A connecting point device for RFID antenna production
By designing connection point equipment for RFID antenna production and adopting clamping positioning and automatic dust blowing mechanisms, the problems of component damage and foreign matter contamination during the pressing process were solved, ensuring the stability and service life of the circuit board.
Patent Information
- Application Number
- CN202510330057.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2045-03-20
AI Technical Summary
When electronic components are laminated onto an RFID antenna circuit board, problems such as component damage, circuit board deformation, and foreign matter contamination may occur, affecting the circuit board's performance and lifespan.
A connection point device for RFID antenna production was designed, comprising an antenna clamping mechanism, a component pressing mechanism, and an automatic dust blowing mechanism. Through clamping and positioning, uniform pressing, and removal of foreign objects, it ensures accurate connection of components to circuit boards and a clean environment.
It achieves uniform and precise connection between components and circuit boards, avoiding component damage and foreign matter contamination, and improving the stability and service life of circuit boards.
Smart Images

Figure CN120186986B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of RFID antenna manufacturing technology, specifically relating to a connection point device for RFID antenna manufacturing. Background Technology
[0002] Numerous problems may arise when bonding electronic components onto RFID antenna circuit boards, requiring targeted solutions. These problems and solutions not only affect the performance and stability of the circuit board but also impact the overall quality and lifespan of the electronic product.
[0003] Potential problems
[0004] Component damage: Excessive pressure during the lamination process can cause physical damage to electronic components. For example, chip pins may be broken, and the internal structure of some precision sensor components may be damaged. In addition, the instantaneous impact force generated during lamination may also cause electrical short circuits or open circuits inside the components. For example, the electrodes of a capacitor may be displaced due to the impact, leading to abnormal electrical performance.
[0005] Circuit board deformation: Uneven pressure can cause excessive stress in certain areas of the circuit board, leading to bending, warping, and other deformations. This not only affects the installation of the circuit board in the equipment but may also cause additional stress on the pins of other components on the board, potentially resulting in pin breakage after prolonged use.
[0006] Foreign matter contamination: An unclean lamination environment allows dust, impurities, or debris generated during operation to get between the components and the circuit board. These foreign objects can affect the electrical connection between the components and the circuit board, increase resistance, cause unstable signal transmission, and may even lead to short circuits.
[0007] Based on this, we designed a connection point device for RFID antenna production. Summary of the Invention
[0008] The purpose of this invention is to address the problems of easy damage to electronic components and uneven pressure leading to circuit board deformation during the lamination of electronic components on existing RFID antenna circuit boards, as well as the easy entry of foreign objects into the circuit board, by providing a connection point device for RFID antenna production.
[0009] This invention is achieved through the following technical solution:
[0010] A connection point device for RFID antenna manufacturing, used for crimping components on an RFID antenna circuit board, comprising:
[0011] The equipment body has a sealing cover on its outer side, and the sealing cover has an opening on its front side; a control surface is provided on one side of the front side of the sealing cover for controlling the operation of the equipment.
[0012] An antenna clamping mechanism is located inside the device body and is used to clamp and position the antenna circuit board that needs to be pressed.
[0013] The component crimping mechanism is located above the antenna clamping mechanism and is used to apply uniform pressure to the component to be crimped, so that its pins are connected to the interface on the circuit board.
[0014] Preferably, the antenna clamping mechanism includes a clamping support frame, which is fixedly installed inside the device body. A support platform is fixedly connected to the upper end of the clamping support frame, and a clamping platform is provided at the upper end of the support platform. The lower end of the clamping platform is connected to the support platform through a longitudinal moving mechanism and a lateral moving mechanism, thereby enabling the clamping platform to move longitudinally and laterally to achieve the positioning function. A clamping cylinder fixing frame is provided on the front and rear sides of the clamping platform, and a clamping cylinder is installed on the clamping cylinder fixing frame. The movable end of the clamping cylinder is connected to a clamping fixture. The front and rear clamping fixtures fix the circuit board of the antenna to prevent the circuit board from sliding during crimping.
[0015] Preferably, the longitudinal moving mechanism includes multiple longitudinal slide rails disposed on the upper surface of the support platform. Each longitudinal slide rail has a longitudinal slide block at its upper end, and a longitudinal platform is fixedly mounted on the upper end of the longitudinal slide block. A longitudinal motor is mounted on the rear side of the support platform, and a longitudinal lead screw is connected to the output end of the longitudinal motor. The other end of the longitudinal lead screw is connected to the support platform through a bearing seat. The lower end of the longitudinal platform is threadedly connected to the longitudinal lead screw through a threaded block. In use, the longitudinal motor drives the longitudinal lead screw to rotate, thereby driving the longitudinal platform to move longitudinally.
[0016] Preferably, the lateral movement mechanism includes multiple lateral slide rails disposed at the upper end of the longitudinal platform, each lateral slide rail having a lateral slide block at its upper end, and a lateral platform fixedly mounted at the upper end of each lateral slide block. A lateral motor is mounted on the left side of the longitudinal platform, and the output end of the lateral motor is connected to a lateral lead screw. The other end of the lateral lead screw is connected to the longitudinal platform via a bearing seat. The lower end of the lateral platform is threadedly connected to the lateral lead screw via a threaded block. During operation, the lateral motor drives the lateral lead screw to rotate, thereby causing the lateral platform to move laterally.
[0017] Preferably, the component pressing mechanism includes pressing support frames symmetrically arranged on both sides of the support platform. The upper ends of the two pressing support frames are provided with crossbeams, and a pressing cylinder is fixedly installed in the middle of the front side of the crossbeam. The lower end of the pressing cylinder is provided with a pressing assembly.
[0018] Preferably, the crimping assembly includes a mounting bracket, which is fixedly connected to the movable end of the crimping cylinder. A crimping connector housing is fixedly connected to the lower end of the mounting bracket. A crimping connector is inserted into the lower end of the crimping connector housing, and the upper end of the crimping connector has a U-shaped groove. A transverse through groove is provided in the middle of the crimping connector housing, and a driving block is provided in the through groove. An inclined groove is provided on the driving block, and the U-shaped end of the crimping connector is connected to the inclined groove through a rotating shaft.
[0019] The mounting bracket has a base plate on its rear side, and a drive cylinder is located at the upper end of the base plate. The movable end of the drive cylinder is connected to the drive block. In use, the crimping cylinder first drives the crimping assembly to descend rapidly. When it approaches the circuit board component, the drive cylinder drives the drive block to move forward, and the inclined groove causes the crimping head to move downward, thereby performing a second precise crimping of the component and avoiding large movement of the crimping cylinder, which could damage the component.
[0020] Preferably, an automatic soot blowing mechanism is provided at the lower middle part of the crossbeam. The automatic soot blowing mechanism includes a connecting frame, which is U-shaped. The upper end of the connecting frame is fixedly connected to the lower end of the crossbeam, and an airbag is fixedly installed at the bottom of the connecting frame. The airbag contains multiple springs, and the top and bottom of the airbag are made of rigid material. The connecting frame is provided with a nozzle mounting plate. The two ends of the nozzle mounting plate are respectively mounted on both sides of the connecting frame through two mounting seats, and the nozzle mounting plate can be rotated to adjust the angle. The front of the nozzle mounting plate is provided with multiple nozzles. The front of the airbag is connected to the multiple nozzles through an air outlet pipe, and one-way air inlet valves are also provided on both sides of the top of the airbag.
[0021] During use, the crimping cylinder drives the mounting bracket to move downwards. During the descent, the base plate on the mounting bracket contacts the airbag and presses down, causing the gas inside the airbag to be ejected from the nozzle and blown toward the circuit board on the clamping platform. This blows away the dust and debris on the clamping platform and the circuit board, ensuring the cleanliness of the circuit board and providing a clean crimping environment to prevent foreign matter from getting in.
[0022] Preferably, the length of the rear bottom plate of the mounting bracket should be flush with the rear side of the airbag to ensure that the bottom plate can fully pressurize the airbag during descent.
[0023] The present invention has the following advantages over the prior art:
[0024] 1. This invention provides an antenna clamping mechanism and a component pressing mechanism inside the device body. The antenna clamping mechanism clamps and positions the antenna circuit board, and the component pressing mechanism performs a secondary pressing action. This can apply uniform and precise pressure to the component, so that the component pins can be successfully connected to the interface on the circuit board. It can also avoid the phenomenon of component damage caused by excessive pressing action amplitude and force.
[0025] 2. By setting up a longitudinal moving mechanism and a transverse moving mechanism, the present invention enables the clamping platform to move precisely in the longitudinal and transverse directions, thereby allowing the crimping connector to be accurately positioned with the components on the circuit board, facilitating the crimping operation.
[0026] 3. The present invention provides a sealing cover around the device body to isolate the inside of the device from the outside as much as possible, thereby preventing dust from falling onto the circuit board and affecting the crimping of components on the antenna circuit board.
[0027] 4. By setting up an automatic dust blowing mechanism, during the descent process, the base plate on the mounting frame will contact the airbag and press down, causing the gas inside the airbag to be sprayed out from the nozzle instantly and blown towards the circuit board on the clamping platform. This blows away the dust and debris on the clamping platform and the circuit board, ensuring the cleanliness of the circuit board and providing a clean pressing environment to prevent foreign matter from entering.
[0028] 5. The nozzle mounting plate angle in this invention can be rotated and adjusted, so that the nozzle can be accurately oriented toward the circuit board on the clamping platform as needed, thereby increasing the blowing effect. Attached Figure Description
[0029] Figure 1 This is a structural schematic diagram of a connection point device for RFID antenna production.
[0030] Figure 2 A front view of a connection point device for RFID antenna manufacturing;
[0031] Figure 3 This is a schematic diagram of the antenna clamping mechanism and the component pressing mechanism in a connection point device for RFID antenna production.
[0032] Figure 4 An oblique view of an antenna clamping mechanism and a component pressing mechanism in a connection point device for RFID antenna production;
[0033] Figure 5 This is a partial structural diagram of an antenna clamping mechanism in a connection point device for RFID antenna production.
[0034] Figure 6 This is a schematic diagram of the component crimping mechanism in a connection point device for RFID antenna production.
[0035] Figure 7 This is a side view of a component crimping mechanism in a connection point device for RFID antenna production;
[0036] Figure 8 This is a front view of a pressure connector in a connection point device for RFID antenna production;
[0037] Figure 9This is a schematic diagram of the airbag structure in a connection point device for RFID antenna production.
[0038] The diagram shows: 1. Equipment body; 2. Control panel; 3. Antenna clamping mechanism; 4. Component crimping mechanism.
[0039] 301. Clamping support frame; 302. Support platform; 303. Longitudinal slide rail; 304. Longitudinal slide block; 305. Longitudinal platform; 306. Longitudinal motor; 307. Longitudinal lead screw; 308. Transverse platform; 309. Transverse slide block; 310. Transverse motor; 311. Transverse slide rail; 312. Transverse lead screw; 313. Clamping platform; 314. Clamping fixture; 315. Clamping cylinder; 316. Clamping cylinder fixing frame;
[0040] 401. Crimping support frame; 402. Crossbeam; 403. Crimping cylinder; 404. Crimping assembly; 405. Automatic soot blowing mechanism;
[0041] 4041. Mounting bracket; 4042. Crimping connector housing; 4043. Crimping connector; 4044. Drive block; 4045. Drive cylinder; 4046. Base plate; 4047. Inclined groove;
[0042] 4051. Connecting bracket; 4052. Airbag; 4053. Mounting base; 4054. Nozzle mounting plate; 4055. Nozzle; 4056. Air outlet pipe; 4057. Spring; 4058. Air inlet valve. Detailed Implementation
[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0044] Example 1
[0045] Please see Figures 1-9 A connection point device for RFID antenna production, used for crimping components on RFID antenna circuit boards, includes: a device body 1, with a sealing cover on the outside of the device body 1 and an opening on the front of the sealing cover; a control surface on one side of the front of the sealing cover for controlling the operation of the device; an antenna clamping mechanism 3, disposed inside the device body 1, for clamping and positioning the antenna circuit board to be crimped; and a component crimping mechanism 4, disposed above the antenna clamping mechanism 3, for applying uniform pressure to the component to be crimped, so that its pins connect to the interface on the circuit board.
[0046] In this embodiment, the antenna clamping mechanism 3 includes a clamping support frame 301, which is fixedly installed inside the device body 1. A support platform 302 is fixedly connected to the upper end of the clamping support frame 301. A clamping platform 313 is provided at the upper end of the support platform 302. The lower end of the clamping platform 313 is connected to the support platform 302 through a longitudinal moving mechanism and a lateral moving mechanism, so that the clamping platform 313 can move longitudinally and laterally to achieve the positioning function. A clamping cylinder fixing frame 316 is provided on the front and rear sides of the clamping platform 313, and a clamping cylinder 315 is installed on the clamping cylinder fixing frame 316. A clamping clamp 314 is connected to the movable end of the clamping cylinder 315. The circuit board of the antenna is fixed by the front and rear clamping clamps 314 to prevent the circuit board from sliding during pressing.
[0047] In this embodiment, the longitudinal moving mechanism includes multiple longitudinal slide rails 303 disposed on the upper end face of the support platform 302. Each longitudinal slide rail 303 has a longitudinal slide block 304 at its upper end. A longitudinal platform 305 is fixedly installed on the upper end of the longitudinal slide block 304. A longitudinal motor 306 is installed on the rear side of the support platform 302. The output end of the longitudinal motor 306 is connected to a longitudinal lead screw 307. The other end of the longitudinal lead screw 307 is connected to the support platform 302 through a bearing seat. The lower end of the longitudinal platform 305 is threadedly connected to the longitudinal lead screw 307 through a threaded block. In use, the longitudinal motor 306 drives the longitudinal lead screw 307 to rotate, thereby driving the longitudinal platform 305 to move longitudinally.
[0048] In this embodiment, the lateral movement mechanism includes multiple lateral slide rails 311 disposed on the upper end of the longitudinal platform 305. Each lateral slide rail 311 has a lateral slide block 309 at its upper end. A lateral platform 308 is fixedly mounted on the upper end of the lateral slide block 309. A lateral motor 310 is mounted on the left side of the longitudinal platform 305. The output end of the lateral motor 310 is connected to a lateral lead screw 312. The other end of the lateral lead screw 312 is connected to the longitudinal platform 305 through a bearing seat. The lower end of the lateral platform 308 is threadedly connected to the lateral lead screw 312 through a threaded block. During operation, the lateral motor 310 drives the lateral lead screw 312 to rotate, thereby driving the lateral platform 308 to move laterally.
[0049] In this embodiment, the component pressing mechanism 4 includes pressing support frames 401 symmetrically arranged on both sides of the support platform 302. The upper ends of the two pressing support frames 401 are provided with crossbeams 402. A pressing cylinder 403 is fixedly installed in the middle of the front side of the crossbeams 402. A pressing assembly is provided at the lower end of the pressing cylinder 403.
[0050] The crimping assembly includes a mounting bracket 4041, which is fixedly connected to the movable end of the crimping cylinder 403. A crimping connector housing 4042 is fixedly connected to the lower end of the mounting bracket 4041. A crimping connector 4043 is inserted into the lower end of the crimping connector housing 4042, and the upper end of the crimping connector 4043 has a U-shaped groove. A transverse through groove is provided in the middle of the crimping connector housing 4042, and a driving block 4044 is provided in the through groove. An inclined groove 4047 is provided on the driving block 4044, and the U-shaped end of the crimping connector 4043 is connected to the inclined groove 4047 through a rotating shaft.
[0051] The mounting bracket 4041 has a base plate 4046 on its rear side. The upper end of the base plate 4046 is equipped with a drive cylinder 4045. The movable end of the drive cylinder 4045 is connected to the drive block 4044. In use, the crimping cylinder 403 first drives the crimping assembly to descend rapidly. When it approaches the circuit board component, the drive cylinder 4045 drives the drive block 4044 to move forward, and the inclined groove 4047 causes the crimping head 4043 to move downward, thereby performing a second precise crimping of the component and avoiding large movement of the crimping cylinder 403, which could damage the component.
[0052] Example 2
[0053] In order to automatically remove dust and debris from the circuit board during each crimping process and ensure a clean crimping environment, this embodiment adds the following technical solution based on embodiment one:
[0054] Please see Figure 3 , Figure 4 , Figure 9 An automatic soot blowing mechanism 405 is provided at the lower middle part of the crossbeam 402. The automatic soot blowing mechanism 405 includes a connecting frame 4051, which is U-shaped. The upper end of the connecting frame 4051 is fixedly connected to the lower end of the crossbeam 402. An airbag 4052 is fixedly installed at the bottom of the connecting frame 4051. Multiple springs 4057 are provided inside the airbag 4052. The top and bottom of the airbag 4052 are made of rigid material. The connecting frame 4051 is provided with a nozzle mounting plate 4054. The two ends of the nozzle mounting plate 4054 are respectively installed on both sides of the connecting frame 4051 through two mounting seats 4053. The nozzle mounting plate 4054 can be rotated to adjust the angle. Multiple nozzles 4055 are provided on the front of the nozzle mounting plate 4054. The front of the airbag 4052 is connected to the multiple nozzles 4055 through an air outlet pipe 4056. One-way air inlet valves 4058 are also provided on both sides of the top of the airbag 4052.
[0055] During use, the crimping cylinder 403 drives the mounting bracket 4041 to move downward. During the descent, the base plate 4046 on the mounting bracket 4041 contacts the airbag 4052 and presses down, causing the gas in the airbag 4052 to be sprayed out from the nozzle 4055 and blown towards the circuit board on the clamping platform 313. This blows away the dust and debris on the clamping platform 313 and the circuit board, ensuring the cleanliness of the circuit board and providing a clean crimping environment to prevent foreign matter from entering.
[0056] The length of the rear base plate 4046 of the mounting bracket 4041 should be flush with the rear side of the airbag 4052 to ensure that the base plate 4046 can fully pressurize the airbag 4052 during descent.
[0057] Working principle of the invention:
[0058] In use, the operator places the RFID antenna circuit board onto the clamping platform 313. Two clamping cylinders 315 drive two clamping fixtures 314 to clamp and fix the RFID antenna circuit board. Then, the pins of the electronic components are inserted into the sockets of the circuit board. The longitudinal and lateral moving mechanisms move the circuit board on the clamping platform 313 to directly below the crimping connector 4043. The crimping cylinder 403 then drives the mounting bracket 4041 to move downward. When it gets close to the circuit board components, the crimping cylinder 403 stops working. The drive cylinder 4045 drives the drive block 4044 to move forward, and the inclined groove 4047 makes the crimping connector 4043 slowly move downward, thereby performing a second precise crimping of the components and avoiding large movements of the crimping cylinder 403 that could damage the components.
[0059] Meanwhile, during the descent of the mounting bracket 4041, the base plate 4046 on the mounting bracket 4041 will contact the airbag 4052 and press down, causing the gas in the airbag 4052 to be sprayed out from the nozzle 4055 and blown towards the circuit board on the clamping platform 313, so that the dust and debris on the clamping platform 313 and the circuit board are blown away, ensuring the cleanliness of the circuit board, providing a clean crimping environment, and preventing foreign matter from mixing in.
[0060] After the crimping is completed, the two clamping cylinders 315 retract, causing the two clamping fixtures 314 to release the circuit board of the RFID antenna. The staff can then remove the RFID antenna, and the crimping is complete.
[0061] The present invention provides an antenna clamping mechanism 3 and a component pressing mechanism 4 inside the device body 1. The antenna clamping mechanism 3 clamps and positions the antenna circuit board, and the component pressing mechanism 4 performs a secondary pressing action, which can apply uniform and precise pressure to the component, so that the component pins can be successfully connected to the interface on the circuit board. It can also avoid the phenomenon of component damage caused by excessive pressing action amplitude and force.
[0062] By setting up a moving mechanism and a lateral moving mechanism, the present invention enables the clamping platform 313 to move precisely in the longitudinal and lateral directions, thereby allowing the crimping connector 4043 to be accurately positioned with the components on the circuit board, facilitating the crimping operation.
[0063] This invention provides a sealing cover around the device body 1, which isolates the inside of the device from the outside as much as possible, preventing dust from falling onto the circuit board and affecting the crimping of components on the antenna circuit board.
[0064] This invention incorporates an automatic dust-blowing mechanism 405. During descent, the base plate 4046 on the mounting frame 4041 contacts and presses down on the airbag 4052, causing the gas inside the airbag 4052 to be instantly ejected from the nozzle 4055 and blown onto the circuit board on the clamping platform 313. This blows away dust and debris from the clamping platform 313 and the circuit board, ensuring the cleanliness of the circuit board and providing a clean pressing environment to prevent foreign matter from entering.
[0065] The nozzle mounting plate 4054 in this invention has an adjustable angle, which can make the nozzle 4055 accurately face the circuit board on the clamping platform 313 as needed, thereby increasing the blowing effect.
[0066] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, the phrase "comprising an element defined as..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0067] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A connection point device for RFID antenna production, used for crimping components on an RFID antenna circuit board, characterized in that, include: The equipment body (1) has a sealing cover on its outer side, and the sealing cover has an opening on its front side; a control surface is provided on one side of the front side of the sealing cover for controlling the operation of the equipment. Antenna clamping mechanism (3) is set inside the device body (1) and is used to clamp and position the antenna circuit board that needs to be pressed. The component pressing mechanism (4) is located above the antenna clamping mechanism (3) and is used to apply uniform pressure to the component that needs to be pressed so that its pins are connected to the interface on the circuit board. The antenna clamping mechanism (3) includes a clamping support frame (301), which is fixedly installed inside the device body (1). The upper end of the clamping support frame (301) is fixedly connected to a support platform (302), and the upper end of the support platform (302) is provided with a clamping platform (313). The lower end of the clamping platform (313) is connected to the support platform (302) through a longitudinal moving mechanism and a transverse moving mechanism, so that the clamping platform (313) can move longitudinally and laterally to achieve the positioning function. The clamping platform (313) is provided with clamping cylinder fixing brackets (316) on the front and rear sides respectively. A clamping cylinder (315) is installed on the clamping cylinder fixing bracket (316). The movable end of the clamping cylinder (315) is connected to a clamping fixture (314). The circuit board of the antenna is fixed by the clamping fixtures (314) at the front and rear. The component pressing mechanism (4) includes pressing support frames (401) symmetrically arranged on both sides of the support platform (302). The upper ends of the two pressing support frames (401) are provided with crossbeams (402). A pressing cylinder (403) is fixedly installed in the middle of the front side of the crossbeam (402). A pressing assembly is provided at the lower end of the pressing cylinder (403). The crimping assembly includes a mounting bracket (4041), which is fixedly connected to the movable end of the crimping cylinder (403). A crimping connector housing (4042) is fixedly connected to the lower end of the mounting bracket (4041). A crimping connector (4043) is inserted into the lower end of the crimping connector housing (4042), and the upper end of the crimping connector (4043) has a U-shaped groove. A transverse through groove is provided in the middle of the crimping connector housing (4042), and a driving block (4044) is provided in the through groove. An inclined groove (4047) is provided on the driving block (4044), and the U-shaped end of the crimping connector (4043) is connected to the inclined groove (4047) through a rotating shaft. The mounting bracket (4041) has a base plate (4046) on its rear side. The upper end of the base plate (4046) is equipped with a drive cylinder (4045). The movable end of the drive cylinder (4045) is connected to the drive block (4044). In use, the crimping cylinder (403) first drives the crimping assembly to descend rapidly. When it approaches the circuit board component, the drive cylinder (4045) drives the drive block (4044) to move forward. The crimping head (4043) is then turned downward through the inclined groove (4047), thereby performing a second precise crimping of the component and avoiding large movement of the crimping cylinder (403) which could damage the component.
2. The RFID antenna manufacturing connection point equipment according to claim 1, characterized in that, The longitudinal moving mechanism includes multiple longitudinal slide rails (303) disposed on the upper end face of the support platform (302). Each longitudinal slide rail (303) is provided with a longitudinal slide block (304) at its upper end. A longitudinal platform (305) is fixedly installed on the upper end of the longitudinal slide block (304). A longitudinal motor (306) is installed on the rear side of the support platform (302). The output end of the longitudinal motor (306) is connected to a longitudinal lead screw (307). The other end of the longitudinal lead screw (307) is connected to the support platform (302) through a bearing seat. The lower end of the longitudinal platform (305) is threadedly connected to the longitudinal lead screw (307) through a threaded block.
3. The connection point equipment for RFID antenna production according to claim 1, characterized in that, The lateral movement mechanism includes multiple lateral slide rails (311) provided on the upper end of the longitudinal platform (305), each lateral slide rail (311) having a lateral slide block (309) at its upper end, a lateral platform (308) fixedly mounted on the upper end of the lateral slide block (309), a lateral motor (310) mounted on the left side of the longitudinal platform (305), the output end of the lateral motor (310) being connected to a lateral lead screw (312), the other end of the lateral lead screw (312) being connected to the longitudinal platform (305) through a bearing seat; the lower end of the lateral platform (308) being threadedly connected to the lateral lead screw (312) through a threaded block.
4. The connection point equipment for RFID antenna production according to claim 1, characterized in that, An automatic soot blowing mechanism (405) is provided at the lower middle part of the crossbeam (402). The automatic soot blowing mechanism (405) includes a connecting frame (4051), which is U-shaped. The upper end of the connecting frame (4051) is fixedly connected to the lower end of the crossbeam (402). An airbag (4052) is fixedly installed at the bottom of the connecting frame (4051). Multiple springs (4057) are provided inside the airbag (4052). The top and bottom of the airbag (4052) are made of hard material. A nozzle mounting plate (4054) is provided. The two ends of the nozzle mounting plate (4054) are respectively mounted on both sides of the connecting frame (4051) through two mounting seats (4053). The nozzle mounting plate (4054) can be rotated to adjust the angle. Multiple nozzles (4055) are provided on the front side of the nozzle mounting plate (4054). The front side of the airbag (4052) is connected to the multiple nozzles (4055) through an air outlet pipe (4056). One-way air inlet valves (4058) are also provided on both sides of the top of the airbag (4052).
5. The connection point equipment for RFID antenna production according to claim 4, characterized in that, The length of the rear bottom plate (4046) of the mounting bracket (4041) should be flush with the rear side of the airbag (4052).
Citation Information
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