Have a personal or library account? Click to login
ENERGY PERFORMANCE ASSESSMENT OF ENVELOPES FROM ORGANIC MATERIALS Cover

ENERGY PERFORMANCE ASSESSMENT OF ENVELOPES FROM ORGANIC MATERIALS

Open Access
|Oct 2019

References

  1. Sychev, S. A. (2014). Ekotekhnologii stroitelstva s uchetom kriteriyev energoeffektivnykh zdaniy (Ecotechnologies of construction by taking into account criteria of energy efficient buildings). Science Time, 10, 343–349 (in Russian).
  2. Brojan, L., Petric, A., Clouston, P. L. (2013). A comparative study of brick and strawbale wall systems from environmental, economical and energy perspectives. ARPN Journal of Engineering and Applied Sciences, 8, 920–926.
  3. Ukrainian National Standard. DSTU-N B.V. 2.2-13: 2015. (2015). Energy performance of building.Guidance on the application of energy assessment of buildings. Kyiv, Ukraine: Ministry of Regional Development, Construction and Housing and Communal Services of Ukraine, (in Ukrainian).
  4. Lapin, Y. N. (2005). Avtonomnyye ekologicheskiye doma (Autonomous ecological houses). Moskva: Algoritm (Moscow: Algorithm), (in Russian).
  5. Bläsi, W. (2001). Bauphysik. Bibliothek des technischen Wissens. 3 Auflage.(Building physics. Library of technical knowledge. 3 Edition). Haan: Verlag Europa Lehrmittel.
  6. Osobennosti maloetazhnogo energoeffektivnogo ekologicheskogo stroitelstva v raznykh klima-tich-eskikh zonakh (Features of low-rise energy-efficient ecological construction in different climatic zones). Retrieved from http://www.itp.nsc.ru/conferences/mzhz_2017/files/Se ction_02.pdf#page=16 (in Russian)
  7. Galkin, P. I. (1944). Ognestoykiye glinyanyye stroitelnyye materialy (Fire-resistant clay building materials). Moskva – Leningrad: Akademiya kom. khoz-va im. K. D. Pamfilova (Moscow – Leningrad: Academy of Communal Households named after KD Pamfilov), (in Russian).
  8. Nanazashvili, I. K. (1990). Stroitelnyye materialy iz drevesno-tsementnoy kompozitsi (Building materials from wood-cement composition). Leningrad: Stroyizdat, (in Russian).
  9. Lobanova, A. V., Kazimagomedov, I. E. (2015). Stenovyye izdeliya iz arbolita na osnove kostry lna (Wood concrete on the base of fiber flax for wall details). Komunalnoye khozyaistvo gorodov (Municipal economy of cities), 124, 18–20, (in Russian).
  10. Shea, A., Lawrence, M., & Walker, P. (2012). Hygrothermal performance of an experimental hemp–lime building. Construction and Building Materials, 36, 270–275.
  11. Pacheco-Torgal, F., Jalali, S. (2012). Earth construction: Lessons from the past for future eco-efficient construction. Construction and Building Materials, 29, 512–519.
  12. Rajesh Kumar, J. (2013). A study on eco friendly cost effective earthbag house construction. Kathmandu University Journal of Science, Engineering and Technology, 9(1), 200-211.
  13. Kulichenko, I. I. (2013). Ekonomichna efektyvnist vykorystannia mistsevykh ekolohichnykh materialiv v malopoverkhovomu budivnytstvi dostupnoho zhytla (Economic efficiency of using local environmental materials in low-rise construction of affordable housing). Stroytelstvo. Materyalovedenye. Mashynostroenye. Seryia: Innovatsyonnye tekhnolohyy zhyznennoho tsykla obiectov zhylyshchno-hrazhdanskoho, promyshlennoho i transportnoho naznachenyia (Construction. Material science. Mechanical engineering. Series: Innovative technologies of the life cycle of object), 69, 257–264, (in Ukrainian).
  14. Biks, Y. S. (2017). Perspektyvy vykorystannia vyrobiv z solomy u malopoverkhovomu budivnytstvi. (Perspectives for the use of straw products in low-rise building). Suchasni tekhnolohii, materialy i konstruktsii u budivnytstvi (Modern technology, materials and design in construction), 22(1), 75-83 (in Ukrainian).
  15. Geokar – nedorogoy i dostupnyy stroitelnyy material (Geokar – inexpensive and affordable building material). Retrieved from http://found.com.ua/news/wall_up_covering_flor/buil ding_materials/геокар%20;недорогой%20;и%20доступный%20строительный%20материал.html (in Russian).
  16. Sheina, S. G., Minenko, E. N. (2012). Razrabotka algoritma vybora energoeffektivnykh resheniy v stroitelstve (Development of complex energy efficient measurements’ choice algorithm in construction processes). Inzhenernyy vestnik Dona (Don Engineering herald), 22(4-1), 133-136, (in Russian).
  17. Matsura, A. A., Ermolenko, B. Y. (2015). Razrabotka metodov optimalnogo proyektirovaniya energoeffektivnykh domov (Development of methods for the optimal design of energy-efficient homes). Uspekhi vkhimii i khimicheskoy tekhnologii (Advances in chemistry and chemical technology), XXiX(8), 118–122, (in Russian).
  18. Smirnova, S. N. (2009). Teoreticheskaya model energoeffektivnogo zdaniya (Theoretical model of an energy efficient building). Privolzhskiy nauchnyy zhurnal. Seriya: Arkhitektura. Dizayn (Volga scientific journal. Series: Architecture. Design), 2, 86-91, (in Russian).
  19. Savitsky, M. V., Babenko, M. M. (2014). Pokaznyky enerhoefektyvnosti ekolohichnoho malopoverkhovoho budynku z mistsevykh materialiv (Indicators of energy efficiency of an ecological low-rise building of local materials). Stroytelstvo. Materyalovedenye. Mashynostroenye. Seryia: Innovatsyonnye tekhnolohyy zhyznennoho tsykla obiektov zhylyshchno-hrazhdanskoho, promyshlennoho i transportnoho naznachenyia (Construction. Material science. Mechanical engineering. Series: Innovative technologies of life cycle of objects of housing and civil, industrial and transport purposes), 77, 168-172, (in Ukrainian).
  20. Stazi, F. (2017). Thermal Inertia in Energy Efficient Building Envelopes. Butterworth-Heinemann.
  21. Clarke, J. A., Yaneske, P. P., Pinney, A. A. The Harmonisation of Thermal Properties of Building Materials. Retrieved from http://www.esru.strath.ac.uk/Documents/89/thermop_rep.pdf.
  22. Ukrainian National Standard. DSTU B.V. 2.6-189: 2013. (2014). Methods of choosing insulation material for insulation of buildings. Kyiv, Ukraine: Ministry of Regional Development, Construction and Housing and Communal Services of Ukraine, (in Ukrainian).
  23. Filonenko, O. I., Yurin, O. I. (2015). Budivelna a teplofizyka ohorodzhuvalnykh konstruktsii budivel: navch. posibnyk (Construction and Thermal Physics of Building Enclosures: A manual). Poltava: Poltavskyi natsionalnyi tekhnichnyi universytet im. Yuriia Kondratiuka (Poltava: Poltava National Technical University named after Yuri Kondratyuk), (in Ukrainian).
  24. Ezennia, I. S., Alibaba, H. (2017). A Systematic Review Of Thermal And Moisture Performance Of Straw-Bale Houses In Hot And Humid Climates. International Journal of Scientific & Technology Research, 6(1), 13-18.
  25. Arumi-Noe, F., Hamilton, K. (2013). Thermal inertia of Straw bale walls. Buildings XII Conference, Florida, USA. Retrieved from http://web. or nl. gov/sci/buildings/2012/1998%20B7% 20papers/063_ Arumi_Noe.pdf (Diciembre, 2015). Benfratello, S., Capitano, C., Peri, G., Rizzo, G., Scaccianoce, G., Sorrentino, G. (2013). Thermal and structural properties of a hemp–lime biocomposite. Construction and Building Materials, 48, 745-754.
  26. Korshunov, O., Zuev, V. (2011). Vremya teplovoy inertsiii termicheskoye soprotivleniye sloistykh sten (Time of thermal inertia and thermal resistance of multilayered walls). Energoresursosberezheniye i energoeffektivnost (Energy saving and energy efficiency), 4(40), 23–26, (in Russian).
  27. Ukrainian National Standard. DSTU ISO 6946: 2007. (2007). Building components and building elements. Thermal resistance and thermal transmitance. Calculation methods. Kyiv, Institute of Technical Thermophysics of the National Academy of Sciences of Ukraine, (in Ukrainian).
  28. Saaty, T. L. (2009). (Prinyatiye resheniy pri zavisimostyakh i obratnikh svyazyakh: Analiticheskiye seti: per. s angl) (Decision-making with dependencies and inverse connections: Analytical networks: Translated from English. Moscow: LIBROCOM Book House, (in Russian).
DOI: https://doi.org/10.21307/acee-2019-036 | Journal eISSN: 2720-6947 | Journal ISSN: 1899-0142
Language: English
Page range: 55 - 67
Submitted on: Feb 13, 2019
|
Accepted on: Jun 6, 2019
|
Published on: Oct 18, 2019
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 Yuriy BIKS, Georgiy RATUSHNYAK, Olga RATUSHNYAK, published by Silesian University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.