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Анотація
Full-scale metal solar collectors and solar collectors fabricated from polymeric materials are studied in present research. Honeycomb multichannel plates made from polycarbonate were chosen to create a polymeric solar collector. Polymeric collector is 67.8% lighter than metal solar collector. It was experimentally shown that the efficiency of a polymeric collector is 7–14% lower than a traditional collector. An ecologically based Life Cycle Assessment showed the advantages of the application of polymeric materials in the construction of solar collectors.
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Як цитувати
Doroshenko, A., Shestopalov, K., Mladionov, I., Goncharenko, V., & Koltun, P. (2016). POLYMERIC MATERIALS FOR SOLAR ENERGY UTILIZATION: A COMPARATIVE EXPERIMENTAL STUDY AND ENVIRONMENTAL ASPECTS. Refrigeration Engineering and Technology, 52(3). https://doi.org/10.15673/ret.v52i3.118
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ЕНЕРГЕТИКА ТА ЕНЕРГОЗБЕРЕЖЕННЯ
Посилання
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9. Doroshenko, A. V., Glauberman, M. A. (2012). Alternative energy. Refrigerating and Heating Systems. Odessa I.I. Mechnicov National University Press: Odessa, Ukraine.
10. Rojas, D., Beermann, J., Klein, S.A., Reindl, D.T. (2008). Thermal performance testing of flat-plate collectors. Solar Energy, 82(8), 746–757. DOI: http://dx.doi.org/10.1016/j.solener.2008.02.001
11. Garcıa-Valladares, O., Pilatowsky, I., Ruız, V. (2008). Outdoor test method to determine the thermal behavior of solar domestic water heating systems. Solar Energy, 82(7), 613–622. DOI: http://dx.doi.org/10.1016/j.solener.2008.01.005
12. Ladener, H., Späte, F. (2008). Solaranlagen: Das Handbuch der thermischen Solarenergienutzung. Ökobuch-Verlag, Staufen.
13. Tang, R., Cheng, Y., Wu, M., Li, Z., Yu, Y. (2010). Experimental and modeling studies on thermosiphon domestic solar water heaters with flat-plate collectors at clear nights. Energy Conversion and Management, 51(12), 2548–2556. DOI: http://dx.doi.org/10.1016/j.enconman.2010.04.015
14. Sandnes, B., Rekstad, J. (2002). A photovoltaic/thermal (PV/T) collector with a polymer absorber plate. Experimental study and analytical model. Solar Energy, 72(1), 63–73. DOI: http://dx.doi.org/10.1016/s0038-092x(01)00091-3
15. Chen, G., Doroshenko, A., Koltun, P., Shestopalov, K. (2015). Comparative field experimental investigations of different flat plate solar collectors. Solar Energy, 115, 577-588. DOI: http://dx.doi.org/10.1016/j.solener.2015.03.021
16. Xiao, F., Yi-Nian, C., Li-Lun, Q. (1998). A new performance criterion for cogeneration system. Energy Conversion and Management, 39(15), 1607-1609. DOI: http://dx.doi.org/10.1016/s0196-8904(98)00037-5
17. Lindeijr, E. (1995).Valuation in LCA. IVAM Environmental Research, Amsterdam.
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19. World Aluminium, 2013. Global life cycle inventory data for the primary aluminium industry. International Aluminium Institute, London, UK
20.Koehl, M., Saile, S., Piekarczyk, A., Fischer, S. (2014). Task 39 Exhibition – Assembly of Polymeric Components for a New Generation of Solar Thermal Energy Systems, Energy Procedia, 48, 130–136. DOI: http://dx.doi.org/10.1016/j.egypro.2014.02.016
21. Koltun, P., Tharumarajah, A. (2008). Environmental Assessment of Small Scale Solar Thermal Electricity Generation Unit Based on LCA Study. In: Proc. of 15th International Conference on Life Cycle Engineering, Sydney, Australia.
22. Chen, G., Doroshenko, A., Shestopalov, K., Mladionov, I., Koltun, P. (2015). Comparative field experimental investigations of different flat plate solar collectors. Refrigeration Engineering and Technology, 51(6), 35-45. DOI: http://dx.doi.org/10.15673/0453-8307.6/2015.56708
2. Hamed, M., Fellah, A., Brahim, A. (2014). Parametric sensitivity studies on the performance of a flat plate solar collector in transient behavior. Energy Conversion and Management, 78, 938–947. DOI: http://dx.doi.org/10.1016/j.enconman.2013.09.044
3. Hayek, M., Assaf, J., Lteif, W. (2011). Experimental investigation of the performance of evacuated-tube solar collectors under eastern Mediterranean climatic conditions. Energy Procedia, 6, 618–626. DOI: http://dx.doi.org/10.1016/j.egypro.2011.05.071
4. Raman, R., Mantell, S., Davidson, J., Wu, C., Jorgensen, G. (2000). A review of polymer materials for solar water heating systems. Trans. ASME. J. Sol. Energy Eng, 122(2), 92-100. DOI: http://dx.doi.org/10.1115/1.1288214
5. Martinopoulos, G., Missirlis, D., Tsilingiridis, G., Yakinthos, K., Kyriakis, N. (2010). CFD modeling of a polymer solar collector. Renewable Energy, 35(7), 1499–1508. DOI: http://dx.doi.org/10.1016/j.renene.2010.01.004
6. Nielsen, J.E., Bezzel, E. (1997). "Duct Plate" Solar Collectors in plastic materials, 7th International conference on solar energy at high latitudes North Sun '97, Espoo-Otaniemi, Finland, 571-579.
7. Olivares, A., Rekstad, J., Meir, M., Kahlen, S., Wallner, G. (2008). A test procedure for extruded polymeric solar thermal absorbers. Solar Energy Materials & Solar Cells, 92(4), 445–452. DOI: http://dx.doi.org/10.1016/j.solmat.2007.10.006
8. Cristofari, C., Notton, G., Poggi, P., Louche, A. (2002). Modelling and performance of a copolymer solar water heating collector. Solar Energy, 72(2), 99–112. DOI: http://dx.doi.org/10.1016/s0038-092x(01)00092-5
9. Doroshenko, A. V., Glauberman, M. A. (2012). Alternative energy. Refrigerating and Heating Systems. Odessa I.I. Mechnicov National University Press: Odessa, Ukraine.
10. Rojas, D., Beermann, J., Klein, S.A., Reindl, D.T. (2008). Thermal performance testing of flat-plate collectors. Solar Energy, 82(8), 746–757. DOI: http://dx.doi.org/10.1016/j.solener.2008.02.001
11. Garcıa-Valladares, O., Pilatowsky, I., Ruız, V. (2008). Outdoor test method to determine the thermal behavior of solar domestic water heating systems. Solar Energy, 82(7), 613–622. DOI: http://dx.doi.org/10.1016/j.solener.2008.01.005
12. Ladener, H., Späte, F. (2008). Solaranlagen: Das Handbuch der thermischen Solarenergienutzung. Ökobuch-Verlag, Staufen.
13. Tang, R., Cheng, Y., Wu, M., Li, Z., Yu, Y. (2010). Experimental and modeling studies on thermosiphon domestic solar water heaters with flat-plate collectors at clear nights. Energy Conversion and Management, 51(12), 2548–2556. DOI: http://dx.doi.org/10.1016/j.enconman.2010.04.015
14. Sandnes, B., Rekstad, J. (2002). A photovoltaic/thermal (PV/T) collector with a polymer absorber plate. Experimental study and analytical model. Solar Energy, 72(1), 63–73. DOI: http://dx.doi.org/10.1016/s0038-092x(01)00091-3
15. Chen, G., Doroshenko, A., Koltun, P., Shestopalov, K. (2015). Comparative field experimental investigations of different flat plate solar collectors. Solar Energy, 115, 577-588. DOI: http://dx.doi.org/10.1016/j.solener.2015.03.021
16. Xiao, F., Yi-Nian, C., Li-Lun, Q. (1998). A new performance criterion for cogeneration system. Energy Conversion and Management, 39(15), 1607-1609. DOI: http://dx.doi.org/10.1016/s0196-8904(98)00037-5
17. Lindeijr, E. (1995).Valuation in LCA. IVAM Environmental Research, Amsterdam.
18. Goedkoop, M., Effting, S., Collignon, M. (2000). The Eco-indicator 99. A damage oriented method for Life Cycle Impact Assessment. Second edition, Amersfoort.
19. World Aluminium, 2013. Global life cycle inventory data for the primary aluminium industry. International Aluminium Institute, London, UK
20.Koehl, M., Saile, S., Piekarczyk, A., Fischer, S. (2014). Task 39 Exhibition – Assembly of Polymeric Components for a New Generation of Solar Thermal Energy Systems, Energy Procedia, 48, 130–136. DOI: http://dx.doi.org/10.1016/j.egypro.2014.02.016
21. Koltun, P., Tharumarajah, A. (2008). Environmental Assessment of Small Scale Solar Thermal Electricity Generation Unit Based on LCA Study. In: Proc. of 15th International Conference on Life Cycle Engineering, Sydney, Australia.
22. Chen, G., Doroshenko, A., Shestopalov, K., Mladionov, I., Koltun, P. (2015). Comparative field experimental investigations of different flat plate solar collectors. Refrigeration Engineering and Technology, 51(6), 35-45. DOI: http://dx.doi.org/10.15673/0453-8307.6/2015.56708