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A further study of plastic shear failure of impulsively loaded clamped beams(梁的剪切破坏可用于板)
International Journal of Impact Engineering 24 (2000) 613}629
A further study of plastic shear failure of impulsively loaded
clamped beams
T.X. Yu*, F.L. Chen
Department of Mechanical Engineering, Hong Kong University of Science and Technology, Clear Water Bay,
Kowloon, Hong Kong
Received 20 March 1999; received in revised form 29 June 1999
Abstract
As early as in 1973, Menkes and Opat (Exp Mech 1973; 13:480}6) conducted an experimental investigation
on the dynamic plastic response and failure of fully clamped metal beams subjected to a uniformly distributed
impulsive loading and identied three basic failure modes: large inelastic deformation (Mode I), tensile
tearing (Mode II) and transverse shear failure at the supports (Mode III). A rigid-plastic analysis was later
carried out by Jones (Trans ASME J Eng Ind 1976; 98 (B1): 131}6), in which an elementary failure criterion
was adopted to estimate the threshold impulsive velocities at the onset of Mode II or Mode III failure. A deep
understanding of these three basic failure modes is of fundamental importance to failure analyses of various
structures under intense dynamic loading. The present paper re-examines the plastic shear failure (Mode III)
of impulsively loaded clamped beams, with focus on two e!ects: (i) the interaction between the shear force
and bending moment; and (ii) the weakening of the sliding sections during the failing process. A dimensional
analysis is rst performed to obtain a general form of the threshold impulsive velocity, which overlooks
succeeding concrete analyses. The elementary failure criterion is then modied to incorporate the sliding
sections weakening e!ect. Interaction between the shear force and the bending moment at the supporting
ends is considered by using circular yield curve (Robinson, Int J Solids Struct 1973; 9:819), Hodges curve
(J Appl Mech 1957; 24:453}6), or a yield condition based on slip-line solutions. By taking into account the
variation with time of the shear force and
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