Gum dipping device and weaving system for weaving fiber woven rope

By designing the U-shaped cross-sectional impregnation tank and glue guide assembly, the problem that existing devices can only deal with the same plane fiber bundle is solved, and uniform wetting of the fiber bundle on the non-planar surface is achieved, simplifying the structure and reducing costs.

CN223292760UActive Publication Date: 2025-09-02UNIV OF SCI & TECH BEIJING
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Patent Information

Application Number
CN202423226037.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-09-02
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

Existing glue impregnation devices can only wet the braided yarn fiber bundles on the same plane, resulting in complex structure of the braiding system and increasing the cost of fiber rope manufacturing.

Method used

A glue impregnation device is designed, including a first mounting base, a first glue impregnation tank, a glue storage tank and a glue guide assembly. The first glue impregnation tank has a U-shaped cross-section. The glue guidance assembly guides the glue in the glue storage tank into the first glue impregnation tank to realize the wetting treatment of the braided yarn fiber bundle on non-planar surfaces, and avoids the use of complex commutation mechanisms.

Benefits of technology

The structure of the glue impregnation device is simplified, the manufacturing cost of the fiber rope is reduced, and the uniform wetting treatment of the braided yarn fiber bundles arranged in the circumferentially is realized.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a gum dipping device and a weaving system for weaving a fiber woven rope, which are used for solving the problem that the gum dipping device in the prior art can only perform infiltration treatment on woven yarn fiber bundles on the same plane. Comprising a first mounting seat, a first impregnation tank, a glue storage tank, a glue guide assembly and two glue inlets, the section, parallel to the length direction of a first mounting seat, of a first impregnation tank of the impregnation device is U-shaped, the section, parallel to the width direction of the first mounting seat, of the first impregnation tank is rectangular, and glue in a glue storage tank is guided into the first impregnation tank through a glue guide assembly; therefore, the impregnation device can infiltrate the weaving yarn fiber bundles on the non-plane, the structure is simple, and the situation that the manufacturing cost of the fiber rope is increased due to the fact that a complex reversing mechanism is used for enabling the weaving yarn fiber bundles to be on the same plane is avoided.
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Description

Technical Field

[0001] The utility model belongs to the field of fiber braided rope weaving, in particular to a glue dipping device and a weaving system for weaving fiber braided rope. Background Art

[0002] Slope protection nets are widely used in areas with landslide risks, such as highways and railways, as well as in mountainous areas and tourist areas, where there's a risk of falling debris. Currently, metal mesh is the most commonly used material. While metal mesh offers strength and durability, long-term exposure to outdoor conditions can lead to corrosion, which can reduce its strength and durability.

[0003] Fiber bundles are yarn bundles composed of multiple continuous fibers. These fiber bundles possess suitable strength and flexibility and can be used to manufacture a variety of textiles and composite materials. Braided ropes woven from fiber bundles are used to create protective nets, which possess a certain degree of flexibility and deformability. This allows the net to conform to the slope surface under complex terrain conditions and effectively cushion the impact of slope collapse, small landslides, or debris flows. Therefore, the use of braided ropes woven from fiber bundles to create slope protection nets has good application prospects.

[0004] In order to enhance the bonding properties of the fibers in a fiber rope, it is usually necessary to coat the fiber bundles with a reinforcing agent or impregnate them with a thermosetting resin. Existing impregnation devices can only coat reinforcing agents or impregnate multiple braided yarn fiber bundles on the same plane with a thermosetting resin. However, during the braiding of a fiber rope, multiple braided yarn fiber bundles are arranged in a circular pattern. Using existing impregnation devices requires a complex reversing mechanism to guide the multiple braided yarn fiber bundles to the same plane for impregnation. After impregnation is completed, the reversing mechanism is used to restore the circular arrangement. This results in a very complex braiding system structure and increases the manufacturing cost of the fiber rope. Utility Model Content

[0005] In view of the shortcomings of the prior art described above, the purpose of the present invention is to provide a dipping device and a braiding system for braiding fiber braided ropes, which are used to solve the problem that the dipping device in the prior art can only perform impregnation treatment on braided yarn fiber bundles on the same plane.

[0006] In order to achieve the above-mentioned purpose and other related purposes, the utility model provides a glue dipping device, including: a first mounting seat, a first glue dipping tank, a glue storage tank, a glue guide assembly and two glue inlets; the first glue dipping tank is arranged on the top of the first mounting seat, and the cross-section of the first glue dipping tank parallel to the length direction of the first mounting seat is U-shaped, and the cross-section parallel to the width direction of the first mounting seat is rectangular; one of the glue inlets is arranged on the first side wall of the first glue dipping tank parallel to the width direction of the first mounting seat; the other glue inlet is arranged on the second side wall of the first glue dipping tank parallel to the width direction of the first mounting seat; the glue storage tank is arranged on the first mounting seat and is connected to the first glue dipping tank; one end of the glue guide assembly is connected to the two glue inlets, and the other end is connected to the glue storage tank, which is used to transfer the glue in the glue storage tank to the first glue dipping tank.

[0007] Optionally, the glue inlet includes a plurality of glue inlet holes arranged obliquely relative to a horizontal plane and a glue inlet channel for communicating with the glue inlet holes, and the glue inlet channel is also connected to the glue guiding assembly.

[0008] Optionally, the glue guide assembly includes a first pipe, a second pipe, a third pipe and a pump; the pump is arranged on the outer wall of the first mounting seat; one end of the first pipe is connected to the glue storage tank, and the other end is connected to the pump; one end of the second pipe is connected to the pump, and the other end is connected to one of the glue feed channels; one end of the third pipe is connected to the pump, and the other end is connected to another glue feed channel.

[0009] Optionally, a first heating component for heating the glue in the glue tank is provided in the glue tank; the first heating component includes a first heating element, a first detection element and a first temperature protection switch; the first heating element and the first detection element are provided in the glue tank; the first temperature protection switch is provided in or outside the glue tank, the first temperature protection switch is electrically connected to the first heating element and the first detection element, the first detection element is used to detect the temperature in the glue tank, and when the temperature reaches a preset value, the first temperature protection switch disconnects the electrical connection of the first heating element to suspend heating the glue in the glue tank.

[0010] Optionally, the first heating assembly further includes a heat-insulating member sleeved outside the first pipe, the second pipe, and the third pipe, for heat-insulating the glue in the pipe.

[0011] On the other hand, the utility model also provides a device comprising two impregnation devices as described above; it also includes a base, a core yarn rack, a core yarn impregnation device, a weaving yarn rack, a guide disk, a twisting guide device and a driving device; the core yarn rack, the core yarn impregnation device, the weaving yarn rack, the driving device, the impregnation device and the twisting guide device are arranged on the base; the core yarn rack is used to install a core yarn wheel wound with a core yarn fiber bundle, and the core yarn impregnation device is used to perform impregnation treatment on the core yarn fiber bundle; the weaving yarn rack is used to install a weaving yarn wheel wound with a weaving yarn fiber bundle, and the guide disk is connected to the weaving yarn rack through a support column, and the guide disk is used to guide the weaving yarn fiber bundle and place the weaving yarn fiber bundle into the impregnation device for impregnation treatment; the twisting guide device is used to guide the core yarn fiber bundle, the weaving yarn fiber bundle and the weaving rope to move in a direction away from the guide disk; the driving device is used to drive the weaving yarn rack and the guide disk to rotate.

[0012] Optionally, the core yarn dipping device includes a second mounting seat, a second dipping tank, a first core yarn fiber bundle guide assembly and a second core yarn fiber bundle guide assembly; the second mounting seat is arranged on the base, and the second dipping tank is arranged on the top of the second mounting seat; the first core yarn fiber bundle guide assembly and the second core yarn fiber bundle guide assembly are arranged in the second dipping tank; the first core yarn fiber bundle guide assembly is used to guide the core yarn fiber bundle on the core yarn wheel into the second dipping tank, and the second core yarn fiber bundle guide assembly is used to guide the core yarn fiber bundle in the second dipping tank out of the second dipping tank and connect to the twisting guide device.

[0013] Optionally, the first core yarn fiber bundle guiding assembly and / or the second core yarn fiber bundle guiding assembly includes two rotating shafts and two guide wheels; the two guide wheels are respectively arranged on one of the rotating shafts, and the two ends of the rotating shaft are respectively arranged on one of the side surfaces on the opposite sides of the second dipping tank; the two rotating shafts are arranged at intervals.

[0014] Optionally, a second heating component for heating the glue is also provided in the second glue dipping tank; the second heating component includes a second heating element, a second detection element and a second temperature protection switch; the second heating element and the second detection element are arranged in the second glue dipping tank; the second temperature protection switch is arranged outside the second glue dipping tank, the second temperature protection switch is electrically connected to the second heating element and the second detection element, and the second detection element is used to detect the temperature in the second glue dipping tank. When the temperature reaches a preset value, the second temperature protection switch disconnects the electrical connection of the second heating element to suspend heating the glue in the second glue dipping tank.

[0015] Optionally, the core yarn dipping device also includes a cover plate, which is used to cover the second dipping tank; two through holes are provided on the cover plate for the core yarn fiber bundle to pass through, and the first core yarn fiber bundle guiding assembly guides the core yarn fiber bundle into the second dipping tank through one of the through holes, and the second core yarn fiber bundle guiding assembly guides the core yarn fiber bundle in the second dipping tank out of the second dipping tank through the other through hole and connects to the twisting guide device.

[0016] As described above, the present invention provides a glue dipping device and a braiding system for braiding fiber braided ropes, which have at least the following beneficial effects: by making the first glue dipping tank of the glue dipping device U-shaped in cross-section in the length direction parallel to the first mounting seat and rectangular in cross-section in the width direction parallel to the first mounting seat, and using a glue guide assembly to guide the glue in the glue storage tank into the first glue dipping tank, the glue dipping device can be used to wet the braided yarn fiber bundles on a non-planar surface, and the structure is simple, avoiding the use of a complex reversing mechanism to make the braided yarn fiber bundles on the same plane, which increases the manufacturing cost of the fiber rope. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 Shown is a structural schematic diagram of a dipping device of the present invention.

[0018] Figure 2 Shown is a schematic cross-sectional structure diagram of a dipping device of the present invention.

[0019] Figure 3 Display as Figure 2 Enlarged schematic diagram of point A in the middle.

[0020] Figure 4 Shown is a structural schematic diagram of a braiding system for braiding fiber braided ropes according to the present invention.

[0021] Figure 5 Shown is a structural schematic diagram of the core yarn dipping device of the present invention.

[0022] Figure 6 Shown is a structural schematic diagram of the core yarn dipping device of the present invention without the cover plate. DETAILED DESCRIPTION

[0023] The following describes the implementation of the present invention through specific embodiments. People familiar with this technology can easily understand other advantages and effects of the present invention from the contents disclosed in this specification.

[0024] Please refer to all the following drawings. It should be noted that the structures, proportions, sizes, etc. illustrated in the drawings of this specification are only used to match the contents disclosed in the specification for people familiar with this technology to understand and read, and are not used to limit the limiting conditions for the implementation of this utility model. Therefore, they have no technical substantive significance. Any modification of the structure, change in the proportional relationship or adjustment of the size should still fall within the scope of the technical content disclosed in this utility model without affecting the efficacy and purpose that can be achieved by this utility model. At the same time, the terms such as "upper", "lower", "left", "right", "middle" and "one" quoted in this specification are only for the convenience of description, and are not used to limit the scope of the implementation of this utility model. Changes or adjustments in their relative relationships should also be regarded as the scope of the implementation of this utility model without substantially changing the technical content.

[0025] The following embodiments are for illustration only and can be combined with each other, and are not limited to the contents presented in the following single embodiments.

[0026] In this embodiment, the glue stored in the dipping device 100 and the glass fiber dipping device can be a reinforcing agent or a thermosetting resin. Of course, in other implementations, the glue can also be other materials, which is not limited in this embodiment.

[0027] See also Figure 1 、 2 The present invention provides a glue dipping device 100, comprising: a first mounting base 1, a first glue dipping tank 2, a glue storage tank 3, a glue guide assembly 4, and two glue inlets 5. The first glue dipping tank 2 is disposed on the top of the first mounting base 1. The first glue dipping tank 2 has a U-shaped cross-section parallel to the length of the first mounting base 1 and a rectangular cross-section parallel to the width of the first mounting base 1. One glue inlet 5 is disposed on a first sidewall 21 of the first glue dipping tank 2 parallel to the width of the first mounting base 1; the other glue inlet 5 is disposed on a second sidewall 22 of the first glue dipping tank 2 parallel to the width of the first mounting base 1. The glue storage tank 3 is disposed on the first mounting base 1 and communicates with the first glue dipping tank 2. One end of the glue guide assembly 4 is connected to the two glue inlets 5, and the other end is connected to the glue storage tank 3, for transferring glue in the glue storage tank 3 to the first glue dipping tank 2. The glue storage tank 3 can be configured as a rectangular groove for storing glue to facilitate impregnation of the braiding yarn fiber bundles when the braiding system is braiding a fiber rope. It can be understood that the cross-section of the first glue dipping tank 2 in the direction parallel to the length of the first mounting seat 1 is U-shaped, so that when the glue enters the first glue dipping tank 2 through the glue inlet 5, it can rely on gravity to flow to the bottom of the first glue dipping tank 2, and then flow into the glue storage tank 3.

[0028] When in use, the weaving yarn fiber bundles arranged in a circle on the weaving yarn rack 500 can be guided into the dipping tank through a disc-shaped guide plate 600 to be impregnated, and the weaving yarn fiber bundles can still be arranged in a circle on the guide plate 600 to facilitate the subsequent weaving system to weave the weaving yarn fiber bundles into a weaving rope.

[0029] In one embodiment, the glue inlet 5 includes a plurality of glue inlet holes 51 arranged obliquely relative to the horizontal plane and a glue inlet channel 52 for connecting the glue inlet holes 51. The glue inlet channel 52 is also connected to the glue guide assembly 4. The glue inlet holes 51 are arranged obliquely relative to the horizontal plane to prevent the glue from flowing out of the dipping tank due to excessive pressure of the glue entering the glue inlet channel 52. At the same time, it can also effectively prevent the glue from being sprayed outside the dipping tank. Specifically, the glue inlet holes 51 can be inclined upward or downward relative to the horizontal plane. When inclined upward, the coverage area of ​​the glue in the dipping tank can be increased to facilitate the infiltration of the braided yarn fiber bundle. When inclined downward, it can prevent the glue from flowing into the dipping tank and prevent the glue from accumulating in the dipping channel.

[0030] In one embodiment, the glue guide assembly 4 includes a first pipe 41, a second pipe 42, a third pipe 43, and a pump 44; the pump 44 is disposed on the outer wall of the first mounting base 1; one end of the first pipe 41 is connected to the glue reservoir 3, and the other end is connected to the pump 44; one end of the second pipe 42 is connected to the pump 44, and the other end is connected to one of the glue inlet channels 52; one end of the third pipe 43 is connected to the pump 44, and the other end is connected to another glue inlet channel 52. The pump 44 can be a suction pump 44 for extracting glue from the glue reservoir 3. The liquid inlet of the pump 44 is connected to the first pipe 41, and the liquid outlet of the pump 44 can be connected to the second pipe 42 and the third pipe 43 via a three-way pipe to divide the glue into two equal parts, thereby ensuring a consistent amount of glue on both sides of the dipping tank.

[0031] In one embodiment, a first heating component 6 for heating the glue in the glue tank 3 is provided in the glue tank 3; the first heating component 6 includes a first heating element 61, a first detection element 62 and a first temperature protection switch 63; the first heating element 61 and the first detection element 62 are provided in the glue tank 3; the first temperature protection switch 63 can be provided inside or outside the glue tank 3, the first temperature protection switch 63 is electrically connected to the first heating element 61 and the first detection element 62, and the first detection element 62 is used to detect the temperature in the glue tank 3. When the temperature reaches a preset value, the first temperature protection switch 63 disconnects the electrical connection of the first heating element 61 to suspend heating the glue in the glue tank 3. The first heating element 61 may be a heating wire or other heating element capable of heating the glue. The first detection element 62 may be a temperature sensor disposed within the glue reservoir 3 for real-time detection of the temperature within the glue reservoir 3 and providing feedback to the control module. Upon detecting that the temperature detected by the first detection element 62 exceeds a preset value, the control module utilizes the first temperature protection switch 63 to disconnect the electrical connection of the first heating element 61, thereby ensuring that the glue temperature within the glue reservoir 3 remains within a preset range. It is understood that the control module may be a signal processing module such as a CPU or a single-chip microcomputer, and this embodiment is not limited thereto.

[0032] The first heating assembly 6 also includes a heat-insulating member disposed outside the first, second, and third pipes 41, 42, and 43 to insulate the glue within the pipes. The heat-insulating member may be a foam member wrapped around the outer walls of the first, second, and third pipes 41, 42, and 43 to insulate the glue within the pipes and prevent the glue from freezing due to a drop in temperature during transportation.

[0033] See also Figure 3 On the other hand, the present invention also provides a braiding system for braiding fiber braided ropes, comprising the two aforementioned dipping devices 100; further comprising a base 200, a core yarn rack 300, a core yarn dipping device 400, a braiding yarn rack 500, a guide disk 600, a twisting guide device 700 and a driving device 800; the core yarn rack 300, the core yarn dipping device 400, the braiding yarn rack 500, the driving device 800, the dipping device 100 and the twisting guide device 700 are arranged on the base 200; the core yarn rack 300 is used to install a core yarn fiber bundle wound thereon The core yarn wheel and the core yarn dipping device 400 are used to dip the core yarn fiber bundle into glue; the weaving yarn frame 500 is used to install the weaving yarn wheel wound with the weaving yarn fiber bundle, and the guide disk 600 is connected to the weaving yarn frame 500 through the support column, and the guide disk 600 is used to guide the weaving yarn fiber bundle and put the weaving yarn fiber bundle into the dipping device 100 for dipping; the twisting guide device is used to guide the core yarn fiber bundle, the weaving yarn fiber bundle and the weaving rope to move in a direction away from the guide disk 600; the driving device is used to drive the weaving yarn frame 500 and the guide disk 600 to rotate.

[0034] During use, the drive device drives the braiding creel 500 and the guide disc 600 to rotate, which, on the one hand, allows the braiding yarn fiber bundle to enter the dipping tank for impregnation treatment, and on the other hand, allows the braiding yarn fiber bundle to be evenly wound around the core yarn fiber bundle, thereby achieving the purpose of weaving a braided rope. It can be understood that the twisting guide device, on the one hand, plays the role of pulling the braiding yarn fiber bundle and the core yarn fiber bundle, thereby removing the braiding yarn fiber bundle and the core yarn fiber bundle from the grinding wheel, and on the other hand, works together with the drive device 800 to drive the braided braided rope to move away from the guide disc 600.

[0035] In addition, since a single dipping device 100 can only simultaneously perform an impregnation treatment on a portion of the circumference of the braided yarn fiber bundle arranged on the guide disk 600, multiple dipping devices 100 and guide disks 600 can be set on the base 200 to achieve the impregnation treatment of all the braided yarn fiber bundles. Specifically, two guide disks 600 and two dipping devices 100 can be set, and two wire disks are set between the two guide disks 600. For example, the guide disk 600 and the wire disk are respectively provided with 6 guide holes for guiding the braided yarn fiber bundles, which can be defined as guide holes No. 1 to No. 6 respectively. The guide holes of the guide disk 600 and the wire disk are arranged in a one-to-one correspondence, that is, guide hole No. 1 corresponds to guide hole No. 1, and the guide holes of the wire disk and the guide disk 600 are coaxially arranged. When guiding a braiding yarn fiber bundle, a braiding yarn fiber bundle is used for illustration. The braiding yarn fiber bundle first passes through guide hole No. 1 of the first guide disk 600, then through guide hole No. 2 of the first wire disk, then through guide hole No. 3 of the second wire disk, and finally through guide hole No. 4 of the second guide disk 600. That is, the braiding yarn fiber bundle passing through guide hole No. 1 of the first guide disk 600 corresponds to guide hole No. 4 of the second guide disk 600, No. 2 corresponds to guide hole No. 5, and No. 3 corresponds to guide hole No. 6. Thus, when the first dipping device 100 performs the impregnation treatment on the braiding yarn fiber bundles in guide holes No. 1-3 of the first guide disk 600, the second dipping device 100 performs the impregnation treatment on the braiding yarn fiber bundles in guide holes No. 1-3 of the second guide disk 600, thereby ensuring that all the braiding yarn fiber bundles arranged circumferentially can be impregnated.

[0036] See also Figure 4 、 56. In one embodiment, the core yarn dipping device 400 includes a second mounting seat 7, a second dipping tank 8, a first core yarn fiber bundle guide assembly 9, and a second core yarn fiber bundle guide assembly 10; the second mounting seat 7 is arranged on the base 200, and the second dipping tank 8 is arranged on the top of the second mounting seat 7; the first core yarn fiber bundle guide assembly and the second core yarn fiber bundle guide assembly are arranged in the second dipping tank 8; the first core yarn fiber bundle guide assembly is used to guide the core yarn fiber bundle on the core yarn wheel into the second dipping tank 8, and the second core yarn fiber bundle guide assembly is used to guide the core yarn fiber bundle in the second dipping tank 8 out of the second dipping tank 8 and connect to the twisting guide device. Specifically, a through hole 121 for avoiding the core yarn fiber bundle can be provided at the center of the braiding creel 500 and the guide disk 600. After the core yarn fiber bundle passes through the core yarn dipping device 400 for dipping, it passes through the through holes 121 provided at the center of the braiding creel 500 and the guide disk 600 in sequence and connects to the twisting guide device.

[0037] The first core yarn fiber bundle guide assembly 9 and the second core yarn fiber bundle guide assembly 10 can be configured to have the same structure, for example, both include two rotating shafts 91 and two guide wheels 92; the two guide wheels 92 are respectively arranged on one of the rotating shafts 91, and the two ends of the rotating shaft 91 are respectively arranged on one side surface of the opposite side of the second dipping tank 8; the two rotating shafts 91 are spaced apart. Alternatively, the first core yarn fiber bundle guide assembly and the second core yarn fiber bundle guide assembly can be configured to have different structures, that is, the first core yarn fiber bundle guide assembly includes the above-mentioned two rotating shafts 91 and two guide wheels 92, and the second core yarn fiber bundle guide assembly has other structural forms; or the second core yarn fiber bundle guide assembly includes the above-mentioned two rotating shafts 91 and two guide wheels 92, and the first core yarn fiber bundle guide assembly has other structural forms; this embodiment does not limit this. The two guide wheels 92 can be rotatably connected to the corresponding rotating shafts 91 respectively, or the guide wheels 92 and the corresponding rotating shafts 91 can be fixedly connected, and the rotating shaft 91 is rotatably connected to the second dipping tank 8. By rotatably connecting the guide wheels 92 to the corresponding rotating shafts 91 or rotatably connecting the rotating shaft 91 to the second dipping tank 8, the friction between the core yarn fiber bundle and the guide wheels 92 is reduced, thereby preventing the core yarn fiber bundle from being worn due to friction. When the first core yarn fiber bundle guiding assembly 9 and the second core yarn fiber bundle guiding assembly 10 are in use, the core yarn fiber bundle first contacts with the guide wheel 92 of the first core yarn fiber bundle guiding assembly 9 near the opening of the second dipping tank 8, then passes through the gap between the two guide wheels 92, and then contacts with the guide wheel 92 away from the second dipping tank 8, so that the core yarn fiber bundle is in the second dipping tank 8, and then contacts with the guide wheel 92 of the second core yarn fiber bundle guiding assembly away from the opening of the second dipping tank 8, and then passes through the gap between the two guide wheels 92, and then contacts with the guide wheel 92 close to the second dipping tank 8, thereby realizing the use of the second core yarn fiber bundle guiding assembly to guide out of the second dipping tank 8.

[0038] A second heating component 11 for heating the glue is also provided in the second glue dipping tank 8; the second heating component 11 includes a second heating element 111, a second detection element 112 and a second temperature protection switch 113; the second heating element 111 and the second detection element 112 are arranged in the second glue dipping tank 8; the second temperature protection switch 113 is arranged outside the second glue dipping tank, and the second temperature protection switch is electrically connected to the second heating element 111 and the second detection element 112. The second detection element 112 is used to detect the temperature in the second glue dipping tank 8. When the temperature reaches a preset value, the second temperature protection switch 113 disconnects the electrical connection of the second heating element 111 to suspend heating the glue in the second glue dipping tank 8.

[0039] The second heating element 111 and the second detecting element 112 are arranged in the second dipping tank 8; the second temperature protection switch 113 is arranged outside the second dipping tank 8, and the second temperature protection switch 113 is electrically connected to the second heating element 111 and the second detecting element 112. The second detecting element 112 is used to detect the temperature in the second dipping tank 8. When the temperature reaches a preset value, the second temperature protection switch 113 disconnects the electrical connection of the second heating element 111 to suspend heating the glue in the second dipping tank 8. The second heating element 111 can be a heating wire or other heating element capable of heating the glue. The second detecting element 112 can be a temperature sensor, which is arranged in the second dipping tank 8 and is used to detect the temperature in the second dipping tank 8 in real time and feed it back to the control module. When the control module recognizes that the temperature detected by the second detecting element 112 exceeds the preset value, the second temperature protection switch 113 disconnects the electrical connection of the second heating element 111, thereby ensuring that the temperature of the glue in the second dipping tank 8 can be within the preset range. It is understandable that the control module may be a signal processing module such as a CPU or a single chip microcomputer, and this embodiment does not limit this.

[0040] In one embodiment, the core yarn dipping device 400 further includes a cover plate 12, which is used to cover the second dipping tank 8; the cover plate 12 is provided with two through holes 121 for the core yarn fiber bundle to pass through, the first core yarn fiber bundle guide assembly 9 guides the core yarn fiber bundle into the second dipping tank 8 through one of the through holes 121, and the second core yarn fiber bundle guide assembly 10 guides the core yarn fiber bundle in the second dipping tank 8 out of the second dipping tank 8 and connects to the twisting guide device through the other through hole 121. Specifically, the two through holes 121 for the core yarn fiber bundle to pass through can be respectively provided on one of the two opposite side walls of the cover plate 12 along the extending direction of the core yarn fiber bundle, so that the first core yarn fiber bundle guide assembly 9 guides the core yarn fiber bundle into the second dipping tank 8, and the second core yarn fiber bundle guide assembly 10 guides the core yarn fiber bundle out of the second dipping tank 8. The provision of the cover plate 12 can prevent the glue in the second dipping tank 8 from exchanging heat with the external environment, causing the temperature of the glue to drop, thereby increasing the energy consumption of the second heating component 11.

[0041] In one embodiment, the braided yarn fiber bundles can be made of tough fiber filaments. In this embodiment, the braided yarn fiber bundles are LCP fiber bundles. LCP fiber bundles (LCP stands for liquid crystal polymer) are a type of thermoplastic fiber with a unique molecular structure. They are characterized by high strength, high modulus, excellent heat resistance, and chemical stability. Furthermore, LCP fiber bundles have low water absorption, enabling them to maintain stable performance in humid environments. The core yarn fiber bundles can be made of high-strength glass fiber filaments. In this embodiment, the core yarn fiber bundles are glass fiber bundles. Glass fiber bundles are an inorganic non-metallic material with high strength, high modulus, and corrosion resistance. Furthermore, glass fiber bundles have excellent thermal stability and weather resistance, enabling them to maintain stable performance in various harsh environments. Therefore, the slope protection net woven in this embodiment using LCP fiber bundles (liquid crystal polymer) as the braided yarn and glass fiber bundles as the core yarn fiber cords exhibits high strength, durability, flexibility, and excellent corrosion resistance, effectively improving the protective effectiveness of the slope protection net.

[0042] In summary, the present invention provides a U-shaped cross-section of the first dipping tank 2 of the dipping device 100 parallel to the length of the first mounting base 1 and a rectangular cross-section parallel to the width of the first mounting base 1, and utilizes a glue guide assembly 4 to guide the glue in the glue reservoir 3 into the first dipping tank 2. This allows the dipping device 100 to perform dipping treatment on braided yarn fiber bundles located on non-planar surfaces. This simple structure avoids the use of a complex reversing mechanism to align the braided yarn fiber bundles on the same plane, which would increase the manufacturing cost of the fiber rope. Therefore, the present invention effectively overcomes the various shortcomings of the prior art and has high industrial value.

[0043] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the present invention. Anyone skilled in the art may modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by one of ordinary skill in the art without departing from the spirit and technical principles disclosed in the present invention are intended to be covered by the claims of the present invention.

Claims

1. A dipping device, characterized in that: The glue dipping device comprises: a first mounting seat, a first glue dipping tank, a glue storage tank, a glue guiding assembly and two glue inlets; The first glue dipping tank is provided on the top of the first mounting seat, and the cross section of the first glue dipping tank parallel to the length direction of the first mounting seat is U-shaped, and the cross section parallel to the width direction of the first mounting seat is rectangular; one of the glue inlets is provided on a first side wall of the first glue dipping tank parallel to the width direction of the first mounting seat; the other glue inlet is provided on a second side wall of the first glue dipping tank parallel to the width direction of the first mounting seat; The glue storage tank is arranged on the first mounting seat and is connected to the first glue dipping tank; One end of the glue guide assembly is connected to the two glue inlets, and the other end is connected to the glue storage tank, and is used to transfer the glue in the glue storage tank to the first glue dipping tank.

2. The dipping device according to claim 1, characterized in that: The glue inlet includes a plurality of glue inlet holes arranged obliquely relative to a horizontal plane and a glue inlet channel for communicating with the glue inlet holes. The glue inlet channel is also connected to the glue guide assembly.

3. The dipping device according to claim 2, characterized in that: The glue guide assembly includes a first pipe, a second pipe, a third pipe and a pump; the pump is arranged on the outer wall of the first mounting seat; one end of the first pipe is connected to the glue storage tank, and the other end is connected to the pump; one end of the second pipe is connected to the pump, and the other end is connected to one of the glue feed channels; one end of the third pipe is connected to the pump, and the other end is connected to another glue feed channel.

4. The dipping device according to claim 3, characterized in that: The glue storage tank is provided with a first heating component for heating the glue in the glue storage tank; The first heating component includes a first heating element, a first detection element and a first temperature protection switch; the first heating element and the first detection element are arranged in the glue storage tank; the first temperature protection switch is arranged in or outside the glue storage tank, the first temperature protection switch is electrically connected to the first heating element and the first detection element, the first detection element is used to detect the temperature in the glue storage tank, when the temperature reaches a preset value, the first temperature protection switch disconnects the electrical connection of the first heating element to suspend heating the glue in the glue storage tank.

5. The dipping device according to claim 4, characterized in that: The first heating assembly further includes a heat-insulating member sleeved outside the first pipe, the second pipe, and the third pipe, for heat-insulating the glue in the pipe.

6. A braiding system for braiding fiber braided ropes, characterized by: The invention comprises two dipping devices according to any one of claims 1 to 5; further comprising a base, a core yarn rack, a core yarn dipping device, a braiding yarn rack, a guide disc, a twisting guide device and a driving device; The core yarn rack, the core yarn dipping device, the braiding yarn rack, the driving device, the dipping device and the twisting guide device are arranged on the base; The core yarn rack is used to install a core yarn wheel on which a core yarn fiber bundle is wound, and the core yarn dipping device is used to perform dipping treatment on the core yarn fiber bundle; The braiding creel is used to install a braiding yarn wheel with a braiding yarn fiber bundle wound thereon, and the guide disc is connected to the braiding creel through a support column, and the guide disc is used to guide the braiding yarn fiber bundle and place the braiding yarn fiber bundle into the dipping device for dipping; The twisting guide device is used to guide the core yarn fiber bundle, the braiding yarn fiber bundle and the braiding rope to move in a direction away from the guide disk; The driving device is used to drive the braiding creel and the guide disk to rotate.

7. A braiding system for braiding fiber braided ropes according to claim 6, characterized in that: The core yarn dipping device includes a second mounting seat, a second dipping tank, a first core yarn fiber bundle guiding assembly and a second core yarn fiber bundle guiding assembly; The second mounting seat is arranged on the base, and the second dipping tank is arranged on the top of the second mounting seat; the first core yarn fiber bundle guiding assembly and the second core yarn fiber bundle guiding assembly are arranged in the second dipping tank; The first core yarn fiber bundle guiding assembly is used to guide the core yarn fiber bundle on the core yarn wheel into the second dipping tank, and the second core yarn fiber bundle guiding assembly is used to guide the core yarn fiber bundle in the second dipping tank out of the second dipping tank and connect to the twisting guiding device.

8. A braiding system for braiding fiber braided ropes according to claim 7, characterized in that: The first core yarn fiber bundle guiding assembly and / or the second core yarn fiber bundle guiding assembly include two rotating shafts and two guide wheels; the two guide wheels are respectively arranged on one of the rotating shafts, and the two ends of the rotating shaft are respectively arranged on one side surface on the opposite side of the second dipping tank; the two rotating shafts are arranged at intervals.

9. A braiding system for braiding fiber braided ropes according to claim 8, characterized in that: The second dipping tank is further provided with a second heating component for heating the glue; The second heating assembly includes a second heating element, a second detection element and a second temperature protection switch; the second heating element and the second detection element are arranged in the second glue dipping tank; the second temperature protection switch is arranged outside the second glue dipping tank, the second temperature protection switch is electrically connected to the second heating element and the second detection element, the second detection element is used to detect the temperature in the second glue dipping tank, and when the temperature reaches a preset value, the second temperature protection switch disconnects the electrical connection of the second heating element to suspend heating the glue in the second glue dipping tank.

10. A braiding system for braiding fiber braided ropes according to claim 7, characterized in that: The core yarn dipping device also includes a cover plate, which is used to cover the second dipping tank; two through holes are provided on the cover plate for the core yarn fiber bundle to pass through, and the first core yarn fiber bundle guiding assembly guides the core yarn fiber bundle into the second dipping tank through one of the through holes, and the second core yarn fiber bundle guiding assembly guides the core yarn fiber bundle in the second dipping tank out of the second dipping tank through the other through hole and is connected to the twisting guide device.