An electric power facility cable conduit fusion device
By combining transmission components, alignment components, clamping components, pulling components, and fixing components, the problem of secondary offset after the polymer material pipes are joined is solved, realizing automated straightness adjustment of the polymer material pipes and improving welding quality and efficiency.
Patent Information
- Application Number
- CN202411343150.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2044-09-25
AI Technical Summary
In existing technologies, after polymer material pipes are joined, secondary misalignment is prone to occur at the pipe joint, resulting in inaccurate joining and affecting the welding quality and efficiency.
By employing transmission components, alignment components, clamping components, traction components, and fixing components, and through components such as traction belts and pressure sensors, the system achieves automated straightness adjustment of polymer material pipelines, ensuring the accuracy of pipeline connection.
It improves the accuracy and welding quality of polymer material pipe connections, reduces manual intervention and labor intensity, and increases welding efficiency.
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Figure CN119078210B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of pipeline hot melting welding, in particular to a power facility cable pipeline welding device. BACKGROUND
[0002] A power facility cable pipeline welding device, a pipeline made of a high polymer material has a large deformation space, and butt joint is completed by supporting a pipe opening in the pipeline, the pipe opening is deformed due to the pressure applied by the supporting body, although the butt joint is completed by the alignment device, the actual situation may be that the butt joint is formed due to the deformation of the pipe opening, and after the supporting body is withdrawn, the pipe opening is not actually centrally aligned; the two sections of the pipeline are relatively long, after the pipe openings are butt jointed, the pipeline axis is not a straight line, and the butt joint portion is pulled by other portions, so that the pipe openings are secondarily deviated during butt jointing to welding. SUMMARY
[0003] The application aims to provide a power facility cable pipeline welding device, and solves the problem that the pipeline butt joint portion is secondarily deviated after two high polymer material pipelines are butt jointed in the prior art. , The straightness adjustment of the high polymer material pipeline is automated, and manual intervention and labor intensity are reduced.
[0004] The application provides a power facility cable pipeline welding device, which is characterized by comprising a transmission assembly, an alignment assembly, a clamping assembly, a pulling assembly and a fixing assembly.
[0005] The transmission assembly comprises a flat support plate, first push rods, protrusions, drive rails, a transmission frame, a transmission belt and arc-shaped conveying blocks.
[0006] The flat support plate serves as a bearing, is a rectangular body, and is installed in parallel to the ground, and a plurality of groups of first push rods are fixedly connected to the top of both ends of the length direction of the flat support plate.
[0007] The first push rod is a cylindrical body, and a protrusion is fixedly connected to one end of the first push rod away from the flat support plate.
[0008] The protrusion is a cylindrical body, and a plurality of groups of symmetrical drive rails are slidably connected to the front end of the protrusion.
[0009] The drive rail is a rectangular body, and a drive groove is formed in the drive rail.
[0010] The drive groove is a back-shaped groove, and a transmission frame is rotatably connected to one side of the drive groove.
[0011] The transmission frame is provided with a transmission belt, and arc-shaped conveying blocks are fixedly connected to the outer side of the transmission belt at equal intervals, and the arc-shaped part of the arc-shaped conveying block is used for bearing the high polymer material pipeline.
[0012] The pulling assembly comprises a pulling belt, a flexible belt body, a rigid belt body, a pulling belt fixing ring, a pulling device, a pulling motor, a pulley block and a pressure sensor;
[0013] The output end of the pulling motor is rotationally connected with a transmission column, which is a cylindrical body, and a pulley block is slidably connected to one side of the transmission column;
[0014] The pulley block has three pulleys, and each pulley is provided with a pulling belt fixing ring at an end away from the transmission column;
[0015] The pulling belt fixing ring is circular and is used to fix the pulling belt to the pulley block. There are several of them, which are arranged according to the length of the polymer material pipeline and the pulling demand;
[0016] The pulling belt fixing ring is provided with a pulling belt at an end away from the pulley block. The pulling belt is used to pull the polymer material pipeline and maintain the straightness and stability of the polymer material pipeline;
[0017] The pulling belt comprises a flexible belt body and a rigid belt body. The flexible belt body is a rectangular body. The flexible belt body has a width of 5-10 cm and a length that can be adjusted according to the length of the polymer material pipeline. The material is nylon or high-strength metal wire mesh, which has good tensile strength and flexibility;
[0018] The two ends of the flexible belt body are fixedly connected with the rigid belt body. The rigid belt body is installed at the two ends of the flexible belt body and is used to connect the pulling device and the polymer material pipeline, thereby increasing the stability of the pulling. The material is lightweight aluminum alloy;
[0019] The pulling belt is slidably connected with the polymer material pipeline at a side away from the pulling belt fixing ring;
[0020] The rigid belt body is a rectangular body;
[0021] The polymer material pipeline is fixedly connected with a pressure sensor inside. There are multiple pressure sensors, which are arranged around the inner wall of the polymer material pipeline. The pressure sensor is an ellipsoid;
[0022] The alignment assembly comprises a base plate, a guide groove, a sliding block, an arc-shaped plate, a round push block, a pull rod, a guide rod, a limiting groove and a second push rod;
[0023] The base plate is a square body. The base plate is provided with a guide groove on the surface. There are multiple guide grooves. The guide grooves are rectangular grooves. The sliding block is slidably connected in the guide groove;
[0024] The sliding block is a rectangular block. The arc-shaped plate is fixedly connected to one side of the top of the sliding block. The pull rod is fixedly connected to the other side of the top of the sliding block;
[0025] The pull rod is a rectangular body, and a round push block is rotationally connected to one end of the pull rod away from the arc-shaped plate;
[0026] The outer side of the circumference of the round push block is fixedly connected with a plurality of groups of guide rods in a ring array;
[0027] The guide rod is a rectangular body, and a limiting groove is formed in the outer side of the circumference of the round push block in a ring array;
[0028] The guide rod is slidingly connected in the limiting groove, and a second push rod is fixedly connected to one side of the guide rod away from the round push block;
[0029] The second push rod is a cylindrical body;
[0030] The clamping assembly comprises a first horizontal plate, a third push rod, a sliding plate, a guide rail, a vertical plate, a second horizontal plate, a sliding cylinder, and an arc-shaped clamping plate;
[0031] The first horizontal plate is a rectangular body, and a third push rod is fixedly connected to the bottom of the first horizontal plate;
[0032] The third push rod is a cylindrical body, and a sliding plate is fixedly connected to one end of the third push rod away from the first horizontal plate;
[0033] The sliding plate is a rectangular body, and an arc-shaped clamping plate is fixedly connected to one side of each of the two adjacent sliding plates;
[0034] The sliding plate is slidingly connected in the guide rail, and a vertical plate is fixedly connected to one side of the guide rail away from the sliding plate;
[0035] The bottom end of the vertical plate is fixedly connected with a second horizontal plate;
[0036] The second horizontal plate is a rectangular body, a third push rod is fixedly connected to the top of the second horizontal plate, and a sliding cylinder is symmetrically arranged at the bottom of the second horizontal plate;
[0037] The sliding cylinder is a rectangular body;
[0038] The top ends of the guide rail and the vertical plate are fixedly connected to the bottom of the first horizontal plate, and the bottom ends of the guide rail and the vertical plate are fixedly connected to the top of the second horizontal plate;
[0039] The fixing assembly comprises a fixing assembly sliding rail, a sliding seat, a fourth push rod, a limiting block, and a limiting sleeve;
[0040] The sliding rail is slidingly connected with a sliding seat at the bottom, there are two sliding seats, and a fourth push rod is fixedly connected to the bottom of each sliding seat;
[0041] One end of the fourth push rod away from the sliding seat is fixedly connected with a bottom plate;
[0042] The two bottom plates are fixedly connected with limiting blocks and limiting sleeves on the adjacent sides respectively.
[0043] The one or more technical solutions provided in the embodiments of the present application have at least the following technical effects or advantages:
[0044] By arranging the pulling assembly, the problem that the pipeline axis is not a straight line after the center butt joint of the polymer material pipeline is effectively solved, thereby reducing the butt joint error, improving the welding quality and efficiency, and achieving the technical effect of automatic adjustment of the straightness of the polymer material pipeline. BRIEF DESCRIPTION OF DRAWINGS
[0045] Figure 1 It is a perspective structural schematic view of the pulling assembly of the power facility cable pipeline welding device of the present application;
[0046] Figure 2 It is a front view of the transmission assembly of the power facility cable pipeline welding device of the present application;
[0047] Figure 3 It is a front view of the fixing assembly of the power facility cable pipeline welding device of the present application;
[0048] Figure 4 It is a side view of the alignment assembly of the power facility cable pipeline welding device of the present application;
[0049] Figure 5 It is a perspective structural schematic view of the clamping assembly of the power facility cable pipeline welding device of the present application;
[0050] Figure 6 It is a perspective structural schematic view of the pulling belt of the power facility cable pipeline welding device of the present application;
[0051] Figure 7 It is a pressure sensor and a polymer material pipeline installation state schematic view of the power facility cable pipeline welding device of the present application.
[0052] In the figure:
[0053] 100, transmission assembly; 110, flat support plate; 120, first push rod; 121, protruding block; 130, driving rail; 131, driving groove; 140, transmission frame; 150, transmission belt; 160, arc-shaped transmission block;
[0054] 200, alignment assembly; 210, bottom plate; 220, guide groove; 230, sliding block; 240, arc-shaped plate; 250, round push block; 260, pull rod; 270, guide rod; 280, limiting groove; 290, second push rod;
[0055] 300, clamping assembly; 310, first cross plate; 320, third push rod; 330, sliding plate; 340, guide rail; 350, vertical plate; 360, second cross plate; 370, sliding cylinder; 380, arc-shaped clamping plate;
[0056] 400, pulling assembly; 410, pulling belt fixing ring; 420, pulling belt; 421, flexible belt body; 422, rigid belt body; 430, pulling device; 431, pulling motor; 432, pulley set; 433, transmission column; 434, pulley; 440, pressure sensor;
[0057] 500, fixing assembly; 510, sliding rail; 520, sliding seat; 530, fourth push rod; 540, limiting block; 550, limiting sleeve;
[0058] 600, polymer material pipeline. DETAILED DESCRIPTION
[0059] In order to facilitate the understanding of the present application, the present application will be described in more detail below with reference to the accompanying drawings; the preferred embodiments of the present application are shown in the drawings, but the present application can be implemented in many different forms, and is not limited to the embodiments described herein; on the contrary, the purpose of providing these embodiments is to make the disclosure of the present application more thorough and comprehensive.
[0060] It should be noted that the terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used herein are only for illustrative purposes, and are not intended to be the only embodiment.
[0061] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the present application belongs; the terms used herein in the specification of the present application are only for the purpose of describing the specific embodiments, and are not intended to limit the present application; the term "and / or" used herein includes any and all combinations of one or more related listed items.
[0062] Please refer to Figure 1This is a three-dimensional structural diagram of a welding device for power facility cable ducts according to the present invention. This application optimizes and improves existing welding devices for power facility cable ducts by using a fixing ring to firmly fix the pulling belt to the pulley block, ensuring that the pulling belt will not loosen or slip during the pulling process, thus maintaining stable tension. Changing the layout of the pulley block allows for precise control of the pulling force on the polymer material ducts, adapting to the pulling requirements of different polymer material duct lengths and materials, thereby ensuring the stability and safety of the polymer material ducts, reducing welding errors, and improving welding quality and efficiency. The flexible belt can flexibly adapt to polymer material ducts of different lengths. It has good tensile strength and flexibility while ensuring durability and reliability in different environments. The rigid belt ensures sufficient strength and rigidity to withstand various forces during the pulling process, while reducing overall weight and facilitating operation. The combined use of the flexible and rigid belts allows the pulling belt to form a stable and reliable pulling system when pulling polymer material ducts. The tension band can maintain the straightness and stability of polymer material pipes, providing a strong guarantee for the precise docking of polymer material pipes. Example 1
[0063] like Figures 1-5 As shown, this application discloses a welding device for power facility cable ducts, including a transmission component 100, an alignment component 200, a clamping component 300, a pulling component 400, and a fixing component 500.
[0064] The transmission assembly 100 includes a flat support plate 110, a first push rod 120, a protrusion 121, a drive rail 130, a transmission frame 140, a transmission belt 150, and an arc-shaped transmission block 160.
[0065] The flat support plate 110 serves as a load-bearing structure. Its main body is rectangular and its installation direction is parallel to the ground. Multiple sets of first push rods 120 are fixedly connected to the top of both ends of the flat support plate 110 along its length.
[0066] The first push rod 120 is cylindrical, and a protrusion 121 is fixedly connected to the end of the first push rod 120 away from the flat support plate 110;
[0067] The protrusion 121 is cylindrical, and the front end of the protrusion 121 is slidably connected to multiple sets of symmetrical drive rails 130;
[0068] The drive rail 130 is a rectangular body, and a drive groove 131 is formed inside the drive rail 130;
[0069] The drive groove 131 is a U-shaped groove, and a transmission frame 140 is rotatably connected to one side of the drive groove 131. A transmission belt 150 is provided inside the transmission frame 140.
[0070] The outer side of the transmission belt 150 is fixedly connected with arc-shaped conveying blocks 160 at equal intervals;
[0071] The arc-shaped part of the arc-shaped conveying block 160 is used for bearing the polymer material pipeline 600;
[0072] The pulling assembly 400 comprises a pulling belt fixing ring 410, a pulling belt 420, a flexible belt body 421, a rigid belt body 422, a pulling device 430, a pulling motor 431, a pulley set 432, a transmission column 433, and a pulley 434;
[0073] The output end of the pulling motor 431 is rotationally connected with the transmission column 433;
[0074] The transmission column 433 is a cylindrical body, and the pulley set 432 is slidably connected to one side of the transmission column 433;
[0075] The pulley 434 of the pulley set 432 is in a number, which is set according to the length of the polymer material pipeline 600 and the pulling demand;
[0076] The pulley 434 is provided with the pulling belt fixing ring 410 away from the transmission column 433, and the pulling belt fixing ring 410 is circular;
[0077] The pulling belt fixing ring 410 is provided with the pulling belt 420 away from the pulley 434, and the pulling belt 420 is slidably connected with the polymer material pipeline 600 away from the pulling belt fixing ring 410;
[0078] The pulling belt fixing ring 410 is used for fixing the pulling belt 420 to the pulley, and the number is set according to the length of the polymer material pipeline 600 and the pulling demand;
[0079] The alignment assembly 200 comprises a bottom plate 210, a guide groove 220, a sliding block 230, an arc-shaped plate 240, a round push block 250, a pull rod 260, a guide rod 270, a limiting groove 280, and a second push rod 290;
[0080] The bottom plate 210 is a square body, and the surface of the bottom plate 210 is provided with the guide groove 220;
[0081] The guide groove 220 is in a plurality of numbers, is a rectangular groove, and the sliding block 230 is slidably connected in the guide groove 220;
[0082] The sliding block 230 is a rectangular block, the arc-shaped plate 240 is fixedly connected to one side of the top of the sliding block 230, and the pull rod 260 is fixedly connected to the other side of the top of the sliding block 230;
[0083] The pull rod 260 is a rectangular body, and one end of the pull rod 260 away from the arc-shaped plate 240 is rotationally connected with a round push block 250;
[0084] The outer side of the circumference of the round push block 250 is fixedly connected with a plurality of groups of guide rods 270 in a ring array;
[0085] The guide rod 270 is a rectangular body;
[0086] The outer side of the circumference of the round push block 250 is fixedly connected with a plurality of groups of guide rods 270 in a ring array;
[0087] The guide rod 270 is slidingly connected in the limiting groove 280, and one side of the guide rod 270 away from the round push block 250 is fixedly connected with a second push rod 290;
[0088] The second push rod 290 is a cylindrical body;
[0089] The clamping assembly comprises a first horizontal plate 310, a third push rod 320, a sliding plate 330, a guide rail 340, a vertical plate 350, a second horizontal plate 360, a sliding cylinder 370, and an arc-shaped clamping plate 380;
[0090] The first horizontal plate 310 is a rectangular body, and the bottom of the first horizontal plate 310 is fixedly connected with the third push rod 320;
[0091] The third push rod 320 is a cylindrical body, and one end of the third push rod 320 away from the first horizontal plate 310 is fixedly connected with the sliding plate 330;
[0092] The sliding plate 330 is a rectangular body, and one side of each of the two sliding plates 330 adjacent to each other is fixedly connected with the arc-shaped clamping plate 380, and the sliding plate 330 is slidingly connected in the guide rail 340;
[0093] One side of the guide rail 340 away from the sliding plate 330 is fixedly connected with the vertical plate 350;
[0094] The bottom end of the vertical plate 350 is fixedly connected with the second horizontal plate 360;
[0095] The second horizontal plate 360 is a rectangular body, the top of the second horizontal plate 360 is fixedly connected with the third push rod 320, and the bottom of the second horizontal plate 360 is symmetrically provided with the sliding cylinder 370 at both ends;
[0096] The sliding cylinder 370 is a rectangular body;
[0097] The top of the guide rail 340 and the vertical plate 350 is fixedly connected to the bottom of the first horizontal plate 310, and the bottom of the guide rail 340 and the vertical plate 350 is fixedly connected to the top of the second horizontal plate 360;
[0098] The fixing assembly 500 comprises a fixing assembly 500 sliding rail 510, a sliding seat 520, a fourth push rod 530, a limiting block 540 and a limiting sleeve 550;
[0099] The sliding rail 510 is slidably connected with the sliding seat 520 at the bottom;
[0100] The sliding seat 520 has two, and the fourth push rod 530 is fixedly connected to the bottom of the sliding seat 520;
[0101] The fourth push rod 530 is fixedly connected with the bottom plate 210 at the end away from the sliding seat 520;
[0102] The two adjacent sides of the bottom plate 210 are respectively fixedly connected with the limiting block 540 and the limiting sleeve 550, and the limiting block and the limiting sleeve are matched.
[0103] The technical solutions in the above embodiments of the application have at least the following technical effects or advantages:
[0104] The fixing ring 410 is made of a sturdy and durable material, capable of bearing a large pulling force and the weight of the polymer material pipeline 600. The main function of the pulling belt 420 fixing ring 410 is to firmly fix the pulling belt 420 on the pulley block 432, ensuring that the pulling belt 420 does not loosen or slip during the pulling process, thereby maintaining a stable pulling force. By changing the layout of the pulley block 432, precise control of the pulling force of the polymer material pipeline 600 can be achieved to adapt to the pulling needs of different lengths and materials of the polymer material pipeline 600. During the pulling process, the combined action of the fixing ring 410 and the pulley block 432 can ensure that the polymer material pipeline 600 moves along the predetermined straight line direction, avoiding bending or deviation of the polymer material pipeline 600 during the pulling process, thereby improving the straightness of the polymer material pipeline 600. Due to the combination of the stability of the fixing ring 410 and the flexibility of the pulley block 432, the entire pulling assembly 400 can remain stable in complex environments, effectively resisting external interference such as wind force, terrain changes, etc., thereby ensuring the stability and safety of the polymer material pipeline 600. Before the polymer material pipeline 600 is welded, by precisely controlling the pulling force and direction, the pipe opening of the polymer material pipeline 600 can achieve extremely high precision when docking, reducing docking errors and improving welding quality and efficiency. Embodiment 2
[0105] In order to further improve the stability of the power facility cable pipeline welding device and the convenience of the use process, the belt body of the pulling belt is optimized and improved in the embodiment of the application, specifically:
[0106] As shown in Figure 6 The pulling belt 420 comprises a flexible belt body 421 and a rigid belt body 422,
[0107] The pulling belt 420 is used for pulling the polymer material pipeline 600, maintaining the straightness and stability of the polymer material pipeline 600.
[0108] The flexible belt body 421 is unfolded as a rectangular body, and the two ends of the flexible belt body 421 are fixedly connected with rigid belt bodies 422,
[0109] The width of the flexible belt body 421 is 5-10 cm, the length can be adjusted according to the length of the polymer material pipeline 600, the material is nylon or high-strength metal wire mesh, and the flexible belt body 421 has good tensile strength and flexibility.
[0110] The rigid belt body 422 is unfolded as a rectangular body,
[0111] The rigid belt body 422 is installed at the two ends of the flexible belt body 411 and is used for connecting the pulling device 430 and the polymer material pipeline 600, increasing the stability of pulling, and the material is light aluminum alloy.
[0112] The flexible band 421 is rectangular when unfolded and laid flat, with a suitable width (5-10 cm) and adjustable length, which can flexibly adapt to polymer material pipelines 600 of different lengths. The nylon or high-strength metal mesh material selected not only gives it good tensile strength and flexibility, but also ensures durability and reliability in different environments. This design allows the flexible band 421 to be uniformly stressed during the pulling process, reducing deformation or distortion of the polymer material pipeline 600 due to external forces. It is known for its excellent tensile strength, wear resistance, and corrosion resistance, making it suitable for a variety of environments; the rigid band 422 installed at both ends of the flexible band 421 is made of lightweight aluminum alloy, which not only ensures sufficient strength and rigidity to withstand various forces during the pulling process, but also reduces the overall weight, making it easier to operate. The rigid band 422 connects the pulling assembly 400 and the polymer material pipeline 600 tightly through its rigid connection, thereby increasing the stability of the pulling. The combination of the flexible band 421 and the rigid band 422 allows the pulling band 420 to form a stable and reliable pulling system when pulling the polymer material pipeline 600. The flexibility of the flexible band 421 allows it to adjust to changes in the shape of the polymer material pipeline 600 during the pulling process, while the rigid connection of the rigid band 422 ensures uniform transmission of pulling force and stable pulling of the polymer material pipeline 600. This design effectively reduces the deviation and distortion of the polymer material pipeline 600 during the pulling process, improving the straightness of the polymer material pipeline 600. At the same time, stable pulling also helps to improve the accuracy of the polymer material pipeline 600 butt joint. During the welding process, the accuracy of the polymer material pipeline 600 butt joint directly affects the quality and effect of the welding. The pulling band can maintain the straightness and stability of the polymer material pipeline 600, providing a strong guarantee for the accurate butt joint of the polymer material pipeline 600. Example 3
[0113] In order to further improve the stability of the power facility cable pipeline welding device and the convenience of the use process, the pulling assembly is optimized and improved in the embodiment of the application, specifically:
[0114] As Figure 7 shown, the pulling assembly further comprises a pressure sensor 440
[0115] The pressure sensor 440 is fixedly connected inside the polymer material pipeline 600, and a plurality of pressure sensors 440 are arranged around the inner wall of the polymer material pipeline 600. The pressure sensor 440 is an ellipsoid.
[0116] The pressure sensor 440 is made of stainless steel or copper, which has good mechanical properties, corrosion resistance, and stability.
[0117] A high-precision pressure sensor 440 is installed at the mouth of the polymer material pipeline 600 inside, ensuring that the sensor can accurately measure and transmit the change data of the internal pressure of the polymer material pipeline 600. After completing the preliminary installation and alignment of the polymer material pipeline 600, the alignment assembly 200 is removed, and the pipeline state before and after removal is carefully recorded for subsequent comparison. The value change of the internal pressure sensor 440 of the polymer material pipeline 600 is monitored in real time, and the collected pressure data is processed to identify the deviation of the straightness of the polymer material pipeline 600. According to the results of data analysis, the pipeline section that needs to be adjusted and the position of the pulling belt 420 are determined. The polymer material pipeline 600 is fine-tuned using the pulling belt 420, and the straightness deviation of the polymer material pipeline 600 is corrected by changing the tension and direction of the pulling belt 420. The adjustment process should be carried out gradually to avoid causing excessive stress or damage to the polymer material pipeline 600. The value change of the internal pressure sensor 440 is continuously monitored during the adjustment process to evaluate the adjustment effect. If there is still deviation, repeat the above steps until the straightness of the polymer material pipeline 600 reaches the value when the alignment assembly 200 is used. After completing the adjustment, the straightness of the polymer material pipeline 600 is verified to ensure that it meets the requirements. Through real-time monitoring and analysis of the internal pressure data of the pipeline, precise adjustment of the straightness of the polymer material pipeline 600 can be achieved. The sensor inside the polymer material pipeline 600 avoids errors and interference that may be caused by external measurement, ensuring the straightness of the polymer material pipeline 600. This helps to reduce resistance and vibration in the pipeline, thereby improving the stability and efficiency of the polymer material pipeline 600 system. Combined with the data acquisition, processing and analysis system and the automatic pulling assembly, the straightness adjustment of the polymer material pipeline 600 can be automated, reducing manual intervention and labor intensity.
[0118] The above only describes the preferred embodiments of the present application and is not intended to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. An electric utility cable conduit fusion apparatus characterized by, Include: Transmission components, alignment components, clamping components, pulling components, fixed components; The transmission component includes a flat support plate, a first push rod, a protrusion, a drive rail, a transmission frame, a transmission belt and an arc-shaped conveying block; The flat support plate serves as a carrier and is a rectangular body, a plurality of first push rods are fixedly connected to the top of both ends of the length direction of the flat support plate, the first push rod is a cylindrical body, a protrusion is fixedly connected to one end of the first push rod away from the flat support plate, the protrusion is a cylindrical body, a plurality of symmetrical drive rails are slidingly connected to the front end of the protrusion, the drive rail is a rectangular body, a drive groove is formed in the drive rail, the drive groove is a back-shaped groove, a transmission frame is rotatably connected to one side of the drive groove, a transmission belt is arranged in the transmission frame, and arc-shaped conveying blocks are fixedly connected to the outer side of the transmission belt at equal intervals; The pulling component includes a pulling belt fixing ring, a pulling belt, a flexible belt body, a rigid belt body, a pulling device, a pulling motor, a pulley block, a transmission column, a pulley and a pressure sensor; The output end of the pulling motor is rotatably connected with a transmission column, the transmission column is a cylindrical body, a pulley block is slidingly connected to one side of the transmission column, the pulley block has three pulleys, a pulling belt fixing ring is arranged at one end of the pulley away from the transmission column, the pulling belt fixing ring is circular, and a pulling belt is arranged at one end of the pulling belt fixing ring away from the pulley; The pulling belt includes a flexible belt body and a rigid belt body, the flexible belt body is unfolded into a rectangular body, rigid belt bodies are fixedly connected to both ends of the flexible belt body, and a high polymer material pipeline is slidingly connected to one side of the pulling belt away from the pulling belt fixing ring; The rigid belt body is unfolded into a rectangular body.
2. An electric utility cable splicing apparatus as defined in claim 1 wherein, The high polymer material pipeline is fixedly connected with a plurality of pressure sensors inside, the pressure sensors are arranged on the inner wall of the high polymer material pipeline, and the pressure sensor is an ellipsoid.
3. An electrical utility cable splicing apparatus as defined in claim 1 wherein, The alignment component includes a base plate, a guide groove, a sliding block, an arc-shaped plate, a round push block, a pull rod, a guide rod, a limiting groove and a second push rod; The base plate is a square body, a guide groove is formed in the surface of the base plate, the guide groove has a plurality of rectangular grooves, a sliding block is slidingly connected in the guide groove, the sliding block is a rectangular block, an arc-shaped plate is fixedly connected to one side of the top of the sliding block, a pull rod is fixedly connected to the other side of the top of the sliding block, the pull rod is a rectangular body, and a round push block is rotatably connected to one end of the pull rod away from the arc-shaped plate.
4. An electrical utility cable splicing apparatus as defined in claim 3 wherein, A plurality of guide rods are fixedly connected in a ring array on the circumferential outer side of the round push block, the guide rod is a rectangular body, a limiting groove is formed in a ring array on the circumferential outer side of the round push block, the guide rod is slidingly connected in the limiting groove, a second push rod is fixedly connected to one side of the guide rod away from the round push block, and the second push rod is a cylindrical body.
5. An electrical utility cable splicing apparatus as defined in claim 1 wherein, The clamping component includes a first horizontal plate, a third push rod, a sliding plate, a guide rail, a vertical plate, a second horizontal plate, a sliding cylinder, an arc-shaped clamping plate; The first horizontal plate is a rectangular body, the bottom of the first horizontal plate is fixedly connected with a third push rod, the third push rod is a cylindrical body, one end of the third push rod away from the first horizontal plate is fixedly connected with a sliding plate, the sliding plate is a rectangular body, the adjacent side of the two sliding plates is fixedly connected with an arc-shaped clamping plate, the sliding plate is slidingly connected in the guide rail, one side of the guide rail away from the sliding plate is fixedly connected with a vertical plate, the bottom of the vertical plate is fixedly connected with a second horizontal plate, the second horizontal plate is a rectangular body, the top of the second horizontal plate is fixedly connected with a third push rod, the bottom of the second horizontal plate is symmetrically provided with a sliding cylinder at both ends, and the sliding cylinder is a rectangular body.
6. An electrical utility cable splicing apparatus as defined in claim 5, wherein, The top of the guide rail and the vertical plate is fixedly connected with the bottom of the first horizontal plate, and the bottom of the guide rail and the vertical plate is fixedly connected with the top of the second horizontal plate.
7. An electric utility cable splicing apparatus as defined in claim 1 wherein, The fixing assembly comprises a sliding rail, a sliding seat, a fourth push rod, a limiting block and a limiting sleeve. The bottom of the sliding rail is slidingly connected with the sliding seat, the sliding seat has two, the bottom of the sliding seat is fixedly connected with the fourth push rod, one end of the fourth push rod away from the sliding seat is fixedly connected with a bottom plate, and the adjacent side of the two bottom plates is fixedly connected with the limiting block and the limiting sleeve respectively.
Citation Information
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