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4] S. K. Biswas, S. J. Chen, A. Satyanarayana, Optimal Temperature Tracking for Accelerated Cooling Processes in Hot Rolling of Steel, 7 (1997)327-340. [5] H. Fujimoto, H. Takuda, N. Hatta, R Viskanta, Numerical simulation of transient cooling of a hot solid by an impinging free surface jet, Numerical Heat Transfer: Part A, 36(1999) 767-780. [6] W. Timm, A. K. Weinzierl, A. Leipertz, Heat transfer in sub cooled jet impingement boiling at high wall temperatures, International Journal Heat Mass Transfer, 46 (2003) 1385-1395.

This phenomenon continues and results in zigzag type deformation as depicted from the load vs. displacement curves of all square tube configurations. Each peak corresponds to the formation of a fold. Fig. 5 (a), (b) and (c) shows the load vs. displacement plots of all square tube configurations, with and without foam. It is observed from this figure, that in case of empty tube, the deformation first starts from bottom and then from the top and it continues downward with the formation of folding modes.

Leipertz, Heat transfer in sub cooled jet impingement boiling at high wall temperatures, International Journal Heat Mass Transfer, 46 (2003) 1385-1395. [7] W. F. Wu, Heat transfer analysis during rolling slab in CSP, ACTA Metall. Sinica, 19 (4) 244250. Bhattacharya, A. N. Samanta, S. Chakraborty, Spray evaporative cooling to achieve ultra fast cooling in run out table, International Journal of Thermal Science, vol 48 (2009) 1941-1747. [9] A. Hauksson, D. Fraser, V. Prodanovic, I. Samarasekera, Experimental study of boiling heat transfer during subcooled water jet impingement on flat steel surface, Iron and Steel making, 31 (2004) 51-56.

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