Weak current engineering line wiring auxiliary wiring device
By designing a wiring aid device for low-voltage engineering, the problem of low-voltage cable tangling was solved by using a cable slack and limiting structure, resulting in neat conductors and stable connections, improving the aesthetics of the wiring and the convenience of maintenance, and extending the life of the line.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2026-04-07
AI Technical Summary
Existing low-voltage cables are prone to tangling during installation, affecting aesthetics, increasing maintenance difficulty, and even causing misalignment, thus affecting the lifespan of the line.
A wiring auxiliary device for low-voltage engineering circuits was designed, which includes a junction box, damper, lifting plate, cable management frame, auxiliary wheels and other structures. The device prevents cable tangling through cable management and limiting mechanisms, and effectively compresses and limits the cables through a rubber base and rubber pressure head.
It effectively prevents the conductor cables from tangling during the connection process, ensures neat conductors, improves the aesthetics of the wiring and the convenience of subsequent maintenance, and extends the service life of the line.
Smart Images

Figure CN224097349U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the wiring technical field, specifically is a weak current engineering line wiring auxiliary wiring device. BACKGROUND
[0002] Weak current generally refers to direct current circuit or audio, video line, network line, telephone line, and the alternating voltage connected by weak current is generally within 36V; The signal input of telephone, computer, TV set and other household appliances in household appliances are weak current electrical equipment, and the cable of weak current generally plays a role of signal transmission, and the wiring construction of weak current line needs signal anti-interference treatment, and the wiring of weak current is preferably not in contact with the ground, reduces the transmission effect of weak current cable, and the weak current cable line needs to be replaced when aging, so that the weak current cable needs to be neat during wiring.
[0003] The existing weak current cable is directly wired during wiring, but such wiring can cause subsequent cable entanglement, which not only affects the appearance of wiring, but also brings difficulties to subsequent work, even causes serious consequences of cable connection misplacement, and increases the difficulty of subsequent maintenance or replacement, and affects the service life of the line.
[0004] Therefore, the utility model provides a weak current engineering line wiring auxiliary wiring device. Utility model content
[0005] In order to make up for the deficiency of prior art, solve the problem that most of the existing weak current cable is directly wired during wiring, but such wiring can cause subsequent cable entanglement, which not only affects the appearance of wiring, but also brings difficulties to subsequent work, even causes serious consequences of cable connection misplacement, and increases the difficulty of subsequent maintenance or replacement, and affects the service life of the line, the utility model provides a weak current engineering line wiring auxiliary wiring device.
[0006] The utility model solves the technical scheme that the utility model discloses a weak current engineering line wiring auxiliary wiring device, including the junction box, the surface of one end of the junction box is provided with the through hole, the junction box is provided with the connecting wire away from one end of the through hole, and the one end of the connecting wire is connected with the wire connector, the sidewall of the junction box is provided with the damper, and the outer surface of the damper is equipped with the first spring, the top of the damper is connected with the lifting plate, and the lifting plate is distributed with the wire structure below.
[0007] The sparse line structure includes a first fixing seat mounted on the top end of the lifting plate, a sidewall of the first fixing seat is provided with a micro motor, an output end of the micro motor is connected with a worm, one side of the worm is provided with a gear, a bottom of the gear is connected with a sparse line frame, a wire slot is formed in the middle of the bottom end of the sparse line frame, a sidewall of the sparse line frame is provided with a shaft rod, one end of the shaft rod is provided with a torsional spring, one end of the torsional spring is connected with a stop block, a bottom of the torsional spring is connected with a connecting plate, and one end of the connecting plate is connected with an auxiliary wheel.
[0008] Further, one end of the junction box is provided with a rubber base, a second fixing seat is mounted on the sidewall of one end of the junction box, and a positioning rod penetrates the inside of the second fixing seat.
[0009] Further, a dial is distributed below the positioning rod, and a positioning hole is formed in the surface of the dial, and a threaded rod is connected to the middle of the top end of the dial.
[0010] Further, a threaded sleeve is provided on the outside of the threaded rod, a guide block is mounted on one side of the bottom of the threaded sleeve, a movable plate is connected to the top end of the threaded sleeve, linkage plates are distributed above the movable plate, a pressing rod is mounted in the middle of the bottom end of the linkage plate, a rubber pressure head is connected to the bottom of the pressing rod, and a third spring is provided on the outer surface of the pressing rod.
[0011] Further, the worm and the gear are in meshing connection, and the gears are symmetrically distributed along the vertical center line of the lifting plate.
[0012] Further, the connecting plate is in rotational connection with the sparse line frame through the shaft rod, and the auxiliary wheel is in rotational connection with the connecting plate.
[0013] Further, the threaded rod and the threaded sleeve are in threaded connection through a threaded groove, and the threaded sleeve is symmetrically distributed along the vertical center line of the movable plate.
[0014] The beneficial effects of the utility model are as follows:
[0015] 1. The weak current engineering line wiring auxiliary wiring device, through the damper, the first spring, the lifting plate and the sparse line frame and the like, the subsequent wire can be conveniently connected with the wire connector through the junction box, the wire is effectively treated, the wire is prevented from being too much and being wound, the wire is guided and separated, and the auxiliary wiring purpose is achieved.
[0016] 2.The weak current engineering line wiring auxiliary cabling device, through the threaded rod, the movable plate, the rubber base and the rubber pressure head and the like, can effectively compress and limit the connected wires, thereby preventing the wires from falling off when connected with the wire connector, affecting the electrical connection between the subsequent wires, and being more practical as a whole. BRIEF DESCRIPTION OF DRAWINGS
[0017] The utility model will be further described below in combination with the drawings.
[0018] Figure 1 is the perspective view of the utility model;
[0019] Figure 2 is the side view structure schematic diagram of the lifting plate of the utility model;
[0020] Figure 3 is the bottom view structure schematic diagram of the lifting plate of the utility model;
[0021] Figure 4 is the utility model Figure 3 A place enlarged structure schematic diagram in;
[0022] Figure 5 is the side view structure schematic diagram of the movable plate of the utility model;
[0023] Figure 6 is the partial section structure schematic diagram of the junction box of the utility model;
[0024] Figure 7 is the utility model Figure 6 B place enlarged structure schematic diagram in;
[0025] In the drawing: 1, junction box; 2, through hole; 3, connecting wire; 4, wire connector; 5, damper; 6, first spring; 7, lifting plate; 8, first fixed seat; 9, micro motor; 10, worm; 11, gear; 12, wire spacing frame; 13, wire slot; 14, shaft; 15, torsional spring; 16, stop block; 17, connecting plate; 18, auxiliary wheel; 19, rubber base; 20, second fixed seat; 21, positioning rod; 22, second spring; 23, pulley; 24, positioning hole; 25, threaded rod; 26, threaded sleeve; 27, guide block; 28, movable plate; 29, linkage plate; 30, pressing rod; 31, rubber pressure head; 32, third spring. DETAILED DESCRIPTION
[0026] In order to make the technical means, creative features, purposes and effects realized by the utility model easy to understand, the utility model will be further described below in combination with the specific implementation mode.
[0027] Example one:
[0028] As Figures 1 to 7 The utility model relates to a weak current engineering line wiring auxiliary wiring device, including junction box 1, the junction box 1 one end surface is seted up and is equipped with the through hole 2, the junction box 1 is seted up and is equipped with the connecting wire 3 away from the through hole 2 one end, and the connecting wire 3 one end is connected with wire joint 4, the sidewall of junction box 1 is equipped with damper 5, and the outer surface of damper 5 is equipped with first spring 6, the top of damper 5 is connected with lifting plate 7, and the below of lifting plate 7 is distributed with loose line structure,
[0029] The loose line structure includes the first fixed seat 8 of installation in the top of lifting plate 7, and the sidewall of first fixed seat 8 is equipped with micro motor 9, the output of micro motor 9 is connected with worm 10, and one side of worm 10 is distributed with gear 11, the bottom of gear 11 is connected with loose line frame 12, and the bottom end middle part of loose line frame 12 is seted up and is equipped with wire slot 13, the sidewall of loose line frame 12 is equipped with shaft 14, and one end outside of shaft 14 is equipped with torsional spring 15, one end of torsional spring 15 is connected with stopper 16, the bottom of torsional spring 15 is connected with connecting plate 17, and one end inside of connecting plate 17 is connected with auxiliary wheel 18;
[0030] When the wire is input to the inside of the terminal box 1, the wire first passes through the wire slot 13 at the bottom of the wire frame 12 and passes through the wire frame 12 symmetrically arranged on both sides. The wire frame 12 can effectively separate the wire, thereby preventing the wire from being entangled when it passes through the inside of the terminal box 1. When the wire passes through the wire frame 12, the distance between the wire frame 12 and the terminal box 1 is limited. When the size of the wire is greater than the distance between the wire frame 12 and the terminal box 1, the wire will push the wire frame 12 vertically. At this time, the wire frame 12 pushes the lifting plate 7 connected to the top end vertically, and the vertical movement of the lifting plate 7 drives the damper 5 and the first spring 6 to deform. The reverse force generated by the deformation of the damper 5 and the first spring 6 can compress and position the wire. When the wire passes through the wire frame 12, the auxiliary wheel 18 and the connecting plate 17 are rotationally connected. The symmetrically arranged auxiliary wheel 18 can assist in conveying the wire. In order to better assist in conveying the wire, the auxiliary wheel 18 drives the connecting plate 17 to rotate around the sidewall of the wire frame 12 through the shaft 14. When the shaft 14 rotates, the torsional spring 15 deforms. The reverse force generated by the deformation of the torsional spring 15 can make the connecting plate 17 on both sides drive the auxiliary wheel 18 to better contact the wire, thereby facilitating subsequent auxiliary conveying. When it is necessary to adjust the angle of the wire frame 12 to prevent the wire from being entangled, the micro motor 9 drives the worm 10 connected to the output end to rotate. Since the worm 10 and the gear 11 are meshingly connected, the rotation of the worm 10 can conveniently rotate the gear 11. The rotation of the gear 11 can adjust the angle of the wire frame 12, thereby facilitating subsequent wire separation.
[0031] Further, the inside of one end of the terminal box 1 is provided with a rubber base 19, and the sidewall of one end of the terminal box 1 is provided with a second fixing seat 20. The inside of the second fixing seat 20 penetrates a positioning rod 21, and the outer surface of the positioning rod 21 is provided with a second spring 22.
[0032] When the wire extends through the inside of the terminal box 1 and is connected to the wire connector 4 at the other end of the terminal box 1, the wire contacts the rubber base 19, and the rubber base 19 assists in supporting the wire. Then, the positioning rod 21 is actuated. At this time, the longitudinal movement of the positioning rod 21 drives the second spring 22 to deform, thereby facilitating the longitudinal movement of the positioning rod 21.
[0033] Further, the lower part of the positioning rod 21 is provided with a dial 23, and the surface of the dial 23 is provided with a positioning hole 24, and the middle part of the top end of the dial 23 is connected with a threaded rod 25;
[0034] When working, the dial 23 rotates to drive the threaded rod 25 connected with the middle part of the top end to rotate, so as to facilitate the subsequent longitudinal movement of the threaded sleeve 26, and when the positioning rod 21 is input into the inside of the positioning hole 24, the positioning of the dial 23 can be facilitated.
[0035] Further, the outer side of the threaded rod 25 is sleeved with a threaded sleeve 26, and the bottom side of the threaded sleeve 26 is provided with a guide block 27, and the top end of the threaded sleeve 26 is connected with a movable plate 28, and the upper part of the movable plate 28 is provided with a linkage plate 29, and the bottom end of the linkage plate 29 is provided with a pressing rod 30, and the bottom end of the pressing rod 30 is connected with a rubber pressure head 31, and the outer surface of the pressing rod 30 is sleeved with a third spring 32;
[0036] When working, since the threaded sleeve 26 and the threaded rod 25 are in threaded connection, when the threaded rod 25 rotates, the threaded sleeve 26 will move longitudinally, at this time, the longitudinal movement of the threaded sleeve 26 drives the movable plate 28 to move longitudinally, and then the movable plate 28 drives the linkage plate 29 to move synchronously, and then the linkage plate 29 pushes the pressing rod 30 connected with the bottom end longitudinally, so that the pressing rod 30 pushes the rubber pressure head 31 to contact the surface of the wire, at this time, the wire pushes the rubber pressure head 31 in the opposite direction, and the movement of the rubber pressure head 31 will deform the third spring 32 at the same time, and when the third spring 32 is deformed to the extreme, it will cooperate with the rubber base 19 to effectively clamp and limit the wire.
[0037] Further, the worm 10 and the gear 11 are in meshing connection, and the gear 11 is symmetrically distributed along the vertical center line of the lifting plate 7;
[0038] When working, since the worm 10 and the gear 11 are in meshing connection, when the worm 10 rotates, the gear 11 can be conveniently rotated.
[0039] Further, the connecting plate 17 is in rotational connection between the shaft rod 14 and the wire spacing frame 12, and the auxiliary wheel 18 is in rotational connection with the connecting plate 17;
[0040] When working, the auxiliary wheel 18 is pushed by the wire to drive the connecting plate 17 to move, at this time, the movement of the connecting plate 17 drives the shaft rod 14 to rotate along the wire spacing frame 12, so as to facilitate the deformation of the torsional spring 15.
[0041] Furthermore, the threaded rod 25 and the threaded sleeve 26 are connected by threaded grooves, and the threaded sleeve 26 is symmetrically distributed along the vertical center line of the movable plate 28.
[0042] When the threaded rod 25 rotates, it will drive the threaded sleeve 26 connected to its outer surface to move longitudinally, thereby realizing the longitudinal movement of the movable plate 28 by utilizing the longitudinal movement of the threaded sleeve 26.
[0043] Specific working principle:
[0044] When the wire is fed into the inside of the junction box 1, it first passes through the wire groove 13 at the bottom of the wire guide frame 12 and then through the wire guide frames 12 symmetrically arranged on both sides. The wire guide frames 12 effectively loosen the wire, preventing it from tangling during subsequent connections inside the junction box 1. Simultaneously, because the distance between the wire guide frame 12 and the junction box 1 is limited, if the wire's size exceeds this distance, it will push the wire guide frame 12 longitudinally. This, in turn, pushes the lifting plate 7 connected to its top, thereby using the longitudinal movement of the lifting plate 7 to drive the damper 5 and the first spring. Spring 6 deforms accordingly. Combined with the damper 5 and the reverse force generated by the deformation of the first spring 6, the wire guide frame 12 can clamp and limit the wire. Simultaneously, as the wire passes through the wire guide frame 12, the auxiliary wheel 18 and the connecting plate 17 form a rotational connection. Therefore, the symmetrically arranged auxiliary wheels 18 can assist in the wire transport. To better assist in the wire transport, the auxiliary wheels 18, under the action of the wire, will drive the connecting plate 17 to rotate around the side wall of the wire guide frame 12 via the shaft 14. The rotation of the shaft 14 will cause the torsion spring 15 to deform accordingly. Combined with the reverse force generated by the deformation of the torsion spring 15, the connecting plates 17 on both sides can drive the auxiliary wheels 18 to better contact the wire, facilitating subsequent... It performs auxiliary conveying processing. When it is necessary to adjust the angle of the wire feeding frame 12 to prevent the wires from tangling, the micro motor 9 works to rotate the worm gear 10 connected to its output end. Since the worm gear 10 and the gear 11 are meshed, the rotation of the worm gear 10 can facilitate the subsequent rotation of the gear 11. This allows for the adjustment of the angle of the wire feeding frame 12, facilitating better wire feeding processing. When the wire passes through the inner side of the junction box 1 and extends to the inner side of the other end of the junction box 1 to connect with the wire connector 4, the wire will contact the rubber base 19. The rubber base 19 then provides auxiliary support for the wire. Subsequently, the positioning rod 21 is moved, and at this time, the positioning rod 21 moves longitudinally along... The second fixed seat 20 then moves longitudinally. At this time, the longitudinal movement of the positioning rod 21 causes the deformation of the second spring 22, facilitating the longitudinal movement of the positioning rod 21. The positioning rod 21 then disengages from the inner side of the positioning hole 24. Subsequently, the rotation of the dial wheel 23 causes the threaded rod 25 to rotate. Since the threaded sleeve 26 and the threaded rod 25 form a threaded connection, the rotation of the threaded rod 25 causes the threaded sleeve 26 to move longitudinally. This longitudinal movement of the threaded sleeve 26 drives the movable plate 28 to move longitudinally as well. Then, the movable plate 28 drives the linkage plate 29 to move synchronously. The linkage plate 29 then longitudinally pushes the lower pressure rod 30 connected to its bottom, which in turn pushes the rubber pressure head 31, causing it to contact the surface of the wire.At this time, the wire pushes the rubber pressure head 31 in the opposite direction. Simultaneously, the movement of the rubber pressure head 31 causes the third spring 32 to deform. When the third spring 32 deforms to its maximum extent, it works in conjunction with the rubber base 19 to effectively clamp and limit the wire.
[0045] The terms "front," "back," "left," "right," "top," and "bottom" all refer to the figures in the accompanying drawings. Figure 1 Based on the perspective of the observer, the side of the device facing the observer is defined as the front, the left side of the observer is defined as the left, and so on.
[0046] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting the scope of protection of this utility model.
[0047] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A wiring auxiliary device for low-voltage engineering circuits, characterized in that, The device includes a junction box (1), characterized in that: a through hole (2) is provided on one end surface of the junction box (1), a connecting wire (3) is provided on the end of the junction box (1) away from the through hole (2), and a wire connector (4) is connected to one end of the connecting wire (3), a damper (5) is provided in the side wall of the junction box (1), and a first spring (6) is sleeved on the outer surface of the damper (5), a lifting plate (7) is connected to the top of the damper (5), and a wire distribution structure is distributed below the lifting plate (7); The wire feeding structure includes a first fixed seat (8) installed on the top of the lifting plate (7), and a micro motor (9) is installed on the side wall of the first fixed seat (8). The output end of the micro motor (9) is connected to a worm gear (10), and a gear (11) is distributed on one side of the worm gear (10). A wire feeding frame (12) is connected to the bottom of the gear (11), and a wire groove (13) is opened in the middle of the bottom end of the wire feeding frame (12). A shaft (14) is installed on the side wall of the wire feeding frame (12), and a torsion spring (15) is sleeved on the outer side of one end of the shaft (14). A stop block (16) is connected to one end of the torsion spring (15), and a connecting plate (17) is connected to the bottom of the torsion spring (15). An auxiliary wheel (18) is connected to the inner side of one end of the connecting plate (17).
2. The auxiliary wiring device for low-voltage engineering lines according to claim 1, characterized in that, A rubber base (19) is provided on the inner side of one end of the junction box (1), a second fixing seat (20) is installed on the side wall of one end of the junction box (1), and a positioning rod (21) passes through the inner side of the second fixing seat (20), and a second spring (22) is sleeved on the outer surface of the positioning rod (21).
3. The auxiliary wiring device for low-voltage engineering lines according to claim 2, characterized in that, A dial wheel (23) is distributed below the positioning rod (21), and a positioning hole (24) is provided on the surface of the dial wheel (23). A threaded rod (25) is connected to the top center of the dial wheel (23).
4. The auxiliary wiring device for low-voltage engineering lines according to claim 3, characterized in that, The threaded rod (25) is fitted with a threaded sleeve (26) on its outer side, and a guide block (27) is installed on one side of the bottom of the threaded sleeve (26). The top of the threaded sleeve (26) is connected to a movable plate (28), and a linkage plate (29) is distributed above the movable plate (28). A pressure rod (30) is installed in the middle of the bottom end of the linkage plate (29), and a rubber pressure head (31) is connected to the bottom of the pressure rod (30). A third spring (32) is fitted on the outer surface of the pressure rod (30).
5. The auxiliary wiring device for low-voltage engineering lines according to claim 1, characterized in that, The worm (10) and the gear (11) are meshed together, and the gear (11) is symmetrically distributed along the vertical center line of the lifting plate (7).
6. The auxiliary wiring device for low-voltage engineering lines according to claim 1, characterized in that, The connecting plate (17) is rotatably connected to the wire frame (12) via the shaft (14), and the auxiliary wheel (18) is rotatably connected to the connecting plate (17).
7. The auxiliary wiring device for low-voltage engineering lines according to claim 4, characterized in that, The threaded rod (25) and the threaded sleeve (26) are connected by a threaded groove, and the threaded sleeve (26) is symmetrically distributed along the vertical center line of the movable plate (28).