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http://dx.doi.org/10.12989/sem.2008.28.5.495

Mean moment effect on circular thin-walled tubes under cyclic bending  

Chang, Kao-Hua (Department of Engineering Science, National Cheng Kung University)
Pan, Wen-Fung (Department of Engineering Science, National Cheng Kung University)
Lee, Kuo-Long (Department of Computer Application Engineering, Far East College)
Publication Information
Structural Engineering and Mechanics / v.28, no.5, 2008 , pp. 495-514 More about this Journal
Abstract
In this paper, experimental and theoretical investigations of the effect of the mean moment on the response and collapse of circular thin-walled tubes subjected to cyclic bending are discussed. To highlight the influence of the mean moment effect, three different moment ratios r (minimum moment/ maximum moment) of -1, -0.5 and 0, respectively, were experimentally investigated. It has been found that the moment-curvature loop gradually shrinks with the number of cycles, and becomes stable after a few cycles for symmetric cyclic bending (r = -1). However, the moment-curvature loop exhibits ratcheting and increases with the number of cycles for unsymmetric cyclic bending (r = -0.5 or 0). In addition, although the three groups of tested specimens had three different moment ratios, when plotted in a log-log scale, three parallel straight lines describe the relationship between the controlled moment range and the number of cycles necessary to produce buckling. Finally, the endochronic theory combined with the principle of virtual work was used to simulate the relationship among the moment, curvature and ovalization of thin-walled tubes under cyclic bending. An empirical formulation was proposed for simulating the relationship between the moment range and the number of cycles necessary to produce buckling for thin-walled tubes subjected to cyclic bending with different moment ratios. The results of the experimental investigation and the simulation are in good agreement with each other.
Keywords
moment-controlled; mean moment; moment ratio; thin-walled tube; cyclic bending; ovalization; collapse; endochronic theory;
Citations & Related Records

Times Cited By Web Of Science : 7  (Related Records In Web of Science)
Times Cited By SCOPUS : 7
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1 Gellin, S. (1980), "The plastic buckling of long cylindrical shells under pure bending", Int. J. Solids Struct., 16, 397-407   DOI   ScienceOn
2 Fan, J. (1983), "A comprehensive numerical study and experimental verification of endochronic plasticity", Ph.D. Dissertation, Department of Aerospace Engineering and Applied Mechanics, University of Cincinnati
3 Corona, E. and Vaze, S. (1996), "Buckling of elastic-plastic square tubes under bending", Int. J. Mech. Sci., 38(7), 753-775   DOI   ScienceOn
4 Elchalakani, M., Zhao, X.L. and Grzebieta, R.H. (2004), "Concrete-filled circular tubes subjected to constant amplitude cyclic pure bending", Eng. Struct., 26, 2125-2135   DOI   ScienceOn
5 Corona, E. and Kyriakides, S. (1991), "An experimental investigation of the degradation and buckling of circular tubes under cyclic bending and external pressure", Thin Wall. Struct., 12, 229-263   DOI   ScienceOn
6 Shaw, P.K. and Kyriakides, S. (1985), "Inelastic analysis of thin-walled tubes under cyclic bending", Int. J. Solids Struct., 21(11), 1073-1110   DOI   ScienceOn
7 Vaze, S. and Corona, E. (1998), "Degradation and collapse of square tubes under cyclic bending", Thin Wall. Struct., 31, 325-341   DOI   ScienceOn
8 Pan, W.F., Lee, T.H. and Yeh, W.C. (1996), "Endochronic analysis for finite elasto -plastic deformation and application to metal tube under torsion and metal rectangular block under biaxial compression", Int. J. Plast., 12(10), 1287-1316   DOI   ScienceOn
9 Pan, W.F., Wang, T.R. and Hsu, C.M. (1998), "A curvature-ovalization measurement apparatus for circular tubes under cyclic bending", Exp. Mech., 38(2), 99-102   DOI   ScienceOn
10 Pan, W.F. and Fan, C.H. (1998), "An experimental study on the effect of curvature-rate at preloading stage on subsequent creep or relaxation of thin-walled tubes under pure bending", JSME Int. J., Series A, 41(4), 525-531
11 Lee, K.L., Pan, W.F. and Kuo, J.N. (2001), "The influence of the diameter-to-thickness ratio on the stability of circular tubes under cyclic bending", Int. J. Solids Struct., 38, 2401-2413   DOI   ScienceOn
12 Pan, W.F. and Chern, C.H. (1997), "Endochronic description for viscoplastic behavior of materials under multiaxial loading", Int. J. Solids Struct., 34(17), 2131-2159   DOI   ScienceOn
13 Kyriakides, S. and Shaw, P.K. (1987), "Inelastic buckling of tubes under cyclic loads", J. Press. Vessel Technol., ASME, 109, 169-178   DOI
14 Kyriakides, S. and Shaw, P.K. (1982), "Response and stability of elastoplastic circular pipes under combined bending and external pressure", Int. J. Solids Struct., 18(11), 957-973   DOI   ScienceOn
15 Jiao, H. and Zhao, X.L. (2004), "Section slenderness limits of very high strength circular steel tubes in bending", Thin Wall. Struct., 42, 1257-1271   DOI   ScienceOn
16 Corona, E. and Kyriakides, S. (1988), "On the collapse of inelastic tubes under combined bending and pressure", Int. J. Solids Struct., 24(5), 505-535   DOI   ScienceOn
17 Elchalakani, M., Zhao, X.L. and Grzebieta, R.H. (2002), "Plastic mechanism analysis of circular tubes under pure bending", Int. J. Mech. Sci., 44, 1117-1143   DOI   ScienceOn
18 Fabian, O. (1977), "Collapse of cylindrical, elastic tubes under combined bending, pressure and axial loads", Int. J. Solids Struct., 13, 1257-1273   DOI   ScienceOn
19 Lee, K.L. and Pan, W.F. (2001), "Viscoplastic collapse of titanium alloy tubes under cyclic bending", Struct. Eng. Mech., 11(3), 315-324   DOI   ScienceOn
20 Lee, K.L., Pan, W.F. and Hsu, C.M. (2004), "Experimental and theoretical evaluations of the effect between diameter-to-thickness ratio and curvature-rate on the stability of circular tubes under cyclic bending", JSME Int. J., Series A, 47(2), 212-222   DOI   ScienceOn
21 Pan, W.F. and Her, Y.S. (1998), "Viscoplastic collapse of thin-walled tubes under cyclic bending", J. Eng. Mater. Tech., ASME, 120, 287-290   DOI
22 Pan, W.F. and Lee, K.L. (2002), "The effect of mean curvature on the response and collapse of thin-walled tubes under cyclic bending", JSME Int. J., Series A, 45(2), 309-318   DOI   ScienceOn
23 Reddy, B.D. (1979), "An experimental study of the plastic buckling of circular cylinders in pure bending", Int. J. Solids Struct., 15, 669-682   DOI   ScienceOn
24 Valanis, K.C. (1980), "Fundamental consequence of a new intrinsic time measure-plasticity as a limit of the endochronic theory", Arch. Mech., 32, 171-191