Efficient management and compliance check of HVAC information in the building design phase using Semantic Web technologies

被引:0
作者
Kucukavci, Ali [1 ,2 ]
Seidenschnur, Mikki [2 ]
Pauwels, Pieter [4 ]
Rasmussen, Mads Holten [3 ]
Hviid, Christian Anker [1 ]
机构
[1] Tech Univ Denmark, Dept Civil Engn, Copenhagen, Denmark
[2] Ramboll, Copenhagen, Denmark
[3] Niras, Allerod, Denmark
[4] Eindhoven Univ Technol, Dept Built Environm, Eindhoven, Netherlands
关键词
Building information modelling; Heating; Ventilation and Air Conditioning (HVAC); SHACL; Semantic Web technologies; Linked Data; compliance checking; SPARQL; DOMAIN-SPECIFIC LANGUAGE; REPRESENTATION; RULE; ONTOLOGY; SCHEMA; IFCOWL;
D O I
10.3233/SW-243595
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Several OWL ontologies have been developed for the AEC industry to manage domain-specific information, yet they often overlook the domain of building services and HVAC components. The Flow Systems Ontology was recently proposed to address this need, but it does not include HVAC components' size and capacity-related properties. Also, despite their strengths in representing domain-specific knowledge, ontologies cannot efficiently identify poor data quality in BIM models. A fourfold contribution is made in this research paper to define and improve the data quality of HVAC information by (1) extending the existing Flow Systems Ontology, (2) proposing the new Flow Properties Ontology, (3) proposing an HVAC rule set for compliance checking, and (4), moreover, we use Semantic Web technologies to demonstrate the benefits of efficient HVAC data management when sizing components. The demonstration case shows that we can represent the data model in a distributed way, validate it using 36 SHACL shapes and use SPARQL to determine the pressure and flow rate of fans and pumps.
引用
收藏
页码:1959 / 1989
页数:31
相关论文
共 68 条
[1]   Java']JavaScript Object Notation (JSON']JSON) data serialization for IFC schema in web-based BIM data exchange [J].
Afsari, Kereshmeh ;
Eastman, Charles M. ;
Castro-Lacouture, Daniel .
AUTOMATION IN CONSTRUCTION, 2017, 77 :24-51
[2]  
[Anonymous], 2011, Notation3 (N3): A readable RDF syntax
[3]  
ASHRAE Ashrae's BACnet Committee, 2018, Project Haystack and Brick Schema Collaborating to Provide Unified Data Semantic Modeling Solution
[4]   Brick : Metadata schema for portable smart building applications [J].
Balaji, Bharathan ;
Bhattacharya, Arka ;
Fierro, Gabriel ;
Gao, Jingkun ;
Gluck, Joshua ;
Hong, Dezhi ;
Johansen, Aslak ;
Koh, Jason ;
Ploennigs, Joern ;
Agarwal, Yuvraj ;
Berges, Mario ;
Culler, David ;
Gupta, Rajesh K. ;
Kjaergaard, Mikkel Baun ;
Srivastava, Mani ;
Whitehouse, Kamin .
APPLIED ENERGY, 2018, 226 :1273-1292
[5]  
Beach Thomas H., 2013, Database and Expert Systems Applications. 24th International Conference, DEXA 2013. Proceedings: LNCS 8055, P366, DOI 10.1007/978-3-642-40285-2_32
[6]   IfcOWL: A case of transforming EXPRESS schemas into ontologies [J].
Beetz, Jakob ;
Van Leeuwen, Jos ;
De Vries, Bauke .
AI EDAM-ARTIFICIAL INTELLIGENCE FOR ENGINEERING DESIGN ANALYSIS AND MANUFACTURING, 2009, 23 (01) :89-101
[7]  
Bonduel M., 2018, Towards a props ontology
[8]  
Chipman T., 2016, buildingsmart, CIBSE-Building Information Modelling
[9]   Created in Close Interaction with the Industry: The Smart Appliances REFerence (SAREF) Ontology [J].
Daniele, Laura ;
den Hartog, Frank ;
Roes, Jasper .
FORMAL ONTOLOGIES MEET INDUSTRY, FOMI 2015, 2015, 225 :100-112
[10]  
Debellis M., 2021, A Practical Guide to Building OWL Ontologies Using Protege 5.5 and Plugins