English

Hydrogen trapping and embrittlement in high-strength Al-alloys

Materials Science 2022-03-09 v1

Abstract

Ever more stringent regulations on greenhouse gas emissions from transportation motivate efforts to revisit materials used for vehicles. High-strength Al-alloys often used in aircrafts could help reduce the weight of automobiles, but are susceptible to environmental degradation. Hydrogen (H) "embrittlement" is often pointed as the main culprit, however, the mechanisms underpinning failure are elusive: atomic-scale analysis of H inside an alloy remains a challenge, and this prevents deploying alloy design strategies to enhance the materials' durability. Here we successfully performed near-atomic scale analysis of H trapped in second-phase particles and at grain boundaries in a high-strength 7xxx Al-alloy. We used these observations to guide atomistic ab-initio calculations which show that the co-segregation of alloying elements and H favours grain boundary decohesion, while the strong partitioning of H into the second-phases removes solute H from the matrix, hence preventing H-embrittlement. Our insights further advance the mechanistic understanding of H-assisted embrittlement in Al-alloys, emphasizing the role of H-traps in retarding cracking and guiding new alloy design.

Keywords

Cite

@article{arxiv.2201.04490,
  title  = {Hydrogen trapping and embrittlement in high-strength Al-alloys},
  author = {Huan Zhao and Poulami Chakraborty and Dirk Ponge and Tilmann Hickel and Binhan Sun and Chun-Hung Wu and Baptiste Gault and Dierk Raabe},
  journal= {arXiv preprint arXiv:2201.04490},
  year   = {2022}
}