Kurbatova, Natalia V.; Ustinov, Yury A. Saint-Venant problem for solids with helical anisotropy. (English) Zbl 1348.74121 Contin. Mech. Thermodyn. 28, No. 1-2, 465-476 (2016). Summary: We discuss the solution of Saint-Venant’s problem for solids with helical anisotropy. Here the governing relations of the theory of elasticity in terms of displacements were presented using the helical coordinate system. We proposed an approach to construct elementary Saint-Venant solutions using integration of ordinary differential equations with variable coefficients in the case of a circular cylinder with helical anisotropy. Elementary solutions correspond to problems of extension, of torsion, of pure bending and of bending of shear force. The solution of the problem is obtained using small parameter method for small values of twist angle and numerically for arbitrary values. Numeric results correspond to problems of extension-torsion. Dependencies of the stiffness matrix (in dimensionless form) on angle between the tangent to the helical coil and the axis of the cylinder corresponding to stiffness on stretching and torsion are illustrated graphically for different values of material and geometrical parameters. Cited in 1 Document MSC: 74G50 Saint-Venant’s principle 35Q74 PDEs in connection with mechanics of deformable solids Keywords:helical anisotropy; Saint-Venant problem; elastic cylinder PDF BibTeX XML Cite \textit{N. V. Kurbatova} and \textit{Y. A. Ustinov}, Contin. Mech. Thermodyn. 28, No. 1--2, 465--476 (2016; Zbl 1348.74121) Full Text: DOI OpenURL References: [1] Andreaus, U.; Placidi, L.; Rega, G., Soft impact dynamics of a cantilever beam: equivalent SDOF model versus infinite-dimensional system, Proc. Inst. Mech. Eng. Part C J. Mech. Eng. Sci., 225, 2444-2456, (2011) [2] Antman S.S.: Nonlinear Problems of Elasticity, vol. 107. Applied Mathematical Sciences. 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