Shape Optimization of Damaged Columns Subjected to Conservative and Non-Conservative Forces
S. K. Jatav and P. K. Datta
International Journal of Aeronautical and Space Sicences, vol. 15, no. 1, pp.20-31, 2014
Abstract : This paper deals with the development of a realistic shape optimization of damaged columns that are subjected to conservative
and non-conservative forces, using the Genetic Algorithm (GA). The analysis is based on the design of the most optimized
shape of the column under the constraint of constant weight, considering the Static, Vibrational, and Flutter characteristics.
Under the action of conservative and non-conservative longitudinal forces, an elastic column loses its stability. A numerical
analysis based on FEM has been performed on a uniform damaged column, to compute the fundamental buckling load,
vibration frequency, and flutter load, under various end restraints. An optimization search based on the Genetic Algorithm is
then executed, to find the optimal shape design of the column. The optimized column references the one having the highest
buckling load, highest vibration frequency, and highest flutter load, among all the possible shapes of the column, for a given
volume. A comparison is then made between the values obtained for the optimized damaged column, and those obtained
for the optimized undamaged column. The comparison reveals that the incorporation of damage in the column alters its
optimal shape to only a certain extent. Also, the critical load and frequency values for the optimized damaged column are
comparatively low, compared with those obtained for the optimized undamaged column. However, these results hold true
only for moderate-intensity damage cases. For high intensity damage, the optimal shape may not remain the same, and may
vary, according to the severity of damage.
Keyword : Shape Optimization, Non-conservative system, Flutter, Damage, Genetic Algorithm |