Automatic piping device for special gas pipeline

By designing automatic piping devices, the problems of purge, chamfer deburring and quality inspection of special gas pipelines are solved, and the automated processing of special gas pipelines is realized, which improves processing efficiency and applicability.

CN223198514UActive Publication Date: 2025-08-08SHANGHAI LONGWELL M & E CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422497080.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-08-08
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The prior art cannot purge the special gas pipeline, cannot achieve chamfer deburring, cannot inspect the quality of the special gas pipeline after processing, and cannot realize automatic processing of the special gas pipeline.

Method used

An automatic piping device is designed, including a first feeding member, a material storage member, a first processing member, a second feeding member, a second processing member and a adjustment member. Through the synergy of the control member, automatic cutting, grinding and quality detection of the special gas pipeline is realized.

Benefits of technology

It realizes automatic processing of special gas pipelines, reduces labor intensity, improves processing efficiency, is suitable for pipeline processing of different lengths, and reduces costs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223198514U_ABST
    Figure CN223198514U_ABST
Patent Text Reader

Abstract

The utility model relates to an automatic piping device for a special gas pipeline. The automatic piping device comprises a first feeding part, a material storage part, a first machining part, a second feeding part, a second machining part, an adjusting part and a control part. The special gas pipeline machining device has the advantages that the first feeding component, the first machining component, the second feeding component and the second machining component are sequentially arranged, so that special gas pipelines can be sequentially subjected to cutting, grinding and other machining after being placed on the first feeding component from the material storage component, automation of special gas pipeline machining is achieved, the labor intensity of traditional machining is greatly reduced, and the machining efficiency is improved. The efficiency is improved and the cost is reduced; in addition, the second machining part is arranged on the adjusting part, the distance between the second machining part and the second feeding part can be adjusted, and therefore the whole device can be suitable for machining special gas pipelines of different lengths, and the applicability is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of semiconductor gas pipeline production equipment, in particular to an automatic piping device for special gas pipelines. Background Art

[0002] Specialty electronic gases are known as the "food" and "source" of semiconductor materials. In the production of microelectronics and optoelectronic devices, from chip growth to final device packaging, electronic gases are indispensable in almost every step and link. Therefore, electronic gases are called the "food" and "source" of semiconductor materials, and pipelines are required in semiconductor specialty gas systems.

[0003] The Chinese utility model patent (CN209175396U) discloses a dust removal device for an automatic rotary pipe cutting machine, comprising a base, a bracket welded on the upper surface of the base, a pipe cutting machine body fixedly mounted on the upper surface of the base opposite to the bracket, and the pipe cutting machine body being electrically connected to an external power supply; by arranging a dust extraction hood, an air inlet pipe, an air outlet pipe, a water storage tank and a filter screen, the dust extraction hood extracts dust generated during the cutting process under the action of the fan, the gas mixed with dust enters the water storage tank through the air outlet pipe and is filtered by water, and the gas is discharged through the exhaust water injection pipe, thereby achieving a dust-proof effect, and the dust-proof effect is good; by arranging a water guide groove, a water guide hole and a nozzle, during the cutting process, a water pump extracts clean water in the water storage tank and sprays it through the nozzle, thereby quickly cooling the cutting wheel during the pipe cutting process, and at the same time, the impurities and dust on the surface of the pipe can be washed away, thereby avoiding waste of water resources and extending the service life of the pipe cutting machine body.

[0004] However, the devices in the prior art are unable to purge the pipeline, ensure the cleanliness of the inside of the special gas pipeline, chamfer and deburr the pipeline, inspect the quality of the special gas pipeline after processing, and realize automatic processing of the special gas pipeline.

[0005] At present, there is no effective solution to the problems existing in related technologies, such as the inability to purge the pipeline, the inability to chamfer and deburr the pipeline, the inability to inspect the quality of the special gas pipeline after processing, and the inability to realize automatic processing of the special gas pipeline. Utility Model Content

[0006] The purpose of this utility model is to address the deficiencies in the existing technology and provide an automatic piping device for special gas pipelines to solve the problems existing in the related technology such as the inability to purge the pipelines, the inability to chamfer and deburr the pipelines, the inability to inspect the quality of the special gas pipelines after processing, and the inability to realize automatic processing of the special gas pipelines.

[0007] In order to achieve the above purpose, the technical solution adopted by the utility model is:

[0008] The utility model provides an automatic piping device for special gas pipelines, comprising:

[0009] A first feeding component, the first feeding component is used to transport the special gas pipeline;

[0010] A material storage component, which is arranged on the first feeding component and is used to store the special gas pipeline and discharge the special gas pipeline to the first feeding component;

[0011] a first processing component, which is arranged downstream of the first feeding component and is used for cutting the special gas pipeline;

[0012] A second feeding component, which is arranged downstream of the first processing component and is used to transport the special gas pipeline after cutting;

[0013] a second processing component, which is arranged downstream of the second feeding component and is used to grind the end of the special gas pipeline after cutting;

[0014] an adjusting component connected to the second processing component and configured to drive the second processing component to move so that the second processing component can process special gas pipelines of different lengths;

[0015] A control component is arranged on the second feeding component and is respectively connected to the first feeding component, the material storage component, the first processing component, the second feeding component, the second processing component and the adjusting component, and is used to control the start and stop of the first feeding component, the material storage component, the first processing component, the second feeding component, the second processing component and the adjusting component.

[0016] In some embodiments, the first feeding component includes:

[0017] a first feed chute assembly, the first feed chute assembly being arranged upstream of the first processing component and being used for placing a special gas pipeline;

[0018] The first driving component is arranged on the first feeding trough component and is connected to the control component, and is used to push the special gas pipeline to move on the first feeding trough component under the action of the control component.

[0019] In some embodiments, the first feed chute assembly includes:

[0020] a first feeding support member, the first feeding support member being arranged upstream of the first processing member and being used for mounting the first driving assembly and the material storage member;

[0021] The first feeding track component is arranged on the first feeding bracket component and is used for placing the special gas pipeline.

[0022] In some embodiments, the first drive assembly includes:

[0023] a pushing cylinder, which is disposed at the first end of the first feeding trough assembly and is connected to the control component, and is used to push the special gas pipeline to move on the first feeding trough assembly under the action of the control component;

[0024] a plurality of first rotating wheel members, each of which is disposed at the second end of the first feeding trough assembly and is rotatably connected to the first feeding trough assembly for clamping the special gas pipeline;

[0025] A plurality of first driving members are all arranged in the first feeding trough assembly and are respectively connected to the corresponding first rotating wheel members in a transmission manner, and the first driving members are connected to the control component to drive the first rotating wheel member to rotate under the action of the control component.

[0026] In some embodiments, the material storage component includes:

[0027] A material storage component, which is arranged on the first feeding component and is used to store the special gas pipeline;

[0028] A discharge component is arranged in the material storage component and is connected to the control component, and is used to place the special gas pipeline in the material storage component on the first feeding component under the action of the control component.

[0029] In some embodiments, the material storage assembly includes:

[0030] A material storage part is provided on the first feeding part and is used for storing the special gas pipeline.

[0031] In some embodiments, the discharge assembly includes:

[0032] A rotating shaft, the rotating shaft being arranged at a discharge slot of the material storage assembly and being rotatably connected to the material storage assembly;

[0033] A plurality of discharge members, each of which is provided at both ends of the rotating shaft and is used for rotating under the action of the rotating shaft and placing the special gas pipeline on the first feeding member;

[0034] The first rotating drive member is arranged in the material storage assembly and is in transmission connection with the rotating shaft. The first rotating drive member is connected to the control component and is used to drive the rotating shaft to rotate under the action of the control component.

[0035] In some embodiments, the first processing component includes:

[0036] a first processing member, which is disposed downstream of the first feeding member and connected to the control member, and is used to cut the special gas pipeline under the action of the control member;

[0037] A length measuring part is provided on the first feeding part and is connected to the control part, and is used to detect the length of the special gas pipeline.

[0038] In some embodiments, the second feeding component includes:

[0039] a second feed chute assembly, the second feed chute assembly being arranged downstream of the first processing component and being used for placing a special gas pipeline;

[0040] The second drive assembly is arranged on the second feed trough assembly and is connected to the control component, and is used to push the special gas pipeline to move on the second feed trough assembly and drive the second feed trough assembly to rotate under the action of the control component.

[0041] In some embodiments, the second feed chute assembly includes:

[0042] a second feeding support member, the second feeding support member being disposed downstream of the first processing member and being used for mounting the second driving assembly;

[0043] The second feeding track member is arranged on the second feeding bracket member and is used for placing the special gas pipeline.

[0044] In some embodiments, the second drive assembly includes:

[0045] a plurality of second rotating wheel members, each of which is disposed at the second end of the second feeding trough assembly and is rotatably connected to the second feeding trough assembly for clamping the special gas pipeline;

[0046] a plurality of second driving members, each of which is disposed on the second feeding trough assembly and is respectively connected to the corresponding second rotating wheel members in a transmission manner, and the second driving members are connected to the control component and are used to drive the second rotating wheel members to rotate under the action of the control component;

[0047] A second rotating drive member is connected to the bottom of the second feed trough assembly and to the control component, and is used to drive the second feed trough assembly to rotate under the action of the control component.

[0048] In some embodiments, the second processing component includes:

[0049] The second processing part is arranged on the adjusting component and connected to the control component, and is used to move under the action of the adjusting component and grind the end of the special gas pipeline after cutting under the action of the control component.

[0050] In some embodiments, the adjusting component includes:

[0051] a slide rail assembly, the slide rail assembly being arranged downstream of the second feeding component and being used for mounting the second processing component;

[0052] The third drive assembly is arranged on the slide rail assembly and is in transmission connection with the second processing component. The third drive assembly is connected to the control component and is used to drive the second processing component to move along the slide rail assembly under the action of the control component.

[0053] In some embodiments, the slide rail assembly includes:

[0054] a slide rail member, the slide rail member being arranged downstream of the second feeding member and comprising a first slide rail groove and a second slide rail groove, wherein the first slide rail groove and the second slide rail groove are arranged along the length direction of the slide rail member and are symmetrically arranged on the slide rail member;

[0055] A sliding block is slidably connected to the first slide rail groove and is connected to the second processing component, so as to drive the second processing component to move on the slide rail.

[0056] In some embodiments, the third drive assembly includes:

[0057] a third driving member, the third driving member being provided on the slide rail assembly and connected to the control member, and being configured to rotate under the action of the control member;

[0058] A driving wheel member is arranged in the second slide rail groove on the slide rail assembly and is transmission-connected to the third driving member, and the driving wheel member abuts against the groove wall of the second slide rail groove, and is used to rotate under the action of the third driving member and drive the second processing component to move along the slide rail assembly.

[0059] In some embodiments, the control component includes:

[0060] a communication component, the communication component being provided on the second feeding component and being connected to an external remote control device and the first processing component, respectively, for receiving and transmitting signals;

[0061] A control component is arranged on the second feeding component and is respectively connected to the communication component, the first feeding component, the material storage component, the first processing component, the second feeding component and the second processing component, and is used to control the start and stop of the first feeding component, the material storage component, the first processing component, the second feeding component and the second processing component.

[0062] In some embodiments, further comprising:

[0063] A purge component, which is arranged on the regulating component and connected to the control component, and is used to purge the special gas pipeline;

[0064] A detection component, which is arranged on the adjustment component and connected to the control component, and is used to detect the special gas pipeline;

[0065] A rotating disk component is provided on the adjusting component and connected to the controlling component, and is used for installing the purging component, the detecting component and the second processing component.

[0066] In some embodiments, the purge component includes:

[0067] a compressed air pump component, which is disposed on the rotating disk component and connected to the control component, and is used to compress air under the action of the control component;

[0068] A purge pipeline component is connected to the compressed air pump component and is used to dock with the end of the special gas pipeline and purge the special gas pipeline under the action of the adjusting component and the rotating disk component.

[0069] In some embodiments, the detection component includes:

[0070] A pipeline detection component is arranged on the rotating disk component and connected to the control component, and is used to dock with the end of the special gas pipeline under the action of the adjustment component and the rotating disk component and detect the special gas pipeline.

[0071] In some embodiments, the rotating disk component includes:

[0072] a rotating disk, the rotating disk being disposed on the adjusting component and being rotatably connected to the adjusting component;

[0073] A fourth driving member is provided on the adjusting member and is in transmission connection with the rotating disk member. The fourth driving member is connected to the control member and is used to drive the rotating disk member to rotate under the action of the control member.

[0074] In some embodiments, further comprising:

[0075] The material receiving frame component is arranged on the side of the second feeding component and is used to store the finished special gas pipelines and defective special gas pipelines after processing.

[0076] In some embodiments, the material receiving frame component includes:

[0077] A first material receiving frame, which is arranged on one side of the second material feeding component and is used to store the finished product special gas pipeline after processing;

[0078] The second material receiving frame is arranged on the other side of the second feeding component and is used for storing the processed defective special gas pipelines.

[0079] The present invention adopts the above technical solution, and compared with the prior art, has the following technical effects:

[0080] The utility model discloses an automatic piping device for special gas pipelines, which sequentially arranges a first feeding component, a first processing component, a second feeding component, and a second processing component, so that the special gas pipeline can be cut, polished, and processed in sequence after being placed on the first feeding component from the material storage component, thereby realizing the automation of special gas pipeline processing, greatly reducing the labor intensity of traditional processing, improving efficiency, and reducing costs; in addition, by arranging the second processing component on the adjusting component, the distance between the second processing component and the second feeding component can be adjusted, so that the overall device can be suitable for the processing of special gas pipelines of different lengths, thereby improving applicability. BRIEF DESCRIPTION OF THE DRAWINGS

[0081] Figure 1 1 is a schematic diagram of an automatic piping device according to an embodiment of the present invention (I);

[0082] Figure 2 is a schematic diagram of a first feeding component according to an embodiment of the present utility model;

[0083] Figure 3 is a schematic diagram of a material storage component according to an embodiment of the present utility model;

[0084] Figure 4 is a schematic diagram of a second feeding component according to an embodiment of the present utility model;

[0085] Figure 5is a schematic diagram of an adjustment component according to an embodiment of the present utility model;

[0086] Figure 6 1 is a schematic diagram of a framework of an automatic piping device according to an embodiment of the present invention (I);

[0087] Figure 7 Schematic diagram (2) of the automatic piping device according to an embodiment of the present utility model;

[0088] Figure 8 Schematic diagram of a purge component, a detection component and a rotating disk component according to an embodiment of the present utility model;

[0089] Figure 9 2 is a schematic diagram of the framework of the automatic piping device according to an embodiment of the present utility model;

[0090] Figure 10 Schematic diagram (3) of the automatic piping device according to an embodiment of the present utility model.

[0091] The reference numerals are: 100, first feeding component; 110, first feeding bracket component; 120, first feeding track component; 130, pushing cylinder component; 140, first rotating wheel component; 150, first driving component;

[0092] 200, material storage component; 210, material storage component; 211, discharge slot; 220, rotating shaft component; 230, material discharge component; 240, first rotating drive component;

[0093] 300, first processing component;

[0094] 400, second feeding component; 410, second feeding bracket component; 420, second feeding track component; 430, second rotating wheel component; 440, second driving component; 450, second rotating driving component;

[0095] 500, second processing component;

[0096] 600, adjustment component; 610, slide rail member; 611, first slide rail groove; 612, second slide rail groove; 620, slider member; 630, third driving member; 640, driving wheel member;

[0097] 700, control component; 710, communication component; 720, control component;

[0098] 800, purge components; 810, compressed air pump components; 820, purge pipeline components;

[0099] 900, detection components;

[0100] 1000, rotating disk component; 1010, rotating disk component; 1020, fourth driving component;

[0101] 1100, material receiving frame component; 1110, first material receiving frame component; 1120, second material receiving frame component. DETAILED DESCRIPTION

[0102] In order to make the purpose, technical solutions and advantages of this application more clearly understood, the present application is described and illustrated below in conjunction with the accompanying drawings and examples. It should be understood that the specific embodiments described herein are merely used to explain this application and are not intended to limit this application. Based on the embodiments provided in this application, all other embodiments obtained by those of ordinary skill in the art without making any creative efforts are within the scope of protection of this application.

[0103] Obviously, the drawings described below are merely examples or embodiments of the present application. Those skilled in the art can, without inventive effort, apply the present application to other similar scenarios based on these drawings. Furthermore, it is also understood that, although the effort involved in such a development process may be complex and lengthy, for those skilled in the art related to the content disclosed in this application, changes in design, manufacturing, or production based on the technical content disclosed in this application are merely conventional technical means and should not be construed as an insufficiency of the content disclosed in this application.

[0104] References to "embodiments" in this application mean that a particular feature, structure, or characteristic described in connection with the embodiment may be included in at least one embodiment of the application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it refer to independent or alternative embodiments that are mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described in this application may be combined with other embodiments unless there is a conflict.

[0105] Example 1

[0106] An illustrative embodiment of the present invention is as follows: Figure 1As shown, an automatic piping device for special gas pipelines includes a first feeding component 100, a material storage component 200, a first processing component 300, a second feeding component 400, a second processing component 500, an adjusting component 600 and a control component 700. Among them, the first feeding component 100 is used to transport the special gas pipeline; the material storage component 200 is arranged on the first feeding component 100, and is used to store the special gas pipeline and discharge the special gas pipeline to the first feeding component 100; the first processing component 300 is arranged downstream of the first feeding component 100, and is used to cut the special gas pipeline; the second feeding component 400 is arranged downstream of the first processing component 300, and is used to transport the special gas pipeline after cutting; the second processing component 500 is arranged downstream of the second feeding component 400, and is used to grind the end of the special gas pipeline after cutting; the adjusting component 600 is used to control the control component 700. 00 is connected to the second processing component 500, and is used to drive the second processing component 500 to move so that the second processing component 500 can process special gas pipelines of different lengths; the control component 700 is arranged on the second feeding component 400, and is respectively connected to the first feeding component 100, the material storage component 200, the first processing component 300, the second feeding component 400, the second processing component 500 and the adjusting component 600, and is used to control the start and stop of the first feeding component 100, the material storage component 200, the first processing component 300, the second feeding component 400, the second processing component 500 and the adjusting component 600.

[0107] like Figure 2 As shown, the first feed component 100 includes a first feed trough assembly and a first drive assembly. The first feed trough assembly is located upstream of the first processing component 300 and is used to accommodate the specialty gas pipeline. The first drive assembly is located on the first feed trough assembly and is connected to the control component 700. The first drive assembly is used to push the specialty gas pipeline on the first feed trough assembly under the action of the control component 700.

[0108] Specifically, the first feed chute assembly includes a first feed bracket 110 and a first feed track 120. The first feed bracket 110 is disposed upstream of the first processing component 300 and is used to mount the first drive assembly and the material storage component 200; the first feed track 120 is disposed on the first feed bracket 110 and is used to place the special gas pipeline.

[0109] More specifically, the first feeding bracket 110 is composed of a long plate and four support columns. The four support columns are installed at the four corners of the long plate by welding, riveting or bolting.

[0110] In some embodiments, the first feed support member 110 includes but is not limited to a machine tool.

[0111] More specifically, the cross-section of the first feeding track member 120 is a concave structure, and the first feeding track member 120 is installed on the first feeding bracket member 110 by welding, riveting or bolting, and the length direction of the first feeding track member 120 is the same as the length direction of the first feeding bracket member 110.

[0112] In some embodiments, the first feeding track member 120 includes but is not limited to a concave long bar.

[0113] Specifically, the first drive assembly includes a push cylinder 130, a plurality of first rotating wheel members 140, and a plurality of first drive members 150. The push cylinder 130 is disposed at the first end of the first feed trough assembly and is connected to the control component 700, and is used to push the special gas pipeline to move on the first feed trough assembly under the action of the control component 700; the plurality of first rotating wheel members 140 are all disposed at the second end of the first feed trough assembly and are rotatably connected to the first feed trough assembly for clamping the special gas pipeline; the plurality of first drive members 150 are all disposed in the first feed trough assembly and are respectively connected to the corresponding first rotating wheel members 140, and the first drive members 150 are connected to the control component 700, and are used to drive the first rotating wheel members 140 to rotate under the action of the control component 700.

[0114] More specifically, the pushing cylinder 130 is installed on the first feeding bracket 110 by welding, riveting or bolting, and is located at the end of the first feeding track 120 away from the first processing component 300, and the output shaft of the pushing cylinder 130 extends on the first feeding track 120, and can push the special gas pipeline placed on the first feeding track 120.

[0115] In some embodiments, the pushing cylinder member 130 includes but is not limited to a pneumatic cylinder.

[0116] More specifically, the first rotating wheel 140 is a concave wheel structure, and the first rotating wheel 140 is rotatably connected to the first feeding support 110 and is located at one end of the first feeding track 120 close to the first processing component 300 .

[0117] In some embodiments, the first rotating wheel member 140 includes but is not limited to a concave wheel.

[0118] It should be noted that the number of the first rotating wheel components 140 is two, and the two first rotating wheel components 140 are respectively located on both sides of the first feeding track component 120 in the width direction.

[0119] In some embodiments, the number of the first rotating wheel members 140 may be 4, 6, etc., that is, the number of the first rotating wheel members 140 may be set according to actual needs, and no excessive restrictions are imposed herein.

[0120] More specifically, the first driving member 150 is fixedly mounted on the bottom of the first feeding bracket member 110 by welding, riveting or bolting, and the output shaft of the first driving member 150 is coaxially connected to the first rotating wheel member 140 .

[0121] In some embodiments, the first driving member 150 includes but is not limited to a motor.

[0122] In some embodiments, the number of the first driving members 150 matches the number of the first rotating wheel members 140 ; it should be understood that the number of the first driving members 150 is the same as the number of the first rotating wheel members 140 .

[0123] like Figure 3 As shown, the material storage unit 200 includes a material storage assembly and a discharge assembly. The material storage assembly is provided on the first feeding unit 100 and is used to store the specialty gas pipeline. The discharge assembly is provided on the material storage assembly and is connected to the control unit 700. The discharge assembly is used to place the specialty gas pipeline in the material storage assembly on the first feeding unit 100 under the control of the control unit 700.

[0124] Specifically, the material storage assembly includes a material storage part 210. The material storage part 210 is provided on the first feeding part 100 and is used to store the special gas pipeline.

[0125] More specifically, the material storage member 210 is installed on the first feeding bracket member 110 by welding, riveting or bolting, and the bottom of the material storage member 210 has a discharge slot 211, which corresponds to the first feeding track member 120.

[0126] In some embodiments, the material storage unit 210 includes but is not limited to a material trough.

[0127] Specifically, the discharge assembly includes a rotating shaft 220, a plurality of discharge members 230, and a first rotating drive member 240. The rotating shaft 220 is disposed at the discharge slot 211 of the material storage assembly and is rotationally connected to the material storage assembly. The plurality of discharge members 230 are disposed at both ends of the rotating shaft 220 and are configured to rotate under the action of the rotating shaft 220 and place the special gas pipeline on the first feeding member 100. The first rotating drive member 240 is disposed in the material storage assembly and is in transmission connection with the rotating shaft 220. The first rotating drive member 240 is connected to the control member 700 and is configured to drive the rotating shaft 220 to rotate under the action of the control member 700.

[0128] More specifically, the first end and the second end of the rotating shaft 220 are respectively rotatably connected to the two sides of the discharge slot 211 on the material storage part 210 in the length direction; it should be noted that the first end and the second end of the rotating shaft 220 are respectively the two ends in the length direction.

[0129] In some embodiments, the rotating shaft 220 includes but is not limited to a circular shaft.

[0130] More specifically, there are two material discharge members 230 , and the two material discharge members 230 are respectively disposed at the first end and the second end of the rotating shaft 220 and are coaxially connected to the rotating shaft 220 .

[0131] In some embodiments, the unloading member 230 includes but is not limited to a card board.

[0132] It should be noted that the discharge member 230 is arranged in a circular plate structure, and the circumferential side wall of the discharge member 230 has a notch, which can clamp the special gas pipeline.

[0133] More specifically, the first rotation driving member 240 is installed on the material storage member 210 by welding, riveting or bolting, and the output shaft of the first rotation driving member 240 is coaxially connected to the rotation shaft 220 .

[0134] In some embodiments, the first rotation driving member 240 includes but is not limited to a motor.

[0135] like Figure 1 As shown, the first processing component 300 includes a first processing member and a length measuring member. The first processing member is arranged downstream of the first feeding component 100 and connected to the control component 700, and is used to cut the specialty gas pipeline under the control of the control component 700; the length measuring member is arranged on the first feeding component 100 and connected to the control component 700, and is used to detect the length of the specialty gas pipeline.

[0136] In some of these embodiments, the first workpiece includes, but is not limited to, a pipe cutter.

[0137] Specifically, the length measuring part is fixedly installed on the first rotating wheel part 140 by welding, riveting or bolts, and the length measuring part can monitor the number of rotations of the first rotating wheel part 140 in real time. The staff can set the threshold for the length measuring part monitoring. When the number of rotations of the first rotating wheel part 140 monitored by the length measuring part reaches the threshold, the control component 700 can start the first processing part to cut the special gas pipeline.

[0138] In some of these embodiments, the length measuring member includes but is not limited to a sensor.

[0139] like Figure 4As shown, the second feed component 400 includes a second feed trough assembly and a second drive assembly. The second feed trough assembly is located downstream of the first processing component 300 and is used to accommodate the specialty gas pipeline. The second drive assembly is located on the second feed trough assembly and is connected to the control component 700. The second drive assembly is used to push the specialty gas pipeline on the second feed trough assembly and drive the second feed trough assembly to rotate under the action of the control component 700.

[0140] Specifically, the second feed trough assembly includes a second feed bracket 410 and a second feed track 420. The second feed bracket 410 is disposed downstream of the first processing component 300 and is used to mount the second drive assembly; the second feed track 420 is disposed on the second feed bracket 410 and is used to place the special gas pipeline.

[0141] More specifically, the second feeding bracket member 410 is configured as a long plate structure, and the center of the bottom of the second feeding bracket member 410 is connected to the components in the second driving assembly.

[0142] In some embodiments, the second feed support member 410 includes but is not limited to a machine tool.

[0143] More specifically, the cross-section of the second feeding track member 420 is concave in structure, and the second feeding track member 420 is installed on the second feeding bracket member 410 by welding, riveting or bolting, and the length direction of the second feeding track member 420 is the same as the length direction of the second feeding bracket member 410.

[0144] In some embodiments, the second feeding track member 420 includes but is not limited to a concave long bar.

[0145] Specifically, the second drive assembly includes a plurality of second rotating wheel members 430, a plurality of second driving members 440, and a second rotating driving member 450. Among them, the plurality of second rotating wheel members 430 are all arranged at the second end of the second feed trough assembly and are rotatably connected to the second feed trough assembly for clamping the special gas pipeline; the plurality of second driving members 440 are all arranged in the second feed trough assembly and are respectively connected to the corresponding second rotating wheel members 430, and the second driving members 440 are connected to the control component 700 for driving the second rotating wheel members 430 to rotate under the action of the control component 700; the second rotating driving member 450 is connected to the bottom of the second feed trough assembly and is connected to the control component 700 for driving the second feed trough assembly to rotate under the action of the control component 700.

[0146] More specifically, the second rotating wheel 430 is a concave wheel structure, and the second rotating wheel 430 is rotatably connected to the second feeding bracket 410 , and a plurality of second rotating wheel 430 are spaced apart along the length direction of the second feeding bracket 410 .

[0147] In some embodiments, the second rotating wheel member 430 includes but is not limited to a concave wheel.

[0148] It should be noted that the number of the second rotating wheel components 430 is 8, and the 8 second rotating wheel components 430 are respectively located on both sides of the second feeding track component 420 in the width direction.

[0149] In some embodiments, the number of the second rotating wheel members 430 may be 6, 10, etc., that is, the number of the second rotating wheel members 430 may be set according to actual needs, and no excessive restrictions are imposed herein.

[0150] More specifically, the second driving member 440 is fixedly mounted on the bottom of the second feeding bracket member 410 by welding, riveting or bolting, and the output shaft of the second driving member 440 is coaxially connected to the second rotating wheel member 430 .

[0151] In some embodiments, the second driving member 440 includes but is not limited to a motor.

[0152] In some embodiments, the number of the second driving members 440 matches the number of the second rotating wheel members 430 ; it should be understood that the number of the second driving members 440 is the same as the number of the second rotating wheel members 430 .

[0153] More specifically, the output shaft of the second rotating driving member 450 is connected to the center of the bottom of the second feeding bracket member 410, and the second rotating driving member 450 can drive the second feeding bracket member 410 to rotate, thereby realizing the rotation of the two ends of the special gas pipeline.

[0154] In some embodiments, the second rotation driving member 450 includes but is not limited to a motor.

[0155] like Figure 1 As shown, the second processing component 500 includes a second processing piece. The second processing piece is arranged on the adjustment component 600 and connected to the control component 700, and is used to move under the action of the adjustment component 600 and grind the end of the special gas pipeline after cutting under the action of the control component 700.

[0156] In some embodiments, the second working tool includes but is not limited to a grinder.

[0157] like Figure 5As shown, the adjustment component 600 includes a slide rail assembly and a third drive assembly. The slide rail assembly is located downstream of the second feeding component 400 and is used to mount the second processing component 500. The third drive assembly is located on the slide rail assembly and is in transmission connection with the second processing component 500. The third drive assembly is also connected to the control component 700 and is used to drive the second processing component 500 to move along the slide rail assembly under the control of the control component 700.

[0158] Specifically, the slide rail assembly includes a slide rail member 610 and a slider member 620. The slide rail member 610 is disposed downstream of the second feeding member 400 and includes a first slide rail groove 611 and a second slide rail groove 612. The first slide rail groove 611 and the second slide rail groove 612 are disposed along the length of the slide rail member 610 and are symmetrically arranged on the slide rail member 610. The slider member 620 is slidably connected to the first slide rail groove 611 and is connected to the second processing member 500 to drive the second processing member 500 to move on the slide rail member 610.

[0159] More specifically, the cross section of the slide rail member 610 is an I-shaped structure, and the length direction of the slide rail member 610 is the same as the length direction of the second feeding bracket member 410 .

[0160] In some embodiments, the slide rail member 610 includes but is not limited to a metal slide rail.

[0161] It should be noted that the length direction of the first sliding groove and the second sliding groove is the same as the length direction of the sliding rail member 610 , and the length of the first sliding groove and the second sliding groove is the same as the length of the sliding rail member 610 .

[0162] More specifically, the slider member 620 is arranged in an L-shaped structure, the slider member 620 is slidably connected in the first slide groove, and the slider member 620 is connected to the second processing member by welding, riveting or bolting, so that the second processing member can move back and forth on the slide rail member 610.

[0163] Specifically, the third drive assembly includes a third drive member 630 and a drive wheel member 640. The third drive member 630 is disposed on the slide rail assembly and connected to the control component 700, and is configured to rotate under the control of the control component 700. The drive wheel member 640 is disposed in the second slide rail groove 612 of the slide rail assembly and is in driving connection with the third drive member 630. The drive wheel member 640 abuts against the groove wall of the second slide rail groove 612, and is configured to rotate under the control of the third drive member 630 and drive the second processing component 500 to move along the slide rail assembly.

[0164] More specifically, the third driving member 630 is mounted on the slider member 620 by welding, riveting, or bolting, and the output shaft of the third driving member 630 passes through the slider member 620 and is connected to the driving wheel member 640 .

[0165] In some embodiments, the third driving member 630 includes but is not limited to a motor.

[0166] More specifically, the driving wheel member 640 is connected to the output shaft of the third driving member 630 by welding, riveting or bolting, and the third driving member 630 can drive the driving wheel member 640 to rotate, thereby realizing the movement of the slider member 620 on the slide rail member 610.

[0167] In some embodiments, the driving wheel member 640 includes but is not limited to a traveling wheel.

[0168] like Figure 6 As shown, the control component 700 includes a communication component 710 and a control component 720. The communication component 710 is provided on the second feeding component 400 and is connected to an external remote control device and the first processing component 300, respectively, for receiving and transmitting signals; the control component 720 is provided on the second feeding component 400 and is connected to the communication component 710, the first feeding component 100, the material storage component 200, the first processing component 300, the second feeding component 400, and the second processing component 500, respectively, for controlling the start and stop of the first feeding component 100, the material storage component 200, the first processing component 300, the second feeding component 400, and the second processing component 500.

[0169] Specifically, the communication component 710 is installed on the slide rail component 610 by welding, riveting or bolting, and the communication component 710 is connected to the external remote control device and the length measuring component by wired connection or wireless connection.

[0170] In some embodiments, the communication component 710 includes but is not limited to a Bluetooth sensor, a WiFi sensor, and a ZigBee sensor.

[0171] Specifically, the control component 720 is installed on the slide rail component 610 by welding, riveting or bolting, and the control component 720 is connected to the communication component 710, the pushing cylinder component 130, the first driving component 150, the first rotating driving component 240, the first processing component, the second driving component 440, the second rotating driving component 450, the second processing component and the third driving component 630 by wired connection, etc., for controlling the start and stop of the pushing cylinder component 130, the first driving component 150, the first rotating driving component 240, the first processing component, the second driving component 440, the second rotating driving component 450, the second processing component and the third driving component 630.

[0172] In some embodiments, the control component 720 includes but is not limited to an MCU, a Raspberry Pi, or a single-chip microcomputer.

[0173] The method of using this embodiment is as follows:

[0174] The staff places the special gas pipeline to be processed in the material storage part 210. When the special gas pipeline needs to be processed, the staff activates the first rotating drive part 240 through the control part 720, so that the material discharge part 230 clamps a special gas pipeline and places it on the first feeding track part 120;

[0175] The staff activates the pushing cylinder 130 and the first driving member 150 through the control member 720, pushing the output shaft of the cylinder 130 to abut against one end of the special gas pipeline, thereby pushing the special gas pipeline to move on the first feeding track member 120. The second end of the special gas pipeline moves between the two first rotating wheel members 140 under the push of the pushing cylinder 130. The first rotating wheel member 140 clamps the second end of the special gas pipeline, and the first driving member 150 drives the rotation of the first rotating wheel member 140, so that the special gas pipeline can be moved toward the first processing part and the second feeding track member 420.

[0176] When the number of rotations of the first rotating wheel 140 recorded in real time by the length measuring component reaches a threshold, the control component 720 starts the first processing component to cut the specialty gas pipeline, thereby obtaining a specialty gas pipeline with a length that meets the requirements;

[0177] The staff activates the second driving member 440 through the control member 720, and the second driving member 440 drives the second rotating wheel member 430 to rotate. The second rotating wheel member 430 can drive the special gas pipeline to move on the second feeding track member 420, so that the entire special gas pipeline is located on the second feeding track member 420;

[0178] The staff activates the third driving member 630 through the control member 720, and the third driving member 630 drives the driving wheel member 640 to rotate, thereby driving the slider member 620 to move on the slide rail member 610, thereby adjusting the position of the second processing member so that the second processing member is docked with the end of the special gas pipeline;

[0179] The staff activates the second processing unit through the control unit 720 to grind the end of the special gas pipeline, thereby grinding the end of the special gas pipeline to remove burrs on the special gas pipeline;

[0180] After completing the grinding of one end of the special gas pipeline, the staff starts the second rotating drive component 450 through the control component 720. The second rotating drive component 450 drives the second feeding bracket component 410 to rotate 180 degrees, thereby realizing the rotation of the special gas pipeline. Then, the second processing component is started to complete the grinding of the other end of the special gas pipeline, thereby completing the processing of the special gas pipeline.

[0181] The advantage of this embodiment is that by arranging the first feeding component, the first processing component, the second feeding component, and the second processing component in sequence, the special gas pipeline can be cut, polished, and processed in sequence after being placed on the first feeding component from the material storage component, thereby realizing the automation of special gas pipeline processing, greatly reducing the labor intensity of traditional processing, improving efficiency, and reducing costs; in addition, by arranging the second processing component on the adjusting component, the distance between the second processing component and the second feeding component can be adjusted, so that the overall device can be suitable for the processing of special gas pipelines of different lengths, thereby improving applicability.

[0182] Example 2

[0183] This embodiment is a variation of the first embodiment. The difference between this embodiment and the first embodiment is that the automatic piping device further includes a purge component 800 , a detection component 900 and a rotating disk component 1000 .

[0184] like Figure 8 and Figure 9 As shown, the automatic piping device further includes a purge component 800, a detection component 900, and a rotating disk component 1000. The purge component 800 is disposed on the regulating component 600 and connected to the control component 700 for purging the specialty gas pipeline; the detection component 900 is disposed on the regulating component 600 and connected to the control component 700 for detecting the specialty gas pipeline; and the rotating disk component 1000 is disposed on the regulating component 600 and connected to the control component 700 for mounting the purge component 800, the detection component 900, and the second processing component 500.

[0185] It should be noted that the purge component 800, the detection component 900, and the second processing component 500 are mounted on the rotating disk component 1000, and the rotating disk component 1000 can switch the processing tools that are docked with the special gas pipeline. For example, if the end of the special gas pipeline needs to be polished, the rotating disk component 1000 can dock the second processing component 500 with the end of the special gas pipeline; if the special gas pipeline needs to be purged, the rotating disk component 1000 can dock the purge component 800 with the end of the special gas pipeline; if the special gas pipeline needs to be inspected, the rotating disk component 1000 can dock the inspection component 900 with the end of the special gas pipeline.

[0186] In some embodiments thereof, the rotating disk component 1000 may also be equipped with other types of processing tools, and is not limited to the processing tools mentioned in the present invention.

[0187] like Figure 8 and Figure 9As shown, the purge component 800 includes a compressed air pump component 810 and a purge pipeline component 820. The compressed air pump component 810 is disposed on the rotating disk component 1000 and connected to the control component 700, and is used to compress air under the action of the control component 700; the purge pipeline component 820 is connected to the compressed air pump component 810, and is used to connect with the end of the specialty gas pipeline under the action of the adjustment component 600 and the rotating disk component 1000 to purge the specialty gas pipeline.

[0188] Specifically, the compressed air pump component 810 is installed on the rotating disk component 1000 by welding, riveting or bolting, and the compressed air pump component 810 is connected to the control component 720 by wired connection.

[0189] In some embodiments, the compressed air pump component 810 includes but is not limited to an air pump.

[0190] Specifically, the first end of the purge pipeline component 80 is connected to the compressed air pump component 810, and the second end of the purge pipeline component 820 is toward the second feeding track component 420; it should be noted that the first end and the second end of the purge pipeline component 820 are respectively the two ends in its length direction.

[0191] In some embodiments, the purge line 820 includes, but is not limited to, a stainless steel tube.

[0192] like Figure 8 and Figure 9 As shown, the detection component 900 includes a pipeline detection component. The pipeline detection component is set on the rotating disk component 1000 and connected to the control component 700. It is used to dock with the end of the specialty gas pipeline under the action of the adjustment component 600 and the rotating disk component 1000 and detect the specialty gas pipeline.

[0193] Specifically, the pipeline detection component is installed on the rotating disk component 1000 by welding, riveting or bolting, and the pipeline detection component can scan the inner and outer walls of the special gas pipeline to detect whether the special gas pipeline meets the standards.

[0194] In some of the embodiments, the pipeline detection component includes but is not limited to a lidar.

[0195] like Figure 8 and Figure 9 As shown, the rotating disk component 1000 includes a rotating disk component 1010 and a fourth driving component 1020. The rotating disk component 1010 is disposed on the adjusting component 600 and is rotationally connected to the adjusting component 600; the fourth driving component 1020 is disposed on the adjusting component 600 and is transmission-connected to the rotating disk component 1010. The fourth driving component 1020 is connected to the control component 700 and is used to drive the rotating disk component 1010 to rotate under the action of the control component 700.

[0196] Specifically, the rotating disk member 1010 is rotatably connected to the slider member 620 , and the disk surface of the rotating disk member 1010 faces the second feeding track member 420 .

[0197] In some embodiments, the rotating disk member 1010 includes but is not limited to a circular disk.

[0198] Specifically, the fourth driving member 1020 is installed on the slider member 620 by welding, riveting or bolting, and the output shaft of the fourth driving member 1020 is connected to the center of the rotating disk member 1010 by welding, riveting or bolting.

[0199] In some embodiments, the fourth driving member 1020 includes but is not limited to a motor.

[0200] The method of using this embodiment is as follows:

[0201] When it is necessary to purge the special gas pipeline, the staff starts the fourth driving member 1020 through the control member 720, and the fourth driving member 1020 drives the rotating disk member 1010 to rotate, so that the purge pipeline member 820 is docked with the end of the special gas pipeline. Then, the compressed air pump member 810 is started to purge the special gas pipeline to improve the cleanliness of the special gas pipeline.

[0202] When it is necessary to inspect the special gas pipeline, the staff starts the fourth driving member 1020 through the control member 720. The fourth driving member 1020 drives the rotating disk member 1010 to rotate, so that the pipeline detection member is docked with the end of the special gas pipeline. Then, the pipeline detection member is started to scan the inner and outer walls of the special gas pipeline to detect whether the special gas pipeline meets the standards.

[0203] The advantage of this embodiment is that by arranging a rotating disk component on the adjusting component and installing the purge component, the detection component and the second processing component on the rotating disk component, the processing tool docking with the special gas pipeline can be switched, thereby improving the functionality of the overall device.

[0204] Example 3

[0205] This embodiment is a variation of Embodiments 1-2. The difference between this embodiment and Embodiments 1-2 is that the automatic pipe distribution device further includes a material receiving frame component 1100 .

[0206] like Figure 10 As shown, the automatic piping device further includes a material receiving frame component 1100. The material receiving frame component 1100 is arranged on the side of the second feeding component 400 and is used to store the finished special gas pipelines and defective special gas pipelines after processing.

[0207] like Figure 10As shown, the receiving frame assembly 1100 includes a first receiving frame assembly 1110 and a second receiving frame assembly 1120. The first receiving frame assembly 1110 is disposed on one side of the second feeding assembly 400 and is used to store finished specialty gas pipes after processing; the second receiving frame assembly 1120 is disposed on the other side of the second feeding assembly 400 and is used to store defective specialty gas pipes after processing.

[0208] Specifically, the first material receiving frame 1110 is placed on the width side of the second feeding bracket 410, and the first material receiving frame 1110 can be rotated 90 degrees by the second feeding bracket 410 so that the second feeding track 420 can be docked with the first material receiving frame 1110.

[0209] In some embodiments, the first material receiving frame 1110 includes but is not limited to a rectangular frame.

[0210] Specifically, the second material receiving frame 1120 is placed on the other side of the width of the second feeding bracket 410, and the second material receiving frame 1120 can be connected to the second feeding track 420 when the second feeding bracket 410 is rotated 90 degrees.

[0211] In some embodiments, the second material receiving frame 1120 includes but is not limited to a rectangular frame.

[0212] The method of using this embodiment is as follows:

[0213] After the detection component 900 completes the detection of the special gas pipeline, the control component 720 activates the second rotation driving component 450, causing the second feeding bracket component 410 to rotate 90 degrees, so that the two ends of the second feeding track component 420 are respectively docked with the first material receiving frame component 1110 and the second material receiving frame component 1120;

[0214] Subsequently, the control member 720 starts the second driving member 440, and the second driving member 440 drives the second rotating wheel member 430 to rotate forward or reverse, so that the qualified finished product special gas pipeline is transported to the first material receiving frame 1110, and the unqualified defective product special gas pipeline is transported to the second material receiving frame.

[0215] The advantage of this embodiment is that by placing a material receiving frame component on the side of the second feeding component in the width direction, the finished special gas pipelines and defective special gas pipelines after processing can be stored, thereby improving the degree of automation.

[0216] The technical features of the above-mentioned embodiments can be combined arbitrarily. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0217] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that a person skilled in the art could make various modifications and improvements without departing from the spirit of the present application, all of which fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.

Claims

1. An automatic piping device for special gas pipelines, characterized in that: include: A first feeding component, the first feeding component is used to transport the special gas pipeline; A material storage component, which is arranged on the first feeding component and is used to store the special gas pipeline and discharge the special gas pipeline to the first feeding component; a first processing component, which is arranged downstream of the first feeding component and is used for cutting the special gas pipeline; A second feeding component, which is arranged downstream of the first processing component and is used to transport the special gas pipeline after cutting; a second processing component, which is arranged downstream of the second feeding component and is used to grind the end of the special gas pipeline after cutting; an adjusting component connected to the second processing component and configured to drive the second processing component to move so that the second processing component can process special gas pipelines of different lengths; A control component is arranged on the second feeding component and is respectively connected to the first feeding component, the material storage component, the first processing component, the second feeding component, the second processing component and the adjusting component, and is used to control the start and stop of the first feeding component, the material storage component, the first processing component, the second feeding component, the second processing component and the adjusting component.

2. The automatic piping device according to claim 1, characterized in that: The first feeding component comprises: a first feed chute assembly, the first feed chute assembly being arranged upstream of the first processing component and being used for placing a special gas pipeline; A first drive assembly, which is disposed on the first feed chute assembly and connected to the control component, and is used to push the specialty gas pipeline to move on the first feed chute assembly under the action of the control component; and / or The material storage component includes: A material storage component, which is provided on the first feeding component and is used to store the special gas pipeline; a discharge assembly, the discharge assembly being arranged in the material storage assembly and connected to the control component, and being used for placing the special gas pipeline in the material storage assembly on the first feeding component under the action of the control component; and / or The first processing component includes: a first processing member, which is disposed downstream of the first feeding member and connected to the control member, and is used to cut the special gas pipeline under the action of the control member; a length measuring member, which is provided on the first feeding member and connected to the control member, and is used to detect the length of the special gas pipeline; and / or The second feeding component comprises: a second feed chute assembly, the second feed chute assembly being arranged downstream of the first processing component and being used for placing a special gas pipeline; A second drive assembly, which is provided on the second feed trough assembly and connected to the control component, is used to push the special gas pipeline to move on the second feed trough assembly and drive the second feed trough assembly to rotate under the action of the control component; and / or The second processing component includes: a second processing member, which is disposed on the adjusting member and connected to the control member, and is configured to move under the action of the adjusting member and to grind the end of the special gas pipeline after cutting under the action of the control member; and / or The adjusting component comprises: a slide rail assembly, the slide rail assembly being arranged downstream of the second feeding component and being used for mounting the second processing component; a third drive assembly, the third drive assembly being disposed on the slide rail assembly and being in transmission connection with the second processing component, and the third drive assembly being connected to the control component and being configured to drive the second processing component to move along the slide rail assembly under the action of the control component; and / or The control component includes: a communication component, the communication component being provided on the second feeding component and being connected to an external remote control device and the first processing component, respectively, for receiving and transmitting signals; A control component is arranged on the second feeding component and is respectively connected to the communication component, the first feeding component, the material storage component, the first processing component, the second feeding component and the second processing component, and is used to control the start and stop of the first feeding component, the material storage component, the first processing component, the second feeding component and the second processing component.

3. The automatic piping device according to claim 2, characterized in that: The first feed trough assembly comprises: a first feeding support member, the first feeding support member being arranged upstream of the first processing member and being used for mounting the first driving assembly and the material storage member; A first feeding track member, the first feeding track member is arranged on the first feeding bracket member, and is used for placing a special gas pipeline; and / or The first drive assembly comprises: a pushing cylinder, which is disposed at the first end of the first feeding trough assembly and is connected to the control component, and is used to push the special gas pipeline to move on the first feeding trough assembly under the action of the control component; a plurality of first rotating wheel members, each of which is disposed at the second end of the first feeding trough assembly and is rotatably connected to the first feeding trough assembly for clamping the special gas pipeline; A plurality of first driving members are all arranged in the first feeding trough assembly and are respectively connected to the corresponding first rotating wheel members in a transmission manner, and the first driving members are connected to the control component to drive the first rotating wheel member to rotate under the action of the control component.

4. The automatic piping device according to claim 2, characterized in that: The material storage component includes: A material storage part, which is provided on the first feeding part and is used to store the special gas pipeline; and / or The discharge assembly comprises: A rotating shaft, the rotating shaft being arranged at a discharge slot of the material storage assembly and being rotatably connected to the material storage assembly; A plurality of discharge members, each of which is provided at both ends of the rotating shaft and is used for rotating under the action of the rotating shaft and placing the special gas pipeline on the first feeding member; The first rotating drive member is arranged in the material storage assembly and is in transmission connection with the rotating shaft. The first rotating drive member is connected to the control component and is used to drive the rotating shaft to rotate under the action of the control component.

5. The automatic piping device according to claim 2, characterized in that: The second feed trough assembly comprises: a second feeding support member, the second feeding support member being disposed downstream of the first processing member and being used for mounting the second driving assembly; a second feeding track member, the second feeding track member being arranged on the second feeding bracket member and being used for placing a special gas pipeline; and / or; The second drive assembly includes: a plurality of second rotating wheel members, each of which is disposed at the second end of the second feeding trough assembly and is rotatably connected to the second feeding trough assembly for clamping the special gas pipeline; a plurality of second driving members, each of which is disposed on the second feeding trough assembly and is respectively connected to the corresponding second rotating wheel members in a transmission manner, and the second driving members are connected to the control component and are used to drive the second rotating wheel members to rotate under the action of the control component; A second rotating drive member is connected to the bottom of the second feed trough assembly and to the control component, and is used to drive the second feed trough assembly to rotate under the action of the control component.

6. The automatic piping device according to claim 2, characterized in that: The slide rail assembly comprises: a slide rail member, the slide rail member being arranged downstream of the second feeding member and comprising a first slide rail groove and a second slide rail groove, wherein the first slide rail groove and the second slide rail groove are arranged along the length direction of the slide rail member and are symmetrically arranged on the slide rail member; a slider member, the slider member being slidably connected to the first slide rail groove and connected to the second processing component, and being used to drive the second processing component to move on the slide rail member; and / or The third drive assembly includes: a third driving member, the third driving member being provided on the slide rail assembly and connected to the control member, and being configured to rotate under the action of the control member; A driving wheel member is arranged in the second slide rail groove on the slide rail assembly and is transmission-connected to the third driving member, and the driving wheel member abuts against the groove wall of the second slide rail groove, and is used to rotate under the action of the third driving member and drive the second processing component to move along the slide rail assembly.

7. The automatic piping device according to claim 1, characterized in that: Also includes: A purge component, which is arranged on the regulating component and connected to the control component, and is used to purge the special gas pipeline; A detection component, which is arranged on the adjustment component and connected to the control component, and is used to detect the special gas pipeline; A rotating disk component is provided on the adjusting component and connected to the controlling component, and is used for installing the purging component, the detecting component and the second processing component.

8. The automatic piping device according to claim 7, characterized in that: The purge component includes: a compressed air pump component, which is disposed on the rotating disk component and connected to the control component, and is used to compress air under the action of the control component; a purge pipeline component, the purge pipeline component being in communication with the compressed gas pump component and being used for docking with the end of the specialty gas pipeline and purging the specialty gas pipeline under the action of the regulating component and the rotating disk component; and / or The detection component includes: a pipeline detection member, which is arranged on the rotating disk component and connected to the control component, and is used to dock with the end of the special gas pipeline under the action of the adjustment component and the rotating disk component and detect the special gas pipeline; and / or The rotating disk component comprises: a rotating disk, the rotating disk being disposed on the adjusting component and being rotatably connected to the adjusting component; A fourth driving member is provided on the adjusting member and is in transmission connection with the rotating disk member. The fourth driving member is connected to the control member and is used to drive the rotating disk member to rotate under the action of the control member.

9. The automatic piping device according to claim 1, characterized in that: Also includes: The material receiving frame component is arranged on the side of the second feeding component and is used to store the finished special gas pipelines and defective special gas pipelines after processing.

10. The automatic piping device according to claim 9, characterized in that: The material receiving frame component includes: A first material receiving frame, which is arranged on one side of the second material feeding component and is used to store the finished product special gas pipeline after processing; The second material receiving frame is arranged on the other side of the second feeding component and is used for storing the processed defective special gas pipelines.

Citation Information

Patent Citations

  • Dust removal device of automatic rotary pipe cutting machine

    CN209175396U