TY - JOUR
T1 - Effect of strength mismatch on fully plastic fields in dissimilar joints under combined loading
AU - Lee, Hyungyil
AU - Kim, Yun Jae
N1 - Funding Information:
The authors tire grateful for the support: provided by a grant from tile Korea Science & Engineering Foundation, and Safety and Structural Integrity Research Center.
PY - 1998
Y1 - 1998
N2 - Via detailed finite element limit analyses, plastic limit loads, rotation factors, and crack-tip stress field are investigated for a combined tension and bending of a plane strain single-edge -cracked bimaterial specimen. Limiting bimaterial specimens are considered, consisting of an elastic/perfectly plastic material bonded to an elastic material having the same elastic properties. The limit loads of bimaterial specimens are shown to be very close to those of homogeneous specimens, so that limit load information for homogeneous specimens can be used even for bimaterial specimens. A tractable, approximate elliptical yield locus is proposed, which fits the FE results within 1%, for all ranges of tension-to-bending ratios. The plastic rotation factor of bimaterial specimens can be higher than that of homogeneous specimens as much as 25%, when the specimen is subject to small tensile forces. Results from the present analysis is applied to the analysis of typical fracture testing specimens such as compact tension specimens. For both homogeneous and bimaterial specimens, larger tensile forces are associated with substantial loss of crack-tip constraint. Bimaterial specimens have as much as 2 times higher constraint than homogeneous specimens, due to plastic strength mismatch. Tractable closed form approximations for crack-tip stresses are proposed in terms of tension-to-bending ratio.
AB - Via detailed finite element limit analyses, plastic limit loads, rotation factors, and crack-tip stress field are investigated for a combined tension and bending of a plane strain single-edge -cracked bimaterial specimen. Limiting bimaterial specimens are considered, consisting of an elastic/perfectly plastic material bonded to an elastic material having the same elastic properties. The limit loads of bimaterial specimens are shown to be very close to those of homogeneous specimens, so that limit load information for homogeneous specimens can be used even for bimaterial specimens. A tractable, approximate elliptical yield locus is proposed, which fits the FE results within 1%, for all ranges of tension-to-bending ratios. The plastic rotation factor of bimaterial specimens can be higher than that of homogeneous specimens as much as 25%, when the specimen is subject to small tensile forces. Results from the present analysis is applied to the analysis of typical fracture testing specimens such as compact tension specimens. For both homogeneous and bimaterial specimens, larger tensile forces are associated with substantial loss of crack-tip constraint. Bimaterial specimens have as much as 2 times higher constraint than homogeneous specimens, due to plastic strength mismatch. Tractable closed form approximations for crack-tip stresses are proposed in terms of tension-to-bending ratio.
KW - Bimaterial
KW - Combined Tension and Bending
KW - Crack-Tip Constraint
KW - Finite Element Analysis
KW - Fully Plastic
KW - Limit Load
KW - Rotation Factor
KW - Single-Edge-Cracked Specimen
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U2 - 10.1007/BF02945716
DO - 10.1007/BF02945716
M3 - Article
AN - SCOPUS:0000649136
SN - 1226-4865
VL - 12
SP - 553
EP - 564
JO - KSME International Journal
JF - KSME International Journal
IS - 4
ER -