To accurately characterize plastic yield behavior of metals in multiaxial stress states, a new yield theory, i.e., the average shear stress yield (ASSY) theory, is proposed in reference to the classical Tresca and von Mises yield theories for isotropic hardening materials. Based on the ASSY theory, a theoretical solution for predicting the burst pressure of pipelines is obtained as a function of pipe diameter, wall thickness, material hardening exponent, and ultimate tensile strength. This solution is then validated by experimental data for various pipeline steels. According to the ASSY yield theory, four failure criteria are developed for predicting the burst pressure of pipes by the use of commercial finite element softwares such as ABAQUS and ANSYS, where the von Mises yield theory and the associated flow rule are adopted as the classical metal plasticity model for isotropic hardening materials. These failure criteria include the von Mises equivalent stress criterion, the maximum principal stress criterion, the von Mises equivalent strain criterion, and the maximum tensile strain criterion. Applications demonstrate that the proposed failure criteria in conjunction with the ABAQUS or ANSYS numerical analysis can effectively predict the burst pressure of end-capped line pipes.
Skip Nav Destination
Article navigation
November 2007
Research Papers
Theoretical and Numerical Predictions of Burst Pressure of Pipelines
Brian N. Leis
Brian N. Leis
Mem. ASME
Battelle Memorial Institute
, 505 King Avenue, Columbus, OH 43221
Search for other works by this author on:
Xian-Kui Zhu
Brian N. Leis
Mem. ASME
Battelle Memorial Institute
, 505 King Avenue, Columbus, OH 43221J. Pressure Vessel Technol. Nov 2007, 129(4): 644-652 (9 pages)
Published Online: February 22, 2007
Article history
Received:
October 6, 2006
Revised:
February 22, 2007
Citation
Zhu, X., and Leis, B. N. (February 22, 2007). "Theoretical and Numerical Predictions of Burst Pressure of Pipelines." ASME. J. Pressure Vessel Technol. November 2007; 129(4): 644–652. https://doi.org/10.1115/1.2767352
Download citation file:
Get Email Alerts
Stress Analysis of ASME Section X Flanges Using Classical Lamination Theory
J. Pressure Vessel Technol (June 2023)
Theoretical Analysis of Free Vibration and Transient Response of Rectangular Plate–Cavity System Under Impact Loading
J. Pressure Vessel Technol (June 2023)
Integral Hydro-Bulge Forming Method of Spherical Pressure Vessels Using a Triangle Patch Polyhedron
J. Pressure Vessel Technol (June 2023)
Random Fatigue Analysis of Cryogenic Liquid Tanker Under Road Spectrum Load and a Simplified Algorithm
J. Pressure Vessel Technol (June 2023)
Related Articles
Failure of Locally Buckled Pipelines
J. Pressure Vessel Technol (May,2007)
Analysis of Laminations in X52 Steel Pipes by Nonlinear by Finite Element
J. Pressure Vessel Technol (May,2008)
Influence of Yield-to-Tensile Strength Ratio on Failure Assessment of Corroded Pipelines
J. Pressure Vessel Technol (November,2005)
Gas Coupled Ultrasonic Measurement of Pipeline Wall Thickness
J. Pressure Vessel Technol (August,2005)
Related Proceedings Papers
Related Chapters
Final Report
Applications Guide for Determining the Yield Strength of In-Service Pipe by Hardness Evaluation: Final Report
DYNAMIC GEOHAZARD MANAGEMENT IN CHALLENGING ENVIRONMENT
Pipeline Integrity Management Under Geohazard Conditions (PIMG)
LARGE STANDOFF MAGNETOMETRY TECHNOLOGY ADVANCES TO ASSESS PIPELINE INTEGRITY UNDER GEOHAZARD CONDITIONS AND APPROACHES TO UTILISATION OF IT
Pipeline Integrity Management Under Geohazard Conditions (PIMG)