Forced transverse vibration of rolls for four-high rolling mill

Jian-liang Sun , Yan Peng , Hong-min Liu , Guang-biao Jiang

Journal of Central South University ›› 2009, Vol. 16 ›› Issue (6) : 954 -960.

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Journal of Central South University ›› 2009, Vol. 16 ›› Issue (6) : 954 -960. DOI: 10.1007/s11771-009-0159-3
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Forced transverse vibration of rolls for four-high rolling mill

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Abstract

In order to investigate the forced transverse vibration of rolls under distributed draught pressure and moment of bending roll force, the forced transverse vibration model of rolls for four-high rolling mill was established. The work roll and backup roll were considered as elastic continuous bodies that were joined by a Winkler elastic layer. According to Euler-Bernoulli beam theory, the forced transverse vibration of rolls was analyzed based on modal superposition method. The forced vibration equations were established when the draught pressure and moment of bending roll force were imposed on the rolls respectively. Numerical modeling was made on 2 030 mm cold tandem rolling mill of Baoshan Iron and Steel Company. Simulation results show that when the work roll is only subjected to different forms of draught pressures, the vibration curves of work roll and backup roll are quadratic curves with amplitudes of 0.3 mm and 45 µm, respectively. When only the moments of bending roll force are imposed on the work roll and backup roll, the vibration curves of work roll and backup roll are quadratic curves, and the amplitudes are 5.0 and 1.6 µm, respectively. The influence of moment of bending roll force on the vibration of work roll is related with the bending roll force.

Keywords

four-high mill / forced transverse vibration / rolls / modal superposition method

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Jian-liang Sun, Yan Peng, Hong-min Liu, Guang-biao Jiang. Forced transverse vibration of rolls for four-high rolling mill. Journal of Central South University, 2009, 16(6): 954-960 DOI:10.1007/s11771-009-0159-3

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