Prefabricated gas pipeline management method, device, medium, program and system

By identifying the prefabricated drawing of the pipe section and generating identification information, the construction process of the prefabricated gas pipeline is standardized, and the problems of inefficiency and relying on manual operations in the existing technology are solved, and efficient and accurate pipeline processing and management are achieved.

CN120471418APending Publication Date: 2025-08-12PIPECHINA SOUTH CHINA CO +1
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Patent Information

Application Number
CN202510464411.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-08-12

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Abstract

The invention provides a prefabricated gas pipeline management method and device, a medium, a program and a system, and relates to the technical field of pipelines, the method is applied to information management equipment, and the method comprises the steps that a pipe section prefabricated drawing of a to-be-prefabricated gas pipeline is obtained, and a design file number identifier is distributed to the pipe section prefabricated drawing; identifying the pipe section prefabricated drawing, and determining a plurality of to-be-cut pipe section number identifiers; sending pipe section processing indication information to field operation equipment; and pipe section machining response information sent by the field operation equipment is received, and it is determined that machining of the prefabricated gas pipeline is completed. According to the method, the processing information of the to-be-cut pipe section is obtained by identifying the information in the pipe section prefabrication drawing, and the field operation equipment is indicated to perform processing, so that the prefabrication process of the gas pipeline can be standardized, and the construction efficiency of prefabricating the gas pipeline is improved.
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Description

Technical Field

[0001] The present application relates to the field of pipeline technology, and in particular to a prefabricated gas pipeline management method, device, medium, program and system. Background Art

[0002] As critical infrastructure for energy transportation, gas pipelines play a vital role in the modern energy supply system. Pipeline construction primarily involves laying and connecting pipelines on-site, section by section. This process is susceptible to natural factors such as weather and geography, making construction more challenging in complex terrain, impacting both efficiency and quality.

[0003] With the development of industrial technology, the emergence of prefabricated gas pipeline technology has enabled part of the gas pipeline production process to be transferred to prefabrication factories, reducing the pressure of on-site operations and thereby improving the construction efficiency of gas pipelines.

[0004] At present, prefabricated gas pipeline technology still has certain limitations and cannot meet the needs of fast and efficient gas pipeline construction. Summary of the Invention

[0005] The present application provides a method, device, medium, program and system for managing prefabricated gas pipelines. By identifying information in a pipe section prefabrication drawing, obtaining processing information of the pipe section to be cut, and instructing on-site operating equipment to perform processing, it can standardize the gas pipeline prefabrication process and improve the construction efficiency of prefabricated gas pipelines.

[0006] In a first aspect, the present application provides a prefabricated gas pipeline management method, which is applied to an information management device and includes: obtaining a prefabricated drawing of a pipe segment of a gas pipeline to be prefabricated, and assigning a design file number identifier to the prefabricated drawing. The prefabricated drawing is identified to determine multiple pipe segment number identifiers to be cut, wherein the multiple pipe segment number identifiers correspond to multiple pipe segments, and the multiple pipe segment number identifiers have a one-to-one correspondence with the multiple pipe segments. Pipe segment processing instruction information is sent to an on-site operation device, wherein the pipe segment processing instruction information includes multiple pipe segment number identifiers, the lengths of the multiple pipe segments after cutting, multiple pre-processing process number identifiers of the multiple pipe segments, and multiple post-processing process number identifiers of the multiple pipe segments, wherein the multiple pipe segments are obtained after cutting the original pipe material. Pipe segment processing response information is received from the on-site operation device to determine that processing of the prefabricated gas pipeline is complete, wherein the pipe segment processing response information includes multiple weld number identifiers, wherein the multiple weld number identifiers correspond to the multiple welds of the prefabricated gas pipeline, and the weld number identifiers are used to indicate the welding process, welding time, and welding temperature of the corresponding welds during welding.

[0007] According to the above technical solution, the information management device generates identification at each link in the process of prefabricating gas pipelines, and controls the design link, processing link, and feedback link of the pipe segment through different identifications. According to the identification, a complete information management system can be established to standardize the process of prefabricating gas pipelines and improve the management effect of the process of prefabricating gas pipelines. In addition, the information management device sends processing instruction information to the operating equipment in the factory by identifying the prefabricated drawings of the pipe segments, which can provide the operating equipment with more accurate construction parameters, overcome the deviation problem caused by relying on manual operation in the existing technology, improve the accuracy of pipe segment processing, and reduce resource waste. In summary, this method can improve the construction efficiency in the process of prefabricating gas pipelines.

[0008] In one possible implementation, the pipe section processing response information further includes a welder ID. The welder ID is used to indicate the type and identity of the welding subject performing the welding, where the welding subject includes welding equipment or a welding worker.

[0009] In one possible implementation, before sending the pipe segment processing instruction information to the on-site operation equipment, the method further includes: generating a purchase list file for the original pipe material based on the pipe segment pre-fabrication drawing, assigning a purchase list file number to the purchase list file, and sending the purchase list file to the on-site operation equipment.

[0010] In one possible implementation, the pipe section processing response information further includes a quality inspection number identifier; the quality inspection number identifier is used to indicate the quality inspection time, quality inspection method, and quality inspection result of the prefabricated gas pipeline; the quality inspection result includes qualified or unqualified.

[0011] A possible implementation method further includes: associating and storing a design file number identifier, a purchase list file number identifier, multiple pipe section number identifiers, a pre-processing process number identifier, a post-processing process number identifier, a weld number identifier, a welder number identifier, and a quality inspection number identifier.

[0012] In a second aspect, the present application provides a prefabricated gas pipeline management device, which includes various functional modules used in the method described in the first aspect above.

[0013] In a third aspect, the present application provides an electronic device comprising a processor and a memory; the memory stores instructions executable by the processor; when the processor is configured to execute the instructions, the electronic device implements the method described in the first aspect above.

[0014] In a fourth aspect, the present application provides a computer program product, which, when executed in an electronic device, enables the electronic device to execute the related method described in the first aspect above, so as to implement the method described in the first aspect above.

[0015] In a fifth aspect, the present application provides a readable storage medium, which includes: software instructions; when the software instructions are executed in an electronic device, the electronic device implements the method described in the first aspect above.

[0016] In a sixth aspect, the present application provides a prefabricated gas pipeline management system, which includes information management equipment and on-site operation equipment.

[0017] The information management device is used to obtain a prefabricated drawing of a gas transmission pipeline segment to be prefabricated and assign a design document number identifier to the prefabricated drawing. The prefabricated drawing is identified to determine multiple segment number identifiers for the segments to be cut. The multiple segment number identifiers correspond to multiple segments, and the multiple segment number identifiers correspond one-to-one with the multiple segments. The device then sends segment processing instructions to the on-site operating equipment. The segment processing instructions include multiple segment number identifiers, the lengths of the multiple segments after cutting, the pre-processing process number identifiers for the multiple segments, and the post-processing process number identifiers for the multiple segments. The multiple segments are obtained by cutting the original pipe material.

[0018] The on-site operation equipment is used to send pipe section processing response information to the information management equipment. The pipe section processing response information includes multiple weld number identifiers. The multiple weld number identifiers correspond one-to-one to multiple welds of the prefabricated gas pipeline. The weld number identifiers are used to indicate the welding process, welding time, and welding temperature of the corresponding welds during welding.

[0019] The information management equipment is also used to receive the pipe section processing response information sent by the on-site operating equipment to confirm that the prefabricated gas pipeline processing is completed.

[0020] The beneficial effects of the second to sixth aspects mentioned above can be referred to those described in the first aspect and will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0022] Figure 1 A schematic diagram of the composition of a prefabricated gas pipeline management system provided in an embodiment of the present application;

[0023] Figure 2 A flow chart of a prefabricated gas pipeline management method provided in an embodiment of the present application;

[0024] Figure 3 A block diagram of the process and identification comparison of a prefabricated gas pipeline provided in an embodiment of the present application;

[0025] Figure 4 A schematic diagram of the composition of a prefabricated gas pipeline management device provided in an embodiment of the present application;

[0026] Figure 5 A schematic diagram of the composition of an electronic device provided in an embodiment of the present application. DETAILED DESCRIPTION

[0027] In the following, the terms "first," "second," and "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the technical features indicated. Thus, a feature designated as "first," "second," or "third," etc., may explicitly or implicitly include one or more of the features.

[0028] Prefabricated gas pipeline technology refers to the prefabrication of various pipeline sections in a factory environment using existing operating equipment according to the pipe section prefabrication drawings. This process includes cutting, welding, anti-corrosion treatment and other processes to produce prefabricated pipe sections that meet specifications. These sections are then transported to the construction site for assembly and connection to form a complete gas pipeline system.

[0029] The existing prefabricated gas pipeline process is typically managed manually. Specifically, managers, after understanding the prefabricated drawings of the pipeline sections, instruct construction workers on how to operate the equipment for pipe section fabrication and welding. This results in the prefabrication process being affected by the managers' expertise, experience, and ability to understand the drawings. Furthermore, this process involves communication between employees from different departments, further complicating management and increasing the risk of errors.

[0030] In summary, the limitations of current prefabricated gas pipeline technology may affect the construction efficiency of prefabricated gas pipelines. Therefore, how to effectively manage the prefabrication process has become a pressing issue that needs to be addressed.

[0031] An embodiment of the present application provides a prefabricated gas pipeline management method, which identifies the prefabricated drawings of pipe sections, obtains the identification of different links in the prefabricated gas pipeline process, constructs a prefabricated gas pipeline information management system based on such identification, controls and guides the prefabricated gas pipeline process, and thereby improves the construction efficiency of the prefabricated gas pipeline.

[0032] like Figure 1 As shown, a prefabricated gas pipeline management system provided in an embodiment of the present application includes an information management device 110 and multiple on-site operation devices 120.

[0033] The information management device 110 is communicatively connected to each field operation device 120 .

[0034] Information management device 110 is configured to obtain a prefabricated drawing of a gas pipeline segment to be prefabricated and assign a design file number identifier to the prefabricated drawing. The prefabricated drawing is identified to determine multiple segment number identifiers to be cut, where each segment number identifier corresponds to multiple segments, and each segment number identifier has a one-to-one correspondence with each segment. Pipe segment processing instruction information is then sent to on-site operation device 120. The pipe segment processing instruction information includes multiple segment number identifiers, the lengths of the multiple segments after cutting, multiple pre-processing process number identifiers for the multiple segments, and multiple post-processing process number identifiers for the multiple segments. The multiple segments are obtained by cutting the original pipe material.

[0035] The field operation device 120 is used to send pipe section processing response information to the information management device 110, and the pipe section processing response information includes multiple weld number identifiers; the multiple weld number identifiers correspond one-to-one to the multiple welds of the prefabricated gas pipeline; the weld number identifiers are used to indicate the welding process, welding time, and welding temperature of the corresponding weld during welding.

[0036] The information management device 110 is further configured to receive the pipe section processing response information sent by the field operation device 120 to determine that the processing of the prefabricated gas transmission pipeline is completed.

[0037] It should be noted that the embodiment of the present application does not limit the number of information management devices 110 and field operation devices 120 , and there may be more or fewer information management devices 110 and field operation devices 120 .

[0038] In some embodiments, the information management device 110 may be a computing device with data processing and image recognition capabilities. The computing device may be a server cluster consisting of multiple servers, a single server, a computer, or a processor or processing chip within a server or computer. The present embodiment of the present application does not limit the specific device form of the information management device 110.

[0039] In some embodiments, the field operation device 120 may be an industrial device with partial or full pipe segment processing capabilities, and construction personnel may operate the device based on the construction information sent by the information management device 110 to complete the construction work. Alternatively, the field operation device 120 may be an automated robot that automatically performs the construction work by receiving the construction information sent by the information management device 110. The embodiments of the present application do not limit the specific device form of the field operation device 120.

[0040] The following introduces the management method of prefabricated gas pipelines with reference to the accompanying drawings.

[0041] like Figure 2 As shown, the prefabricated gas pipeline management method provided in the embodiment of the present application specifically includes the following steps:

[0042] S101: Obtain a prefabricated drawing of a pipe section of a gas transmission pipeline to be prefabricated, and assign a design file number identifier to the pipe section prefabricated drawing.

[0043] Specifically, a pipe segment prefabrication drawing is an engineering drawing used to guide the prefabrication of gas pipeline segments. It can display the pipeline system layout, the connection methods of each segment, and its relative position to surrounding facilities. Specifically, the pipe segment prefabrication drawing indicates the length, diameter, wall thickness and other dimensional parameters of each segment. It also indicates the location, specifications, model and connection methods of elbows, tees, crosses and other fittings on the segment. It also specifies special process requirements such as welding process parameters, anti-corrosion treatment requirements, and heat treatment requirements. Each segment, fitting, and key component is assigned a unique identifier or number to facilitate construction identification, management, and quality traceability. It is a key technical document for gas pipeline prefabrication construction.

[0044] It should be noted that the design file number identifier is used to uniquely identify the pipe section prefabrication drawing of the gas pipeline to be prefabricated. It can be used to perform version management and update records of the pipe section prefabrication drawing throughout the prefabrication process. When the drawing needs to be modified due to reasons such as greater processing difficulty, the changes and modification time of each modified version can be clearly recorded; the design file number identifier can also serve as an association basis for other information related to the pipe section prefabrication drawing, such as pipe section processing instruction information and pipe section processing response information in subsequent steps, to ensure the consistency and coherence of information in each link, and facilitate effective quality control and progress tracking of the entire prefabricated gas pipeline project.

[0045] In some embodiments, the design file number identifier, or other identifiers used in subsequent steps, uniquely identifies each information node within the entire lifecycle of the prefabricated gas pipeline process. This identifier can be in the form of a file, with each identifier associated with a corresponding file containing the implementation information required for that step. Alternatively, the identifier can be in the form of optical, acoustic, electrical, or magnetic information for machine recognition, which can be used to obtain implementation information for each step through recognition by a device equipped with the corresponding recognition function.

[0046] In one possible implementation, the information management device obtains a prefabricated drawing of a pipe section of the gas transmission pipeline to be prefabricated, which can be designed by a pipe section designer through a digital three-dimensional design platform and uploaded to the information management device.

[0047] Another possible implementation method is that if the type and material of the gas pipeline to be prefabricated have been prefabricated in the past, the information management device can retrieve and call the corresponding pipe section prefabrication drawing template from the database, and the designer can modify it according to the needs of the current prefabricated gas pipeline and upload it.

[0048] S102: Identify the prefabricated drawing of the pipe section and determine the number identifications of multiple pipe sections to be cut.

[0049] Among them, multiple pipe section number identifiers correspond to multiple pipe sections, and multiple pipe section number identifiers correspond one-to-one to multiple pipe sections.

[0050] Specifically, as shown in step S101, the pre-drawn pipe segment diagram includes construction parameters for multiple pipe segments. By identifying the pre-drawn pipe segment diagram, the construction parameters for multiple pipe segments can be obtained. The construction parameters for each pipe segment are then associated and bound using the pipe segment number identifier to form a mapping. Subsequent construction steps can quickly retrieve the corresponding pipe segment construction parameters based on the pipe segment number identifier, ensuring accurate and efficient transmission of construction parameters and improving construction quality and progress control.

[0051] In some embodiments, the pipe segment pre-map may be identified based on a rule matching method.

[0052] Specifically, the process of the rule-based matching method is as follows: First, a detailed rule base is constructed. These rules are formulated based on the standard specifications, design practices, and common features of pipe section pre-drawings. The rule base covers the characteristics of various graphic elements, dimensioning rules, symbol meanings, and other aspects. When identifying pipe section pre-drawings, the information management device scans and analyzes the drawings row by row and column by column according to the rules in the rule base. For elements such as lines, text, and symbols in the drawing, the system determines whether they comply with a rule in the rule base. If so, the corresponding pipe section information is identified, and the pipe section number is determined.

[0053] For example, when encountering a combination of lines of a specific shape and dimension, accompanied by specific text descriptions, the system will determine the type of pipe segment it represents based on the rules and assign a corresponding pipe segment number.

[0054] In other embodiments, the pipeline segment pre-map may be identified based on a deep learning method.

[0055] Specifically, based on the deep learning method, a large number of pipe segment pre-drawing samples must be collected first, and these samples must be labeled. The labeled content includes information such as the location, type, size, and pipe segment number identification of the pipe segment. These labeled sample data are used to train a deep learning model (such as a neural convolution model). During the training process, the model will automatically learn the features and patterns in the pipe segment pre-drawing. After the training is completed, the pipe segment pre-drawing to be identified is input into the model. The model will extract and analyze the features of the image, predict the information of each pipe segment in the image, and thus determine the pipe segment number identification. The deep learning model has strong adaptive capabilities and can handle complex and changeable pipe segment pre-drawings. As the training data increases, the recognition accuracy will continue to improve.

[0056] S103: Send pipe section processing instruction information to on-site operating equipment.

[0057] The pipe segment processing instruction information includes multiple pipe segment number identifiers, multiple pipe segment lengths after cutting, multiple pipe segment pre-processing process number identifiers, and multiple pipe segment post-processing process number identifiers. The multiple pipe segments are obtained by cutting the original pipe material.

[0058] Specifically, the pre-treatment process number identification is used to indicate the pre-treatment that needs to be performed by on-site operating equipment before pipe section construction. It includes information such as the pipe surface cleaning method (such as mechanical grinding, chemical cleaning), the temperature and time requirements for pre-heating or pre-cooling, and the specific specifications of the pipe groove processing (such as the groove angle and blunt edge size).

[0059] Specifically, the pre-treatment process number is used to indicate the treatment that needs to be performed by on-site operating equipment after the construction of the pipe section, which includes weld heat treatment process (such as the temperature range and duration of annealing and normalizing), non-destructive testing, surface anti-corrosion treatment method (such as the type of spray anti-corrosion paint, coating thickness requirements, hot-dip galvanizing process parameters), purge method, pressure value and pressure holding time of pipe section pressure test, etc.

[0060] S104: Receive pipe section processing response information sent by the on-site operating equipment to determine that the prefabricated gas pipeline processing is completed.

[0061] Specifically, on-site operating equipment can be understood as operating equipment in a prefabricated factory building.

[0062] The pipe segment processing response information includes multiple weld IDs. Each of these IDs corresponds to a weld on the prefabricated gas pipeline. The IDs indicate the welding process, duration, and temperature for each weld.

[0063] It should be noted that the processing response information is used to feedback the execution results of the pipe segment processing instructions to the information management device. It includes multiple weld number identifiers. This allows the information management device to quickly understand the construction status of each weld through simple identification, and then determine the construction quality of each weld and whether it meets the preset process standards. For example, the welding time can be used to determine whether the operation process is smooth, and the welding quality stability can be controlled based on the welding temperature.

[0064] In some embodiments, the pipe section processing response information further includes a welder number identification, which is used to indicate the type of welding subject performing welding and the identity of the welding subject, where the welding subject includes welding equipment or a welding worker.

[0065] Specifically, the information management device uses the welder number identifier to identify the welder who performed the welding. This allows the device to trace the construction entity of each weld joint, facilitating the subsequent resolution of issues that may arise during the pipe section's service life. Furthermore, the device uses the welder's historical welding quality data to better assess the reliability and stability of the overall welding quality of the prefabricated gas pipeline, combining this with the current weld number identifier.

[0066] In some embodiments, the pipe section processing response information further includes a quality inspection number identifier, which is used to indicate the quality inspection time, quality inspection method, and quality inspection result of the prefabricated gas pipeline, wherein the quality inspection result includes qualified or unqualified.

[0067] One possible implementation method is that if the information management device receives an unqualified quality inspection result in the pipe section processing response information, the information management device can analyze the reason for the unqualified quality inspection based on the quality inspection method in the quality inspection number identification and the weld number identification, and then guide the on-site operating equipment to correct the pipe section processing method.

[0068] It should be understood that through processing response information, as well as welder number identification and quality inspection number identification, the information management equipment can make the quality control of the prefabricated gas pipeline process more comprehensive and traceable. The weld number identification presents the details of the welding process, which helps to judge the welding quality; the welder number identification can trace the construction entity and evaluate the welding quality in combination with historical data; the quality inspection number identification intuitively displays the quality inspection results. Once unqualified, the quality inspection method is associated with the weld number identification, which can quickly locate the problem and guide the improvement of the processing method.

[0069] The prefabricated gas pipeline management method provided in the embodiment of the present application is that the information management device generates multiple pipe segment number identifications by acquiring and identifying the prefabricated drawings of the pipe segments, providing accurate construction parameters for the on-site operating equipment, and can improve the standardization and accuracy of the construction process. At the same time, the information management device can grasp the specific construction process by receiving the processing response information sent by the on-site operating equipment, and determine the completion of the processing through comparative analysis. This method constructs a management system for the prefabricated gas pipeline processing process by utilizing the identification information corresponding to different links, ensuring that each link in the processing process is carried out in a standardized manner, thereby improving construction efficiency.

[0070] In some embodiments, before pipe segment processing, in order to ensure that the pipe segment processing materials meet the processing requirements and reduce the risk of material shortages during pipe segment processing, the information management device may further confirm the original pipe material procurement list required for prefabrication of the gas transmission pipe segment through the pipe segment prefabrication drawing. In this case, before step S103, the method further includes:

[0071] S201. Generate a purchase list file of the original pipe based on the pipe section pre-drawing, and assign a purchase list file number identifier to the purchase list file.

[0072] Specifically, after identifying the pipe segment pre-drawing, the information management device obtains multiple pipe segment number identifiers, classifies the pipe segment numbers of the same specifications (such as pipe segment wall thickness, pipe segment material, etc.), calculates the number of original observations of different specifications required for this processing process, and generates a purchase list file.

[0073] In some embodiments, the information management device can further specify specific requirements for the raw pipe material (such as corrosion resistance and pressure rating) based on the identification of the pre-made pipe segment drawings. When generating the purchase order, it can also specify quality inspection standards and acceptance criteria for the raw pipe. For example, it can clearly define the non-destructive testing items and acceptance criteria required for each batch of pipe upon arrival, as well as specific acceptance criteria for aspects such as the pipe's appearance and dimensional deviation.

[0074] S202: Send the purchase list file to the on-site operation equipment.

[0075] In some embodiments, after obtaining the purchase list file, the field operation equipment can compare the pipe information in the list with the existing inventory on site. For pipes already in inventory, they are marked in the purchase list and the actual quantity required to be purchased is calculated.

[0076] For example, if the purchase list requires 100 pipes of a certain specification, but there are 20 pipes in stock on site, the on-site operating equipment will update the purchase quantity of the required number of pipes of this specification to 80 pipes.

[0077] As can be seen from steps S201-S202, the information management device can facilitate the purchasing work of purchasing personnel by generating a purchase list file, ensuring that the specifications, quantity and quality of the purchased original pipes are accurately matched with the requirements of the prefabricated gas pipeline project, reducing the waste of resources caused by repeated purchases, and preventing material shortages due to inventory misjudgment.

[0078] In some embodiments, in addition to guiding each step of the current gas pipeline prefabrication process, the information management device can also associate the different identifiers involved in the process to form an information closed loop, which can improve the efficiency and transparency of the overall project management. In this case, after step S202, the method further includes:

[0079] S203, associatively storing the design file number identifier, the purchase list file number identifier, the multiple pipe section number identifiers, the pre-processing process number identifier, the post-processing process number identifier, the weld number identifier, the welder number identifier, and the quality inspection number identifier.

[0080] One possible implementation involves using a relational database to associate and store different identifiers. Specifically, different data tables are created to correspond to related information, such as the design file number identifier, the purchase list file number identifier, and the pipe section number identifier. For example, the design file table records fields such as the design file number identifier, version number, design time, and modification history; the pipe section information table records fields such as the pipe section number identifier, pipe section length, pipe diameter, and material. These tables are linked by setting foreign key associations in each table. For example, in the pipe section information table, the design file number identifier is set as a foreign key and linked to the design file table. This allows the corresponding pipe section information to be found through the design file number identifier, thus establishing an association between the identifiers. Simultaneously, in the welding information table, the pipe section number identifier and the welder number identifier are set as foreign keys and linked to the pipe section information table and the welder information table, respectively. This establishes a connection between the pipe section, welding process, and welding subject, facilitating problem tracing and data query from different perspectives.

[0081] Another possible implementation method is to use a document-based database to store identification information. Each identification and its related information are organized into a document. For example, a pipe segment number identification document contains detailed information about the pipe segment, the corresponding pre-treatment process number identification, post-treatment process number identification, weld number identification, and so on. Documents with different identifications are stored in the same collection and associated and queried using the identification fields in the documents. For example, to query all relevant information about a particular pipe segment, the corresponding document can be found in the collection using the pipe segment number identification. This document contains all other identification information related to the pipe segment, allowing for quick and easy information integration and traceability.

[0082] In some embodiments, the prefabricated gas pipeline management method provided in the embodiments of the present application can prefabricate pipelines with a diameter range of DN500-DN600, and is suitable for bypass pipelines, vent pipelines and sewage pipelines with large welding and installation workload.

[0083] In an exemplary embodiment, the present application also provides a block diagram of the process of prefabricating a gas pipeline and comparing the identification, such as Figure 3 As shown, procurement personnel or on-site operating equipment are considered the prefabrication execution layer, while information management equipment is considered the prefabrication management layer. Furthermore, the design phase includes the design and export of pipe segment prefabrication drawings, identified by the design document number; the procurement phase includes the purchase of raw pipe materials, identified by the procurement document number; the construction phase includes pipe cutting, pretreatment processes (groove grinding, cleaning, etc.), assembly, welding, and post-treatment processes (heat treatment, non-destructive testing, corrosion protection, purging, etc.), identified by the pipe segment number, pretreatment process number, weld number, welder number, and post-treatment process number, respectively; the delivery phase includes product delivery, identified by the quality inspection number.

[0084] The above mainly introduces the solution provided by the embodiment of the present application from the perspective of the method. In order to realize the above functions, the prefabricated gas pipeline management device includes a hardware structure and / or software module corresponding to the execution of each function. It should be easy to realize that the technical goals in this field are combined with the units and algorithm steps of each example described in the embodiments disclosed in this article, and the present application can be implemented in the form of hardware or a combination of hardware and computer software. Whether a function is executed in the form of hardware or computer software driving hardware depends on the specific application and design constraints of the technical solution. Professional technical goals can use different methods to implement the described functions for each specific application, but such implementation should not be considered to be beyond the scope of this application.

[0085] In an exemplary embodiment, the present application also provides a prefabricated gas pipeline management device, which can be applied to the above-mentioned computing device. Figure 4 As shown, the prefabricated gas pipeline management device includes: an acquisition module 410 and a processing module 420.

[0086] The acquisition module 410 is used to acquire a prefabricated drawing of a pipe section of a gas transmission pipeline to be prefabricated, and assign a design file number identifier to the prefabricated drawing of the pipe section.

[0087] The processing module 420 is used to identify the pipe segment pre-drawing and determine the multiple pipe segment number identifiers to be cut. The multiple pipe segment number identifiers correspond to the multiple pipe segments, and the multiple pipe segment number identifiers correspond one-to-one with the multiple pipe segments. The pipe segment processing instruction information is sent to the on-site operating equipment. The pipe segment processing instruction information includes multiple pipe segment number identifiers, the lengths of the multiple pipe segments after cutting, the pre-processing process number identifiers of the multiple pipe segments, and the post-processing process number identifiers of the multiple pipe segments. The multiple pipe segments are obtained after cutting the original pipes. The pipe segment processing response information sent by the on-site operating equipment is received to determine that the prefabricated gas pipeline processing is completed. The pipe segment processing response information includes multiple weld number identifiers. The multiple weld number identifiers correspond one-to-one with the multiple welds of the prefabricated gas pipeline. The weld number identifiers are used to indicate the welding process, welding time, and welding temperature of the corresponding welds during welding.

[0088] In one possible implementation, the pipe section processing response information further includes a welder ID. The welder ID is used to indicate the type and identity of the welding subject performing the welding, where the welding subject includes welding equipment or a welding worker.

[0089] In one possible implementation, before sending the pipe segment processing instruction information to the on-site operation equipment, the processing module 420 is further configured to: generate a purchase list file for the original pipe material based on the pipe segment pre-drawing, assign a purchase list file number to the purchase list file, and send the purchase list file to the on-site operation equipment.

[0090] In one possible implementation, the pipe section processing response information further includes a quality inspection number identifier; the quality inspection number identifier is used to indicate the quality inspection time, quality inspection method, and quality inspection result of the prefabricated gas pipeline; the quality inspection result includes qualified or unqualified.

[0091] In one possible implementation, the processing module 420 is further used to: associate and store a design file number identifier, a purchase list file number identifier, multiple pipe section number identifiers, a pre-processing process number identifier, a post-processing process number identifier, a weld number identifier, a welder number identifier, and a quality inspection number identifier.

[0092] According to the above technical solution, the information management device generates identification at each link in the process of prefabricating gas pipelines, and controls the design link, processing link, and feedback link of the pipe segment through different identifications. According to the identification, a complete information management system can be established to standardize the process of prefabricating gas pipelines and improve the management effect of the process of prefabricating gas pipelines. In addition, the information management device sends processing instruction information to the operating equipment in the factory by identifying the prefabricated drawings of the pipe segments, which can provide the operating equipment with more accurate construction parameters, overcome the deviation problem caused by relying on manual operation in the existing technology, improve the accuracy of pipe segment processing, and reduce resource waste. In summary, this method can improve the construction efficiency in the process of prefabricating gas pipelines.

[0093] In one possible implementation, the pipe section processing response information further includes a welder ID. The welder ID is used to indicate the type and identity of the welding subject performing the welding, where the welding subject includes welding equipment or a welding worker.

[0094] In one possible implementation, before sending the pipe segment processing instruction information to the on-site operation equipment, the method further includes: generating a purchase list file for the original pipe material based on the pipe segment pre-fabrication drawing, assigning a purchase list file number to the purchase list file, and sending the purchase list file to the on-site operation equipment.

[0095] In one possible implementation, the pipe section processing response information further includes a quality inspection number identifier; the quality inspection number identifier is used to indicate the quality inspection time, quality inspection method, and quality inspection result of the prefabricated gas pipeline; the quality inspection result includes qualified or unqualified.

[0096] It should be noted that Figure 4 The module division described is illustrative and represents only one logical functional division. Actual implementations may employ different divisions. For example, two or more functions may be integrated into a single processing module. These integrated modules may be implemented as either hardware or software functional modules.

[0097] In an exemplary embodiment, as described above, the computing device may be a computer or a server or other electronic device with computing and processing functions. In this case, the present application also provides an electronic device, Figure 5 This is a schematic diagram of the composition of an electronic device provided in an embodiment of the present application. Figure 5 As shown, the electronic device includes: a processor 10 , a memory 20 , a communication line 30 , a communication interface 40 , and an input / output interface 50 .

[0098] The processor 10 , the memory 20 , the communication interface 40 , and the input / output interface 50 may be connected via a communication line 30 .

[0099] The processor 10 is used to execute the instructions stored in the memory 20 to implement the prefabricated gas pipeline management method provided in the above embodiment of the present application. The processor 10 can be a CPU, a general-purpose processor network processor (NP), a digital signal processor (DSP), a microprocessor, a microcontroller (MCU) / single-chip microcomputer / single-chip microcomputer, a programmable logic device (PLD) or any combination thereof. The processor 10 can also be any other device with processing functions, such as a circuit, a device or a software module, which is not limited in the embodiment of the present application. In one example, the processor 10 may include one or more CPUs, such as Figure 5 As an optional implementation, the electronic device may include multiple processors, for example, in addition to the processor 10, it may also include a processor 60 ( Figure 5 The dashed line is used as an example.

[0100] Memory 20 is used to store instructions. For example, the instruction can be a computer program. Optionally, the memory 20 can be a read-only memory (ROM) or other types of static storage devices that can store static information and / or instructions, or a random access memory (RAM) or other types of dynamic storage devices that can store information and / or instructions, or an electrically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disc storage, optical disc storage (including compact disc, laser disc, optical disc, digital versatile disc, Blu-ray disc, etc.), a magnetic disk storage medium or other magnetic storage device, etc., and the embodiments of the present application are not limited to this.

[0101] It should be noted that the memory 20 may exist independently of the processor 10 or may be integrated with the processor 10. The memory 20 may be located inside the electronic device or outside the electronic device, which is not limited in the embodiment of the present application.

[0102] The communication line 30 is used to transmit information between the components included in the electronic device.

[0103] Communication interface 40 is used to communicate with other devices or other communication networks. Such other communication networks may be Ethernet, radio access networks (RAN), wireless local area networks (WLAN), etc. Communication interface 40 may be a module, circuit, transceiver, or any other device capable of communication.

[0104] The input / output interface 50 is used to implement human-computer interaction between a user and the electronic device, for example, to implement action interaction or information interaction between the user and the electronic device.

[0105] For example, the input / output interface 50 may be a mouse, keyboard, display screen, or touch screen screen, etc. Action interaction or information interaction between a user and the electronic device may be achieved through the mouse, keyboard, display screen, or touch screen screen, etc.

[0106] In an exemplary embodiment, the present application also provides a readable storage medium including software instructions, which, when executed on an electronic device, enables the electronic device to execute any one of the methods provided in the above embodiments.

[0107] In an exemplary embodiment, the present application also provides a computer program product including computer-executable instructions, which, when executed on an electronic device, enables the electronic device to execute any one of the methods provided in the above embodiments.

[0108] In the above embodiments, all or part of the embodiments can be implemented by software, hardware, firmware, or any combination thereof. When implemented using a software program, all or part of the embodiments can be implemented in the form of a computer program product. The computer program product includes one or more computer-executable instructions. When the computer-executable instructions are loaded and executed on a computer, all or part of the processes or functions according to the embodiments of the present application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer-executable instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer-executable instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via a wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) method. The computer-readable storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server or data center that includes one or more media integrated therein. The available medium may be a magnetic medium (eg, a floppy disk, a hard disk, a magnetic tape), an optical medium (eg, a DVD), or a semiconductor medium (eg, a solid state disk (SSD)).

[0109] Although the present application is described herein in conjunction with various embodiments, in the process of implementing the claimed application, those skilled in the art may understand and implement other variations of the disclosed embodiments by reviewing the drawings, the disclosure, and the appended claims. In the claims, the word "comprising" does not exclude other components or steps, and "one" or "an" does not exclude multiple components. A single processor or other unit may implement several functions listed in the claims. Certain measures are recorded in different dependent claims, but this does not mean that these measures cannot be combined to produce good results.

[0110] Although the present application has been described with reference to specific features and embodiments thereof, it is apparent that various modifications and combinations may be made thereto without departing from the spirit and scope of the present application. Accordingly, this specification and the drawings are merely illustrative of the present application as defined by the appended claims and are deemed to cover any and all modifications, variations, combinations or equivalents within the scope of the present application. Obviously, those skilled in the art may make various modifications and variations to the present application without departing from the spirit and scope of the present application. Thus, the present application is intended to include such modifications and variations as fall within the scope of the claims of the present application and their equivalents.

[0111] The above is only a specific embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any changes or replacements within the technical scope disclosed in the present application should be included in the scope of protection of the present application. Therefore, the scope of protection of the present application should be based on the scope of protection of the claims.

Claims

1. A prefabricated gas pipeline management method, characterized in that: The method is applied to an information management device; the method comprises: Obtaining a prefabricated drawing of a gas pipeline section to be prefabricated, and assigning a design file number identifier to the prefabricated drawing of the pipe section; Identify the pipe segment pre-drawing to determine multiple pipe segment number identifiers to be cut; the multiple pipe segment number identifiers correspond to multiple pipe segments; the multiple pipe segment number identifiers correspond to the multiple pipe segments in a one-to-one manner; Sending pipe segment processing instruction information to an on-site operating device; the pipe segment processing instruction information includes the plurality of pipe segment number identifiers, the lengths of the plurality of pipe segments after cutting, the plurality of pre-processing process number identifiers of the plurality of pipe segments, and the plurality of post-processing process number identifiers of the plurality of pipe segments; the plurality of pipe segments are obtained by cutting the original pipe material; Receive the pipe section processing response information sent by the on-site operation equipment to determine that the prefabricated gas pipeline processing is completed; the pipe section processing response information includes multiple weld number identifiers; the multiple weld number identifiers correspond one-to-one to the multiple welds of the prefabricated gas pipeline; the weld number identifiers are used to indicate the welding process, welding time, and welding temperature of the corresponding welds during welding.

2. The method according to claim 1, characterized in that The pipe section processing response information also includes a welder number identification; the welder number identification is used to indicate the type of welding subject performing welding and the identity of the welding subject; the welding subject includes welding equipment or a welding worker.

3. The method according to claim 2, characterized in that Before sending the pipe section processing instruction information to the on-site operation equipment, the method further includes: generating a purchase list file of the original pipe material based on the pipe section pre-drawing, and assigning a purchase list file number identifier to the purchase list file; The purchase list file is sent to the on-site operation device.

4. The method according to claim 2, characterized in that The pipe section processing response information also includes a quality inspection number identifier; the quality inspection number identifier is used to indicate the quality inspection time, quality inspection method, and quality inspection result of the prefabricated gas pipeline; the quality inspection result includes qualified or unqualified.

5. The method according to claim 4, characterized in that The method further comprises: The design file number identifier, the purchase list file number identifier, the multiple pipe section number identifiers, the pre-processing process number identifier, the post-processing process number identifier, the weld number identifier, the welder number identifier, and the quality inspection number identifier are stored in association.

6. A prefabricated gas pipeline management device, characterized in that: The device includes: an acquisition module and a processing module; The acquisition module is used to acquire a prefabricated drawing of a pipe section of a gas pipeline to be prefabricated, and assign a design file number identifier to the prefabricated drawing of the pipe section; The processing module is used to identify the pipe segment prefabricated drawing and determine multiple pipe segment number identifiers to be cut; the multiple pipe segment number identifiers correspond to multiple pipe segments; the multiple pipe segment number identifiers correspond one-to-one to the multiple pipe segments; send pipe segment processing instruction information to the on-site operation equipment; the pipe segment processing instruction information includes the multiple pipe segment number identifiers, the lengths of the multiple pipe segments after cutting, the pre-processing process number identifiers of the multiple pipe segments, and the post-processing process number identifiers of the multiple pipe segments; the multiple pipe segments are obtained after cutting the original pipes; receive the pipe segment processing response information sent by the on-site operation equipment to determine that the processing of the prefabricated gas pipeline is completed; the pipe segment processing response information includes multiple weld number identifiers; the multiple weld number identifiers correspond one-to-one to the multiple welds of the prefabricated gas pipeline; the weld number identifier is used to indicate the welding process, welding time, and welding temperature of the corresponding weld when welding.

7. An electronic device, characterized in that: include: processor and memory; The memory stores instructions executable by the processor; When the processor is configured to execute the instructions, the electronic device implements the method according to any one of claims 1 to 5.

8. A computer-readable storage medium, characterized in that The computer-readable storage medium includes: computer software instructions; When the computer software instructions are executed in an electronic device, the electronic device is enabled to implement the method according to any one of claims 1 to 5.

9. A computer program product, characterized in that The readable storage medium includes: computer instructions; When the computer instructions are executed in an electronic device, the electronic device is enabled to implement the method according to any one of claims 1 to 5.

10. A prefabricated gas pipeline management system, characterized in that: include: Information management equipment and field operation equipment; The information management device is used to obtain a prefabricated drawing of a pipe section of a gas transmission pipeline to be prefabricated, and assign a design file number identifier to the prefabricated drawing; identify the prefabricated drawing of the pipe section, and determine a plurality of pipe section number identifiers to be cut; the plurality of pipe section number identifiers correspond to a plurality of pipe sections; and the plurality of pipe section number identifiers correspond one-to-one to the plurality of pipe sections; Sending pipe segment processing instruction information to the on-site operation equipment; the pipe segment processing instruction information includes the plurality of pipe segment number identifiers, the lengths of the plurality of pipe segments after cutting, the plurality of pre-processing process number identifiers of the plurality of pipe segments, and the plurality of post-processing process number identifiers of the plurality of pipe segments; the plurality of pipe segments are obtained by cutting the original pipe material; The field operation device is used to send pipe section processing response information to the information management device; the pipe section processing response information includes a plurality of weld number identifiers; the plurality of weld number identifiers correspond one-to-one to the plurality of welds of the prefabricated gas pipeline; the weld number identifiers are used to indicate the welding process, welding time, and welding temperature of the corresponding weld when welding; The information management device is further used to receive the pipe section processing response information sent by the on-site operation device to determine that the processing of the prefabricated gas pipeline is completed.