THERMAL SCIENCE

International Scientific Journal

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Optimization and experimental validation of a natural convection space heater using the Peltier elements

ABSTRACT
In this paper an experimental analysis was done aiming at studying the possibility of applying Peltier thermoelectric modules for building heating, more precisely, the optimization of a heat exchanger was performed. The concept of the system was designed to work without freon and harmful impact on the environment. The paper aims to develop a detailed mathematical optimization model of the existing heat exchanger for space heating by natural convection. Based on the optimal model, the new aluminum heat exchanger was created. The experiment was designed so that the Peltier elements were positioned on the heat exchangers and the input current and temperatures were measured. Firstly, experimental measurements were performed for the existing commercial heat exchanger, and, then, measurements were repeated with a new optimal heat exchanger under the same conditions. The coefficient of performance of a space heating system using a Peltier thermoelectric generator has a low value if the system operates with natural convection and heat exchangers without optimal fin spacing. Optimizing the distance between the fins on the heat exchanger provides an increase in heat flow by convection almost up to ten times and the coefficient of performance increases more than three times. This work has mathematically and experimentally confirmed that there is optimal fin spacing for finned heat exchangers with natural convection.
KEYWORDS
PAPER SUBMITTED: 2023-04-04
PAPER REVISED: 2024-04-26
PAPER ACCEPTED: 2024-10-17
PUBLISHED ONLINE: 2024-12-07
DOI REFERENCE: https://doi.org/10.2298/TSCI230404256P
REFERENCES
  1. Antonik, M., et al., Performance and Design Comparison of a Bulk Thermoelectric Cooler With a Hybrid Architecture, Journal of Thermal Science and Engineering Applications, 8 (2016), 2
  2. Ma, T., et al., A Review on Thermoelectric-Hydraulic Performance and Heat Transfer Enhancement Technologies of Thermoelectric Power Generator System, Thermal Science, 22 (2018), 5, pp. 1885-1903
  3. Xiao, G.-Q., et al., Coupled Simulation of a Thermoelectric Generator Applied in Diesel Engine Exhaust Waste Heat Recovery, Thermal Science, 24 (2020), 1A, pp. 281-292
  4. Ma, X., et al., Building Integrated Thermoelectric Air Conditioners-A Potentially Fully Environmentally Friendly Solution in Building Services, Future Cities and Environment, 5 (2019), pp. 12
  5. Gondal, I.A., Design and experimental analysis of a solar thermoelectric heating, ventilation, and air conditioning system as an integral element of a building envelope, Building Services Engineering Research and Technology, 40 (2018), 2, pp. 220-236
  6. Abbas, Z., et al., Performance evaluation of novel solar-powered domestic air cooler with Peltier modules, Journal of Mechanical Science and Technology, 34 (2020), 11, pp. 4797-4807
  7. Luo, Y., et al., Dynamical simulation of building integrated photovoltaic thermoelectric wall system: Balancing calculation speed and accuracy, Applied Energy, 3 (2017)
  8. Liu, Z., et al., Experimental evaluation of a solar thermoelectric cooled ceiling combined with displacement ventilation system, Energy Conversion and Management, 87 (2014), 1, pp. 559-565
  9. Irshad, K., et al., Study of thermoelectric and photovoltaic facade system for energy efficient building development: A review, Journal of Cleaner Production, 209 (2019), pp. 1376-1395
  10. Irshad, K., et al., Thermal comfort study of a building equipped with thermoelectric air duct system for tropical climate, Applied Thermal Engineering, 91 (2015), pp. 1141-1155
  11. Rucinski, A., Rusowicz, A., Thermoelectric generation of current-theoretical and experimental analysis, Archives of thermodynamics, 38 (2017), 4, pp. 3-13
  12. Cheng, T.H., et al., An effective Seebeck coefficient obtained by experimental results of a thermoelectric generator module, Applied Energy, 88 (2011), 12, pp. 5173-5179
  13. Wu, Z., et al., Numerical Analysis of Semiconductor Thermoelectric Generator, Thermal Science, 24 (2020), 3A, pp. 1585-1591
  14. Šumiga, I., et al., Application of Thermoelectric Modules as Renewable Energy Sources, Technical journal, 12 (2018), 3, pp. 151-158
  15. Khanh, D.V.K., et al., Optimization of thermo-electric coolers using hybrid genetic algorithm and simulated annealing, Archives of Control Sciences, 24 (2014), 2, pp. 155-176
  16. Trancossi, M., et al., Thermoelectric and solar heat pump use toward self sufcient buildings: The case of a container house, Thermal Science and Engineering Progress, 18 (2020)
  17. Afshari, F., Experimental and numerical investigation on thermoelectric coolers for comparing air-to-water to air-to-air refrigerators, Journal of Thermal Analysis and Calorimetry, 144 (2020), 3, pp. 855-868
  18. Chen, L.G., et al., Performance optimization of a class of combined thermoelectric heating devices, Science China Technological Sciences, 63 (2020), pp. 2640-2648
  19. Pupčević, M., et al., Experimental Analysis of the Justification of Using a Space Heating System Based on Peltier Thermoelectric Generator, IEEP Industrial Energy and Environmental Protection in the Countries of Southeast Europe, 8 (2022)
  20. Bar-Cohen, A., Rohsenow, W.M., Thermally Optimum Spacing of Vertical, Natural Convection Cooled, Parallel Plates, Journal of Heat Transfer, 106 (1984), 1, pp. 116-123
  21. Cengel, Y.A., Ghajar, A.J., Heat and Mass Transfer-Fundamentals and Applications, McGraw-Hill, New York, USA, 2011
  22. Ahmadi, M., et al., Natural convection from rectangular interrupted fins, International Journal of Thermal Sciences, 82 (2014), pp. 62-71
  23. Yong, K.K., et al., On the role of radiation view factor in thermal performance of straight-fin heat sinks, International Communications in Heat and Mass Transfer, 37 (2010), 8, pp. 1087-1095
  24. Shabany, Y., Radiation heat transfer from plate-fin heat sinks, IEEE SEMI-THERM Symposium, 24 (2008), pp. 132-136
  25. Rea, S.N., West, S.E., Thermal radiation from finned heat sinks, IEEE Transactions on parts, hybrids, and packaging, 12 (1976), 2, pp, 115-117
  26. Fairuz, M.R., et al., Experimental study of a mini cooler by using Peltier thermoelectric cell, IOP Conference Series: Materials Science and Engineering, 788 (2020), 5
  27. Giaretto, V., Campagnoli, E., The Elusive Thomson Effect in Thermoelectric Devices. Experimental Investigation from 363 K to 213 K on Various Peltier Modules, Metals, 10 (2020), 291