A Failure Assessment Method for a Pipe Bend Subjected to Both a Bending Moment and Internal Pressure

Author:

Yoshikawa Masaki1,Katoh Akihiko1,Sasaki Kazuaki2

Affiliation:

1. JFE R&D Corporation, 1-1, Minamiwatarida, Kawasaki-ku, Kawasaki, 210-0855 Japan

2. Faculty and Graduate School of Engineering, Hokkaido University, Kita 13, Nishi 8, Kita-ku, Sapporo, 060-8628 Japan

Abstract

This paper proposes a new failure assessment method for a steel pipe bend subjected to both a bending moment and internal pressure. Consistent with previous studies, it was shown that the maximum bending moment of a pipe bend subjected to a bending moment increases with the addition of internal pressure. However, it was experimentally confirmed that the addition of this internal pressure has the detrimental effect of significantly reducing the critical deformation (maximum bending angle) of the pipe bend. In addition, it was found that, subsequent to the application of a large deflection, cracks initiate at the most deformed part of the pipe bend during the process of unloading the internal pressure and then the applied load. Herein, the authors propose a practical failure assessment method which uses small-scale tests and nonlinear finite element (FE) analyses to predict the critical deformation and crack initiation position for a full-scale pipe bend. The failure criterion, which uses principal stress, mean stress, and equivalent plastic strain, was developed using small-scale tests. A failure assessment was conducted by comparing the predictions of this criterion with stress and strain histories obtained from FE analyses. Also, the authors’ failure criterion was compared with previous failure criteria, and the advantages/disadvantages discussed.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference20 articles.

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3. Limit Loads for Pipe Elbows With Internal Pressure Under In-Plane Closing Bending Moments;Shalaby;ASME J. Pressure Vessel Technol.

4. Nonlinear Response and Failure of Steel Elbows Under In-Plane Bending and Pressure;Karamanos;ASME J. Pressure Vessel Technol.

5. Ductile Fracture Initiation Behavior Under a Large Scale of Cyclic Bending;Toyoda

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