BIM-combined electromechanical integrated pipeline operation and maintenance supervision method and system

By obtaining pipeline layout network diagrams and image sensor data, combined with BIM modeling, and constructing a target pipeline BIM model, the problem of low informatization level in the operation and maintenance of electromechanical integrated pipelines was solved, efficient operation and maintenance supervision and fault warning were achieved, and maintenance costs were reduced.

CN120806908APending Publication Date: 2025-10-17ZHONGTIE ELECTRIZATION BUREAU GRP BEIJING CONSTR ENG
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Patent Information

Application Number
CN202510647341.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2025-10-17

AI Technical Summary

Technical Problem

The existing operation and maintenance methods of electromechanical integrated pipelines have a low level of informatization, resulting in low efficiency in operation and maintenance supervision, inability to detect and deal with problems in a timely manner, and increased failure risks and maintenance costs.

Method used

By obtaining the pipeline layout network diagram of the target building, using image sensors to collect structural image data, conducting building structure layout analysis, combining BIM modeling, building a target pipeline BIM model, and obtaining an operation and maintenance monitoring indicator set based on the pipeline type identification, pipeline monitoring and operation and maintenance management and control are carried out.

Benefits of technology

It has improved the informatization level of operation and maintenance of integrated electromechanical pipelines, achieved more efficient operation and maintenance supervision, and reduced failure risks and maintenance costs.

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Abstract

The invention provides a BIM-combined electromechanical integrated pipeline operation and maintenance supervision method and system, and relates to the technical field of operation and maintenance supervision, and the method comprises the steps: obtaining a pipeline arrangement network diagram of a target building; obtaining target structure image data; obtaining first modeling information; acquiring size information of a plurality of substructures to obtain second modeling information; performing BIM modeling by using the first modeling information, the second modeling information and the pipeline arrangement network diagram, and constructing a target pipeline BIM model; acquiring a plurality of pipeline operation and maintenance monitoring index sets according to the pipeline type identifiers; according to the pipeline operation and maintenance monitoring method and device, the technical problem that in the prior art, due to the fact that the informatization degree of an electromechanical comprehensive pipeline operation and maintenance method is low, the operation and maintenance supervision efficiency is low can be solved, and the operation and maintenance efficiency of the electromechanical comprehensive pipeline operation and maintenance method is improved. The purpose of improving the informatization degree of the electromechanical integrated pipeline operation and maintenance method is achieved, and the technical effect of improving the operation and maintenance supervision efficiency is achieved.
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Description

TECHNICAL FIELD

[0001] The present disclosure relates to the technical field of operation and maintenance supervision, in particular to a mechanical and electrical comprehensive pipeline operation and maintenance supervision method and system combined with BIM. BACKGROUND

[0002] Mechanical and electrical comprehensive pipeline operation and maintenance supervision is a process of maintaining and managing building mechanical and electrical comprehensive pipelines to ensure their normal operation. It includes inspection, maintenance, repair and reconstruction of pipelines, lines, electrical systems, ventilation systems and other systems, as well as operation monitoring and maintenance management of related equipment. At present, the existing operation and maintenance management method has low informatization degree, lacks comprehensive monitoring and automatic management of mechanical and electrical comprehensive pipelines, resulting in low operation and maintenance efficiency, inability to timely discover and handle problems, and increased risk of failure and maintenance cost.

[0003] In summary, the existing technology has the technical problem of low operation and maintenance supervision efficiency due to low informatization degree of mechanical and electrical comprehensive pipeline operation and maintenance method. SUMMARY

[0004] The present disclosure provides a mechanical and electrical comprehensive pipeline operation and maintenance supervision method and system combined with BIM to solve the technical problem of low operation and maintenance supervision efficiency due to low informatization degree of mechanical and electrical comprehensive pipeline operation and maintenance method in the prior art.

[0005] According to a first aspect of the present disclosure, a mechanical and electrical comprehensive pipeline operation and maintenance supervision method combined with BIM is provided, comprising: acquiring a pipeline arrangement network diagram of a target building, wherein the pipeline arrangement network diagram has pipeline type identification and arrangement position identification; collecting a structure image of the target building through an image sensor to obtain target structure image data; performing building structure layout analysis on the target structure image data to obtain first modeling information, the first modeling information containing the positions of a plurality of substructures; acquiring size information of the plurality of substructures based on the first modeling information to obtain second modeling information; performing BIM modeling on the first modeling information, the second modeling information and the pipeline arrangement network diagram to construct a target pipeline BIM model; acquiring a plurality of pipeline operation and maintenance monitoring index sets based on the pipeline type identification; performing pipeline monitoring based on the target pipeline BIM model with the plurality of pipeline operation and maintenance monitoring index sets, and performing operation and maintenance control based on the monitoring results.

[0006] According to a second aspect of the present disclosure, a BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision system is provided, comprising: a pipeline arrangement network diagram obtaining module, configured to obtain a pipeline arrangement network diagram of a target building, wherein the pipeline arrangement network diagram has pipeline type identification and arrangement position identification; a target structure image data obtaining module, configured to collect a structure image of the target building through an image sensor to obtain target structure image data; a first modeling information obtaining module, configured to perform building structure layout analysis on the target structure image data to obtain first modeling information, wherein the first modeling information comprises positions of a plurality of substructures; a second modeling information obtaining module, configured to collect size information of the plurality of substructures by taking the first modeling information as a reference to obtain second modeling information; a target pipeline BIM model obtaining module, configured to perform BIM modeling on the first modeling information, the second modeling information and the pipeline arrangement network diagram to construct a target pipeline BIM model; a pipeline operation and maintenance monitoring index set obtaining module, configured to obtain a plurality of pipeline operation and maintenance monitoring index sets by taking the pipeline type identification; and an operation and maintenance control module, configured to perform pipeline monitoring based on the target pipeline BIM model by taking the plurality of pipeline operation and maintenance monitoring index sets, and perform operation and maintenance control based on a monitoring result.

[0007] According to a third aspect of the present disclosure, a computer device is provided, comprising a memory and a processor, the memory stores a computer program, and the processor implements the method according to any one of the embodiments.

[0008] According to a fourth aspect of the present disclosure, a computer readable storage medium is provided, which stores a computer program, and the computer program is executed by a processor to implement the method according to any one of the embodiments.

[0009] The one or more technical solutions provided in the disclosure have at least the following technical effects or advantages: according to the disclosure, a pipeline arrangement network diagram of a target building is acquired, wherein the pipeline arrangement network diagram has pipeline type identification and arrangement position identification; a structure image of the target building is collected by an image sensor to obtain target structure image data; building structure layout analysis is performed on the target structure image data to obtain first modeling information, and the first modeling information contains positions of a plurality of substructures; the first modeling information is taken as a reference to collect size information of the plurality of substructures to obtain second modeling information; BIM modeling is performed on the first modeling information, the second modeling information, and the pipeline arrangement network diagram to construct a target pipeline BIM model; a plurality of pipeline operation and maintenance monitoring index sets are acquired based on the pipeline type identification; pipeline monitoring is performed based on the plurality of pipeline operation and maintenance monitoring index sets and the target pipeline BIM model, and operation and maintenance control is performed based on a monitoring result, thereby solving the technical problem in the prior art that the informationization degree of the electromechanical comprehensive pipeline operation and maintenance method is low, resulting in low operation and maintenance supervision efficiency, achieving the goal of improving the informationization degree of the electromechanical comprehensive pipeline operation and maintenance method, and achieving the technical effect of improving the operation and maintenance supervision efficiency.

[0010] It should be understood that the content described in this part is not intended to indicate key or important features of the embodiments of the disclosure, nor is it used to limit the scope of the disclosure. Other features of the disclosure will become apparent from the following description. BRIEF DESCRIPTION OF DRAWINGS

[0011] In order to more clearly illustrate the technical solutions in the disclosure or the prior art, the following will briefly introduce the drawings needed in the embodiments or the prior art description. Obviously, the drawings in the following description are only exemplary, and other drawings can be obtained by those skilled in the art without creative labor on the basis of the provided drawings.

[0012] Figure 1 A flowchart of a BIM-combined electromechanical comprehensive pipeline operation and maintenance supervision method provided by an embodiment of the disclosure;

[0013] Figure 2 A flowchart of acquiring a pipeline arrangement network diagram of a target building in a BIM-combined electromechanical comprehensive pipeline operation and maintenance supervision method provided by an embodiment of the disclosure;

[0014] Figure 3 A structural diagram of a BIM-combined electromechanical comprehensive pipeline operation and maintenance supervision system provided by an embodiment of the disclosure;

[0015] Figure 4 A structural diagram of a computer device provided by an embodiment of the disclosure.

[0016] Explanation of reference signs: pipeline arrangement network diagram obtaining module 11, target structure image data obtaining module 12, first modeling information obtaining module 13, second modeling information obtaining module 14, target pipeline BIM model obtaining module 15, pipeline operation and maintenance monitoring index set obtaining module 16, operation and maintenance control module 17, electronic device 100, processor 101, memory 102, bus 103. DETAILED DESCRIPTION

[0017] Exemplary embodiments of the present disclosure are described below with reference to the accompanying drawings, which include various details of the embodiments of the present disclosure to assist in understanding, which should be considered only as exemplary. Therefore, those of ordinary skill in the art should recognize that various changes and modifications can be made to the embodiments described herein without departing from the scope and spirit of the present disclosure. Also, in order to be clear and concise, descriptions of well-known functions and structures are omitted in the following description.

[0018] Embodiment one

[0019] The method provided by the embodiments of the present disclosure is described below with reference to Figure 1 and Figure 2 The method comprises the following steps:

[0020] Obtaining a pipeline arrangement network diagram of a target building, wherein the pipeline arrangement network diagram has pipeline type identification and arrangement position identification;

[0021] Specifically, the pipeline arrangement network diagram has pipeline type identification and arrangement position identification. A pipeline type set in the target building is obtained. Further, the pipeline arrangement design drawing set of the target building is matched and called by using the pipeline type set. Further, the arrangement route of the multi-type pipeline is extracted and fused according to the pipeline arrangement design drawing set, and the pipeline arrangement network diagram is obtained, and the pipeline type identification and arrangement position identification are performed in the pipeline arrangement network diagram based on the pipeline type set and the arrangement route.

[0022] Obtaining target structure image data by collecting structure images of the target building through an image sensor;

[0023] Specifically, target structure image data is obtained by collecting structure images of the target building through an image sensor. The structure image refers to an image used to describe the internal structure and external form of the building, including building plan, elevation, section, three-dimensional model, etc. These images can provide detailed information of the building, such as the size, material, construction method, spatial relationship, etc. of the building, which is convenient for architects, engineers, construction personnel and other relevant personnel to design, construct and maintain.

[0024] perform building structure layout analysis on the target structure image data to obtain first modeling information, the first modeling information including positions of a plurality of substructures;

[0025] Specifically, building structure layout analysis is performed on the target structure image data, i.e., the size, material, construction method, and spatial relationship of the building, to further obtain first modeling information including positions of a plurality of substructures. The plurality of substructures are spaces obtained by partitioning the building. For example, the first floor and the second floor of the building are substructures.

[0026] Reference is made to the first modeling information to collect size information of the plurality of substructures to obtain second modeling information;

[0027] Specifically, reference is made to the first modeling information to collect size information of the plurality of substructures to obtain second modeling information. The second modeling information includes a modeling model having specific parameter information after modeling the target building.

[0028] BIM modeling is performed on the first modeling information and the second modeling information to construct a target pipeline BIM model;

[0029] Specifically, BIM modeling is performed on the first modeling information and the second modeling information to construct a first building model of the target building. The method of BIM modeling is automatic connection modeling, which correlates objects in the model together by using defined parameters, can better simulate the real world, and provide in-depth information. Further, the pipeline arrangement network diagram is fused to the first building model based on the arrangement position identifier to obtain a target pipeline BIM model having a pipeline arrangement position identifier. The BIM modeling is performed on the first modeling information, the second modeling information, and the pipeline arrangement network diagram to construct the target pipeline BIM model, which can improve the efficiency of mechanical and electrical comprehensive pipeline operation and supervision.

[0030] A plurality of pipeline operation and monitoring index sets are obtained based on the pipeline type identifier;

[0031] Specifically, a pipeline type sample set and a pipeline monitoring index sample set are obtained based on data mining, and the pipeline type sample set and the pipeline monitoring index sample set have a first correspondence relationship. The first correspondence relationship is the correspondence relationship between the monitoring type and the monitoring index. Further, based on the first correspondence relationship, a pipeline-index mapping database is constructed based on the pipeline type sample set and the pipeline monitoring index sample set. Index matching is performed based on the pipeline type identifier and the pipeline-index mapping database to obtain the plurality of pipeline operation and monitoring index sets. For example, water pipe pressure, flow, gas pipeline gas pressure, heating pipeline temperature, etc.

[0032] monitoring based on the target pipeline BIM model, and performing operation and maintenance control according to the monitoring result.

[0033] Specifically, a calibration index parameter is obtained by searching based on big data. A plurality of calibration index parameters are configured based on the plurality of pipeline operation and maintenance monitoring index sets and mapped to the target pipeline BIM model to obtain a first mapping result. Further, a pipeline operation parameter collection is performed based on the plurality of pipeline operation and maintenance monitoring index sets by using an operation parameter collection device to obtain a plurality of pipeline operation index parameter sets. Further, the plurality of pipeline operation index parameter sets are mapped to the target pipeline BIM model according to the collection positions to obtain a second mapping result. The plurality of calibration index parameters and the plurality of pipeline operation index parameter sets are compared based on the first mapping result and the second mapping result to obtain a parameter comparison deviation. The parameter comparison deviation is the difference between the plurality of pipeline operation index parameter sets in the first mapping result and the second mapping result. If the parameter comparison deviation is greater than or equal to a predetermined deviation threshold, it indicates that the parameter comparison deviation is too large to require maintenance, and a first reminder information is generated, which carries a deviation position. The first reminder information is sent to an operation and maintenance management personnel for pipeline maintenance control according to the parameter comparison deviation.

[0034] By this embodiment, the technical problem of low operation and maintenance supervision efficiency due to low informatization level of the electromechanical comprehensive pipeline operation and maintenance method in the prior art can be solved, the goal of improving the informatization level of the electromechanical comprehensive pipeline operation and maintenance method is achieved, and the technical effect of improving the operation and maintenance supervision efficiency is achieved.

[0035] The method provided in the embodiments of the present disclosure further includes:

[0036] obtaining a pipeline type set in the target building;

[0037] retrieving a pipeline arrangement design drawing set of the target building based on the pipeline type set;

[0038] extracting and fusing the arrangement routes of the multiple types of pipelines based on the pipeline arrangement design drawing set to obtain a pipeline arrangement network diagram, and performing pipeline type identification and arrangement position identification based on the pipeline type set and the arrangement routes.

[0039] Specifically, a pipeline type set in the target building is obtained.

[0040] Further, the pipeline arrangement design drawing set of the target building is retrieved according to the matching of the pipeline type set. Further, the arrangement routes of the pipelines of multiple types are extracted and fused according to the pipeline arrangement design drawing set, the pipeline arrangement network diagram is obtained, and the pipeline type identification and arrangement location identification are performed on the pipeline arrangement network diagram based on the pipeline type set and the arrangement routes. Wherein, the pipeline arrangement network diagram of the target building is obtained, which can improve the operation and maintenance efficiency of the comprehensive mechanical and electrical pipeline.

[0041] The method provided in the embodiments of the present disclosure further comprises:

[0042] BIM modeling is performed based on the first modeling information and the second modeling information, and the first building model of the target building is constructed.

[0043] The pipeline arrangement network diagram is fused into the first building model based on the arrangement location identification, and the target pipeline BIM model is obtained.

[0044] Specifically, BIM modeling is performed based on the first modeling information and the second modeling information, and the first building model of the target building is constructed. Wherein, the method of BIM modeling is automatic connection modeling, which can better simulate the real world and provide in-depth information by associating objects in the model together with defined parameters.

[0045] Further, the pipeline arrangement network diagram is fused into the first building model based on the arrangement location identification, and the target pipeline BIM model with the pipeline arrangement location identification is obtained. Wherein, BIM modeling is performed based on the first modeling information, the second modeling information and the pipeline arrangement network diagram, and the target pipeline BIM model is constructed, which can improve the operation and maintenance supervision efficiency of the comprehensive mechanical and electrical pipeline.

[0046] The method provided in the embodiments of the present disclosure further comprises:

[0047] The pipeline type sample set and the pipeline monitoring index sample set are obtained based on data mining, and the pipeline type sample set and the pipeline monitoring index sample set have a first corresponding relationship.

[0048] The pipeline- index mapping database is constructed based on the first corresponding relationship and the pipeline type sample set and the pipeline monitoring index sample set.

[0049] The index matching is performed according to the pipeline type identification and the pipeline- index mapping database, and the multiple pipeline operation and maintenance monitoring index sets are obtained.

[0050] Specifically, a pipeline type sample set and a pipeline monitoring index sample set are obtained based on data mining, and the pipeline type sample set and the pipeline monitoring index sample set have a first correspondence relationship. The first correspondence relationship is a correspondence relationship between a monitoring type and a monitoring index.

[0051] Further, based on the first correspondence relationship, a pipeline-index mapping database is constructed by actually constructing a database based on the pipeline type sample set and the pipeline monitoring index sample set.

[0052] Further, the multiple pipeline operation and maintenance monitoring index sets are obtained by performing index matching based on the pipeline type identifier and the pipeline-index mapping database. For example, water pipe pressure, flow, gas pipe gas pressure, heating pipe temperature, etc. The multiple pipeline operation and maintenance monitoring index sets obtained based on the pipeline type identifier can improve the efficiency of mechanical and electrical comprehensive pipeline operation and maintenance supervision.

[0053] The method provided in the embodiments of the present disclosure further includes:

[0054] Based on the multiple pipeline operation and maintenance monitoring index sets, multiple calibration index parameters are configured and mapped to the target pipeline BIM model to obtain a first mapping result.

[0055] Based on the multiple pipeline operation and maintenance monitoring index sets, pipeline operation parameter acquisition is performed to obtain multiple pipeline operation index parameter sets.

[0056] The multiple pipeline operation index parameter sets are mapped to the target pipeline BIM model according to the acquisition positions to obtain a second mapping result.

[0057] Based on the target pipeline BIM model, pipeline comprehensive operation and maintenance control is performed based on the first mapping result and the second mapping result.

[0058] Specifically, individual calibration index parameters are obtained based on big data retrieval. Based on the multiple pipeline operation and maintenance monitoring index sets, multiple calibration index parameters are configured and mapped to the target pipeline BIM model to obtain a first mapping result.

[0059] Further, based on the multiple pipeline operation and maintenance monitoring index sets, pipeline operation parameter acquisition is performed by using an operation parameter acquisition device to obtain multiple pipeline operation index parameter sets.

[0060] Further, the multiple pipeline operation index parameter sets are mapped to the target pipeline BIM model according to the acquisition positions to obtain a second mapping result. The target pipeline BIM model is a digital model with operation index parameters.

[0061] Further, parameter comparison is performed on the plurality of calibration indicator parameters and the plurality of pipeline operation indicator parameter sets based on the first mapping result and the second mapping result, and parameter comparison deviation is obtained. The parameter comparison deviation is the difference of the plurality of pipeline operation indicator parameter sets in the first mapping result and the second mapping result. Further, if the parameter comparison deviation is greater than or equal to a predetermined deviation threshold, it indicates that the parameter comparison deviation is too large and needs to be repaired, and then a first reminder information is generated, which carries the deviation position. Further, the first reminder information is sent to the operation and maintenance management personnel, and pipeline repair control is performed according to the parameter comparison deviation. The plurality of pipeline operation and maintenance monitoring indicator sets are monitored based on the target pipeline BIM model, and operation and maintenance control is performed based on the monitoring result, which can improve the efficiency of mechanical and electrical comprehensive pipeline operation and maintenance supervision.

[0062] The method provided in the embodiments of the present disclosure further includes:

[0063] Parameter comparison is performed on the plurality of calibration indicator parameters and the plurality of pipeline operation indicator parameter sets based on the first mapping result and the second mapping result, and parameter comparison deviation is obtained.

[0064] If the parameter comparison deviation is greater than or equal to a predetermined deviation threshold, a first reminder information is generated, which carries the deviation position.

[0065] The first reminder information is sent to the operation and maintenance management personnel, and pipeline repair control is performed.

[0066] Specifically, parameter comparison is performed on the plurality of calibration indicator parameters and the plurality of pipeline operation indicator parameter sets based on the first mapping result and the second mapping result, and parameter comparison deviation is obtained. The parameter comparison deviation is the difference of the plurality of pipeline operation indicator parameter sets in the first mapping result and the second mapping result.

[0067] Further, if the parameter comparison deviation is greater than or equal to a predetermined deviation threshold, it indicates that the parameter comparison deviation is too large and needs to be repaired, and then a first reminder information is generated, which carries the deviation position.

[0068] Further, the first reminder information is sent to the operation and maintenance management personnel, and pipeline repair control is performed according to the parameter comparison deviation. The plurality of pipeline operation and maintenance monitoring indicator sets are monitored based on the target pipeline BIM model, and operation and maintenance control is performed based on the first mapping result and the second mapping result, which can improve the efficiency of mechanical and electrical comprehensive pipeline operation and maintenance supervision.

[0069] Embodiment two

[0070] Based on the same inventive concept as the BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision method in the foregoing embodiments, as shown inFigure 3 The system comprises a BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision system, which comprises:

[0071] a pipeline arrangement network diagram obtaining module 11, configured to obtain a pipeline arrangement network diagram of a target building, wherein the pipeline arrangement network diagram comprises pipeline type identifiers and arrangement position identifiers;

[0072] a target structure image data obtaining module 12, configured to collect structure image data of the target building by using an image sensor;

[0073] a first modeling information obtaining module 13, configured to perform building structure layout analysis by using the target structure image data, and obtain first modeling information, wherein the first modeling information comprises positions of a plurality of substructures;

[0074] a second modeling information obtaining module 14, configured to collect size information of the plurality of substructures by using the first modeling information as a reference, and obtain second modeling information;

[0075] a target pipeline BIM model obtaining module 15, configured to perform BIM modeling by using the first modeling information, the second modeling information, and the pipeline arrangement network diagram, and construct a target pipeline BIM model;

[0076] a pipeline operation and maintenance monitoring index set obtaining module 16, configured to obtain a plurality of pipeline operation and maintenance monitoring index sets by using the pipeline type identifiers;

[0077] an operation and maintenance control module 17, configured to perform pipeline monitoring based on the target pipeline BIM model by using the plurality of pipeline operation and maintenance monitoring index sets, and perform operation and maintenance control based on monitoring results.

[0078] Further, the system further comprises:

[0079] a historical power consumption information obtaining module, configured to obtain a pipeline type set in the target building;

[0080] a pipeline arrangement design drawing set obtaining module, configured to call a pipeline arrangement design drawing set of the target building by using the pipeline type set;

[0081] An arrangement position identification module is configured to extract and fuse arrangement lines of multiple types of pipelines based on the pipeline arrangement design drawing set, to obtain the pipeline arrangement network diagram, and to identify pipeline types and arrangement positions based on the pipeline type set and the arrangement lines.

[0082] Further, the system further comprises:

[0083] A first building model construction module is configured to construct a first building model of the target building by performing BIM modeling based on the first modeling information and the second modeling information.

[0084] A target pipeline BIM model obtaining module is configured to fuse the pipeline arrangement network diagram to the first building model based on the arrangement position identification, to obtain a target pipeline BIM model.

[0085] Further, the system further comprises:

[0086] A first correspondence obtaining module is configured to obtain a pipeline type sample set and a pipeline monitoring index sample set based on data mining, and the pipeline type sample set and the pipeline monitoring index sample set have a first correspondence.

[0087] A pipeline-index mapping database construction module is configured to construct a pipeline-index mapping database based on the first correspondence, the pipeline type sample set, and the pipeline monitoring index sample set.

[0088] A plurality of pipeline operation and maintenance monitoring index set obtaining module is configured to perform index matching based on the pipeline type identification and the pipeline-index mapping database, to obtain the plurality of pipeline operation and maintenance monitoring index set.

[0089] Further, the system further comprises:

[0090] A first mapping result obtaining module is configured to configure a plurality of calibration index parameters based on the plurality of pipeline operation and maintenance monitoring index set and to map the plurality of calibration index parameters to the target pipeline BIM model, to obtain a first mapping result.

[0091] A plurality of pipeline operation index parameter set obtaining module is configured to perform pipeline operation parameter collection based on the plurality of pipeline operation and maintenance monitoring index set, to obtain a plurality of pipeline operation index parameter set.

[0092] a second mapping result obtaining module, configured to map the plurality of pipeline operation index parameter sets to the target pipeline BIM model according to the collection positions, and obtain a second mapping result;

[0093] a pipeline comprehensive operation and maintenance control module, configured to perform pipeline comprehensive operation and maintenance control based on the target pipeline BIM model, the first mapping result and the second mapping result.

[0094] Further, the system further comprises:

[0095] a parameter comparison deviation obtaining module, configured to perform parameter comparison on the plurality of calibration index parameters and the plurality of pipeline operation index parameter sets based on the first mapping result and the second mapping result, and obtain a parameter comparison deviation;

[0096] a first reminding information obtaining module, configured to generate first reminding information if the parameter comparison deviation is greater than or equal to a predetermined deviation threshold, the first reminding information carrying a deviation position;

[0097] a pipeline maintenance control module, configured to send the first reminding information to an operation and maintenance management personnel, and perform pipeline maintenance control.

[0098] The foregoing embodiment one kind of BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision method specific example is also applicable to the embodiment one kind of BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision system, through the foregoing detailed description of one kind of BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision method, those skilled in the art can clearly know the embodiment one kind of BIM-based mechanical and electrical comprehensive pipeline operation and maintenance supervision system, so as to make the description simple, here will not be detailed. For the device disclosed in the embodiment, since it corresponds to the method disclosed in the embodiment, it is described simply, and the related part is referred to the method part description.

[0099] Embodiment three

[0100] Figure 4 is according to the third embodiment of the present disclosure, as shown in Figure 4 The computer device 100 in the present disclosure can include a processor 101 and a memory 102.

[0101] The memory 102 is configured to store programs. The memory 102 can include volatile memory (for example, random-access memory (RAM), such as static random-access memory (SRAM), Double Data Rate Synchronous Dynamic Random Access Memory (DDR SDRAM), etc.), and / or non-volatile memory (for example, flash memory). The memory 102 is configured to store computer programs (for example, application programs, functional modules, etc. for implementing the above method), computer instructions, etc. The computer programs, computer instructions, etc. described above can be stored in one or more memories 102 in a partitioned manner. The computer programs, computer instructions, etc. described above can be invoked by the processor 101.

[0102] The computer programs, computer instructions, etc. described above can be stored in one or more memories 102 in a partitioned manner. The computer programs, computer instructions, etc. described above can be invoked by the processor 101.

[0103] The processor 101 is configured to execute the computer programs stored in the memory 102, so as to implement each step in the method described in the above embodiments.

[0104] For details, refer to the related description in the above method embodiments.

[0105] The processor 101 and the memory 102 can be an independent structure, or an integrated structure. When the processor 101 and the memory 102 are independent structures, the memory 102 and the processor 101 can be coupled and connected through the bus 103.

[0106] The computer device of the embodiment can execute the technical solutions in the above method, and the specific implementation process and technical principles are the same, which will not be repeated here.

[0107] According to the embodiments of the present disclosure, the present disclosure further provides a computer readable storage medium, and the computer readable storage medium stores a computer program. When the computer program is executed, the steps provided in any of the above embodiments are implemented.

[0108] It should be understood that the various forms of flow shown above can be used to reorder, add, or remove steps. For example, the steps described in the present disclosure can be performed in parallel, in series, or in a different order, as long as the desired results of the present disclosure are achieved, which is not limited herein.

[0109] The above detailed description does not constitute a limitation on the protection scope of the present disclosure. Those skilled in the art should understand that various modifications, combinations and substitutions can be made according to design requirements and other factors. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present disclosure shall be included in the protection scope of the present disclosure.

Claims

1. A method for operation and maintenance supervision of electromechanical integrated pipelines combined with BIM, characterized in that: The method comprises: Obtaining a pipeline layout network diagram of a target building, wherein the pipeline layout network diagram has pipeline type identifiers and layout position identifiers; Acquire a structural image of the target building by an image sensor to obtain target structural image data; Performing a building structure layout analysis using the target structure image data to obtain first modeling information, wherein the first modeling information includes positions of a plurality of substructures; Using the first modeling information as a reference, collecting and acquiring size information of the plurality of substructures to obtain second modeling information; Performing BIM modeling using the first modeling information, the second modeling information, and a pipeline layout network diagram to construct a target pipeline BIM model; Obtaining a plurality of pipeline operation and maintenance monitoring indicator sets using the pipeline type identifier; Pipeline monitoring is performed based on the target pipeline BIM model using the multiple pipeline operation and maintenance monitoring indicator sets, and operation and maintenance management is performed based on the monitoring results.

2. The method according to claim 1, wherein The step of obtaining a pipeline layout network diagram of a target building includes: Obtaining a pipeline type set in the target building; Retrieving a pipeline layout design drawing set of the target building using the pipeline type set; The pipeline arrangement design drawing set is used to extract and merge the arrangement routes of multiple types of pipelines to obtain the pipeline arrangement network diagram, and the pipeline type identification and arrangement position identification are performed based on the pipeline type set and the arrangement route.

3. The method according to claim 1, wherein The performing BIM modeling based on the first modeling information, the second modeling information, and the pipeline arrangement network diagram to construct a target pipeline BIM model includes: Performing BIM modeling using the first modeling information and the second modeling information to construct a first building model of the target building; The pipeline arrangement network diagram is integrated into the first building model based on the arrangement position identifier to obtain a target pipeline BIM model.

4. The method according to claim 1, wherein The obtaining of a plurality of pipeline operation and maintenance monitoring indicator sets using the pipeline type identifier includes: Acquire a pipeline type sample set and a pipeline monitoring indicator sample set based on data mining, wherein the pipeline type sample set and the pipeline monitoring indicator sample set have a first corresponding relationship; Based on the first corresponding relationship, constructing a pipeline-indicator mapping database with the pipeline type sample set and the pipeline monitoring indicator sample set; Indicator matching is performed according to the pipeline type identifier and the pipeline-indicator mapping database to obtain the multiple pipeline operation and maintenance monitoring indicator sets.

5. The method according to claim 1, wherein The pipeline monitoring is performed based on the target pipeline BIM model using the multiple pipeline operation and maintenance monitoring indicator sets, and operation and maintenance management is performed based on the monitoring results, including: Configuring multiple calibration indicator parameters based on the multiple pipeline operation and maintenance monitoring indicator sets and mapping them to the target pipeline BIM model to obtain a first mapping result; Collecting pipeline operation parameters based on the multiple pipeline operation and maintenance monitoring indicator sets to obtain multiple pipeline operation indicator parameter sets; Mapping the multiple pipeline operation indicator parameter sets to the target pipeline BIM model according to the collection locations to obtain a second mapping result; Based on the target pipeline BIM model, comprehensive pipeline operation and maintenance management and control are performed using the first mapping result and the second mapping result.

6. The method according to claim 5, wherein The performing pipeline integrated operation and maintenance management and control based on the target pipeline BIM model and using the first mapping result and the second mapping result includes: Performing parameter comparison on the plurality of calibration index parameters and the plurality of pipeline operation index parameter sets based on the first mapping result and the second mapping result to obtain a parameter comparison deviation; If the parameter comparison deviation is greater than or equal to a predetermined deviation threshold, a first reminder message is generated, wherein the first reminder message carries a deviation position; The first reminder information is sent to the operation and maintenance management personnel for pipeline maintenance control.

7. A BIM-based electromechanical integrated pipeline operation and maintenance supervision system, characterized by: A method for monitoring and controlling operation and maintenance of electromechanical integrated pipelines combined with BIM according to any one of claims 1 to 6, the system comprising: A pipeline arrangement network diagram acquisition module, wherein the pipeline arrangement network diagram acquisition module is used to obtain a pipeline arrangement network diagram of a target building, wherein the pipeline arrangement network diagram has a pipeline type identifier and an arrangement position identifier; a target structure image data acquisition module, the target structure image data acquisition module being used to acquire a structural image of the target building through an image sensor to obtain target structure image data; a first modeling information obtaining module, configured to perform a building structure layout analysis using the target structure image data to obtain first modeling information, wherein the first modeling information includes positions of a plurality of substructures; a second modeling information obtaining module, configured to acquire size information of the plurality of substructures using the first modeling information as a reference to obtain second modeling information; A target pipeline BIM model acquisition module is used to perform BIM modeling using the first modeling information, the second modeling information, and a pipeline layout network diagram to construct a target pipeline BIM model; A pipeline operation and maintenance monitoring indicator set acquisition module, the pipeline operation and maintenance monitoring indicator set acquisition module is used to obtain multiple pipeline operation and maintenance monitoring indicator sets according to the pipeline type identifier; An operation and maintenance control module is used to perform pipeline monitoring based on the target pipeline BIM model using the multiple pipeline operation and maintenance monitoring indicator sets, and perform operation and maintenance control based on the monitoring results.

8. A computer device comprising a memory and a processor, wherein the memory stores a computer program, wherein: When the processor executes the computer program, the steps of the method according to any one of claims 1 to 6 are implemented.

9. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the steps of the method according to any one of claims 1 to 6 are implemented.

Citation Information

Patent Citations

  • Underground pipeline three-dimensional visual modeling method based on GIS and BIM

    CN116628910A

  • Online mapping method and system for health monitoring data of cable-stayed bridge

    CN118568825A

  • Three-dimensional positioning method and system for defects of hydropower station unit equipment

    CN118799495A

  • Optimization method and system for electromechanical comprehensive pipeline arrangement

    CN119089612A

  • Existing building information model reconstruction method based on image target detection and unmanned aerial vehicle

    CN119600224A