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Dynamic problems for and stress–strain state of inhomogeneous shell structures under stationary and nonstationary loads

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This paper reviews studies and analyzes results on the effect of discrete ribs on the dynamic characteristics of rectangular plates and cylindrical shells. Use is made of the vibration equations derived from the classical theories of beams, plates, and shells. The effect of Pasternak’s elastic foundation on the critical velocities of a structurally orthotropic model of a ribbed cylindrical shell is determined. Nonstationary problems are solved for perforated and ribbed shells of revolution filled with a fluid or resting on an elastic foundation and subjected to moving or impulsive loads. Results from studies of the behavior of sandwich shell structures under impulsive loads of various types are presented

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Correspondence to V. A. Zarutskii.

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Translated from Prikladnaya Mekhanika, Vol. 45, No. 3, pp. 23–58, March 2009.

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Zarutskii, V.A., Lugovoi, P.Z. & Meish, V.F. Dynamic problems for and stress–strain state of inhomogeneous shell structures under stationary and nonstationary loads. Int Appl Mech 45, 245–271 (2009). https://doi.org/10.1007/s10778-009-0187-6

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