Movable electric controllable wire supporting platform

The mobile, electrically controlled cable support platform, with its support frame, winding mechanism, and traction mechanism, enables automated, uniform fixing, and safe lifting of cables. This solves the safety risks and inefficiencies of existing cable trays, improving the safety and efficiency of cable laying and maintenance.

CN121769728APending Publication Date: 2026-03-31WUHE COUNTY POWER SUPPLY CO OF STATE GRID ANHUI ELECTRIC POWER CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-29
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing cable trays pose safety risks during cable laying or maintenance, are inefficient, have difficulty evenly clamping multiple cables, and have poor adaptability.

Method used

It adopts a mobile, electrically controlled cable support platform, which utilizes a support frame, winding mechanism, traction mechanism and locking components to realize the synchronous unfolding and fixing of multiple Velcro straps through magnetic linkage and synchronous drive, ensuring uniform force on the cable and automating the locking and unlocking process.

Benefits of technology

It improves operational efficiency, ensures uniform cable tension, avoids localized over-tightening or under-tightening, provides reliable binding force, prevents cable displacement and wear, and enhances safety and adaptability.

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Abstract

The invention discloses a movable electric controllable wire supporting platform, and relates to the technical field of wire supporting, the movable electric controllable wire supporting platform comprises a movable vehicle, the top of the movable vehicle is fixedly connected with an internal thread cylinder, the internal thread cylinder is in threaded connection with a threaded rod, the top of the threaded rod is fixedly connected with a fixed rod, and the movable electric controllable wire supporting platform further comprises a fixed cover fixedly connected to the top of the fixed rod; a plurality of supporting frames are hinged to the outer side of the fixing cover, and a supporting and unfolding assembly is arranged on the outer side of the fixing rod and used for controlling the supporting frames to be unfolded synchronously. The plurality of magic sub-stickers are synchronously and stably pulled and unfolded like a huge net covering all cables at a time. Therefore, the working efficiency is greatly improved, uniform stress along the length direction of the cable is ensured, local over-tightness or over-looseness is avoided, comprehensive and reliable binding force is provided, and displacement or mutual abrasion of the cable under dynamic loads such as wind vibration and the like is effectively prevented.
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Description

Technical Field

[0001] This invention relates to the field of cable support technology, and in particular to a mobile, electrically controlled cable support platform. Background Technology

[0002] During cable laying or repair, cable trays are usually used to assist in cable placement to facilitate subsequent construction.

[0003] Referring to the cable tray and cable tray assembly disclosed in patent application CN214069466U, the cable tray includes a support telescopic rod. A U-shaped block is fixed to the top of the support telescopic rod, and an internal groove is formed at the top of the U-shaped block. A ball bearing is installed inside the internal groove. A support fastening nut is sleeved at the telescopic point of the support telescopic rod. A fixing sleeve is sleeved on the outer side of the support telescopic rod below the support fastening nut. Support leg telescopic rods are evenly hinged to the outer side of the fixing sleeve. Support leg telescopic rods have support leg fastening nuts sleeved at their telescopic points. A fixing ring is fixed at the bottom of the support leg telescopic rod above the support leg fastening nut. The advantages are that the hinged installation not only allows for easy retraction and expansion, reducing space when not in use, but also allows for height adjustment, making it suitable for cables of different heights, thus increasing its versatility. Furthermore, by using rolling friction instead of sliding friction, it greatly reduces friction during cable movement, increasing service life.

[0004] The following problems exist during use: First, operators must work at heights, posing a risk of falling from heights, and the process is inefficient; Second, when dealing with multiple cables, each cable must be clamped or bundled individually, which is time-consuming and laborious, and it is difficult to ensure that the cables are subjected to uniform force, which can easily lead to localized damage from excessive tightness or slippage due to excessive looseness; Third, when the cables are not parallel or have height differences, the rigid clamps are difficult to install and have poor adaptability.

[0005] Therefore, it is necessary to provide a mobile, electrically controlled, controllable cable-laying platform to solve the above-mentioned technical problems. Summary of the Invention

[0006] The purpose of this invention is to provide a mobile, electrically controlled, controllable cable-carrying platform to address the deficiencies of the prior art as described in the background section.

[0007] Based on the above ideas, the present invention provides the following technical solution: a mobile, electrically controllable cable-carrying platform, comprising a mobile vehicle, an internally threaded cylinder fixedly connected to the top of the mobile vehicle, a threaded rod threadedly connected inside the internally threaded cylinder, a fixed rod fixedly connected to the top of the threaded rod, and further comprising: A fixed cover is fixedly connected to the top of a fixed rod. Multiple support frames are hinged to the outside of the fixed cover. A support deployment assembly is provided on the outside of the fixed rod to control the synchronous deployment of the multiple support frames. The winding mechanism comprises multiple winding mechanisms respectively located at the ends of multiple support frames away from the fixed cover. The top of the support frame is fixedly connected with a Velcro liner, and the winding mechanism is provided with a Velcro liner, which is adhered to the opposite side of the Velcro liner. The support frame has fixed brackets at both ends, and L-shaped grooves are opened on opposite sides of the two fixed brackets. One end of the hook and loop fastener has a fixed frame, and a pull bracket is fixedly connected to the outside of the fixed frame. The pull bracket is fixedly connected to the hook and loop fastener. The fixed frame has two sets of locking components for fixing the fixed brackets. The support frame has a traction mechanism on the outside. The traction mechanism is used to move the fixed frame on top of the hook and loop fastener. When the cable is placed on the hook and loop fastener, the hook and loop fastener covers the top of the hook and loop fastener and adheres to it.

[0008] As a further aspect of the present invention: the winding mechanism includes a winding drum, which is fixedly connected to the end of the support frame away from the fixed cover. A rotating shaft is rotatably connected inside the winding drum. One end of the Velcro is wound around the rotating shaft. The rotating shaft passes through the winding drum. Fixed rings are fixedly connected to both sides of the winding drum. A torsion spring is fixedly connected between the rotating shaft and the fixed rings for pulling the Velcro to wind up.

[0009] As a further embodiment of the present invention: the traction mechanism includes a lower traction component and an upper traction component. The lower traction component includes a slide block, which is slidably connected to the inside of the support frame. A return spring is fixedly connected between the slide block and one end inside the support frame. Magnetic plates are fixedly connected to both sides of the slide block. The magnetic plates pass through the support frame and are slidably connected to the support frame. Multiple placement slots are provided on the top of the magnetic plates.

[0010] As a further aspect of the present invention: the lower traction assembly further includes a take-up reel, which is disposed inside the fixed cover and rotatably connected to the top of the fixed cover. The outer side of the take-up reel is wound and connected to the traction rope, and the other end of the traction rope passes through the support frame and is fixedly connected to the slide. A gear is fixedly connected to the bottom of the take-up reel. A gear disk is disposed inside the fixed cover, and the gear disk meshes with the gear. A drive motor is fixedly connected inside the fixed cover, and the output shaft of the drive motor is fixedly connected to the gear disk.

[0011] As a further aspect of the present invention: the upper traction assembly includes a traction frame and movable parts disposed on both sides of the traction frame. The movable parts include multiple fixed cylinders, each of which has a pressing disc slidably connected inside. A sliding rod is fixedly connected to the bottom of the pressing disc, and the sliding rod passes through the fixed cylinder and is slidably connected to the fixed cylinder. A fourth spring is fixedly connected between the pressing disc and the top of the fixed cylinder. A connecting frame is fixedly connected to the bottom of each of the multiple sliding rods. A first contact wheel is rotatably connected inside the connecting frame. The first contact wheel extends into the placement groove, and magnetic plates are fixedly connected to both sides of the connecting frame. The magnetic plates are magnetically attracted to each other.

[0012] As a further aspect of the present invention: the upper traction assembly further includes a positioning seat, and two third electric push rods are fixedly connected to both sides inside the positioning seat, and push blocks are fixedly connected to the telescopic ends of the two third electric push rods.

[0013] As a further aspect of the present invention: the locking assembly includes two guide rods, both of which are fixedly connected inside the fixed frame, and a sliding plate is slidably connected to the guide rods. A first spring is fixedly connected between the sliding plate and the guide rods. A locking plug is provided at the bottom of the sliding plate, the locking plug passes through the fixed frame and is slidably connected to the fixed frame. A first telescopic rod and a second spring are fixedly connected between the locking plug and the sliding plate. The second spring is sleeved on the outside of the first telescopic rod. Two side plates are provided at the bottom of the locking plug, and the side plates are fixedly connected to the fixed frame. A guide groove is provided on the outside of the side plates.

[0014] As a further embodiment of the present invention: the locking assembly further includes a connecting frame, which is disposed at the bottom of the locking plug, and a lifting roller is rotatably connected inside the connecting frame. A baffle is fixedly connected to the bottom of the locking plug. A guide shaft is fixedly connected to the outside of the connecting frame, and the guide shaft extends into the side plate and is slidably connected to the guide shaft. A slide plate is fixedly connected to the bottom of the fixed frame, and a sliding seat is slidably connected to the outside of the slide plate. A second telescopic rod is fixedly connected between the sliding seat and the connecting frame. A contact plate is disposed inside the fixed frame, and a third telescopic rod and a third spring are fixedly connected between the contact plate and the fixed frame. A pull rope is fixedly connected between the contact plate and the slide plate. When the pushing block is inserted into the fixed frame, it contacts the contact plate.

[0015] As a further aspect of the present invention, it also includes a pressing mechanism disposed on the top of the traction frame. The pressing mechanism includes two pressing frames, and multiple fourth telescopic rods are fixedly connected to the bottom of each of the two pressing frames. A limit frame is fixedly connected to the bottom of each fourth telescopic rod, and a second contact wheel is rotatably connected inside the limit frame. A fifth spring is fixedly connected between the fourth telescopic rod and the pressing frame. Limit shafts are fixedly connected to both sides of the pressing frame, and limit frames are provided on both sides of the pressing frame. The limit frames are fixedly connected to the traction frame, and the limit shafts extend into the limit frames. A descending plate is disposed between the two pressing frames, and a fifth telescopic rod is fixedly connected between the descending plate and the pressing frame. A second electric push rod is fixedly connected to the top of the traction frame, and a mounting frame is fixedly connected to the telescopic end of the second electric push rod. The mounting frame is fixedly connected to the descending plate.

[0016] As a further aspect of the present invention: the unfolding assembly includes a movable seat, which is slidably connected to the outside of the fixed rod, and the movable seat is hinged to multiple support frames. A first electric push rod is fixedly connected to the outside of the fixed rod, and the telescopic end of the first electric push rod is fixedly connected to the movable seat.

[0017] Compared with the prior art, the beneficial effects of the present invention are: 1. Multiple traction mechanisms simultaneously pull the hook and loop fasteners, allowing them to cover the cables. Under the combined action of synchronous drive and magnetic linkage, multiple hook and loop fasteners are pulled and unfolded synchronously and smoothly, like a giant net covering all the cables at once. This not only greatly improves work efficiency but also ensures uniform force along the cable length, avoiding localized excessive tightness or looseness, providing comprehensive and reliable binding force, and effectively preventing cable displacement or mutual wear under dynamic loads such as wind vibration.

[0018] 2. Multiple first contact wheels move sequentially above the cable to achieve the purpose of flipping over the cable, pulling the Velcro straps so that they cover the top of the cable, and driving the locking component at the other end of the fixing frame to fix it to the fixing bracket near the fixing cover. The first contact wheels at the bottom of the traction frame are combined with the floating structure with springs to form an intelligent "flipping" module.

[0019] 3. When the push block retracts, the locking plug resets and latches under the action of the spring, automatically completing the fixation of the Velcro terminal after traction. This realizes a fully automatic cycle from "unlocking → traction → relocking", without the need for manual intervention to fix the terminal, and the operation process is complete and efficient.

[0020] 4. The fifth spring compresses the limiting frame, which can also compress cables placed at an angle. This process eliminates gaps caused by insufficient adhesion of the Velcro or the weight of the cable itself, significantly enhancing the overall integrity of the cable bundle and its resistance to wind vibration and displacement. It upgrades the fixing from "adhesion" to "tight compaction", greatly improving reliability. In winter, the second contact wheel can also be used to move the cable to prevent snow from accumulating on the outside of the cable. Attached Figure Description

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the supporting frame structure of the present invention; Figure 3 This is a schematic diagram of the gear disk structure of the present invention; Figure 4 This is a schematic diagram of the winding assembly structure of the present invention; Figure 5 This is a schematic diagram of the traction frame structure of the present invention; Figure 6 This is a cross-sectional view of the fixing frame of the present invention; Figure 7 This is a schematic diagram of the locking component structure of the present invention; Figure 8This is a schematic diagram of the slide structure of the present invention; Figure 9 This is the present invention. Figure 8 A magnified structural diagram of part A; Figure 10 This is a schematic diagram of the extrusion assembly structure of the present invention.

[0023] In the diagram: 1. Moving carriage; 201. Internal threaded cylinder; 202. Threaded rod; 3. Fixed rod; 300. Fixed cover; 301. Moving seat; 302. Hinge rod; 303. First electric actuator; 4. Support frame; 401. Velcro; 5. Rewind drum; 501. Velcro; 502. Rotating shaft; 503. Fixed ring; 6. Fixed bracket; 601. L-shaped groove; 602. Guide roller; 7. Fixed frame 700. Pull frame; 701. Locking plug; 702. Guide rod; 703. Sliding plate; 704. First spring; 705. First telescopic rod; 706. Second spring; 707. Baffle; 708. Side plate; 709. Guide groove; 710. Lifting roller; 711. Connecting frame; 712. Slide plate; 713. Sliding seat; 715. Second telescopic rod; 716. Guide shaft; 717. Contact plate; 718. Third telescopic rod; 719. Third spring; 720. Pull rope; 8. Sliding seat; 801. Magnetic plate; 802. Placement groove; 803. Return spring; 9. Traction frame; 900. Positioning seat; 901. Fixed cylinder; 902. Sliding rod; 903. Extrusion plate; 904. Fourth spring; 905. Magnetic suction plate; 906. Connecting frame; 907. First contact wheel; 10. Extrusion frame; 1001. Fourth telescopic rod; 1002, Fifth spring; 1003, Limiting frame; 1004, Second contact wheel; 1005, Limiting shaft; 1006, Limiting bracket; 1007, Lowering plate; 1008, Fifth telescopic rod; 1009, Mounting bracket; 1010, Second electric actuator; 11, Gear disc; 111, Gear; 112, Rewinding reel; 113, Traction rope; 12, Third electric actuator; 121, Push block. Detailed Implementation

[0024] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0025] In the description of this invention, it should be understood that the terms "opening", "upper", "lower", "thickness", "top", "middle", "length", "inner", "around", etc., which indicate orientation or positional relationship, are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the components or elements referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as limiting this invention.

[0026] like Figures 1 to 10As shown, a mobile, electrically controlled, controllable cable-carrying platform includes the following embodiments: Example 1: Includes a mobile vehicle 1, with a locking mechanism at the bottom of the mobile vehicle 1 (this is prior art and will be further described here). An internally threaded cylinder 201 is fixedly connected to the top of the mobile vehicle 1. A threaded rod 202 is threadedly connected inside the internally threaded cylinder 201. A fixing rod 3 is fixedly connected to the top of the threaded rod 202. Also includes: A fixed cover 300 is fixedly connected to the top of a fixed rod 3. Multiple support frames 4 are hinged to the outside of the fixed cover 300. A support deployment assembly is provided on the outside of the fixed rod 3 to control the synchronous deployment of multiple support frames 4. The winding mechanism has multiple winding mechanisms respectively set at one end of multiple support frames 4 away from the fixed cover 300. The top of the support frame 4 is fixedly connected with a Velcro 401. The winding mechanism is provided with a Velcro 501 inside. The Velcro 501 is adhered to the opposite side of the Velcro 401. The support frame 4 has fixed brackets 6 at both ends of the top. Each of the two fixed brackets 6 has an L-shaped groove 601 on one side of the opposite side. The fixed brackets 6 have guide rollers 602 fixedly connected to the outside of the fixed brackets 6 for guiding the hook and loop fasteners 501. One end of the hook and loop fasteners 501 is provided with a fixed frame 7. The fixed frame 7 has a pull bracket 700 fixedly connected to the outside of the fixed frame 7. The pull bracket 700 is fixedly connected to the hook and loop fasteners 501. The fixed frame 7 has two sets of locking components for fixing the fixed brackets 6 inside. The support frame 4 has a traction mechanism on the outside of the support frame 4. The traction mechanism is used to move the fixed frame 7 on top of the hook and loop fasteners 401. When the cable is placed on the hook and loop fasteners 401, the hook and loop fasteners 501 cover the top of the hook and loop fasteners 401 and adhere to it.

[0027] In practice, when cable maintenance and installation are required, cables need to be laid out to prevent them from dragging on the ground and causing accidents. Often, multiple cables are involved in the installation. To prevent them from falling, clamps are used to hold and secure them. However, due to the considerable height of the cables, adjustments need to be made from a height, and the cable angle is not perpendicular to the clamps, requiring further adjustments. Furthermore, disassembly is inconvenient and overly complex. Therefore, this solution adjusts the height of the threaded rod 202 and then unfolds multiple support frames 4 using an unfolding assembly to randomly support the cables, avoiding manual intervention. The clamping and positioning mechanism, along with the traction mechanism on the support frame 4, moves the fixing frame 7, causing the fixing frame 7 to move the Velcro 501 to cover the Velcro 401 on top of the support frame 4. This allows the Velcro 501 and the Velcro 401 to adhere together, securing the cable. At the same time, a mesh-like structure is formed above the cable to ensure support and prevent the cable from falling off. The Velcro 501 and the Velcro 401 form a continuous cover above the cable, together with the lower Velcro, creating a soft, enveloping fixing environment. This prevents the cable from slipping laterally and avoids the possibility of the hard clamps damaging the cable insulation layer.

[0028] In this embodiment, the unfolding component includes a movable base 301, which is slidably connected to the outside of the fixed rod 3, and the movable base 301 is hinged to the multiple support frames 4 with hinge rods 302. A first electric push rod 303 is fixedly connected to the outside of the fixed rod 3, and the telescopic end of the first electric push rod 303 is fixedly connected to the movable base 301.

[0029] In practice, when multiple support frames 4 need to be deployed for support, the first electric push rod 303 is activated. The telescopic end of the first electric push rod 303 drives the movable seat 301 to rise, so that the movable seat 301 pushes the support frame 4 to unfold through the hinged hinge rod 302, so that multiple support frames 4 open in an umbrella shape, thereby supporting and lifting the cable.

[0030] Example 2: The winding mechanism includes a winding drum 5, which is fixedly connected to the end of the support frame 4 away from the fixed cover 300. A rotating shaft 502 is rotatably connected inside the winding drum 5. One end of the Velcro 501 is wound around the rotating shaft 502. The rotating shaft 502 passes through the winding drum 5. Fixed rings 503 are fixedly connected to both sides of the winding drum 5. A torsion spring is fixedly connected between the rotating shaft 502 and the fixed rings 503 for pulling the Velcro 501 to wind up.

[0031] The traction mechanism includes a lower traction component and an upper traction component. The lower traction component includes a slide 8, which is slidably connected inside the support frame 4. A return spring 803 is fixedly connected between the slide 8 and one end inside the support frame 4. Magnetic plates 801 are fixedly connected to both sides of the slide 8. The magnetic plates 801 pass through the support frame 4 and are slidably connected to the support frame 4. Multiple placement slots 802 are opened on the top of the magnetic plates 801.

[0032] The lower traction assembly also includes a take-up reel 112, which is disposed inside the fixed cover 300 and rotatably connected to the top of the fixed cover 300. The outer side of the take-up reel 112 is wound and connected to the traction rope 113. The other end of the traction rope 113 passes through the support frame 4 and is fixedly connected to the slide block 8. A gear 111 is fixedly connected to the bottom of the take-up reel 112. A gear disk 11 is disposed inside the fixed cover 300. The gear disk 11 is meshed with the gear 111. A drive motor is fixedly connected inside the fixed cover 300. The output shaft of the drive motor is fixedly connected to the gear disk 11.

[0033] In practice, when the upper traction component is fixed to the fixed frame 7, the drive motor inside the fixed cover 300 is activated. The drive motor drives the gear disk 11 to rotate, which in turn drives multiple gears 111 to rotate. The gears 111 drive the fixedly connected winding reel 112 to rotate, which in turn drives the traction rope 113 to wind up. The traction rope 113 then pulls the slide 8 inside the support frame 4. The magnetic plate 801 on the outside of the slide 8 attracts the upper traction component, causing it to move together. This allows multiple traction mechanisms to simultaneously pull the Velcro 501, covering the cable. Under the combined action of synchronous drive and magnetic linkage, multiple Velcro 501s are synchronously and smoothly pulled and unfolded, like a huge net covering all the cables at once. This not only greatly improves work efficiency but also ensures uniform force along the cable length, avoiding local over-tightness or over-looseness, providing comprehensive and reliable binding force, and effectively preventing the cable from shifting or wearing each other under dynamic loads such as wind vibration.

[0034] The magnetic plate 801 on the slide 8 and the upper traction assembly are connected by magnetic attraction through the magnetic suction plate 905 of the connecting frame 906 for power transmission. This design achieves a non-contact, automatic alignment connection between the traction frame 9 and the slide 8, with a large docking tolerance and no need for precision mechanical interfaces.

[0035] More importantly, magnetic coupling serves as a flexible overload protection mechanism. When unexpected excessive resistance is encountered during the traction process, the magnetic attraction can be overcome and the system disengages, thereby automatically interrupting power transmission. This effectively prevents the mechanism from jamming or damaging the cable, improving the system's safety and fault tolerance.

[0036] In this embodiment, the upper traction assembly includes a traction frame 9 and movable parts disposed on both sides of the traction frame 9. The movable parts include multiple fixed cylinders 901, each of which is slidably connected to a pressing disc 903. A sliding rod 902 is fixedly connected to the bottom of the pressing disc 903. The sliding rod 902 passes through the fixed cylinder 901 and is slidably connected to the fixed cylinder 901. A fourth spring 904 is fixedly connected between the pressing disc 903 and the top of the inside of the fixed cylinder 901. A connecting frame 906 is fixedly connected to the bottom of each of the multiple sliding rods 902. A first contact wheel 907 is rotatably connected inside the connecting frame 906. The first contact wheel 907 extends into the placement groove 802. Magnetic plates 905 are fixedly connected to both sides of the connecting frame 906. The magnetic plates 905 and the magnetic plates 801 are magnetically attracted to each other.

[0037] The upper traction assembly also includes a positioning seat 900, on both sides of the interior of the positioning seat 900, two third electric push rods 12 are fixedly connected, and push blocks 121 are fixedly connected to the telescopic ends of the two third electric push rods 12.

[0038] In specific implementation, the upper traction mechanism activates the third electric push rod 12. The telescopic end of the third electric push rod 12 drives the push block 121 to move, causing the push block 121 to insert into the fixed frame 7 and release the locking component inside the fixed frame 7, thus separating the fixed frame 7 from the fixed bracket 6. Then, the magnetic plate 801 in the lower traction component magnetically attracts multiple magnetic plates 905 on both sides of the traction frame 9, causing the traction frame 9 and the magnetic plate 801 to move together. This causes the traction frame 9 to drive the fixed frame 7 and the Velcro 501 through the upper part of the cable. When the outside of the cable contacts the first contact wheel 907, the first contact wheel 907 is squeezed, causing one of the first contact wheels 907 to rise. The first contact wheel 907 pushes against the connecting frame 906. The connecting frame 906 drives the sliding rod 902 to rise inside the fixed cylinder 901. Since the multiple magnetic plates 905 are always magnetically attracted to the magnetic plate 801, they do not affect the separation of the traction frame 9 and the slide block 8. This allows the multiple first contact wheels 907 to move sequentially above the cable, thereby achieving the purpose of flipping over the cable. This pulls the Velcro 501, causing it to cover the cable. It also drives the locking component at the other end of the fixed frame 7 to be fixed to the fixed frame 6 near the fixed cover 300. The first contact wheel 907 at the bottom of the traction frame 9, together with the floating structure sliding rod 902 with the fourth spring 904, the extrusion plate 903, etc., form an intelligent "flipping" module.

[0039] When encountering a cable, the contact wheel can be lifted, causing the entire connecting frame 906 to rise, thus allowing the traction frame 9 and its fixed frame 7 to smoothly "cross" the cable. The independent floating design of multiple contact wheels allows it to adapt to cables of different heights and arrangements, ensuring a continuous and smooth traction path and solving the problem of traditional towing methods being easily blocked or jammed by cables.

[0040] Example 3: The locking assembly includes two guide rods 702, both of which are fixedly connected inside the fixed frame 7. A sliding plate 703 is slidably connected to the guide rods 702. A first spring 704 is fixedly connected between the sliding plate 703 and the guide rods 702. A locking plug 701 is provided at the bottom of the sliding plate 703. The locking plug 701 passes through the fixed frame 7 and is slidably connected to the fixed frame 7. A first telescopic rod 705 and a second spring 706 are fixedly connected between the locking plug 701 and the sliding plate 703. The second spring 706 is sleeved on the outside of the first telescopic rod 705. Two side plates 708 are provided at the bottom of the locking plug 701, and the side plates 708 are fixedly connected to the fixed frame 7. A guide groove 709 is provided on the outside of the side plates 708.

[0041] The locking assembly also includes a connecting frame 711, which is located at the bottom of the locking plug 701. A lifting roller 710 is rotatably connected inside the connecting frame 711. A baffle 707 is fixedly connected to the bottom of the locking plug 701. A guide shaft 716 is fixedly connected to the outside of the connecting frame 711. The guide shaft 716 extends into the side plate 708 and is slidably connected to the guide shaft 716. A slide plate 712 is fixedly connected to the bottom inside the fixed frame 7. A sliding seat 713 is slidably connected to the outside of the slide plate 712. A second telescopic rod 715 is fixedly connected between the sliding seat 713 and the connecting frame 711. A contact plate 717 is provided inside the fixed frame 7. A third telescopic rod 718 and a third spring 719 are fixedly connected to the contact plate 717 and the inside of the fixed frame 7. A pull rope 720 is fixedly connected between the contact plate 717 and the slide plate 712. When the push block 121 is inserted into the fixed frame 7, it contacts the contact plate 717.

[0042] In practical implementation, when the traction mechanism needs to move the fixed frame 7, the locking plug 701 in the locking assembly inside the fixed frame 7 hooks into the L-shaped groove 601. When the third electric push rod 12 inside the positioning seat 900 drives the push block 121 to insert into the fixed frame 7, the push block 121 presses against the contact plate 717, causing the contact plate 717 to move laterally. At this time, the pull rope 720 pulls the sliding seat 713 on the outside of the slide plate 712 to slide. When the sliding seat 713 slides, it drives the connecting frame 711 to move via the second telescopic rod 715. Meanwhile, the guide shaft 716 fixed on the outside of the connecting frame 711 rises along the guide groove 709. The lifting roller 710 lifts the locking plug 701 upward, causing the front part of the locking plug 701 to separate from the L-shaped groove 601. As the lifting roller 710 moves, the locking plug 701 moves along with the baffle 707 and slides out of the L-shaped groove 601, causing the fixing frame 7 to separate from the fixing bracket 6. As the fixing frame 7 moves, the locking plug 701 at the other end of the fixing frame 7 is inserted into the fixing bracket 6 near the fixing cover 300. The pushing block 121 is then slid out of the fixing frame 7, causing the locking plug 701 to hook into another L-shaped groove 601, locking and pulling the Velcro 501. At the same time, the upper traction component separates from the fixing frame 7. It can be divided into the following steps: Locked state: The locking plug 701 is hooked into the L-shaped groove 601, which utilizes the L-shaped anti-reverse structure to provide tensile and vibration-resistant mechanical interlocking, which is far more reliable than simple friction or magnetic fixation.

[0043] Release process: The lifting roller 710 moves along a specific trajectory to achieve a combined action of first vertically lifting the locking plug to disengage it from the hook, and then horizontally guiding it out of the slot. This design simulates the reasonable steps of manual unlocking, ensuring a smooth and jam-free release process, and effectively preventing accidental disengagement.

[0044] The "automatic relocking at the end of the traction" was completed, forming a closed-loop operation. After the fixed frame 7 is pulled to the other end, the locking plug 701 at the other end can automatically insert and hook into the L-shaped groove of the new fixed frame 6.

[0045] When the push block 121 retracts, the locking plug is reset and fastened by the action of springs such as the first spring 704 and the second spring 706, automatically completing the fixation of the Velcro 501 terminal after traction. This realizes a fully automatic cycle from "unlocking → traction → relocking", without the need for manual intervention to fix the terminal, and the operation process is complete and efficient.

[0046] In this embodiment, a pressing mechanism is also included on the top of the traction frame 9. The pressing mechanism includes two pressing frames 10. Multiple fourth telescopic rods 1001 are fixedly connected to the bottom of each of the two pressing frames 10. A limit frame 1003 is fixedly connected to the bottom of each fourth telescopic rod 1001. A second contact wheel 1004 is rotatably connected inside the limit frame 1003. A fifth spring 1002 is fixedly connected between the fourth telescopic rod 1001 and the pressing frame 10. Limit shafts 1005 are fixedly connected to both sides of the pressing frame 10. Limiting frames 1006 are provided on both sides of the 0, and the limiting frames 1006 are fixedly connected to the traction frame 9. The limiting shaft 1005 extends into the limiting frame 1006. A descending plate 1007 is provided between the two extrusion frames 10. A fifth telescopic rod 1008 is fixedly connected between the descending plate 1007 and the extrusion frame 10. A second electric push rod 1010 is fixedly connected to the top of the traction frame 9. A mounting frame 1009 is fixedly connected to the telescopic end of the second electric push rod 1010. The mounting frame 1009 is fixedly connected to the descending plate 1007.

[0047] In practice, after the positioning seat 900 separates from the fixed frame 7, the fixed frame 7 is fixed to the fixed bracket 6 by the locking component. At this time, by releasing the take-up reel 112, the slide 8 moves towards the take-up drum 5 by the pull of the return spring 803. At the same time, by activating the second electric push rod 1010, the second electric push rod 1010 pulls the mounting bracket 1009, causing the mounting bracket 1009 to drive the lowering plate 1007 to descend. The lowering plate 1007 drives the compression frame 10 to slide outward of the traction frame 9 through the fifth telescopic rod 1008, and then descends vertically, so that the second contact wheel 1004 contacts the top of the hook and loop fastener 501, causing the second contact wheel 1004 to compress the hook and loop fastener 501. The hook and loop fastener 501 and hook and loop fastener 401 are attached to each other to strengthen the fixation of the cable. The fifth spring 1002 is fixedly connected between the limiting frame 1003 on the multiple second contact wheels 1004 and the compression frame 10. The fifth spring 1002 compresses the limiting frame 1003, which can also compress cables placed at an angle. This process eliminates gaps caused by insufficient attachment of the hook and loop fastener or the weight of the cable itself, significantly enhancing the overall integrity of the cable bundle and its resistance to wind vibration and displacement. The fixation is upgraded from "attachment" to "tight compression", which greatly improves the reliability. In winter, the cable can also be moved by the second contact wheel 1004 to prevent snow from accumulating on the outside of the cable.

[0048] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.

[0049] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0050] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to any specific implementation. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A mobile electric controllable wire supporting platform, comprising a mobile vehicle (1), a threaded inner cylinder (201) fixedly connected to the top of the mobile vehicle (1), a threaded rod (202) threadedly connected to the inside of the threaded inner cylinder (201), and a fixed rod (3) fixedly connected to the top of the threaded rod (202), characterized in that, Also include: The fixed cover (300) is fixedly connected to the top of the fixed rod (3), and a plurality of support frames (4) are hingedly connected to the outside of the fixed cover (300). A support unfolding assembly is arranged outside the fixed rod (3) to control the synchronous unfolding of the plurality of support frames (4). A plurality of winding mechanisms are arranged at the ends of the plurality of support frames (4) away from the fixed cover (300). The top of the support frame (4) is fixedly connected with a magic mother sticker (401), and the inside of the winding mechanism is provided with a magic son sticker (501). The magic son sticker (501) is adhered to the opposite surface of the magic mother sticker (401). The top of the support frame (4) is fixedly connected with a fixed frame (6), and the opposite side of the two fixed frames (6) is provided with an L-shaped slot (601). The one end of the magic son sticker (501) is provided with a fixed frame (7), and the outside of the fixed frame (7) is fixedly connected with a pull frame (700). The pull frame (700) is fixedly connected with the magic son sticker (501). The inside of the fixed frame (7) is provided with two groups of locking assemblies for fixing the fixed frame (6). The outside of the support frame (4) is provided with a traction mechanism for driving the fixed frame (7) to move on the top of the magic mother sticker (401). When the cable is placed on the magic mother sticker (401), the magic son sticker (501) is covered on the top of the magic mother sticker (401) and adhered.

2. A mobile electrically controllable wire-holding platform according to claim 1, characterized in that: The winding mechanism includes a winding drum (5) fixedly connected to the end of the support frame (4) away from the fixed cover (300). The inside of the winding drum (5) is rotatably connected with a rotating shaft (502). The one end of the magic son sticker (501) is wound on the rotating shaft (502). The rotating shaft (502) penetrates the winding drum (5). The two sides of the winding drum (5) are fixedly connected with a fixed ring (503). The rotating shaft (502) and the fixed ring (503) are fixedly connected with a torsional spring for pulling the magic son sticker (501) to wind.

3. A mobile electrically controllable wire supporting platform according to claim 2, characterized in that: The traction mechanism includes a lower traction assembly and an upper traction assembly. The lower traction assembly includes a sliding seat (8) slidably connected inside the support frame (4). The sliding seat (8) and one end of the support frame (4) are fixedly connected with a return spring (803). The two sides of the sliding seat (8) are fixedly connected with a magnetic plate (801). The magnetic plate (801) penetrates the support frame (4) and is slidably connected with the support frame (4). The top of the magnetic plate (801) is provided with a plurality of placing grooves (802).

4. A mobile electrically controllable wire supporting platform according to claim 3, characterized in that: The lower traction assembly further comprises a winding disc (112) arranged inside the fixed cover (300) and rotationally connected to the top end inside the fixed cover (300), the outer side of the winding disc (112) is wound and connected to a traction rope (113), the other end of the traction rope (113) passes through the support frame (4) and is fixedly connected to the sliding seat (8), the bottom of the winding disc (112) is fixedly connected with a gear (111), the inside of the fixed cover (300) is provided with a gear disc (11), the gear disc (11) is engagedly connected with the gear (111), and the inside of the fixed cover (300) is fixedly connected with a driving motor, the output shaft of the driving motor is fixedly connected with the gear disc (11).

5. A mobile electrically controllable wire supporting platform according to claim 3, characterized in that: The upper traction assembly comprises a traction frame (9) and moving pieces arranged on both sides of the traction frame (9), the moving pieces comprise a plurality of fixed cylinders (901), the inside of each fixed cylinder (901) is slidably connected with a pressing disc (903), the bottom of the pressing disc (903) is fixedly connected with a sliding rod (902), the sliding rod (902) penetrates through the fixed cylinder (901) and is slidably connected with the fixed cylinder (901), the fourth spring (904) is fixedly connected between the pressing disc (903) and the top end inside the fixed cylinder (901), the bottom of each sliding rod (902) is fixedly connected with a connecting frame (906), the inside of the connecting frame (906) is rotationally connected with a first contact wheel (907), the first contact wheel (907) partially extends into the placing groove (802), and the both sides of the connecting frame (906) are fixedly connected with magnetic attraction plates (905), and the magnetic attraction plates (905) are magnetically attracted to the magnetic plate (801).

6. A mobile electrically controllable wire supporting platform according to claim 5, characterized in that: The upper traction assembly further comprises a positioning seat (900), two third electric push rods (12) are fixedly connected to the inside of the positioning seat (900), and the telescopic ends of the two third electric push rods (12) are fixedly connected with push blocks (121).

7. The mobile electrically controllable wire-holding platform according to claim 1, wherein: The locking assembly comprises two guide rods (702) fixedly connected to the inside of the fixed frame (7), and the guide rods (702) are slidably connected with sliding plates (703), the first springs (704) are fixedly connected between the sliding plates (703) and the guide rods (702), the locking plugs (701) are arranged at the bottom of the sliding plates (703), the locking plugs (701) penetrate through the fixed frame (7) and are slidably connected with the fixed frame (7), the first telescopic rods (705) and the second springs (706) are fixedly connected between the locking plugs (701) and the sliding plates (703), the second springs (706) are sleeved outside the first telescopic rods (705), two side plates (708) are arranged at the bottom of the locking plugs (701), and the side plates (708) are fixedly connected with the fixed frame (7), and the guide grooves (709) are formed in the outer sides of the side plates (708).

8. A mobile electrically controllable wire supporting platform according to claim 7, characterized in that: The locking assembly further comprises a connecting frame (711) arranged at the bottom of the locking plug (701), and a jacking roller (710) rotatably connected inside the connecting frame (711); the bottom of the locking plug (701) is fixedly connected with a baffle (707); the outer side of the connecting frame (711) is fixedly connected with a guide shaft (716) extending into the inside of the side plate (708) and slidably connected with the guide shaft (716); the inside bottom of the fixed frame (7) is fixedly connected with a sliding plate (712), and the outer side of the sliding plate (712) is slidably connected with a sliding seat (713); the second telescopic rod (715) is fixedly connected between the sliding seat (713) and the connecting frame (711); the inside of the fixed frame (7) is provided with a contact plate (717), and the inside of the fixed frame (7) is fixedly connected with the third telescopic rod (718) and the third spring (719) through the contact plate (717); the contact plate (717) is fixedly connected with the pulling rope (720) between the sliding plate (712).

9. The mobile electrically controllable wire-holding platform according to claim 1, wherein: The traction frame (9) is provided with an extrusion mechanism, which comprises two extrusion frames (10), and the bottom of each extrusion frame (10) is fixedly connected with a plurality of fourth telescopic rods (1001), and the bottom of each fourth telescopic rod (1001) is fixedly connected with a limiting frame (1003), and the inside of the limiting frame (1003) is rotatably connected with a second contact wheel (1004); the fifth spring (1002) is fixedly connected between the fourth telescopic rod (1001) and the extrusion frame (10); the limiting shaft (1005) is fixedly connected to the two sides of the extrusion frame (10), and the limiting frame (1006) is arranged on the two sides of the extrusion frame (10) and fixedly connected with the traction frame (9); the limiting shaft (1005) extends into the inside of the limiting frame (1006); the descending plate (1007) is arranged between the two extrusion frames (10), and the fifth telescopic rod (1008) is fixedly connected between the descending plate (1007) and the extrusion frame (10); the second electric push rod (1010) is fixedly connected to the top of the traction frame (9), and the telescopic end of the second electric push rod (1010) is fixedly connected with the mounting frame (1009), and the mounting frame (1009) is fixedly connected with the descending plate (1007).

10. The mobile electrically controllable wire-holding platform according to claim 1, wherein: The unfolding assembly comprises a moving seat (301) slidably connected to the outer side of the fixed rod (3), and a hinged rod (302) hingedly connected between the moving seat (301) and the plurality of support frames (4); the first electric push rod (303) is fixedly connected to the outer side of the fixed rod (3), and the telescopic end of the first electric push rod (303) is fixedly connected with the moving seat (301).

Citation Information

Patent Citations

  • Cable bracket and cable bracket assembly

    CN214069466U