English

On the suitability of single-edge notch tension (SENT) testing for assessing hydrogen-assisted cracking susceptibility

Computational Engineering, Finance, and Science 2024-04-30 v1 Materials Science Applied Physics Chemical Physics

Abstract

Combined experiments and computational modelling are used to increase understanding of the suitability of the Single-Edge Notch Tension (SENT) test for assessing hydrogen embrittlement susceptibility. The SENT tests were designed to provide the mode I threshold stress intensity factor (KthK_{\text{th}}) for hydrogen-assisted cracking of a C110 steel in two corrosive environments. These were accompanied by hydrogen permeation experiments to relate the environments to the absorbed hydrogen concentrations. A coupled phase-field-based deformation-diffusion-fracture model is then employed to simulate the SENT tests, predicting KthK_{\text{th}} in good agreement with the experimental results and providing insights into the hydrogen absorption-diffusion-cracking interactions. The suitability of SENT testing and its optimal characteristics (e.g., test duration) are discussed in terms of the various simultaneous active time-dependent phenomena, triaxiality dependencies, and regimes of hydrogen embrittlement susceptibility.

Keywords

Cite

@article{arxiv.2404.18223,
  title  = {On the suitability of single-edge notch tension (SENT) testing for assessing hydrogen-assisted cracking susceptibility},
  author = {L. Cupertino-Malheiros and T. K. Mandal and F. Thebault and E. Martínez-Pañeda},
  journal= {arXiv preprint arXiv:2404.18223},
  year   = {2024}
}