Continuing Education
Investigations on Buckling Behavior of Intermittently Fastened Cold-Formed Steel Built-Up Columns Using Spline Finite Strip Method
In load bearing cold formed steel (CFS) framed wall systems, built-up columns are utilized over single CFS sections for their improved structural performance. In this study, a numerical investigation is presented to compute the elastic stability of isolated and compound wall studs, braced intermittently to the sheathing. These bracing alter the buckling behaviour of the compound columns altogether especially in the distortional buckling mode. The present study is towards improving the design provisions of built-up columns presented in AISI-S100 (2016) which suggests to adopt a modified global slenderness ratio. Although this is intended to accommodate the loss of shear rigidity due to discrete fastener spacing, no guidance is provided to accommodate this effect on other buckling modes. In the literature approximate methodologies have been reported but comprehension of the composite behaviour of built-up sections is still missing. In this paper, a numerical methodology using compound spline finite strip method is developed to compute the elastic bucking load of steel built-up columns braced with and without sheathing. A compound model is generated by adding the stiffness matrix of fasteners into system global stiffness matrix where stiffness matrix of the fasteners is computed by adopting a 3D beam model with adjustable geometrical properties and stiffness of wall system is added to the model with the help of translational and rotational springs. All the results are compared with FE based software ABAQUS and results are found to be accurate. A clarity is brought out in this paper between the effect of restraints provided by the presence of wall sheathing on overall performance of built-up wall studs in comparison to the unsheathed ones.- Date: 4/21/2020 - 4/24/2020
- PDH Credits: 0
AUTHOR(S)
Akshay Mangal Mahar and Arul Jayachandran S., Indian Institute of Technology Madras, Chennai, India