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These works are licensed under a Creative Commons Attribution 4.0 International License. S.G. Luchinkin, V.A. Kozhukhov, Yu.D. Alashkevich Complete text of the article:Download article (pdf, 0.5MB )UDС699.865DOI:10.17238/issn0536-1036.2017.6.151AbstractThe principal direction of production development of building materials is materials providing a saving of energy resources, including reduction of heat losses through enclosing structures of buildings, constructions and technological equipment. The majority of insulation materials have a number of drawbacks, such as a low thermal resistance and increased combustibility, the presence of hazardous components polluting the environment. The problems of waste disposal in the production and operation of materials and high-energy consumption for their production are relevant. The urgency of the research is the development of an effective material with the necessary heat insulating and performance properties on the basis of the secondary cellulose fiber; and the creation of an energy-saving technology of production of non-combustible thermal insulating and soundproof materials. The goal of research is to develop a manufacturing technology of such material based on shredded paper waste and non-combustible fillers, boric acid and borax. On the basis of the results of the study we propose a new technological scheme of production of cellulose insulation with the 3-step crushing system with double air stretching and fluffing of fibers, allowing us to obtain a material with reduced density and increased energy efficiency. The main operational characteristics of the new material (coefficients of thermal conductivity and vapor permeability, sorption and sorption equilibrium humidity, hydrogen index) are determined experimentally. The research results demonstrate an improvement of the majority of thermophysical parameters of the cellulose thermal insulating and soundproof material in comparison with the known analogs and can be used in the design and construction of industrial and residential buildings and structures.AuthorsS.G. Luchinkin, Postgraduate StudentV.A. Kozhukhov, Candidate of Engineering Sciences Yu.D. Alashkevich, Doctor of Engineering Sciences, Professor AffiliationSiberian State University of Science and Technology named after academician M.F. Resh-etnev, pr. Mira, 82, Krasnoyarsk, 660049, Russian Federation; е-mail: vkozhukhov@mail.ruKeywordscellulosic material, heat insulating material, beating, heat and sound insulation, thermal conductivity, sorption humidityFor citationLuchinkin S.G., Kozhukhov V.A., Alashkevich Yu.D. Production of Thermal Insulating Materials on the Basis of the Secondary Cellulose Fiber. Lesnoy zhurnal [Forestry journal], 2017, no. 6, pp. 151–159. DOI: 10.17238/issn0536-1036.2017.6.151References1. Bad'in G.M., Sychev S.A. Sovremennye tekhnologii stroitel'stva i rekonstruktsii zdaniy [Modern Technologies of Construction and Reconstruction of Buildings]. Saint Petersburg, BHV-Petersburg Publ., 2013. 288 p. (In Russ.)2. GOST 17.5.4.01–84. Okhrana prirody. Rekul'tivatsiya zemel'. Metod opredeleniya pH vodnoy vytyazhki vskryshnykh i vmeshchayushchikh porod [State Standard 17.5.4.01–84. Nature Protection. Recultivation of Lands. Method of Determining pH Water Extraction of Overburden and Enclosing Rocks]. Moscow, Standartinform Publ., 1984. 10 p. (In Russ.) 3. GOST 17177–94. Materialy i izdeliya stroitel'nye teploizolyatsionnye. Metody ispytaniy [State Standard 17177–94. Thermal Insulating Materials and Products for Building Application. Test Methods]. Moscow, Standartinform Publ., 1994. 34 p. (In Russ.) 4. GOST 7076–99. Materialy i izdeliya stroitel'nye. 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American Society for Testing and Materials. Philadelphia, USA, 1990, pp. 231-236. Received on September 16, 2017 Production of Thermal Insulating Materials on the Basis of the Secondary Cellulose Fiber |
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