Modified Equation To Predict Leak/Rupture Criteria For Axially Through-Wall Notched X80 and X100 Linepipes Having a Higher Charpy Energy

Author:

Kawaguchi Shinobu1,Hagiwara Naoto1,Ohata Mitsuru2,Toyoda Masao2

Affiliation:

1. Pipeline Technology Center, Tokyo Gas Co., Ltd. 1-7-7, Suehiro-cho, Tsurumi-ku, Yokohama, Japan

2. Dept. of Manufacturing Science, Osaka Univ. 2-1, Yamada-oka, Suita, Osaka, Japan

Abstract

A method of predicting the leak/rupture criteria for API 5L X80 and X100 line pipes was evaluated based on the results of hydrostatic full-scale tests for X60, X65, X80, and X100 line pipes with an axially through-wall (TW) notch. The TW notch test results defined the leak/rupture criteria, that is, the relationship between the initial notch lengths and the maximum hoop stresses during the TW notch tests. The defined leak/rupture criteria were then compared to the prediction of the Charpy V-notch (CVN) absorbed energy-based equation, which has been proposed by Kiefner, Maxey et al. This comparison revealed that the CVN-based equation was not applicable to the pipes having both a CVN energy greater than 120 or 130 J and flow stress greater than the level of X65. In order to predict the leak/rupture criteria for these line pipes, the static absorbed energy for ductile cracking, (Cvs)i, was introduced as representing the fracture toughness of a pipe material. The (Cvs)i value was determined from the microscopic observation of the cut and polished Charpy V-notch specimens after static three-point bending tests. The CVN energy in the original CVN-based equation was replaced by an equivalent CVN energy, (Cv)eq, which was defined as follows: (Cv)eq=4.5(Cvs)i. The leak/rupture criteria for the X80 and X100 line pipes with higher CVN energies were reasonably predicted by the modified equation using the (Cvs)i value.

Publisher

ASME International

Subject

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

Reference26 articles.

1. Anon., 2004, “Specification For Line Pipe,” API Specification 5L 43rd ed., American Petroleum Institute.

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3. Pipeline Design and Construction Using Higher Strength Steels;Glover

4. Anon., 2000, “ASME Code for Pressure Piping, Gas Transmission and Distribution Piping Systems,” ASME B31.8, The American Society of Mechanical Engineers.

5. From X80 to X100: Know-How Reached by the ENI Group on High-Strength Steel;Barsanti

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