Effect of heterogeneity on the stability of composite cylindrical shells under axial compression.
Deleterious effect of heterogeneity on stability of composite cylindrical shells under axial compression
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Deleterious effect of heterogeneity on stability of composite cylindrical shells under axial compression
Influence of prebuckling deformation on buckling load of truncated conical shells under axial compression
Determining general instability load of ring stiffened corrugated cylinder under axial compression by linear small deflection theory
Testing machine effect on buckling load of electroformed cylindrical shells under axial compression
Axially compressed ring and stringer stiffened cylindrical shells minimum weight design, considering configuration instability
Imperfect elliptical cylindrical shells buckling under axial compression, demonstrating imperfection sensitivity
The infinitely long cylindrical shell under axial compression with axisymmetric sinusoidal imperfections is considered. The bifurcation problem is formulated exactly, and a complete family of buckling modes is identified. Koiter's (1963) upper bound pertains to the critical stress associated with one restricted set of modes, and the critical stress for a set of long wavelength modes reproduces some numerical results obtained by Almroth (1966). The initial postbuckling analysis is also formulated exactly. An exact analytical solution is obtained for the limiting case of modes with infinitely long wavelengths, and numerical analysis is used to solve the equations for the other cases. An appendix gives the details of the analysis.
Buckling of a free edge of an axially compressed circular cylindrical shell
Results of an experimental and analytical study of the postbuckling behavior of selected graphite-epoxy cylindrical panels loaded in axial compression are presented. The postbuckling response and failure characteristics of the panels are described. The postbuckling response of each specimen is typical of axially-compressed cylindrical shells and curved panels in that a severe reduction in load occurs at buckling. Failure of all panels initiated near regions with severe local bending gradients. Analytical results from a nonlinear general shell finite element analysis computer code correlate well with typical experimental results up to buckling. Measured initial geometric imperfections were included in the postbuckling analysis. Analytically-determined stress distributions in the postbuckling response were used with failure criteria to identify the load level and the location of first-ply failure.
Stability and buckling of core-filled axially compressed circular cylinder
Buckling equations used to determine structural efficiency of ring stiffened corrugated cylinders in axial compression
Practical design curves for axial compression, and pure bending factors of eccentrically stiffened circular cylinders
Circular cylindrical photoelastic shells buckling modes under axial compression using high speed isoclinic photography, discussing shallow shell equations applicability to early stages
Donnell equations, Newton method, and numerical solution applied to buckling of imperfect cylinders under axial compression
Longitudinal stiffeners eccentricity /one- sidedness/ effect on buckling strength of axially compressed cylinders
Compressive strength of glass-epoxy multilayer filament wound cylinders loaded in axial compression
Structural optimization of axially compressed cylinders stiffened externally with rings and/or stringers, noting effect of wall thickness on structural weight
Computer programs for calculating instability of simply supported, axially compressed circular cylinders having longitudinal and circumferential stiffeners