[0015] Preferably, the contact switch mechanism specifically includes electrical contacts disposed on the top of the protrusion and the top of the cutting groove.

[0016] Preferably, both the input component and the output component are provided with a worktable at their bottom to support them.

[0017] Beneficial effects:

[0018] Compared with the prior art, the label processing and cutting device provided by this utility model has the following beneficial effects:

[0019] 1. Through the switching circuit formed between the infrared spotlight, the infrared receiver and the first telescopic block, the label is input by the input conveyor belt, slides onto the inclined plate, and comes into contact with the bottom of the baffle, thereby blocking the infrared spotlight, causing the first telescopic block to retract into the first block groove, allowing the cutter to fall freely and cut the label.

[0020] 2. As the cutting main board slides down, the second telescopic stop block abuts against the bottom of the protrusion, driving the cutter to slide upward. This causes the electrical contacts on the top of the protrusion to contact the electrical contacts on the top of the cutting groove, connecting the switch circuit formed between the two electrical contacts and the first telescopic stop block. This causes the first telescopic stop block to extend and engage in the slot, fixing the cutter in the cutter slot and opening the cutting groove. This allows the labels cut out inside to slide outward through the inclined plate into the storage slot.

[0021] 3. By pressing the base plate and the pressure plate, the label is kept taut, preventing it from shaking when the cutter makes the cut. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0023] Figure 1 A schematic diagram of the label processing and cutting device provided in this embodiment of the utility model;

[0024] Figure 2 This is a structural schematic diagram of the front cross-section of the label processing and cutting device provided in an embodiment of the present utility model;

[0025] Figure 3 This is a structural schematic diagram of the first detail of the front cross-section of the label processing and cutting device provided in the embodiment of the present utility model;

[0026] Figure 4 This is a structural schematic diagram of the label processing and cutting device provided in an embodiment of the present invention, showing a second detail of its frontal cross-section.

[0027] Key reference numerals:

[0028] 1. Cutting component; 2. Input component; 3. Output component; 101. Cutting main board; 102. Cutting groove; 103. First power motor; 104. Inclined plate; 105. Baffle; 106. Infrared spotlight; 107. Infrared receiver; 108. Cutting groove; 109. Cutting blade; 110. First stop block groove; 111. First telescopic stop block; 112. Slot; 113. Telescopic column; 114. Lifting plate; 115. Second power motor; 116. Slide rail; 117. Protrusion; 201. Input base plate; 202. Input pressure plate; 203. Inner groove; 204. Input conveyor belt; 301. Output plate; 302. Storage groove; 303. Output conveyor belt; 304. Second stop block groove; 305. Second telescopic stop block. Detailed Implementation

[0029] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0030] like Figure 1-4As shown, a label processing and cutting device includes a cutting assembly 1, which includes a cutting main board 101. A cutting groove 102 arranged in a linear array is formed on one side of the outer wall of the cutting main board 101. An input assembly 2 and an output assembly 3 are arranged sequentially from top to bottom on the outer wall of the cutting assembly 1 with the cutting groove 102. A lifting plate 114 is provided on the outer wall of the cutting main board 101 away from the cutting groove 102 to drive the cutting main board 101 to maintain vertical reciprocating motion, thereby aligning the cutting groove 102 with the input assembly 2 and the output assembly 3. A ramp 104 is provided inside the cutting groove 102, and an infrared ray control mechanism is provided on the outer wall of the ramp 104. A cutting groove 108 is formed at the top of the cutting groove 102 near the open end, and a cutting blade 109 is provided inside the cutting groove 108. A slot 112 is formed on one side of the outer wall of the cutting blade 109, and a first telescopic mechanism is provided on the inner wall of the cutting groove 108 corresponding to the slot 112. A switch circuit is formed between the stop block 111, the infrared ray mechanism, and the first telescopic stop block 111 to drive the first telescopic stop block 111 to retract. A protrusion 117 is provided on the bottom of the outer wall of the cutter 109 away from the slot 112. A contact switch mechanism is provided between the top of the protrusion 117 and the inner wall of the cutting groove 102. A switch circuit is formed between the contact switch mechanism and the first telescopic stop block 111 to drive the first telescopic stop block 111 to extend. The first telescopic stop block 111 is driven to retract so as to drive the cutter 109 to fall. A second telescopic stop block 305 is provided on the outer wall of the output component 3. The cutting main board 101 is driven to slide vertically so as to drive the cutting groove 102 to pass through the output component 3, so as to drive the second telescopic stop block 305 to abut against the bottom of the protrusion 117, so as to drive the cutter 109 to be stored in the cutter groove 108, so as to trigger the contact switch mechanism. Both the input component 2 and the output component 3 are provided with a drive power supply.

[0031] The main purpose of this label processing and cutting device is to use the switching circuit formed between the infrared spotlight 106, the infrared receiver 107, and the first telescopic stop 111 to allow the label to be input by the input conveyor belt 204, slide onto the inclined plate 104, and abut against the baffle 105, thereby blocking the infrared spotlight 106 and causing the first telescopic stop 111 to retract into the first stop groove 110, allowing the cutter 109 to fall freely and cut the label; furthermore, by the downward movement of the cutting main plate 101, the second telescopic stop 305 abuts against the bottom of the protrusion 117, driving the cutter 109 to slide upward, cutting the protrusion... The electrical contact at the top of block 117 contacts the electrical contact at the top of the cutting groove 102, connecting the switch circuit formed between the two electrical contacts and the first telescopic stop 111, causing the first telescopic stop 111 to extend and engage in the slot 112, thus fixing the cutter 109 in the cutter groove 108, opening the cutting groove 102, and allowing the labels cut out inside to slide outward through the inclined plate 104 into the storage groove 302; and through the squeezing of the input base plate 201 and the input pressure plate 202, the labels are kept taut, preventing the labels from shaking when the cutter 109 is cutting.

[0032] In the technical solution provided by this utility model, by Figure 1 , Figure 2 , Figure 3 and Figure 4 It is known that the cutting motherboard 101 is equipped with a first power motor 103, and the first power motor 103 is electrically connected to the infrared ray control mechanism and the first telescopic block 111, so that the switching circuit between the infrared ray control mechanism and the first telescopic block 111 can be powered on and operated.

[0033] Furthermore, the infrared ray control mechanism specifically includes an infrared spotlight 106 disposed on the top of the inclined plate 104, and a baffle 105 disposed on the top of the inclined plate 104. An infrared receiver 107 is disposed at the bottom of the baffle 105 corresponding to the infrared spotlight 106. The switching circuit formed between the infrared ray control mechanism and the first telescopic block 111 is specifically designed such that when the infrared spotlight 106 is blocked by the label, preventing the infrared receiver 107 from receiving infrared rays, the first telescopic block 111 is driven to retract into the first block groove 110, thereby causing the cutter 109 to fall. Moreover, the switching circuit formed between each infrared ray control mechanism and the first telescopic block 111 will only operate once during a single downward sliding of the cutting motherboard 101. That is, when the cutting motherboard 101 slides down once, after the switching circuit operates and drives the first telescopic block 111 to retract into the first block groove 110, the extension and retraction of the first telescopic block 111 can no longer be controlled by the infrared ray control mechanism.

[0034] Furthermore, the inner wall of the cutter groove 108 corresponding to the slot 112 is provided with a first stop groove 110, and the first telescopic stop 111 is slidably engaged in the inside of the first stop groove 110. The top of the cutter 109 is connected to the cutter groove 108 with a telescopic column 113, which allows the cutter 109 to slide and cut or be stored inside the cutter groove 108.

[0035] Furthermore, a second power motor 115 is installed inside the lifting plate 114, and a slide rail 116 is provided on the outer wall of the lifting plate 114 near the cutting main board 101. The cutting main board 101 is slidably inserted into the outer wall of the lifting plate 114 through the slide rail 116. The second power motor 115 is electrically connected to the slide rail 116 to drive the cutting main board 101 to slide vertically. The cutting main board 101 can slide vertically by being driven by the second power motor 115. Each single slide causes each cutting slot 102 to pass through the storage slot 302, which is one cycle.

[0036] Furthermore, the input component 2 includes an input base plate 201 and an input pressure plate 202. A slot is formed between the input base plate 201 and the input pressure plate 202 so that the label is clamped in the middle for input. The input base plate 201 and the input pressure plate 202 are symmetrically provided with inner grooves 203 on their outer walls on both sides. An input conveyor belt 204 is provided inside the inner groove 203. The input conveyor belt 204 rotates in the direction of the cutting main plate 101. The input conveyor belt 204 rotates axially only when the cutting groove 102 moves to the middle part of the lifting plate 114, so as to transport the label into the cutting groove 102.

[0037] Furthermore, the output component 3 includes an output plate 301. The output plate 301 has a storage groove 302 on its outer wall near the cutting main plate 101. An output conveyor belt 303 is provided at the bottom of the storage groove 302. The output conveyor belt 303 rotates towards the output component 3. When the cutter 109 is received in the cutter groove 108 by the second telescopic stop 305, the cutting groove 102 remains open. At this time, the labels that have been cut inside slide into the storage groove 302 by the inclination of the inclined plate 104. Then, driven by the output conveyor belt 303, the cut labels are completely conveyed into the storage groove 302.

[0038] Furthermore, the output plate 301 has a storage groove 302 and a second stop groove 304 on its outer wall. A second telescopic stop 305 is slidably disposed inside the second stop groove 304. A spring is provided between the second telescopic stop 305 and the second stop groove 304, so that the second telescopic stop 305 can always be driven by an outward popping force. The outer walls of the second telescopic stop 305 and the protrusion 117 on opposite sides are provided with rounded corners, so that after the second telescopic stop 305 completely abuts the cutter 109 to the top, it can be slidably stored inside the second stop groove 304, which is convenient for abutting the next passing cutter 109.

[0039] Furthermore, the contact switch mechanism specifically includes electrical contacts disposed on the top of the protrusion 117 and the top of the cutting groove 102. The connection of these electrical contacts enables the contact switch mechanism to be connected to the switch circuit formed by the first telescopic stop 111. Specifically, when the second telescopic stop 305 abuts against the bottom of the protrusion 117, and the cutting main board 101 continues to slide down, causing the second telescopic stop 305 to abut against the protrusion 117 and drive the cutter 109 to be completely retracted into the cutter groove 108, the electrical contacts on the top of the protrusion 117 are connected to the corresponding electrical contacts on the top of the cutting groove 102. This connects the circuit, causing the first telescopic stop 111 to extend out of the first stop groove 110 and engage in the slot 112, thus engaging the cutter 109 and preventing it from falling off. Furthermore, the switching circuit formed between each contact switch mechanism and the first telescopic stop 111 will only operate once during a single downward slide of the cutting motherboard 101. That is, when the cutting motherboard 101 slides down once, after the switching circuit operates and causes the first telescopic stop 111 to protrude out of the first stop groove 110, the extension and retraction of the first telescopic stop 111 can no longer be controlled by the contact switch mechanism.

[0040] Furthermore, both input component 2 and output component 3 are provided with worktables at their bottoms to support them. The worktables support the cutting component 1, input component 2, and output component 3, ensuring their stability.

[0041] Working principle: First, insert the end of the label to be cut between the input base plate 201 and the input pressure plate 202. When the cutting main plate 101 slides down the lifting plate 114 until the cutting groove 102 is aligned with the empty groove between the input base plate 201 and the input pressure plate 202, the input conveyor belt 204 starts to rotate, conveying the label into the cutting groove 102, so that the end of the label slides to the top of the inclined plate 104 and the bottom of the baffle 105.

[0042] When the label end slides to the top of the inclined plate 104 and the bottom of the baffle 105, the infrared spotlight 106 can be blocked, so that the infrared receiver 107 cannot receive infrared rays, and the first telescopic block 111 retracts into the first block groove 110, thereby driving the cutter 109 to fall and cut the label.

[0043] The cutting time is a fixed time. After the fixed time has elapsed, the lifting plate 114 continues to drive the cutting main board 101 to slide down. At this time, the cutter 109 inside the cutting groove 102 with the label inside completely closes the cutting groove 102.

[0044] As the cutting main board 101 continues to slide down, the bottom of the protrusion 117 on the outer wall of the cutter 109 is abutted by the second telescopic stop 305. As the cutting main board 101 continues to slide down, the protrusion 117 drives the cutter 109 to slide up, so that the cutter 109 is completely housed inside the cutter groove 108.

[0045] At this time, the electrical contact at the top of the protrusion 117 is in contact with the electrical contact at the top of the cutting groove 102, causing the first telescopic stop 111 to protrude out of the first stop groove 110 and engage inside the groove 112, thus restricting and fixing the cutter 109 inside the cutter groove 108.

[0046] At this time, the label inside the cutting groove 102 is tilted by the inclined plate 104 and slides into the storage groove 302. Then, driven by the output conveyor belt 303, the cut label is completely conveyed into the storage groove 302.

[0047] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A label processing and cutting apparatus characterized by comprising: The utility model provides cutting assembly (1) including cutting mainboard (101), cutting mainboard (101) one side outer wall is equipped with cutting slot (102) of linear array distribution, cutting assembly (1) is equipped with cutting slot (102) the outer wall from top to bottom is sequentially provided with input assembly (2) and output assembly (3), cutting mainboard (101) is provided with lift plate (114) to drive cutting mainboard (101) can keep vertical reciprocating motion, drive cutting slot (102) is aligned to input assembly (2) and output assembly (3), cutting slot (102) is provided with inclined plate (104) inside, the outer wall of inclined plate (104) is provided with infrared ray control mechanism, cutting slot (102) is equipped with cutter slot (108) in the top close to open end, cutter slot (108) is provided with cutter (109) inside, the outer wall of cutter (109) one side is equipped with the slot (112), the inner wall of cutter slot (108) corresponding slot (112) is provided with first telescopic stopper (111), infrared ray mechanism and first telescopic stopper (111) between constitute switch circuit to drive first telescopic stopper (111) shrink, the outer wall bottom of cutter (109) far away from slot (112) is protrudingly provided with lug (117), the top between lug (117) and cutting slot (102) inner wall is provided with contact switch mechanism, contact switch mechanism and first telescopic stopper (111) between constitute switch circuit to drive first telescopic stopper (111) extend, first telescopic stopper (111) is driven to keep shrink to drive cutter (109) fall, the outer wall of output assembly (3) is provided with second telescopic stopper (305), cutting mainboard (101) is driven to keep vertical sliding to drive cutting slot (102) to pass through output assembly (3), to drive second telescopic stopper (305) and the bottom of lug (117) abut, to drive cutter (109) is stored in cutter slot (108) inside, to drive contact switch mechanism triggers, input assembly (2) and output assembly (3) inside are provided with driving power supply.

2. The label processing and cutting apparatus according to claim 1, wherein The utility model provides cutting mainboard (101) inside is provided with first power motor (103), and first power motor (103) and infrared ray control mechanism and first telescopic stopper (111) keep electric connection.

3. The label processing and cutting apparatus according to claim 1, wherein The utility model provides cutting mainboard (101) inside is provided with first power motor (103), and first power motor (103) and infrared ray control mechanism and first telescopic stopper (111) keep electric connection. The utility model provides cutting mainboard (101) inside is provided with first power motor (103), and first power motor (103) and infrared ray control mechanism and first telescopic stopper (111) keep electric connection.

4. The label processing and cutting apparatus according to claim 1, wherein The cutter slot (108) is provided with a first stop groove (110) corresponding to the inner wall of the clamping groove (112), the first telescopic stopper (111) is slidingly connected in the first stop groove (110), and the top of the cutter (109) is provided with a telescopic column (113) connected with the cutter slot (108).

5. The label processing and cutting apparatus according to claim 1, wherein The inside of the lifting plate (114) is provided with a second power motor (115), the lifting plate (114) is provided with a sliding rail (116) on the outer wall close to the cutting main plate (101), the cutting main plate (101) is slidingly connected to the outer wall of the lifting plate (114) through the sliding rail (116), and the second power motor (115) is electrically connected with the sliding rail (116) to drive the cutting main plate (101) to slide vertically.

6. The label processing and cutting apparatus according to claim 1, wherein The input assembly (2) comprises an input base plate (201) and an input pressing plate (202), an empty slot is formed between the input base plate (201) and the input pressing plate (202), inner grooves (203) are symmetrically formed on the outer walls of opposite sides of the input base plate (201) and the input pressing plate (202), an input conveying belt (204) is arranged in the inner grooves (203), and the rotating direction of the input conveying belt (204) is towards the cutting main plate (101).

7. The label processing and cutting apparatus according to claim 1, wherein The output assembly (3) comprises an output plate (301), the output plate (301) is provided with a receiving groove (302) on the outer wall close to the cutting main plate (101), the bottom of the receiving groove (302) is provided with an output conveying belt (303), and the rotating direction of the output conveying belt (303) is towards the output assembly (3).

8. The label processing and cutting apparatus according to claim 7, wherein The outer wall of the output plate (301) provided with the receiving groove (302) is provided with a second stop groove (304), a second telescopic stopper (305) is slidingly arranged in the second stop groove (304), a spring is arranged between the second telescopic stopper (305) and the second stop groove (304), and the opposite sides of the second telescopic stopper (305) and the protrusion (117) are both provided with a rounded corner.

9. The label processing and cutting apparatus according to claim 1, wherein The contact switch mechanism specifically comprises electric contact points arranged on the top of the protrusion (117) and the top of the cutting groove (102).

10. The label processing and cutting apparatus according to claim 1, wherein The bottom of the input assembly (2) and the output assembly (3) is provided with a workbench to support the input assembly (2) and the output assembly (3).