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Influence of the building’s thermal insulation on intermittent heating mode efficiency

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The results of mathematical modeling of a building’s thermal insulation influence on the efficiency of intermittent heating mode are presented. This work aim is to assess the influence of thermal insulation on the efficiency of using the intermittent heating mode for the educational building of the Odessa National Polytechnic University’s Heat Engineering Laboratory. The paper analyzes the factors related to improving the efficiency of the programmed heat supply mode. Modeling of the operating modes for heat supply system operated in intermittent heating mode is carried out. There was performed the mathematical modeling of the heating system operation modes for the most unfavorable climatic conditions at low outdoor temperatures, with respective system efficiency indicators obtaining. The potential of energy saving level for administrative, educational, and office buildings depending on the thickness of thermal insulation of external and internal walls is studied. Recommendations have been elaborated for the use of buildings thermal insulation to improve the efficiency of intermittent heating.
Wydawca
Rocznik
Tom
Strony
484--488
Opis fizyczny
Bibliogr. 28 poz., rys.
Twórcy
  • Odessа Polytechnic National University Shevchenko Ave., Odesa, Ukraine
  • Odessа Polytechnic National University Shevchenko Ave., Odesa, Ukraine
  • Odessа Polytechnic National University Shevchenko Ave., Odesa, Ukraine
  • Odessa State Academy of Civil Engineering and Architecture 4 Didrihsona Str., Odesa, Ukraine
  • Kherson State Maritime Academy 20 Ushakov Аve. Kherson, Ukraine
Bibliografia
  • [1] A.E. Zakharevich “Saving thermal energy with intermittent heating”. SOK, vol. 1, pp. 44-60, 2014.
  • [2] V.I. Panferov and E.Yu. Anisymova “Analysis of the possibility of saving heat energy in intermittent heating mode”. Bulletin of YuUU University, vol. 12, pp. 52-59, 2008.
  • [3] A. Lechowska and E. Guzik. “Intermittent heating”. Energy and Buildings, vol. 76, pp. 55-63, 2014.
  • [4] K. Dyadyura, T.P. Hovorun, O.V. Pylypenko, M.V. Hovorun and V.I. Pererva. “Influence of roughness of the substrate on the structure and mechanical properties of TiAlN nano-coating condensed by DCMS”. Proceedings of the 2017 IEEE 7th International Conference on Nanomaterials: Applications and Properties, NAP 2017 (2017) January, 01FNC10.
  • [5] A. Mazurenko, A. Klimchuk, O. Shramenko and O. Syshova. “Comparative analysis of decentralized heating systems of residential buildings with the use of electricity”. Eastern-European Journal of Enterprise Technologies, vol. 5, no. 8, pp. 21-25, 2014.
  • [6] O. Klymchuk, A. Denysova, G. Balasanian, L. Ivanova and O. Bodiul. “Enhancing efficiency of using energy resources in heat supply systems of buildings with variable operation mode”. EUREKA, Physics and Engineering, vol. 3, pp. 59-68, 2020.
  • [7] V.I. Deshko, I.Yu. Bilous and N.A. Buryak. “The impact of intermittent heating modes on the dynamics of energy consumption and comfort conditions of buildings with different levels of thermal protection”. Energy and new energy-generating technologies, vol. 4, pp. 7-16, 2019.
  • [8] K.O. Dyadyura and F. Sukhodub. “Magnesium-based matrix composites reinforced with nanoparticles for biomedical applications”. Proceedings of the 2017 IEEE 7th International Conference on Nanomaterials: Applications and Properties, NAP 2017, January, 04NB14.
  • [9] A.A. Chulkov. “Study of heat-insulating characteristics of two-layer external walls built with intermittent heating”. City planning and architecture, vol. 8, p. 4, 2018.
  • [10] G.A. Balasanyan, A.A. Klimchuk and M.B. Minyailo. “Modeling of the regime of intermittent heating of a combined heat supply system with a heat pump”. Vestnik NTU, vol. 17, pp. 35-42, 2015.
  • [11] K.A. Dyadyura, K.V. Berladir, P.V. Rudenko, O.A. Budnik and V.A. Sviderskij. “Research of properties of composite material based on polytetrafluoroethylene filled with carbon fiber with titanium nanocoating”. Proceedings of the 6th International Conference Nanomaterials: Applications and Properties, NAP 2016 14-19 September (2016), vol. 5, no. 2, 02NNSA04.
  • [12] V. Yurko, A. Ganzha, O. Tarasenko and L. Tiutiunyk. “Improvement of methods for calculating thermal characteristics of loop air heaters”. Eastern-European Journal of Enterprise Technologies, vol. 1, no. 8-109, pp. 36-43, 2021.
  • [13] T.P. Hоvоrun, O.V. Pylypenko, M.V. Hovorun and K.O. Dyadyura “Methods of obtaining and properties of wear-resistant coatings Ti and N and Ti, Al and N”. J. Nano-Electron. Phys., vol. 9, no. 2, 02026, 2017.
  • [14] O. Voznyak, N. Spodyniuk, I. Sukholova, M. Kasynets and O. Datsko. “Diagnosis of damage to the ventilation system”. Diagnostyka, vol. 22, no. 3, pp. 91-99, 2021.
  • [15] O. Voznyak, V. Korbut, B. Davydenko and I. Sukholova. “Air Distribution Efficiency in a Room by a Two-Flow Device”. Lecture Notes in Civil Engineering, vol. 47, pp. 526-533, 2020.
  • [16] A. Mazurenko, A. Denysova, A. Klymchuk, N.M. Hieu and P. Kotov. “Exergy characteristics of biogas power plants”. Eastern-European Journal of Enterprise Technologies, vol. 1, no. 8, pp. 7-12, 2014.
  • [17] L.F. Sukhodub and K. Dyadyura. Design and fabrication of polymer-ceramic nanocomposites materials for bone tissue engineering. Journal of Nano and Electronic Physics, vol. 10, no. 6, 06003, 2018.
  • [18] I. Pandova, A. Panda, J. Valicek, M. Harnicarova, M. Kusnerova and Z. Palkova. „Use of sorption of copper cations by clinoptilolite for wastewater treatment.” International Journal of Environmental Research and Public Health, vol. 15, no. 7, 1364, 2018.
  • [19] J. Macala, I. Pandova and A. Panda. “Zeolite as a prospective material for the purification of automobile exhaust gases.” Mineral Resources Management, vol. 33, no. 1, pp. 125-137, 2017.
  • [20] J. Jurko, M. Gajdos and A. Panda. “Study of changes under the machined surface and accompanying phenomena in the cutting zone during drilling of stainless steels with low carbon content.” Metalurgija, vol. 50, no. 2, pp. 113-117, 2011.
  • [21] M. Rimar, M. Fedak, A. Kulikov, T. Krenicky and O. Kulikova. “Influence of Heat Accumulation of the Object on the Operation of the Cooled Ceilings Cooling System”. MM Science Journal, vol. October, pp. 5931-5936, 2022.
  • [22] M. Harnicarova, J. Valicek, M. Kusnerová, J. Kmec, Z. Palkova, I. Kopal, J. Krmela and Panda A. “Study of the influence of the structural grain size on the mechanical properties of technical materials.” Materialwissenschaft und Werkstofftechnik, vol. 50, no. 5, pp. 635-645, 2019.
  • [23] L. Sukhodub, A. Panda, K. Dyadyura, I. Pandova and T. Krenicky. “The design criteria for biodegradable magnesium alloy implants.” MM Science Journal, vol. December, pp. 2673-2679, 2018.
  • [24] I. Pandova, M. Rimar, A. Panda, J. Valicek, M. Kusnerova and M. Harnicarova. “A study of using natural sorbent to reduce iron cations from aqueous solutions.” International Journal of Environmental Research and Public Health, vol. 17, no. 10, 3686, 2020.
  • [25] A. Panda, M. Prislupcak and I. Pandova. “Progressive technology diagnostics and factors affecting machinability.” Applied Mechanics and Materials, vol. 616, pp. 183-190, 2014.
  • [26] M. Rimar, M. Fedak, A. Kulikov, M.V. Bilonozhko, K.V. Rudko, V.V. Martynova, O.O. Yeromin, O.V. Savvin, I.V. Sukha and T. Krenicky. “Calculation of the Probability of Test Object Compliance with the Specified Requirements and Nonbinary Decision-Making Rules”. MM Science Journal, vol. March, pp.7250-7255, 2024.
  • [27] A. Panda, V.M. Anisimov, V.V. Anisimov, K. Dyadyura and I. Pandova. “Increasing of wear resistance of linear block-polyurethanes by thermal processing methods.” MM Science Journal, vol. October, pp. 4731-4735, 2021.
  • [28] L. Sukhodub, A. Panda, L. Suchodub, M. Kumeda, K. Dyadyura and I. Pandova. “Hydroxyapatite and zinc oxide based two-layer coating, deposited on Ti6Al4V substrate.” MM Science Journal, vol. December, pp. 3494-3499, 2019.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki i promocja sportu (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-aed8c8c6-1b0b-431e-b6f9-da805f40369e
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