Double-layer conveying device for wire production
The design of a double-layer conveying structure solves the problem that a single-layer conveyor belt cannot drive empty and fully loaded carriers at the same time, achieving compact space utilization and efficient carrier transportation, and improving the operational stability and efficiency of data cable production.
Patent Information
- Application Number
- CN202422619949.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-10-29
AI Technical Summary
In the existing data cable production process, a single-layer conveyor belt cannot drive both empty and fully loaded carriers at the same time, resulting in large space occupation, high costs, and insufficient operational stability, affecting work efficiency.
A double-layer conveying structure is adopted, and the upper and lower transfer components are combined with the lifting unit to realize the cyclic conveying of empty carriers and fully loaded carriers. The double-layer transfer of carriers is realized by the cooperation of the upper and lower transfer components in combination with the lifting unit.
It has a compact structure, occupies a small space, operates stably and reliably, and improves work efficiency.
Smart Images

Figure CN223341670U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of data line production, in particular to a double-layer conveying device for wire production. Background Art
[0002] In a broad sense, a data cable refers to a communication cable that electrically connects various electronic devices and transmits data information, or a connection channel or bridge for communication between devices. In a narrow sense, a data cable refers to a dedicated data transmission cable classified by device interface standards, involving interface standards, supported transmission functions, related technical requirements, etc., especially mobile phone data cables, whose interface standards have multiple specifications. The cables include power cables and data cables, which can be used for charging and can also be connected to electronic devices. In the production and processing of data cables, data cables are generally transported by conveyor belts. Existing conveyor belts are basically single-layer structures. Single-layer conveyor belts cannot drive empty and fully loaded vehicles at the same time. In actual work, two conveyor belts need to be set up to drive empty and fully loaded vehicles respectively. This not only takes up a lot of space and increases production costs, but also has insufficient operational stability, affecting work efficiency. Utility Model Content
[0003] The purpose of this utility model is to address the deficiencies of the existing technology and provide a double-layer conveying device for wire production. The double-layer conveying structure is adopted to drive empty carriers and fully loaded carriers. The structure is compact and occupies little space, the operation is stable and reliable, and the work efficiency is improved.
[0004] To achieve the above-mentioned purpose, the utility model provides a double-layer conveying device for wire production, including a frame, a carrier movably arranged on the frame, an upper-layer transfer assembly driven and connected to the carrier, a lower-layer transfer assembly arranged on the frame, and a lifting unit movably arranged at both ends of the frame. There are multiple carriers, and the multiple carriers are driven by the upper-layer transfer assembly and move along the length direction of the frame, so that the lifting unit transfers the carrier between the upper-layer transfer assembly and the lower-layer transfer assembly.
[0005] Preferably, the upper transfer assembly includes a transfer frame, a driving cylinder driven by the transfer frame, a swing arm rotatably arranged on the transfer frame, a connecting rod arranged at one end of the swing arm, a connecting block arranged at the other end of the swing arm, and a lifting plate arranged on the connecting block. The transfer frame is provided with a translation cylinder, the output end of the translation cylinder is driven and connected to a connecting seat, the connecting seat is connected to the connecting rod, a rotating shaft is provided at the connection between the middle part of the swing arm and the transfer frame, a first slider is provided on the outside of the transfer frame, and a first guide rail slidably connected to the first slider is provided on the outside of the frame body.
[0006] Preferably, a second slider is provided on both sides of the lifting plate, a second guide rail slidably connected to the second slider is provided on both sides of the transfer rack, a connecting head is provided on the outer wall of the lifting plate, a connecting groove is provided on the outer wall of the carrier, and the connecting head is accommodated in the connecting groove.
[0007] Preferably, the lower-layer transfer assembly includes a driving gear arranged at one end of the frame, a driven gear arranged at the other end of the frame, a driving motor drivingly connected to the driving gear, and a conveyor belt drivingly connected between the driving gear and the driven gear.
[0008] Preferably, the lifting unit includes a lifting seat, a lifting cylinder driven by the lifting seat, a mounting seat arranged on the outside of the lifting seat, a lifting cylinder arranged on the mounting seat, a lifting plate driven by the lifting cylinder, a third guide rail arranged at the bottom of the lifting seat, and a third slider arranged on the frame, and the third guide rail is slidably connected to the third slider.
[0009] Preferably, a material clamping seat is provided on both sides of the carrier, the material clamping seat is rotatably provided with a material clamping arm, a pin is provided at the connection between the material clamping seat and the material clamping arm, and the pin is provided with an elastic member.
[0010] The beneficial effects of the utility model are as follows: a double-layer conveying structure is adopted to drive an empty carrier and a fully loaded carrier, the structure is compact and occupies little space, the operation is stable and reliable, and the work efficiency is improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Figure 1 It is a structural diagram of the present utility model.
[0012] Figure 2 This is a schematic diagram of the exploded structure of the present invention.
[0013] Figure 3 This is a schematic diagram of the lifting unit structure of the present utility model.
[0014] Figure 4 for Figure 3 Schematic diagram of the locally enlarged structure of A in the middle.
[0015] Reference numerals include:
[0016] 1——Frame 11——First guide rail 12——Third slider
[0017] 2——Carrier 21——Connecting slot 22——Clamping seat
[0018] 23——Clamping arm 24——Pin
[0019] 3 - Upper transfer assembly 31 - Transfer rack 32 - Drive cylinder
[0020] 33 - swing arm 34 - connecting rod 35 - connecting block
[0021] 36——Lifting plate 37——Translation cylinder 38——Connecting seat
[0022] 39——rotating shaft 310——first slider 311——second slider
[0023] 312——Second guide rail 313——Connector
[0024] 4 - lower layer transfer assembly 41 - driving gear 42 - driven gear
[0025] 43 - Conveyor Belt
[0026] 5——Lifting unit 51——Lifting seat 52——Lifting cylinder
[0027] 53——Mounting seat 54——Lifting cylinder 55——Lifting plate
[0028] 56——The third rail. DETAILED DESCRIPTION
[0029] The present invention is described in detail below with reference to the accompanying drawings.
[0030] like Figures 1 to 4 As shown, the utility model is a double-layer conveying device for wire production, including a frame 1, a carrier 2 movably arranged on the frame 1, an upper-layer transfer component 3 driven and connected to the carrier 2, a lower-layer transfer component 4 arranged on the frame 1, and a lifting unit 5 movably arranged at both ends of the frame 1. There are multiple carriers 2, and multiple carriers 2 are driven by the upper-layer transfer component 3 and move along the length direction of the frame 1, so that the lifting unit 5 transfers the carrier 2 between the upper-layer transfer component 3 and the lower-layer transfer component 4.
[0031] During operation, the data cable is placed on the carrier 2 through an external loading mechanism, and then multiple data cables are placed on multiple carriers 2 respectively. Since multiple carriers 2 are spaced and arranged at equal distances, the upper transfer component 3 drives multiple carriers 2 to move along the length direction of the frame 1. When the fully loaded carrier 2 reaches the lifting unit 5 located at one end of the frame 1, the lifting unit 5 first releases the data cable so that the external unloading mechanism can pick up the data cable and take it away. At this time, the carrier 2 is empty, and then the lifting unit 5 moves the empty carrier 2 from the upper The layer transfer assembly 3 transfers downward to the lower layer transfer assembly 4 for transportation. When the empty carrier 2 is driven by the lower layer transfer assembly 4 and reaches the lifting unit 5 located at the other end of the frame 1, the lifting unit 5 transfers the empty carrier 2 from the lower layer transfer assembly 4 upward to the upper layer transfer assembly 3 for transportation, making it convenient for the external loading mechanism to place the data cable on the empty carrier 2, so that the carrier 2 forms a circular and repeated conveying structure between the upper layer transfer assembly 3 and the lower layer transfer assembly 4, with good structural compactness and high space utilization. The utility model adopts a double-layer conveying structure to realize the driving of empty carriers and fully loaded carriers, with a compact structure and small space occupation, stable and reliable operation, and improved work efficiency.
[0032] The upper transfer assembly 3 of this embodiment includes a transfer frame 31, a driving cylinder 32 driven and connected to the transfer frame 31, a swing arm 33 rotatably arranged on the transfer frame 31, a connecting rod 34 arranged at one end of the swing arm 33, a connecting block 35 arranged at the other end of the swing arm 33 and a lifting plate 36 arranged on the connecting block 35. The transfer frame 31 is provided with a translation cylinder 37, the output end of the translation cylinder 37 is driven and connected to a connecting seat 38, and the connecting seat 38 is connected to the connecting rod 34. A rotating shaft 39 is provided at the connection between the middle part of the swing arm 33 and the transfer frame 31. A first slider 310 is provided on the outside of the transfer frame 31, and a first guide rail 11 slidably connected to the first slider 310 is provided on the outside of the frame body 1. Specifically, the translation cylinder 37 drives the connecting rod 34 to move left and right through the connecting seat 38. When the translation cylinder 37 drives the connecting rod 34 to move to the left, the swing arm 33 is prompted to rotate clockwise through the rotating shaft 39, thereby driving the lifting plate 36 to move upward through the connecting block 35; when the translation cylinder 37 drives the connecting rod 34 to move to the right, the swing arm 33 is prompted to rotate counterclockwise through the rotating shaft 39, thereby driving the lifting plate 36 to move downward through the connecting block 35, and then cooperates with the driving cylinder 32 to drive the transfer frame 31 to move left and right, thereby meeting the movement requirements of the lifting plate 36 to move left and right and up and down.
[0033] In this embodiment, the lifting plate 36 is provided with second sliders 311 on both sides, and the transfer frame 31 is provided with second guide rails 312 slidably connected to the second sliders 311 on both sides. The outer wall of the lifting plate 36 is provided with connectors 313, and the outer wall of the carrier 2 is provided with connecting grooves 21, and the connectors 313 are accommodated in the connecting grooves 21. Specifically, the lifting plate 36 is moved up and down along the two second guide rails 312 by the two second sliders 311, and the movement is smooth and fast. There are multiple connectors 313, which are arranged at intervals along the length of the lifting plate 36. The lifting plate 36 uses the multiple connectors 313 to connect to the connecting grooves 21 of multiple carriers. Then, the lifting plate 36 is used to pick up and place the carrier 2 by means of the up and down movement of the lifting plate 36, and the carrier 2 is then transported by means of the left and right movement of the lifting plate 36, which is efficient in transporting the carrier 2.
[0034] The lower-layer transfer assembly 4 of this embodiment includes a driving gear 41 disposed at one end of the frame 1, a driven gear 42 disposed at the other end of the frame 1, a drive motor drivingly connected to the driving gear 41, and a conveyor belt 43 transmitting between the driving gear 41 and the driven gear 42. Specifically, the drive motor (not shown) drives the driving gear 41 to rotate, and the rotating driving gear 41 drives the driven gear 42 to rotate via the conveyor belt 43. The running conveyor belt 43 is then used to smoothly transport the empty carriers 2, thereby improving the feeding efficiency.
[0035] The lifting unit 5 of this embodiment includes a lifting base 51, a lifting cylinder 52 drivingly connected to the lifting base 51, a mounting base 53 disposed outside the lifting base 51, a lifting cylinder 54 disposed on the mounting base 53, a lifting plate 55 drivingly connected to the lifting cylinder 54, a third guide rail 56 disposed at the bottom of the lifting base 51, and a third slider 12 disposed on the frame 1. The third guide rail 56 is slidably connected to the third slider 12. Specifically, the lifting cylinder 52 drives the lifting base 51 to move up and down, and the lifting base 51 slides along the third slider 12 via the third guide rail 56, moving smoothly and steadily. The lifting cylinder 54 then drives the lifting plate 55 to move up and down, causing the lifting plate 55 to contact the carrier 2 and achieve the purpose of opening or closing the carrier 2, thereby facilitating the placement or removal of the data cable from the carrier 2.
[0036] In this embodiment, both sides of the carrier 2 are provided with a clamping seat 22, and the clamping seat 22 is rotatably provided with a clamping arm 23. A pin 24 is provided at the connection between the clamping seat 22 and the clamping arm 23, and the pin 24 is provided with an elastic member. Specifically, as a preferred embodiment, the elastic member is a torsion spring, the main body of the torsion spring is sleeved on the outside of the pin 24, one end of the torsion spring is in contact with the clamping arm 23, and the other end of the torsion spring is in contact with the clamping seat 22. When the lifting cylinder 54 drives the lifting plate 55 to move downward, the lifting plate 55 presses the clamping arm 23 downward, so that the clamping arm 23 gradually moves away from the clamping seat 22 to facilitate the insertion of the data cable. When the lifting cylinder 54 drives the lifting plate 55 to move upward, the lifting plate 55 no longer applies force to the clamping arm 23. The clamping arm 23 generates torque or rotational force under the elastic force of the torsion spring, so that the clamping arm 23 gradually approaches the clamping seat 22 to facilitate the clamping and fixing of the data cable.
[0037] The above contents are only preferred embodiments of the present invention. For ordinary technicians in this field, according to the concept of the present invention, there may be changes in the specific implementation methods and application scope. The content of this specification should not be understood as limiting the present invention.
Claims
1. A double-layer conveying device for wire production, characterized in that: It includes a frame, a carrier movably arranged on the frame, an upper-level transfer component driven and connected to the carrier, a lower-level transfer component arranged on the frame, and a lifting unit movably arranged at both ends of the frame. There are multiple carriers, and the multiple carriers are driven by the upper-level transfer component and move along the length direction of the frame, so that the lifting unit transfers the carrier between the upper-level transfer component and the lower-level transfer component.
2. A double-layer conveying device for wire production according to claim 1, characterized in that: The upper transfer assembly includes a transfer frame, a driving cylinder driven by the transfer frame, a swing arm rotatably arranged on the transfer frame, a connecting rod arranged at one end of the swing arm, a connecting block arranged at the other end of the swing arm, and a lifting plate arranged on the connecting block. The transfer frame is provided with a translation cylinder, the output end of the translation cylinder is driven and connected to a connecting seat, the connecting seat is connected to the connecting rod, a rotating shaft is provided at the connection between the middle part of the swing arm and the transfer frame, a first slider is provided on the outside of the transfer frame, and a first guide rail slidably connected to the first slider is provided on the outside of the frame body.
3. A double-layer conveying device for wire production according to claim 2, characterized in that: A second slider is provided on both sides of the lifting plate, a second guide rail slidably connected to the second slider is provided on both sides of the transfer rack, a connecting head is provided on the outer wall of the lifting plate, a connecting groove is provided on the outer wall of the carrier, and the connecting head is accommodated in the connecting groove.
4. The double-layer conveying device for wire production according to claim 1, characterized in that: The lower layer transfer assembly includes a driving gear arranged at one end of the frame, a driven gear arranged at the other end of the frame, a driving motor drivingly connected to the driving gear, and a conveyor belt transmission-connected between the driving gear and the driven gear.
5. The double-layer conveying device for wire production according to claim 1, characterized in that: The lifting unit includes a lifting seat, a lifting cylinder driven by the lifting seat, a mounting seat arranged on the outside of the lifting seat, a lifting cylinder arranged on the mounting seat, a lifting plate driven by the lifting cylinder, a third guide rail arranged at the bottom of the lifting seat, and a third slider arranged on the frame, wherein the third guide rail is slidably connected to the third slider.
6. The double-layer conveying device for wire production according to claim 1, characterized in that: Both sides of the carrier are provided with a clamping seat, the clamping seat is rotatably provided with a clamping arm, the connection between the clamping seat and the clamping arm is provided with a pin shaft, and the pin shaft is provided with an elastic member.