Double-channel communication interface product assembly production line
By using a production line with a staggered layout and a dual-channel communication interface for coordinated operation, the problems of low space utilization, low production efficiency, and poor precision in traditional production lines have been solved, achieving efficient and stable assembly production and improving product quality and corporate competitiveness.
Patent Information
- Application Number
- CN202520269671.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2035-02-20
AI Technical Summary
Existing dual-channel communication interface assembly lines suffer from problems such as loose spatial layout, low production efficiency, poor cutting accuracy, and loose process connections, resulting in long production cycles, limited capacity, and unstable product quality.
Design a dual-channel communication interface product assembly line, adopting a staggered channel and assembly line structure, combined with a cutting and crimping mechanism and a transfer platform, to achieve parallel operation and seamless connection of each process, including the coordinated cooperation of the preliminary cutting assembly line, the feeding assembly line, the inspection assembly line and the cutting and crimping mechanism.
It improves the space utilization and production efficiency of the production line, enhances processing precision and assembly accuracy, reduces production time, lowers the error rate, and ensures the stability of product quality and the company's market competitiveness.
Smart Images

Figure CN223612832U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to communication interface production line technical field, concretely is a kind of double passageway communication interface product assembly production line. BACKGROUND
[0002] In today's electronic manufacturing field, the market demand of communication interface products continues to grow, and higher requirements are put forward for its production efficiency and quality control.
[0003] There are still some problems on the existing double passageway communication interface assembly production line: firstly, in terms of space layout, the traditional production line is often fixed in mode, and the distribution of each process equipment is relatively loose, which not only makes the production site occupy a larger area, but also the production efficiency in unit space is difficult to be fully tapped. Secondly, in terms of production efficiency, the traditional single passageway production line operation mode is to sequentially push each process, such as accessory processing, assembly and detection, which can only be completed one by one, and it is difficult to realize the synchronous development of different stages of work, so the production cycle is lengthened, and the expansion of production capacity is also greatly limited. Thirdly, in terms of machining precision, the cutting link of traditional production line is usually simple, mostly using single cutting process and lacking fine control means, which easily leads to uneven machining accuracy of accessories, and then causes adaptation difficulty in subsequent assembly process, which has adverse effects on the final quality of products. Moreover, in the process of connecting different processes, the traditional production line is not smooth and natural when changing different processes, and often needs to transfer components frequently between multiple devices, which undoubtedly will cause the loss of production efficiency and the fluctuation of machining precision.
[0004] Therefore, a double passageway communication interface product assembly production line is needed to solve the above problems. UTILITY MODEL CONTENTS
[0005] Based on the above, the purpose of the utility model is to provide a double passageway communication interface product assembly production line to solve the problems of single loose layout of production line, inability of parallel different stage work of each process of production line, poor single cutting precision and not close process connection.
[0006] In order to solve the above technical problems, the utility model adopts the following technical scheme: a double passageway communication interface product assembly production line, comprising:
[0007] a workbench;
[0008] a first passageway and a second passageway staggered with respect to the first passageway, the first passageway and the second passageway are installed on the workbench, the first passageway and the second passageway both include a first preliminary cutting assembly line, a second feeding assembly line, a third feeding assembly line, a fourth feeding and detection assembly line, a cutting and pressing mechanism and a transfer platform;
[0009] The first preliminary cutting assembly line comprises a first feeding shell, a first cutting assembly and a second cutting assembly, the first cutting assembly and the second cutting assembly are sequentially arranged on the first feeding shell along a feeding direction, and are used for transporting accessory one;
[0010] The second feeding assembly line comprises a second feeding shell, and is used for transporting accessory two;
[0011] The third feeding assembly line comprises a third feeding shell, and is used for transporting accessory three;
[0012] The fourth feeding assembly line comprises a fourth feeding shell, a detector and a fifth cutting assembly, the detector and the fifth cutting assembly are sequentially arranged on the fourth feeding shell;
[0013] The cutting and pressing mechanism comprises a rotating disc, a fourth cutting assembly and a material taking and pressing assembly, the fourth cutting assembly and the material taking and pressing assembly are sequentially and circumferentially arranged on the rotating disc along a feeding direction of the rotating disc;
[0014] The transfer platform reciprocates between the second cutting assembly and the fourth cutting assembly, and reciprocates between the second feeding shell and the third feeding shell.
[0015] As a preferred scheme of the double-channel communication interface product assembly production line, the material taking and pressing assembly comprises a top plate and a pressing plate, the top plate is arranged on the workbench and reciprocally moves up the material along a feeding assembly position of the rotating disc, and the pressing plate is arranged on the workbench and reciprocally presses the material along a feeding assembly position of the second feeding shell.
[0016] As a preferred scheme of the double-channel communication interface product assembly production line, the first cutting assembly comprises a pressing block and a top block, the pressing block is arranged on the workbench and reciprocally presses the material along a feeding cutting position of the first feeding shell, and the top block is arranged on the workbench and reciprocally cuts the material along the feeding cutting position of the first feeding shell.
[0017] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly is arranged on the workbench, and is used for driving the top block to reciprocally cut the material.
[0018] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly comprises a driving machine, a positioning plate, a sliding way, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixed on the workbench, the sliding way is concave on the positioning plate, the sliding direction of the sliding way is coincident with the reciprocating cutting movement direction of the top block, the eccentric block is fixed on the driving shaft of the driving machine, the driving shaft of the driving machine is coincident with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the sliding way, the sliding block is fixedly connected with the top block through the sliding way, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove is matched with the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
[0019] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly comprises a driving machine, a positioning plate, a sliding way, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixed on the workbench, the sliding way is concave on the positioning plate, the sliding direction of the sliding way is coincident with the reciprocating cutting movement direction of the top block, the eccentric block is fixed on the driving shaft of the driving machine, the driving shaft of the driving machine is coincident with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the sliding way, the sliding block is fixedly connected with the top block through the sliding way, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove is matched with the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
[0020] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly comprises a driving machine, a positioning plate, a sliding way, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixed on the workbench, the sliding way is concave on the positioning plate, the sliding direction of the sliding way is coincident with the reciprocating cutting movement direction of the top block, the eccentric block is fixed on the driving shaft of the driving machine, the driving shaft of the driving machine is coincident with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the sliding way, the sliding block is fixedly connected with the top block through the sliding way, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove is matched with the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
[0021] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly comprises a driving machine, a positioning plate, a sliding way, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixed on the workbench, the sliding way is concave on the positioning plate, the sliding direction of the sliding way is coincident with the reciprocating cutting movement direction of the top block, the eccentric block is fixed on the driving shaft of the driving machine, the driving shaft of the driving machine is coincident with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the sliding way, the sliding block is fixedly connected with the top block through the sliding way, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove is matched with the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
[0022] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly comprises a driving machine, a positioning plate, a sliding way, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixed on the workbench, the sliding way is concave on the positioning plate, the sliding direction of the sliding way is coincident with the reciprocating cutting movement direction of the top block, the eccentric block is fixed on the driving shaft of the driving machine, the driving shaft of the driving machine is coincident with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the sliding way, the sliding block is fixedly connected with the top block through the sliding way, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove is matched with the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
[0023] As a preferred scheme of the double-channel communication interface product assembly production line, the cutting driving assembly comprises a driving machine, a positioning plate, a sliding way, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixed on the workbench, the sliding way is concave on the positioning plate, the sliding direction of the sliding way is coincident with the reciprocating cutting movement direction of the top block, the eccentric block is fixed on the driving shaft of the driving machine, the driving shaft of the driving machine is coincident with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the sliding way, the sliding block is fixedly connected with the top block through the sliding way, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove is matched with the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
[0024] The double-channel communication interface product assembly production line has the advantages that the relative dislocation of the channel one and the channel two and the cooperative matching among the flow lines, the cutting and pressing mechanism and the transfer platform effectively improve the production efficiency.
[0025] Due to the mutual misalignment of the first channel and the second channel, the whole production line is more reasonable and compact in spatial layout, can fully utilize the limited space of the workbench, and meanwhile, the various assembly lines and related mechanisms can work in parallel and without interference.
[0026] The first preliminary cutting assembly line can independently carry out preliminary double-cutting processing on the accessory one in the first channel and the second channel, the first cutting assembly and the second cutting assembly act in turn, so that the accessory one can be accurately cut into a shape and size meeting the subsequent assembly requirements, through double cutting, the excess corner material can be removed at one time and a specific connecting structure is formed, which greatly improves the processing precision and consistency of the accessory one, improves the speed of subsequent accurate assembly operation, and effectively avoids assembly difficulties or product quality problems caused by cutting errors.
[0027] Subsequently, the transfer platform is transferred to the cutting and pressing mechanism to realize seamless connection and transition from preliminary processing to assembly process. The second feeding assembly line stably transports the accessory two to the corresponding cutting and pressing mechanism position, and the accessory one and the accessory two are pressed and assembled to form the assembly one at the mechanism. Through the accurate action control of the cutting and pressing mechanism in this process, the firmness and stability of the connection between the two are ensured. The third feeding assembly line transports the accessory three to the assembly position, and the assembly one is pressed and assembled with the accessory three to form the assembly two under the operation of the transfer platform. The accurate positioning and smooth transfer function of the transfer platform guarantee the accurate alignment of different assemblies during assembly. The second feeding assembly line directly realizes twice assembly, fully utilizes the continuity and efficiency of the assembly line, and avoids the efficiency loss and precision error caused by frequent transfer of assemblies between different devices. The assembly two is smoothly transported by the fourth feeding shell of the fourth feeding assembly line and accurately detected by the detector, and finally the qualified products are screened by the fifth cutting assembly.
[0028] The above structure can simultaneously carry out assembly operations at different stages in two channels, reduces the overall production time, and improves the production capacity of the production line. Moreover, the division of labor between the assemblies is clear, and the cutting, feeding, assembly, detection and other links are sequentially connected, which reduces the error rate in the production process, ensures the stability of product quality, is conducive to large-scale communication interface production and manufacturing, and improves the competitiveness of enterprises in the market. BRIEF DESCRIPTION OF DRAWINGS
[0029] Figure 1 A schematic diagram of the overall structure of the double-channel communication interface product assembly production line is provided.
[0030] Figure 2 A schematic diagram of the overall structure of the double-channel communication interface product assembly production line is provided.
[0031] Figure 3A schematic diagram of the overall structure of a single channel in the first direction of a dual-channel communication interface product assembly production line provided by this utility model;
[0032] Figure 4 A schematic diagram of the overall structure of a single channel in the second direction of a dual-channel communication interface product assembly production line provided by this utility model;
[0033] Figure 5 A schematic diagram of a transfer platform in a dual-channel communication interface product assembly production line provided by this utility model;
[0034] Figure 6 A schematic diagram of a drive motion component in a dual-channel communication interface product assembly line provided by this utility model;
[0035] Figure 7 A cross-sectional view of a material feeding and pressing assembly in a dual-channel communication interface product assembly production line provided by this utility model;
[0036] Figure 8 A schematic diagram of the overall structure of a cutting drive component in a dual-channel communication interface product assembly production line provided by this utility model;
[0037] Figure 9 An exploded view of the cutting drive component in a dual-channel communication interface product assembly line provided by this utility model.
[0038] The reference numerals in the figures are as follows: 1. Workbench; 2. Channel 1; 3. Channel 2; 4. First preliminary cutting production line; 5. First feeding housing; 7. Second cutting assembly; 8. Base; 9. Second feeding production line; 10. Second feeding housing; 11. Third feeding production line; 12. Third feeding housing; 13. Fourth inspection production line; 14. Fourth feeding housing; 15. Detector; 16. Fifth cutting assembly; 17. Cutting and clamping mechanism; 18. Mounting base; 19. Turntable; 20. Fourth cutting assembly; 22. Transfer platform; 23. Driver; 24. Cam block; 25. First slide rail; 26. Second slide rail; 27. Suction cup; 2 8. Material grabbing and pressing assembly; 29. Top plate; 30. Pressure plate; 31. First cutting assembly; 32. Pressing block; 33. Top block; 34. Drive motion assembly; 35. Vertical plate; 36. Horizontal plate; 37. Track; 38. Cutting drive assembly; 39. Drive machine; 40. Positioning plate; 41. Slide rail; 42. Eccentric block; 43. Slider; 44. Slide groove; 45. Material storage assembly; 46. Positioning seat; 47. Material tray; 48. Guide rod; 49. Fixed seat; 50. Sliding seat; 52. Rotary roller; 53. Elastic rod; 54. Spring; 55. Rod body; 56. Discharge assembly; 57. Feeding cylinder; 58. Centralized box; 59. Protective door; 60. Main control computer. DETAILED DESCRIPTION
[0039] The utility model will be described further in detail below in combination with the drawings and examples. It can be understood that the specific examples described herein are only used to explain the utility model and are not limited to the utility model. In addition, it should be noted that only the parts related to the utility model are shown in the drawings for the convenience of description, not all the structures.
[0040] In the description of the utility model, unless otherwise explicitly specified and limited, the terms "connected", "connected", "fixed" should be understood broadly, 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 of two elements. For ordinary skilled in the art, the specific meaning of the above terms in the utility model can be understood according to the specific circumstances.
[0041] In the utility model, unless otherwise explicitly specified and limited, the first feature "on" or "below" the second feature can include that the first and second features are in direct contact, or the first and second features are not in direct contact but are in contact through another feature between them. Moreover, the first feature "on", "above" and "above" the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "below" and "below" the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.
[0042] In the description of the embodiment, the terms "up", "down", "left", "right" and other orientation or position relationship are based on the orientation or position relationship shown in the drawings, only for the convenience of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, therefore cannot be understood as a limitation on the utility model.
[0043] In the description of the utility model, unless otherwise stated, the meaning of "a plurality of" is two or more. In addition, the terms "first", "second" are only used to distinguish in the description and have no special meaning.
[0044] In one embodiment of the utility model, as shown in Figures 1-9 A double-channel communication interface product assembly production line is provided, which comprises a workbench 1, a first channel 2 and a second channel 3 which is staggered with the first channel 2, a first preliminary cutting assembly line 4, a second feeding assembly line 9, a third feeding assembly line 11, a fourth feeding assembly line 13, a cutting and pressing mechanism 17 and a transfer platform 22.
[0045] The channel one 2 and the opposite channel two 3 are staggered, the channel one 2 and the channel two 3 are both installed on the workbench 1, and the channel one 2 and the channel two 3 both include a first preliminary cutting assembly line 4, a second feeding assembly line 9, a third feeding assembly line 11, a fourth feeding assembly line 13, a cutting and pressing mechanism 17 and a transfer platform 22; the first preliminary cutting assembly line 4 includes a first feeding shell 5, a first cutting assembly 31 and a second cutting assembly 7, the first cutting assembly 31 and the second cutting assembly 7 are sequentially arranged on the first feeding shell 5 along the feeding direction and are used for transporting the accessory one; the second feeding assembly line 9 is composed of a second feeding shell 10 and is used for transporting the accessory two; the third feeding assembly line 11 is composed of a third feeding shell 12 and is used for transporting the accessory three; the fourth feeding assembly line 13 includes a fourth feeding shell 14, a detector 15 and a fifth cutting assembly 16, the detector 15 and the fifth cutting assembly 16 are sequentially arranged on the fourth feeding shell 14; the cutting and pressing mechanism 17 includes a rotating disc 19, a fourth cutting assembly 20 and a material taking and pressing assembly 28, the fourth cutting assembly 20 and the material taking and pressing assembly 28 are sequentially and circumferentially arranged on the rotating disc 19 along the feeding direction of the rotating disc 19; and the transfer platform 22 reciprocates between the second cutting assembly 7 and the fourth cutting assembly 20 and reciprocates between the second feeding shell 10 and the third feeding shell 12.
[0046] The double-channel communication interface assembly production line has the advantages that the relative staggered channel one 2 and the channel two 3 and the coordinated cooperation between the assembly lines, the cutting and pressing mechanism 17 and the transfer platform 22 can effectively improve the production efficiency.
[0047] The channel one 2 and the channel two 3 are staggered, so that the entire production line is more reasonable and compact in spatial layout, the limited space of the workbench 1 can be fully utilized, and the assembly lines and the related mechanisms can work in parallel and without interference.
[0048] The first preliminary cutting assembly line 4 can independently carry out preliminary double-cutting processing on the accessory one in the channel one 2 and the channel two 3, the first cutting assembly 31 and the second cutting assembly 7 sequentially act, so that the accessory one can be accurately cut into a shape and size meeting the subsequent assembly requirements, the double-cutting can remove the excess corner materials at one time and form a specific connection structure, greatly improves the processing precision and consistency of the accessory one, improves the speed of subsequent accurate assembly operation, and effectively avoids the assembly difficulty or product quality problem caused by cutting error.
[0049] Subsequently, the transfer platform 22 is used for transfer to the cutting and pressing mechanism 17, realizing seamless connection and transition from preliminary processing to assembly process. The second feeding line 9 stably transports the accessory two to the corresponding cutting and pressing mechanism 17 position, and the accessory one is assembled with the accessory two to form the assembly one at the mechanism, and the firmness and stability of the connection are ensured through the accurate action control of the cutting and pressing mechanism 17. The third feeding line 11 transports the accessory three to the assembly position, and the assembly one is assembled with the accessory three to form the assembly two under the operation of the transfer platform 22, and the accurate positioning and stable transfer function of the transfer platform 22 guarantee the accurate alignment of different assemblies during assembly. The two assemblies are directly realized on the second feeding line 9, the continuity and efficiency of the assembly line are fully utilized, and the efficiency loss and precision error caused by the frequent transfer of the assembly between different devices are avoided. The assembly two is smoothly transported through the fourth feeding shell 14 of the fourth feeding line 13 and the accurate detection is completed by the detector 15, and finally the qualified products are screened through the fifth cutting assembly 16.
[0050] The above structure can simultaneously perform assembly operations at different stages in two channels, reduces the overall production time, and improves the production capacity of the production line. Moreover, the division of labor between the assemblies is clear, and the cutting, feeding, assembly and detection links are sequentially connected, thereby reducing the error rate in the production process, ensuring the stability of the product quality, being conducive to large-scale communication interface production and manufacturing, and improving the competitiveness of enterprises in the market.
[0051] In the utility model, the feeding path is: the accessory one is transferred to the transfer platform 22 and the cutting and pressing mechanism 17 through the first feeding shell 5, the first cutting assembly 31 and the second cutting assembly 7; the accessory two is transferred through the second feeding shell 10 and the cutting and pressing mechanism 17; the accessory one is assembled with the accessory two through the cutting and pressing mechanism 17 to form the assembly one; the accessory three is transferred through the third feeding shell 12 and the transfer platform 22; the assembly one is assembled with the accessory three through the transfer platform 22 to form the assembly two; the assembly two is fed and detected through the fourth feeding shell 14 and the detector 15; and finally, the qualified products are screened through the fifth cutting assembly 16.
[0052] Preferably, the first cutting assembly 31 comprises a pressing block 32 and a top block 33, the pressing block 32 is arranged on the workbench 1 to reciprocatingly press tightly along the feeding and cutting position of the first feeding shell, and the top block 33 is arranged on the workbench 1 to reciprocatingly cut along the feeding and cutting position of the first feeding shell. When in use, a pneumatic cylinder can be installed to realize the lifting and pressing motion of the pressing block 32. The accessory one is first stably pressed by the pressing block 32, so that it will not displace or shake during cutting, thereby guaranteeing the accuracy of cutting and avoiding problems such as inaccurate cutting size or uneven cutting surface caused by the displacement of the accessory one.
[0053] The double-channel communication interface assembly production line further comprises a cutting driving assembly 38 arranged on the workbench 1, and the cutting driving assembly 38 is used to drive the top block 33 to perform reciprocating cutting movement. The degree of automation is improved, manual intervention is reduced, and the failure and labor intensity are reduced.
[0054] Specifically, the cutting driving assembly 38 comprises a driving machine 39, a positioning plate 40, a slide 41, an eccentric block 42, a sliding block 43 and a sliding groove 44. The driving machine 39 and the positioning plate 40 are fixedly arranged on the workbench 1. The slide 41 is recessed on the positioning plate 40, and the sliding direction of the slide 41 coincides with the reciprocating cutting movement direction of the top block 33. The eccentric block 42 is fixedly arranged on the driving shaft of the driving machine 39, and the driving shaft of the driving machine 39 is provided with an eccentric distance. The sliding block 43 is slidingly arranged in the slide 41, and the sliding block 43 is fixedly connected with the top block 33 through the slide 41. The sliding groove 44 is arranged on the sliding block 43, the eccentric block 42 is arranged in the sliding groove 44, the width of the sliding groove 44 matches the diameter of the eccentric block 42, and the length of the sliding groove 44 is greater than the diameter of the eccentric block 42.
[0055] The driving machine 39 drives the eccentric block 42 to perform circular motion. Since the eccentric distance of the eccentric block 42 exists, when the eccentric block 42 rotates, the relative displacement is generated in the sliding groove 44, so as to drive the sliding block 43 to slide in the slide 41 in the set direction. The rotation movement of the driving machine 39 is efficiently converted into the linear reciprocating movement of the sliding block 43, and then the top block 33 is driven to realize stable and accurate reciprocating cutting action. Meanwhile, the size matching relationship between the sliding groove 44 and the eccentric block 42 not only ensures that the eccentric block 42 can smoothly drive the sliding block 43 in the sliding groove 44, but also limits the movement range of the sliding block 43, effectively avoiding the deviation and jam in the movement process. Moreover, the structure layout is compact and reasonable, the components are closely matched and have high integration, the space is effectively saved, and the reliability and accuracy of the cutting action are greatly improved. The high-quality cutting effect of the communication interface is improved, and the whole production line can stably and orderly run.
[0056] Preferably, the first cutting assembly 31 can have the same structure as the second cutting assembly 7, the third cutting assembly, the fourth cutting assembly 20 and the fifth cutting assembly 16. Of course, in other embodiments, the first cutting assembly 31 can use a punching die structure to punch off the waste and burrs.
[0057] Preferably, the cutting and pressing mechanism 17 further comprises a mounting seat 18 for placing the accessory. The number of mounting seats 18 can be evenly arranged on the rotating disc 19 according to actual needs, and the mounting seat 18 can be preset to rotate to the fourth cutting assembly 20 and the material taking and pressing assembly 28 together with the rotating disc 19.
[0058] Preferably, the taking and pressing assembly 28 comprises a top plate 29 and a pressing plate 30, the top plate 29 is reciprocatingly arranged on the workbench 1 along the feeding assembly position of the rotary table 19, and the pressing plate 30 is reciprocatingly arranged on the workbench 1 along the feeding assembly position of the second feeding housing 10.
[0059] Specifically, the top plate 29 can lift the accessory on the mounting seat 18 to the bottom of the accessory two, the pressing plate 30 supports the accessory two, and the accessory one is continuously lifted by the top plate 29 and is buckled with the accessory two by the pressing plate 30, thereby forming the assembly one.
[0060] In the installation and use, the cylinder can be used to drive the top plate 29 and the pressing plate 30 to reciprocate, and of course, the cutting driving assembly 38 can be used instead of the cylinder, and specifically, the top block 33 is replaced by the corresponding top plate 29 and the pressing plate 30.
[0061] In the embodiment, the pressing plate 30 completes the pressing action by the driving motion assembly 34.
[0062] Specifically, the driving motion assembly 34 comprises a vertical plate 35, a transverse plate 36 and a track 37, the vertical plate 35 is vertically arranged on the workbench 1 along the assembly position of the second feeding housing 10, the transverse plate 36 reciprocates through the vertical plate 35 along the vertical direction of the vertical plate 35, and the track 37 is arranged at the middle part of the transverse plate 36 through the vertical plate 35, the positioning end of the vertical plate 35 has a height difference through the track 37 at both ends, when the transverse plate 36 is pushed, the track 37 can guide the vertical plate 35 to vertically move along the assembly position of the second feeding housing 10, and the cylinder pulls the transverse plate 36, thereby completing the pressing motion.
[0063] Preferably, the first preliminary cutting assembly 4 further comprises a base 8, the base 8 is arranged on the first cutting assembly 31, the second cutting assembly 7 and the base 8 in sequence along the feeding direction on the first feeding housing 5. The two ends of the base 8 are open end and closed end respectively, the open end is connected with the discharging end of the first feeding housing 5 and is used for transporting the accessory one, and the closed end is used for clamping the accessory one transported on the base 8. The transfer platform 22 can stably take the material on the base 8, and the inaccuracy of taking the material caused by the displacement or shaking of the accessory one in the taking process is avoided.
[0064] Preferably, the transfer platform 22 can be combined by the first direction sliding table and the second direction sliding table to realize the transportation between the materials.
[0065] In the embodiment, the transfer platform 22 comprises a driver 23, a cam block 24, a first slide rail 25, a second slide rail 26 and a suction disc 27, the driver 23 and the second slide rail 26 are fixed on the workbench 1 through a support, the suction disc 27 is fixed on the first slide rail 25, the cam block 24 is arranged on a driving shaft of the driver 23, the first slide rail 25 is movably and rotatably connected to a cam end of the cam block 24, the middle part of the first slide rail 25 is connected with the second slide rail 26 through a moving block, the moving block can move in the first slide rail 25 and the second slide rail 26 along with the rotation of the cam block 24, so as to realize the suction and placement of the suction disc 27, the taking and placing of materials between the second cutting assembly 7 and the fourth cutting assembly 20, and the buckling assembly of components two between the second feeding shell 10 and the third feeding shell 12.
[0066] Preferably, after the completion of the component two, detection is needed, if the detector 15 detects unqualified products, the fifth blanking element can blank the unqualified products, and the qualified products are transported to the next process. Specifically, the detector 15 can be installed in multiple, and the specific number can be set according to the needs.
[0067] The double-channel communication interface assembly production line further comprises a storage assembly 45 arranged on the workbench 1, and the storage assembly 45 is used for storing and placing disc rotary material belts and matching each assembly line feeding.
[0068] Specifically, the storage assembly 45 comprises a positioning seat 46, a material disc 47, a guide rod 48, a fixed seat 49, a sliding seat 50, an elastic rod 53 and a rotating roller 52, the positioning seat 46 is fixed on the workbench 1, the material disc 47 is movably and rotatably arranged on the positioning seat 46, the guide rod 48 is fixed on the positioning seat 46, the fixed seat 49 is sleeved and fixedly installed on the guide rod 48, the sliding seat 50 is sleeved and slidably installed on the guide rod 48, and the elastic rod 53 is arranged between the sliding seat 50 and the fixed seat 49. The elastic rod 53 comprises a spring 54 and a rod body 55, one end of the rod body 55 is fixedly connected with the sliding seat 50, the other end of the rod body 55 penetrates through the fixed seat 49 and is screwed with a nut, the middle part of the rod body 55 is also screwed with a nut, the spring 54 is sleeved on the rod body 55 and abuts against the nut and the fixed seat 49 respectively.
[0069] In use, the material belt is sequentially wound on the material disc 47, the rotating roller 52 and the feeding shell, and a motor is additionally installed to rotate the material disc 47 to pull the material belt. The fixed seat 49 is fixed on the guide rod 48 by screws. When the material belt is pulled and conveyed, the material disc 47 will rotate correspondingly to release the material belt due to the friction between the material belt and each component, and the sliding seat 50 will displace on the guide rod 48. With the continuous conveying of the material belt, the spring 54 will be compressed or stretched due to the displacement of the sliding seat 50, and elastic deformation and elastic potential energy will be stored. When the conveying speed of the material belt changes or there is a short pause, the elastic potential energy stored in the spring 54 will be released to push the sliding seat 50 to move reversely along the guide rod 48, so as to keep the material belt in a moderate tension, avoiding the relaxation or excessive tension of the material belt. This design effectively prevents the problems of feeding deviation and material jamming caused by unstable tension of the material belt, ensures the smooth and continuous supply of the material belt, provides a strong guarantee for the stable operation of the entire production line, improves the reliability and continuity of the production process, and thus helps to improve the production efficiency and product quality.
[0070] The double-channel communication interface assembly production line further comprises a material discharge assembly 56 arranged on the workbench 1, and the material discharge assembly 56 is used for leading out waste materials for centralized treatment. Specifically, the material discharge assembly 56 comprises a material leading cylinder 57 and a centralized box 58, and the upper end of the material leading cylinder 57 is arranged at the cutting end of the first cutting assembly 31, the second cutting assembly 7, the third cutting assembly, the fourth cutting assembly 20 and the fifth cutting assembly 16, and the lower end of the material leading cylinder 57 is inclined along the centralized box 58.
[0071] The guiding channel is formed by the cylindrical structure of the material leading cylinder 57, so that the waste materials can smoothly slide along the material leading cylinder 57 to the centralized box 58 under the assistance of gravity, which not only effectively avoids the accumulation and scattering of waste materials on the production line, but also greatly improves the efficiency of waste material collection and treatment, so that the production line can maintain a clean and orderly working environment, reduces the downtime caused by untimely or improper cleaning of waste materials, and indirectly improves the overall production efficiency and product quality.
[0072] The double-channel communication interface assembly production line further comprises a protective door 59 arranged on the workbench 1, and the protective door 59 covers the channel one 2 and the channel two 3. Through the arrangement of the protective door 59, the internal production area and the external environment are effectively isolated during the operation of the production line. On the one hand, it can prevent foreign matters such as dust and impurities from entering the production line, avoid the adhesion of these pollutants on the accessories, the assembly line and each mechanism, thereby reducing the product quality problems caused by the mixing of foreign matters, such as scratching the surface of the accessories and affecting the assembly precision, and ensuring the cleanliness of the production process and the high quality of the products.
[0073] The double-channel communication interface assembly production line further comprises a main control computer 60, which can be electrically connected with each electric appliance on the channel one 2 and the channel two 3, thereby improving the automation degree of the production line.
[0074] The above is only the preferred embodiment of the present application, and does not limit the present application in any form. Although the present application is disclosed with the preferred embodiment, it is not intended to limit the present application. Any skilled person in the art can make some changes or modifications to the above disclosed technical content without departing from the technical solution of the present application, and any equivalent embodiment with equivalent changes is equivalent to the above embodiment. Any simple modification, equivalent change and modification of the above embodiment according to the present application technical solution are within the scope of the present application technical solution.
Claims
1. A two-channel communication interface product assembly production line, characterized by, The utility model relates to a cutting device for cutting and pressing of accessories, comprising: a workbench; a first channel and a second channel opposite to the first channel, both of which are installed on the workbench, and both of which comprise a first preliminary cutting assembly, a second feeding assembly, a third feeding assembly, a fourth inspection assembly, a cutting and pressing mechanism and a transfer platform; the first preliminary cutting assembly comprises a first feeding shell, a first cutting assembly and a second cutting assembly, which are sequentially arranged on the first feeding shell along the feeding direction and used for transporting accessories one; the second feeding assembly is composed of a second feeding shell and used for transporting accessories two; the third feeding assembly is composed of a third feeding shell and used for transporting accessories three; the fourth inspection assembly comprises a fourth feeding shell, a detector and a fifth cutting assembly, which are sequentially arranged on the fourth feeding shell; the cutting and pressing mechanism comprises a rotating disc, a fourth cutting assembly and a material taking and pressing assembly, which are sequentially arranged on the rotating disc along the feeding direction of the rotating disc; the transfer platform reciprocates between the second cutting assembly and the fourth cutting assembly and reciprocates between the second feeding shell and the third feeding shell.
2. A twin-channel communication interface product assembly production line according to claim 1, characterized in that, the material taking and pressing assembly comprises a top plate and a pressing plate, the top plate is arranged on the workbench and reciprocates along the feeding assembly position of the rotating disc to top the material, and the pressing plate is arranged on the workbench and reciprocates along the feeding assembly position of the second feeding shell to press the material.
3. A twin-channel communication interface product assembly production line according to claim 1 or 2, characterized in that, the first cutting assembly comprises a pressing block and a top block, the pressing block is arranged on the workbench and reciprocates along the feeding and cutting position of the first feeding shell to press the material, and the top block is arranged on the workbench and reciprocates along the feeding and cutting position of the first feeding shell to cut the material.
4. A twin-channel communication interface product assembly line according to claim 3, characterized in that, a cutting driving assembly is further arranged on the workbench and used for driving the top block to reciprocate along the cutting direction.
5. A twin-channel communication interface product assembly line according to claim 4, characterized in that, the cutting driving assembly comprises a driving machine, a positioning plate, a slide, an eccentric block, a sliding block and a sliding groove, the driving machine and the positioning plate are fixedly arranged on the workbench, the slide is concavely arranged on the positioning plate, the sliding direction of the slide coincides with the reciprocating cutting direction of the top block, the eccentric block is fixedly arranged on the driving shaft of the driving machine, the driving shaft of the driving machine coincides with the eccentric block, the eccentric block has an eccentric distance, the sliding block is slidably arranged in the slide, the sliding block is fixedly connected with the top block through the slide, the sliding groove is arranged on the sliding block, the eccentric block is arranged in the sliding groove, the width of the sliding groove matches the diameter of the eccentric block, and the length of the sliding groove is greater than the diameter of the eccentric block.
6. A twin-channel communication interface product assembly production line according to claim 4 or 5, characterized in that, a material storage assembly is further arranged on the workbench and used for storing a rotary material belt and feeding each assembly.
7. A twin-channel communication interface product assembly line according to claim 6, characterized in that, The storage assembly comprises a mounting base, a rotating disc, a guide rod, a fixed base, a sliding base, an elastic rod and a rotating roller, the mounting base is fixed on the workbench, the rotating disc is movably arranged on the mounting base, the guide rod is fixed on the mounting base, the fixed base is sleeved and fixedly arranged on the guide rod, the sliding base is sleeved and movably arranged on the guide rod, and the elastic rod is arranged between the sliding base and the fixed base.
8. A twin-channel communication interface product assembly production line according to claim 4 or 5, characterized in that, Further comprising a discharging assembly arranged on the workbench, the discharging assembly is used for leading out the waste materials for centralized treatment.
9. A twin-channel communication interface product assembly line according to claim 8, characterized in that, The discharging assembly comprises a material leading cylinder and a centralized box, the upper end of the material leading cylinder is arranged at the cutting end of the first cutting assembly, the second cutting assembly and the third cutting assembly, and the lower end of the material leading cylinder is inclined along the centralized box.
10. A twin-channel communication interface product assembly production line according to claim 4 or 5, characterized in that, Further comprising a protective door arranged on the workbench, the protective door covers the passage one and the passage two.