A power pipeline processing device

By designing the vacuum cleaner assembly and rotary sleeve structure in the power pipeline processing equipment, the problem that existing equipment cannot clean up dust in the inner wall of the pipeline is solved, and a comprehensive cleaning effect is achieved.

CN115609655BActive Publication Date: 2025-08-01HANGZHOU NANXIN ELECTRIC POWER EQUIP CO LTD
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
CN202210900612.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-28
Publication Date
2025-08-01
Estimated Expiration
2042-07-28

AI Technical Summary

Technical Problem

Existing power pipeline processing equipment cannot effectively clean up dust in the inner wall of the pipeline, resulting in incomplete cleaning.

Method used

A power pipeline processing equipment is designed, including a three-jaw chuck, cutting assembly, material collection frame, filter mesh, vacuum pipe and vacuum cleaner. The vacuum cleaner component is located in the center through hole of the three-jaw chuck to remove dust generated during cutting, and after the cutting is completed, the dust in the inner wall of the pipe is sucked out again. Combined with the design of the rotating sleeve, moving pipe and vacuum cleaner, a comprehensive cleaning is achieved.

Benefits of technology

It improves the cleaning effect of dust in the inner wall of the pipeline and ensures comprehensive cleaning during the processing process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115609655B_ABST
    Figure CN115609655B_ABST
Patent Text Reader

Abstract

The present application discloses a power pipeline processing device, which belongs to the field of pipeline processing. A frame is configured to have a working platform; a support rod is fixedly arranged on the working surface; a cutting assembly is used for cutting the power pipeline; a three-jaw chuck is arranged on the working surface for clamping the power pipeline; a material receiving frame is arranged at the bottom of the working surface; a filter screen is fixedly arranged in the material receiving frame; a discharge port is opened on the side wall of the material receiving frame; a dust suction pipe is arranged in the material receiving frame; a dust suction assembly is arranged on the dust suction pipe for absorbing the dust in the power pipeline; an adjusting member is arranged on the working surface for adjusting the position of the power pipeline; wherein, a through hole is arranged at the central position of the three-jaw chuck, the dust suction assembly is arranged in the through hole, and part of the dust suction assembly is located inside the power pipeline so as to absorb the dust in the power pipeline. The beneficial effect of the present application is to provide a power pipeline processing device capable of cleaning the dust on the inner wall of the pipeline.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of pipeline processing, and more specifically, to a power pipeline processing device. Background Art

[0002] Power pipes are products coated with hot-dip plastic using PE or epoxy resin inside and outside, with excellent corrosion resistance. At the same time, the coating itself also has good electrical insulation and will not cause electrical corrosion. It has low water absorption, high mechanical strength, and a small friction coefficient, and can achieve the purpose of long-term use. It can also effectively prevent the damage of plant roots and soil environmental stress, etc.; When power pipelines leave the factory, they usually need to be cut into pipes of specific lengths according to the actual required specifications;

[0003] For example, in a segmented cutting mechanism for pipeline prefabrication and processing with the patent number (CN202123057678.8), a dust collection mechanism is provided. By starting the dust suction fan connected to the power supply, the dust suction fan generates sufficient suction, and through the through holes and the dust suction pipe, the dust or debris generated during cutting can be sucked into the interior of the dust storage box for storage. Through the unified collection and treatment of dust or waste chips, the subsequent cleaning is made more convenient.

[0004] In the above structure, due to the setting of the dust suction fan, the dust generated on the outer wall during pipeline cutting can be cleaned; however, only the external dust can be washed away, and the dust generated on the inner wall of the pipeline cannot be sucked out; thus, during the processing, the cleaning is still not comprehensive.

[0005] Currently, there is no power pipeline processing device that can clean the dust on the inner wall of the pipeline. Summary of the Invention

[0006] The content part of this application is used to briefly introduce concepts, which will be described in detail in the subsequent detailed implementation part. The content part of this application is not intended to identify the key features or essential features of the claimed technical solution, nor is it intended to limit the scope of the claimed technical solution.

[0007] To solve the technical problems mentioned in the above background art part, some embodiments of this application provide a power pipeline processing device, including a frame configured to have a working platform;

[0008] Support rods fixed on the working surface;

[0009] A cutting assembly for cutting power pipelines;

[0010] A three-jaw chuck provided on the working surface for clamping power pipelines;

[0011] A material receiving frame provided at the bottom of the working surface;

[0012] A filter screen, fixedly arranged inside the material receiving frame;

[0013] A discharge opening, formed on the side wall of the material receiving frame;

[0014] A dust suction pipe, arranged in the material receiving frame;

[0015] A dust suction assembly, arranged on the dust suction pipe, used for sucking the dust in the power pipeline;

[0016] An adjusting member, arranged on the workbench surface, used for adjusting the position of the power pipeline;

[0017] Wherein, a through hole is provided at the central position of the three-jaw chuck, the dust suction assembly is arranged inside the through hole, and a part of the dust suction assembly is located inside the power pipeline, so as to suck the dust in the power pipeline

[0018] When the power pipe is being cut, the dust suction assembly is located inside the power pipeline, the dust generated during cutting is sucked out, and then after the cutting is completely finished, the dust suction assembly will suck the inner wall of the pipeline to be processed again. In this way, the dust in the processed and pipeline to be processed is sucked out; thus, the cleaning effect is improved.

[0019] Further, the dust suction assembly includes:

[0020] A rotating sleeve, rotatably arranged on the inner wall of the through hole and communicated with the dust suction pipe;

[0021] A moving pipe, partially inserted into one end of the rotating sleeve away from the dust suction pipe, and movably arranged on the inner wall of the through hole;

[0022] A dust suction block, fixedly arranged at one end of the moving pipe away from the dust suction pipe, and configured to have a cavity;

[0023] A dust suction head, movably arranged on the side wall of the cavity and movable in the radial direction of the power pipeline;

[0024] A driving member, arranged inside the cavity, used for driving the dust suction head to move;

[0025] Wherein, a thread groove is provided inside the rotating sleeve; a thread that is in threaded cooperation with the thread groove is provided on the part of the moving pipe inserted into the rotating sleeve.

[0026] Further, part of the inner wall of the through hole forms a limiting groove by recesses, and the limiting groove penetrates in a direction away from the dust suction pipe;

[0027] A limiting block corresponding to the limiting groove is provided on the outer wall of the moving pipe, and the limiting block is inserted into the limiting groove, so that the moving pipe slides along the extending direction of the limiting groove.

[0028] Further, the driving member includes:

[0029] A driving plate movably disposed on the inner top wall of the cavity;

[0030] A pulling rope, one end fixedly connected to the driving plate and the other end fixedly connected to the inner wall of the through hole;

[0031] Wherein, an inclined surface is provided at one end of the driving plate close to the suction head; a chamfer is provided at one end of the suction head located in the cavity and abuts against the inclined surface.

[0032] Further, a scraping plate is provided at one end of the suction head away from the cavity, and the scraping plate extends along a circumferential direction of the moving pipe;

[0033] The suction head is provided with a suction port, and the suction port penetrates through the suction head.

[0034] Further, the filter screen inclines towards the discharge port in the material receiving frame;

[0035] The upper surface of the filter screen is flush with the lower end surface of the discharge port.

[0036] Further, a flap is provided at the discharge port, and one end of the flap away from the filter screen is hinged to the inner wall of the discharge port.

[0037] Further, an induction switch is provided on the three-jaw chuck. When the power pipeline abuts against the three-jaw chuck, the induction switch drives the three-jaw chuck to start and clamp the power pipeline.

[0038] Further, the adjusting member includes:

[0039] A guide rail fixedly provided on the workbench surface and extending along an axial direction of the through hole;

[0040] A slider movably disposed on the guide rail to move the slider closer to or away from the three-jaw chuck;

[0041] Two clamping blocks movably disposed relative to each other on the slider and both abutting against the power pipeline;

[0042] A plurality of rollers are all disposed on surfaces of the two clamping blocks close to the power pipeline.

[0043] Further, the slider is provided with a guide groove; the guide groove is recessed in a part of the upper surface of the slider;

[0044] A bottom part of the clamping block protrudes to form a moving block, and the moving block is inserted into the guide groove to enable the slider to slide in the guide groove;

[0045] Threaded holes are formed in the moving blocks, and the spiral directions of the threaded holes in the two moving blocks are opposite;

[0046] A threaded rod that is threadedly engaged with the two threaded holes is provided on the end wall of the guiding groove; Rotating the threaded rod causes the two clamping blocks to approach or move away from each other.

[0047] The beneficial effect of this application is that it provides a power pipeline processing device that can clean the dust on the inner wall of the pipeline. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] The drawings constituting a part of this application are used to provide a further understanding of this application, making other features, objectives, and advantages of this application more obvious. The schematic embodiments and descriptions thereof of this application are used to explain this application and do not constitute an improper limitation of this application.

[0049] In addition, throughout the drawings, the same or similar reference numerals represent the same or similar elements. It should be understood that the drawings are schematic and the elements and elements are not necessarily drawn to scale.

[0050] In the drawings:

[0051] Figure 1 is the overall schematic diagram according to the embodiment of this application;

[0052] Figure 2 is the overall schematic diagram facing the direction of the staff according to the embodiment of this application;

[0053] Figure 3 is the cross-sectional view taken along the midline in the length direction of the material receiving frame according to the embodiment of this application;

[0054] Figure 4 is the structural schematic diagram of a part of the embodiment, mainly showing the structures of the three-jaw chuck and the frame;

[0055] Figure 5 is Figure 3 the enlarged view in;

[0056] Figure 6 is the structural schematic diagram of a part of the embodiment, mainly showing the structure of the dust collection component;

[0057] Figure 7 is Figure 6 the half cross-sectional view of;

[0058] Figure 8 is the structural schematic diagram of a part of the embodiment, mainly showing the exploded view of the dust collection component;

[0059] Figure 9 is the structural schematic diagram of a part of the embodiment, mainly showing the structure of the material receiving frame;

[0060] Figure 10 Schematic structural diagram of a part of an embodiment, mainly showing the structure of the adjusting member;

[0061] Figure 11 is Figure 7 The partial enlarged view in.

[0062] Reference numerals:

[0063] 1. Frame; 11. Working platform; 12. Support rod;

[0064] 2. Cutting machine includes; 21. Turntable; 22. Motor; 23. Guide rod; 24. Mounting bracket; 25. Saw;

[0065] 3. Three-jaw chuck; 31. Through hole; 311. Ring groove; 312. Limit groove;

[0066] 4. Material receiving frame; 41. Material discharging port; 42. Unloading port; 43. Flap;

[0067] 5. Filter screen;

[0068] 6. Dust suction pipe;

[0069] 7. Dust suction assembly; 71. Rotating sleeve; 711. Rotating ring; 712. Rotating groove; 72. Moving pipe; 721. Limit block;

[0070] 8. Dust suction block; 81. Spring; 82. Chamfer; 83. Dust suction head;

[0071] 9. Driving member; 91. Driving plate; 92. Pulling rope; 93. Scraper; 911. Inclined surface;

[0072] 10. Adjusting member; 101. Guide rail; 102. Slide block; 103. Clamping block; 104. Roller. Detailed implementation manners

[0073] Embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although some embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. On the contrary, these embodiments are provided to more thoroughly and completely understand the present disclosure. It should be understood that the drawings and embodiments of the present disclosure are only for exemplary purposes and are not used to limit the protection scope of the present disclosure.

[0074] In addition, it should be noted that for the convenience of description, only parts related to the relevant invention are shown in the drawings. Without conflict, the embodiments in the present disclosure and the features in the embodiments can be combined with each other.

[0075] It should be noted that the concepts such as "first" and "second" mentioned in this disclosure are only used to distinguish different devices, modules or units, and are not used to limit the order or interdependence of the functions performed by these devices, modules or units.

[0076] It should be noted that the modifications of "one" and "multiple" mentioned in this disclosure are illustrative rather than restrictive. Those skilled in the art should understand that unless otherwise clearly specified in the context, it should be understood as "one or more".

[0077] The present disclosure will be described in detail below with reference to the accompanying drawings and in conjunction with embodiments.

[0078] Refer to Figure 1-2 As shown, a power pipeline processing device includes: a frame 1, a support rod 12, and a cutting machine.

[0079] The frame 1 is configured to have a working platform 11, and the support rod 12 is fixed on the working surface. Among them, the cutting machine is arranged on the support rod 12 and is used for cutting the power pipeline.

[0080] Among them, the cutting machine includes: a turntable 21, a motor 22, a guide rod 23, a mounting bracket 24, a saw 25, and a hinge rod 26.

[0081] More specifically, the turntable 21 is rotatably arranged on the support frame; the motor 22 is arranged at the bottom of the working table and is used to drive the rotary disk 21 to rotate; the guide rod 23 is arranged on the support frame, and the length direction of the guide rod 23 is horizontal with the length direction of the working surface; and the support frame is controlled to expand and contract through an electronic telescopic rod so that the guide rod 23 approaches or moves away from the electronic pipeline.

[0082] The mounting bracket 24 is slidably arranged on the guide rod 23 so that the mounting bracket 24 moves along the extension direction of the guide rod 23; the saw 25 is installed on the mounting bracket 24 and is used for cutting the power pipeline; one end of the hinge rod is hinged to the mounting bracket 24, and the other end is hinged to the turntable 21.

[0083] The motor 22 drives the turntable 21 to rotate, and the turntable 21 drives the hinge rod 26 to move away from or close to the saw 25; since the hinge rod 26 is hinged to the mounting bracket 24, it will drive the mounting bracket 24 to slide along the extension direction of the guide rod 23; thus, the saw 25 reciprocates on the power pipeline to achieve cutting.

[0084] The power pipeline processing device further includes: a three-jaw chuck 3, a material receiving frame 4, a filter screen 5, a dust suction pipe 6, and a dust suction assembly 7.

[0085] As Figure 4As shown in the figure, more specifically, the three-jaw chuck 3 is arranged on the workbench surface for clamping the power pipeline; the three-jaw chuck 3 is an electric three-jaw chuck 3 directly purchased on the market, and an induction switch is arranged on the three-jaw chuck 3, and the induction switch is an infrared induction switch; when the power pipeline touches the induction switch of the three-jaw chuck 3, the three-jaw chuck 3 is driven to start to clamp the power pipeline.

[0086] As Figure 9 shown in the figure, more specifically, the receiving frame 4 is arranged at the bottom of the workbench surface, and a part of the workbench surface penetrates to form a blanking port 41, and the blanking port 41 is communicated with the receiving frame 4; after the power pipeline is cut, the power pipeline can automatically fall into the receiving frame 4;

[0087] A part of the side wall of the receiving frame 4 penetrates to form a discharging port 42; more specifically, a flap 43 is arranged at the discharging port 42, and a convex column is formed on the side wall in the length direction of the flap 43, and the convex column is inserted into the side wall of the receiving frame 4 so that the flap 43 rotates along the circumferential direction of the convex column.

[0088] The filter screen 5 is fixed in the receiving frame 4 by screws; more specifically, the filter screen 5 inclines towards the discharging port 42 in the receiving frame 4, and the upper surface of the filter screen 5 is flush with the lower end surface of the discharging port 42; after the power pipeline falls onto the filter screen 5, it rolls to the discharging port 42 under its own gravity, and knocks open the flap 43 through the inertia generated during rolling and falls from the discharging port 42, realizing automatic discharging.

[0089] As Figure 3 shown in the figure, one end of the dust suction pipe 6 is fixed on the side wall of the receiving frame 4 and is communicated with the receiving frame 4 located below the filter screen 5; more specifically, a through hole 31 is arranged at the center position of the three-jaw chuck 3, one end of the dust suction pipe 6 is communicated with the receiving frame 4, and the other end is partially located in the through hole 31 and is connected with the dust suction component 7; wherein, a dust collector is arranged in the receiving frame 4, and the dust suction port of the dust collector is communicated with the dust suction pipe 6 to absorb the dust generated in the power pipeline during cutting, so as to improve the effect of cleaning the dust.

[0090] As Figure 6-8 shown in the figure, more specifically, the dust suction component 7 includes: a rotating sleeve 71, a moving pipe 72, a dust suction block 8, and a dust suction head 83;

[0091] The rotating sleeve 71 is rotatably arranged on the inner wall of the through hole 31; more specifically, an annular groove 311 is arranged on the inner wall of the through hole 31, and the annular groove 311 extends along the extending direction of the through hole 31; a rotating ring 711 which is in clearance fit with the annular groove 311 is arranged on the outer wall of the rotating sleeve 71 so that the rotating sleeve 71 rotates along the circumferential direction of the annular groove 311;

[0092] One end of the rotating sleeve 71 away from the power pipeline is connected to the dust suction pipe 6. More specifically, a rotating groove 712 is provided at the end of the rotating sleeve 71 in contact with the dust suction pipe 6, and the rotating groove 712 extends along the circumferential direction of the rotating sleeve 71; a part of the dust suction pipe 6 is inserted into the rotating groove 712 so that the rotating sleeve 71 rotates on the dust suction pipe 6.

[0093] As Figure 8 shown, a part of the moving pipe 72 is inserted into one end of the rotating sleeve 71 away from the dust suction pipe 6 and is movably arranged on the inner wall of the through hole 31; more specifically, a part of the inner wall of the through hole 31 forms a limiting groove 312 by recessing, and the limiting groove 312 penetrates in the direction away from the dust suction pipe 6; a limiting block 721 corresponding to the limiting groove 312 is provided on the outer wall of the moving pipe 72, and the limiting block 721 is inserted into the limiting groove 312 so that the moving pipe 72 slides along the extending direction of the limiting groove 312;

[0094] Among them, a threaded groove is provided in the rotating sleeve 71; a part of the moving pipe 72 inserted into the rotating sleeve 71 is provided with a thread that is in threaded cooperation with the threaded groove; through the arrangement of the threaded groove and the thread, the rotation of the rotating sleeve 71 driven by the motor 22 can make the moving pipe 72 move along the extending direction of the limiting groove 312.

[0095] As Figure 8 shown, the dust suction block 8 is fixedly arranged at one end of the moving pipe 72 away from the dust suction pipe 6 and is configured to have a cavity 84; more specifically, a limiting hole is formed by partial penetration on the inner wall of the cavity 84, and the dust suction head 83 is arranged in the limiting hole; and a spring 81 is fixedly arranged on the surface of the dust suction head 83, and the other end of the spring 81 is fixedly arranged on the inner wall of the cavity; so that the dust suction head 83 can move in the limiting hole in the radial direction of the power pipeline.

[0096] As Figure 8 shown, the driving member includes: a driving plate 91, a pulling rope 92, and a scraping plate 93;

[0097] The driving plate 91 is movably arranged on the inner top wall of the cavity; more specifically, a moving groove is formed by concave in the inner wall of the cavity, and the moving groove extends along a part of the axial direction of the through hole 31 in the reverse direction; a part of the side wall of the driving plate 91 is inserted into the moving groove so that the driving plate 91 slides along the axial direction of the through hole 31; among them, a spring 81 is fixedly arranged on the driving plate 91, and the spring 81 is fixedly connected to the inner end wall of the cavity; among them, an inclined surface 911 is provided at one end of the driving plate 91 close to the dust suction head; a chamfer 82 in contact with the inclined surface 911 is provided at one end of the dust suction head located in the cavity.

[0098] The scraping plate 93 is fixedly arranged at one end of the dust suction head away from the cavity, and the scraping plate 93 extends along a part of the circumferential direction of the moving pipe 72; among them, the dust suction head is provided with a dust suction port 931, and the dust suction port 931 penetrates through the dust suction head.

[0099] One end of the pull cord 92 is fixedly connected to the drive plate 91, and the other end is fixedly connected to the inner wall of the through hole 31. When the moving pipe 72 moves away from the dust suction pipe 6, the pull cord 92 pulls the drive plate 91 to be limited. Then, the chamfer 82 of the dust suction block 8 abuts against the inclined surface 911 of the drive plate 91, so that the dust suction head moves towards the inner wall of the power pipeline.

[0100] As Figure 10 shown, the adjusting member 10 is provided on the workbench and is used to adjust the position of the power pipeline. The adjusting member 10 includes: a guide rail 101, a slider 102, a clamping block 103, and a roller 104

[0101] The guide rail 101 is fixedly arranged on the workbench and extends along the axial direction of the through hole 31;

[0102] The slider 102 is movably arranged on the guide rail 101. More specifically, the slider 102 is provided with a fitting groove that has a clearance fit with the guide rail 101, and the guide rail 101 is inserted into the fitting groove so that the slider 102 approaches or moves away from the three-jaw chuck 3 along the extension direction of the guide rail 101. The slider 102 is driven to move on the guide rail 101 by an electronic telescopic rod.

[0103] There are two clamping blocks 103, which are relatively movably arranged on the slider 102 and both abut against the power pipeline. More specifically, the slider 102 is provided with a guide groove that is recessed in the upper surface part of the slider 102. The bottom part of the clamping block 103 protrudes to form a moving block, and the moving block is inserted into the guide groove so that the slider 102 slides in the guide groove. A threaded hole is formed in the moving block, and the spiral directions of the threaded holes in the two moving blocks are opposite. A threaded rod that is threadedly engaged with the two threaded holes is provided on the end wall of the guide groove. Rotating the threaded rod makes the two clamping blocks 103 approach or move away from each other. After the power pipeline is cut, the electronic telescopic rod is activated to pull the uncut power pipeline close to the three-jaw chuck 3. Thus, automatic feeding of the electronic pipeline is realized, and the processing efficiency is improved.

[0104] The rollers 104 are all arranged on the surfaces of the two clamping blocks 103 close to the power pipeline and are arranged in several numbers evenly along the length direction of the clamping block 103. More specifically, a one-way bearing is fixedly arranged on the clamping block 103, and the one-way bearing is sleeved on the roller 104. The power pipeline is limited in the axial direction after being clamped. Due to the arrangement of the rollers 104, when the slider 102 is reset, the rollers 104 roll on the side wall of the power pipeline, so that it is not necessary to loosen the clamping block 103 and then clamp it every time for feeding, saving the feeding time and improving the processing efficiency.

[0105] The above description is only some preferred embodiments of the present disclosure and an explanation of the applied technical principles. Those skilled in the art should understand that the scope of the invention involved in the embodiments of the present disclosure is not limited to the technical solutions formed by the specific combination of the above technical features, but should also cover other technical solutions formed by any combination of the above technical features or their equivalent features without departing from the above inventive concept. For example, the technical solutions formed by mutually replacing the above features with the technical features (but not limited to) disclosed in the embodiments of the present disclosure that have similar functions.

Claims

1. A power pipeline processing device, comprising: A frame, configured to have a working platform; Support rods, fixed on the working surface; A cutting assembly for cutting power pipelines; A three-jaw chuck, arranged on the working surface for clamping power pipelines; Characterized in that: The power pipeline processing device further includes: A material receiving frame, arranged at the bottom of the working surface; A filter screen, fixed inside the material receiving frame; A discharge opening, opened on the side wall of the material receiving frame; A connecting pipe, one end of which is arranged to communicate with the material receiving frame; A dust suction assembly, arranged on the connecting pipe for sucking the dust inside the power pipeline; An adjusting member, arranged on the working surface for adjusting the position of the power pipeline; Wherein, a through hole is provided at the central position of the three-jaw chuck, the end of the connecting pipe far from the material receiving frame is inserted into the through hole, and a part of the dust suction pipe is located inside the power pipeline to suck the dust inside the power pipeline; The dust suction assembly includes: A rotating sleeve, rotatably arranged on the inner wall of the through hole and communicated with the dust suction pipe; A moving pipe, part of which is inserted into one end of the rotating sleeve far from the dust suction pipe and is movably arranged on the inner wall of the through hole; A dust suction block, fixed at the end of the moving pipe far from the dust suction pipe and configured to have a cavity; A dust suction head, movably arranged on the side wall of the cavity and movable in the radial direction of the power pipeline; A driving member, arranged inside the cavity for driving the dust suction head to move; Wherein, a thread groove is provided inside the rotating sleeve; the part of the moving pipe inserted into the rotating sleeve is provided with an external thread that is threadedly engaged with the thread groove; Part of the inner wall of the through hole forms a limiting groove, and the limiting groove penetrates in the direction away from the dust suction pipe; A limiting block corresponding to the limiting groove is provided on the outer wall of the moving pipe, and the limiting block is inserted into the limiting groove so that the moving pipe slides along the extending direction of the limiting groove; The driving member includes: A driving plate, movably arranged on the inner top wall of the cavity; A pull rope, one end of which is fixedly connected to the driving plate and the other end is fixedly connected to the inner wall of the through hole; Wherein, an inclined surface is provided at one end of the driving plate close to the dust suction head; a chamfer is provided at one end of the dust suction head located inside the cavity and in contact with the inclined surface; A scraping plate is provided at the end of the dust suction head far from the cavity, and the scraping plate extends along the circumferential direction of the moving pipe; The dust suction head is provided with a dust suction port, and the dust suction port penetrates through the dust suction head.

2. The power pipeline processing device according to claim 1, characterized in that: The filter screen inclines from top to bottom in the material receiving frame towards the discharge opening; One end of the filter screen close to the discharge opening is flush with the lower end surface of the discharge opening.

3. The power pipeline processing device according to claim 2, characterized in that: A flap is provided at the discharge opening, and the upper end of the flap is hinged to the inner wall of the discharge opening.

4. The power pipeline processing device according to claim 3, characterized in that: An induction switch is provided on the three-jaw chuck. When the power pipeline touches the three-jaw chuck, the induction switch drives the three-jaw chuck to start and clamp the power pipeline.

5. The power pipeline processing equipment according to claim 1, wherein: The adjusting member includes: A guide rail fixedly provided on the workbench surface and extending axially along the through hole; A slider movably provided on the guide rail to move the slider closer to or away from the three-jaw chuck; Two clamping blocks movably provided on the slider and both in contact with the power pipeline; A plurality of rollers are all provided on the surfaces of the two clamping blocks close to the power pipeline.

6. The power pipeline processing equipment according to claim 5, wherein: The slider is provided with a guide groove; the guide groove is concave in the upper surface part of the slider; The bottom part of the clamping block protrudes to form a moving block, and the moving block is inserted into the guide groove so that the slider slides in the guide groove; A threaded hole is formed in the moving block, and the spiral directions of the threaded holes in the two moving blocks are opposite; A threaded rod threadedly engaged with the two threaded holes is provided on the end wall of the guide groove; rotating the threaded rod causes the two clamping blocks to approach or move away from each other.

Citation Information

Patent Citations

  • Segmented cutting mechanism for pipeline prefabrication machining

    CN216266278U

  • Pipe cutting device

    CN109014404A

  • Device and system for detecting pipe fitting

    CN109282773A

  • Intelligent bionic squirming type pipeline cleaning robot

    CN110548737A

  • Pipeline cleaning device

    CN111229751A