Title :
Limit loads for cracked elbows under in-plane bending moment
Author :
Wang, C. ; Wang, Y.P. ; Li, P.N. ; Chen, J. ; Sun, X.M.
Author_Institution :
Key Lab. of Safety Sci. of Pressurized Syst., East China Univ. of Sci. & Technol., Shanghai, China
Abstract :
Elbows are the type of components widely used in a piping system, and are particularly important from the point of view of structural behaviour. In practice, the existence of cracks in excess of the defect limit cannot be excluded. So it is very important to know the effect of cracks on limit loads of elbows for integrity assessment of the piping system. The existing closed-form limit loads for axial cracked elbows under in-plane bending moment are either too conservative or inadequate, therefore, the present studies focused on limit loads of elbows with axial cracks and the crack configurations were assumed to be constant-depth rectangle, subjected to in plane opening and closing bending moments respectively. The crack-like defects were postulated to be in crown of elbows with different crack sizes. The limit loads and residual strength factors (RSFs) (ML/M0L )of cracked elbows with various ratios of t/rm and relative bending radius R/rm were investigated in detail, by using of three-dimensional (3D) non-linear finite element (FE) analyses, assuming elastic perfectly-plastic material behaviour and taking geometric nonlinearity into account. The non-linear finite element (FE) analyses indicate that under the open/close bending modes, elbows exhibit different behaviour obviously at the elastic plastic states. The results from comprehensive parametric studies indicate that the limit loads of cracked elbows may reduce with the increasing of crack length, and these trends are more serious for long radius elbows. Generally speaking, the thickness-radius ratio t/rm of elbow has insignificant effects on RSFs. Based on extensive limit load numeric data and comprehensive parametric studies, the revised closed form equations for cracked elbows involving effect of tangent pi
Keywords :
bending; cracks; elasticity; finite element analysis; internal stresses; pipes; plasticity; 3D nonlinear finite element; FE analysis; RSF; axial cracked elbow; closed-form limit load; constant-depth rectangle; crack configuration; crack-like defect; elastic perfectly-plastic material behaviour; in-plane bending moment; piping system; residual strength factor; structural behaviour; tangent pipe; thickness-radius ratio; Elbows; in-plane opening/closing bending moment; limit load; non-linear finite element (FE) analyses;
Conference_Titel :
Advanced Technology of Design and Manufacture (ATDM 2010), International Conference on
Conference_Location :
Beijing
DOI :
10.1049/cp.2010.1352