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Fatigue behaviour of a box-welded joint under biaxial cyclic loading: effects of biaxial load range ratio and cyclic compressive loads in the lateral direction.

Authors :
TAKAHASHI, I.
TAKADA, A.
USHIJIMA, M.
AKIYAMA, S.
Source :
Fatigue & Fracture of Engineering Materials & Structures; May2003, Vol. 26 Issue 5, p439-448, 10p
Publication Year :
2003

Abstract

ABSTRACT The biaxial fatigue of a steel plate (JIS SM400B) having a box-welded (wrap-around) joint was experimentally studied. Special concerns were focused on the effects of the biaxial load range ratio and compressive cyclic loading in the lateral direction. The direction of fatigue crack propagation under biaxial cyclic tensile loading, which has a phase difference of π , changed according to the biaxial load range ratio, R <subscript> xy </subscript> = ΔP <subscript> x </subscript> /ΔP <subscript> y </subscript> . When R <subscript> xy </subscript> was less than 0.56, fatigue cracks propagated along the toe of the weld in the x -direction because the principal tensile stress range Δσ <subscript> y </subscript> at that location exceeded the orthogonal value Δσ <subscript> x </subscript> at the box-weld toe. The fatigue lives in biaxial tests related well to the data from uniaxial tests when invoking the Δσ <subscript>5</subscript> criterion. However, the location and direction of Δσ <subscript>5</subscript> should be chosen according to the R <subscript> xy </subscript> value and the failure crack direction. An increase in Δσ <subscript>5</subscript> , as induced by the Poisson's ratio effect from either the out-of-phase tensile loading or the in-phase compressive loading in the y -direction, leads to an increase in fatigue damage (decrease in fatigue resistance or specifically a faster crack propagation rate), and this effect can be successfully estimated from uniaxial fatigue test data. [ABSTRACT FROM AUTHOR]

Subjects

Subjects :
WELDED joint fatigue
AXIAL loads

Details

Language :
English
ISSN :
8756758X
Volume :
26
Issue :
5
Database :
Complementary Index
Journal :
Fatigue & Fracture of Engineering Materials & Structures
Publication Type :
Academic Journal
Accession number :
9510722
Full Text :
https://doi.org/10.1046/j.1460-2695.2003.00645.x