TY - JOUR
T1 - Modelling virtual sensors for real-time indoor comfort control
AU - Edtmayer, H.
AU - Brandl, D.
AU - Mach, T.
AU - Schlager, E.
AU - Gursch, H.
AU - Lugmair, M.
AU - Hochenauer, C.
N1 - Export Date: 14 December 2023
Correspondence Address: Edtmayer, H.; Institute of Thermal Engineering, Inffeldgasse 25b, Austria; email: [email protected]
Funding details: Austrian Federal Ministry of Economy, Family and Youth, BMWFJ
Funding details: Österreichische Forschungsförderungsgesellschaft, FFG
Funding details: Bundesministerium für Verkehr, Innovation und Technologie, BMVIT
Funding text 1: The Know-Center is funded within the Austrian COMET Program—Competence Centers for Excellent Technologies—under the auspices of the Austrian Federal Ministry of Transport, Innovation and Technology , the Austrian Federal Ministry of Economy, Family and Youth and by the State of Styria. COMET is managed by the Austrian Research Promotion Agency FFG.
Funding text 2: This work is part of the project “COMFORT - Comfort Orientated and Management Focused Operation of Room condiTions” (No. 867533) funded by the program ‘ICT of the Future’ (6th Call 2017) of the Austrian Research Promotion Agency (FFG) and the Austrian Ministry for Transport, Innovation and Technology (BMVIT).
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PY - 2023/5/15
Y1 - 2023/5/15
N2 - Increasing demands on indoor comfort in buildings and urgently needed energy efficiency measures require optimised HVAC systems in buildings. To achieve this, more extensive and accurate input data are required. This is difficult or impossible to accomplish with physical sensors. Virtual sensors, in turn, can provide these data; however, current virtual sensors are either too slow or too inaccurate to do so. The aim of our research was to develop a novel digital-twin workflow providing fast and accurate virtual sensors to solve this problem. To achieve a short calculation time and accurate virtual measurement results, we coupled a fast building energy simulation and an accurate computational fluid dynamics simulation. We used measurement data from a test facility as boundary conditions for the models and managed the coupling workflow with a customised simulation and data management interface. The corresponding simulation results were extracted for the defined virtual sensors and validated with measurement data from the test facility. In summary, the results showed that the total computation time of the coupled simulation was less than 10 min, compared to 20 h of the corresponding CFD models. At the same time, the accuracy of the simulation over five consecutive days was at a mean absolute error of 0.35 K for the indoor air temperature and at 1.2% for the relative humidity. This shows that the novel coupled digital-twin workflow for virtual sensors is fast and accurate enough to optimise HVAC control systems in buildings.
AB - Increasing demands on indoor comfort in buildings and urgently needed energy efficiency measures require optimised HVAC systems in buildings. To achieve this, more extensive and accurate input data are required. This is difficult or impossible to accomplish with physical sensors. Virtual sensors, in turn, can provide these data; however, current virtual sensors are either too slow or too inaccurate to do so. The aim of our research was to develop a novel digital-twin workflow providing fast and accurate virtual sensors to solve this problem. To achieve a short calculation time and accurate virtual measurement results, we coupled a fast building energy simulation and an accurate computational fluid dynamics simulation. We used measurement data from a test facility as boundary conditions for the models and managed the coupling workflow with a customised simulation and data management interface. The corresponding simulation results were extracted for the defined virtual sensors and validated with measurement data from the test facility. In summary, the results showed that the total computation time of the coupled simulation was less than 10 min, compared to 20 h of the corresponding CFD models. At the same time, the accuracy of the simulation over five consecutive days was at a mean absolute error of 0.35 K for the indoor air temperature and at 1.2% for the relative humidity. This shows that the novel coupled digital-twin workflow for virtual sensors is fast and accurate enough to optimise HVAC control systems in buildings.
KW - Building indoor comfort control
KW - Coupled real-time building simulation model
KW - Digital twin
KW - Model-based virtual sensors
KW - Buildings
KW - Computational fluid dynamics
KW - Energy efficiency
KW - Energy management systems
KW - HVAC
KW - Information management
KW - Building simulation model
KW - In-buildings
KW - Indoor comforts
KW - Model-based OPC
KW - Model-based virtual sensor
KW - Real- time
KW - Virtual sensor
KW - Work-flows
KW - Test facilities
UR - https://www.mendeley.com/catalogue/cb35c0b2-6a58-321f-ab5e-0c1bb4cc6210/
U2 - 10.1016/j.jobe.2023.106040
DO - 10.1016/j.jobe.2023.106040
M3 - Article
SN - 2352-7102
VL - 67
JO - J. Build. Eng.
JF - J. Build. Eng.
ER -