[1]
Petrichenko, M.R. Rasshcheplyayushchie razlozheniya v predel'nyh zadachah dlya obyknovennyh kvazilinejnyh differencial'nyh [The splitting decomposition in limit tasks for the ordinary quasilinear differential equations] Second Edition (2012).
Google Scholar
[2]
Vatin, N., Petrichenko, M., Nemova, D., Kharkov, N., Korsun, A. Numerical modeling of thermogravitational convection in air gap of system of rear ventilated facades (2014) Applied Mechanics and Materials, Vols. 672-674, p.1903-(1908).
DOI: 10.4028/www.scientific.net/amm.672-674.1903
Google Scholar
[3]
Vatin, N., Petrichenko, M., Nemova, D. Hydraulic methods for calculation of system of rear ventilated facades (2014) Applied Mechanics and Materials, Vols. 633-634, pp.1007-1012.
DOI: 10.4028/www.scientific.net/amm.633-634.1007
Google Scholar
[4]
Borodinecs, A., Zemitis, J., Prozuments, A. Passive use of solar energy in double skin facades for reduction of cooling loads (2012).
Google Scholar
[5]
Nemova, D.V. Sistemy ventilyacii v zhilyh zdaniyah kak sredstvo povysheniya ehnergoehffektivnosti [Systems of ventilation in residential buildings as means of increase of energy efficiency ] (2012).
Google Scholar
[6]
Nemova, D.V. Navesnye ventiliruemye fasady: obzor osnovnyh problem [The hinged ventilated facades: review of the main problems] (2010) Magazine of Civil Engineering No. 5, pp.7-11. (rus).
Google Scholar
[7]
Gorshkov, A.S., Popov, D. Yu. Konstruktivnoe ispolnenie ventiliruemogo fasada povyshennoj nadezhnosti [The Design of the ventilated facade of the increased reliability] (2010) Magazine of Civil Engineering, No. 8, pp.5-9. (rus).
Google Scholar
[8]
Osipova, E.S. Translucent designs in modern construction (2005) The XXXIII Week of science SPbSTU. Materials of interuniversity scientific and technical conference. pp.73-75.
Google Scholar
[9]
Gagarin, A.A. The ventilated facades (2004) The XXXII Week of science SPbSTU. Materials of interuniversity scientific and technical conference, p.115.
Google Scholar
[10]
Simakova, E.A. Modern technologies and materials in architectural concepts of facades of buildings and constructions (2005) The XXXIII Week of science SPbSTU. Materials of interuniversity scientific and technical conference. pp.100-102.
Google Scholar
[11]
Yevtushenko, E.B., Petrochenko, M.V. Diffuzornaya konstrukciya navesnogo ventiliruemogo fasada [The diffuser design of ventilated facades] (2013) Magazine of Civil Engineering No. 8, pp.38-45. (rus).
DOI: 10.5862/mce.43.6
Google Scholar
[12]
Yevtushenko, E.B. Osnovy gidravlicheskogo rascheta navesnyh ventiliruemyh fasadov [Fundamentals of hydraulic design for ventilated facades] (2013) Construction of Unique Buildings and Structures, pp.55-61. (rus).
Google Scholar
[13]
Tikhomirnov, S. I., Pantyukhov, N. A., Solovyov, A. V. Working off of a technique of determination of heattechnical properties of a double facade on full-scale model of a standard floor of the high-rise building. Results of preliminary natural researches (2011).
Google Scholar
[14]
Petrychenko, M. R, Petrochenko, M.V. Gidravlika svobodnokonvektivnyh techenij v ograzhdayushchih konstrukciyah s vozdushnym zazorom [Hydraulics free convection currents wall air gap] (2011) Magazine of Civil Engineering No. 8, pp.51-56. (rus).
Google Scholar
[15]
Derbina, S. N., Boriskin, I.V., Plotnikov, A.A. Dvojnye fasady kak ehtap konstruktivnoj ehvolyucii svetoprozrachnyh naruzhnyh obolochek zdanij [Double facades as stage of constructive evolution of translucent external covers of buildings] (2010).
Google Scholar
[16]
Yemelyanov, A.A. K voprosu proektirovaniya konstrukcii navesnogo ventiliruemogo fasada [A question of design of a design of the hinged ventilated facade] (2010) Magazine Industrial and Civil Engineering, pp.35-37. (rus).
Google Scholar
[17]
Glazkov, N. L. Steklo dlya sovremennoj arhitektury: moda ili proryv v budushchee [Glass for modern an arkhitekture: moda or break in the future] (2011) Architecture and Construction of Russia magazine No. 10, pp.26-34. (rus).
Google Scholar
[18]
Minko, N. I., Atkarskaya, A.B., Kemenov, S. A. Ispol'zovanie stekla i izdelij iz nego v sovremennom stroitel'stve [Use of glass and products from it in modern construction] (2008) Construction Materials No. 10, pp.91-95. (rus).
Google Scholar
[19]
Magay, A.A., Dubynin, N. V. Svetoprozrachnye fasady vysotnyh mnogofunkcional'nyh zdanij [Translucent facades of high-rise multipurpose buildings] (2010) MGSU Bulletin magazine No. 2, pp.14-21. (rus).
Google Scholar
[20]
Shilkin, N. V. Vozmozhnost' estestvennoj ventilyacii dlya vysotnyh zdanij [Possibility of natural ventilation for high-rise buildings] (2005) AВOК №1, pp.18-26. (rus).
Google Scholar
[21]
Tabunshchikov, Yu. A., Shilkin, N. V., Brodach, M. M. EHnergoehffektivnoe vysotnoe zdanie [The Power effective high-rise building] (2002) AВOК No. 3, pp.8-22. (rus).
Google Scholar
[22]
Nizovtseva, M.I., Belyib, V.T., Sterlygova, A.N. The facade system with ventilated channels for thermal insulation of newly constructed and renovated buildings (2014) Energy and Buildings, Vols. 75, pp.60-69.
DOI: 10.1016/j.enbuild.2014.02.003
Google Scholar
[23]
Fedyakov, Y.A. Montazh navesnyh ventiliruemyh fasadov: osnovopolagayushchie principy [Installation of ventilated facades: fundamental principles] (2011) Ecological systems No. 2, pp.12-15. (rus).
Google Scholar
[24]
Hana, J., Lua, L., Penga, J., Hongxing, Y. Performance of ventilated double-sided PV facade compared with conventional clear glass facade (2013) Energy and Buildings, Vols. 56, p.204–209.
DOI: 10.1016/j.enbuild.2012.08.017
Google Scholar
[25]
Gaillard, L., Giroux-Julien, S., Menezo, C., Pabiou, H. Experimental evaluation of a naturally ventilated PV double-skin building envelope in real operating conditions (2012) Journal of Fundamentals of Renewable Energy and Applications. 5 p.
DOI: 10.1016/j.solener.2014.02.018
Google Scholar
[26]
Wang, F., Hou, D, Liu, X. Construction and development of a new ecological facade (2013) International Conference on Sustainable Energy and Environmental Engineering, pp.848-858.
Google Scholar
[27]
Li, J., Chow, Y. Heat transfer and air movement behaviour in a double-skin facade (2014) Centre for Sustainable Energy Technologies, pp.130-139.
Google Scholar
[28]
Yang, H., Feng, X., Xia, G., Wan, Q. Experimental study on impact of ventilated double-skin facade on the indoor thermal environment in winter (2013) International Symposium on Heating, Ventilation, and Air Conditioning, pp.721-724.
DOI: 10.1007/978-3-642-39584-0_59
Google Scholar