

Gibson – Ashby equation for cellular materials based on triply periodic minimal surfaces
https://doi.org/10.22349/1994-6716-2024-119-3-122-132
Abstract
The paper presents experimental data on the physical and mechanical properties of cellular materials with the geometry of triply periodic minimal surfaces (TPMS). It has been established that the dependence of the strength and Young’s modulus on the relative density of materials with the TPMS geometry corresponds to the Gibson – Ashby equation with a fairly high accuracy. Such materials are superior in mechanical properties to classical cellular materials and have high isotropy of mechanical properties.
About the Authors
V. Ya. ShevchenkoRussian Federation
Acad. RAS
49 Shpalernaya St, 191015 St Petersburg
2 Makarov Emb., 199034 St Petersburg
A. S. Oryshchenko
Russian Federation
Сorr. member RAS
49 Shpalernaya St, 191015 St Petersburg
S. V. Balabanov
Russian Federation
2 Makarov Emb., 199034 St Petersburg
M. M. Sychev
Russian Federation
49 Shpalernaya St, 191015 St Petersburg
2 Makarov Emb., 199034 St Petersburg
E. A. Pavlova
Russian Federation
24/26 Moskovsky Ave, 190013 St Petersburg
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Review
For citations:
Shevchenko V.Ya., Oryshchenko A.S., Balabanov S.V., Sychev M.M., Pavlova E.A. Gibson – Ashby equation for cellular materials based on triply periodic minimal surfaces. Voprosy Materialovedeniya. 2024;(3(119)):122-132. (In Russ.) https://doi.org/10.22349/1994-6716-2024-119-3-122-132