Capturing the spatial and operational interdependencies among building systems using building information modelling

被引:3
作者
Atef, Ahmed [1 ]
Bristow, David [1 ]
机构
[1] Univ Victoria, Cities & Infrastruct Syst Lab, Dept Civil Engn, Victoria, BC, Canada
关键词
Risk assessment; building information modelling; building systems; spatial interdependency; operational interdependency; hydroelectric power plant; CRITICAL INFRASTRUCTURE; BIM; VISUALIZATION; SUPPORT; INOPERABILITY; EFFICIENCY; FRAMEWORK; DESIGN;
D O I
10.1080/15732479.2019.1636285
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper presents a novel methodology for extracting interdependencies among building systems and components in order to understand how the effect of a hazard or failure can cascade across building systems and components. The methodology is composed of two parts: (1) a spatial interdependency algorithm and (2) an operational interdependency algorithm. The spatial algorithm separates a building into spaces and then extracts all of the building elements in each space. The extracted elements are clustered into five domain specific groups; architectural, structural, mechanical, electrical, and plumbing systems. After locating the elements within each space, the operational algorithm extracts functional interdependency relationships across the different building systems to link the building spaces to their functional dependencies. Subsequently the resulting spatial and operational model is useful for assessing the propagation of failure through the building's operation. A case study using a hydroelectric power plant is used to demonstrate the methodology. The risk analysis clustered building elements into five groups where the first group holds the most critical elements and the fifth group holds the least critical elements. Due to flooding, the production of electricity becomes endangered because of the growth in risk exposure of the turbine and connected electrical units.
引用
收藏
页码:1613 / 1629
页数:17
相关论文
共 44 条
[1]  
Akinci B., 2003, Construction Research Congress 2003, P1, DOI [DOI 10.1061/40671, 10.1061/40671(2003)116, DOI 10.1061/40671(2003)116]
[2]   A BIM-GIS integration method in support of the assessment and 3D visualisation of flood damage to a building [J].
Amirebrahimi, Sam ;
Rajabifard, Abbas ;
Mendis, Priyan ;
Tuan Ngo .
JOURNAL OF SPATIAL SCIENCE, 2016, 61 (02) :317-350
[3]  
Asen Y, 2012, THESIS
[4]  
Atef A., 2017, 2017 CAN SOC CIV ENG
[5]  
Atef A, 2015, THESIS
[6]   How to measure the benefits of BIM - A case study approach [J].
Barlish, Kristen ;
Sullivan, Kenneth .
AUTOMATION IN CONSTRUCTION, 2012, 24 :149-159
[7]  
Bristow D, 2016, BUILDING INFORM MODE, P1
[8]   Graph Model for Probabilistic Resilience and Recovery Planning of Multi-Infrastructure Systems [J].
Bristow, David N. ;
Hay, Alexander H. .
JOURNAL OF INFRASTRUCTURE SYSTEMS, 2017, 23 (03)
[9]   The project benefits of Building Information Modelling (BIM) [J].
Bryde, David ;
Broquetas, Marti ;
Volm, Juergen Marc .
INTERNATIONAL JOURNAL OF PROJECT MANAGEMENT, 2013, 31 (07) :971-980
[10]   Four-dimensional visualization of construction scheduling and site utilization [J].
Chau, KW ;
Anson, M ;
Zhang, JP .
JOURNAL OF CONSTRUCTION ENGINEERING AND MANAGEMENT, 2004, 130 (04) :598-606