High-altitude intelligent continuous hook machine
By designing a high-altitude intelligent continuous cable hook machine, and utilizing the cooperation of a geared motor and a flange fork, the machine enables the separation and continuous installation of multiple cable hooks, solving the problem of low installation efficiency in existing technologies and improving installation efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HENAN HUACHUANG COMM EQUIP
- Filing Date
- 2025-07-16
- Publication Date
- 2026-07-31
AI Technical Summary
Existing cable hooks have low installation efficiency, cannot install multiple cable hooks at once, and the operation process is cumbersome.
Design a high-altitude intelligent continuous hook-up machine. It uses a geared motor to drive a flange fork. Through the cooperation of a power gear and a moving rack, it can separate and continuously install multiple cable hooks. It uses a miniature electromagnet for limiting and supporting, ensuring the stability and efficiency of the installation process.
This allows for the simultaneous installation of multiple cable hooks, improving installation efficiency, reducing repetitive operations, and increasing overall work efficiency.
Smart Images

Figure CN224582742U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of cable hook installation, specifically, it relates to a high-altitude intelligent continuous hook machine. Background Technology
[0002] Cable hooks are tools used to suspend and secure cables, conduits, and other pipelines, and are particularly suitable for cable installation in mines, on the ground, and in underground tunnels. They can be used flexibly according to the number of cables being installed, saving time, labor, and effort, making them an ideal accessory for cable installation in mines. Existing cable hook installation methods involve placing the cable hook on a bracket and using an extension rod for support, lifting it to a high position to install the hook. Typically, one cable hook is installed at a time; after installation, the extension rod is lowered to install the next hook. This process of repeatedly lifting and lowering the hook results in low installation efficiency.
[0003] In view of this, this utility model is proposed. Utility Model Content
[0004] The technical problem to be solved by this utility model is to overcome the shortcomings of the existing technology and provide a high-altitude intelligent continuous hook-up machine. The basic concept of the technical solution adopted by this utility model to solve the above-mentioned technical problem is as follows: A high-altitude intelligent continuous hook-making machine includes a connector and a base plate. The base plate is provided with a guide column one and a guide column two. A flange groove plate one is fixedly provided on the side of the guide column one. A flange groove plate two is matched with the flange groove plate one. Matching grooves are provided on the inner surfaces of the flange groove plate one and the flange groove plate two. A flange slider is installed between the flange groove plate one and the flange groove plate two. Sliding protrusions are symmetrically arranged on both sides of the flange slider, and the sliding protrusions are located within the matching grooves. A fork mounting rod is provided on one side of the upper part of the flange slider. A flanged fork is mounted on the mounting rod. The lower end of the flanged slider is connected to a moving rack. A power gear is meshed on the side of the moving rack. The power gear is mounted on the output shaft of the geared motor. Two positioning rods are fixedly installed at the upper middle position of the base plate. Spring clips are installed on the upper outer side of the positioning rods. A top plate is installed through the positioning rods. The top plate has a cross-shaped structure. A support rod is installed below the top plate. A compression spring is installed on the section of the support rod between the top plate and the base plate. The top plate is used to place and support the cable hook.
[0005] As a further embodiment of this utility model: the bottom plate is provided with a sliding groove structure at both ends, the lower ends of the guide column one and the guide column two are provided with a matching groove adapted to the sliding groove structure, and the bottom plate is provided with an elongated oval structure mounting groove in the horizontal direction corresponding to the sliding groove. The guide column one and the guide column two are fixedly installed with screws, and the fixed position of the guide column one and the guide column two can be adjusted.
[0006] As a further improvement of this utility model: a through hole is provided on the base plate, the support rod passes through the through hole, a limit ring is installed at the lower end of the support rod, the connector is fixedly provided at the lower middle position of the base plate, and the lower end of the connector is provided with an internal thread sleeve to facilitate fixed connection with the extension rod.
[0007] As a further embodiment of this utility model: a motor bracket is fixedly installed on the guide column below the flange groove plate, and the geared motor is fixedly installed on the outside of the motor bracket. The motor bracket has a U-shaped structure and is used for the fixed installation of the geared motor.
[0008] As a further embodiment of this utility model: two sets of rack limiting seats are provided inside the motor bracket on the back of the toothed side of the moving rack, a contact block is fixedly provided at the lower end of the moving rack, and a lower contact switch and an upper contact switch are fixedly provided on the inner wall of the motor bracket, with the positions of the upper contact switch and the lower contact switch corresponding to the positions of the contact block.
[0009] As a further improvement of this utility model: an electromagnetic fixing plate is fixedly installed at the upper end of both the first guide column and the second guide column, and a miniature electromagnet is installed below the electromagnetic fixing plate. The miniature electromagnet is a telescopic electromagnet used to limit the uppermost cable hook.
[0010] As a further improvement of this utility model: the fork mounting rod has an L-shaped structure, the flange fork is provided with a mating mounting hole, there are two flange forks, and the front end of the flange fork is provided with a fork block with a beveled structure for pressing down the cable hook.
[0011] By adopting the above technical solution, this utility model has the following beneficial effects compared with the prior art.
[0012] This utility model of a hook-hanging machine can load multiple cable hooks at once. By setting a reduction motor to drive the flange fork to move, the topmost cable hook can be separated from the rest of the cable hooks, realizing the effective hanging and installation of the topmost cable hook. After installation, the cable hook moves upward as a whole, and the flange fork moves in a cycle, thereby realizing the continuous hanging and installation of cable hooks with one lift, effectively improving the installation efficiency of cable hooks.
[0013] This utility model uses a power gear to drive a moving rack to move up and down. The moving rack is equipped with a rack limit seat to ensure the stability of the moving rack during movement. The flange slider cooperates with the flange groove plate to enable the flange fork to have a stable moving state, thereby moving the lower cable hook downward and separating it from the uppermost hook.
[0014] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0015] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments and descriptions of the present invention are used to explain the present invention, but do not constitute an undue limitation of the present invention. Obviously, the drawings described below are merely some embodiments; those skilled in the art can obtain other drawings based on these drawings without creative effort. In the drawings: Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the structure of the present invention in the state of the motor bracket not being installed; Figure 3 This is the front view of the present invention; Figure 4 This is a schematic diagram of the installation of the shift fork mounting rod of this utility model; Figure 5 This is a structural schematic diagram of the flange groove plate of this utility model.
[0016] In the diagram: 1. Connector; 2. Motor bracket; 3. Gear motor; 4. Base plate; 5. Rack and pinion limit seat; 6. Flange groove plate one; 7. Flange groove plate two; 8. Guide column one; 9. Guide column two; 10. Electromagnetic fixing plate; 11. Miniature electromagnet; 12. Flange slider; 13. Mating groove; 14. Positioning rod; 15. Spring clip; 16. Moving rack; 17. Contact block; 18. Lower contact switch; 19. Upper contact switch; 20. Power gear; 21. Top plate; 22. Compression spring; 23. Sliding protrusion; 24. Shift fork mounting rod; 25. Flange Shift fork; 26. Mating mounting hole; 27. Shift fork block; 28. Support rod; 29. Limiting ring.
[0017] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the present invention in any way, but rather to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model, but are not intended to limit the scope of this utility model.
[0019] like Figures 1 to 5 As shown, a high-altitude intelligent continuous hook-up machine includes a connector 1 and a base plate 4. The base plate 4 is equipped with guide columns 8 and 9. A flange groove plate 6 is fixedly mounted on the side of guide column 8, and a flange groove plate 7 is matched with flange groove plate 6. A sliding groove 13 is provided on the inner surface of flange groove plate 6 and flange groove plate 7. A flange slider 12 is installed between flange groove plate 6 and flange groove plate 7. Sliding protrusions 23 are symmetrically arranged on both sides of the flange slider 12, and the sliding protrusions 23 are located within the sliding grooves 13. A fork mounting rod 24 is provided on the upper side of the flange slider 12. A flanged fork 25 is installed, and the lower end of the flanged slider 12 is connected to the moving rack 16. A power gear 20 is meshed on the side of the moving rack 16. The power gear 20 is installed on the output shaft of the reduction motor 3. Two positioning rods 14 are fixedly installed at the middle position above the base plate 4. A spring clip 15 is installed on the outer side of the upper part of the positioning rod 14. A top plate 21 is installed through the positioning rod 14. The top plate 21 has a cross-shaped structure. A support rod 28 is installed below the top plate 21. A compression spring 22 is installed on the section of the support rod 28 between the top plate 21 and the base plate 4. The top plate 21 is used to place and support the cable hook.
[0020] The base plate 4 has sliding groove structures at both ends, and the lower ends of the guide column 1 8 and guide column 2 9 are provided with matching grooves that are adapted to the sliding groove structures. The base plate 4 has an elongated oval structure mounting groove in the horizontal direction corresponding to the sliding groove, which is used with screws to fix the guide column 1 8 and guide column 2 9. The fixed position of the guide column 1 8 and guide column 2 9 can be adjusted.
[0021] The base plate 4 has a through hole through which the support rod 28 passes. A limit ring 29 is installed at the lower end of the support rod 28. A connector 1 is fixedly installed at the lower middle position of the base plate 4. The lower end of the connector 1 is provided with an internal threaded sleeve to facilitate fixed connection with the extension rod.
[0022] A motor bracket 2 is fixedly installed on the guide column 8 below the flange groove plate 6. The geared motor 3 is fixedly installed on the outside of the motor bracket 2. The motor bracket 2 is a U-shaped structure used for the fixed installation of the geared motor 3.
[0023] Two sets of rack limit seats 5 are provided on the back of the toothed side of the moving rack 16 inside the motor bracket 2. A contact block 17 is fixedly provided at the lower end of the moving rack 16. A lower contact switch 18 and an upper contact switch 19 are fixedly provided on the inner wall of the motor bracket 2. The positions of the upper contact switch 19 and the lower contact switch 18 correspond to the positions of the contact block 17.
[0024] An electromagnetic fixing plate 10 is fixedly installed at the upper end of both guide column 18 and guide column 29. A miniature electromagnet 11 is installed below the electromagnetic fixing plate 10. The miniature electromagnet 11 is a telescopic electromagnet used to limit the uppermost cable hook.
[0025] The fork mounting rod 24 has an L-shaped structure. The flange fork 25 is provided with a mating mounting hole 26. There are two flange forks 25. The front end of the flange fork 25 is provided with a fork block 27 with a beveled structure for pressing down the cable hook.
[0026] The working principle of this utility model is as follows: When installing cable hooks, the lower end of connector 1 is connected to the extension rod, and multiple cable hooks are placed on the top plate 21. The cable hook tray is provided with through holes, which pass through the two positioning rods 14. After placement, the switch is pressed to supply power to the micro electromagnet 11. The micro electromagnet 11 is in the extended state, limiting the uppermost cable hook. The spring clip 15 on the positioning rod 14 is used to support the uppermost cable hook. The reduction motor 3 works, driving the power gear 20 to rotate. The power gear 20 meshes with the moving rack 16, thereby driving the moving rack 16 to move in the vertical direction. The upper end of the moving rack 16 is connected to a flange slider 12. The sliding protrusions 23 on both sides of the flange slider 12 slide along the flange groove plate 16 and the flange. The annular sliding groove 13 on the second groove plate 7 moves, and the fork block 27 on the flange fork 25 contacts the second cable hook from the top. When the moving flange fork 25 moves to the uppermost position of the sliding groove 13, the contact block 17 on the moving rack 16 contacts the upper contact switch 19. The reduction motor 3 changes the rotation direction, thereby driving the moving rack 16 to move downward. The flange fork 25 moves downward, keeping the lower cable hook and the uppermost cable hook at a certain distance. When installing the cable hook, the micro electromagnet 11 is de-energized by the switch, and the micro electromagnet 11 retracts, releasing the limit on the uppermost cable hook, thus realizing the effective installation of the cable hook. After the cable hook is installed, the micro electromagnet 11 is powered on, so that the micro electromagnet 11 is in the limit state. When the sliding protrusion 23 moves to the bottom of the mating groove 13, the contact block 17 on the moving rack 16 contacts the lower contact switch 18, the reduction motor 3 changes its rotation direction, the sliding protrusion 23 moves to the slide of the mating groove 13, the flange fork 25 releases the limit on the cable hook, and the cable hook moves upward as a whole under the reset action of the compression spring 22. The position of the spring clip 15 is just used to support the first cable hook above. The reduction motor 3, the power gear 20, and the moving rack 16 repeat the above actions to realize the continuous installation of the cable hook. The geared motor 3, upper contact switch 19, lower contact switch 18, and miniature electromagnet 11 are electrically connected. The extension rod is equipped with a battery and a corresponding switch. The circuit connection is a mature existing technology and will not be described in detail. This utility model's hook-hanging machine can load multiple cable hooks at once. By setting a reduction motor 3 to drive the flange fork 25, the topmost cable hook can be separated from the rest, achieving effective hanging and installation of the topmost cable hook. After installation, the cable hook moves upward as a whole, and the flange fork 25 cycles, thus achieving continuous hanging and installation of cable hooks with a single lifting motion, effectively improving the installation efficiency of cable hooks. The power gear 20 drives the moving rack 16 to move up and down. The moving rack 16 is equipped with a rack limit seat 5 to ensure the stability of the moving rack 16 during movement. The flange slider 12 cooperates with the flange groove plate to give the flange fork 25 a stable moving state, thereby moving the lower cable hooks downward and separating them from the topmost hook.
[0027] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some modifications or alterations to the above-described technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.
Claims
1. A high-altitude intelligent continuous hook machine, comprising a connecting head (1) and a bottom plate (4), characterized in that, The base plate (4) is provided with a guide post 1 (8) and a guide post 2 (9). A flange groove plate 1 (6) is fixedly provided on the side of the guide post 1 (8). A flange groove plate 2 (7) is provided in conjunction with the flange groove plate 1 (6). A matching groove (13) is provided on the inner side of the flange groove plate 1 (6) and the flange groove plate 2 (7). A flange slider (12) is installed between the flange groove plate 1 (6) and the flange groove plate 2 (7). Sliding protrusions (23) are symmetrically provided on both sides of the flange slider (12). The sliding protrusions (23) are located in the matching groove (13). A fork mounting rod (24) is provided on the upper side of the flange slider (12). A fork mounting rod (24) is mounted on the fork mounting rod (24). A flanged fork (25) is provided. The lower end of the flanged slider (12) is connected to a moving rack (16). A power gear (20) is meshed on the side of the moving rack (16). The power gear (20) is installed on the output shaft of the geared motor (3). Two positioning rods (14) are fixedly provided at the middle position above the base plate (4). A spring clip (15) is installed on the upper outer side of the positioning rod (14). A top plate (21) is installed through the positioning rod (14). The top plate (21) has a cross-shaped structure. A support rod (28) is provided below the top plate (21). A compression spring (22) is installed on the section of the support rod (28) between the top plate (21) and the base plate (4).
2. The high-altitude intelligent continuous hook machine according to claim 1, characterized in that, The bottom plate (4) is provided with a sliding groove structure at both ends. The lower ends of the guide column one (8) and the guide column two (9) are provided with a matching groove adapted to the sliding groove structure. The bottom plate (4) is provided with an elongated oval structure mounting groove in the horizontal direction corresponding to the sliding groove.
3. The high-altitude intelligent continuous hook machine according to claim 2, characterized in that, The base plate (4) is provided with a through hole, and the support rod (28) passes through the through hole. A limit ring (29) is installed at the lower end of the support rod (28). The connector (1) is fixedly provided at the lower middle position of the base plate (4). The lower end of the connector (1) is provided with an internal thread sleeve.
4. The high-altitude intelligent continuous hook machine according to claim 3, characterized in that, A motor bracket (2) is fixedly installed on the guide column (8) below the flange groove plate (6). The geared motor (3) is fixedly installed on the outside of the motor bracket (2). The motor bracket (2) has a U-shaped structure.
5. The high-altitude intelligent continuous hook machine according to claim 4, characterized in that, Two sets of rack limit seats (5) are provided inside the motor bracket (2) on the back of the tooth of the moving rack (16). A contact block (17) is fixedly provided at the lower end of the moving rack (16). A lower contact switch (18) and an upper contact switch (19) are fixedly provided on the inner wall of the motor bracket (2).
6. The high-altitude intelligent continuous hook machine according to claim 5, characterized in that, Electromagnetic fixing plates (10) are fixedly installed at the upper ends of both the first guide column (8) and the second guide column (9), and a miniature electromagnet (11) is installed below the electromagnetic fixing plate (10).
7. The high-altitude intelligent continuous hook machine according to claim 6, characterized in that, The fork mounting rod (24) has an L-shaped structure. The flange fork (25) is provided with a mating mounting hole (26). There are two flange forks (25). The front end of the flange fork (25) is provided with a fork block (27) with a beveled structure.