Radio frequency identification element adhesive apparatus

By setting up a conveyor section with a height difference and a component separation mechanism on the conveyor table, the problem of the radio frequency identification (RFID) components sticking together during the cutting process is solved, and the smooth cutting of RFID components and the continuity of the production process are achieved.

CN116552000BActive Publication Date: 2026-01-02DONGGUAN ZHENLIANG PRECISION TECH CO LTD
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Patent Information

Application Number
CN202310306169.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-24
Publication Date
2026-01-02
Estimated Expiration
2043-03-24

AI Technical Summary

Technical Problem

In the production process of radio frequency identification (RFID) components, due to the light weight of RFID components in the prior art, two adjacent RFID components tend to stick together during the cutting process, making it impossible for the cutting blade to enter between the two RFID components for cutting, thus affecting the production process.

Method used

By setting a first conveying section and a second conveying section with a height difference on the conveying table, and cooperating with the component separation mechanism on the second conveying section, the two adjacent radio frequency identification components can be separated before the cutting step, so that the cutting device can smoothly cut the sponge tape.

Benefits of technology

The cutting of radio frequency identification (RFID) components was carried out smoothly, ensuring the continuity and efficiency of the production process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application belongs to the technical field of electronic tag production, and particularly relates to a radio frequency identification element adhesive equipment, which comprises a conveying table, a cutting device and an element separation mechanism. The conveying table comprises a first main body, a first conveying part and a second conveying part. The first conveying part and the second conveying part are located on the first main body. The first conveying part and the second conveying part have a height difference. A cutting cooperation groove is arranged between the first conveying part and the second conveying part. The second conveying part is provided with the element separation mechanism at one end close to the cutting cooperation groove. The cutting device comprises a first driving source and a cutting blade. The first driving source is arranged on the conveying table. The cutting blade is in transmission connection with the first driving source. The cutting blade is arranged in the cutting cooperation groove. The equipment is provided with the first conveying part and the second conveying part with a height difference on the conveying table. The element separation mechanism on the second conveying part is matched. The two adjacent radio frequency identification elements before the cutting step are separated. The cutting device smoothly cuts the sponge adhesive tape.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of electronic tag production, in particular to a radio frequency identification element adhesive bonding equipment. BACKGROUND

[0002] Electronic tags are a kind of non-contact automatic identification technology, which identifies target objects and obtains relevant data through radio frequency signals, and the identification work does not require human intervention. As a wireless version of barcodes, RFID technology has advantages such as waterproofness, anti-magnetism, high temperature resistance, long service life, large reading distance, encrypted data on tags, larger storage data capacity, and easy change of stored information, etc.

[0003] In electronic tags, sponge adhesive needs to be bonded to radio frequency identification elements. Generally, adhesive bonding equipment is used to bond multiple radio frequency identification elements to the same long strip of sponge adhesive tape, and then a cutting knife is used to cut each radio frequency identification element.

[0004] In related technologies, due to the light weight of radio frequency identification elements, when multiple radio frequency identification elements are bonded to the same long strip of sponge adhesive tape, two adjacent radio frequency identification elements are easily bonded together, which causes the cutting knife to be unable to enter between the two radio frequency identification elements for cutting in the cutting process, thereby affecting the production process of the radio frequency identification elements.

[0005] It should be noted that the information disclosed in the above background section is only used to strengthen the understanding of the background of the present disclosure, and therefore can include information that does not constitute prior art known to those of ordinary skill in the art. SUMMARY

[0006] In view of at least one of the above technical problems, the present application provides a radio frequency identification element adhesive bonding equipment, which solves the problem in related technologies that due to the light weight of radio frequency identification elements, when multiple radio frequency identification elements are bonded to the same long strip of sponge adhesive tape, two adjacent radio frequency identification elements are easily bonded together, which causes the cutting knife to be unable to enter between the two radio frequency identification elements for cutting in the cutting process, thereby affecting the production process of the radio frequency identification elements.

[0007] The present application provides a radio frequency identification element adhesive bonding equipment, which includes:

[0008] The conveying table includes a first main body, a first conveying part and a second conveying part. The first conveying part and the second conveying part are located on the first main body, and there is a height difference between the first conveying part and the second conveying part. A cutting cooperation groove is provided between the first conveying part and the second conveying part. An element separation mechanism is provided at one end of the second conveying part close to the cutting cooperation groove.

[0009] The cutting device includes a first drive source and a cutting blade. The first drive source is located on a conveyor table, and the cutting blade is connected to the first drive source in a transmission manner. The cutting blade is placed in a cutting groove.

[0010] The embodiments of this application have the following technical effects: This equipment, by providing a first conveying section and a second conveying section with a height difference on the conveying table, and cooperating with the component separation mechanism on the second conveying section, can separate two adjacent radio frequency identification components before the cutting step, thereby allowing the cutting device to smoothly cut the sponge tape and ensuring the smooth progress of the cutting process.

[0011] In one implementation, a first conveying section is provided with a first conveying groove extending along a first direction, and a second conveying section is provided with a second conveying groove extending along the first direction. The first conveying groove, the cutting mating groove, and the second conveying groove are connected. The cutting mating groove extends along a second direction, and the cutting direction of the cutting blade is perpendicular to the conveying direction of the radio frequency identification element. The element separation mechanism is located above the second conveying groove.

[0012] In one implementation, the component separation mechanism includes an abutment movably disposed on the second conveying section. The abutment has a mating groove on the surface of the second conveying groove, which is correspondingly disposed to the second conveying groove. The mating groove has an abutment wall that gradually slopes toward the second conveying groove from the first conveying section to the second conveying section.

[0013] In one implementation, slots are provided at opposite ends of the abutment member;

[0014] The component separation mechanism also includes a first mounting block and a second mounting block. The first mounting block and the second mounting block are symmetrically mounted on both sides of the second conveying groove. The first mounting block is provided with a first pin, and the second mounting block is provided with a second pin. The first pin and the second pin are inserted into the slot.

[0015] In one implementation, the second conveying trough has an inclined wall that is arranged opposite to and parallel to the abutment wall.

[0016] In one implementation, the adhesive bonding equipment further includes a sponge adhesive feeding device, a component feeding device, and a component transfer device. The sponge adhesive feeding device is located on one side of the conveyor table and is used to feed the sponge adhesive onto the first conveyor section. The component feeding device is located on one side of the conveyor table and is used to feed radio frequency identification (RFID) components. The component transfer device is located between the sponge adhesive feeding device and the component feeding device and is used to transfer the RFID components from the component feeding device and bond them to the sponge adhesive.

[0017] In an implementation manner, the conveying table is provided with a to-be-loaded seat, a loading position of the to-be-loaded seat is provided with a through slot, and a loading inductor is arranged through the conveying table and located in the through slot.

[0018] In an implementation manner, the component transfer device comprises a first moving module, a second moving module and a clamping air claw, the first moving module is arranged above the conveying table along a second direction, the second moving module is connected to the first moving module along a third direction, and the clamping air claw is connected to the second moving module.

[0019] In an implementation manner, the viscous adhesive device further comprises a pushing device, the pushing device comprises a pushing driving source, a moving seat and a pushing block, the pushing driving source is arranged above the conveying table, the moving seat is in transmission connection with the pushing driving source and moves reciprocally along the first direction, and the pushing block is rotatably arranged on the moving seat, the pushing block is arranged above the first conveying part and abuts against the components in the first conveying part.

[0020] In an implementation manner, the moving seat is provided with a mounting slot, the mounting slot is provided with an opening towards the moving direction of the components, a rotating shaft is arranged in the mounting slot, the pushing block is sleeved on the rotating shaft and can rotate relative to the moving seat, and the inner wall of the pushing block is in separable connection with the groove bottom wall of the mounting slot.

[0021] The application will be further described below in combination with the drawings and embodiments. BRIEF DESCRIPTION OF DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without any creative effort on the basis of these drawings.

[0023] Figure 1 is a structure diagram of the conveying table and the cutting device in the embodiment of the present application;

[0024] Figure 2 is a top view of the conveying table and the cutting device in the embodiment of the present application;

[0025] Figure 3 is Figure 2 a sectional view in the direction of A-A in FIG. 4;

[0026] Figure 4 is Figure 3 an enlarged structure diagram of the position A in FIG. 4;

[0027] Figure 5 is an exploded structure diagram of the component separation mechanism in the embodiment of the present application;

[0028] Figure 6 is a separated schematic view of the first element and the second element in the embodiment of the present application;

[0029] Figure 7 is a structural view of the radio frequency identification element adhesive equipment in the embodiment of the present application;

[0030] Figure 8 is an exploded structural view of the pushing device in the embodiment of the present application; DETAILED DESCRIPTION

[0031] In order to make the above objectives, characteristics and advantages of the present application more apparent, obvious and easy to understand, the specific embodiments of the present application are described in detail below. In the following description, a large number of specific details are set forth in order to provide a sufficient understanding of the present application. However, the present application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without departing from the spirit of the present application, so the present application is not limited to the specific embodiments disclosed below.

[0032] In the description of the present application, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application.

[0033] In the description of the present application, it should be understood that the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include at least one of the features. In the description of the present application, the meaning of "a plurality of" is at least two, such as two, three, etc., unless otherwise explicitly specified and limited.

[0034] In the embodiments of the present application, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connecting", "fixing" and the like should be understood in a broad sense, for example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the embodiments of the present application can be understood according to the specific circumstances.

[0035] In the embodiments of the present application, the first direction corresponds to the X axis of the space coordinate axis (i.e., the left-right direction), the second direction corresponds to the Y axis of the space coordinate axis (i.e., the front-rear direction), and the third direction corresponds to the Z axis of the space coordinate axis (i.e., the up-down direction).

[0036] In the electronic tag, it is necessary to bond the sponge rubber on the radio frequency identification element. Generally, a plurality of radio frequency identification elements are bonded on the same long strip of sponge rubber tape by using a bonding device, and then each radio frequency identification element is cut by a cutting knife. In the related art, since the radio frequency identification element is light in quality, when the plurality of radio frequency identification elements are bonded on the same long strip of sponge rubber tape, two adjacent radio frequency identification elements are easily adhered together, resulting in that the cutting knife cannot enter between the two radio frequency identification elements to cut in the cutting process, thereby affecting the production process of the radio frequency identification element. The device is provided with the first conveying part and the second conveying part with height difference on the conveying table, and cooperates with the element separation mechanism on the second conveying part, realizes the separation of the two adjacent radio frequency identification elements before the cutting step, so that the cutting device smoothly cuts the sponge rubber tape, and ensures the smooth cutting process.

[0037] It is worth noting that since the sponge rubber is double-layered and has a certain thickness, and the radio frequency identification element is small in size and light in quality, when the radio frequency identification element is bonded on the sponge rubber, in order not to waste the sponge rubber, the radio frequency identification elements are bonded one by one on the same long strip of sponge rubber, that is, two adjacent radio frequency identification elements are adhered together. If the two adjacent radio frequency identification elements are not separated in the cutting process, the cutting device will have no space to cut the sponge rubber between the two adjacent radio frequency identification elements, thereby affecting the bonding process of the radio frequency identification element.

[0038] Please refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 8 , wherein, Figure 1 is a structure diagram of the conveying table and the cutting device in the embodiments of the present application; Figure 2 is a top view of the conveying table and the cutting device in the embodiments of the present application; Figure 3 is a sectional view of the A-A direction in Figure 2 ; Figure 4 is an enlarged structure diagram of the A part in Figure 3 ; Figure 5 is an exploded structure diagram of the element separation mechanism in the embodiments of the present application; Figure 6 is a separation schematic diagram of the first element and the second element in the embodiments of the present application;Figure 7 is a structural diagram of a radio frequency identification element adhesive bonding device in the embodiment of the present application; Figure 8 is an exploded structural diagram of a pushing device in the embodiment of the present application; the embodiment of the present application provides a radio frequency identification element adhesive bonding device, which comprises a conveying table 100, a cutting device 200, a sponge adhesive feeding device 300, an element feeding device 400, an element transfer device 500 and a pushing device 600.

[0039] Combined with reference Figures 1 to 6 The specific structure of the radio frequency identification element adhesive bonding device will be described in detail below.

[0040] The conveying table 100 comprises a first main body 110, a first conveying part 120 and a second conveying part 130, the first conveying part 120 and the second conveying part 130 are located on the first main body 110, and there is a height difference between the first conveying part 120 and the second conveying part 130; a cutting cooperation groove 140 is arranged between the first conveying part 120 and the second conveying part 130, and an element separation mechanism 150 is arranged at one end of the second conveying part 130 close to the cutting cooperation groove 140.

[0041] The cutting device 200 comprises a first driving source 210 and a cutting blade 220, the first driving source 210 is arranged on the conveying table 100, and the cutting blade 220 is in transmission connection with the first driving source 210, and the cutting blade 220 is arranged in the cutting cooperation groove 140.

[0042] In the conveying table 100, the first main body 110, the first conveying part 120 and the second conveying part 130 are in an integral molding structure, and the first conveying part 120 and the second conveying part 130 protrude from the first main body 110. When feeding, the sponge adhesive moves from the first conveying part 120 to the second conveying part 130, the radio frequency identification element is bonded on the sponge adhesive, and moves from the first conveying part 120 to the second conveying part 130 together with the sponge adhesive.

[0043] The first driving source 210 is a common linear driving mechanism, which will not be limited here. In the embodiment of the present application, the first driving source 210 is a pneumatic cylinder.

[0044] In order to separate two adjacent radio frequency identification elements, the first conveying part 120 and the second conveying part 130 have a height difference, and then cooperate with the element separation mechanism 150 arranged on the second conveying part 130, so as to separate a gap between the two adjacent radio frequency identification elements, and the gap is cut on the cutting cooperation groove 140 between the first conveying part 120 and the second conveying part 130, so as to facilitate the cutting device 200 to cut the sponge adhesive, thereby separating the radio frequency identification element.

[0045] Combined with reference Figure 6For the convenience of understanding, the radio frequency identification element located at the front side is defined as the first element A1, and the radio frequency identification element located at the back side is defined as the second element A2. For example, when the first element A1 at the front side moves to the element separation mechanism 150, the upper part of the first element A1 contacts the element separation mechanism 150, and the element separation mechanism 150 provides a downward force to the first element A1, so that the first element A1 is bent downward relative to the second element A2, so that a gap is formed between the first element A1 and the second element A2, and the gap is just in the cutting cooperation groove 140. The first driving source 210 drives the cutting blade 220 to move in the second direction, so as to cut the sponge rubber.

[0046] In some examples, in combination with reference to Figures 1 to 4 , the first conveying part 120 is provided with a first conveying groove 121 extending in the first direction, and the second conveying part 130 is provided with a second conveying groove 131 extending in the first direction. The first conveying groove 121, the cutting cooperation groove 140, and the second conveying groove 131 are communicated, the cutting cooperation groove 140 extends in the second direction, the cutting direction of the cutting blade 220 is perpendicular to the conveying direction of the radio frequency identification element, and the element separation mechanism 150 is arranged above the second conveying groove 131.

[0047] The first conveying groove 121 and the second conveying groove 131 are located on the same straight line, so that the radio frequency identification element and the sponge rubber can be straightly fed. The width of the first conveying groove 121 and the second conveying groove 131 is matched with the width of the radio frequency identification element and the sponge rubber, so that the radio frequency identification element and the sponge rubber can be stably moved in the first conveying groove 121 and the second conveying groove 131 without position deviation.

[0048] The cutting cooperation groove 140 is located between the first conveying groove 121 and the second conveying groove 131, and extends in the second direction, for cooperating with the cutting blade 220 to cut the sponge rubber, so that the adjacent two radio frequency identification elements are cut and separated.

[0049] The element separation mechanism 150 is located above the second conveying groove 131 and close to the first conveying groove 121, so that the radio frequency identification element and the sponge rubber can immediately abut and cooperate with the element separation mechanism 150 after leaving the first conveying groove 121, so that the adjacent two radio frequency identification elements are separated.

[0050] In some examples, in combination with reference to Figure 3 , Figure 4 and Figure 6The element separating mechanism 150 comprises an abutting piece 151 movably arranged on the second conveying part 130. The abutting piece 151 is provided with a matching groove 1511 on the surface of the second conveying groove 131. The matching groove 1511 is arranged correspondingly to the second conveying groove 131. The matching groove 1511 has an abutting wall 1512 which gradually inclines to the second conveying groove 131 from the direction of the first conveying part 120 to the second conveying part 130.

[0051] The abutting piece 151 is movably arranged above the second conveying groove 131 of the second conveying part 130. One end of the abutting piece 151 close to the first conveying part 120 is a fulcrum end. The other end of the abutting piece 151 away from the first conveying part 120 is a movable end. The movable end is detachably connected with the second conveying part 130. For example, due to the supporting effect of the sponge rubber on the first element A1, when the first element A1 enters the matching groove 1511, the first element A1 has not been separated from the second element A2. Then, the first element A1 abuts against the abutting wall 1512 of the matching groove 1511 and is inclinedly fitted, so that the movable end of the abutting piece 151 moves upward and the movable end is away from the second conveying part 130. At this time, under the gravity of the abutting piece 151, i.e. the gravity of the abutting piece 151 plus the gravity of the first element A1 is greater than the supporting force of the sponge rubber on the first element A1, the movable end and the first element A1 move downward together, and finally the sponge rubber at the bottom of the first element A1 is attached to the second conveying groove 131, so that the separation of the first element A1 from the second element A2 is completed.

[0052] The abutting wall 1512 gradually inclines to the second conveying groove 131 from the direction of the first conveying part 120 to the second conveying part 130. In this way, it can be ensured that the first element A1 enters the matching groove 1511, and the first element A1 is gradually inclinedly fitted with the abutting wall 1512, so that the movable end of the abutting piece 151 moves upward.

[0053] In some examples, in combination with reference to Figure 5 The opposite ends of the abutting piece 151 are respectively provided with a slot 1513. The element separating mechanism 150 further comprises a first mounting block 152 and a second mounting block 153. The first mounting block 152 and the second mounting block 153 are symmetrically mounted on the two sides of the second conveying groove 131. The first mounting block 152 is provided with a first plug pin 154, and the second mounting block 153 is provided with a second plug pin 155. The first plug pin 154 and the second plug pin 155 are inserted into the slot 1513.

[0054] Through the above structure, the abutting piece 151 takes the axis of the first plug pin 154 and the second plug pin 155 as the rotation axis, so that the abutting piece 151 rotates around the axis of the first plug pin 154 and the second plug pin 155, thereby realizing the detachable connection between the movable end of the abutting piece 151 and the second conveying part 130.

[0055] In some examples, referring to Figure 4 The second conveying groove 131 has an inclined wall 1311 arranged opposite to and parallel with the abutting wall 1512.

[0056] The distance between the inclined wall 1311 and the abutting wall 1512 is just the height of the radio frequency identification element, so that the upper part and the lower part of the radio frequency identification element are respectively attached to the abutting wall 1512 and the inclined wall 1311, and the first element A1 is bent downward relative to the second element A2.

[0057] In some examples, referring to Figure 7 The adhesive equipment further comprises a sponge adhesive feeding device 300, an element feeding device 400, and an element transfer device 500. The sponge adhesive feeding device 300 is arranged on one side of the conveying table 100 and is used to feed sponge adhesive onto the first conveying part 120. The element feeding device 400 is arranged on one side of the conveying table 100 and is used to feed radio frequency identification elements. The element transfer device 500 is arranged between the sponge adhesive feeding device 300 and the element feeding device 400 and is used to transfer and adhere the radio frequency identification elements from the element feeding device 400 to the sponge adhesive.

[0058] The sponge adhesive feeding device 300 is used to feed sponge adhesive onto the first conveying part 120, so that the sponge adhesive is fed in the first direction into the first conveying groove 121. The sponge adhesive feeding device 300 is a common adhesive tape feeding device, which will not be described and limited in detail here.

[0059] The element feeding device 400 is used to feed radio frequency identification elements. The element feeding device 400 comprises a feeding vibration table.

[0060] The element transfer device 500 is used to transfer and adhere the radio frequency identification elements from the element feeding device 400 to the sponge adhesive.

[0061] When the adhesive equipment is working, the sponge adhesive feeding device 300 feeds sponge adhesive into the first conveying groove 121, the element transfer device 500 picks up a radio frequency identification element from the element feeding device 400 and adheres it to the sponge adhesive of the first conveying groove 121.

[0062] In some examples, referring to Figure 7 A to-be-fed seat is installed on the conveying table 100, a through slot is arranged at a feeding position of the to-be-fed seat, and a feeding inductor is arranged through the conveying table 100 and placed in the through slot. The element feeding device 400 is connected to the to-be-fed seat.

[0063] When feeding, the component feeding device 400 feeds the radio frequency identification components one by one to the to-be-fed seat, and when the to-be-fed seat has a radio frequency identification component, the feeding sensor sends a control signal to the component transfer device 500.

[0064] In some examples, in combination with reference to Figure 7 The component transfer device 500 includes a first moving module 510, a second moving module 520, and a clamping air claw 530. The first moving module 510 is arranged above the conveying table 100 along a second direction. The second moving module 520 is connected to the first moving module 510 along a third direction. The clamping air claw 530 is connected to the second moving module 520. Through the above structure, the radio frequency identification component is moved in a plane, so that the radio frequency identification component is moved from the component feeding device 400 to the first conveying part 120.

[0065] The first moving module is a cylinder-driven sliding block mechanism. The second moving module is a cylinder-driven sliding block mechanism.

[0066] In some examples, in combination with reference to Figure 8 The adhesive device further includes a pushing device 600. The pushing device 600 includes a pushing driving source 610, a moving seat 620, and a pushing block 630. The pushing driving source 610 is arranged above the conveying table 100. The moving seat 620 is in transmission connection with the pushing driving source 610 and moves reciprocally along the first direction. The pushing block 630 is rotatably arranged on the moving seat 620. The pushing block 630 is arranged above the first conveying part 120 and abuts against the component in the first conveying part 120.

[0067] When the pushing device 600 works, the pushing driving source 610 drives the moving seat 620 to move reciprocally along the first direction, so that the pushing block 630 moves reciprocally along the first direction. The pushing block 630 abuts against the radio frequency identification component, thereby pushing the radio frequency identification component to move from the first conveying part 120 to the second conveying part 130.

[0068] The pushing block 630 is rotatably arranged on the moving seat 620, and the bottom of the pushing block 630 is a plane toward one end of the second conveying part 130 and is an inclined surface away from the other end of the second conveying part 130. When the pushing block 630 moves from the second conveying part 130 to the first conveying part 120, the inclined surface of the bottom of the pushing block 630 is in sliding cooperation with the radio frequency identification component, so that the pushing block 630 rotates and resets, thereby not affecting the normal movement of the radio frequency identification component and enabling the pushing block 630 to return to the initial pushing position.

[0069] In some examples, in combination with reference to Figure 8The moving seat 620 is provided with a mounting groove 621, which is provided with an opening 622 in the moving direction of the element, and the rotating shaft 640 is mounted in the mounting groove 621; the pushing block 630 is sleeved on the rotating shaft 640 and can rotate relative to the moving seat 620, and the inner wall of the pushing block 630 is detachably connected with the groove bottom wall of the mounting groove 621.

[0070] Through the above structure, the pushing block 630 is rotatably arranged, and when the pushing block 630 returns to the initial pushing position, the radio frequency identification element is not affected.

[0071] For example, when the pushing block 630 pushes the material forward, the inner part of the pushing block 630 is always connected with the groove bottom wall of the mounting groove 621, thereby supporting the pushing block 630 to push the radio frequency identification element forward.

[0072] For another example, when the pushing block 630 returns to the initial position backward, the inner wall of the pushing block 630 is disconnected with the groove bottom wall of the mounting groove 621 once every time when passing through a radio frequency identification element, so that the radio frequency identification element is not affected and can return to the initial pushing position.

[0073] The technical features of the above embodiments can be combined arbitrarily, and in order to make the description simple, all possible combinations of the technical features in the above embodiments are not described, however, as long as the combination of the technical features does not exist contradictory, it should be considered that it is within the scope of the present application.

[0074] The above is only the preferred embodiment of the present application, and does not limit the present application in any form. Any person skilled in the art can make many possible changes and modifications to the technical solution of the present application, or modify it into equivalent embodiments without departing from the scope of the technical solution of the present application. Therefore, any equivalent change within the scope of the technical solution of the present application, according to the shape, structure and principle of the present application, should be covered within the protection scope of the present application.

Claims

1. A radio frequency identification element adhesive apparatus, comprising: a housing; a radio frequency identification element; an adhesive layer; and a release liner. The application relates to a radio frequency identification element gluing device. The device comprises a conveying table, a cutting device and a radio frequency identification element separating mechanism. The conveying table comprises a first main body, a first conveying part and a second conveying part. The first conveying part and the second conveying part are arranged on the first main body. The first conveying part and the second conveying part have a height difference.

2. The radio frequency identification element adhesive apparatus of claim 1, wherein, A cutting cooperation groove is arranged between the first conveying part and the second conveying part. One end of the second conveying part close to the cutting cooperation groove is provided with the radio frequency identification element separating mechanism.

3. The radio frequency identification element adhesive apparatus of claim 1, wherein, The cutting device comprises a first driving source and a cutting blade.

4. The radio frequency identification element adhesive apparatus of claim 3, wherein, The first driving source is arranged on the conveying table. The cutting blade is in transmission connection with the first driving source.

5. The radio frequency identification element adhesive apparatus of claim 3, wherein, The cutting blade is arranged in the cutting cooperation groove.

6. The radio frequency identification element bonding apparatus of claim 1, wherein The first conveying part is provided with a first conveying groove extending along a first direction. The second conveying part is provided with a second conveying groove extending along the first direction. The first conveying groove, the cutting cooperation groove and the second conveying groove are communicated. The cutting cooperation groove extends along a second direction. The cutting direction of the cutting blade is perpendicular to the conveying direction of the radio frequency identification element. The radio frequency identification element separating mechanism is arranged above the second conveying groove. The radio frequency identification element separating mechanism comprises an abutting piece movably arranged on the second conveying part. The abutting piece is provided with a cooperation groove on the surface of the second conveying groove. The cooperation groove is arranged in correspondence with the second conveying groove. The cooperation groove has an abutting wall. The abutting wall gradually inclines to the second conveying groove from the first conveying part to the second conveying part. The second conveying groove has an inclined wall. The inclined wall is arranged opposite to and parallel with the abutting wall. One end of the abutting piece close to the first conveying part is a fulcrum end. The other end of the abutting piece far away from the first conveying part is a movable end. The movable end is separably connected with the second conveying part. The opposite ends of the abutting piece are respectively provided with insertion grooves. The radio frequency identification element separating mechanism further comprises a first mounting block and a second mounting block. The first mounting block and the second mounting block are symmetrically arranged on the two sides of the second conveying groove. The first mounting block is provided with a first insertion pin. The second mounting block is provided with a second insertion pin. The first insertion pin and the second insertion pin are inserted into the insertion grooves. The gluing device further comprises a sponge glue feeding device, an element feeding device and an element transfer device. The sponge glue feeding device is arranged on one side of the conveying table. The sponge glue feeding device is used for feeding sponge glue to the first conveying part. The element feeding device is arranged on one side of the conveying table. The element feeding device is used for feeding radio frequency identification elements. The element transfer device is arranged between the sponge glue feeding device and the element feeding device. The element transfer device is used for transferring and gluing the radio frequency identification elements on the sponge glue. A to-be-fed seat is arranged on the conveying table. A through groove is arranged in the feeding position of the to-be-fed seat. A feeding inductor passes through the conveying table and is arranged in the through groove. The element feeding device is in butt joint with the to-be-fed seat. The element transfer device comprises a first moving module, a second moving module and a clamping air claw. The first moving module is arranged above the conveying table along a second direction. The second moving module is connected with the first moving module along a third direction. The clamping air claw is connected with the second moving module. The gluing device further comprises a pushing device. The pushing device comprises a pushing driving source, a moving seat and a pushing block. The pushing driving source is arranged above the conveying table. The moving seat is in transmission connection with the pushing driving source and moves back and forth along a first direction. The pushing block is rotatably arranged on the moving seat. The pushing block is arranged above the first conveying part and abuts against the element in the first conveying part.

7. The radio frequency identification element adhesive apparatus of claim 6, wherein, An installation groove is arranged on the moving seat. An opening is arranged on the installation groove towards the moving direction of the element. A rotating shaft is installed in the installation groove. The pushing block is sleeved on the rotating shaft and can rotate relative to the moving seat. The inner wall of the pushing block is in separable connection with the groove bottom wall of the installation groove.

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