Title of article :
Circumferential stiffness tailoring of general cross section cylinders for maximum buckling load with strength constraints
Author/Authors :
A. Khani، نويسنده , , M.M. Abdalla، نويسنده , , Z. Gürdal، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2012
Abstract :
Stiffness tailoring of laminated composite structures using steered fibre tows is a design method that maximally uses the directional properties of composite materials. Cylindrical structures usually have circular cross sections while some application, geometric or aerodynamic requirements can necessitate other cross sections, e.g. elliptical. Circumferential tailoring can increase the buckling load of thin cylinders by compensating for non-uniform sectional loading such as bending and/or varying radius of curvature in general cylinders. Here, strength constraints are considered in maximum buckling load design, to ensure that the failure load is greater than the buckling load. A two-step optimisation framework is used to separate the theoretical and manufacturing issues in design. A computationally cheap semi-analytical finite difference method is used to solve the linear static and buckling problems. Conservative failure envelopes based on Tsai-Wu failure criterion are used for strength evaluation. To avoid repetitive analyses, successive convex approximation method is used. For demonstration, circumferential tailoring framework is applied to a circular cylinder under bending and an elliptical cylinder under axial compression. The improvements in buckling capacity of variable over constant stiffness designs are shown and verified using nonlinear buckling analysis in the commercial FEM software AbaqusTM, and the mechanisms of improvements are investigated.
Keywords :
Cylinder , Elliptical , Buckling , Strength , Steered fibres , Lamination parameters
Journal title :
COMPOSITE STRUCTURES
Journal title :
COMPOSITE STRUCTURES