CN113360974A - Pipeline arrangement system and method based on BIM technology - Google Patents

Pipeline arrangement system and method based on BIM technology Download PDF

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Publication number
CN113360974A
CN113360974A CN202110586806.3A CN202110586806A CN113360974A CN 113360974 A CN113360974 A CN 113360974A CN 202110586806 A CN202110586806 A CN 202110586806A CN 113360974 A CN113360974 A CN 113360974A
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pipeline
pipeline arrangement
pipes
arrangement
bim
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Inventor
余少乐
陈新喜
亓立刚
潘钧俊
陈华
杨钦
慎旭双
张亚雯
张文莹
王俊佚
李赟
武念铎
万展君
孙晓阳
郭志鑫
金国栋
王碗
张朋
张双龙
陈星�
董俊杰
雷克
周军红
孙晓波
吴振东
蔡睿欣
蒋佳磊
杨鸿玉
李新齐
邓文超
崔一鹏
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China Construction Eighth Engineering Division Co Ltd
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China Construction Eighth Engineering Division Co Ltd
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/10Geometric CAD
    • G06F30/13Architectural design, e.g. computer-aided architectural design [CAAD] related to design of buildings, bridges, landscapes, production plants or roads
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
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    • G06F30/18Network design, e.g. design based on topological or interconnect aspects of utility systems, piping, heating ventilation air conditioning [HVAC] or cabling
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/20Design optimisation, verification or simulation
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06QINFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
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    • G06Q50/08Construction
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2113/00Details relating to the application field
    • G06F2113/14Pipes
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2113/00Details relating to the application field
    • G06F2113/16Cables, cable trees or wire harnesses

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Abstract

The invention relates to a pipeline arrangement system and method based on BIM technology, wherein the pipeline arrangement method comprises the following steps: s1, before pipeline pre-embedding construction, building to be subjected to pipeline arrangement is modeled by using BIM modeling software; s2, simulating pipeline arrangement in the building model according to the pipe design requirement; s3, counting the number of two-fold pipes and the number of three-fold pipes in the current simulated pipeline arrangement, and judging whether the number of the three-fold pipes is zero: if not, returning to the step S2; if yes, judging whether the number of the two stacked tubes is smaller than a preset number threshold: if not, returning to the step S2; if so, the currently simulated pipeline configuration is taken as the final pipeline configuration. The invention is based on BIM technology and matches with certain logic judgment, can deepen the pipelines on the flat plate, reduces two-fold pipes and avoids the phenomenon of three-fold pipes.

Description

Pipeline arrangement system and method based on BIM technology
Technical Field
The invention relates to the field of building pipeline construction, in particular to a pipeline arrangement system and method based on a BIM (building information modeling) technology.
Background
At present electromechanical spool's pre-buried mode all is pre-buried in the cast-in-place layer of superimposed sheet basically, has the truss muscle on the superimposed sheet, laying of spool need wear under the truss muscle, and the space of truss muscle to superimposed sheet face is limited, consequently, if the pipeline scheme of arranging is unreasonable, appears a large amount of two pile pipes or even the phenomenon of three pile pipes very easily, and in the work progress, when meetting two pile pipes and three pile pipe phenomena, adopt following mode to solve usually: 1. the pipeline is manually translated, and the mode is easy to solve the problems of primary collision and newly-increased secondary collision; 2. the mode of avoiding the pipeline from bending is adopted, and the mode easily causes the pipeline to bend too much, so that the workload and the material cost are increased. The mode not only has low construction efficiency and high construction cost, but also can not ensure the construction quality.
Therefore, an optimized pipeline arrangement scheme is very important, but the current pipeline arrangement scheme is usually obtained according to the design requirements of the piping and by combining construction experience, the collision condition of the global pipeline is difficult to control, and the phenomenon of two-fold pipes and three-fold pipes cannot be effectively reduced.
Disclosure of Invention
In order to solve the above problems, the present invention provides a pipeline arrangement system and method based on the BIM technology, which can deepen the arrangement of pipelines on a flat plate, reduce two-fold pipes and eliminate the three-fold pipe phenomenon based on the BIM technology and matching with certain logic judgment.
The invention is realized by the following scheme: a pipeline arrangement method based on BIM technology comprises the following steps:
s1, before pipeline pre-embedding construction, building to be subjected to pipeline arrangement is modeled by using BIM modeling software;
s2, simulating pipeline arrangement in the building model according to the pipe design requirement;
s3, counting the number of two-fold pipes and the number of three-fold pipes in the current simulated pipeline arrangement, and judging whether the number of the three-fold pipes is zero:
if not, returning to the step S2;
if yes, judging whether the number of the two stacked tubes is smaller than a preset number threshold:
if not, returning to the step S2;
if so, the currently simulated pipeline configuration is taken as the final pipeline configuration.
The BIM technology-based pipeline arrangement method is further improved in that after the final pipeline arrangement is determined, the number and the specification of pipeline simmered bends in the final pipeline arrangement are counted, and pipeline elbows are prefabricated according to the number and the specification of the pipeline simmered bends.
The pipeline arrangement method based on the BIM technology is further improved in that the BIM modeling software is REVIT software.
The invention also provides a pipeline arrangement system based on the BIM technology, which comprises:
BIM modeling software for modeling a building to be subjected to pipeline arrangement;
the pipeline arrangement module is used for randomly simulating pipeline arrangement in the building model according to the piping design requirement;
the first counting unit is used for counting the number of the two-fold pipes and the number of the three-fold pipes in the current simulated pipeline arrangement;
the first comparison unit is used for acquiring the number of the three stacked tubes and sending out a first signal when the number of the three stacked tubes is judged to be zero, and the first comparison unit is connected with the first statistic unit;
and the second comparison unit is used for acquiring the number of the two stacked pipes when receiving the first signal and sending a second signal for stopping the pipeline arrangement module from continuously simulating pipeline arrangement when judging that the number of the two stacked pipes is smaller than a preset number threshold value, and the second comparison unit is connected with the first statistic unit, the first comparison unit and the pipeline arrangement module.
The pipeline arrangement system based on the BIM technology is further improved by comprising a second statistical unit used for counting the number and specification of pipeline bends in the currently simulated pipeline arrangement and outputting the counted second signal when the second signal is received, wherein the second statistical unit is connected with the second comparison unit.
The pipeline arrangement system based on the BIM technology is further improved in that the BIM modeling software is REVIT software.
The present invention includes but is not limited to the following benefits:
1. based on the BIM technology and matched with certain logic judgment, the automatic optimization of pipeline arrangement can be realized, two-fold pipes are reduced, the phenomenon of three-fold pipes is avoided, the construction efficiency is improved, the construction cost is reduced, and the construction quality is ensured.
2. Through right the statistics of quantity and the specification of pipeline bending department in final pipeline arrangement, can utilize idle time prefabricated pipeline elbow in advance, the recruitment time of rational utilization reduces the work load at construction platform, has further improved the efficiency of construction, has reduced construction cost, and has guaranteed construction quality.
Drawings
FIG. 1 is a flow chart showing the pipeline arrangement method based on BIM technology.
FIG. 2 is a system block diagram of the BIM technology-based pipeline configuration system of the present invention.
Detailed Description
The invention provides a pipeline arrangement system and method based on a BIM technology, which can deepen the arrangement of pipelines on a flat plate, reduce two-fold pipes and eliminate the phenomenon of three-fold pipes by matching certain logic judgment based on the BIM technology.
The BIM-based pipeline arrangement system and method will be further described with reference to the accompanying drawings.
Referring to fig. 1, fig. 1 shows a flow chart of the pipeline arrangement method based on the BIM technology of the present invention. A pipeline arrangement method based on BIM technology comprises the following steps:
and step S1, before pipeline pre-burying construction, building to be subjected to pipeline arrangement is modeled by using BIM modeling software.
Step S2, according to the pipe design requirement, simulating the pipeline arrangement in the building model.
Step S3, counting the number of two-stack tubes and the number of three-stack tubes in the currently simulated pipeline layout, and determining whether the number of three-stack tubes is zero:
if not, returning to the step S2;
if yes, judging whether the number of the two stacked tubes is smaller than a preset number threshold:
if not, returning to the step S2;
if so, the currently simulated pipeline configuration is taken as the final pipeline configuration.
Specifically, the BIM modeling software is REVIT software, the piping design requirements include requirements for the number, specification, distribution range, maximum occupied space and the like of pipelines, the BIM modeling software needs to randomly simulate the pipeline arrangement on the premise of the piping design requirements, then the logic judgment is carried out after the pipeline arrangement is simulated each time until the final pipeline arrangement is determined, the automatic optimization of the pipeline arrangement is realized, two-fold pipes are reduced, the phenomenon of three-fold pipes is avoided, the construction efficiency is improved, the construction cost is reduced, and the construction quality is ensured.
As a preferred embodiment, after determining the final pipeline layout, statistics are performed on the number and specifications of the pipeline bends in the final pipeline layout, and pipeline elbows are prefabricated according to the number and specifications of the pipeline bends.
Through the improvement, the pipeline elbow can be prefabricated in advance by utilizing the idle time, the labor time is reasonably utilized, the workload on a construction platform is reduced, the construction efficiency is further improved, the construction cost is reduced, and the construction quality is ensured.
Referring to fig. 2, fig. 2 is a system block diagram of the pipeline arrangement system based on BIM technology according to the present invention. The invention also provides a pipeline arrangement system based on the BIM technology, which comprises:
BIM modeling software, preferably REVIT software, for modeling a building to be piped.
And the pipeline arrangement module is used for randomly simulating pipeline arrangement in the building model according to the piping design requirement.
And the first counting unit is used for counting the number of two-fold pipes and the number of three-fold pipes in the currently simulated pipeline arrangement.
And the first comparison unit is used for acquiring the number of the three stacked tubes and sending out a first signal when judging that the number of the three stacked tubes is zero, and the first comparison unit is connected with the first statistic unit.
And the second comparison unit is used for acquiring the number of the two stacked pipes when receiving the first signal and sending a second signal for stopping the pipeline arrangement module from continuously simulating pipeline arrangement when judging that the number of the two stacked pipes is smaller than a preset number threshold value, and the second comparison unit is connected with the first statistic unit, the first comparison unit and the pipeline arrangement module.
Specifically, the pipeline layout module, the first statistical unit, the first comparing unit, and the second comparing unit may be all built in the REVIT software in the form of plug-ins. By the pipeline arrangement system, the pipeline arrangement method can be realized.
As a preferred embodiment, the pipeline configuration system further includes a second statistical unit for counting and outputting the number and specification of the pipeline bends in the currently simulated pipeline configuration when receiving the second signal, and the second statistical unit is connected to the second comparing unit.
In particular, the second statistical unit may also be built into the REVIT software in the form of a plug-in. Through the setting of this second statistics unit, can realize arranging the statistics of quantity and the specification of bend department over a slow fire of pipeline in the arrangement of pipelines, the workman of being convenient for utilizes idle time prefabricated pipeline elbow in advance, and the work load at construction platform is reduced in the rational utilization recruitment time.
While the present invention has been described in detail and with reference to the embodiments thereof as illustrated in the accompanying drawings, it will be apparent to one skilled in the art that various changes and modifications can be made therein. Therefore, certain details of the embodiments are not to be interpreted as limiting, and the scope of the invention is to be determined by the appended claims.

Claims (6)

1. A pipeline arrangement method based on BIM technology is characterized by comprising the following steps:
s1, before pipeline pre-embedding construction, building to be subjected to pipeline arrangement is modeled by using BIM modeling software;
s2, simulating pipeline arrangement in the building model according to the pipe design requirement;
s3, counting the number of two-fold pipes and the number of three-fold pipes in the current simulated pipeline arrangement, and judging whether the number of the three-fold pipes is zero:
if not, returning to the step S2;
if yes, judging whether the number of the two stacked tubes is smaller than a preset number threshold:
if not, returning to the step S2;
if so, the currently simulated pipeline configuration is taken as the final pipeline configuration.
2. The BIM technology-based pipeline arranging method of claim 1, wherein after the final pipeline arrangement is determined, the number and specification of pipeline bends in the final pipeline arrangement are counted, and pipeline bends are prefabricated according to the number and specification of pipeline bends.
3. The BIM technology-based pipeline deployment method of claim 1, wherein the BIM modeling software is REVIT software.
4. A BIM technology-based pipeline arrangement system is characterized by comprising:
BIM modeling software for modeling a building to be subjected to pipeline arrangement;
the pipeline arrangement module is used for randomly simulating pipeline arrangement in the building model according to the piping design requirement;
the first counting unit is used for counting the number of the two-fold pipes and the number of the three-fold pipes in the current simulated pipeline arrangement;
the first comparison unit is used for acquiring the number of the three stacked tubes and sending out a first signal when the number of the three stacked tubes is judged to be zero, and the first comparison unit is connected with the first statistic unit;
and the second comparison unit is used for acquiring the number of the two stacked pipes when receiving the first signal and sending a second signal for stopping the pipeline arrangement module from continuously simulating pipeline arrangement when judging that the number of the two stacked pipes is smaller than a preset number threshold value, and the second comparison unit is connected with the first statistic unit, the first comparison unit and the pipeline arrangement module.
5. The BIM technology-based pipeline layout system of claim 4, further comprising a second statistical unit for counting and outputting the number and specification of pipeline bends in the currently simulated pipeline layout when the second signal is received, wherein the second statistical unit is connected to the second comparing unit.
6. The BIM technology-based pipelining system of claim 4, wherein the BIM modeling software is REVIT software.
CN202110586806.3A 2021-05-27 2021-05-27 Pipeline arrangement system and method based on BIM technology Pending CN113360974A (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113808258A (en) * 2021-09-18 2021-12-17 广东博意建筑设计院有限公司 Fine laying cooperative design method and system for electric conduit system in laminated slab
CN113971310A (en) * 2021-12-02 2022-01-25 三一筑工科技股份有限公司 Modeling method and device

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KR20190063317A (en) * 2017-11-29 2019-06-07 주식회사 타임텍 Method for modeling a pipe and record media recorded program realizing the same
CN110765515A (en) * 2019-09-27 2020-02-07 贵州百胜工程建设咨询有限公司 BIM-based pipe heald optimization method
CN110990918A (en) * 2019-11-22 2020-04-10 上海宝冶集团有限公司 Mountain building electromechanical pipeline construction method based on BIM
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113808258A (en) * 2021-09-18 2021-12-17 广东博意建筑设计院有限公司 Fine laying cooperative design method and system for electric conduit system in laminated slab
CN113971310A (en) * 2021-12-02 2022-01-25 三一筑工科技股份有限公司 Modeling method and device

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