Adjustable small wire winder
By designing an adjustable small disc cable, the synchronous rotation and multi-layer ring disc set are used to solve the problem of easy sliding and repeated winding of cables when wound, achieving convenient cable storage effect.
Patent Information
- Application Number
- CN202422010464.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-20
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-08-20
AI Technical Summary
In the prior art, the outermost cable is prone to slip when wound to the reel and needs to be repeatedly wound to match the cable tray, increasing the operation complexity.
An adjustable small disc wire mesh is designed. By setting the base, lower disc, spindle, upper disc and multi-layer ring disc, the blocking range of cables is expanded by using synchronous rotation and ring disc set, and the situation of repeated winding is reduced.
It effectively reduces the repeated winding of cables, simplifies the cable storage process, and improves the convenience and efficiency of operation.
Smart Images

Figure CN222907197U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wire winders, in particular to an adjustable small wire winder. Background Art
[0002] At present, in order to facilitate carrying and deployment during storage or transportation of cables, they are usually wound around a wire winder, which can not only reduce the storage volume of the cables, but also prevent the cables from being easily tangled.
[0003] A Chinese patent with the authorization announcement number CN211419181U designed in the related art provides a cable reel, which includes a supporting chassis. A first support rod and a second support rod are fixedly arranged on the supporting chassis. A first disc is rotatably arranged on the first support rod, and a second disc is rotatably arranged on the second support rod. The first disc and the second disc are arranged opposite to each other. A drum is fixedly arranged between the first disc and the second disc. The diameters of the first disc and the second disc are both larger than the diameter of the drum. When the first disc, the second disc and the drum rotate synchronously, the cable is wound around the drum, and the first disc and the second disc block the cable to reduce the situation of the cable slipping, achieving the effect of cable storage.
[0004] In the process of implementing the present application, the inventor found that there are at least the following problems in this technology: during the process of winding the cable around the drum, the outermost layer of the cable may exceed the outer edges of the first disc and the second disc, resulting in the cable exceeding the outer edges of the first disc and the second disc being easily slipped off the drum. If the cable is wound too loosely, the cable on the drum needs to be unwound and rewound. If the cable is too long or too thick, the cable needs to be rewound onto a cable reel with a matching size, resulting in repeated winding during the cable storage process and increasing the complexity of the cable storage operation. Summary of the Utility Model
[0005] In order to reduce the situation of repeatedly winding the cable and achieve the effect of facilitating cable storage, the present application provides an adjustable small wire winder.
[0006] The adjustable small wire winder provided by the present application adopts the following technical solution:
[0007] An adjustable small wire winder includes a base, a lower disc is rotatably arranged on the base, a main shaft is fixedly arranged on the lower disc, an upper disc is fixedly arranged at the top of the main shaft, inner ring discs are sleeved on both the lower disc and the upper disc, the lower disc and the upper disc are detachably connected to the inner ring discs, a middle ring disc is sleeved on the inner ring discs, the inner ring discs are detachably connected to the middle ring disc, an outer ring disc is sleeved on the middle ring disc, and the middle ring disc is detachably connected to the outer ring disc.
[0008] By adopting the above technical solution, one end of the cable is bolted to the main shaft. Through the synchronous rotation of the upper disk and the lower disk of the main shaft, the cable is wound and unwound on the main shaft. During the process of winding the cable around the main shaft, when the outermost cable exceeds the outer edges of the upper disk and the lower disk, inner ring disks are sleeved and installed on the outer sides of the upper disk and the lower disk. When the outermost cable exceeds the outer edge of the inner ring disk, an intermediate ring disk is sleeved and installed on the outer side of the inner ring disk. When the outermost cable exceeds the outer edge of the intermediate ring disk, an outer ring disk is sleeved and installed on the outer side of the intermediate ring disk. Thus, by sequentially sleeving the inner ring disk, the intermediate ring disk, and the outer ring disk, the range of blocking the cable is expanded, the situation of repeatedly winding the cable is reduced, and the effect of facilitating cable storage is achieved.
[0009] Preferably, the inner ring disk includes a set of inner half rings. The outer ring walls of the lower disk and the upper disk are detachably connected to the inner ring walls of the inner half rings. The intermediate ring disk includes a set of intermediate half rings. The outer ring walls of the inner half rings are detachably connected to the inner ring walls of the intermediate half rings. The outer ring disk includes a set of outer half rings. The outer ring walls of the intermediate half rings are detachably connected to the inner ring walls of the outer half rings.
[0010] By adopting the above technical solution, when the outermost cable exceeds the outer edges of the upper disk and the lower disk, a set of inner half rings are installed on the outer sides of the upper disk and the lower disk, and the inner half rings are spliced to form the inner ring disk. When the outermost cable exceeds the outer edge of the inner ring disk, intermediate half rings are installed on the outer sides of the inner half rings, and the intermediate half rings are spliced to form the intermediate ring disk. When the outermost cable exceeds the outer edge of the intermediate ring disk, outer half rings are installed on the outer sides of the intermediate half rings, and the outer half rings are spliced to form the outer ring disk.
[0011] Preferably, receiving ring grooves are provided on the outer ring walls of the lower disk, the upper disk, the outer ring walls of the inner half rings, the outer ring walls of the intermediate half rings, and the outer ring walls of the outer half rings. Receiving plates are fixedly provided on the inner ring walls of the inner half rings, the inner ring walls of the intermediate half rings, and the inner ring walls of the outer half rings. The receiving plates are inserted into the receiving ring grooves.
[0012] By adopting the above technical solution, when the receiving plate on the inner half ring is inserted into the receiving ring groove on the outer side of the upper disk, the inner half ring is installed on the outer side of the upper disk. When the receiving plate on the inner half ring is inserted into the receiving ring groove on the outer side of the lower disk, the inner half ring is installed on the outer side of the lower disk. When the receiving plate on the intermediate half ring is inserted into the receiving ring groove on the outer side of the inner half ring, the intermediate half ring is installed on the outer side of the inner half ring. When the receiving plate on the outer half ring is inserted into the receiving ring groove on the outer side of the intermediate half ring, the outer half ring is installed on the outer side of the intermediate half ring.
[0013] Preferably, insertion blocks are fixedly provided at one ends of the inner half rings, the intermediate half rings, and the outer half rings. Insertion slots are provided at the other ends of the inner half rings, the intermediate half rings, and the outer half rings. The insertion blocks are inserted into the insertion slots.
[0014] By adopting the above technical solution, when the insertion blocks on a group of inner half-rings are inserted into the insertion slots, the inner half-rings are spliced to form an inner ring plate. When the insertion blocks on a group of middle half-rings are inserted into the insertion slots, the middle half-rings are spliced to form a middle ring plate. When the insertion blocks on a group of outer half-rings are inserted into the insertion slots, the outer half-rings are spliced to form an outer ring plate.
[0015] Preferably, a locking groove is penetrated and opened on the insertion slot, a locking screw is inserted into the locking groove, the locking screw is threadedly connected with the locking groove, a locking knob is fixedly arranged at one end of the locking screw outside the locking groove, a locking end is arranged at one end of the locking screw inside the insertion slot, the diameter of the locking end is larger than the diameter of the locking hole, a locking hole is penetrated and opened on the insertion block, and the locking end and the locking screw are inserted into the locking hole.
[0016] By adopting the above technical solution, after the insertion block is inserted into the insertion slot, rotate the locking knob, the locking knob drives the locking screw to rotate, the locking screw moves along the locking groove, so that the locking screw drives the locking end to be inserted into the locking hole, and the insertion block is clamped in the insertion slot.
[0017] Preferably, a plurality of weight-reducing holes are opened on the upper disk, the lower disk, the inner half-ring, the middle half-ring and the outer half-ring.
[0018] By adopting the above technical solution, the weights of the upper disk, the lower disk, the inner half-ring, the middle half-ring and the outer half-ring are reduced, thereby reducing the weight of the wire coiler and facilitating the staff to move the wire coiler.
[0019] Preferably, an installation groove is opened at the top of the base, an installation shaft is rotatably arranged in the installation groove, the top of the installation shaft is fixedly connected with the bottom of the lower disk, and a ball bearing is arranged between the outer wall of the installation shaft and the inner wall of the installation groove.
[0020] By adopting the above technical solution, the ball bearing reduces the friction between the installation groove and the installation shaft, and facilitates the relative rotation between the base and the lower disk.
[0021] Preferably, a plurality of inclined rods are fixedly arranged on the side wall of the main shaft, a vertical rod is fixedly arranged at one end of the inclined rod away from the main shaft, and the bottom end of the vertical rod is fixedly connected with the top of the lower disk.
[0022] By adopting the above technical solution, the cable is bent and hung on the inclined rods and the vertical rods, so that the cable is bolted to the main shaft together.
[0023] In summary, the present application includes at least one of the following beneficial technical effects:
[0024] 1. By setting a base, a lower disk, a main shaft, an upper disk, an inner ring disk, an intermediate ring disk and an outer ring disk, the situation of repeatedly winding the cable is reduced, achieving the effect of facilitating the storage of the cable;
[0025] 2. By setting weight-reducing holes, the weight of the cable winder is reduced;
[0026] 3. By setting an installation groove, an installation shaft and a ball bearing, it is convenient for the base and the lower disk to rotate relative to each other. Description of the Drawings
[0027] Figure 1 is a schematic structural diagram of an adjustable small cable winder in an embodiment of the present application.
[0028] Figure 2 is a cross-sectional view showing the connection relationship between the installation shaft and the installation groove in an embodiment of the present application.
[0029] Figure 3 is a schematic diagram showing the positional relationship between the inner ring disk and the outer ring disk in an embodiment of the present application.
[0030] Figure 4 is a cross-sectional view showing the connection relationship between the lower disk and the inner half-ring in an embodiment of the present application.
[0031] Figure 5 is a cross-sectional view showing the connection relationship between the upper disk and the inner half-ring in an embodiment of the present application.
[0032] Figure 6 is a cross-sectional view showing the connection relationship between the intermediate half-ring and the inner half-ring in an embodiment of the present application.
[0033] Figure 7 is a cross-sectional view showing the connection relationship between the intermediate half-ring and the outer half-ring in an embodiment of the present application.
[0034] Figure 8 is a cross-sectional view showing the connection relationship between the plug-in block and the locking screw in an embodiment of the present application.
[0035] Description of the Reference Numerals: 1, base; 11, main shaft; 12, lower disk; 13, upper disk; 14, inclined rod; 15, vertical rod; 2, inner ring disk; 21, inner half-ring; 3, intermediate ring disk; 31, intermediate half-ring; 4, outer ring disk; 41, outer half-ring; 5, receiving ring groove; 51, receiving plate; 6, plug-in groove; 61, plug-in block; 7, locking screw; 71, locking groove; 72, locking knob; 73, locking end; 74, locking hole; 8, weight-reducing hole; 9, installation shaft; 91, installation groove; 92, ball bearing. Detailed Description of the Embodiment
[0036] The following is a further detailed description of the present application in conjunction with the attached Figure 1-8 drawings.
[0037] An embodiment of the present application discloses a cross-sectional view of an adjustable small wire winder. Refer to Figures 1 to 3 , including a base 1. An installation groove 91 is formed at the top of the base 1. An installation shaft 9 is rotatably arranged in the installation groove 91. A ball bearing 92 is installed between the outer wall of the installation shaft 9 and the inner wall of the installation groove 91. The ball bearing 92 reduces the friction between the installation groove 91 and the installation shaft 9. A plurality of inclined rods 14 are welded to the side wall of the main shaft 11. The inclined rods 14 are circumferentially arranged around the axis of the main shaft 11. One end of the inclined rod 14 away from the main shaft 11 is welded to a vertical rod 15. The bottom end of the vertical rod 15 is welded to the top of the lower disk 12. The installation shaft 9 is welded to the top of the lower disk 12. The main shaft 11 is welded to the top of the lower disk 12. The main shaft 11 is welded to the top of the upper disk 13. The installation shaft 9, the lower disk 12, the main shaft 11 and the upper disk 13 are coaxially arranged. Inner ring disks 2 are sleeved on both the lower disk 12 and the upper disk 13. The lower disk 12 and the upper disk 13 are detachably connected to the inner ring disks 2. An intermediate ring disk 3 is sleeved on the inner ring disk 2. The inner ring disk 2 is detachably connected to the intermediate ring disk 3. An outer ring disk 4 is sleeved on the intermediate ring disk 3. The intermediate ring disk 3 is detachably connected to the outer ring disk 4. The cable is bent and hung on the inclined rods 14 and the vertical rods 15, so that the cable is bolted to the main shaft 11. By synchronously rotating the installation shaft 9, the upper disk 13, the main shaft 11 and the lower disk 12, the cable is wound and unwound on the main shaft 11. During the process of winding the cable around the main shaft 11, when the outermost cable exceeds the outer edges of the upper disk 13 and the lower disk 12, inner ring disks 2 are sleeved on the outsides of the upper disk 13 and the lower disk 12; when the outermost cable exceeds the outer edge of the inner ring disk 2, an intermediate ring disk 3 is sleeved on the outside of the inner ring disk 2; when the outermost cable exceeds the outer edge of the intermediate ring disk 3, an outer ring disk 4 is sleeved on the outside of the intermediate ring disk 3. Thus, by sequentially sleeving the inner ring disk 2, the intermediate ring disk 3 and the outer ring disk 4, the range of blocking the cable is expanded. The situation of repeatedly winding the cable is reduced, achieving the effect of facilitating cable storage.
[0038] In order to facilitate expanding the cable blocking range, refer to Figures 1 to 7, the inner ring disc 2 includes a set of inner half-rings 21, and the inner half-rings 21 are spliced to form the inner ring disc 2. The middle ring disc 3 includes a set of middle half-rings 31, and the middle half-rings 31 are spliced to form the middle ring disc 3. The outer ring disc 4 includes a set of outer half-rings 41, and the outer half-rings 41 are spliced to form the outer ring disc 4. The outer ring walls of the lower disc 12, the upper disc 13, the inner half-rings 21, the middle half-rings 31, and the outer half-rings 41 are all provided with receiving ring grooves 5, and the inner ring walls of the inner half-rings 21, the middle half-rings 31, and the outer half-rings 41 are all fixedly provided with receiving plates 51, and the receiving plates 51 are inserted into the receiving ring grooves 5. When the receiving plate 51 on the inner half-ring 21 is inserted into the receiving ring groove 5 on the outside of the upper disc 13, the inner half-ring 21 is installed on the outside of the upper disc 13, and the inner ring wall of the inner half-ring 21 is attached to the outer ring wall of the upper disc 13. When the receiving plate 51 on the inner half-ring 21 is inserted into the receiving ring groove 5 on the outside of the lower disc 12, the inner half-ring 21 is installed on the outside of the lower disc 12, and the inner ring wall of the inner half-ring 21 is attached to the outer ring wall of the lower disc 12. When the receiving plate 51 on the middle half-ring 31 is inserted into the receiving ring groove 5 on the outside of the inner half-ring 21, the middle half-ring 31 is installed on the outside of the inner half-ring 21, and the inner ring wall of the middle half-ring 31 is attached to the outer ring wall of the inner half-ring 21. When the receiving plate 51 on the outer half-ring 41 is inserted into the receiving ring groove 5 on the outside of the middle half-ring 31, the outer half-ring 41 is installed on the outside of the middle half-ring 31. And the inner ring wall of the outer half-ring 41 is attached to the outer ring wall of the middle half-ring 31. When the outermost cable extends beyond the outer edges of the upper disc 13 and the lower disc 12, a set of inner half-rings 21 are installed on the outside of the upper disc 13 and the lower disc 12, so that the inner half-rings 21 are spliced to form the inner ring disc 2; when the outermost cable extends beyond the outer edge of the inner ring disc 2, the middle half-rings 31 are installed on the outside of the inner half-rings 21, so that the middle half-rings 31 are spliced to form the middle ring disc 3; when the outermost cable extends beyond the outer edge of the middle ring disc 3, the outer half-rings 41 are installed on the outside of the middle half-rings 31, so that the outer half-rings 41 are spliced to form the outer ring disc 4; thus, the inner ring disc 2, the middle ring disc 3, and the outer ring disc 4 are sleeved in sequence.
[0039] Refer to Figures 4 to 8, a socket groove 6 is provided at one end of the inner half ring 21, one end of the middle half ring 31, and one end of the outer half ring 41. A locking groove 71 is provided through the socket groove 6. A locking screw 7 is inserted into the locking groove 71, and the locking screw 7 is threadedly connected to the locking groove 71. A locking knob 72 is installed at one end of the locking screw 7 outside the locking groove 71, and a locking end 73 is installed at one end of the locking screw 7 inside the socket groove 6. The diameter of the locking end 73 is larger than the diameter of the locking hole 74. Plug blocks 61 are installed at the other ends of the inner half ring 21, the middle half ring 31, and the outer half ring 41. The socket groove 6 is for the plug block 61 to be inserted. A locking hole 74 is provided through the plug block 61, and the locking hole 74 is for the locking end 73 and the locking screw 7 to be inserted. After the plug block 61 is inserted into the socket groove 6, rotate the locking knob 72. The locking knob 72 drives the locking screw 7 to rotate, and the locking screw 7 moves along the locking groove 71, so that the locking screw 7 drives the locking end 73 to be inserted into the locking hole 74, and the plug block 61 is clamped in the socket groove 6. When the plug blocks 61 on a group of inner half rings 21 are clamped with the socket grooves 6, the inner half rings 21 are spliced to form an inner ring plate 2. When the plug blocks 61 on a group of middle half rings 31 are clamped with the socket grooves 6, the middle half rings 31 are spliced to form a middle ring plate 3. When the plug blocks 61 on a group of outer half rings 41 are clamped with the socket grooves 6, the outer half rings 41 are spliced to form an outer ring plate 4.
[0040] In order to reduce the weight of the wire winder, refer to Figures 3 to 5 , a plurality of weight-reducing holes 8 are provided on the upper disk 13, the lower disk 12, the inner half ring 21, the middle half ring 31, and the outer half ring 41. The weights of the upper disk 13, the lower disk 12, the inner half ring 21, the middle half ring 31, and the outer half ring 41 are reduced, thereby reducing the weight of the wire winder and facilitating the staff to move the wire winder.
[0041] The implementation principle of an adjustable small wire winder in an embodiment of the present application is as follows: Bend the cable and hang it on the inclined rod 14 and the vertical rod 15, so that the cable is bolted to the main shaft 11. By synchronously rotating the mounting shaft 9, the upper disk 13, the main shaft 11, and the lower disk 12, the cable is wound and unwound on the main shaft 11. During the process of winding the cable around the main shaft 11, when the outermost cable exceeds the outer edges of the upper disk 13 and the lower disk 12, an inner ring plate 2 is sleeved and installed on the outsides of the upper disk 13 and the lower disk 12; when the outermost cable exceeds the outer edge of the inner ring plate 2, a middle ring plate 3 is sleeved and installed on the outside of the inner ring plate 2; when the outermost cable exceeds the outer edge of the middle ring plate 3, an outer ring plate 4 is sleeved and installed on the outside of the middle ring plate 3. Thus, by sequentially sleeving the inner ring plate 2, the middle ring plate 3, and the outer ring plate 4, the range of blocking the cable is expanded. The situation of repeatedly winding the cable is reduced, and the effect of facilitating cable storage is achieved.
[0042] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application shall be covered within the protection scope of the present application.
Claims
1. An adjustable small cable reel, comprising a base (1), a lower disc (12) rotatably arranged on the base (1), a main shaft (11) fixedly arranged on the lower disc (12), an upper disc (13) fixedly arranged on the top of the main shaft (11), characterized in that: The lower plate (12) and the upper plate (13) are both sleeved with an inner ring plate (2), and the lower plate (12) and the upper plate (13) are both detachably connected to the inner ring plate (2). The inner ring plate (2) is sleeved with an intermediate ring plate (3), and the inner ring plate (2) and the intermediate ring plate (3) are detachably connected. The intermediate ring plate (3) is sleeved with an outer ring plate (4), and the intermediate ring plate (3) and the outer ring plate (4) are detachably connected.
2. The adjustable small cable reel according to claim 1, characterized in that: The inner ring disk (2) comprises a group of inner half rings (21), the outer ring wall of the lower disk (12) and the outer ring wall of the upper disk (13) are both detachably connected to the inner ring wall of the inner half ring (21); the middle ring disk (3) comprises a group of middle half rings (31), the outer ring wall of the inner half ring (21) is detachably connected to the inner ring wall of the middle half ring (31); and the outer ring disk (4) comprises a group of outer half rings (41), the outer ring wall of the middle half ring (31) is detachably connected to the inner ring wall of the outer half ring (41).
3. The adjustable small cable reel according to claim 2, characterized in that: The outer ring wall of the lower plate (12), the outer ring wall of the upper plate (13), the outer ring wall of the inner half ring (21), the outer ring wall of the middle half ring (31) and the outer ring wall of the outer half ring (41) are all provided with receiving ring grooves (5); the inner ring wall of the inner half ring (21), the inner ring wall of the middle half ring (31) and the inner ring wall of the outer half ring (41) are all fixedly provided with receiving plates (51); the receiving ring grooves (5) are used for inserting the receiving plates (51).
4. The adjustable small cable reel according to claim 3, characterized in that: A plug-in block (61) is fixedly arranged at one end of the inner semi-ring (21), one end of the middle semi-ring (31) and one end of the outer semi-ring (41); a plug-in groove (6) is provided at the other end of the inner semi-ring (21), the other end of the middle semi-ring (31) and the other end of the outer semi-ring (41); and the plug-in groove (6) is used for plugging the plug-in block (61).
5. The adjustable small cable reel according to claim 4, characterized in that: The plug-in slot (6) is provided with a locking slot (71) through which a locking screw (7) is inserted. The locking screw (7) is threadedly connected to the locking slot (71). A locking knob (72) is fixedly provided at one end of the locking screw (7) located outside the locking slot (71). A locking end (73) is provided at one end of the locking screw (7) located inside the plug-in slot (6). The diameter of the locking end (73) is larger than the diameter of the locking hole (74). The plug-in block (61) is provided with a locking hole (74) through which the locking end (73) and the locking screw (7) are inserted.
6. The adjustable small cable reel according to claim 2, characterized in that: A plurality of weight-reducing holes (8) are provided on the upper plate (13), the lower plate (12), the inner semi-ring (21), the middle semi-ring (31) and the outer semi-ring (41).
7. The adjustable small cable reel according to claim 1, characterized in that: The top of the base (1) is provided with a mounting groove (91), in which a mounting shaft (9) is rotatably arranged, the top of the mounting shaft (9) is fixedly connected to the bottom of the lower plate (12), and a ball bearing (92) is arranged between the outer wall of the mounting shaft (9) and the inner wall of the mounting groove (91).
8. The adjustable small cable reel according to claim 1, characterized in that: A plurality of oblique rods (14) are fixedly arranged on the side wall of the main shaft (11); a vertical rod (15) is fixedly arranged at one end of the oblique rod (14) away from the main shaft (11); and the bottom end of the vertical rod (15) is fixedly connected to the top of the lower plate (12).
Citation Information
Patent Citations
Cable drum
CN211419181U