Analysis of wall materials according to thermal parameters
dc.citation.epage | 70 | |
dc.citation.issue | 1 | |
dc.citation.spage | 63 | |
dc.contributor.affiliation | Національний університет “Львівська політехніка” | |
dc.contributor.affiliation | Lviv Polytechnic National University | |
dc.contributor.author | Марущак, У. Д. | |
dc.contributor.author | Позняк, О. Р. | |
dc.contributor.author | Marushchak, Uliana | |
dc.contributor.author | Pozniak, Oksana | |
dc.coverage.placename | Львів | |
dc.coverage.placename | Lviv | |
dc.date.accessioned | 2023-04-24T08:11:59Z | |
dc.date.available | 2023-04-24T08:11:59Z | |
dc.date.created | 2022-03-03 | |
dc.date.issued | 2022-03-03 | |
dc.description.abstract | Зменшення енергоспоживання у будівельному секторі України пов’язане з необхідністю термомодернізації житлового фонду і будівництвом нового житла, що відповідає вимогам енергоефективності. Проаналізовано структуру стінових матеріалів, які використовують в Україні під час зведення багатоповерхових та індивідуальних будівель, та стінових матеріалів будівель, споруджених у 60-ті роки минулого століття. Згідно із сучасними тенденціями зеленого будівництва, перевагу надають матеріалам із низьким впливом на довкілля. Наведено порівняння теплотехнічних показників найпоширеніших стінових матеріалів. Показано, що для забезпечення необхідних показників опорів теплопередачі зовнішніх стін енергоефективних будівель необхідно застосовувати cистеми фасадної теплоізоляції. Насамперед це стосується стінових конструкцій наявного житлового фонду, опір теплопередачі яких у 3–5 рази нижчий, ніж нормативний. Використання ефективних стінових матеріалів у одношаровому виконанні дає змогу забезпечити відповідність приведеної різниці температур нормативним документам. Водночас цей показник для кладки із керамічної та силікатної цегли, керамзитобетонної панелі міститься у межах 4,9–7,7 ºС та не задовольняє сангігієнічних вимог. Низький опір теплопередачі та низька теплова інерція стін із цегли та стінової керамзитобетонної панелі спричиняють підвищені показники питомих тепловтрат за опалювальний період (118,36–133,88 кВтûгод) та питомих теплонадходжень у літній період (2,03–2,43 кВтûгод), що зумовлює зростання потреби на опалення та охолодження, водночас використання ефективних стінових матеріалів відповідає принципам енерго- та ресурсоощадності. | |
dc.description.abstract | Based on the analysis of energy consumption and carbon dioxide emissions of the construction industry, it is stated that the reduction of energy consumption in Ukraine is achieved through termomodernization of the existing building stock and build new buildings, which meet energy efficiency requirements. Comparison of thermal parameters of different wall materials are given. It is shown that multilayer wall constructions must be used to ensure the necessary indicators of external walls of energy efficient buildings. The use of effective wall materials allows to ensure compliance with the given temperature difference to regulatory documents and reducing of heat transfer by transmission during the heating season, solar heat gains during cooling season. | |
dc.format.extent | 63-70 | |
dc.format.pages | 8 | |
dc.identifier.citation | Marushchak U. Analysis of wall materials according to thermal parameters / Uliana Marushchak, Oksana Pozniak // Theory and Building Practice. — Lviv : Lviv Politechnic Publishing House, 2022. — Vol 4. — No 1. — P. 63–70. | |
dc.identifier.citationen | Marushchak U. Analysis of wall materials according to thermal parameters / Uliana Marushchak, Oksana Pozniak // Theory and Building Practice. — Lviv : Lviv Politechnic Publishing House, 2022. — Vol 4. — No 1. — P. 63–70. | |
dc.identifier.doi | /doi.org/10.23939/jtbp2022.01.063 | |
dc.identifier.uri | https://ena.lpnu.ua/handle/ntb/57986 | |
dc.language.iso | en | |
dc.publisher | Видавництво Львівської політехніки | |
dc.publisher | Lviv Politechnic Publishing House | |
dc.relation.ispartof | Theory and Building Practice, 1 (4), 2022 | |
dc.relation.references | Attia, S., Kosiński, P., Wójcik, R., Węglarz, A., Koc, D. & Laurent, O. (2022). Energy efficiency in the polish | |
dc.relation.references | residential building stock: A literature review. Journal of Building Engineering, 45, 103461. DOI: 10.1016/j.jobe.2021.103461. | |
dc.relation.references | Mostafavi, F., Tahsildoost, M. & Zomorodian, Z. S. (2021). Energy efficiency and carbon emission in highrise buildings: A review (2005-2020). Building and Environment, 206, 108329. DOI:10.1016/j.buildenv.2021.108329 | |
dc.relation.references | Torres-Rivas, A., Pozo, C., Palumbo, M., Ewertowska, A., Jiménez, L. & Boer, D. (2021). Systematic | |
dc.relation.references | combination of insulation biomaterials to enhance energy and environmental efficiency in buildings. Construction | |
dc.relation.references | and Building Materials, 267, 120973. DOI:10.1016/j.conbuildmat.2020.120973. | |
dc.relation.references | Chi, B., Lu, W., Ye, M., Bao, Z., & Zhang, X. (2020). Construction waste minimization in green building: A | |
dc.relation.references | comparative analysis of LEED-NC 2009 certified projects in the US and China. Journal of Cleaner Production, | |
dc.relation.references | Vol. 256, 120749. DOI: https://doi.org/10.1016/j.jclepro.2020.120749. | |
dc.relation.references | Sanytsky, M., Marushchak, U., Moskvytyn, M., Secret, R. & Wojcikiewiez, M. (2012). Energy performance of | |
dc.relation.references | individual buildings. Theory and Building Practice, Vol. 742, 176–183 (in Ukranian). https://ena.lpnu.ua/handle/ntb/17987. | |
dc.relation.references | Zhelykh,V., Kasynets,M., Myroniuk, Kh., Marushchak, U. & Gulai, B. (2021). Energy efficient solar heat supply | |
dc.relation.references | systems for buildings and structures. Theory and Building Practice, Vol. 3, 1, 137–142. DOI: 10.23939/jtbp2021.01.137. | |
dc.relation.references | Maruchchak, U., Pozniak, O., Soltysik, R. & Prots, Y. (2019). Optimization of parameters of window | |
dc.relation.references | structures. Theory and Building Practice, Vol. 1, No. 2, 30–36. DOI:10.23939/jtbp2019.02.030. | |
dc.relation.references | Sadeghi, H. & Mohandes, S. R. (2013). Study of different materials used in walls in terms of thermal term: | |
dc.relation.references | review paper. Conference: International Conference of Seminar Kebangsaan Aplikasi Sains & Mathematic. | |
dc.relation.references | https://www.researchgate.net/publication/271195907_STUDY_OF_DIFFERENT_MATERIALS_USED_IN_WALLS_IN_TERMS_OF_THERMAL_TERM_REVIEW_PAPER. | |
dc.relation.references | Ageeva, G., Krivelyov, L. & Kafiev, K. (2021). Reconstruction of buildings of the first mass series – the basis | |
dc.relation.references | of sustainable development of neighborhoods and neighborhoods of cities. Science & Construction, 1 (27), 32–40. | |
dc.relation.references | DOI: 10.33644/scienceandconstruction.v27i1.5 (in Ukrainian). | |
dc.relation.references | Pozniak, O., Melnyk, V., Margal, I. & Novosad, P. (2021). Production of fly ash aerated concrete and | |
dc.relation.references | efficiency of its application. Lecture Notes in Civil Engineering, 100, 347–352. DOI:10.1007/978-3-030-57340-9 42. | |
dc.relation.references | Norouzi, N. & Nasiri, Z. (2021). Confusing problem of green architecture and false green architecture in | |
dc.relation.references | MENA region. Journal Environmental Problems, Vol. 6, 1, 48–58. DOI:10.23939/ep2021.01.048. | |
dc.relation.references | Marques, B., Tadeu, A., Almeida, J., António, J. & Brito, J. (2020). Characterization of sustainable building | |
dc.relation.references | walls made from rice straw bales. Journal of Building Engineering, 28, 101041. DOI: 10.1016/j.jobe.2019.101041. | |
dc.relation.references | Novosad, P. & Pozniak, O. (2021). Thermal insulation materials based on flax straw. Theory and Building | |
dc.relation.references | Practice, Vol. 3, No. 2, 46–51. DOI:10.23939/jtbp2021.02.046. | |
dc.relation.references | Pedroso, M., Brito, J. & Silvestre, J.D. (2019). Characterization of walls with eco-efficient acoustic insulation materials | |
dc.relation.references | (traditional and innovative). Construction and Building Materials, 222, 892–902. DOI: 10.1016/j.conbuildmat.2019.07.259. | |
dc.relation.references | Wang, H., Chiang, P-C., Cai, Y., Li, C., Wang, X., Chen, T-L., Wei, S. & Huang, Q. (2018). Application of | |
dc.relation.references | wall and insulation materials on green building: A Review. Sustainability, 10, 3331. DOI: 10.3390/su10093331. | |
dc.relation.references | Kisilewicz, T., Fedorczak-Cisak, M., & Barkanyi, T. (2019). Active thermal insulation as an element limiting | |
dc.relation.references | heat loss through external walls. Energy and Buildings, 205, 109541. DOI: 10.1016/j.enbuild.2019.109541. | |
dc.relation.references | Sanytsky, M., Sekret, R. & Wojcikiewiez, M. (2012). Energetic and ecological analysis of energy-saving and | |
dc.relation.references | passive houses. SSP-Journal of Civil Engineering, 7.1, 71–78. doi:10.2478/v10299-012-0020-3. | |
dc.relation.references | Voznyak,O., Yurkevych, Y., Sukholova, I., Dovbush, O. & Kasynets, M. (2020). Thermally conductive cost of | |
dc.relation.references | the heat-insulating materials. Theory and Building Practice, Vol. 2, No. 2, 92-98. doi:10.23939/jtbp2020.02.092. | |
dc.relation.references | Serdiuk, T., Franishina, S., Serdiuk, V. & Rudchenko, D. (2021). The influence of energy and ecological | |
dc.relation.references | components on building and production of wall building materials. Bulletin of Vinnytsia Polytechnic Institute, No. 3,7–17. DOI: 10.31649/1997-9266-2021-156-3-7-17 (in Ukrainian). | |
dc.relation.references | Antonelli, J., Erba, L. & Azambuja, M. (2020). Walls composed of different materials: a brief review on | |
dc.relation.references | thermal comfort. Revista Nacional de Gerenciamento de Cidades, 8, 57–63. DOI: 10.17271/2318847286620202699. | |
dc.relation.referencesen | Attia, S., Kosiński, P., Wójcik, R., Węglarz, A., Koc, D. & Laurent, O. (2022). Energy efficiency in the polish | |
dc.relation.referencesen | residential building stock: A literature review. Journal of Building Engineering, 45, 103461. DOI: 10.1016/j.jobe.2021.103461. | |
dc.relation.referencesen | Mostafavi, F., Tahsildoost, M. & Zomorodian, Z. S. (2021). Energy efficiency and carbon emission in highrise buildings: A review (2005-2020). Building and Environment, 206, 108329. DOI:10.1016/j.buildenv.2021.108329 | |
dc.relation.referencesen | Torres-Rivas, A., Pozo, C., Palumbo, M., Ewertowska, A., Jiménez, L. & Boer, D. (2021). Systematic | |
dc.relation.referencesen | combination of insulation biomaterials to enhance energy and environmental efficiency in buildings. Construction | |
dc.relation.referencesen | and Building Materials, 267, 120973. DOI:10.1016/j.conbuildmat.2020.120973. | |
dc.relation.referencesen | Chi, B., Lu, W., Ye, M., Bao, Z., & Zhang, X. (2020). Construction waste minimization in green building: A | |
dc.relation.referencesen | comparative analysis of LEED-NC 2009 certified projects in the US and China. Journal of Cleaner Production, | |
dc.relation.referencesen | Vol. 256, 120749. DOI: https://doi.org/10.1016/j.jclepro.2020.120749. | |
dc.relation.referencesen | Sanytsky, M., Marushchak, U., Moskvytyn, M., Secret, R. & Wojcikiewiez, M. (2012). Energy performance of | |
dc.relation.referencesen | individual buildings. Theory and Building Practice, Vol. 742, 176–183 (in Ukranian). https://ena.lpnu.ua/handle/ntb/17987. | |
dc.relation.referencesen | Zhelykh,V., Kasynets,M., Myroniuk, Kh., Marushchak, U. & Gulai, B. (2021). Energy efficient solar heat supply | |
dc.relation.referencesen | systems for buildings and structures. Theory and Building Practice, Vol. 3, 1, 137–142. DOI: 10.23939/jtbp2021.01.137. | |
dc.relation.referencesen | Maruchchak, U., Pozniak, O., Soltysik, R. & Prots, Y. (2019). Optimization of parameters of window | |
dc.relation.referencesen | structures. Theory and Building Practice, Vol. 1, No. 2, 30–36. DOI:10.23939/jtbp2019.02.030. | |
dc.relation.referencesen | Sadeghi, H. & Mohandes, S. R. (2013). Study of different materials used in walls in terms of thermal term: | |
dc.relation.referencesen | review paper. Conference: International Conference of Seminar Kebangsaan Aplikasi Sains & Mathematic. | |
dc.relation.referencesen | https://www.researchgate.net/publication/271195907_STUDY_OF_DIFFERENT_MATERIALS_USED_IN_WALLS_IN_TERMS_OF_THERMAL_TERM_REVIEW_PAPER. | |
dc.relation.referencesen | Ageeva, G., Krivelyov, L. & Kafiev, K. (2021). Reconstruction of buildings of the first mass series – the basis | |
dc.relation.referencesen | of sustainable development of neighborhoods and neighborhoods of cities. Science & Construction, 1 (27), 32–40. | |
dc.relation.referencesen | DOI: 10.33644/scienceandconstruction.v27i1.5 (in Ukrainian). | |
dc.relation.referencesen | Pozniak, O., Melnyk, V., Margal, I. & Novosad, P. (2021). Production of fly ash aerated concrete and | |
dc.relation.referencesen | efficiency of its application. Lecture Notes in Civil Engineering, 100, 347–352. DOI:10.1007/978-3-030-57340-9 42. | |
dc.relation.referencesen | Norouzi, N. & Nasiri, Z. (2021). Confusing problem of green architecture and false green architecture in | |
dc.relation.referencesen | MENA region. Journal Environmental Problems, Vol. 6, 1, 48–58. DOI:10.23939/ep2021.01.048. | |
dc.relation.referencesen | Marques, B., Tadeu, A., Almeida, J., António, J. & Brito, J. (2020). Characterization of sustainable building | |
dc.relation.referencesen | walls made from rice straw bales. Journal of Building Engineering, 28, 101041. DOI: 10.1016/j.jobe.2019.101041. | |
dc.relation.referencesen | Novosad, P. & Pozniak, O. (2021). Thermal insulation materials based on flax straw. Theory and Building | |
dc.relation.referencesen | Practice, Vol. 3, No. 2, 46–51. DOI:10.23939/jtbp2021.02.046. | |
dc.relation.referencesen | Pedroso, M., Brito, J. & Silvestre, J.D. (2019). Characterization of walls with eco-efficient acoustic insulation materials | |
dc.relation.referencesen | (traditional and innovative). Construction and Building Materials, 222, 892–902. DOI: 10.1016/j.conbuildmat.2019.07.259. | |
dc.relation.referencesen | Wang, H., Chiang, P-C., Cai, Y., Li, C., Wang, X., Chen, T-L., Wei, S. & Huang, Q. (2018). Application of | |
dc.relation.referencesen | wall and insulation materials on green building: A Review. Sustainability, 10, 3331. DOI: 10.3390/su10093331. | |
dc.relation.referencesen | Kisilewicz, T., Fedorczak-Cisak, M., & Barkanyi, T. (2019). Active thermal insulation as an element limiting | |
dc.relation.referencesen | heat loss through external walls. Energy and Buildings, 205, 109541. DOI: 10.1016/j.enbuild.2019.109541. | |
dc.relation.referencesen | Sanytsky, M., Sekret, R. & Wojcikiewiez, M. (2012). Energetic and ecological analysis of energy-saving and | |
dc.relation.referencesen | passive houses. SSP-Journal of Civil Engineering, 7.1, 71–78. doi:10.2478/v10299-012-0020-3. | |
dc.relation.referencesen | Voznyak,O., Yurkevych, Y., Sukholova, I., Dovbush, O. & Kasynets, M. (2020). Thermally conductive cost of | |
dc.relation.referencesen | the heat-insulating materials. Theory and Building Practice, Vol. 2, No. 2, 92-98. doi:10.23939/jtbp2020.02.092. | |
dc.relation.referencesen | Serdiuk, T., Franishina, S., Serdiuk, V. & Rudchenko, D. (2021). The influence of energy and ecological | |
dc.relation.referencesen | components on building and production of wall building materials. Bulletin of Vinnytsia Polytechnic Institute, No. 3,7–17. DOI: 10.31649/1997-9266-2021-156-3-7-17 (in Ukrainian). | |
dc.relation.referencesen | Antonelli, J., Erba, L. & Azambuja, M. (2020). Walls composed of different materials: a brief review on | |
dc.relation.referencesen | thermal comfort. Revista Nacional de Gerenciamento de Cidades, 8, 57–63. DOI: 10.17271/2318847286620202699. | |
dc.relation.uri | https://doi.org/10.1016/j.jclepro.2020.120749 | |
dc.relation.uri | https://ena.lpnu.ua/handle/ntb/17987 | |
dc.relation.uri | https://www.researchgate.net/publication/271195907_STUDY_OF_DIFFERENT_MATERIALS_USED_IN_WALLS_IN_TERMS_OF_THERMAL_TERM_REVIEW_PAPER | |
dc.rights.holder | © Національний університет “Львівська політехніка”, 2022 | |
dc.rights.holder | © Marushchak U., Pozniak O., 2022 | |
dc.subject | стіновий матеріал | |
dc.subject | енергоефективність | |
dc.subject | енергоефективна будівля | |
dc.subject | теплотехнічний параметр | |
dc.subject | опір теплопередачі | |
dc.subject | втрата теплоти | |
dc.subject | теплонадходження | |
dc.subject | житловий фонд | |
dc.subject | wall material | |
dc.subject | energy efficiency | |
dc.subject | energy efficient building | |
dc.subject | thermal parameter | |
dc.subject | resistance to heat transfer | |
dc.subject | heat transfer by transmission | |
dc.subject | solar heat gains | |
dc.subject | building stock | |
dc.title | Analysis of wall materials according to thermal parameters | |
dc.title.alternative | Аналіз стінових матеріалів за теплотехнічними показниками | |
dc.type | Article |
Files
License bundle
1 - 1 of 1