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Сhanging Energy and Exergy Comfort Level after School Thermomodernization

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Increasing the level of thermal resistance of the building envelope in combination with the choice of heat source is an urgent task. It is important to take into account changes in the cost of energy over time. Thermal modernization, in its turn, allows to increase the level of thermal comfort, which is not taken into account and evaluated in practice, although the relevant standards for comfort conditions and categories of buildings to ensure comfort have been introduced in Ukraine. This paper analyzes the change in the level of comfort after thermal modernization, determines the category of the building to provide comfortable conditions, as well as identifies the change in the average radiation temperature of the fences, as one of the main factors of PMV change in these conditions.
Rocznik
Tom
Strony
458--469
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
  • Department of Heat Engineering and Energy Saving, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine
  • Department of Heat Engineering and Energy Saving, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine
autor
  • Department of Heat Engineering and Energy Saving, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine
Bibliografia
  • Choi, Wonjun, Ryozo, Ooka & Masanori Shukuya. (2020). Unsteady-state exergetic performance comparison of externally and internally insulated building envelopes. International Journal of Heat and Mass Transfer, 163: 120414.
  • de Dear, R., et al. (2020). A review of adaptive thermal comfort research since 1998. Energy and Buildings, 214, 109893. DOI: 10.1016/j.en-build.2020.109893
  • Deshko, V., & Buyak, N. (2016). A model of human thermal comfort for analysing the energy performance of buildings. Eastern European Journal of Advanced Technology, 4(8), 42-48.
  • Deshko, V., Buyak, N. &Voloshchuk, V. (2019). Reference state for the evaluation of energy efficiency of the system "heat source-human-building envelope". ECOS 2019-Proceedings of the 32nd International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems. 2287-2300.
  • Deshko, Valerii, Bilous, Inna, Buyak, Nadia & Shevchenko, Olena (2020). The Impact of Energy-Efficient Heating Modes on Human Body Exergy Consumption in Public Buildings. IEEE 7th International Conference on Energy Smart Systems (ESS), 201-205. DOI: 10.1109/ess50319.2020.9160270
  • Dinesh, Kumar Shahi, Hom Bahadur, Rijal, Genku, Kayo & Masanori, Shukuya. (2021) Study on wintry comfort temperature and thermal improvement of houses in cold, temperate, and subtropical regions of Nepal. Building and Environment, 191(3). 107569.
  • Dovjak, M., Shukuya, M. & Krainer, A. (2015). Connective thinking of building envelope ‒ Human body exergy analysis. International Journal of Heat and Mass transfer, 90, 1015-1025. DOI: 10.1016/j.ijheat-masstransfer.2015.07.021.
  • Dylewski, R. Adamczyk, J. (2012). Economic and ecological indicators for thermal insulating building investments. Energy and Buildings, 54, 88-95. DOI: 10.1016/j.enbuild.2012.07.021.
  • Fanger, P. (1973). Assessment of man's thermal comfort in practice. British Journal of Industrial Medicine, 30, 313-324.
  • Hellwig, Runa T., et al. (2019). A framework for adopting adaptive thermal comfort principles in design and operation of buildings. Energy and Buildings, 205, 109476. DOI: 10.1016/j.enbuild.2019.109476
  • Hurnik, M., Specjal, A., Popiolek, Z. & Kierat, W. (2017). Assessment of single-family house thermal renovation based on comprehensive on-site diagnostics. Energy and Buildings, 8, 378-400. DOI:10.1016/j.enbuild.2017.09.069
  • Javid, Atiye Soleimani, Aramoun, Fereshteh, Bararzadeh, Masoomeh & Avami, Akram (2019). Multi objective planning for sustainable retrofit of educational buildings. Journal of Building Engineering. DOI: 10.1016/j.jo-be.2019.100759.
  • Moran, Paul, O'Connell, John & Goggins, Jamie. (2020), Sustainable energy efficiency retrofits as residenial buildings move towards nearly zero energy building (NZEB) standards. Energy and Buildings. DOI: 10.1016/j.en-build.2020.109816 .
  • Park, Ji Hun, Yun, Beom Yeol, Chang, Seong Jin, Wi, Seunghwan, Jeon, Jisoo & Kim, Sumin. (2020). Impact of a passive retrofit shading system on educational building to improve thermal comfort and energy consumption. Energy and Buildings. DOI: 10.1016/j.enbuild.2020.109930.
  • Prek, Matjaž, Butala, Vincenc. (2017). Comparison between Fanger's thermal comfort model and human exergy loss. Energy, 138, 228-237. DOI: 10.1016/j.energy.2017.07.045
  • Rijal, Hom B., Yoshida, K., Humphreys, M.A. & Nicol, J.F. (2020). Development of an adaptive thermal comfort model for energy-saving building design in Japan. Architectural Science Review, 1-14. DOI: 10.1080/00038628.2020.1747045.
  • Rodrigues, Carla, Freire, Fausto. (2017). Building retrofit addressing occupancy: An integrated cost and environmental life-cycle analysis. Energy and Buildings, 140, 388-398. DOI: 10.1016/j.en-build.2017.01.084.
  • Sayadi, S. (2020). Dynamic Exergy-Based Methods for Improving the Operation of Building Energy Systems.
  • Shukuya, M. (2018). Exergetic aspect of human thermal comfort and adaptation. Sustainable Houses and Living in the Hot-Humid Climates of Asia. Springer, Singapore, 123-129.
  • Streicher, Kai Nino, Mennel, Stefan, Chambers, Jonathan, Parra, David, Patel & Martin K. (2020). Cost-effectiveness of large-scale deep energy retrofit packages for residential buildings under different economic assessment approaches. Energy and Buildings, 109870. DOI: 10.1016/j.en-build.2020.109870.
  • Vellei, M., Herrera, M., Fosas, D., Natarajan, S. (2017). The influence of relative humidity on adaptive thermal comfort. Building and Environment, 124. 171-185. DOI: 10.1016/j.buildenv.2017.08.005
  • Zare, S., Hasheminezhad, N., Sarebanzadeh, K., Zolala, F., Hemmatjo, R., & Hassanvand, D. (2018). Assessing thermal comfort in tourist attractions through objective and subjective procedures based on ISO 7730 standard: A field study. Urban climate, 26, 1-9.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b9a207ad-7007-442b-950e-770c3a60e3d5
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