Title of article :
Bending modified J-Q theory and crack-tip constraint quantification
Author/Authors :
Xian-Kui Zhu · Brian N. Leis، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2006
Pages :
20
From page :
115
To page :
134
Abstract :
It is well known that the J-Qtheory can characterize the crack-tip fields and quantify constraint levels for various geometry and loading configurations in elastic-plasticmaterials, but it fails at bending-dominant large deformation. This drawback seriously restricts its applications to fracture constraint analysis. A modification of J-Q theory is developed as a three-term solution with an additional term to address the global bending stress to offset this restriction. The nonlinear bending stress is approximately linearized in the region of interest under large-scale yielding (LSY), with the linearization factor determined using a two-point matching method at each loading for a specific cracked geometry in bending. To validate the proposed solution, detailed elastic-plastic finite element analysis (FEA) is conducted under plane strain conditions for three conventional bending specimens with different crack lengths for X80 pipeline steel. These include single edge notched bend (SENB), single edge notched tension (SENT) and compact tension (CT) specimens from smallscale yielding (SSY) to LSY. Results show that the bending modified J-Q solution can well match FEA results of crack-tip stress fields for all bending specimens at all deformation levels from SSYto LSY, with the modified Q being a load- and distance-independent constraint parameter under LSY. Therefore, the modified parameter Q can be effectively used to quantify crack-tip constraint for bending geometries. Its application to fracture constraint analysis is demonstrated by determining constraint corrected J-R curves.
Keywords :
J-Q theory · Crack-tip field · Fractureconstraint · Bending stress · Large-scale yielding ·X80 steel
Journal title :
International Journal of Fracture
Serial Year :
2006
Journal title :
International Journal of Fracture
Record number :
828432
Link To Document :
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