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Tytuł artykułu

Porous structures and their effect on thermophysical properties of thermal protection elements

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The improvement of the thermal insulating material thermophysical characteristics of the thermal protection elements by studying the porous structure is a promising direction of research. The article describes the effects of the porosity and coupling of the porous structure on the thermophysical characteristics of thermal insulating materials. The article uses standard systematized techniques and instruments of scientific research applied in thermophysics. The research methodology of highly-porous material thermophysical properties is based on performance of empirical laboratory investigations of the samples obtained.
Rocznik
Strony
125--133
Opis fizyczny
Bibliogr. 21 poz., wykr., wzory
Twórcy
  • Kielce University of Technology, Poland
autor
  • State Higher Educational Institution «Zaporizhzhia State Engineering Academy», Zaporizhzhia, Ukraine
autor
  • State Higher Educational Institution «Zaporizhzhia State Engineering Academy», Zaporizhzhia, Ukraine
Bibliografia
  • [1] Jouybari H.J., Saedodin S., Zamzamian A., Nimvari M. E., Wongwises S. (2017): Effects of porous material and nanoparticles on the thermal performance of a flat plate solar collector: An experimental study. Renewable Energy, 114, pp. 1407-1418.
  • [2] Malvè M., Bergstrom D.J., Chen X.B. (2018): Modelling the flow and mass transfer in a mechanically stimulated parametric porous scaffold under fluid-structure interaction approach. International Communications in Heat and Mass Transfer, 96, pp. 53-60.
  • [3] Liang Y., Wu D., Fu R. (2013): Carbon microfibers with hierarchical porous structure from electrospun fiber-like natural biopolymer. Scientific Reports, 3, 1119.
  • [4] Säckel W., Nieken U. (2016): Structure Formation within Spray-Dried Droplets; Mathematical Modelling of Spray Polymerisation. In Process-Spray, pp. 89-125.
  • [5] Lowell S., Shields J.E. (2013): Powder surface area and porosity (Vol. 2). Springer Science and Business Media, 252 p.
  • [6] Cheilytko A.A., Ilin S.V., Nosov M.A. (2017): Creation of effective metallic thermal insulation constructions. Natsional'nyi Hirnychyi Universytet. Naukovyi Visnyk, (6), pp. 103-108.
  • [7] Yatskov M., Korchyk N., Budenkova N., Kyrylyuk S., Prorok O. (2017): Development of technology for processing liquid iron-containing wastes of steel surfaces etching. Eastern European Journal of Advanced Technology, 2(6), pp. 70-77.
  • [8] Eom J.H., Kim Y.W., Raju S. (2013): Processing and properties of macroporous silicon carbide ceramics: A review. Journal of Asian Ceramic Societies, 1(3), pp. 220-242.
  • [9] Sereda B., Kruglyak I., Zherebtsov A., Belokon Y. (2011): The influence of deformation process in titan aluminides retrieving by SHS-compaction technologies. Metallurgical and Mining Industry, 3(7), pp. 59-63.
  • [10] Bogas J.A., Gomes M.G., Real S. (2015): Capillary absorption of structural lightweight aggregate concrete. Materials and Structures, 48(9), pp. 2869-2883.
  • [11] Syrodoy S.V., Kuznetsov G.V., Zhakharevich A.V., Gutareva N.Y., Salomatov V.V. (2017): The influence of the structure heterogeneity on the characteristics and conditions of the coal–water fuel particles ignition in high temperature medium. Combustion and Flame, 180, pp. 196-206.
  • [12] Kuntysh V.B., Dudarev V.V., Filatov S.O., Korolkova A.M. (2017): Thermal Conductivity of External Contaminants of Air-Cooled Heat Exchangers. Chemical and Petroleum Engineering, 53(3-4), pp. 244-247.
  • [13] Biletskyi V., Horobets L., Fyk M., Al-Sultan M. (2018): Theoretical background of rock failure at hydraulic seam fracture and after effect analysis. Mining of Mineral Deposits, 12, pp. 45-55.
  • [14] Cheylitko A. (2015): The influence of synthesis of the initial mixture and blowing agents on the formation of a porous structure. Eastern European Journal of Enterprise Technologies, 5(77), pp. 35-38.
  • [15] Sereda B.P., Belykon K.V., Belykon Yu.O., Kruglyak I.AT. (2018): Model of mechanism of catalytic reactions of deep oxidation of carbon monoxide. Mathematical Modeling, 1 (38), pp. 62-68.
  • [16] Pavlenko A., Usenko B., Koshlak A. (2014): Thermal conductivity of gas in confined space. Metallurgical and Mining Industry, No. 2, pp. 20-24.
  • [17] Pavlenko A., Koshlak H., Usenko B. (2014): Heat and mass transfer in fluidized layer. Metallurgical and Mining Industry No. 6, pp. 96-100.
  • [18] Hurtov V.A., Osaulenko R.N. (2007): Fizika tverdogo tela dlya inzhenerov, 561 р.
  • [19] Andriyanov D.I., Amosov A.P., Samboruk A.R. (2014): Ispol'zovaniye granulirovaniya v tekhnologii samorasprostranyayushchegosya vysokotemperaturnogo sinteza dlya polucheniya poristogo karbida titana. Vestn. Samarskogo gos. tekhnich. un-ta. Ser. Tekhn. nauki, (3), 43.
  • [20] Smolin I.Yu., Yeremin M.O., Makarov P.V., Buyakova S.P., Kulkov S.N., and Yevtushenko Ye.P. (2013): Chislennoye modelirovaniye mekhanicheskogo povedeniya model'nykh khrupkikh poristykh materialov na mezourovne. Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mekhanika, 5(25), pp. 78-90.
  • [21] Rudobashta S.P., Zueva G.A., Zuev N.A. (2015): Hygroscopic properties of seeds. Izvestiya Vysshikh Uchebnykh Zavedenii. Seriya Khimiya i Khimicheskaya Tekhnologiya, 58(1).
Uwagi
EN
1. The publication contains the results of studies conducted by President’s of Ukraine grant for competitive projects (No. Ф75/29090) of the State Fund for Fundamental Research. The work was also performed in accordance with state-funded topic of scientific and technical research 8-1Д/2017 "Formation of thermal properties of thermal protection structure elements in power equipment by formation of predicted porous structures for industry of Ukraine” (state registration number 0117U006455). The article materials were also obtained during research within EU grant «Development of theoretical basis for the method of energy discrete transformation (EDT) in multiphase process media» (ID:409531, Nr 2018/29/B/ST8/01121).
PL
2. Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7bd795a6-7f6b-46c4-a2be-411efb6c67a2
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