Processing system and assembly process of traveling cable protection system

By using a semi-circular ring structure and an intelligent assembly system, the high cost and complex assembly problems of existing mobile cable protection structures are solved, achieving lightweight, wear-resistant, and flexible cable protection.

CN121863267APending Publication Date: 2026-04-14ZHEJIANG KEPPEL INTELLIGENT EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-11
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing mobile cables have high external protection structures that are costly, complex to assemble, and difficult to bend at small angles. In particular, metal wire braids are heavy and non-metallic materials have low abrasion resistance.

Method used

Employing a semi-circular ring structure, the design of insertion holes and tubes allows for the continuous assembly of the semi-circular rings using a processing system, forming a structure similar to a universal joint. Combined with the intelligent operation of cylinders and servo motors, it enables flexible bending and locking.

Benefits of technology

It reduces processing costs, improves wear resistance and bending performance, reduces weight, achieves efficient and flexible cable protection, and is easy to operate.

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Abstract

The invention discloses a processing system and an assembly process of a traveling cable protection system, and relates to the technical field of traveling cable protection structures. The processing system and the assembling technology of the moving cable protection system are used for assembling a moving cable protection structure, the moving cable protection structure comprises a semicircular ring, notches which are correspondingly spliced are formed in the two ends of the semicircular ring, and the moving cable protection structure is formed by combining a plurality of identical parts. Each layer is formed by splicing a pair of semicircular rings, two adjacent layers can be connected in an inserted mode to achieve locking, the two adjacent layers can rotate relative to each other, a structure similar to a universal joint is formed, then the metal pipe fitting capable of being flexibly bent is formed, a cable can be well sleeved and protected, the anti-pressure ability is good, and bending of the cable is not affected. And by utilizing the processing system, the semicircular rings can be continuously assembled, the processing efficiency is high, the traveling cable protection structure with the specified length can be assembled as required, and the use is convenient.
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Description

Technical Field

[0001] This invention relates to the field of mobile cable protection structure technology, specifically to a processing system and assembly process for a mobile cable protection system. Background Technology

[0002] Floating cables are special cables designed for reciprocating motion or dynamic environments. They are widely used in marine engineering, industrial machinery, new energy equipment and other fields. Their core function is to stably transmit power or signals under conditions of frequent bending, stretching or torsion. The external protective structure (such as tensile fiber braided layer, armored armor, high wear-resistant sheath and buffer filling layer, etc.) is the key to ensuring its reliability. It can resist mechanical stress, environmental corrosion and wear, prevent conductor breakage or insulation failure, and extend service life by optimizing stress distribution. It can ensure the continuous safe operation of equipment under extreme conditions and is the "lifeline" for power and signal transmission in dynamic scenarios.

[0003] Currently, the external protective structure of mobile cables is generally made of metal wires or non-metallic materials woven or extruded to form a dense sheath. If it is made of metal wires, the overall weight is relatively heavy, making it inconvenient to transport and drag. If it is made of non-metallic materials, the wear resistance is relatively low, and the dense weaving makes it difficult to bend at small angles. Publication number CN217115474U discloses a cable protection device, particularly a mobile cable protection device. It includes several annular protection components arranged in series, with these components connected in a flexible series connection. Each annular protection component includes a support frame with several cable separation cavities for placing cables. The outer ring of the support frame is provided with an anti-collision ring. It offers high operational flexibility, providing good bending tolerance while protecting the cable, and is compatible with various cable specifications.

[0004] The existing cable protection devices described above use several circular protection components flexibly connected in series to form a protective structure for the cable. While their segmented structure provides good flexibility, each circular protection component has a relatively complex shape, resulting in higher processing costs and assembly difficulties compared to existing protection structures, hindering widespread adoption. Therefore, there is an urgent need for a low-cost protection structure with a simple assembly process to replace the existing cable protection structure. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides a processing system and assembly process for a mobile cable protection system, thus solving the problems of existing technologies.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solution: a processing system for a mobile cable protection system, used to assemble a mobile cable protection structure, the mobile cable protection structure including a semi-circular ring, the two ends of the semi-circular ring having corresponding splicing notches, and the center of the notch having an insertion hole, the outer arc of the semi-circular ring having a downwardly extending side strip fixedly connected in the middle, and the inner bottom of the side strip having an insertion tube fixedly connected in the bottom, the end of the insertion tube having a triangular opening, the semi-circular rings being spliced ​​in pairs to form a ring, rotating 90° and descending, then assembling the next set of semi-circular rings, and using the insertion tube of the next set of semi-circular rings to pass through the insertion hole of the previous set of semi-circular rings, and using the processing system to open the insertion tube along the triangular opening to lock the previous set of semi-circular rings; The processing system includes a chassis and a feed cylinder fixed to its top. The feed cylinder is used to feed the floating cable protection structure. A support cylinder coaxial with the feed cylinder is installed at the bottom of the inner cavity of the chassis. An assembly structure is rotatably installed on the support cylinder. The assembly structure supports a set of floating cable protection structures that fall down and then presses them towards the center to assemble them. Then, it drives the floating cable protection structure to rotate 90° and descend one layer before continuing to assemble the next set of floating cable protection structures. A core mold is fixedly connected to the top of the inner cavity of the chassis and at the center of the assembly structure. This core mold guides the semicircular ring to form a circular ring and squeezes the insertion tube to open the triangular opening.

[0007] Preferably, the assembly structure includes a rotating ring and four support plates evenly distributed circumferentially on its inner side, and four sets of limiting mounting frames. The support plates are used to support the falling floating cable protection structure. The inner side of the limiting mounting frame is longitudinally rotatably connected to a cylinder, and a pressure block is installed at the output end of the cylinder.

[0008] Preferably, the cylinder is externally fixed with a fixing ring, and the bottom of the fixing ring is rotatably connected to a second steel ball. The top of the support cylinder is set as a guide edge with a uniform transition, which is high on the left and right sides and low on the front and back sides. When the cylinder is driven to rotate by the rotating ring, the cylinder swings up and down by the second steel ball rolling on the guide edge.

[0009] Preferably, the side of the pressure block away from the cylinder has an arc surface adapted to the semi-circular ring, and the bottom of the arc surface has a support edge to support the semi-circular ring. The top of the arc surface is covered with an adhesive strip. The other side of the pressure block has an insertion hole that fits outside the cylinder output end. A spring is provided inside the insertion hole and at the cylinder end. A positioning screw is threaded to the top of the cylinder output end. The top of the pressure block has a sliding groove for the positioning screw to pass through and for reserving a sliding range.

[0010] Preferably, the chassis includes a chassis body and a bottom shell fixedly connected to its bottom; A toothed ring is fixedly connected to the outer surface of the rotating ring, and a servo motor is fixedly connected to one side of the top of the bottom shell through a motor cover, and a gear that meshes with the toothed ring is fixedly connected to the output end of the servo motor.

[0011] Preferably, the bottom of the rotating ring is coaxially fixedly connected to a support ring via a bracket, and a third steel ball is rotatably connected to the inner side of the support ring. The outer surface of the support cylinder is provided with an annular groove that matches the third steel ball. The top of the inner cavity of the box is fixedly connected to a positioning ring sleeved on the outside of the rotating ring, and a plurality of first steel balls are rotatably connected to the inner surface of the positioning ring in a uniform circumferential direction.

[0012] Preferably, the feed cylinder has symmetrically arranged cavities for positioning and moving cable protection structures on both sides inside, and the top of the cavity is shaped like a flared mouth. The bottom of the feed cylinder is fixedly connected to or inserted into the top of the box body, and the top of the box body has a feed port communicating with the cavity.

[0013] Preferably, the servo motor is controlled by an external control system via wires, and the cylinder is supplied with air by an external air pump unit via an air pipe. Each processing system is connected to a control system and an air pump unit, or a control system and an air pump unit are connected to multiple processing systems for overall control.

[0014] This invention also discloses an assembly process for a floating cable protection system, comprising the following steps: S1. The unassembled floating cable protection structure is fed into the feed cylinder, and the bottom floating cable protection structure falls onto the assembly structure. S2. Push the assembly structure towards the center of the pair of floating cable protection structures, and then drive the assembly structure to rotate 90°, while simultaneously lowering the pair of floating cable protection structures that have been clamped together by one layer. S3. The drive assembly structure squeezes and connects the next set of mobile cable protection structures, while simultaneously allowing the insertion tube of the semi-circular ring to pass through the insertion hole of the previous set of semi-circular rings, and causing the insertion tube to open along the triangular opening to lock the previous set of semi-circular rings. This process is repeated until the required number of mobile cable protection structures are assembled. The mobile cable protection structures are discharged from the bottom of the chassis and can be pulled out by workers or output by a conveyor belt.

[0015] Preferably, the first pair of floating cable protection structures does not have side strips and conduits, and the last pair of floating cable protection structures is fixed by anchors that are constructed in a manner similar to conduits.

[0016] This invention provides a processing system and assembly process for a mobile cable protection system. Compared with the prior art, it has the following advantages: 1. The processing system and assembly process of this mobile cable protection system: The mobile cable protection structure is composed of several identical parts. Each layer is joined by a pair of semicircular rings, and adjacent layers can be interlocked and locked together. Adjacent layers can rotate relative to each other, forming a structure similar to a universal joint, thus constituting a flexible and bendable metal tube. It can effectively protect the cable, has good compressive strength, and does not affect the bending of the cable. The pure metal design has better wear resistance than existing polymer material sheaths, and the joint-shaped structure has better bending performance than existing densely braided sheaths, reducing the overall weight. Furthermore, it is composed of several identical simple structural parts, resulting in lower processing costs. The processing system allows for continuous assembly of the semicircular rings, resulting in high processing efficiency. Mobile cable protection structures of specified lengths can be assembled as needed, making it convenient to use.

[0017] 2. The processing system and assembly process of this mobile cable protection system have multiple functions. The assembly structure can realize the functions of supporting the falling semi-circular ring, pushing the semi-circular ring to splice and lock, and turning and lowering. It can realize the complete installation process of the mobile cable protection structure. It is intelligently operated and only requires the control of cylinders and servo motors. There are not many complex electrical components, the control difficulty is low, and the production cost is low.

[0018] 3. The processing system and assembly process of this mobile cable protection system, by setting a support edge on the pressure block, can cooperate with the middle of the semi-circular ring and the support plates on both sides to better support the semi-circular ring, ensuring that it is in a horizontal state and facilitating accurate docking. The rubber strip on the pressure block can maintain a certain friction force to support the mobile cable protection structure after the pressure block is deflected and tilted downwards, preventing it from falling as a whole. The elastic setting between the pressure block and the cylinder can also compensate for horizontal displacement after the pressure block and the cylinder are deflected and tilted downwards. Attached Figure Description

[0019] Figure 1 This is an assembly diagram of the floating cable protection structure of the present invention; Figure 2 This is an exploded view of the floating cable protection structure of the present invention; Figure 3 This is a schematic diagram of the processing system of the present invention; Figure 4 This is a cross-sectional view of a partial structure of the processing system of the present invention; Figure 5 This is a schematic diagram of the core mold, assembly structure, servo motor, and gears of the present invention; Figure 6 For the present invention Figure 5 A schematic diagram of the local structure in the middle; Figure 7 For the present invention Figure 4 A magnified view of a section at point A in the middle; Figure 8 For the present invention Figure 5 Exploded view of a local structure in the middle; Figure 9 This is a front view of the support cylinder of the present invention; Figure 10 This is a schematic diagram of the installation of the pressure block and cylinder of the present invention; Figure 11 This is a schematic diagram of the cylinder, the retaining ring, and the second steel ball of the present invention.

[0020] In the diagram: 1. Floating cable protection structure; 11. Semi-circular ring; 12. Socket; 13. Side strip; 14. Insertion tube; 15. Triangular joint; 2. Chassis; 21. Enclosure; 22. Bottom shell; 23. Motor cover; 24. Positioning ring; 241. First steel ball; 3. Feed cylinder; 4. Support legs; 5. Core mold; 6. Support cylinder; 61. Annular groove; 62. Guide edge; 7 Assembly structure; 71 Rotary ring; 72 Support plate; 73 Limiting mounting frame; 74 Cylinder; 75 Pressure block; 751 Support edge; 752 Rubber strip; 753 Slide groove; 76 Toothed ring; 77 Positioning screw; 78 Spring; 79 Fixing ring; 710 Second steel ball; 711 Bracket; 712 Support ring; 713 Third steel ball; 8 servo motors; 9 gears. Detailed Implementation

[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0022] See Figures 1-11 This invention discloses a processing system for a mobile cable protection system and provides the following three technical solutions: First implementation method: for assembling a mobile cable protection structure 1, the mobile cable protection structure 1 includes a semi-circular ring 11, the two ends of the semi-circular ring 11 are provided with corresponding splicing notches, and the center of the notch is provided with an insertion hole 12. The outer arc of the semi-circular ring 11 is fixedly connected to a downwardly extending side strip 13, and the bottom of the inner side of the side strip 13 is fixedly connected to a tube 14. The end of the tube 14 is provided with a triangular opening 15. After the semi-circular rings 11 are spliced ​​in pairs to form a ring, rotate 90° and descend, then assemble the next set of semi-circular rings 11, and use the tube 14 of the next set of semi-circular rings 11 to pass through the insertion hole 12 of the previous set of semi-circular rings 11, and use a processing system to make the tube 14 open along the triangular opening 15 to lock the previous set of semi-circular rings 11. The processing system includes a chassis 2 and a feed cylinder 3 fixed to its top. The feed cylinder 3 is used to feed the floating cable protection structure 1. A support cylinder 6 coaxial with the feed cylinder 3 is installed at the bottom of the inner cavity of the chassis 2. An assembly structure 7 is rotatably installed on the support cylinder 6. The assembly structure 7 supports a set of floating cable protection structures 1 that have fallen down and then squeezes them towards the center to assemble them. Then, it drives the floating cable protection structure 1 to rotate 90° and descend one layer before continuing to assemble the next set of floating cable protection structures 1. A core mold 5 is fixedly connected to the top of the inner cavity of the chassis 2 and at the center of the assembly structure 7. It is used to guide the semi-circular ring 11 to form a ring and squeeze the insertion tube 14 to open the triangular opening 15.

[0023] The mobile cable protection structure 1 is composed of several identical parts. Each layer is joined by a pair of semicircular rings 11, and adjacent layers can be interlocked and locked together. Adjacent layers can rotate relative to each other, forming a structure similar to a universal joint. This constitutes a flexible metal tube that can effectively protect the cable. It has good compressive strength and does not affect the bending of the cable. The pure metal design has better wear resistance than existing polymer material sheaths, and the joint-shaped structure has better bending performance than existing densely braided sheaths, reducing the overall weight. It is also composed of several identical simple structural parts, resulting in lower processing costs. Furthermore, the semicircular rings 11 can be continuously assembled using a processing system, resulting in high processing efficiency. The mobile cable protection structure 1 of a specified length can be assembled as needed, making it convenient to use.

[0024] The second embodiment differs from the first embodiment in that the assembly structure 7 includes a rotating ring 71 and four support plates 72 evenly distributed around its inner side and four sets of limiting mounting frames 73. The support plates 72 are used to support the falling floating cable protection structure 1. The inner side of the limiting mounting frame 73 is longitudinally rotatably connected to a cylinder 74, and a pressure block 75 is installed at the output end of the cylinder 74. A fixing ring 79 is fixedly sleeved on the outside of the cylinder 74, and a second steel ball 710 is rotatably connected to the bottom of the fixing ring 79. The top of the support cylinder 6 is set as a guide edge 62 with a uniform transition of high on the left and right sides and low on the front and back sides. When the cylinder 74 is driven to rotate by the rotating ring 71, the cylinder 74 swings up and down by the second steel ball 710 rolling on the guide edge 62. The chassis 2 includes a housing 21 and a bottom shell 22 fixedly connected to its bottom; A gear ring 76 is fixedly connected to the outer surface of the rotating ring 71. A servo motor 8 is fixedly connected to one side of the top of the bottom shell 22 through the motor cover 23. The output end of the servo motor 8 is fixedly connected to a gear 9 that meshes with the gear ring 76. The servo motor 8 rotates repeatedly in both directions to avoid the problem of air tube entanglement caused by unidirectional rotation.

[0025] A support ring 712 is coaxially fixed to the bottom of the rotating ring 71 via a bracket 711, and a third steel ball 713 is rotatably connected to the inner side of the support ring 712. An annular groove 61 adapted to the third steel ball 713 is formed on the outer surface of the support cylinder 6. A positioning ring 24, sleeved on the outside of the rotating ring 71, is fixedly connected to the top of the inner cavity of the housing 21, and multiple first steel balls 241 are rotatably connected to the inner surface of the positioning ring 24 in a uniform circumferential direction. The support ring 712 provides concentric positioning and support for the rotating ring 71 at the bottom, and the positioning ring 24 provides concentric positioning for the rotating ring 71 at the top, ensuring concentricity and thus guaranteeing machining accuracy.

[0026] The feed cylinder 3 has symmetrically arranged cavities for positioning and moving cable protection structure 1 on both sides inside, and the top of the cavity is shaped like a flared mouth. The bottom of the feed cylinder 3 is fixedly connected or inserted into the top of the box 21, and the top of the box 21 has a feed port that communicates with the cavity.

[0027] The servo motor 8 is controlled by an external control system via wires, and the cylinder 74 is supplied with air by an external air pump unit via an air pipe. Each processing system is connected to a control system and an air pump unit, or a control system and an air pump unit are connected to multiple processing systems for overall control.

[0028] The assembly structure 7 has multiple functions, including supporting the falling semi-circular ring 11, pushing the semi-circular ring 11 to splice and lock together, and turning and lowering it. It can realize the complete installation process of the floating cable protection structure 1. It is intelligently operated and only requires the control of the cylinder 74 and the servo motor 8. There are not many complex electrical components, the control difficulty is low, and the production cost is low.

[0029] The third embodiment differs from the second embodiment in that: the side of the pressure block 75 away from the cylinder 74 is formed into an arc surface that fits the semi-circular ring 11, and the bottom of the arc surface is provided with a support edge 751 to support the semi-circular ring 11. The extension length of the support edge 751 is less than the thickness of the semi-circular ring 11 to avoid exceeding the inner surface of the semi-circular ring 11. The top of the arc surface is covered with an adhesive strip 752. The upper half of the pressure block 75 matches the semi-circular ring 11, and the lower half matches the side strip 13 to push the semi-circular ring 11 and the side strip 13 at the same time. The other side of the pressure block 75 is provided with an insertion hole that fits outside the output end of the cylinder 74. A spring 78 is provided inside the insertion hole and located at the end of the cylinder 74. A positioning screw 77 is threadedly connected to the top of the output end of the cylinder 74. The top of the pressure block 75 is provided with a groove 753 for the positioning screw 77 to pass through and for reserving a sliding range.

[0030] By setting a support edge 751 on the pressure block 75, it can cooperate with the middle of the semi-circular ring 11 and the support plates 72 on both sides to better support the semi-circular ring 11, ensuring that it is in a horizontal state and facilitating accurate docking. The rubber strip 752 on the pressure block 75 can maintain a certain friction force to support the floating cable protection structure 1 after the pressure block 75 is tilted downward, preventing it from falling as a whole. The elastic setting between the pressure block 75 and the cylinder 74 can also compensate for the horizontal displacement after the pressure block 75 and the cylinder 74 are tilted downward.

[0031] This invention also discloses an assembly process for a floating cable protection system, comprising the following steps: S1. The unassembled floating cable protection structure 1 is fed into the feed cylinder 3, and the bottom floating cable protection structure 1 falls onto the support edge 751 and the support plate 72. S2. The cylinder 74 at the corresponding position of the movable cable protection structure 1 pushes a pair of movable cable protection structures 1 toward the center, so that the ends of the two semi-circular rings 11 are closed and fitted onto the core mold 5. Then, the cylinder 74 is slightly vented to shrink a small section and is elastically clamped by the spring 78. Then, the servo motor 8 is started, and the meshing of the gear 9 and the gear ring 76 drives the assembly structure 7 to rotate 90° as a whole. The cylinder 74 deflects downward along the guide edge 62 at the top of the support cylinder 6, so that the pair of movable cable protection structures 1 that are clamped together descends one layer. The other two cylinders 74 slide from the low point of the guide edge 62 to the high point to reach a horizontal state, thereby replacing the original two cylinders 74 to assemble the next set of movable cable protection structures 1. S3. Repeat the operation of S2, so that the cylinders 74 on both sides, which are in a horizontal state, push the moving cable protection structure 1 again, so that the insertion tube 14 on it passes through the insertion hole 12 of the lower semi-circular ring 11, and the insertion tube 14 impacts the core mold 5. The curvature of the surface of the core mold 5 is used to make the insertion tube 14 open along the triangular opening 15 to lock the lower semi-circular ring 11. This process is repeated until the required number of moving cable protection structures 1 are assembled. The moving cable protection structure 1 is discharged from the bottom of the machine box 2 and can be taken out by the worker or output by the conveyor belt.

[0032] The first pair of mobile cable protection structures 1 does not have side strips 13 and inserts 14, while the last pair of mobile cable protection structures 1 is fixed by anchors constructed similarly to inserts 14.

[0033] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.

[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A processing system for a mobile cable protection system, used for assembling mobile cable protection structures, characterized in that: The mobile cable protection structure includes a semi-circular ring. The two ends of the semi-circular ring have corresponding splicing notches, and the center of the notch has an insertion hole. A downwardly extending side strip is fixedly connected to the middle of the outer arc of the semi-circular ring, and an insertion tube is fixedly connected to the bottom of the inner side of the side strip. The end of the insertion tube has a triangular opening. After the semi-circular rings are spliced ​​in pairs to form a circular ring, they are rotated 90° and lowered. Then, the next set of semi-circular rings is assembled, and the insertion tube of the next set of semi-circular rings passes through the insertion hole of the previous set of semi-circular rings. The processing system is used to open the insertion tube along the triangular opening to lock the previous set of semi-circular rings. The processing system includes a chassis and a feed cylinder fixed to its top. The feed cylinder is used to feed the floating cable protection structure. A support cylinder coaxial with the feed cylinder is installed at the bottom of the inner cavity of the chassis. An assembly structure is rotatably installed on the support cylinder. The assembly structure supports a set of floating cable protection structures that fall down and then presses them towards the center to assemble them. Then, it drives the floating cable protection structure to rotate 90° and descend one layer before continuing to assemble the next set of floating cable protection structures. A core mold is fixedly connected to the top of the inner cavity of the chassis and at the center of the assembly structure. This core mold is used to guide the semicircular ring to form a circular ring and to squeeze the insertion tube to open the triangular opening.

2. The processing system for a mobile cable protection system according to claim 1, characterized in that: The assembly structure includes a rotating ring and four support plates evenly distributed around its inner side, and four sets of limiting mounting frames. The support plates are used to support the falling floating cable protection structure. The inner side of the limiting mounting frame is longitudinally rotatably connected to a cylinder, and a pressure block is installed at the output end of the cylinder.

3. The processing system for a mobile cable protection system according to claim 2, characterized in that: The cylinder is externally fixed with a fixing ring, and a second steel ball is rotatably connected to the bottom of the fixing ring. The top of the support cylinder is set as a guide edge with a uniform transition, which is high on the left and right sides and low on the front and back sides. When the cylinder is driven to rotate by the rotating ring, the cylinder swings up and down by the second steel ball rolling on the guide edge.

4. The processing system for a mobile cable protection system according to claim 2, characterized in that: The pressure block has an arc surface on the side away from the cylinder that is adapted to the semi-circular ring, and the bottom of the arc surface has a support edge to support the semi-circular ring. The top of the arc surface is covered with an adhesive strip. The other side of the pressure block has an insertion hole that fits outside the cylinder output end. A spring is installed inside the insertion hole and at the cylinder end. A positioning screw is threaded to the top of the cylinder output end. The top of the pressure block has a sliding groove for the positioning screw to pass through and for reserving a sliding range.

5. The processing system for a mobile cable protection system according to claim 2, characterized in that: The chassis includes a chassis body and a bottom shell fixedly connected to its bottom; A toothed ring is fixedly connected to the outer surface of the rotating ring, and a servo motor is fixedly connected to one side of the top of the bottom shell through a motor cover, and a gear that meshes with the toothed ring is fixedly connected to the output end of the servo motor.

6. The processing system for a mobile cable protection system according to claim 2, characterized in that: The bottom of the rotating ring is coaxially fixedly connected to a support ring via a bracket, and a third steel ball is rotatably connected to the inner side of the support ring. The outer surface of the support cylinder is provided with an annular groove that matches the third steel ball. The top of the inner cavity of the box is fixedly connected to a positioning ring sleeved on the outside of the rotating ring, and multiple first steel balls are rotatably connected to the inner surface of the positioning ring in a circumferential direction.

7. The processing system for a mobile cable protection system according to claim 1, characterized in that: The feed cylinder has symmetrically arranged cavities for positioning and moving cable protection structures on both sides inside, and the top of the cavity is shaped like a flared mouth. The bottom of the feed cylinder is fixedly connected to or inserted into the top of the box. The top of the box has a feed port that communicates with the cavity.

8. The processing system for a mobile cable protection system according to claim 5, characterized in that: The servo motor is controlled by an external control system via wires, and the cylinder is supplied with air by an external air pump unit via an air pipe. Each processing system is connected to a control system and an air pump unit, or a control system and an air pump unit are connected to multiple processing systems for overall control.

9. An assembly process for a mobile cable protection system, implemented by a processing system for a mobile cable protection system as described in any one of claims 1-8, characterized in that: Includes the following steps: S1. The unassembled floating cable protection structure is fed into the feed cylinder, and the bottom floating cable protection structure falls onto the assembly structure. S2. Push the assembly structure towards the center of the pair of floating cable protection structures, and then drive the assembly structure to rotate 90°, while simultaneously lowering the pair of floating cable protection structures that have been clamped together by one layer. S3. The drive assembly structure squeezes and connects the next set of mobile cable protection structures, while simultaneously allowing the insertion tube of the semi-circular ring to pass through the insertion hole of the previous set of semi-circular rings, and causing the insertion tube to open along the triangular opening to lock the previous set of semi-circular rings. This process is repeated until the required number of mobile cable protection structures are assembled. The mobile cable protection structures are discharged from the bottom of the chassis and can be pulled out by workers or output by a conveyor belt.

10. The assembly process of a floating cable protection system according to claim 9, characterized in that: The first pair of floating cable protection structures does not have side strips or conduits, while the last pair of floating cable protection structures is fixed by anchors that are constructed in a manner similar to conduits.

Citation Information

Patent Citations

  • Traveling cable protection device

    CN217115474U