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Research Article

Modelling of a thermally activated building system (TABS) combined with free-hanging acoustic ceiling units using computational fluid dynamics (CFD)

Department of Civil Engineering, Technical University of Denmark, Brovej 118, DK-2800 Kgs. Lyngby, Denmark
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Abstract

Thermally Activated Building Systems (TABS) have proven to be an energy-efficient solution to achieve optimal indoor thermal environment in buildings. This solution uses the building mass to store heat and by means of water pipes embedded in the concrete slabs adjust the temperature in the premises. The active surfaces of TABS need to be as exposed as possible, but exposing bare concrete surfaces has a negative impact on the acoustic quality in the premises. Acoustic solutions capable of providing optimal acoustic comfort while allowing the heat exchange between the TABS and the room are desirable. This study focuses on the influence of two types of free-hanging ceiling absorbers (horizontal and vertical) on the cooling performance of the TABS. Different scenarios are investigated for each type of sound absorber. Computational Fluid Dynamics (CFD) simulations are used to illuminate the nature of the heat exchange between the TABS and the room and the occupants. The simulations are validated by comparison with full scale measurements in laboratory conditions. The study shows that for equivalent sound absorption levels, free-hanging vertical sound absorbers have a lower impact on the heat exchange between the room and the TABS compared to free-hanging horizontal sound absorbers. Cold air stagnation between the sound absorber units and the TABS has been identified as the major cause of the cooling performance decrease of the TABS.

References

 
Ansys (2009a). ANSYS Fluent UDF Manual. Canonsburg, PA, USA.
 
Ansys (2009b). Meshing Help. Portal. Canonsburg, PA, USA.
 
J Babiak, BW Olesen, D Petráš (2009). Low temperature heating and high temperature cooling. Brussels: REHVA—Federation of European Heating, Ventilation and Air Conditioning Associations.
 
S Banbury, DC Berry (1998). Disruption of office-related tasks by speech and office noise. British Journal of Psychology, 89: 499–517.
 
M De Carli (2002). New Technologies in Radiant Heating and Cooling. PhD Thesis, University of Padova, Italy.
 
LM Domínguez (2016). Influence of acoustic ceiling units on the cooling performance of thermo-active building systems (TABS). Master Thesis, Technical University of Denmark, Denmark.
 
H Drotleff, R Wack, P Leistner, A Holm, M Ziegler, K Sedlbauer (2011). Integrated sound absorption in thermally activated concrete ceilings—Acoustic and thermal effectiveness of sound-absorber strips spaced at intervals. Bauphysik, 33: 274–286.
 
Ecophon (2015a). Ecophon Master MatrixTM Technical Datasheet. Hyllinge, Sweden: Ecophon.
 
Ecophon (2015b). Knowledge Guide. Sound Absorption—Free-Hanging Units vs. Full Ceiling. Hyllinge, Sweden: Ecophon.
 
EN ISO 7726 (2001). Ergonomics of the thermal environment— Instruments for measuring physical quantities. Brussels: European Committee for Standardization.
 
European Environment Agency (EEA) (2012). End-user GHG emissions from energy: Reallocation of emissions from energy industries to end users 2005–2010. EEA, Technical report No 18/2012, European Environment Agency.
 
HE Feustel, C Stetiu (1995). Hydronic radiant cooling—Preliminary assessment. Energy and Buildings, 22:193–205.
 
OB Kazanci (2016). Low temperature heating and high temperature cooling in buildings. PhD Thesis. Technical University of Denmark, Denmark.
 
OB Kazanci, M Shukuya, BW Olesen (2016). Theoretical analysis of the performance of different cooling strategies with the concept of cool exergy. Building and Environment, 100: 102–113.
 
N Langner, D Bewersdorff (2015). Thermal and acoustical simulation of open space working areas in commercial buildings equipped with thermally activated building systems. In: Proceedings of the 14th International IBPSA Building Simulation Conference, Hyderabad, India.
 
B Lehmann, V Dorer, M Koschenz (2007). Application range of thermally activated building systems tabs. Energy and Buildings, 39: 593–598.
 
P Lombard (2014). Measure and model of free hanging sound absorbers impact on thermal comfort. In: Proceedings of the 8th Windsor Conference: Counting the Cost of Comfort in a Changing World. Cumberland Lodge, UK.
 
R Machner (2015). Thermal comfort in office buildings in line with a new German acoustic guideline. Energy Procedia, 78: 2881–2886.
 
RA Meierhans (1993). Slab cooling and earth coupling. ASHRAE Transactions, 99(2): 511–518.
 
RA Meierhans (1996). Room air conditioning by means of overnight cooling of the concrete ceiling. ASHRAE Transactions, 102(1): 693–697.
 
RT Muehleisen (2010). Acoustics of green buildings. Journal of the Acoustical Society of America, 130(4): 2350–2350.
 
YL Muet, P Lombard (2015). Combining thermally activated cooling technology (TABS) and high acoustic demand: Acoustic and thermal results from field measurements. Part 2. In: Proceedings of the 10th European Congress and Exposition on Noise Control Engineering, Euronoise, Maastricht, the Netherlands.
 
YL Muet, H Peperkamp, R Machner (2013). Combining thermally activated cooling technology (TABS) and high acoustic demand: Acoustic and thermal results from field measurements. In: Proceedings of the 42nd International Congress and Exposition on Noise Control Engineering, Inter-Noise, Innsbruck, Austria.
 
B Olesen (2008). Radiant floor cooling systems. ASHRAE Journal, 50(9): 16–22.
 
BW Olesen (2000). Low temperature heating and high temperature cooling of buildings using hydronic surface systems. In: Proceedings of Healthy Buildings, Espoo, Finland, pp. 635–640.
 
BW Olesen (2012). Using building mass to heat and cool. ASHRAE Journal, 54(2): 44–52.
 
GK Pavlov (2014). Building thermal energy storage. PhD Thesis, Technical University of Denmark, Danmark.
 
H Peperkamp, M Vercammen (2009). Thermally activated concrete slabs and suspended ceilings. In: Proceedings of International Conference on Acoustics, NAG/DAGA. Rotterdam, the Netherlands.
 
Peutz (2013). Ecophon ceiling panels in relation to Thermally Activated Building Systems (TABS)—Climatic chamber test. Report number DB 2805-2E-RA-001. Mook: Peutz BV.
 
E Pittarello (2007). Influence of acoustical panels on cooling of thermo-active-building-systems (TABS). Master Thesis, Technical University of Denmark, Denmark.
 
N Rage, OB Kazanci, BW Olesen (2016a). Numerical simulation of the effects of hanging sound absorbers on TABS cooling performance. In: Proceedings of the 12th REHVA World Congress, CLIMA 2016, Aalborg, Denmark.
 
N Rage, OB Kazanci, BW Olesen (2016b). Validation of a numerical model of acoustic ceiling combined with TABS. In: Proceedings of the 12th REHVA World Congress, CLIMA 2016, Aalborg, Denmark.
 
K-N Rhee, BW Olesen, KW Kim (2017). Ten questions about radiant heating and cooling systems. Building and Environment, 112, 367–381.
 
S Ruud (2008). Testing of acoustic ceiling boards' influence on cooling capacity. Borås: SP Technical Research Institute of Sweden.
 
A Simone, BW Olesen, JL Stoops, AW Watkins (2013). Thermal comfort in commercial kitchens (RP-1469): Procedure and physical measurements (Part 1). HVAC & R Research, 19: 1001–1015.
 
C Stetiu (1999). Energy and peak power savings potential of radiant cooling systems in US commercial buildings. Energy and Buildings, 30: 127–138.
 
ML Vercammen (2015). Concrete core activation and suspended ceilings: Designing for comfort, energy efficiency and good acoustics. In: Proceedings of Healthy Buildings Europe 2015, Eindhoven, the Netherlands.
 
P Weitzmann, E Pittarello, BW Olesen (2008). The cooling capacity of the Thermo Active Building System combined with acoustic ceiling. In: Proceedings of the 8th symposium on Building Physics in the Nordic Countries, Copenhagen, Denmark.
Building Simulation
Pages 315-324
Cite this article:
Lacarte LMD, Fan J. Modelling of a thermally activated building system (TABS) combined with free-hanging acoustic ceiling units using computational fluid dynamics (CFD). Building Simulation, 2018, 11(2): 315-324. https://doi.org/10.1007/s12273-017-0392-x

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Received: 25 October 2016
Revised: 12 June 2017
Accepted: 15 June 2017
Published: 19 July 2017
© Tsinghua University Press and Springer-Verlag GmbH Germany 2017
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