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Erschienen in: Energy Efficiency 4/2017

12.12.2016 | Original Article

Analysis of exergy demand for air heating of an air handling unit

verfasst von: Violeta Misevičiūtė, Kęstutis Valančius, Violeta Motuzienė, Genrika Rynkun

Erschienen in: Energy Efficiency | Ausgabe 4/2017

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Abstract

In modern buildings, an increasing amount of the consumed energy falls on ventilation systems. The amount of energy needed for ventilation depends on weather fluctuations, wind, interaction between natural gravity and air tightness of the building, heat exchangers used in ventilation systems, efficiency of other ventilation equipment, and operating mode of ventilation systems in the building. Ventilation systems are comprised of a variety of elements that facilitate processes using energy of different types. The main elements that use energy in ventilation systems are fans, heat exchangers, and heaters. They have a significant effect on both energy needs of a public building and the exergy efficiency of a system. In order to achieve a more efficient use of exergy in heat exchangers, it is recommended to execute processes under as little temperature difference as possible; however, this increases the area of heat exchangers. Results of the analysis show that it is recommended to design ventilation systems based on the temperature that corresponds with the maximum demand of exergy in order to use the heat recovery unit as much as possible in the system.

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Literatur
Zurück zum Zitat Avgelis, A., & Papadopoulos, A. M. (2009). Application of multicriteria analysis in designing HVAC systems. Energy and Buildings, 41(7), 774–780.CrossRef Avgelis, A., & Papadopoulos, A. M. (2009). Application of multicriteria analysis in designing HVAC systems. Energy and Buildings, 41(7), 774–780.CrossRef
Zurück zum Zitat EU. (2010). Directive 2010/31/EU of the European Parliament and of the Council of 19 May 2010 on the Energy Performance of Buildings (recast). EU. (2010). Directive 2010/31/EU of the European Parliament and of the Council of 19 May 2010 on the Energy Performance of Buildings (recast).
Zurück zum Zitat Gonçalves, P., Gaspar, A. R., & Gameiro Da Silva, M. (2013). Comparative energy and exergy performance of heating options in buildings under different climatic conditions. Energy and Buildings, 61, 288–297.CrossRef Gonçalves, P., Gaspar, A. R., & Gameiro Da Silva, M. (2013). Comparative energy and exergy performance of heating options in buildings under different climatic conditions. Energy and Buildings, 61, 288–297.CrossRef
Zurück zum Zitat Harvey, L., & Danny, D. (2009). Reducing energy use in the buildings sector: measures, costs, and examples. Energy Efficiency, 2(2), 139–163.CrossRef Harvey, L., & Danny, D. (2009). Reducing energy use in the buildings sector: measures, costs, and examples. Energy Efficiency, 2(2), 139–163.CrossRef
Zurück zum Zitat Incropera, F. P., Dewitt, D. P. (2002). Introduction to heat transfer (4th edn.). John Wiley & Sons, pp. 723–729. Incropera, F. P., Dewitt, D. P. (2002). Introduction to heat transfer (4th edn.). John Wiley & Sons, pp. 723–729.
Zurück zum Zitat Janna, W. S. (2000). Engineering heat transfer (Second ed.). Boca Raton: CRC Press.MATH Janna, W. S. (2000). Engineering heat transfer (Second ed.). Boca Raton: CRC Press.MATH
Zurück zum Zitat Jansen, S. C., Terés-Zubiaga, J., & Luscuere, P. G. (2012). The exergy approach for evaluating and developing an energy system for a social dwelling. Energy and Buildings, 55, 693–703.CrossRef Jansen, S. C., Terés-Zubiaga, J., & Luscuere, P. G. (2012). The exergy approach for evaluating and developing an energy system for a social dwelling. Energy and Buildings, 55, 693–703.CrossRef
Zurück zum Zitat Jonsson, D. K., et al. (2011). Energy at your service: highlighting energy usage systems in the context of energy efficiency analysis. Energy Efficiency, 4(3), 355–369.CrossRef Jonsson, D. K., et al. (2011). Energy at your service: highlighting energy usage systems in the context of energy efficiency analysis. Energy Efficiency, 4(3), 355–369.CrossRef
Zurück zum Zitat Kofoworola, O. F., & Gheewala, S. H. (2009). Life cycle energy assessment of a typical office building in Thailand. Energy and Buildings, 41(10), 1076–1083.CrossRef Kofoworola, O. F., & Gheewala, S. H. (2009). Life cycle energy assessment of a typical office building in Thailand. Energy and Buildings, 41(10), 1076–1083.CrossRef
Zurück zum Zitat Laustsen, J. (2008). Energy efficiency requirements in building codes, energy efficiency policies for new buildings. Paris. Laustsen, J. (2008). Energy efficiency requirements in building codes, energy efficiency policies for new buildings. Paris.
Zurück zum Zitat Laverge, J., & Janssens, A. (2012). Heat recovery ventilation operation traded off against natural and simple exhaust ventilation in Europe by primary energy factor, carbon dioxide emission, household consumer price and exergy. Energy & Buildings, 50, 315–323.CrossRef Laverge, J., & Janssens, A. (2012). Heat recovery ventilation operation traded off against natural and simple exhaust ventilation in Europe by primary energy factor, carbon dioxide emission, household consumer price and exergy. Energy & Buildings, 50, 315–323.CrossRef
Zurück zum Zitat Martinaitis, V. and Streckiene, G. (2016). Concerning exergy efficiency evaluation of heat recovery exchangers for air handling units. International Journal of Exergy x(x). Martinaitis, V. and Streckiene, G. (2016). Concerning exergy efficiency evaluation of heat recovery exchangers for air handling units. International Journal of Exergy x(x).
Zurück zum Zitat Martinaitis, V., Bieksa, D., & Miseviciute, V. (2010). Degree-days for the exergy analysis of buildings. Energy and Buildings, 42(7), 1063–1069.CrossRef Martinaitis, V., Bieksa, D., & Miseviciute, V. (2010). Degree-days for the exergy analysis of buildings. Energy and Buildings, 42(7), 1063–1069.CrossRef
Zurück zum Zitat Misevičiūtė, V. and Martinaitis, V. (2008). Dependence of exergy efficiency of recuperative heat exchanger on dimensionless temperature. Pp. 57–63 in Proceedings of The 5th conference of young scientists on energy issues (CYSENI 2008), held in Kaunas(Lithuania) on May 29, 2008. Kaunas: LEI. Misevičiūtė, V. and Martinaitis, V. (2008). Dependence of exergy efficiency of recuperative heat exchanger on dimensionless temperature. Pp. 57–63 in Proceedings of The 5th conference of young scientists on energy issues (CYSENI 2008), held in Kaunas(Lithuania) on May 29, 2008. Kaunas: LEI.
Zurück zum Zitat Mróz, T. M., & Dutka, A. (2015). Exergy–economic evaluation of heat recovery device in mechanical ventilation system. Energy and Buildings, 86, 296–304.CrossRef Mróz, T. M., & Dutka, A. (2015). Exergy–economic evaluation of heat recovery device in mechanical ventilation system. Energy and Buildings, 86, 296–304.CrossRef
Zurück zum Zitat Nikulshin, V., Wu, C., & Nikulshina, V. (2002). Exergy Efficiency Calculation of Energy Intensive Systems, 2, 78–86. Nikulshin, V., Wu, C., & Nikulshina, V. (2002). Exergy Efficiency Calculation of Energy Intensive Systems, 2, 78–86.
Zurück zum Zitat Nyman, M., & Simonson, C. J. (2005). Life cycle assessment of residential ventilation units in a cold climate. Building and Environment, 40(1), 15–27.CrossRef Nyman, M., & Simonson, C. J. (2005). Life cycle assessment of residential ventilation units in a cold climate. Building and Environment, 40(1), 15–27.CrossRef
Zurück zum Zitat Parfentyeva, N., Samarin, O., Lushin, K., Paulauskaite, S. and Valancius, K. (2011). Temperature efficiency of rotary heat recovery units in ventilation and air conditioning. Pp. 799–801 in The 8th International Conference “Environmental Engineering”, May 19–20, 2011. Vilnius: Vilnius Gediminas Technical University. Parfentyeva, N., Samarin, O., Lushin, K., Paulauskaite, S. and Valancius, K. (2011). Temperature efficiency of rotary heat recovery units in ventilation and air conditioning. Pp. 799–801 in The 8th International Conference “Environmental Engineering”, May 19–20, 2011. Vilnius: Vilnius Gediminas Technical University.
Zurück zum Zitat Pavlovskaja, O. and Juodis, E. (2006). Extracted ventilation air heat recovery efficiency analysis (Šalinamo Vėdinimo Oro šilumos Atgavimo įrangos Efektyvumo Analizė). Pp. 81–87 in National scientific conference “Building Services” (“Pastatų inžinerinės sistemos”), held in Vilnius on 27–28 th May 2006., edited by Technika. Vilnius: Technika. Pavlovskaja, O. and Juodis, E. (2006). Extracted ventilation air heat recovery efficiency analysis (Šalinamo Vėdinimo Oro šilumos Atgavimo įrangos Efektyvumo Analizė). Pp. 81–87 in National scientific conference “Building Services” (“Pastatų inžinerinės sistemos”), held in Vilnius on 27–28 th May 2006., edited by Technika. Vilnius: Technika.
Zurück zum Zitat Pérez-Lombard, L., Ortiz, J., & Pout, C. (2008). A review on buildings energy consumption information. Energy and Buildings, 40(3), 394–398.CrossRef Pérez-Lombard, L., Ortiz, J., & Pout, C. (2008). A review on buildings energy consumption information. Energy and Buildings, 40(3), 394–398.CrossRef
Zurück zum Zitat Schmidt, D. (2009). Low exergy systems for high-performance buildings and communities. Energy and Buildings, 41(3), 331–336.CrossRef Schmidt, D. (2009). Low exergy systems for high-performance buildings and communities. Energy and Buildings, 41(3), 331–336.CrossRef
Zurück zum Zitat Torío, H., Angelotti, A., & Schmidt, D. (2009). Exergy analysis of renewable energy-based climatisation systems for buildings: a critical view. Energy and Buildings, 41(3), 248–271.CrossRef Torío, H., Angelotti, A., & Schmidt, D. (2009). Exergy analysis of renewable energy-based climatisation systems for buildings: a critical view. Energy and Buildings, 41(3), 248–271.CrossRef
Metadaten
Titel
Analysis of exergy demand for air heating of an air handling unit
verfasst von
Violeta Misevičiūtė
Kęstutis Valančius
Violeta Motuzienė
Genrika Rynkun
Publikationsdatum
12.12.2016
Verlag
Springer Netherlands
Erschienen in
Energy Efficiency / Ausgabe 4/2017
Print ISSN: 1570-646X
Elektronische ISSN: 1570-6478
DOI
https://doi.org/10.1007/s12053-016-9499-7

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