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Erschienen in: Energy Efficiency 4/2010

01.11.2010

Energy efficiency and indoor thermal perception: a comparative study between radiant panel and portable convective heaters

verfasst von: Ahmed Hamza H. Ali, Mahmoud Gaber Morsy

Erschienen in: Energy Efficiency | Ausgabe 4/2010

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Abstract

This study investigates experimentally the thermal perception of indoor environment for evaluating the ability of radiant panel heaters to produce thermal comfort for space occupants as well as the energy consumption in comparison with conventional portable natural convective heaters. The thermal perception results show that, compared with conventional convection heater, a radiantly heated office room maintains a lower ambient air temperature while providing equal levels of thermal perception on the thermal dummy head as the convective heater and saves up to 39.1% of the energy consumption per day. However, for human subjects’ vote experiments, the results show that for an environmentally controlled test room at outdoor environment temperatures of 0°C and 5°C, using two radiant panel heaters with a total capacity of 580 W leads to a better comfort sensation than the conventional portable natural convective heater with a 670 W capacity, with an energy saving of about 13.4%. In addition, for an outdoor environment temperature of 10°C, using one radiant panel heater with a capacity of 290 W leads to a better comfort sensation than the conventional convection heater with a 670 W capacity, with an energy saving of about 56.7%. From the analytical results, it is found that distributing the radiant panel heater inside the office room, one on the wall facing the window and the other on the wall close to the window, provides the best operative temperature distribution within the room.

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Literatur
Zurück zum Zitat Ali, A., Ahmed Hamza, H., Morsy, MG., Taha, IS., Hamza, M. (2007). Experimental investigation of comfort sensation and performance of radiant heating panel compared with conventional oil heater. Proc 3rd Int Conf Therm Eng (ICTEA7) Theory and Applications, Amman, Jordan, 635–640. Ali, A., Ahmed Hamza, H., Morsy, MG., Taha, IS., Hamza, M. (2007). Experimental investigation of comfort sensation and performance of radiant heating panel compared with conventional oil heater. Proc 3rd Int Conf Therm Eng (ICTEA7) Theory and Applications, Amman, Jordan, 635–640.
Zurück zum Zitat ANSI/ASHRAE Standard 55. (1992). Thermal environmental conditions for human occupancy. Atlanta: American Society of Heating Refrigerating and Air-Conditioning Engineers. ANSI/ASHRAE Standard 55. (1992). Thermal environmental conditions for human occupancy. Atlanta: American Society of Heating Refrigerating and Air-Conditioning Engineers.
Zurück zum Zitat Ardehali, M. M., Panah, N. G., & Smith, T. F. (2004). Proof of concept modeling of energy transfer mechanisms for radiant conditioning panels. Energy Conversion and Management, 45, 2005–2017.CrossRef Ardehali, M. M., Panah, N. G., & Smith, T. F. (2004). Proof of concept modeling of energy transfer mechanisms for radiant conditioning panels. Energy Conversion and Management, 45, 2005–2017.CrossRef
Zurück zum Zitat ASHRAE. (2004). HVAC applications handbook, panel heating and cooling, chap.6. Atlanta: American Society of Heating Refrigerating and Air-Conditioning Engineers. ASHRAE. (2004). HVAC applications handbook, panel heating and cooling, chap.6. Atlanta: American Society of Heating Refrigerating and Air-Conditioning Engineers.
Zurück zum Zitat ASHRAE. (2005). Fundamentals handbook, thermal comfort, chap.8. Atlanta: American Society of Heating Refrigerating and Air-Conditioning Engineers. ASHRAE. (2005). Fundamentals handbook, thermal comfort, chap.8. Atlanta: American Society of Heating Refrigerating and Air-Conditioning Engineers.
Zurück zum Zitat Baskin, E. (2003). Residential radiant cooling and heating assessment. Project 4.3.6a, final report (p. 22). Tennessee: Oak Ridge National Laboratory. Baskin, E. (2003). Residential radiant cooling and heating assessment. Project 4.3.6a, final report (p. 22). Tennessee: Oak Ridge National Laboratory.
Zurück zum Zitat Chapman, K. S., & Zhang, P. (1995). Radiant heat exchange calculations in radiantly heated and cooled enclosures. ASHRAE Transactions, 101(1), 1236–1247. Chapman, K. S., & Zhang, P. (1995). Radiant heat exchange calculations in radiantly heated and cooled enclosures. ASHRAE Transactions, 101(1), 1236–1247.
Zurück zum Zitat Chapman, K. S., & Zhang, P. (1996). Energy transfer simulation for radiantly heated and cooled enclosures. ASHRAE Transactions, 102(1), 76–85. Chapman, K. S., & Zhang, P. (1996). Energy transfer simulation for radiantly heated and cooled enclosures. ASHRAE Transactions, 102(1), 76–85.
Zurück zum Zitat Chapman, K. S., DeGreef, J. M., & Watson, R. D. (1997). Thermal comfort analysis using BCAP for retrofitting a radiantly heated residence. ASHRAE Transactions, 103(1), 959–965. Chapman, K. S., DeGreef, J. M., & Watson, R. D. (1997). Thermal comfort analysis using BCAP for retrofitting a radiantly heated residence. ASHRAE Transactions, 103(1), 959–965.
Zurück zum Zitat Chapman, K. S., & DeGreef, J. M. (1997). Design factor development to obtain thermal comfort with combined radiant and convective in-space heating and cooling systems. Final report of ASHRAE Project RP-907. Atlanta: ASHRAE. Chapman, K. S., & DeGreef, J. M. (1997). Design factor development to obtain thermal comfort with combined radiant and convective in-space heating and cooling systems. Final report of ASHRAE Project RP-907. Atlanta: ASHRAE.
Zurück zum Zitat DeGreef, J., & Chapman, K. S. (1998). Simplified thermal comfort evaluation of MRT gradients and power consumption predicted with the BCAP methodology. ASHRAE Transactions, 104(1), 1090–1097. DeGreef, J., & Chapman, K. S. (1998). Simplified thermal comfort evaluation of MRT gradients and power consumption predicted with the BCAP methodology. ASHRAE Transactions, 104(1), 1090–1097.
Zurück zum Zitat Hanibuchi, H., & Hokoi, S. (2000). Simplified method of estimating efficiency of radiant and convective heating systems. ASHRAE Transactions, 106(1), 487–494. Hanibuchi, H., & Hokoi, S. (2000). Simplified method of estimating efficiency of radiant and convective heating systems. ASHRAE Transactions, 106(1), 487–494.
Zurück zum Zitat Howell, J. R. (2001). A catalog of radiation heat transfer configuration factors. In R. Siegel & J. R. Howell (Eds.), Thermal radiation heat transfer (4th ed.). New York: Taylor and Francis. Howell, J. R. (2001). A catalog of radiation heat transfer configuration factors. In R. Siegel & J. R. Howell (Eds.), Thermal radiation heat transfer (4th ed.). New York: Taylor and Francis.
Zurück zum Zitat Imanari, T., Omori, T., & Bogaki, K. (1999). Thermal comfort and energy consumption of the radiant ceiling panel system comparison with the conventional all-air system. Energy and Buildings, 30, 167–175.CrossRef Imanari, T., Omori, T., & Bogaki, K. (1999). Thermal comfort and energy consumption of the radiant ceiling panel system comparison with the conventional all-air system. Energy and Buildings, 30, 167–175.CrossRef
Zurück zum Zitat Jones, B. (1998). Radiant heat transfer between the human body and its surroundings. ASHRAE Transactions, 104(2), 1340–1349. Jones, B. (1998). Radiant heat transfer between the human body and its surroundings. ASHRAE Transactions, 104(2), 1340–1349.
Zurück zum Zitat Jones, B., Chapman, KS. (1994). Simplified method to factor mean radiant temperature (MRT) into building and hvac system design. Final Report of ASHRAE Research Project RP-657 Jones, B., Chapman, KS. (1994). Simplified method to factor mean radiant temperature (MRT) into building and hvac system design. Final Report of ASHRAE Research Project RP-657
Zurück zum Zitat Kalisperis, L. N., Steinman, M., & Summers, L. H. (1991). An energy evaluative comparison of a thermal comfort design model (pp. 611–618). Nice, France: Proc of BS’91. Kalisperis, L. N., Steinman, M., & Summers, L. H. (1991). An energy evaluative comparison of a thermal comfort design model (pp. 611–618). Nice, France: Proc of BS’91.
Zurück zum Zitat Laouadi, A. (2004). Development of a radiant heating and cooling model for building energy simulation software. Building and Environment, 39, 421–431.CrossRef Laouadi, A. (2004). Development of a radiant heating and cooling model for building energy simulation software. Building and Environment, 39, 421–431.CrossRef
Zurück zum Zitat Miriel, J., Serres, L., & Trombe, A. (2002). Radiant ceiling panel heating–cooling systems: experimental and simulated study of the performances, thermal comfort and energy consumptions. Applied Thermal Engineering, 22, 1861–1873.CrossRef Miriel, J., Serres, L., & Trombe, A. (2002). Radiant ceiling panel heating–cooling systems: experimental and simulated study of the performances, thermal comfort and energy consumptions. Applied Thermal Engineering, 22, 1861–1873.CrossRef
Zurück zum Zitat NAHB Research Center. (1994). Enerjoy case study, an evaluation of thermal comfort and energy consumption for the enerjoy radiant panel heating system. Final Report Project No. 4159 (p. 66). Upper Marlboro: NAHB. MD 20772. NAHB Research Center. (1994). Enerjoy case study, an evaluation of thermal comfort and energy consumption for the enerjoy radiant panel heating system. Final Report Project No. 4159 (p. 66). Upper Marlboro: NAHB. MD 20772.
Zurück zum Zitat Press, WH., Teukolsky, SA., Vetterling, WT., Flannery, BP. (1997). Numerical recipes in Fortran 77-the art of scientific computing. 2nd Ed, Vol 1 of FORTRAN Numerical Recipes, Press Syndicate of the University of Cambridge. Press, WH., Teukolsky, SA., Vetterling, WT., Flannery, BP. (1997). Numerical recipes in Fortran 77-the art of scientific computing. 2nd Ed, Vol 1 of FORTRAN Numerical Recipes, Press Syndicate of the University of Cambridge.
Zurück zum Zitat Scheatzle, D. G. (2003). Data set for validating simulation tools for radiant/convective systems. ASHRAE Transactions, 109(2), 557–571. Scheatzle, D. G. (2003). Data set for validating simulation tools for radiant/convective systems. ASHRAE Transactions, 109(2), 557–571.
Zurück zum Zitat Siegel, R., & Howell, J. R. (2001). Thermal radiation heat transfer (4th ed.). New York: Taylor and Francis. Siegel, R., & Howell, J. R. (2001). Thermal radiation heat transfer (4th ed.). New York: Taylor and Francis.
Zurück zum Zitat Strand, R. K., & Baumgartner, K. T. (2005). Modeling radiant heating and cooling systems: integration with a whole-building simulation program. Energy and Buildings, 37, 389–397.CrossRef Strand, R. K., & Baumgartner, K. T. (2005). Modeling radiant heating and cooling systems: integration with a whole-building simulation program. Energy and Buildings, 37, 389–397.CrossRef
Zurück zum Zitat Tassou, S. A., Xiang, W., & Kollokotroni, M. (2000). Church heating: numerical modelling and comparison between radiant and forced convection systems. ASHRAE Transactions, 106(1), 495–505. Tassou, S. A., Xiang, W., & Kollokotroni, M. (2000). Church heating: numerical modelling and comparison between radiant and forced convection systems. ASHRAE Transactions, 106(1), 495–505.
Zurück zum Zitat Wang, W., Chapman, K. S., & Keshavarz, A. (2005). Incorporate radiant heaters over 300°F into thermal comfort calculations using BCAP. ASHRAE Transactions, 111(1), 346–354. Wang, W., Chapman, K. S., & Keshavarz, A. (2005). Incorporate radiant heaters over 300°F into thermal comfort calculations using BCAP. ASHRAE Transactions, 111(1), 346–354.
Zurück zum Zitat Zmeureanu, R., Iliescu, S., Dauce, D., & Jacob, Y. (2003). Radiation from cold or warm windows: computer model development and experimental validation. Building and Environment, 38, 427–434.CrossRef Zmeureanu, R., Iliescu, S., Dauce, D., & Jacob, Y. (2003). Radiation from cold or warm windows: computer model development and experimental validation. Building and Environment, 38, 427–434.CrossRef
Metadaten
Titel
Energy efficiency and indoor thermal perception: a comparative study between radiant panel and portable convective heaters
verfasst von
Ahmed Hamza H. Ali
Mahmoud Gaber Morsy
Publikationsdatum
01.11.2010
Verlag
Springer Netherlands
Erschienen in
Energy Efficiency / Ausgabe 4/2010
Print ISSN: 1570-646X
Elektronische ISSN: 1570-6478
DOI
https://doi.org/10.1007/s12053-010-9077-3

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