Показати скорочену інформацію

dc.contributor.authorBiks, Y.en
dc.contributor.authorRatushnyak, O.en
dc.contributor.authorБікс, Ю. С.uk
dc.contributor.authorРатушняк, О. Г.uk
dc.date.accessioned2025-08-29T12:22:50Z
dc.date.available2025-08-29T12:22:50Z
dc.date.issued2025
dc.identifier.citationBiks Y., Ratushnyak O. Regarding new criteria of multilayered envelope thermal performance // Матеріали LIV Всеукраїнської науково-технічної конференції підрозділів ВНТУ, Вінниця, 24-27 березня 2025 р. Електрон. текст. дані. 2025. URI: https://conferences.vntu.edu.ua/index.php/all-fbtegp/all-fbtegp-2025/paper/view/24525uk
dc.identifier.isbn978-617-8132-48-8
dc.identifier.urihttps://ir.lib.vntu.edu.ua//handle/123456789/48879
dc.description.abstractThe CTPL thermal performance criterion has been introduced to evaluate energy-efficient, multilayered wall assemblies regarding the dynamic parameter and embodied energy. This criterion considers such physical characteristics as internal areal heat capacity, decrement factor, and embodied energy for the particular multilayered assembly. The study focuses on defining the CTPL criterion solely based on physical characteristics of the thermal performance and energy consumption. According to the numerical research, the optimal wall configuration was a 420 mm Hempcrete wall, while the least efficient was Wall Type E, consisting of wood-chip cement bonded block. Further studies should incorporate additional influencing factors, verification processes, and validation methods to clarify the feasibility of assessment criteria.en
dc.language.isoen_USen_US
dc.publisherВНТУuk
dc.relation.ispartofМатеріали LIV Всеукраїнської науково-технічної конференції підрозділів ВНТУ, Вінниця, 24-27 березня 2025 р.uk
dc.relation.urihttps://conferences.vntu.edu.ua/index.php/all-fbtegp/all-fbtegp-2025/paper/view/24525
dc.subjectinternal area heat capacityen
dc.subjectthermal performanceen
dc.subjectmultilayered assembliesen
dc.subjectenergy efficiencyen
dc.subjectdynamic characteristicen
dc.titleRegarding new criteria of multilayered envelope thermal performanceen
dc.typeThesis
dc.identifier.udc621.3.088
dc.relation.referencesBasińska M. The use of multicriteria optimisation to choose solutions for energy-efficient buildings. Bulletin of the Polish Academy of Sciences. Technical Sciences. 2017. Vol. 65, №. 6. P. 815-826. DOI: 10.1515/bpasts-2017-0084.en
dc.relation.referencesWang J. J., Jing Y. Y., Zhang C. F., Zhao J. H. Review on multicriteria decision analysis aid in sustainable energy decisionmaking. Renewable and sustainable energy reviews. 2009. Vol. 13. №9. Р. 2263-2278. DOI: 10.1016/j.rser.2009.06.021.en
dc.relation.referencesEN 15978:2011. Sustainability of construction works - Assessment of environmental performance of buildings - Calculation method. URL: https://standards.iteh.ai/catalog/standards/cen/62c22cef-5666-4719-91f9-c21cb6aa0ab3/en-15978-2011 (Last accessed: 25.02.2023).en
dc.relation.referencesThakkar J. J. Multicriteria Decision Making. Springer, 2021. Vol. 336. P. 1-365.en
dc.relation.referencesBiks Y., Ratushnyak G., Ratushnyak, O. Energy performance assessment of envelopes from organic materials. Architecture Civil Engineering Environment. 2019. № 3: P. 55-67. DOI: 0.21307/ACEE-2019-036.en
dc.relation.referencesStazi F. Thermal Inertia in Energy Efficient Building Envelopes. Butterworth-Heinemann, 2017. DOI: 10.1016/B978-0-12-813970-7.00001-7.en
dc.relation.referencesISO 13786:2017. Thermal performance of building components ‒ Dynamic thermal characteristics ‒ Calculation methods. URL: https://www.iso.org/ru/standard/65711.html (Last accessed: 10.10.2020).en
dc.relation.referencesCarabaño R. et al. Life Cycle Assessment (LCA) of building materials for the evaluation of building sustainability: the case of thermal insulation materials. Revista de la Construcción. Journal of Construction. 2017. Vol. 16. №. 1. P. 22-33.en
dc.relation.referencesDSTU-N. B. V. 2.6-189:2013. Methods for the selection of heat-insulating material for the insulation of buildings. [Valid from 2014-01-01]. Official issue Kyiv: Ministry of Region of Ukraine, 2014. 40 p. (in Ukrainian).en
dc.relation.referencesDBN V. 2.6-31:2021. Thermal insulation of buildings. [Valid from 2022-09-01]. Official issue Kyiv: Ministry of Region of Ukraine, 2022. 27 p. (in Ukrainian).en
dc.relation.referencesVilaboa Díaz A., Francisco López A., Bello Bugallo P. M. Analysis of biowaste-based materials in the construction sector: evaluation of thermal behaviour and life cycle assessment (LCA) .Waste and Biomass Valorization. – 2022. Vol. 13. №. 12. p. 4983-5004.en
dc.relation.referencesISO SPAN Expert 43/15. URL: https://www.baubook.at/m/PHP/EinreichungI/Infoauswahl/index.php?Minibox=I_PRW_S_EIKON&iSS=0&SI=2142730302&SG=&Balken=n&SW=5&LU=1823785713&qJ=54&LP=7wFvl&lng=2&SBT_open=7384 24&SKg=2 (Last accessed: 20.03.2025)en
dc.relation.referencesCement-bonded boards made of wood chips (550 kg/m³). URL: https://www.baubook.at/m/PHP/EinreichungI/Infoauswahl/index.php?Minibox=I_PRW_S_EIKON&iSS=0&SI=&SG=2142715868&Balken=n&SW=5&LU=1823785713&qJ=63&LP=7wFvl&lng=2&SBT_open=7385 46&SKg=2 (Last accessed: 20.03.2025);en
dc.relation.referencesEPS W15 silver. URL: https://www.baubook.at/m/PHP/Info.php?SI=2142708381&SW=5&LU=1823785713&qJ=70&LP=7wFvl&Minibox=I_PRW_S_EIKON&SBT_open=738424&lng=2&SKg=2&win=y (Last accessed: 20.03.2025);en
dc.relation.referencesFlorentin Y. et al. A life-cycle energy and carbon analysis of hemp-lime bio-composite building materials. Energy and Buildings. 2017, Vol. 156. P. 293-305.en
dc.relation.referencesA brief guide and free tool for the calculation of the thermal mass of building components. URL: https://www.htflux.com/en/free-calculation-tool-for-thermal-mass-of-building-components-iso-13786/ (Last accessed: 18.11.2023)en
dc.relation.referencesPorotherm. Wall solutions. URL: https://porotherm.com.ua/pdf/Porotherm_Klima.pdf (Last accessed: 22.03.2024) (in Ukrainian).en


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Показати скорочену інформацію