Anti-knotting data line splitting storage and transfer structure
Through the data line storage structure designed by the back plate and winding mechanism, the problem of data line winding during transportation is solved, and no manual finishing and metal wire protection is achieved, which improves transportation convenience and safety.
Patent Information
- Application Number
- CN202422212866.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-10
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-09-10
AI Technical Summary
Existing data lines are prone to wrap or self-wrapped with other items during transportation, and need to be manually sorted, resulting in breaking of the metal wire and inconvenient transportation.
The data line storage structure including a back plate, an upper winding mechanism and a lower winding mechanism is adopted. With a powerful magnet column and a T-trough design, the data line can be wound individually on the storage device and is connected by the head and tail of multiple winding mechanisms, making it easy to be neatly arranged and quickly removed.
Effectively avoid data cables from entangling with other items, reduce the need for manual sorting, protect the metal wires inside the data cable, and improve transportation convenience and safety.
Smart Images

Figure CN223060397U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of data cable storage, in particular to a strip-shaped storage and transfer structure for anti-knotting data cables. Background Art
[0002] In order to be convenient for use, the existing data cables are generally long. During transportation, the data cables are likely to be wound together with other items or self-wound. It is necessary to manually wind and arrange the data cables, which is very inconvenient. When the data cables are in a wound or knotted state, the metal wires inside the data cables are likely to be broken after long-term use. For this reason, the utility model provides a strip-shaped storage and transfer structure for anti-knotting data cables to solve the above problems. Content of the Utility Model
[0003] Aiming at the deficiencies of the prior art, the utility model provides a strip-shaped storage and transfer structure for anti-knotting data cables, which solves the problems that the data cables are likely to be wound together with other items or self-wound during transportation, it is necessary to manually wind and arrange the data cables, which is very inconvenient, and the metal wires inside the data cables are likely to be broken after long-term use.
[0004] To achieve the above purposes, the utility model is realized through the following technical solutions: A strip-shaped storage and transfer structure for anti-knotting data cables includes a backboard. Strong magnet columns are fixedly arranged at the four corners of the side wall of the backboard, and T-shaped grooves are respectively opened on the left and right sides of the other side wall of the backboard. An upper winding mechanism and a lower winding mechanism for winding data cables are respectively arranged at the upper and lower positions on one side of the backboard. The lower winding mechanism includes a second wire reel, T-shaped blocks, a first U-shaped block and round holes. The two T-shaped blocks are symmetrically arranged on the left and right sides of the side wall of the second wire reel. The first U-shaped block is fixedly arranged on the outer wall of the second wire reel opposite to the upper winding mechanism. The round holes are opened at the four corners of the top of the second wire reel. The upper winding mechanism includes a first wire reel, lifting columns, springs, second U-shaped blocks, connection holes and magnet sleeves. The lifting columns are fixedly arranged at the four corners of the bottom of the first wire reel. The springs are sleeved on the outer walls of the lifting columns. The second U-shaped blocks are fixedly arranged on the side walls of the first wire reel opposite to the first U-shaped blocks. The connection holes are opened on the left and right sides of the front of the first wire reel. The magnet sleeves are fixedly arranged on the inner walls of the connection holes.
[0005] Furthermore, sliding blocks with exactly the same structure as the T-shaped blocks are fixedly arranged on both sides of the side wall of the first wire reel opposite to the backboard. The two T-shaped blocks and the two sliding blocks are respectively slidably connected inside the four T-shaped grooves.
[0006] Furthermore, connection holes with exactly the same structure as the connection holes are respectively opened on the left and right sides of the front of the second wire reel, and permanent magnet blocks are fixedly arranged inside the connection holes.
[0007] Further, the four lifting columns are respectively slidably connected inside the four circular holes.
[0008] Further, limiting grooves for winding data lines are formed on the outer walls of the first wire winding frame and the second wire winding frame, and rubber protective sleeves are fixedly arranged on the inner walls of the limiting grooves.
[0009] Further, the outer diameter of the strong magnet column is adapted to the inner diameter of the connection hole, and the positions of the four strong magnet columns correspond to the four connection holes one by one.
[0010] Beneficial effects
[0011] The utility model provides a structure for preventing knotting of data lines and storing and transporting data lines in strips. Compared with the prior art, the following beneficial effects are achieved:
[0012] 1. A structure for preventing knotting of data lines and storing and transporting data lines in strips. Strong magnet columns are fixedly arranged at four corners of the side wall of the back plate, and T-shaped grooves are formed on the left and right sides of the other side wall of the back plate. An upper wire winding mechanism and a lower wire winding mechanism for winding data lines are respectively arranged at the upper and lower positions on one side of the back plate. The lower wire winding mechanism includes a second wire winding frame, T-shaped blocks, a first U-shaped block, and circular holes. The two T-shaped blocks are symmetrically arranged on the left and right sides of the side wall of the second wire winding frame. The first U-shaped block is fixedly arranged on the outer wall of the second wire winding frame opposite to the upper wire winding mechanism. The circular holes are formed at four corners of the top of the second wire winding frame. The upper wire winding mechanism includes a first wire winding frame, lifting columns, springs, a second U-shaped block, connection holes, and magnet sleeves. The lifting columns are fixedly arranged at four corners of the bottom of the first wire winding frame. The springs are sleeved on the outer walls of the lifting columns. The second U-shaped block is fixedly arranged on the side wall of the first wire winding frame opposite to the first U-shaped block. The connection holes are formed on the left and right sides of the front of the first wire winding frame. The magnet sleeves are fixedly arranged on the inner walls of the connection holes. During transportation, the data lines can be separately wound on the data line storage device composed of the back plate, the upper winding mechanism, and the lower winding mechanism, effectively avoiding the situation that the data lines are wound together with other items or self-wound. There is no need to manually wind and arrange the data line cables, which is very convenient and can effectively protect the metal wires inside the data lines.
[0013] 2. A structure for preventing knotting of data lines and storing and transporting data lines in strips. Multiple data line storage devices composed of the back plate, the upper winding mechanism, and the lower winding mechanism can be connected end to end in sequence during transportation, which is convenient for arranging them neatly and avoiding the situation of being scattered during transportation, greatly improving the convenience of data line transportation. Moreover, by simultaneously pressing the first U-shaped block and the second U-shaped block towards each other, the gap between the data lines can be increased, facilitating the quick removal of the data lines. Description of the drawings
[0014] Figure 1 It is a schematic structural diagram of the assembled state of the utility model;
[0015] Figure 2 This is a schematic diagram of the first disassembled state structure of the back plate, upper winding assembly and lower winding assembly of the present utility model;
[0016] Figure 3 This is a schematic diagram of the second disassembled state structure of the back plate, upper winding assembly and lower winding assembly of the present utility model;
[0017] Figure 4 This is an enlarged schematic diagram of part A of the present utility model.
[0018] In the figure: 1. Back plate; 2. Strong magnet column; 3. T-shaped groove; 4. First wire winding frame; 5. Second wire winding frame; 6. T-shaped block; 7. First U-shaped block; 8. Round hole; 9. Lifting column; 10. Spring; 11. Second U-shaped block; 12. Connecting hole; 13. Magnet sleeve. Specific embodiments
[0019] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0020] Such as Figures 1-4, the present utility model provides a technical solution: an anti-knotting data cable strip storage and transportation structure, including a backboard 1. Strong magnet columns 2 are fixedly arranged at four corners of the side wall of the backboard 1. T-shaped grooves 3 are opened on the left and right sides of the other side wall of the backboard 1. An upper winding mechanism and a lower winding mechanism for winding data cables are respectively arranged at the upper and lower positions on one side of the backboard 1. The lower winding mechanism includes a second wire reel 5, T-shaped blocks 6, a first U-shaped block 7 and round holes 8. The two T-shaped blocks 6 are symmetrically arranged on the left and right sides of the side wall of the second wire reel 5. The first U-shaped block 7 is fixedly arranged on the outer wall of the second wire reel 5 opposite to the upper winding mechanism. The round holes 8 are opened at four corners of the top of the second wire reel 5. The upper winding mechanism includes a first wire reel 4, lifting columns 9, springs 10, a second U-shaped block 11, connecting holes 12 and magnet sleeves 13. The lifting columns 9 are fixedly arranged at four corners of the bottom of the first wire reel 4. The springs 10 are sleeved on the outer walls of the lifting columns 9. The second U-shaped block 11 is fixedly arranged on the side wall of the first wire reel 4 opposite to the first U-shaped block 7. The connecting holes 12 are opened on the left and right sides of the front of the first wire reel 4. The magnet sleeves 13 are fixedly arranged on the inner walls of the connecting holes 12. Sliders with the same structure as the T-shaped blocks 6 are fixedly arranged on both sides of the side wall of the first wire reel 4 opposite to the backboard 1. The two T-shaped blocks 6 and the two sliders are respectively slidably connected inside the four T-shaped grooves 3. Connecting holes with the same structure as the connecting holes 12 are respectively opened on the left and right sides of the front of the second wire reel 5. Permanent magnet blocks are fixedly arranged inside the connecting holes. The four lifting columns 9 are respectively slidably connected inside the four round holes 8. Limiting grooves for winding data cables are opened on the outer walls of the first wire reel 4 and the second wire reel 5. Rubber protective sleeves are fixedly arranged on the inner walls of the limiting grooves. The outer diameter of the strong magnet column 2 is adapted to the inner diameter of the connecting hole 12, and the positions of the four strong magnet columns 2 correspond to the four connecting holes 12 one by one.
[0021] When in use, first connect the data cable storage devices composed of a backboard, an upper winding mechanism and a lower winding mechanism end to end in sequence. During the connection process, the four strong magnet columns 2 on the backboard of the previous data cable storage device need to be inserted into the connecting holes 12 on the first wire reel 4 and the second wire reel 5 of another data cable storage device. After the connection is completed, the data cables can be wound on the data cable storage devices in sequence. When using the data cables, one of the data cable storage devices can be pulled out from one end, and the fingers simultaneously press the first U-shaped block 7 and the second U-shaped block 11 towards each other. The T-shaped blocks 6 slide along the T-shaped grooves 3, and the first wire reel 4 and the second wire reel 5 approach each other, and the springs 10 are compressed. At this time, since the gaps between the first wire reel 4 and the second wire reel 5 and the data cables increase, the data cables are convenient to remove.
[0022] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variation thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device.
[0023] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A strip storage and transportation structure for anti-knot data cables, including a backplane (1), characterized in that: Four corner positions of the side wall of the back plate (1) are fixedly provided with strong magnet columns (2), and T-shaped grooves (3) are formed in the left and right sides of the other side wall of the back plate (1). An upper winding mechanism and a lower winding mechanism for winding data lines are respectively arranged at the upper and lower positions on one side of the back plate (1). The lower winding mechanism comprises a second wire winding frame (5), T-shaped blocks (6), a first U-shaped block (7) and circular holes (8). The two T-shaped blocks (6) are symmetrically arranged on the left and right sides of the side wall of the second wire winding frame (5). The first U-shaped block (7) is fixedly arranged on the outer wall of the second wire winding frame (5) opposite to the upper winding mechanism. The circular holes (8) are formed at the four corner positions of the top of the second wire winding frame (5). The upper winding mechanism comprises a first wire winding frame (4), lifting columns (9), springs (10), a second U-shaped block (11), connection holes (12) and magnet sleeves (13). The lifting columns (9) are fixedly arranged at the four corner positions of the bottom of the first wire winding frame (4). The springs (10) are sleeved on the outer walls of the lifting columns (9). The second U-shaped block (11) is fixedly arranged on the side wall of the first wire winding frame (4) opposite to the first U-shaped block (7). The connection holes (12) are formed on the left and right sides of the front surface of the first wire winding frame (4). The magnet sleeves (13) are fixedly arranged on the inner walls of the connection holes (12).
2. The strip storage and transfer structure for anti-knot data cables according to claim 1, wherein: Sliders which have the same structure as the T-shaped blocks (6) are fixedly arranged on both sides of the side wall of the first wire winding frame (4) opposite to the back plate (1). The two T-shaped blocks (6) and the two sliders are respectively and slidably connected inside the four T-shaped grooves (3).
3. The strip storage and transfer structure for anti-knot data cable according to claim 1, characterized in that: Connection holes which have the same structure as the connection holes (12) are respectively formed on the left and right sides of the front surface of the second wire winding frame (5), and permanent magnet blocks are fixedly arranged inside the connection holes.
4. The strip storage and transfer structure of an anti-knot data cable according to claim 1, wherein: The four lifting columns (9) are respectively and slidably connected inside the four circular holes (8).
5. The strip storage and transfer structure for anti-knot data cable according to claim 1, characterized in that: Limiting grooves for winding data lines are formed on the outer walls of the first wire winding frame (4) and the second wire winding frame (5), and rubber protective sleeves are fixedly arranged on the inner walls of the limiting grooves.
6. The strip storage and transfer structure for an anti-knot data cable according to claim 1, wherein: The outer diameter of the strong magnet columns (2) is adapted to the inner diameter of the connection holes (12), and the positions of the four strong magnet columns (2) correspond to the four connection holes (12) one by one.