Have a personal or library account? Click to login
Experimental determination of the efficiency of the solar collector integrated into the light transparent building facade Cover

Experimental determination of the efficiency of the solar collector integrated into the light transparent building facade

Open Access
|Apr 2020

References

  1. [1] Shapoval S., Venhryn I. (2014) Prospects for using solar energy in Ukraine. Young scientist, 7(2), 21-24. (in Ukrainian)
  2. [2] Bockris J., Veziroglu T., Smith D. (2006) Solar hydrogen energy. The power to save the Earth. Macdonald Optima, London, 168. (in Ukrainian)
  3. [3] Shapoval S. (2016) The efficiency of combined solar collectors for energy efficient buildings. Budownictwo o Zoptymalizowanym Potencjale Energetycznym 2(18), 81-86. (in English)10.17512/bozpe.2016.2.12
  4. [4] Shapoval S. (2017) Economic efficiency of application of solar window. Czasopismo inzynierii ladowej, srodowiska i architektury journal of civil engineering, Environment and architecture, (2/II/17), 123-132. (in English)10.1515/sspjce-2017-0016
  5. [5] Lahutin O., Shmakov I., Nikulin Yu. (2008) Albedo of the underlying surface according to the MODIS/Terra Spectroradiometer. Sixth all-Russian open annual conference “ Modern problems of remote sensing of the Earth from space», 12. (in Russian)
  6. [6] Rekstad J., Meir M., Murtnes E., Dursun A. (2015) A comparison of the energy consumption in two passive houses, one with a solar heating system and one with an air–water heat pump. Energy and Buildings, 96, 149–161. (in English)10.1016/j.enbuild.2015.02.059
  7. [7] Kazakov H. (2009) Architecture of energy-saving solar houses. Lviv Polytechnic, 84. (in Ukrainian)
  8. [8] Kazakov H. (2012) Solar houses: typological classification. Bulletin of the National University “Lviv Polytechnic”, 728, 235-240. (in Ukrainian)
  9. [9] Shapoval, S., Zhelykh, V., Venhryn, I., Kozak, K., & Krygul, R. (2019). Theoretical and experimental analysis of solar enclosure as part of energy-efficient house. Eastern-European Journal of Enterprise Technologies, 2(8-98), 38-45. doi:10.15587/1729-4061.2019.160882 (in English)10.15587/1729-4061.2019.160882
  10. [10] Hromova U. (2012) Environmental problems as prerequisites for the development of energy-saving technologies. Poultry Market. (in Russian)
  11. [11] Pashchenko N. (2013) Energy-efficient and energy-saving policy of Poland. Reports of participants. Charitable foundation Havrylyshyna B., 8. (in Ukrainian)
  12. [12] Basok B., Fareniuk H. (2014) Conceptual foundations for creating an experimental passive-type house (with a total area of 300 square meters). Building construction, 81, 233-243. (in Ukrainian)
  13. [13] Basok B., Bozhko K., Bieliaieva T. (2014) Polyvalent heat supply system for an experimental house of passive type (300 m2) based on the use of renewable and alternative energy sources. Science and innovation. Institute of technical Thermophysics of the national Academy of Sciences of Ukraine, 6(10), 34-51. (in Ukrainian)10.15407/scine10.06.031
  14. [14] Dvoretskyi A. (2013) Design features of energy-efficient buildings in the South of Ukraine. Construction, Materials science, Engineering, 68, 125-129. (in Russian)
  15. [15] BP Statistical Review of World Energy 2019. (2019). Centre for Energy Economics Research and Policy, Heriot-Watt University, 61. (in English)
  16. [16] Serheichuk O. (2008) Geometric modeling of physical processes when optimizing the shape of energy-efficient houses (Doctoral dissertation), Kyiv, 425. (in Ukrainian)
  17. [17] Horobets V., Masiuk M. (2016) Development of a new design and mathematical modeling of heat and mass transfer processes for heat exchangers of ventilation systems of an energy-saving house. Energy and automation, 1, 90-98. (in Ukrainian)
  18. [18] Chulkov D. (2007). Patent of Ukraine 26650. Kyiv: State Patent Office of Ukraine. (in Ukrainian)
  19. [19] Shapoval, S. (2017). Patent of Ukraine 113688. Kyiv: State Patent Office of Ukraine. (in Ukrainian)
  20. [20] Shapoval, S., Zhelykh, V., Spodyniuk, N., Dzeryn, O., & Gulai, B. (2019). The effectiveness to use the distribution manifold in the construction of the solar wall for the conditions of circulation. Pollack Periodica, 14(2), 143-154.10.1556/606.2019.14.2.13
  21. [21] Lukáč, P., Horbaj, P. (2015) Some notes to design of heating and hot water supply system like a power of low-temperature heating utilization in combination with solar collectors in housing and municipal sphere. Cassotherm 2015. TU v Košiciach, 321-331. ISBN 978-80-553-2438-8.
DOI: https://doi.org/10.1515/sspjce-2019-0015 | Journal eISSN: 1338-7278 | Journal ISSN: 1336-9024
Language: English
Page range: 31 - 38
Published on: Apr 30, 2020
Published by: Technical University of Košice
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2020 Vasyl Zhelykh, Peter Kapalo, Stepan Shapoval, Iryna Venhryn, Khrystyna Kozak, published by Technical University of Košice
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.