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Non-destructive testing of amorphous component density in foam nature-like materials

https://doi.org/10.31675/1607-1859-2023-25-2-165-172

Abstract

 Glass foam material is investigated in this paper. Glass foam materials are known long ago, but modern methods make it possible to study and scientifically substantiate their classification as nature-like. X-ray and acoustic methods are used as the most appropriate for nature-like materials. The velocity of Rayleigh surface waves and the integral intensity of the X-ray halo reflection are measured. The data normalization is proposed for comparison of measured values of speed and intensity. It is shown that the density of  glass foam materials determines the uniform distribution of the electron  density. A conclusion is made about the uniform density of amorphous  materials and their similarity to natural. 

About the Author

B. S. Semukhin
Tomsk State University of Architecture and Building
Russian Federation

Boris S. Semukhin, DSc, Professor

2, Solyanaya Sq., 634003, Tomsk, Russia



References

1. Lesovik V.S. Geonics (geomimetics) as a transdisciplinary research area. Vysshee obrazovanie v Rossii. 2014; (3): 77–83. (In Russian)

2. Lesovik V.S., Fomina E.V. New design paradigm for building composites to protect the human environment. Vestnik MGSU. 2019; 14 (10): 1241–1257. (In Russian)

3. Koval'chuk M.V., Narajkin O.S. Nature-based technologies – new opportunities and new threats. Indeks bezopasnosti. 2016; 22 (3–4); 103‒108. (In Russian)

4. Panin V.E. Physical Mesomechanics of Materials. Scale levels of the fatigue limit of metals. Fizicheskaya mezomekhanika. 2019; 22 (1): 97–98. (In Russian)

5. Semuhin B.S., Votinov A.V., Kaz'mina O.V. Glass foam properties with fullerene-like mesostructure. Izv. vuzov. Fizika. 2020; (4) 161–163. (In Russian)

6. Shechtman D., Blech I., Gratias D., Cahn J.W. Metallic phase with long-range orientational order and no translational symmetry. Physical Review Letters. 1984; (53): 1951. DOI: https://doi.org/10.1103/PhysRevLett.53.1951.

7. Murav'ev V.V., Zuev L.B., Komarov K.L. Sound speed and structure of steels and alloys. Novosibirsk: Nauka, 1996. 184 p. (In Russian)

8. Sekoyan S.S., Shlegel' V.R., Bacanov S.S., Gavrilkin S.M., Poyarkov Yu., Gurkov A.A., Durov A.A. Influence of material porosity and dispersion on propagation velocity of dispersed sound waves. Prikladnaya mekhanika i tekhnicheskaya fizika. 2009; 50 (4): 121‒129. (In Russian)

9. Kaz'mina O.V., Vereshchagin V.I., Semuhin B.S., Abiyaka A.N. Low-temperature synthesis of glass granulates from charge materials based on silica-containing components for foam production. Steklo i keramika. 2009; (10): 5–8. (In Russian)

10. Semuhin B.S., Kaz'min V.P., Kaz'mina O.V., Votinov A.V. Properties of foam glass material modified with nanoscale zirconium dioxide. Steklo i keramika. 2016; (2): 3‒6. (In Russian)


Review

For citations:


Semukhin B.S. Non-destructive testing of amorphous component density in foam nature-like materials. Vestnik Tomskogo gosudarstvennogo arkhitekturno-stroitel'nogo universiteta. JOURNAL of Construction and Architecture. 2023;25(2):165-172. (In Russ.) https://doi.org/10.31675/1607-1859-2023-25-2-165-172

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ISSN 1607-1859 (Print)
ISSN 2310-0044 (Online)