A Wi-Fi 7 router shell splicing device and a method of using the same

By combining a belt conveyor and a pressing component, the router casing was assembled automatically, solving the problems of low automation and high labor intensity in existing technologies and improving work efficiency.

CN116748843BActive Publication Date: 2025-12-12SHENZHEN MTN ELECTRONICS
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202310886630.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-17
Publication Date
2025-12-12
Estimated Expiration
2043-07-17

AI Technical Summary

Technical Problem

In existing technologies, the assembly process of router casings has a low degree of automation, high labor intensity, and low work efficiency.

Method used

This equipment combines a belt conveyor and a pressing component. Through mechanical structures such as gears, sliding shafts, and threaded rods, it achieves automatic pressing and locking of the fixed components. In conjunction with a storage trough and push block structure, it achieves automatic replenishment of the components.

Benefits of technology

It improves the automation of router casing splicing, reduces labor intensity, increases work efficiency, prevents fixed components from falling off before splicing, and ensures timely replenishment of components.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116748843B_ABST
    Figure CN116748843B_ABST
Patent Text Reader

Abstract

The present disclosure belongs to the field of router assembly, and discloses a Wi-Fi 7 router shell splicing device and a use method thereof. The Wi-Fi 7 router shell splicing device comprises a belt conveyor, and baffle strips are fixed on both sides of the belt conveyor along the conveying direction of the belt conveyor. The baffle strips are fixed with supporting plates, and the supporting plates are provided with multiple groups of pressing assemblies in a uniform distribution. The pressing assemblies on the supporting plates on both sides are one-to-one corresponding and are placed in a relative state. The pressing assemblies each comprise a gear column, and the gear columns are placed vertically upward. The belt conveyor, the baffle strips, the supporting plates, the gear columns, the first straight toothed rack, the clamping column, the pressing plate, the first sliding groove, the second sliding groove, the sliding shaft, the first toothed rack, the connecting rod, the telescopic pipe, the spring and the push plate are matched, so that the pressing clamping of the fixed assembly on the router shell can be realized, and the simultaneous clamping installation of the fixed assemblies on both sides of multiple router shells can be simultaneously completed. The automation degree of the router shell clamping splicing is improved, the labor intensity is reduced, and the work efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present disclosure belongs to the field of router assembly, and particularly relates to a Wi-Fi7 router shell splicing device and a method thereof. BACKGROUND

[0002] A router is a hardware device that connects two or more networks. In the manufacturing process of the router, a large number of operations are required to complete the manufacturing of a router, and the assembly of the router shell is essential.

[0003] As described in the router shell structure (Patent No. CN219227628U), the router shell structure includes a lower shell, characterized in that: the inside of the lower shell is provided with an upper shell, the left side and the right side of the upper shell are symmetrically provided with limiting strips, the left side and the right side of the inside of the lower shell are symmetrically provided with limiting grooves, the left side and the right side of the lower shell are symmetrically provided with first connecting grooves, the left side and the right side of the upper shell are symmetrically provided with second connecting grooves, and the left side and the right side of the lower shell are provided with fixing assemblies corresponding to the first connecting grooves; the fixing assembly includes a fixed frame, the front end of the fixed frame is slidably provided with a first pressing block, the rear end of the fixed frame is slidably provided with a second pressing block, the outer end of the first pressing block and the second pressing block is provided with a limiting plate, the inner end of the first pressing block and the second pressing block is provided with a clamping block, a fixing spring is arranged between the two clamping blocks, and a through groove is formed in the inner side of the fixed frame corresponding to the clamping block; when the shell is spliced, the upper shell and the lower shell are clamped and then the fixing assembly is installed for limiting and fixing, the first pressing block and the second pressing block need to be pressed at the same time, then the clamping blocks are respectively inserted through the first connecting grooves and the second connecting grooves, then the first pressing block and the second pressing block are loosened, the clamping blocks are expanded to both sides under the action of the force of the fixing spring, thereby limiting the upper shell and the lower shell, and the installation of the upper shell and the lower shell is completed.

[0004] In the splicing process of the above-mentioned router shell, the clamping installation of the fixing assembly is mostly operated by manual operation. Since the person needs to repeatedly press the first pressing block and the second pressing block with hands, and then insert the fixing assembly into the first connecting groove and the second connecting groove, the hands of the person are prone to ache after a long time, which affects the subsequent work efficiency. Moreover, the manual pressing and clamping splicing of one fixing assembly at a time exists the problems of low automation degree, high labor intensity and low work efficiency. SUMMARY

[0005] In view of the deficiencies of the prior art, the purpose of the present disclosure is to provide a Wi-Fi7 router shell splicing device and a method thereof, which solves the problems of low automation degree, high labor intensity and low work efficiency in the splicing process of the router shell in the prior art.

[0006] The purpose of the present disclosure can be achieved by the following technical solutions:

[0007] A Wi-Fi 7 router shell splicing device and a method thereof, comprising a belt conveyor, both sides of the belt conveyor along its conveying direction are fixed with baffle strips, the baffle strips are fixed with supporting plates, the supporting plates are provided with multiple groups of pressing assemblies in uniform distribution, and the pressing assemblies on the two supporting plates are one-to-one corresponding and placed in opposite positions.

[0008] The pressing assemblies each comprise a gear column, the gear columns are vertically upwardly placed, the gear columns are rotationally connected to the supporting plates, the lower ends of the gear columns are rationally connected with a pair of first straight racks which are centrally symmetrically placed about the gear columns, the first straight racks are coaxially placed with the conveying direction of the belt conveyor, the supporting plates are each provided with a first sliding groove which is coaxially placed with the first straight rack, the first straight racks are slidably connected along the first sliding groove axis direction, the first straight racks are each fixed with a clamping column, the clamping columns are each connected with a pressing plate, the pressing plates are perpendicular to the first straight racks and placed towards the belt conveyor, the lower end surfaces of the pressing plates are each provided with a coaxially placed second sliding groove, the upper ends of the clamping columns are slidably connected with the second sliding grooves, a sliding shaft is provided between the two pressing plates of the same pressing assembly, a first rack is fixed on the end wall of the sliding shaft close to the belt conveyor, the first rack is rationally connected with the upper end peripheral wall of the gear column, a connecting rod is fixed between the two pressing plates of the same pressing assembly, the connecting rod is coaxially placed with the first straight rack, the connecting rod is provided as an expansion pipe which can be expanded along its axis direction, the sliding shaft is fixed with the connecting wall, the end of the sliding shaft close to the belt conveyor is fixed with a coaxially placed expansion pipe, the end of the expansion pipe close to the belt conveyor is fixed with a push plate, a coaxially placed spring is sleeved on the expansion pipe, one end of the spring is fixed with the push plate, the other end of the spring is fixed with the sliding shaft, when the expansion pipe is fully expanded, the push plate extends out of the position between the two pressing plates.

[0009] A first fixing plate is fixedly installed on the baffle strip, a second fixing plate is fixedly installed on the end of the first fixing plate away from the belt conveyor and vertically upwardly placed, multiple sleeves in uniform distribution are fixedly installed on the second fixing plate, the number of the sleeves is equal to and one-to-one corresponding to the number of the sliding shafts, the sleeves are coaxially placed with the corresponding sliding shafts, the sliding shafts are slidably connected with the inner walls of the sleeves, a sliding rail shaft is fixed on the second fixing plate, the sliding rail shaft is coaxially placed with the first straight rack, a first threaded rod is rotationally connected in a coaxial line in the sliding rail shaft, multiple sliding blocks in uniform distribution are provided in the sliding rail shaft, the sliding blocks are one-to-one corresponding to the sleeves, the first threaded rod passes through the sliding blocks and is threadedly rationally connected with the sliding blocks, a second rack is fixed on the side wall of the sliding shaft away from the belt conveyor.

[0010] The sleeve is provided below with a support plate, the support plate is fixedly connected with the second fixed plate, a first rotating shaft is rotatably arranged on the support plate, the first rotating shaft is coaxially arranged with the gear column, a first gear is fixedly arranged on the upper end of the first rotating shaft, a notch groove is formed in the side wall of the sleeve, the first gear passes through the notch groove and is in gear connection with the second gear rack, a second gear is fixedly arranged on the lower end of the first rotating shaft, a second straight gear rack is fixedly arranged on the sliding block, the second straight gear rack is coaxially arranged with the first threaded rod, and the second straight gear rack is in one-to-one correspondence with the second gear and is in gear connection with the second gear.

[0011] The first rotating motor is fixedly arranged at one end of the sliding rail shaft, a second rotating shaft is arranged at the output end of the first rotating motor, the second rotating shaft is coaxially arranged with the first threaded rod, the second rotating shaft passes through the sliding rail shaft and is in rotating connection with the sliding rail shaft, and one end of the second rotating shaft is fixedly connected with the first threaded rod.

[0012] The side, close to the second fixed plate, of the baffle strip is provided with a plurality of uniformly distributed storage pipes, the storage pipes are vertically upwardly arranged, the storage pipes are in one-to-one correspondence with the pressing assemblies, a feeding groove is formed in the side, close to the second fixed plate, of the storage pipe, the lower end of the storage pipe is in an open state, the lower end of the storage pipe is flush with the upper end surface of the pressing plate, a connecting plate is arranged above the belt conveyor, the upper end of the storage pipe is fixedly connected with the lower end surface of the connecting plate, and the connecting plate is stably supported by a plurality of support columns fixedly connected with the baffle strip.

[0013] The storage pipe is provided with a slidingly connected push block, a connecting strip is fixedly arranged between the push blocks on the same side of the baffle strip, a pair of second threaded rods are rotatably arranged on the connecting plate and vertically downwardly arranged, the second threaded rods pass through the connecting strip and are in threadingly engaged connection with the connecting strip.

[0014] The second rotating motor is fixedly arranged on the lower end surface of the connecting plate, a third rotating shaft is arranged at the output end of the second rotating motor, the third rotating shaft passes through the connecting plate and is in rotating connection with the connecting plate, a third gear is fixedly arranged on the third rotating shaft, a fourth gear is fixedly arranged on the upper end of the second threaded rod, and the third gear and the fourth gear are in toothed connection with an annular synchronous toothed belt.

[0015] The two pressing plates of the pressing assembly are provided with a third sliding groove coaxially arranged on the side face close to each other, the connecting rods are slidingly connected with the third sliding grooves at the two ends, the connecting rods are fixedly arranged with sealing plates, and the upper end surfaces of the sealing plates are flush with the upper end surfaces of the pressing plates.

[0016] The connecting plate is provided below with a fixed strip, the two ends of the fixed strip are fixedly connected with the support columns, the lower end of the fixed strip is fixedly arranged with a vertically downwardly arranged telescopic cylinder, and the lower end of the telescopic rod of the telescopic cylinder is fixedly arranged with a valve plate.

[0017] The present disclosure has the following beneficial effects:

[0018] 1. The present invention relates to a belt conveyor, baffle strip, pallet, gear column, first straight rack, locking pin, pressure plate, first slide groove, second slide groove, slide shaft, first rack, connecting rod, telescopic tube, spring, and push plate. When the slide shaft is pushed close to the belt conveyor, the pressure plate automatically presses the first and second pressing blocks in the fixing assembly, and moves in coordination with the slide shaft, so that the push plate pushes the fixing assembly into the first and second connecting grooves of the router housing to complete the splicing and snapping. Moreover, it can simultaneously complete the snapping and installation of multiple router housing fixing assemblies on both sides, improving the automation level of router housing snapping and splicing, reducing labor intensity, and improving work efficiency.

[0019] Furthermore, the cooperation of the spring, telescopic tube, and push plate can prevent the fixing components from falling out of the first and second connecting slots before they are fully engaged.

[0020] 2. The present invention achieves automatic replenishment of materials after the fixed components are pressed and assembled by the cooperation of the storage tank, push block, connecting strip and second threaded rod. At the same time, the cooperation of the connecting rod, third slide and sealing plate can prevent the fixed components in the storage tube from falling onto the spring during the assembly, and ensure that the fixed components can only be replenished after the pressing components have completed the reset. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this disclosure or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, those skilled in the art can obtain other drawings based on these drawings without creative effort.

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 This is a schematic diagram of the two sides of the belt conveyor of the present invention;

[0024] Figure 3 This is a partial structural diagram of the material storage tube of the present invention;

[0025] Figure 4 This is a partial structural diagram of the second fixing plate of the present invention;

[0026] Figure 5 This is a partial structural diagram of the slide rail shaft and pressing assembly of the present invention;

[0027] Figure 6 This is a schematic diagram of the internal structure of the sleeve of the present invention;

[0028] Figure 7 This is a schematic diagram of the pressing component of the present invention. Detailed Implementation

[0029] The technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments of this disclosure, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this disclosure.

[0030] like Figures 1 to 7 As shown, a Wi-Fi 7 router shell assembly device includes a belt conveyor 1. Baffle strips 2 are fixed on both sides of the belt conveyor 1 along its conveying direction. Each baffle strip 2 is fixed with a support plate 3. Each support plate 3 is provided with multiple sets of evenly distributed pressing components, and the pressing components on both sides of the support plate 3 correspond one to one and are placed in a relative position.

[0031] Each pressing assembly includes a gear post 4, which is placed vertically upwards and rotatably connected to a support plate 3. The lower end of each gear post 4 is meshed with a pair of first straight racks 5, which are centrally symmetrical about the gear post 4. The first straight racks 5 are coaxially aligned with the conveying direction of the belt conveyor 1. Each support plate 3 has a first sliding groove 31, which is coaxially aligned with the first straight racks 5. Each first straight rack 5 can slide and engage along the axis of the first sliding groove 31. Each first straight rack 5 has a locking post 6 fixed to it, and each locking post 6 is connected to a pressure plate 7. The pressure plates 7 are perpendicular to the first straight racks 5 and face the belt conveyor 1. The lower end face of each pressure plate 7 has a coaxially aligned second sliding groove 71, and the upper end of each locking post 6 slides and engages with the second sliding groove 71. A space is provided between the two pressure plates 7 of the same pressing assembly. The system includes a sliding shaft 8, with a first rack 81 coaxially placed on the side wall of the sliding shaft 8 near the belt conveyor 1. The first rack 81 is meshed with the upper peripheral wall of the gear column 4. A connecting rod 9 is fixed between the two pressure plates 7 of the same pressing assembly. The connecting rod 9 is coaxially placed with the first rack 5. The connecting rod 9 is a telescopic tube 10 that can extend and retract along its axis. The sliding shaft 8 is fixed to the connecting side wall. The end of the sliding shaft 8 near the belt conveyor 1 is fixed with a telescopic tube 10 coaxially placed. The end of the telescopic tube 10 near the belt conveyor 1 is fixed with a push plate 11. A spring 12 coaxially placed is sleeved on the telescopic tube 10. One end of the spring 12 is fixed to the push plate 11, and the other end of the spring 12 is fixed to the sliding shaft 8. When the telescopic tube 10 is in the extended state, the push plate 11 extends out between the two pressure plates 7.

[0032] The lower shell and the upper shell of the router described in the patent number CN219227628U are placed on the belt conveyor 1 after being fitted and clamped, the router shell is conveyed and moved to the position corresponding to the pressing assembly, the fixing assembly in the patent number CN219227628U is placed between the two pressure plates 7 of each pressing assembly, and the fixing assembly is located between the push plate 11 and the belt conveyor 1, so that the clamping blocks of the fixing assembly are placed towards the belt conveyor 1;

[0033] The sliding shafts 8 are pushed to move synchronously towards the belt conveyor 1, the sliding shafts 8 drive the connecting rods 9, the pressure plates 7, the telescopic pipes 10, and the push plates 11 to push the fixing assemblies to move towards the corresponding positions of the router shell on the belt conveyor 1, the sliding shafts 8 drive the first rack 81, the first rack 81 drives the gear column 4 to rotate, the gear column 4 drives the first straight rack 5, the clamping column 6, and the pressure plate 7 in turn, so that the two pressure plates 7 move towards each other, the pressure plate 7 is sleeved with the first pressing block and the second pressing block in the pressing fixing assembly, then the first rack 81 is separated from the gear column 4, the sliding shaft 8 continues to extend to move close to the belt conveyor 1, so that the push plate 11 continues to push the fixing assembly to be inserted into the first connecting groove and the second connecting groove of the router shell;

[0034] Then the sliding shaft 8 is pulled back, the sliding shaft 8 drives the connecting rod 9 and the pressure plate 7 to move away from the belt conveyor 1, under the elastic force of the spring 12, the push plate 11 continues to press and push the fixing assembly, so as to avoid the fixing assembly from falling off before completing the split clamping;

[0035] At the same time, during the process that the pressure plate 7 moves away from the belt conveyor 1, the clamping blocks in the fixing assembly are popped out to the two sides to complete clamping, and the first rack 81 moves back to engage with the gear column 4 to drive, the gear column 4 drives the first straight rack 5, the clamping column 6, and the pressure plate 7 in turn, so that the pressure plates 7 move away from each other and reset;

[0036] Through the above process, the pressing and clamping of the fixing assembly on the router shell can be realized, and the simultaneous clamping and installation of the fixing assemblies on the two sides of multiple router shells can be completed at the same time, which improves the automation degree of the router shell clamping and split, reduces the labor intensity, and improves the work efficiency.

[0037] In order to facilitate the automatic control of the movement of the sliding shaft 8, the baffle strip 2 is fixedly installed with a first fixed plate, the first fixed plate is fixedly installed with a second fixed plate 13 vertically upward away from the belt conveyor 1 end, a plurality of uniformly distributed sleeves 14 are fixedly installed on the second fixed plate 13, the sleeves 14 are equal in number and one-to-one corresponding to the sliding shaft 8, the sleeves 14 are coaxially placed with the corresponding sliding shaft 8, the sliding shaft 8 is slidably connected with the inner wall of the sleeve 14, the second fixed plate 13 is fixedly provided with a slide rail shaft 15, the slide rail shaft 15 is coaxially placed with the first straight rack 5, a first threaded rod 16 coaxially placed is rotationally connected in the slide rail shaft 15, a plurality of uniformly distributed sliding blocks 17 are arranged in the slide rail shaft 15, the sliding blocks 17 are one-to-one corresponding to the sleeves 14, the first threaded rod 16 passes through the sliding blocks 17 and is threadedly connected with the sliding blocks 17, and the side wall away from the belt conveyor 1 end of the sliding shaft 8 is fixedly provided with a second rack 82.

[0038] A support plate 18 is arranged below the sleeve 14, the support plate 18 is fixedly connected with the second fixed plate 13, a first rotating shaft 19 rotationally connected is arranged on the support plate 18, the first rotating shaft 19 is coaxially placed with the gear column 4, a first gear 20 coaxially placed is fixedly sleeved on the upper end of the first rotating shaft 19, a notch groove is formed in the side wall of the sleeve 14, the first gear 20 passes through the notch groove and is in gear connection with the second rack 82, a second gear 21 coaxially placed is fixedly sleeved on the lower end of the first rotating shaft 19, a second straight rack 22 is fixedly arranged on the sliding block 17, the second straight rack 22 is coaxially placed with the first threaded rod 16, the second straight rack 22 is one-to-one corresponding to the second gear 21 and is in gear connection with the second gear 21.

[0039] The first threaded rod 16 is rotated, the first threaded rod 16 and the sliding block 17 are threadedly engaged and driven, the sliding block 17 drives the second straight rack 22, the second straight rack 22 drives the second gear 21, the second gear 21 drives the first rotating shaft 19, the first rotating shaft 19 drives the first gear 20, the first gear 20 is rotated and drives the second rack 82, the second rack 82 drives the sliding shaft 8 to move, and the movement of the sliding shaft 8 is indirectly controlled by rotating the first threaded rod 16.

[0040] In order to facilitate the rotation of the first threaded rod 16, a first rotating motor 23 is fixedly arranged at one end of the slide rail shaft 15, a second rotating shaft is arranged at the output end of the first rotating motor 23, the second rotating shaft is coaxially placed with the first threaded rod 16, the second rotating shaft passes through the slide rail shaft 15 and is rotationally connected with the slide rail shaft 15, and one end of the second rotating shaft is fixedly connected with the first threaded rod 16; the first rotating motor 23 is started, the second rotating shaft at the output end of the first rotating motor 23 drives the first threaded rod 16 to rotate.

[0041] In order to press the fixed assembly for router shell splicing, facilitate the timely replenishment of fixed assembly, the baffle strip 2 is provided with a plurality of evenly distributed storage tubes 24 near the second fixed plate 13, the storage tubes 24 are vertically upward, the storage tubes 24 correspond to the pressing assembly one by one, the storage tubes 24 are provided with a feeding groove near the second fixed plate 13, the lower end of the storage tube 24 is open, the lower end of the storage tube 24 is flush with the upper end of the pressing plate 7, a connecting plate 25 is arranged above the belt conveyor 1, the upper end of the storage tube 24 is fixed with the lower end of the connecting plate 25, and the connecting plate 25 is stably supported by a plurality of support columns fixedly connected with the baffle strip 2; the first pressing block and the second pressing block at both ends of the pressing fixed assembly are used to put the fixed assembly into the storage tube 24 along the feeding groove, and a plurality of fixed assemblies are put into the storage tube 24 in sequence, so that the fixed assembly can be replenished in time after the router shell is spliced by pressing the fixed assembly once.

[0042] In order to facilitate the automatic downward movement of the fixed assembly in the storage tube 24 for replenishment, a sliding push block 241 is arranged in the storage tube 24, a connecting strip 242 is fixed between the push blocks 241 on the same side of the baffle strip 2, a pair of second threaded rods 26 vertically downward are rotatably connected to the connecting plate 25, the second threaded rods 26 pass through the connecting strip 242 and are threadedly engaged with the connecting strip 242; by rotating the second threaded rods 26, the second threaded rods 26 drive the connecting strip 242 to threadedly engage and drive the connecting strip 242 to move downward along the axis of the second threaded rods 26, the connecting strip 242 drives the push block 241, and the push block 241 drives the fixed assembly in the storage tube 24 to move downward for replenishment.

[0043] In order to facilitate the synchronous control of the rotation of the second threaded rods 26 on both sides, a second rotating motor 27 is fixedly installed on the lower end surface of the connecting plate 25, a third rotating shaft is arranged on the output end of the second rotating motor 27, the third rotating shaft passes through the connecting plate 25 and is rotatably connected with the connecting plate 25, a third gear 271 coaxially arranged is fixedly sleeved on the third rotating shaft, a fourth gear 272 coaxially arranged is fixedly sleeved on the upper end of the second threaded rod 26, and a toothed ring synchronous belt 273 is sleeved and toothedly connected between the third gear 271 and the fourth gear 272; the second rotating motor 27 is turned on, the output end of the second rotating motor 27 drives the third rotating shaft, the third rotating shaft drives the third gear 271, the third gear 271 drives the ring synchronous belt 273, the ring synchronous belt 273 drives the fourth gear 272, the fourth gear 272 drives the second threaded rod 26 to rotate, and the synchronous control of the rotation of the second threaded rods 26 on both sides is realized.

[0044] In order to avoid that the lowermost fixed assembly in the storage tube 24 falls on the spring 12 and causes the fixed assembly to be unable to be replenished, the two pressing plates 7 of the pressing assembly are provided with coaxially arranged third sliding grooves 72 on the side close to each other, the connecting rods 9 are slidably connected to the third sliding grooves 72 at the two ends, the blocking plates 28 are fixedly installed on the connecting rods 9, and the upper end surfaces of the blocking plates 28 are flush with the upper end surfaces of the pressing plates 7.

[0045] The height of the upper end surfaces of the pressing plates 7 and the upper end surfaces of the supporting plates 3 is equal to the height of a fixed assembly, when the sliding shaft 8 pushes the telescopic tube 10, the push plate 11 and the connecting rod 9 to be close to the belt conveyor 1, the connecting rod 9 drives the blocking plate 28 to move along the third sliding groove 72, when the pressing assembly pushes the fixed assembly to be spliced with the router shell, the blocking plate 28 seals the lower end of the storage tube 24, so that the fixed assembly in the storage tube 24 does not fall on the spring 12 during splicing, and the replenishment of the fixed assembly is ensured to be completed only after the pressing assembly is reset.

[0046] In order to facilitate the positioning of the router shell conveyed on the belt conveyor 1, a fixed strip is arranged below the connecting plate 25, the fixed strip is fixed at the two ends of the supporting column, the fixed strip is fixedly provided with a vertically downward arranged telescopic cylinder 29 at the lower end, and the telescopic cylinder 29 is fixedly provided with a valve plate 291 at the lower end of the telescopic rod; when the router shell is attached to the valve plate 291 on one side, the positioning of the router shell and the corresponding pressing assembly can be completed.

[0047] In the description of the present specification, the description of the terms "one embodiment", "example", "specific example" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present disclosure. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.

[0048] The basic principles, main features and advantages of the present disclosure are shown and described above. It should be understood by those skilled in the art that the present disclosure is not limited by the above embodiments, and the above embodiments and descriptions in the specification are only to illustrate the principles of the present disclosure. Without departing from the spirit and scope of the present disclosure, various changes and improvements can be made to the present disclosure, and these changes and improvements all fall within the scope of the claimed present disclosure.

Claims

1. A housing splicing device for Wi-Fi 7 routers, comprising a belt conveyor (1), characterized in that, The belt conveyor (1) is fixed with the baffle strips (2) on both sides along the conveying direction of the belt conveyor (1), the baffle strips (2) are fixed with the supporting plates (3), the supporting plates (3) are provided with a plurality of groups of pressing assemblies which are uniformly distributed, and the pressing assemblies on the supporting plates (3) on both sides are one-to-one corresponding and placed in a relative state; The pressing assemblies each include a gear column (4), the gear column (4) is placed vertically upward, the gear column (4) is rotationally connected to the supporting plate (3), a pair of first straight racks (5) which are centrally symmetrically placed about the gear column (4) are toothedly connected to the lower end of the gear column (4), the first straight racks (5) are coaxially placed with the conveying direction of the belt conveyor (1), the supporting plate (3) is provided with a first sliding groove (31), the first sliding groove (31) is coaxially placed with the first straight rack (5), the first straight rack (5) can be slidingly connected along the axis direction of the first sliding groove (31), the first straight rack (5) is fixed with a clamping column (6), the clamping column (6) is connected with a pressing plate (7), the pressing plate (7) is perpendicular to the first straight rack (5) and placed towards the belt conveyor (1), a second sliding groove (71) is formed in the lower end surface of the pressing plate (7), the upper end of the clamping column (6) is slidingly connected with the second sliding groove (71), a sliding shaft (8) is arranged between the two pressing plates (7) of the same pressing assembly, a first rack (81) is fixed on the end wall of the sliding shaft (8) close to the belt conveyor (1), the first rack (81) is toothedly connected with the upper end wall of the gear column (4), a connecting rod (9) is fixed between the two pressing plates (7) of the same pressing assembly, the connecting rod (9) is coaxially placed with the first straight rack (5), the connecting rod (9) is provided as an expansion pipe (10) which can be expanded along the axis direction, the sliding shaft (8) is fixed with the connecting wall, the end of the sliding shaft (8) close to the belt conveyor (1) is fixed with the expansion pipe (10) which is coaxially placed, the expansion pipe (10) close to the belt conveyor (1) is fixed with a pushing plate (11), the expansion pipe (10) is provided with a spring (12) which is coaxially placed, one end of the spring (12) is fixed with the pushing plate (11), the other end of the spring (12) is fixed with the sliding shaft (8), when the expansion pipe (10) is in the expanded state, the pushing plate (11) extends out of the position between the two pressing plates (7). The first fixed plate is fixedly installed on the baffle strip (2), and a second fixed plate (13) vertically placed away from the belt conveyor (1) is fixedly installed at the end of the first fixed plate. A plurality of sleeves (14) evenly distributed are fixedly installed on the second fixed plate (13), the sleeves (14) are equal in number and one-to-one corresponding to the slide shafts (8), the sleeves (14) are coaxially placed with the corresponding slide shafts (8), the slide shafts (8) are slidably connected with the inner walls of the sleeves (14), the second fixed plate (13) is fixedly provided with a slide rail shaft (15), the slide rail shaft (15) is coaxially placed with the first straight rack (5), the slide rail shaft (15) is rotatably connected with the first threaded rod (16) coaxially placed inside, a plurality of slide blocks (17) evenly distributed are arranged in the slide rail shaft (15), the slide blocks (17) are one-to-one corresponding to the sleeves (14), the first threaded rod (16) passes through the slide blocks (17) and is threadedly connected with the slide blocks (17), and a second rack (82) is fixedly arranged on the side wall of the slide shaft (8) away from the belt conveyor (1). A support plate (18) is arranged below the sleeve (14), the support plate (18) is fixedly connected with the second fixed plate (13), a first rotating shaft (19) rotatably connected is arranged on the support plate (18), the first rotating shaft (19) is coaxially placed with the gear column (4), a first gear (20) coaxially placed is fixedly sleeved on the upper end of the first rotating shaft (19), a notch groove is formed in the side wall of the sleeve (14), the first gear (20) passes through the notch groove and is toothedly connected with the second rack (82), a second gear (21) coaxially placed is fixedly sleeved on the lower end of the first rotating shaft (19), a second straight rack (22) is fixedly arranged on the slide block (17), the second straight rack (22) is coaxially placed with the first threaded rod (16), and the second straight rack (22) is one-to-one corresponding to the second gear (21) and toothedly connected with the second gear (21). A first rotating motor (23) is fixedly arranged at one end of the slide rail shaft (15), a second rotating shaft is arranged at the output end of the first rotating motor (23), the second rotating shaft is coaxially placed with the first threaded rod (16), the second rotating shaft passes through the slide rail shaft (15) and is rotatably connected with the slide rail shaft (15), and one end of the second rotating shaft is fixedly connected with the first threaded rod (16).

2. The Wi-Fi 7 router shell splicing device according to claim 1, wherein, A plurality of storage pipes (24) evenly distributed are arranged on one side of the baffle strip (2) close to the second fixed plate (13), the storage pipes (24) are vertically placed, the storage pipes (24) are one-to-one corresponding to the pressing assembly, an inlet groove is formed in the side of the storage pipe (24) close to the second fixed plate (13), the lower end of the storage pipe (24) is in an open state, the lower end of the storage pipe (24) is flush with the upper end surface of the pressing plate (7), a connecting plate (25) is arranged above the belt conveyor (1), the upper end of the storage pipe (24) is fixedly connected with the lower end surface of the connecting plate (25), and the connecting plate (25) is stably supported by a plurality of support columns fixedly connected with the baffle strip (2).

3. The Wi-Fi 7 router shell splicing device according to claim 2, characterized in that, The push block (241) is slidably connected in the storage pipe (24), and the connecting strips (242) are fixed between the push blocks (241) on the same baffle strip (2). The connecting plate (25) is rotationally connected with a pair of second threaded rods (26) arranged vertically downward, and the second threaded rods (26) pass through the connecting strips (242) and are threadedly connected with the connecting strips (242).

4. The Wi-Fi 7 router shell splicing device according to claim 3, characterized in that, The second rotating motor (27) is fixedly installed on the lower end surface of the connecting plate (25), and the third rotating shaft is arranged on the output end of the second rotating motor (27). The third rotating shaft passes through the connecting plate (25) and is rotationally connected with the connecting plate (25). The third gear (271) is coaxially arranged on the third rotating shaft. The fourth gear (272) is coaxially arranged on the upper end of the second threaded rod (26). The third gear (271) and the fourth gear (272) are sleeved with the ring-shaped synchronous gear belt (273) in a toothed connection.

5. The Wi-Fi 7 router shell splicing device according to claim 3, characterized in that, The two pressing plates (7) of the pressing assembly are provided with third sliding grooves (72) arranged in the same direction on the side surfaces close to each other. The connecting rods (9) are slidably connected with the third sliding grooves (72) at both ends. The connecting rods (9) are fixedly installed with the blocking plates (28). The upper end surfaces of the blocking plates (28) are flush with the upper end surfaces of the pressing plates (7).

6. The Wi-Fi 7 router shell splicing device according to claim 1, wherein, A fixed strip is arranged below the connecting plate (25), and the fixed strip is fixed at both ends of the supporting column. The fixed strip is fixedly provided with a vertically downward arranged telescopic cylinder (29) at the lower end. The valve plate (291) is fixed at the lower end of the telescopic cylinder (29).

Citation Information

Patent Citations

  • Router shell structure

    CN219227628U

  • Temperature control instrument assembling equipment

    CN114453849A

  • Adjustable plate extrusion die

    CN115723282A