[1]
Begoulev, S.A. Experience reduce thermal requirements for the building envelope in the North-West region (2007) Building materials, No. 2, pp.18-19.
Google Scholar
[2]
GrinfeldI, G., Gorshkov, A., Vatin, N. Tests results strength and thermophysical properties of aerated concrete block wall samples with the use of polyurethane adhesive (2014) Advanced Materials Research, pp.786-799.
DOI: 10.4028/www.scientific.net/amr.941-944.786
Google Scholar
[3]
Gorshkov, A.S., Zadvinskaya, T.O. Comprehensive method of energy efficiency of residential house (2014) Advanced Materials Research, pp.1570-1577.
DOI: 10.4028/www.scientific.net/amr.953-954.1570
Google Scholar
[4]
Nemova, D.V., Gorshkov, A.S., Kazimirova, A.S., Gureev, K.N. Calculation of payback period mineral wool with longitudinal fibers of ITE PARISO (PAREXLANKO) (2014) 5TH International conference civil engineering-science and practice, pp.1609-1615.
DOI: 10.5937/jaes12-6552
Google Scholar
[5]
Borodinecs, A., Zemitis, J., Prozuments, A. Passive use of solar energy in double skin facades for reduction of cooling loads (2012).
Google Scholar
[6]
Mikheev, D.A. Improving the thermal efficiency of the outer wall protections based on thermal analysis studies (2010) Building construction, pp.170-171.
Google Scholar
[7]
Na Na Kanga, Sung Heui Choa, Jeong Tai Kimb. The energy-saving effects of apartment residents' awareness and behavior (2012) Energy and Buildings, Volume 46, p.112–122.
DOI: 10.1016/j.enbuild.2011.10.039
Google Scholar
[8]
Borodinecs, A., Zemitis, J., Kreslins, A., Gaujena, B. Determination of optimal air exchange rate to provide optimal IAQ (2012) 10th International Conference on Healthy Buildings, 2, pp.1114-1119.
Google Scholar
[9]
Panfilov, V.I. Improving the energy efficiency of heating systems in buildings teplotehnologicheskih points (2009) Power systems and complexes, pp.23-32.
Google Scholar
[10]
Borodinecs, A., Gaujena, B. The implementation of building envelopes with controlled thermal resistance (2012) 2, pp.1715-1722.
Google Scholar
[11]
Borodiņecs, A., Kresliņš, A., Dzelzitis, E., Krumiņš, A. Introduction of hybrid ventilation systems of dwelling buildings in Latvia (2007).
Google Scholar
[12]
Kaklauskas, A. a., Rute, J. a., Zavadskas, E.K. a., Daniunas, A. a., Pruskus, V. a., Bivainis, J. a., Gudauskas, R. b., Plaky V. a. Passive House model for quantitative and qualitative analyses and its intelligent system (2012).
DOI: 10.1016/j.enbuild.2012.03.008
Google Scholar
[13]
Petronijevic, P., Ivanisevic, N., Rakocevic, M., Arizanovic, D. Methods of calculating depreciation expenses of construction machinery (2012) Journal of Applied Engineering Science, № 1 (10), pp.43-48.
Google Scholar
[14]
Tayfun Uygunoğlua, Ali Keçebaşb. LCC analysis for energy-saving in residential buildings with different types of construction masonry blocks (2011) Energy and Buildings, Volume 43 Issue 9, p.2077–(2085).
DOI: 10.1016/j.enbuild.2011.04.011
Google Scholar
[15]
Pukhkal, V., Murgul, V., Vatin, N. Central ventilation system with heat recovery as one of the measures to upgrade energy efficiency of historic buildings (2014) Applied Mechanics and Materials, Vols. 633-634, pp.1077-1081.
DOI: 10.4028/www.scientific.net/amm.633-634.1077
Google Scholar
[16]
Alihodzic, R., Murgul, V., Vatin, N., Aronova, E., Nikolić, V., Tanić, M., Stanković, D. Renewable Energy Sources used to Supply Pre-school Facilities with Energy in Different Weather Conditions (2014).
DOI: 10.4028/www.scientific.net/amm.624.604
Google Scholar
[17]
Gureev, K.N., Kazimirova, A.S., Avvakumov, V.A., Kafidov, G.A., Shaybacovich, P.A., Aznabayev, A.A. Energy efficient technologies as the core of the new technological order in building (2014).
Google Scholar