Power line storage structure for industrial fan

The tubular housing with sliding slots and retractable line hooks with magnetic retention addresses cord tangling and clutter issues in industrial fans, ensuring organized and safe power cord management.

CN223102404UActive Publication Date: 2025-07-15张菊花
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Patent Information

Application Number
CN202422358895.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2025-07-15
Estimated Expiration
2034-09-26

AI Technical Summary

Technical Problem

The power cord of industrial fans is prone to tangle and mess during transportation and use, which affects the tidyness of the transportation and use environment and poses a risk of tripping workers.

Method used

A power cord storage structure for industrial fans is designed, including a cylindrical shell, a sliding groove, a wire retracting slide, a first and second wire hooks and a positioning member. Through the coordination of the sliding groove and a positioning magnet, the power cord can be flexible and stable.

Benefits of technology

It realizes convenient storage of power cords, improves cleanliness during transportation and use, reduces the risk of tripping, and ensures the stability of power cords during use and transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The power line storage structure for the industrial fan comprises a cylindrical shell, a sliding groove is formed in the side wall of the cylindrical shell, a take-up sliding base is arranged in the sliding groove in a sliding mode, and when the take-up sliding base slides in the sliding groove, the take-up sliding base slides along the periphery of the cylindrical shell; the axis of the cylindrical shell is horizontal, a first wire hook is arranged on one side of the cylindrical shell in the horizontal direction, the first wire hook is close to one end of the sliding groove, a second wire hook is arranged on the take-up sliding seat, and the first wire hook and the second wire hook are opposite in direction; and the positioning piece is used for fixing the take-up sliding seat. When the industrial fan is used or transported, a coil can be wound on the first wire hook and the second wire hook, the distance between the first wire hook and the second wire hook is changed after the take-up sliding base slides, the length of the remaining wire can be conveniently adjusted, the redundant wire can be conveniently and completely stored, a power line can be conveniently stored, and the industrial fan can be conveniently transported; the interior of a plant is neater, and redundant wires are not prone to stumbling workers.
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Description

Technical Field

[0001] The present application relates to the field of industrial fans, and in particular to a power cord storage structure for industrial fans. Background Art

[0002] Industrial fans are usually used for ventilation and heat dissipation in various public places. Industrial fans are mainly installed in factories for heat dissipation, and multiple industrial fans are usually installed.

[0003] When multiple industrial fans are transported, their power cords are prone to entanglement. At the same time, there are many devices in the factory area, and the power cords are relatively messy, which affects the working environment, and workers are also easily tripped by the power cords. Utility Model Content

[0004] In order to facilitate the storage of the power cord of the industrial fan, the present application provides a power cord storage structure for industrial fans.

[0005] A power cord storage structure for industrial fans provided by the present application adopts the following technical solutions:

[0006] The power cord storage structure for industrial fans includes a cylindrical outer shell. A sliding groove is provided on the side wall of the cylindrical outer shell. A wire winding sliding seat is slidably arranged in the sliding groove. When the wire winding sliding seat slides in the sliding groove, the wire winding sliding seat slides along the outer circumference of the cylindrical outer shell. The axis of the cylindrical outer shell is horizontal. A first wire hook is arranged on one side of the cylindrical outer shell in the horizontal direction. At one end of the first wire hook close to the sliding groove, a second wire hook is arranged on the wire winding sliding seat. The directions of the first wire hook and the second wire hook are opposite. A positioning member for fixing the wire winding sliding seat is also included.

[0007] By adopting the above technical solutions, when the industrial fan is in use or during transportation, the coil can be wound around the first wire hook and the second wire hook. After the wire winding sliding seat slides, the distance between the first wire hook and the second wire hook changes, which is convenient for adjusting the length of the remaining wire. When the industrial fan is in use, all the excess wire can be stored, making it convenient to store the power cord and facilitating the transportation of the industrial fan. At the same time, when the industrial fan is in use, the factory building is cleaner, and the excess wire is not likely to trip the staff.

[0008] Optionally, the positioning member includes a sliding block, a mounting block and a positioning magnet. The sliding block is slidably connected to the wire winding sliding seat. The sliding direction of the sliding block is the radial direction of the cylindrical outer shell. The sliding block passes through the sliding groove. A mounting block is fixedly installed on one side of the sliding block located inside the cylindrical outer shell. The positioning magnet is fixed on the side of the mounting block facing the inner wall of the cylindrical outer shell, and the positioning magnet adsorbs the cylindrical outer shell for positioning.

[0009] By adopting the above technical solution, when the take-up slide needs to slide, slide the sliding block so that the positioning magnet disengages from the cylindrical housing, and the limit of the take-up slide disappears, making it convenient to move the take-up slide. When stopping sliding, slide the sliding block to adsorb the positioning magnet on the cylindrical housing to achieve the positioning of the take-up slide.

[0010] Optionally, a positioning groove for the sliding block to slide is provided on the take-up slide.

[0011] By adopting the above technical solution, the sliding block is conveniently installed on the take-up slide.

[0012] Optionally, limiting portions are provided on both sides of the sliding block, and the limiting portions abut against both sides of the notch of the positioning groove.

[0013] By adopting the above technical solution, the limiting portions prevent the sliding block from easily disengaging from the positioning groove.

[0014] Optionally, a stabilizing groove for the limiting portion to slide is provided on the take-up slide along the circumferential direction of the positioning groove.

[0015] By adopting the above technical solution, the limiting portion slides in the stabilizing groove, making the sliding of the limiting portion stable. At the same time, it also prevents foreign objects from easily entering the gap between the limiting portion and the take-up slide block, preventing the sliding block from being stuck by foreign objects, and thus making the sliding block slide smoothly.

[0016] Optionally, sliding grooves are provided on both sides of the take-up slide, and opposite side walls of the sliding groove are slidably connected within the sliding grooves.

[0017] By adopting the above technical solution, it is convenient to install the take-up slide on the sliding grooves, and at the same time, it also makes the take-up slide slide stably.

[0018] Optionally, a plug receiving hole is provided on the sliding block. The plug is connected to the power cord through a connecting portion. The outer diameter of the connecting portion is larger than the outer diameter of the power cord. The plug receiving hole limits the connecting portion. A wire groove for the power cord to enter the receiving hole is provided on the sliding block. One end of the wire groove far from the plug receiving hole penetrates through the sliding block. The width of the wire groove is smaller than the diameter of the plug receiving hole. When the connecting portion is limited within the plug receiving hole, the energizing piece of the plug abuts against the take-up slide, and the magnet remains abutting against the inner wall of the cylindrical housing.

[0019] By adopting the above technical solution, the energizing piece abuts against the take-up slide. At this time, the sliding block keeps the positioning magnet adsorbed on the cylindrical housing. During transportation, the positioning magnet is not easily separated from the cylindrical housing due to vibration, making the position of the sliding seat stable.

[0020] In summary, the present application includes at least one of the following beneficial technical effects:

[0021] 1. When the industrial fan is in use or during transportation, the coil can be wound around the first wire hook and the second wire hook. After the wire take-up slider slides, the distance between the first wire hook and the second wire hook changes, which facilitates adjusting the length of the remaining wire. When the industrial fan is in use, all the excess wire can be taken in, making the power cord convenient to store, facilitating the transportation of the industrial fan, and also making the workshop cleaner when the industrial fan is in use. The excess wire is not likely to trip up the staff;

[0022] 2. When the wire take-up slider needs to slide, slide the sliding block so that the positioning magnet disengages from the cylindrical housing, and the limit of the wire take-up slider disappears, making it convenient to move the wire take-up slider. When stopping the sliding, slide the sliding block to adsorb the positioning magnet on the cylindrical housing to achieve the positioning of the wire take-up slider;

[0023] 3. The energizing piece abuts against the wire take-up slider. At this time, the slider keeps the positioning magnet adsorbed on the cylindrical housing, so that during transportation, the positioning magnet is not likely to disengage from the cylindrical housing due to vibration, making the position of the sliding seat stable. Description of the Drawings

[0024] Figure 1 is the overall schematic diagram of the power cord storage structure for the industrial fan in the embodiment.

[0025] Figure 2 is the structural diagram when the fan blades and the motor are installed in the cylindrical housing.

[0026] Figure 3 is Figure 2 the enlarged view of part A of

[0027] Figure 4 is Figure 1 the enlarged view of part B of

[0028] Description of the reference numerals: 1, cylindrical housing; 11, sliding groove; 2, wire take-up slider; 21, sliding track; 3, first wire hook; 4, second wire hook; 5, positioning member; 51, sliding block; 52, mounting block; 53, positioning magnet; 6, positioning groove; 7, limiting portion; 8, stable groove; 9, plug storage hole; 10, wire groove; 12, connecting portion; 13, energizing piece. Detailed Description of the Embodiment

[0029] The following further describes the present application in detail with reference to the attached Figures 1-4 drawings.

[0030] The embodiment of the present application discloses a power cord storage structure for an industrial fan. The power cord storage structure for the industrial fan includes a cylindrical housing 1. A sliding groove 11 is formed in the side wall of the cylindrical housing 1. A wire take-up slider 2 is slidably arranged in the sliding groove 11. Sliding tracks 21 are formed on both sides of the wire take-up slider 2. Opposite side walls of the sliding groove 11 are slidably connected to the sliding tracks 21. When the wire take-up slider 2 slides in the sliding groove 11, the wire take-up slider 2 slides along the outer periphery of the cylindrical housing 1.

[0031] The axis of the cylindrical housing 1 is horizontal, and the sliding groove 11 extends from one horizontal end of the cylindrical housing 1 to the other horizontal end of the cylindrical housing 1. A first wire hook 3 is fixed to one side of the cylindrical housing 1 in the horizontal direction, and the first wire hook 3 is close to one end of the sliding groove 11. A second wire hook 4 is fixed to the wire take-up slide 2, and the first wire hook 3 and the second wire hook 4 are in opposite directions. A wire hole for the power cord to pass through is opened on the side wall of the cylindrical housing 1 near one end of the first wire hook 3, and the power cord is wound between the first wire hook 3 and the second wire hook 4 when stored.

[0032] A positioning member 5 is fixed on the cylindrical housing 1 to fix the position of the take-up slide 2. The positioning member 5 includes a sliding block 51, a mounting block 52 and a positioning magnet 53. The sliding block 51 is slidably connected to the take-up slide 2. The sliding direction of the sliding block 51 is the radial direction of the cylindrical housing 1. The sliding block 51 passes through the sliding groove 11. The sliding block 51 is located on one side of the cylindrical housing 1 to fix the mounting block 52. The positioning magnet 53 is fixed to the side of the mounting block 52 facing the inner wall of the cylindrical housing 1. The positioning magnet 53 fits the cylindrical housing 1 and adsorbs the cylindrical housing 1 to achieve positioning.

[0033] The take-up slide 2 is provided with a positioning groove 6 for the sliding block 51 to slide, and the two sides of the sliding block 51 are fixed with limiting parts 7, which abut the two sides of the notch of the positioning groove 6 to prevent the sliding block 51 from escaping from the positioning groove 6. The take-up slide 2 is provided with a stabilizing groove 8 for the sliding of the limiting part 7 along the circumference of the positioning groove 6, so that the sliding of the sliding block 51 is more stable, and the gap between the bottom of the stabilizing groove 8 and the limiting part 7 is not easy to have dust or foreign matter, which facilitates the sliding of the sliding block 51.

[0034] The sliding block 51 is provided with a plug receiving hole 9, and the plug is connected to the power line through a connecting portion 12. The outer diameter of the connecting portion 12 is larger than the outer diameter of the power line, and the plug receiving hole 9 is used to limit the connecting portion 12. The sliding block 51 is provided with a wire groove 10 for the power line to enter the receiving hole, and one end of the wire groove 10 away from the plug receiving hole 9 passes through the sliding block 51. The width of the wire groove 10 is smaller than the diameter of the plug receiving hole 9.

[0035] First, the power cord is passed through the wire groove 10 to reach the plug receiving hole 9, and then the connecting part 12 is inserted into the plug limiting hole, so that the plug is clamped on the sliding block 51. At this time, the power supply piece 13 of the plug abuts against the wire-receiving slide 2, so that the magnet remains abutting against the inner wall of the cylindrical shell 1, so that the plug is not easy to fall off during transportation, and the magnet and the cylindrical shell 1 are not easy to separate.

[0036] The implementation principle of a power cord storage structure for an industrial fan in an embodiment of the present application is as follows: When the industrial fan is in use or during transportation, the coil can be wound around the first wire hook 3 and the second wire hook 4. After the wire take-up sliding seat 2 slides, the distance between the first wire hook 3 and the second wire hook 4 changes, which is convenient for adjusting the length of the remaining wire. When positioned and magnetically adsorbed on the cylindrical outer shell 1, the sliding block 51 is positioned. When the industrial fan is in use, all the excess wire is stored, making the power cord convenient to store and facilitating the transportation of the industrial fan. At the same time, when the industrial fan is in use, the factory building is cleaner and the excess wire is not likely to trip up the staff.

[0037] The above are all the preferred embodiments of the present application, and the protection scope of the present application is not limited accordingly. 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. Power cord storage structure for industrial fans, including a cylindrical outer shell (1), characterized in that: A sliding groove (11) is formed in the side wall of the cylindrical outer shell (1). A wire winding sliding seat (2) is slidably arranged in the sliding groove (11). When the wire winding sliding seat (2) slides in the sliding groove (11), the wire winding sliding seat (2) slides along the outer circumference of the cylindrical outer shell (1). The axis of the cylindrical outer shell (1) is horizontal. A first wire hook (3) is arranged on one side of the cylindrical outer shell (1) in the horizontal direction. At one end of the first wire hook (3) close to the sliding groove (11), a second wire hook (4) is arranged on the wire winding sliding seat (2). The directions of the first wire hook (3) and the second wire hook (4) are opposite. A positioning member (5) for fixing the wire winding sliding seat (2) is also included.

2. The power cord storage structure for an industrial fan according to claim 1, wherein: The positioning member (5) includes a sliding block (51), a mounting block (52) and a positioning magnet (53). The sliding block (51) is slidably connected to the wire winding sliding seat (2). The sliding direction of the sliding block (51) is the radial direction of the cylindrical outer shell (1). The sliding block (51) passes through the sliding groove (11). A mounting block (52) is fixedly arranged on one side of the sliding block (51) located inside the cylindrical outer shell (1). The positioning magnet (53) is fixed on one side of the mounting block (52) facing the inner wall of the cylindrical outer shell (1). The positioning magnet (53) adsorbs the cylindrical outer shell (1) for positioning.

3. The power cord storage structure for an industrial fan according to claim 2, characterized in that: A positioning groove (6) for the sliding block (51) to slide is formed in the wire winding sliding seat (2).

4. The power cord storage structure for an industrial fan according to claim 3, wherein: Limiting portions (7) are arranged on both sides of the sliding block (51). The limiting portions (7) abut against both sides of the notch of the positioning groove (6).

5. The power cord storage structure for an industrial fan according to claim 4, wherein: A stabilizing groove (8) for the limiting portions (7) to slide is formed in the circumferential direction of the wire winding sliding seat (2) along the positioning groove (6).

6. The power cord storage structure for an industrial fan according to claim 1, characterized in that: Sliding grooves (21) are formed on both sides of the wire winding sliding seat (2). The opposite side walls of the sliding groove (11) are slidably connected to the sliding grooves (21).

7. The power cord storage structure for an industrial fan according to claim 2, wherein: A plug receiving hole (9) is formed in the sliding block (51). The plug is connected to the power cord through a connecting portion (12). The outer diameter of the connecting portion (12) is larger than the outer diameter of the power cord. The plug receiving hole (9) limits the connecting portion (12). A wire groove (10) for the power cord to enter the receiving hole is formed in the sliding block (51). One end of the wire groove (10) far from the plug receiving hole (9) penetrates through the sliding block (51). The width of the wire groove (10) is smaller than the diameter of the plug receiving hole (9). When the connecting portion (12) is limited in the plug receiving hole (9), the power-on piece (13) of the plug abuts against the wire winding sliding seat (2), and the magnet keeps abutting against the inner wall of the cylindrical outer shell (1).