Development of a Model for Hydrogen-Assisted Fatigue Crack Growth of Pipeline Steel1

Author:

Amaro Robert L.1,White Ryan M.2,Looney Chris P.3,Drexler Elizabeth S.4,Slifka Andrew J.5

Affiliation:

1. Department of Mechanical Engineering, University of Alabama, 401 7th Avenue, Tuscaloosa, AL 35487 e-mail:

2. Applied Chemicals and Materials Division, National Institute of Standards and Technology, 325 Broadway m/s 647, Boulder, CO 80305 e-mail:

3. Department of Mechanical Engineering, Colorado School of Mines, 1812 Illinois Street, Golden, CO 80401 e-mail:

4. National Institute of Standards and Technology, Applied Chemicals and Materials Division, 325 Broadway m/s 647, Boulder, CO 80305 e-mail:

5. Mem. ASME Applied Chemicals and Materials Division, National Institute of Standards and Technology, 325 Broadway m/s 647, Boulder, CO 80305 e-mail:

Abstract

Hydrogen has been proposed as a potential partial solution to the need for a clean-energy economy. In order to make this a reality, large-scale hydrogen transportation networks need to be engineered and installed. Steel pipelines are the most likely candidate for the required hydrogen transportation network. One historical barrier to the use of steel pipelines to transport hydrogen was a lack of experimental data and models pertaining to the fatigue response of steels in gaseous hydrogen. Extensive research at NIST has been performed in conjunction with the ASME B31.12 Hydrogen Piping and Pipeline committee to fill this need. After a large number of fatigue crack growth (FCG) tests were performed in gaseous hydrogen, a phenomenological model was created to correlate the applied loading conditions, geometry, and hydrogen pressure to the resultant hydrogen-assisted fatigue crack growth (HA-FCG) response of the steels. As a result of this extensive data set, and a simplification of the above-mentioned phenomenological model, the ASME B31.12 code was modified to enable the use of higher strength steels without penalty, thereby resulting in the potential for considerable installation cost savings. This paper details the modeling effort that led to the code change.

Funder

Pipeline and Hazardous Materials Safety Administration

Material Measurement Laboratory

Publisher

ASME International

Subject

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

Reference33 articles.

1. American Energy Independence, Safety Means More Pipelines,2013

2. Tensile Testing of Carbon Steel in High Pressure Hydrogen

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