An underwater monitoring scale cable and production apparatus

By incorporating waterproof, anti-interference, and flame-retardant layers into the underwater monitoring scale cable for both conductive and signal conductors, and by using conductors and an inlet mechanism, the problem of interlacing conductors and signal conductors was solved, enabling stable cable production and high-quality processing.

CN116072342BActive Publication Date: 2026-08-25ZHEJIANG LEAP CABLE
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Patent Information

Application Number
CN202310279607.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-21
Publication Date
2026-08-25
Estimated Expiration
2043-03-21

AI Technical Summary

Technical Problem

In the production process of existing underwater monitoring scale cables, the conductor wires and signal wires are prone to intertwining, resulting in unstable cable quality. Furthermore, traditional production equipment requires manual support, making operation cumbersome.

Method used

An underwater monitoring scale cable structure was designed, including a waterproof layer, an anti-interference layer, and a flame-retardant layer on the outside of the conductive wire and the signal wire. A wire guide mechanism and a wire feeding mechanism are adopted to ensure that the conductive wire and the signal wire enter the cable extruder synchronously and at the same speed. With the assistance of positioning wheels and guide components, the cable is stably transported to the cable extruder for processing.

Benefits of technology

It enables stable and synchronous production of conductors and signal wires, improves the processing quality and performance of cables, prevents signal interference and spontaneous combustion damage, and simplifies the production process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an underwater monitoring scale cable and a production device, and particularly relates to the technical field of cable production, which comprises a cable body, the cable body comprises a conductive wire body, the outer side of the conductive wire body is provided with a plurality of signal guide wire bodies arranged in an annular array, the outer side of the conductive wire body and the plurality of signal guide wire bodies is provided with a waterproof layer sleeve, and the outer side of the waterproof layer sleeve is provided with a corrosion-resistant layer sleeve. Through the arrangement of the wire guide mechanism and the cooperation of the wire feeding mechanism, the conductive wire body and the plurality of signal guide wire bodies can enter the cable extruder at the same speed, the stable production of the underwater monitoring scale cable is realized, the transmission of the wire body is prevented from being too fast or too slow, the stable production of the underwater monitoring scale cable is affected, the mutual wall contact of the plurality of signal guide wire bodies and the conductive wire body is assisted and supported, the plurality of signal guide wire bodies and the conductive wire body are stably transported to the cable extruder for stable processing, and the processing effect and quality of the underwater monitoring scale cable are improved.
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Description

Technical Field

[0001] This invention relates to the field of cable manufacturing technology, specifically to an underwater monitoring scale cable and its manufacturing equipment. Background Technology

[0002] Underwater monitoring scale cables are used in underwater monitoring instruments. These cables need good waterproofing and corrosion resistance, and must be able to power the underwater monitoring instrument and transmit signals. However, existing underwater monitoring scale cables have separate conductors and signal conductors, making connection cumbersome. Therefore, a cable combining conductors and signal conductors is used. However, the production equipment for this underwater monitoring scale cable still has some problems: the conductors and signal conductors need to be in contact before passing through the cable extruder. Traditionally, this is mostly done manually with auxiliary support during extrusion. Afterwards, without this support, the conductors and signal conductors are prone to crossing during transmission, affecting the overall quality of the extruded cable. Therefore, we propose an underwater monitoring scale cable and its production equipment to solve these problems. Summary of the Invention

[0003] The purpose of this invention is to provide an underwater monitoring scale cable and production equipment to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: an underwater monitoring scale cable, comprising a cable body, the cable body comprising a conductive wire, a plurality of signal wires arranged in a ring array on the outside of the conductive wire, a waterproof sleeve covering the outer side of the conductive wire and the plurality of signal wires, a corrosion-resistant sleeve covering the outer side of the waterproof sleeve, and a low-density filler layer between the outer side of the conductive wire and the outer side of the plurality of signal wires;

[0005] The outer side of the conductive wire is provided with a flame-retardant layer, the outer side of the flame-retardant layer is provided with a first inner waterproof layer, the outer side of the signal wire is provided with an anti-interference layer, and the outer side of the anti-interference layer is provided with a second inner waterproof layer.

[0006] An underwater monitoring scale cable production equipment includes an equipment base frame, a first support frame fixedly installed on one side of the top of the equipment base frame, a cable extruder fixedly installed on the top of the first support frame, a second support frame fixedly installed on the top of the equipment base frame near the first support frame, a wire guide mechanism fixedly installed on the top of the second support frame, and a wire inlet mechanism fixedly installed on the top of the equipment base frame away from the first support frame.

[0007] As a preferred embodiment of the present invention, the wire guiding mechanism includes a rotating cylinder, a positioning cylinder integrally formed on one side of the rotating cylinder, a wire-passing groove formed in the middle of the rotating cylinder and the positioning cylinder, a working cavity formed in the rotating cylinder and the positioning cylinder, a plurality of positioning rods arranged in a ring array slidably on the inner side of the positioning cylinder, the opposite ends of the plurality of positioning cylinders extending into the working cavity, a driving ring rotatably provided in the working cavity, a planar threaded protrusion integrally formed on the side of the driving ring near the positioning rod, a planar threaded groove formed on the side of the positioning rod near the driving ring to cooperate with the planar threaded protrusion, the planar threaded protrusion being movably engaged in the planar threaded groove, a positioning plate being vertically installed on the opposite ends of the plurality of positioning cylinders, and a first rotating seat being fixedly installed on both sides of the opposite ends of the plurality of positioning plates, a first positioning wheel being rotatably installed in each of the first rotating seats.

[0008] As a preferred embodiment of the present invention, a rotating frame is rotatably installed in the working cavity of the rotating cylinder and the positioning cylinder, the driving ring is fixedly sleeved on the outside of the rotating frame, a bolt shaft is integrally formed on the side of the rotating frame near the rotating cylinder, an arc-shaped groove corresponding to the bolt shaft is opened on the outside of the rotating cylinder, the bolt shaft is movably engaged in the corresponding arc-shaped groove, and a fixing nut is threaded on the end of the bolt shaft, the fixing nut is in contact with the outer wall of the rotating cylinder.

[0009] As a preferred embodiment of the present invention, the end of the positioning plate away from the rotating cylinder extends out of the positioning cylinder, and a guide component is fixedly installed on the end of the positioning plate away from the rotating cylinder.

[0010] In a preferred embodiment of the present invention, the guiding component includes a shaped frame, which is fixedly installed at the end of the corresponding positioning plate away from the rotating cylinder. A connecting plate is vertically installed on the side of the shaped frame away from the positioning plate, and a shaped plate is fixedly installed on the side of the connecting plate away from the shaped frame. A second rotating seat is fixedly installed at the end of the shaped frame away from the positioning plate, and a second positioning wheel is rotatably installed in each of the second rotating seats. A third rotating seat is fixedly installed on the side of the shaped plate near the second rotating seat, and a third positioning wheel is rotatably installed in each of the third rotating seats. A telescopic rod is fixedly installed on the side of the shaped plate away from the second rotating seat, and an auxiliary frame is fixedly installed at the driving end of the telescopic rod. A fourth rotating seat is fixedly installed on the side of the auxiliary frame away from the telescopic rod, and a fourth positioning wheel is rotatably installed in each of the fourth rotating seats.

[0011] As a preferred embodiment of the present invention, the infeed mechanism includes a mounting frame, which is fixedly installed on the top of the equipment base frame away from the first support frame. A longitudinal frame is integrally formed on the top of one side of the mounting frame, and a bottom cross frame is integrally formed on the side of the mounting frame away from the longitudinal frame. The longitudinal frame and the bottom cross frame are vertically distributed. A top triangular seat is integrally formed on the top of the longitudinal frame, and a bottom triangular seat is integrally formed on the side of the bottom cross frame away from the mounting frame. Two vertically distributed first mounting rollers are rotatably mounted on the side of the top triangular seat away from the longitudinal frame, and two vertically distributed second mounting rollers are rotatably mounted on the side of the bottom triangular seat away from the bottom cross frame. A third mounting roller is rotatably mounted in the middle of the longitudinal frame. Meshing bevel gears are fixedly installed at the opposite ends of the two first mounting rollers and the opposite ends of the two second mounting rollers.

[0012] As a preferred embodiment of the present invention, a first auxiliary shaft is rotatably mounted on the side of the mounting crossbeam closest to the longitudinal frame, and a second auxiliary shaft is rotatably mounted on the side of the mounting crossbeam closest to the bottom crossbeam. A first sprocket drive group is provided between the first auxiliary shaft, the third mounting roller and the corresponding first mounting roller, a second sprocket drive group is provided between the second auxiliary shaft and the corresponding second mounting roller, and a third sprocket drive group is provided between the first auxiliary shaft and the second auxiliary shaft.

[0013] As a preferred embodiment of the present invention, a cylindrical wire body is detachably mounted on the outer side of the first mounting roller, the second mounting roller, and the third mounting roller.

[0014] As a preferred embodiment of the present invention, a drive motor is fixedly installed on the outer side of the mounting frame, and the drive end of the drive motor and the end of the second auxiliary shaft are coaxially fixedly installed.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0016] 1. By setting up a conductor mechanism and using a wire feeding mechanism, conductive wires and multiple signal wires can enter the cable extruder synchronously and at the same speed, enabling stable production of underwater monitoring scale cables. This prevents situations where individual wires are transported too fast or too slow, affecting the stable production of underwater monitoring scale cables. It also assists in supporting the mutual contact between multiple signal wires and conductive wires, and stably transports them to the cable extruder for stable processing, improving the processing effect and quality of underwater monitoring scale cables.

[0017] 2. By setting up signal conductors for signal transmission of underwater monitoring equipment, the effectiveness of underwater monitoring scale cables is improved. The outer side of the signal conductors is equipped with an anti-interference layer to prevent signal interference between the conductors. The outer side of the conductors is equipped with a flame-retardant layer. If the conductors spontaneously combust, the flame-retardant layer will retard the flame and prevent damage to the conductors. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1 This is a schematic diagram of the underwater monitoring scale cable of the present invention.

[0020] Figure 2 This is a cross-sectional view of the underwater monitoring scale cable of the present invention.

[0021] Figure 3 This is a schematic diagram of the underwater monitoring scale cable production equipment of the present invention.

[0022] Figure 4 This is a schematic diagram of the structural connection of the wire mechanism in this invention.

[0023] Figure 5 This is a partial structural connection diagram of the wire mechanism in this invention.

[0024] Figure 6 This is a schematic diagram of the structural connection of the dredging component in this invention.

[0025] Figure 7 This is a schematic diagram of the structural connection of the line-entry mechanism in this invention.

[0026] In the diagram: 1. Cable body; 11. Conductive wire; 111. Flame retardant layer; 112. First inner waterproof layer; 12. Signal wire; 121. Anti-interference layer; 122. Second inner waterproof layer; 13. Waterproof layer sleeve; 131. Corrosion resistant layer sleeve; 14. Low-density filler layer; 2. Equipment base frame; 21. First support frame; 3. Cable extruder; 4. Second support frame; 5. Conductor mechanism; 6. Cable infeed mechanism; 7. Cylindrical cable body; 8. Drive motor; 51. Rotating cylinder; 52. Positioning cylinder; 501. Cable threading groove; 502. Working chamber; 53. Positioning rod; 54. Drive ring; 55. Positioning plate; 551. First rotating seat; 552. First positioning wheel; 56. Rotating frame; 57. Bolt shaft; 571. Arc groove; 5 72. Fixing nut; 58. Guide component; 581. Irregular frame; 5811. Second rotating seat; 5812. Second positioning wheel; 582. Connecting plate; 583. Irregular plate; 5831. Third rotating seat; 5832. Third positioning wheel; 584. Telescopic rod; 585. Auxiliary frame; 5851. Fourth rotating seat; 5852. Fourth positioning wheel; 61. Mounting crossbeam; 62. Longitudinal frame; 63. Bottom crossbeam; 64. Top triangular seat; 65. Bottom triangular seat; 66. First mounting roller; 67. Second mounting roller; 68. Third mounting roller; 69. Bevel gear; 610. First auxiliary shaft; 611. Second auxiliary shaft; 612. First sprocket drive group; 613. Second sprocket drive group; 614. Third sprocket drive group. Detailed Implementation

[0027] 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.

[0028] Example: Figure 1-7As shown, the present invention provides an underwater monitoring scale cable, comprising a cable body 1, the cable body 1 including a conductive wire 11, a flame-retardant layer 111 on the outer side of the conductive wire 11, and a first inner waterproof layer 112 on the outer side of the flame-retardant layer 111; a plurality of signal wires 12 arranged in a ring array on the outer side of the conductive wire 11, an anti-interference layer 121 on the outer side of the signal wires 12, and a second inner waterproof layer 122 on the outer side of the anti-interference layer 121; a waterproof sleeve 13 covering the outer side of the conductive wire 11 and the plurality of signal wires 12, and a corrosion-resistant sleeve 13 on the outer side of the waterproof sleeve 13. 1. A low-density filling layer 14 is provided between the outer side of the conductive wire 11 and the outer side of the multiple signal wires 12. The conductive wire 11 is used to conduct electricity for the underwater monitoring equipment, and the signal wires 12 are used to transmit signals for the underwater monitoring equipment, thereby improving the performance of the underwater monitoring scale cable. The outer side of the signal wire 12 is provided with an anti-interference layer 121 to prevent signal interference between the signal wires 12. The outer side of the conductive wire 11 is provided with a flame-retardant layer 111. When the conductive wire 11 spontaneously combusts, the flame-retardant layer 111 will retard the flame and prevent damage to the signal wires 12.

[0029] An underwater monitoring scale cable production equipment includes an equipment base frame 2, a first support frame 21 fixedly installed on one side of the top of the equipment base frame 2, a cable extruder 3 fixedly installed on the top of the first support frame 21, a second support frame 4 fixedly installed on the top of the equipment base frame 2 near the first support frame 21, a wire guide mechanism 5 fixedly installed on the top of the second support frame 4, and a wire feeding mechanism 6 fixedly installed on the top of the equipment base frame 2 away from the first support frame 21.

[0030] The infeed mechanism 6 includes a mounting frame 61, which is fixedly installed on the top of the equipment base frame 2 on the side away from the first support frame 21. A longitudinal frame 62 is integrally formed on the top of one side of the mounting frame 61, and a bottom crossbeam 63 is integrally formed on the side of the mounting frame 61 away from the longitudinal frame 62. The longitudinal frame 62 and the bottom crossbeam 63 are vertically distributed. A top triangular seat 64 is integrally formed on the top of the longitudinal frame 62, and a bottom triangular seat 65 is integrally formed on the side of the bottom crossbeam 63 away from the mounting frame 61. A rotatable bracket is mounted on the side of the top triangular seat 64 away from the longitudinal frame 62. Two vertically distributed first mounting rollers 66 are mounted on the bottom triangular base 65 away from the bottom crossbeam 63, and two vertically distributed second mounting rollers 67 are rotatably mounted on the side of the bottom triangular base 65. A third mounting roller 68 is rotatably mounted in the middle of the longitudinal frame 62. A cylindrical wire body 7 is detachably mounted on the outside of the first mounting roller 66, the second mounting roller 67 and the third mounting roller 68. Before use, multiple cylindrical conductive signal wire bodies 12 are mounted on the outside of the corresponding first mounting roller 66 and the second mounting roller 67, and cylindrical conductive wire bodies 11 are mounted on the corresponding third mounting roller 68.

[0031] Two first mounting rollers 66 and two second mounting rollers 67 are fixedly mounted with meshing bevel gears 69 at their opposite ends; a first auxiliary shaft 610 is rotatably mounted on the side of the mounting crossbeam 61 near the longitudinal frame 62, and a second auxiliary shaft 611 is rotatably mounted on the side of the mounting crossbeam 61 near the bottom crossbeam 63; a drive motor 8 is fixedly mounted on the outer side of the mounting crossbeam 61, and the drive end of the drive motor 8 and the end of the second auxiliary shaft 611 are coaxially fixedly mounted. In use, the drive motor 8 is turned on to drive the second auxiliary shaft 611 to rotate.

[0032] A first sprocket drive assembly 612 is provided between the first auxiliary shaft 610, the third mounting roller 68, and the corresponding first mounting roller 66. The first sprocket drive assembly 612 includes three sprockets and a drive chain meshing with the outside of the three sprockets. Multiple sprockets are fixedly sleeved on the ends of the first auxiliary shaft 610, the third mounting roller 68, and the corresponding first mounting roller 66. A second sprocket drive assembly 613 is provided between the second auxiliary shaft 611 and the corresponding second mounting roller 67. The second sprocket drive assembly 613 includes two sprockets and a drive chain meshing with the outside of the two sprockets. The two sprockets are fixedly sleeved on the ends of the second auxiliary shaft 611 and the corresponding second mounting roller 67. A third sprocket drive assembly 614 is provided between the first auxiliary shaft 610 and the second auxiliary shaft 611. The third sprocket drive assembly 614 includes two sprockets and a drive chain meshing with the outside of the two sprockets. The chain, with two sprockets fixedly sleeved on the outside of the first auxiliary shaft 610 and the second auxiliary shaft 611, rotates. The second auxiliary shaft 611, in conjunction with the first sprocket drive group 612, the second sprocket drive group 613, and the third sprocket drive group 614, as well as the meshing bevel gear 69, drives the two first mounting rollers 66, the two second mounting rollers 67, and the third mounting roller 68 to rotate synchronously and at the same speed. This drives the cylindrical conductive wire 11 and multiple cylindrical signal wires 12 to unwind synchronously and at the same speed, so that the subsequent conductive wires 11 and multiple signal wires 12 can enter the cable extruder 3 synchronously and at the same speed for stable production of underwater monitoring scale cables. This prevents the transmission speed of individual wires from being too fast or too slow, which would affect the stable production of underwater monitoring scale cables, thereby improving the processing effect and quality of underwater monitoring scale cables.

[0033] The wire guiding mechanism 5 includes a rotating cylinder 51, with a positioning cylinder 52 integrally formed on one side of the rotating cylinder 51. A wire-passing groove 501 is formed in the middle of the rotating cylinder 51 and the positioning cylinder 52. A working cavity 502 is formed in both the rotating cylinder 51 and the positioning cylinder 52. Multiple positioning rods 53 arranged in a circular array are slidably engaged inside the positioning cylinder 52. Opposite ends of the multiple positioning cylinders 52 extend into the working cavity 502. A drive ring 54 is rotatably mounted in the working cavity 502. A planar threaded protrusion is integrally formed on the side of the drive ring 54 near the positioning rods 53. A planar threaded groove is formed on the side of the positioning rods 53 near the drive ring 54, which engages with the planar threaded protrusion. The planar threaded protrusion is movably engaged in the planar threaded groove. A rotating frame 5 is rotatably mounted in the working cavity 502 of the rotating cylinder 51 and the positioning cylinder 52. 6. The drive ring 54 is fixedly sleeved on the outside of the rotating frame 56. The rotating frame 56 has a bolt shaft 57 integrally formed on the side near the rotating cylinder 51. The outer side of the rotating cylinder 51 has an arc-shaped groove 571 corresponding to the bolt shaft 57. The bolt shaft 57 is movably engaged in the corresponding arc-shaped groove 571. The end of the bolt shaft 57 is threaded with a fixing nut 572. The fixing nut 572 contacts the outer wall of the rotating cylinder 51. In use, the fixing nut 572 is screwed off from the outer wall of the rotating cylinder 51. The bolt shaft 57 is manually moved to drive the rotating frame 56 to rotate stably in the working cavity 502, thereby driving the drive ring 54 to rotate stably. It is used in conjunction with the planar threaded protrusion and the planar threaded groove. The planar threaded protrusion is movably engaged in the planar threaded groove, which synchronously drives multiple positioning rods 53 to move towards each other.

[0034] Positioning plates 55 are vertically installed on the opposite ends of multiple positioning cylinders 52. First rotating seats 551 are fixedly installed on both sides of the opposite ends of multiple positioning plates 55. First positioning wheels 552 are rotatably installed in each of the first rotating seats 551. Multiple positioning rods 53 move synchronously towards each other, driving multiple positioning plates 55 to move synchronously towards each other, thereby driving multiple first rotating seats 551 and first positioning wheels 552 to move synchronously towards each other, thereby adjusting the spacing of multiple first positioning wheels 552.

[0035] The end of each positioning plate 55 away from the rotating cylinder 51 extends into a positioning cylinder 52. A guide component 58 is fixedly installed at the end of each positioning plate 55 away from the rotating cylinder 51. The guide component 58 includes a shaped frame 581, which is fixedly installed at the end of the corresponding positioning plate 55 away from the rotating cylinder 51. A connecting plate 582 is vertically installed on the side of the shaped frame 581 away from the positioning plate 55. A shaped plate 583 is fixedly installed on the side of the connecting plate 582 away from the shaped frame 581. A second rotating seat 5811 is fixedly installed at the end of the shaped frame 581 away from the positioning plate 55. A second positioning wheel 5812 is rotatably installed in each of the second rotating seats 5811. A third rotating seat 5831 is fixedly installed on the side of the shaped plate 583 near the second rotating seat 5811. A third positioning wheel 5832 is rotatably installed in each of the third rotating seats 5831. A telescopic rod 584 is fixedly installed on the side away from the second rotating seat 5811. An auxiliary frame 585 is fixedly installed on the driving end of the telescopic rod 584. A fourth rotating seat 5851 is fixedly installed on the side of the auxiliary frame 585 away from the telescopic rod 584. A fourth positioning wheel 5852 is rotatably installed in each of the fourth rotating seats 5851. When multiple positioning plates 55 move synchronously towards each other, they drive multiple irregular frames 581, irregular plates 583, and auxiliary frames 585 to move synchronously towards each other, thereby driving multiple second positioning wheels 5812, third positioning wheels 5832, and fourth positioning wheels 5852 to move synchronously towards each other. The spacing between multiple second positioning wheels 5812, third positioning wheels 5832, and fourth positioning wheels 5852 can be flexibly adjusted. Furthermore, by opening the telescopic rod 584 to drive the auxiliary frame 585 to move, the spacing between the fourth positioning wheels 5852 can be further adjusted.

[0036] In use, the conductive wire 11 is placed between four fourth positioning wheels 5852, and multiple signal wires 12 are placed between corresponding second positioning wheels 5812 and third positioning wheels 5832, and at the inner ends of corresponding two first positioning wheels 552. The conductive wire 11 and multiple signal wires 12 pass through the threading groove 501. By changing the spacing of the fourth positioning wheels 5852 until they contact the outer wall of the conductive wire 11, the conductive wire 11 is positioned between the four fourth positioning wheels 5852, and the conductive wire 11 is located at the center of the threading groove 501. By changing the spacing of the second positioning wheels 5812, the third positioning wheels 5832 and the first positioning wheels 552, the spacing of the multiple signal wires 12 is changed until the outer wall of the multiple signal wires 12 contacts the conductive wire 11, thereby assisting in supporting the mutual wall contact of the multiple signal wires 12 and the conductive wire 11, and stably transported to the cable extruder 3 for stable processing, further improving the processing effect and quality of the underwater monitoring scale cable.

[0037] Working principle: Before use, multiple cylindrical conductive signal wires 12 are installed on the outside of the corresponding first mounting roller 66 and second mounting roller 67, and cylindrical conductive wires 11 are installed on the corresponding third mounting roller 68.

[0038] The control starts the drive motor 8 to drive the second auxiliary shaft 611 to rotate. In conjunction with the first sprocket drive group 612, the second sprocket drive group 613 and the third sprocket drive group 614 and the meshing bevel gear 69, the two first mounting rollers 66, the two second mounting rollers 67 and the third mounting roller 68 rotate synchronously at the same speed, thereby driving the cylindrical conductive wire 11 and the multiple cylindrical signal wires 12 to unwind synchronously at the same speed.

[0039] The conductive wire 11 is placed between four fourth positioning wheels 5852, and multiple signal wires 12 are placed between corresponding second positioning wheels 5812 and third positioning wheels 5832, and placed at the inner ends of corresponding two first positioning wheels 552. The conductive wire 11 and multiple signal wires 12 pass through the wire groove 501.

[0040] Subsequently, the screw-on fixing nut 572 is disengaged from the outer wall of the rotating cylinder 51. The bolt shaft 57 is manually turned, causing the rotating frame 56 to rotate stably in the working cavity 502, thereby causing the drive ring 54 to rotate stably. The planar threaded protrusion and planar threaded groove are used in conjunction, with the planar threaded protrusion movably engaging in the planar threaded groove. This synchronously drives multiple positioning rods 53 to move towards each other, causing multiple positioning plates 55 to move towards each other synchronously, thereby causing multiple first rotating seats 551 and first positioning wheels 552 to move towards each other synchronously, and thus adjusting the multiple first positioning wheels 551. With a spacing of 52, multiple positioning plates 55 move synchronously towards each other, driving multiple irregular frames 581, irregular plates 583, and auxiliary frames 585 to move synchronously towards each other, thereby driving multiple second positioning wheels 5812, third positioning wheels 5832, and fourth positioning wheels 5852 to move synchronously towards each other, flexibly adjusting the spacing of multiple second positioning wheels 5812, third positioning wheels 5832, and fourth positioning wheels 5852, and further adjusting the spacing of the fourth positioning wheels 5852 by opening the telescopic rod 584 to drive the auxiliary frame 585 to move;

[0041] By changing the spacing of the fourth positioning wheel 5852 until it contacts the outer wall of the conductive wire 11, the conductive wire 11 is positioned between the four fourth positioning wheels 5852, and the conductive wire 11 is located at the center of the wire groove 501. By changing the spacing of the second positioning wheel 5812, the third positioning wheel 5832 and the first positioning wheel 552, the spacing of the multiple signal wires 12 is changed until the multiple signal wires 12 and the outer wall of the conductive wire 11 contact each other, thereby assisting in supporting the mutual wall contact of the multiple signal wires 12 and the conductive wire 11, and stably transporting them to the cable extruder 3 for stable processing.

[0042] 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. An underwater monitoring scale cable production equipment, comprising an equipment base frame (2), characterized in that: A first support frame (21) is fixedly installed on one side of the top of the equipment base frame (2). A cable extruder (3) is fixedly installed on the top of the first support frame (21). A second support frame (4) is fixedly installed on the side of the top of the equipment base frame (2) close to the first support frame (21). A wire guide mechanism (5) is fixedly installed on the top of the second support frame (4). A wire feeding mechanism (6) is fixedly installed on the side of the top of the equipment base frame (2) away from the first support frame (21). The wire guiding mechanism (5) includes a rotating cylinder (51), with a positioning cylinder (52) integrally formed on one side of the rotating cylinder (51). A wire-passing groove (501) is provided in the middle of the rotating cylinder (51) and the positioning cylinder (52). A working cavity (502) is provided in the rotating cylinder (51) and the positioning cylinder (52). Multiple positioning rods (53) arranged in a circular array are slidably mounted on the inner side of the positioning cylinder (52). The opposite ends of the multiple positioning cylinders (52) extend into the working cavity (502). A drive ring is rotatably mounted in the working cavity (502). 54), the drive ring (54) has a planar threaded protrusion integrally formed on the side near the positioning rod (53), the positioning rod (53) has a planar threaded groove on the side near the drive ring (54) that cooperates with the planar threaded protrusion, the planar threaded protrusion is movably engaged in the planar threaded groove, the opposite ends of the plurality of positioning cylinders (52) are vertically mounted with positioning plates (55), the opposite ends of the plurality of positioning plates (55) are fixedly mounted with first rotating seats (551), and the first rotating seats (551) are rotatably mounted with first positioning wheels (552); A rotating frame (56) is rotatably installed in the working chamber (502) of the rotating cylinder (51) and the positioning cylinder (52). The driving ring (54) is fixedly sleeved on the outside of the rotating frame (56). A bolt shaft (57) is integrally formed on the side of the rotating frame (56) near the rotating cylinder (51). An arc-shaped groove (571) corresponding to the bolt shaft (57) is opened on the outside of the rotating cylinder (51). The bolt shaft (57) is movably engaged in the corresponding arc-shaped groove (571). A fixing nut (572) is threaded on the end of the bolt shaft (57). The fixing nut (572) is in contact with the outer wall of the rotating cylinder (51). The positioning plate (55) extends into a positioning cylinder (52) at the end away from the rotating cylinder (51), and a guide (58) is fixedly installed at the end of the positioning plate (55) away from the rotating cylinder (51). The guiding component (58) includes a shaped frame (581), which is fixedly installed at one end of the corresponding positioning plate (55) away from the rotating cylinder (51). A connecting plate (582) is vertically installed on the side of the shaped frame (581) away from the positioning plate (55). A shaped plate (583) is fixedly installed on the side of the connecting plate (582) away from the shaped frame (581). A second rotating seat (5811) is fixedly installed at one end of the shaped frame (581) away from the positioning plate (55). A second positioning wheel (5812) is rotatably installed in each of the second rotating seats (5811). 583) A third rotating seat (5831) is fixedly installed on the side near the second rotating seat (5811). A third positioning wheel (5832) is rotatably installed in each of the third rotating seats (5831). A telescopic rod (584) is fixedly installed on the side of the irregular plate (583) away from the second rotating seat (5811). An auxiliary frame (585) is fixedly installed on the driving end of the telescopic rod (584). A fourth rotating seat (5851) is fixedly installed on the side of the auxiliary frame (585) away from the telescopic rod (584). A fourth positioning wheel (5852) is rotatably installed in each of the fourth rotating seats (5851). The infeed mechanism (6) includes a mounting frame (61), which is fixedly installed on the top of the equipment base frame (2) away from the first support frame (21). A longitudinal frame (62) is integrally formed on the top of one side of the mounting frame (61), and a bottom cross frame (63) is integrally formed on the side of the mounting frame (61) away from the longitudinal frame (62). The longitudinal frame (62) and the bottom cross frame (63) are vertically distributed. A top triangular seat (64) is integrally formed on the top of the longitudinal frame (62), and the bottom cross frame (63) is located away from the mounting frame (61). One side of the top triangular base (64) is integrally formed with a bottom triangular base (65). Two vertically distributed first mounting rollers (66) are rotatably mounted on the side of the top triangular base (64) away from the longitudinal frame (62). Two vertically distributed second mounting rollers (67) are rotatably mounted on the side of the bottom triangular base (65) away from the bottom cross frame (63). A third mounting roller (68) is rotatably mounted in the middle of the longitudinal frame (62). Meshing bevel gears (69) are fixedly mounted on the opposite ends of the two first mounting rollers (66) and the opposite ends of the two second mounting rollers (67). The mounting crossbeam (61) is rotatably mounted with a first auxiliary shaft (610) on the side near the longitudinal frame (62), and the mounting crossbeam (61) is rotatably mounted with a second auxiliary shaft (611) on the side near the bottom crossbeam (63). A first sprocket drive group (612) is provided between the first auxiliary shaft (610), the third mounting roller (68), and the corresponding first mounting roller (66). A second sprocket drive group (613) is provided between the second auxiliary shaft (611) and the corresponding second mounting roller (67). A third sprocket drive group (614) is provided between the first auxiliary shaft (610) and the second auxiliary shaft (611). A cylindrical wire body (7) is detachably mounted on the outer side of the first mounting roller (66), the second mounting roller (67) and the third mounting roller (68). A drive motor (8) is fixedly installed on the outside of the mounting frame (61), and the drive end of the drive motor (8) and the end of the second auxiliary shaft (611) are fixedly installed coaxially.

2. An underwater monitoring scale cable, manufactured using the cable production equipment as described in claim 1, comprising a cable body (1), characterized in that: The cable body (1) includes a conductive wire (11), and a plurality of signal wires (12) arranged in a ring array are provided on the outside of the conductive wire (11). A waterproof sleeve (13) is provided on the outside of the conductive wire (11) and the plurality of signal wires (12). A corrosion-resistant sleeve (131) is provided on the outside of the waterproof sleeve (13). A low-density filler layer (14) is provided between the outside of the conductive wire (11) and the outside of the plurality of signal wires (12). The outer side of the conductive wire (11) is provided with a flame-retardant layer (111), the outer side of the flame-retardant layer (111) is provided with a first inner waterproof layer (112), the outer side of the signal wire (12) is provided with an anti-interference layer (121), and the outer side of the anti-interference layer (121) is provided with a second inner waterproof layer (122).

Citation Information

Patent Citations

  • Crosslinked polyethylene insulated submarine high-speed rail tunnel anti-corrosion lighting power cable

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